TY - JOUR A1 - Ingendoh-Tsakmakidis, Alexandra A1 - Mikolai, Carina A1 - Winkel, Andreas A1 - Szafrański, Szymon P. A1 - Flak, Christine S. A1 - Rossi, Angela A1 - Walles, Heike A1 - Stiesch, Meike T1 - Commensal and pathogenic biofilms differently modulate peri-implant oral mucosa in an organotypic model JF - Cellular Microbiology N2 - The impact of oral commensal and pathogenic bacteria on peri-implant mucosa is not well understood, despite the high prevalence of peri-implant infections. Hence, we investigated responses of the peri-implant mucosa to Streptococcus oralis or Aggregatibacter actinomycetemcomitans biofilms using a novel in vitro peri-implant mucosa-biofilm model. Our 3D model combined three components, organotypic oral mucosa, implant material, and oral biofilm, with structural assembly close to native situation. S. oralis induced a protective stress response in the peri-implant mucosa through upregulation of heat shock protein (HSP70) genes. Attenuated inflammatory response was indicated by reduced cytokine levels of interleukin-6 (IL-6), interleukin-8 (CXCL8), and monocyte chemoattractant protein-1 (CCL2). The inflammatory balance was preserved through increased levels of tumor necrosis factor-alpha (TNF-α). A. actinomycetemcomitans induced downregulation of genes important for cell survival and host inflammatory response. The reduced cytokine levels of chemokine ligand 1 (CXCL1), CXCL8, and CCL2 also indicated a diminished inflammatory response. The induced immune balance by S. oralis may support oral health, whereas the reduced inflammatory response to A. actinomycetemcomitans may provide colonisation advantage and facilitate later tissue invasion. The comprehensive characterisation of peri-implant mucosa-biofilm interactions using our 3D model can provide new knowledge to improve strategies for prevention and therapy of peri-implant disease. KW - Aggregatibacter actinomycetemcomitans KW - dental implants KW - host modulation KW - organotypic oral mucosa KW - Streptococcus oralis Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-323077 VL - 21 ER - TY - JOUR A1 - Mühlemann, Markus A1 - Zdzieblo, Daniela A1 - Friedrich, Alexandra A1 - Berger, Constantin A1 - Otto, Christoph A1 - Walles, Heike A1 - Koepsell, Hermann A1 - Metzger, Marco T1 - Altered pancreatic islet morphology and function in SGLT1 knockout mice on a glucose-deficient, fat-enriched diet JF - Molecular Metabolism N2 - Objectives Glycemic control by medical treatment represents one therapeutic strategy for diabetic patients. The Na+-d-glucose cotransporter 1 (SGLT1) is currently of high interest in this context. SGLT1 is known to mediate glucose absorption and incretin secretion in the small intestine. Recently, inhibition of SGLT1 function was shown to improve postprandial hyperglycemia. In view of the lately demonstrated SGLT1 expression in pancreatic islets, we investigated if loss of SGLT1 affects islet morphology and function. Methods Effects associated with the loss of SGLT1 on pancreatic islet (cyto) morphology and function were investigated by analyzing islets of a SGLT1 knockout mouse model, that were fed a glucose-deficient, fat-enriched diet (SGLT1−/−-GDFE) to circumvent the glucose-galactose malabsorption syndrome. To distinguish diet- and Sglt1−/−-dependent effects, wildtype mice on either standard chow (WT-SC) or the glucose-free, fat-enriched diet (WT-GDFE) were used as controls. Feeding a glucose-deficient, fat-enriched diet further required the analysis of intestinal SGLT1 expression and function under diet-conditions. Results Consistent with literature, our data provide evidence that small intestinal SGLT1 mRNA expression and function is regulated by nutrition. In contrast, pancreatic SGLT1 mRNA levels were not affected by the applied diet, suggesting different regulatory mechanisms for SGLT1 in diverse tissues. Morphological changes such as increased islet sizes and cell numbers associated with changes in proliferation and apoptosis and alterations of the β- and α-cell population are specifically observed for pancreatic islets of SGLT1−/−-GDFE mice. Glucose stimulation revealed no insulin response in SGLT1−/−-GDFE mice while WT-GDFE mice displayed only a minor increase of blood insulin. Irregular glucagon responses were observed for both, SGLT1−/−-GDFE and WT-GDFE mice. Further, both animal groups showed a sustained release of GLP-1 compared to WT-SC controls. Conclusion Loss or impairment of SGLT1 results in abnormal pancreatic islet (cyto)morphology and disturbed islet function regarding the insulin or glucagon release capacity from β- or α-cells, respectively. Consequently, our findings propose a new, additional role for SGLT1 maintaining proper islet structure and function. KW - glucose transporter SGLT1 KW - pancreatic islet cytomorphology KW - pancreatic islet function KW - β-cell KW - α-cell Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-224230 VL - 13 ER - TY - JOUR A1 - Göttlich, Claudia A1 - Kunz, Meik A1 - Zapp, Cornelia A1 - Nietzer, Sarah L. A1 - Walles, Heike A1 - Dandekar, Thomas A1 - Dandekar, Gudrun T1 - A combined tissue-engineered/in silico signature tool patient stratification in lung cancer JF - Molecular Oncology N2 - Patient-tailored therapy based on tumor drivers is promising for lung cancer treatment. For this, we combined in vitro tissue models with in silico analyses. Using individual cell lines with specific mutations, we demonstrate a generic and rapid stratification pipeline for targeted tumor therapy. We improve in vitro models of tissue conditions by a biological matrix-based three-dimensional (3D) tissue culture that allows in vitro drug testing: It correctly shows a strong drug response upon gefitinib (Gef) treatment in a cell line harboring an EGFR-activating mutation (HCC827), but no clear drug response upon treatment with the HSP90 inhibitor 17AAG in two cell lines with KRAS mutations (H441, A549). In contrast, 2D testing implies wrongly KRAS as a biomarker for HSP90 inhibitor treatment, although this fails in clinical studies. Signaling analysis by phospho-arrays showed similar effects of EGFR inhibition by Gef in HCC827 cells, under both 2D and 3D conditions. Western blot analysis confirmed that for 3D conditions, HSP90 inhibitor treatment implies different p53 regulation and decreased MET inhibition in HCC827 and H441 cells. Using in vitro data (western, phospho-kinase array, proliferation, and apoptosis), we generated cell line-specific in silico topologies and condition-specific (2D, 3D) simulations of signaling correctly mirroring in vitro treatment responses. Networks predict drug targets considering key interactions and individual cell line mutations using the Human Protein Reference Database and the COSMIC database. A signature of potential biomarkers and matching drugs improve stratification and treatment in KRAS-mutated tumors. In silico screening and dynamic simulation of drug actions resulted in individual therapeutic suggestions, that is, targeting HIF1A in H441 and LKB1 in A549 cells. In conclusion, our in vitro tumor tissue model combined with an in silico tool improves drug effect prediction and patient stratification. Our tool is used in our comprehensive cancer center and is made now publicly available for targeted therapy decisions. KW - 3D lung tumor model KW - Boolean signaling network KW - chemoresistance KW - HSP90 inhibitor KW - insilico drug screening too KW - KRAS mutation signature Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-233137 VL - 12 ER - TY - JOUR A1 - Colunga, Thomas A1 - Hayworth, Miranda A1 - Kreß, Sebastian A1 - Reynolds, David M. A1 - Chen, Luoman A1 - Nazor, Kristopher L. A1 - Baur, Johannes A1 - Singh, Amar M. A1 - Loring, Jeanne F. A1 - Metzger, Marco A1 - Dalton, Stephen T1 - Human Pluripotent Stem Cell-Derived Multipotent Vascular Progenitors of the Mesothelium Lineage Have Utility in Tissue Engineering and Repair JF - Cell Reports N2 - In this report we describe a human pluripotent stem cell-derived vascular progenitor (MesoT) cell of the mesothelium lineage. MesoT cells are multipotent and generate smooth muscle cells, endothelial cells, and pericytes and self-assemble into vessel-like networks in vitro. MesoT cells transplanted into mechanically damaged neonatal mouse heart migrate into the injured tissue and contribute to nascent coronary vessels in the repair zone. When seeded onto decellularized vascular scaffolds, MesoT cells differentiate into the major vascular lineages and self-assemble into vasculature capable of supporting peripheral blood flow following transplantation. These findings demonstrate in vivo functionality and the potential utility of MesoT cells in vascular engineering applications. KW - stem cells KW - mesothelium KW - vascular progenitor KW - tissue engineering KW - regenerative medicine Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-223217 VL - 26 ER - TY - JOUR A1 - Fahmy-Garcia, Shorouk A1 - Farrell, Eric A1 - Witte-Bouma, Janneke A1 - Robbesom-van den Berge, Iris A1 - Suarez, Melva A1 - Mumcuoglu, Didem A1 - Walles, Heike A1 - Kluijtmans, Sebastiaan G. J. M. A1 - van der Eerden, Bram C. J. A1 - van Osch, Gerjo J. V. M. A1 - van Leeuwen, Johannes P. T. M. A1 - van Driel, Marjolein T1 - Follistatin Effects in Migration, Vascularization, and Osteogenesis in vitro and Bone Repair in vivo JF - Frontiers in Bioengineering and Biotechnology N2 - The use of biomaterials and signaling molecules to induce bone formation is a promising approach in the field of bone tissue engineering. Follistatin (FST) is a glycoprotein able to bind irreversibly to activin A, a protein that has been reported to inhibit bone formation. We investigated the effect of FST in critical processes for bone repair, such as cell recruitment, osteogenesis and vascularization, and ultimately its use for bone tissue engineering. In vitro, FST promoted mesenchymal stem cell (MSC) and endothelial cell (EC) migration as well as essential steps in the formation and expansion of the vasculature such as EC tube-formation and sprouting. FST did not enhance osteogenic differentiation of MSCs, but increased committed osteoblast mineralization. In vivo, FST was loaded in an in situ gelling formulation made by alginate and recombinant collagen-based peptide microspheres and implanted in a rat calvarial defect model. Two FST variants (FST288 and FST315) with major differences in their affinity to cell-surface proteoglycans, which may influence their effect upon in vivo bone repair, were tested. In vitro, most of the loaded FST315 was released over 4 weeks, contrary to FST288, which was mostly retained in the biomaterial. However, none of the FST variants improved in vivo bone healing compared to control. These results demonstrate that FST enhances crucial processes needed for bone repair. Further studies need to investigate the optimal FST carrier for bone regeneration. KW - follistatin 315 (FST315) KW - follistatin 288 (FST288) KW - migration KW - vascularization KW - osteogenesis KW - injectable in situ gelling slow release system KW - bone tissue engineering KW - regenerative medicine Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-227617 VL - 7 ER - TY - THES A1 - Mathew-Schmitt, Sanjana T1 - Development of blood-brain barrier spheroid models based on human induced pluripotent stem cells (hiPSCs) and investigation of shear stress on hiPSC-derived brain capillary endothelial-like cells T1 - Entwicklung von Sphäroid-Modellen der Blut-Hirn-Schranke basierend auf menschlichen induzierten pluripotenten Stammzellen (hiPSCs) und Untersuchung der Scherbeanspruchung von hiPSC-abgeleiteten Hirnkapillarendothel-ähnlichen Zellen N2 - A highly regulated microenvironment is essential in maintaining normal functioning of the central nervous system (CNS). The existence of a biological barrier, termed as the blood-brain barrier (BBB), at the blood to brain interface effectively allows for selective passage of substances and pathogens into the brain (Kadry, Noorani et al. 2020). The BBB chiefly serves in protecting the brain from extrinsic toxin entry and pathogen invasions. The BBB is formed mainly by brain capillary endothelial cells (BCECs) which are responsible for excluding ∼ 100% of large-molecule neurotherapeutics and more than 98% of all small-molecule drugs from entry into the brain. Minimal BBB transport of major potential CNS drugs allows for attenuated effective treatments for majority of CNS disorders (Appelt-Menzel, Oerter et al. 2020). Animals are generally used as model systems to study neurotherapeutic delivery into the brain, however due to species based disparity, experimental animal models lead to several false positive or false negative drug efficacy predictions thereby being unable to fully predict effects in humans (Ruck, Bittner et al. 2015). An example being that over the last two decades, much of the studies involving animals lead to high failure rates in drug development with ~ 97% failure in cancers and ~ 99% failure for Alzheimer´s disease (Pound 2020). Widespead failures in clinical trials associated with neurological disorders have resulted in questions on whether existing preclinical animal models are genuinely reflective of the human condition (Bhalerao, Sivandzade et al. 2020). Apart from high failure rates in humans, the costs for animal testings is extremely high. According to the Organisation for Economic Co-operation and Development (OECD), responsible for determining animal testing guidelines and methodology for government, industry, and independent laboratories the average cost of a single two-generation reproductive animal toxicity study worldwide is 318,295 € and for Europe alone is ~ 285,842 € (Van Norman 2019). Due to these reasons two separate movements exist within the scientific world, one being to improve animal research and the other to promote new approach methodologies with the European government setting 2025 - 2035 as a deadline for gradually disposing the use of animals in pharmaceutical testing (Pound 2020). The discovery of human induced pluripotent stem cell (hiPSC) technology in 2006 (Takahashi and Yamanaka 2006, Takahashi, Tanabe et al. 2007) revolutionized the field of drug discovery in-vitro. HiPSCs can be differentiated into various tissue types that mimic disease phenotypes, thereby offering the possibility to deliver humanized in-vitro test systems. With respect to the BBB, several strategies to differentiate hiPSCs to BCECs (iBCECs) are reported over the years (Appelt-Menzel, Oerter et al. 2020). However, iBCECs are said to possess an epithelial or undifferentiated phenotype causing incongruity in BBB lineage specifications (Lippmann, 7 Azarin et al. 2020). Therefore, in order to identify a reliable differentiation strategy in deriving iBCECs possessing hallmark BBB characteristics, which can be used for downstream applications, the work in this thesis compared two methods, namely the co-differentiation (CD) and the directed differentiation (DD). Briefly, CD mimics a brain like niche environment for iBCEC specification (Lippmann, Al-Ahmad et al. 2014), while DD focuses on induction of the mesoderm followed by iBCEC specification (Qian, Maguire et al. 2017). The results obtained verified that while iBCECs derived via CD, in comparison to human BCEC cell line hCMEC/D3 showed the presence of epithelial transcripts such as E-Cadherin (CDH1), and gene level downregulation of endothelial specific platelet endothelial cell adhesion molecule-1 (PECAM-1) and VE-cadherin (CDH5) but demonstrated higher barrier integrity. The CD strategy essentially presented iBCECs with a mean trans-endothelial electrical resistance (TEER) of ~ 2000 – 2500 Ω*cm2 and low permeability coefficients (PC) of < 0.50 μm/min for small molecule transport of sodium fluorescein (NaF) and characteristic BCEC tight junction (TJ) protein expression of claudin-5 and occludin. Additionally, iBCECs derived via CD did not form tubes in response to angiogenic stimuli. DD on the other hand resulted in iBCECs with similar down regulations in PECAM-1 and CDH5 gene expression. They were additionally characterized by lower barrier integrity, measured by mean TEER of only ~ 250 – 450 Ω*cm2 and high PC of > 5 μm/min in small molecule transport of NaF. Although iBCECs derived via DD formed tubes in response to angiogenic stimuli, they did not show positive protein expression of characteristic BCEC TJs such as claudin-5 and occludin. These results led to the hypothesis that maturity and lineage specification of iBCECs could be improved by incorporating in-vivo like characteristics in-vitro, such as direct co-culture with neurovascular unit (NVU) cell types via spheroid formation and by induction of shear stress and fluid flow. In comparison to standard iBCEC transwell mono-cultures, BBB spheroids showed enhanced transcript expression of PECAM-1 and reduced expression of epithelial markers such as CDH1 and claudin-6 (CLDN6). BBB spheroids showed classical BCEC-like ultrastructure that was identified by TJ particles on the protoplasmic face (P-face) and exoplasmic face (E-face) of the plasma membrane. TJ strands were organized as particles and particle-free grooves on the E-face, while on the P-face, partly beaded particles and partly continuous strands were identified. BBB spheroids also showed positive protein expression of claudin-5, VE-cadherin, PECAM-1, glucose transporter-1 (GLUT-1), P-glycoprotein (P-gp) and transferrin receptor-1 (Tfr-1). BBB spheroids demonstrated higher relative impedance percentages in comparison to spheroids without an iBCEC barrier. Barrier integrity assessments additionally corresponded with lower permeability to small molecule tracer NaF, with spheroids containing iBCECs showing higher relative fluorescence unit percentages (RFU%) of ~ 90% in apical compartments, compared to ~ 80% in spheroids without iBCECs. In summary, direct cellular contacts in the complex spheroid model resulted in enhanced maturation of iBCECs. 8 A bioreactor system was used to further assess the effect of shear stress. This system enabled inclusion of fluidic flow and shear stress conditions in addition to non-invasive barrier integrity measurements (Choi, Mathew et al. 2022). iBCECs were cultured for a total of seven days post differentiation (d17) within the bioreactor and barrier integrity was non-invasively monitored. Until d17 of long-term culture, TEER values of iBCECs steadily dropped from ~ 1800 Ω*cm2 ~ 400 Ω*cm2 under static conditions and from ~ 2500 Ω*cm2 to ~ 250 Ω*cm2 under dynamic conditions. Transcriptomic analyses, morphometric analyses and protein marker expression showed enhanced maturation of iBECs under long-term culture and dynamic flow. Importantly, on d10 claudin-5 was expressed mostly in the cytoplasm with only ~ 5% iBCECs showing continuous staining at the cell borders. With increase in culture duration, iBCECs at d17 of static culture showed ~ 18% of cells having continuous cell border expression, while dynamic conditions showed upto ~ 30% of cells with continuous cell-cell border expression patterns. Similarly, ~ 33% of cells showed cell-cell border expression of occludin on d10 with increases to ~ 55% under d17 static and up to ~ 65% under d17 dynamic conditions, thereby indicating iBCEC maturation. In conclusion, the data presented within this thesis demonstrates the maturation of iBCECs in BBB spheroids, obtained via direct cellular contacts and by the application of flow and shear stress. Both established novel models need to be further validated for pharmaceutical drug applications together with in-vitro-in-vivo correlations in order to exploit their full potential. N2 - Eine hochregulierte Mikroumgebung ist für die Aufrechterhaltung der normalen Funktion des Zentralen Nervensystems (ZNS) unerlässlich. Das Vorhandensein einer biologischen Barriere, der so genannten Blut-Hirn-Schranke (BHS), als Schnittstelle zwischen Blutkreislauf und Gehirn ermöglicht den selektiven Durchgang von Substanzen und Pathogenen in das Gehirn (Kadry, Noorani et al. 2020). Die BHS dient hauptsächlich dazu, das Gehirn vor dem Eindringen von Toxinen von außen und dem Eindringen von Krankheitserregern zu schützen. Die BHS wird hauptsächlich von Hirnkapillarendothelzellen (engl. brain capillary endothelial cells, BCECs) gebildet, die dafür verantwortlich sind, dass ∼ 100% der großmolekularen Neurotherapeutika und mehr als 98% aller kleinmolekularen Medikamente nicht in das Gehirn gelangen können. Ein eingeschränkter BHS-Transport wichtiger potenzieller Wirkstoffe führt zu einer abgeschwächten Wirksamkeit der Behandlung der meisten ZNS-Erkrankungen (Pardridge 2005). Mäuse, Ratten, Schweine und Rinder werden in der Regel als Modellsysteme verwendet, um die Verabreichung von Neurotherapeutika in das Gehirn zu untersuchen. Aufgrund der Unterschiede zwischen den Spezies führen experimentelle Tiermodelle jedoch vermehrt zu falsch positiven oder falsch negativen Vorhersagen über die Wirksamkeit von Medikamenten, so dass sie nicht in der Lage sind, die Wirkungen beim Menschen vollständig vorherzusagen (Ruck, Bittner et al. 2015). Ein Beispiel dafür ist, dass in den letzten zwei Jahrzehnten ein Großteil der Studien an Tieren zu Misserfolgsraten in der Wirkstoffzulassung geführt hat. Bei einer Fehlerrate von 97% im Zusammenhang mit Krebs und ~99% bei Alzheimer führt dies zum Therapieversagen (Pound 2020). Die weit verbreiteten Misserfolge bei klinischen Versuchen im Zusammenhang mit neurologischen Erkrankungen haben zu der Frage geführt, ob die bestehenden präklinischen Tiermodelle wirklich die Physiologie des Menschen widerspiegeln (Bhalerao, Sivandzade et al. 2020). Abgesehen von den hohen Ausfallraten sind die Kosten für Tierversuche extrem hoch. Nach Angaben der Organisation für wirtschaftliche Zusammenarbeit und Entwicklung (engl. Organisation for Economic Co-operation and Development, OECD), welche für die Festlegung von Tierversuchsrichtlinien und -methoden für die Regierung, die Industrie und unabhängige Labore zuständig ist, belaufen sich die durchschnittlichen Kosten für eine einzige Zwei-Generationen-Studie zur Reproduktionstoxizität an Tieren weltweit auf 318.295 € und allein für Europa auf ~ 285.842 € (Van Norman 2019). Aus diesen Gründen gibt es zwei unterschiedliche Bemühungen unter den Wissenschaftlern. Zum einen zur Verbesserung der Tierforschung und zum anderen zur Förderung neuer Methoden gemäß den 3R (eng. replace, reduce, refine), wobei die europäische Regierung die Jahre 2025 bis 2035 als Frist für den schrittweisen Verzicht auf Tierversuche in der Forschung festgelegt hat (Pound 2020). Die 10 Entdeckung der humanen induziert pluripotenten Stammzell (hiPSC)-Technologie im Jahr 2006 (Takahashi und Yamanaka 2006, Takahashi, Tanabe et al. 2007) hat den Bereich der Arzneimittelforschung revolutioniert, da hiPSCs in verschiedene Gewebetypen differenziert werden können und damit die Möglichkeit bieten, humanisierte in-vitro-Testsysteme bereitzustellen, die zur Untersuchung verschiedener Krankheiten verwendet werden können. In Bezug auf die BHS wurde im Laufe der Jahre mehrere Strategien zur Differenzierung von hiPSCs zu BCECs (iBCECs) etabliert (Appelt-Menzel, Oerter et al. 2020), allerdings wird ihnen ein epithelialer Phänotyp nachgesagt, was zu Fragen in der Spezifikation der BBB führt (Lippmann, Azarin et al. 2020). Um eine verlässliche Differenzierungsstrategie für die Gewinnung von iBCECs mit charakteristischen BHS-Merkmalen zu finden, welche für Downstream-Anwendungengenutztwerden können, wurden in dieser Arbeit zwei Methoden verglichen. Die Ko-Differenzierung (engl. co-differentiation, CD) und die gerichtete Differenzierung (engl. directed differentiation, DD). Zusammengefasst simuliert die CD eine ZNS-ähnliche Mikroumgebung für die Spezifikation der iBCECs nach (Lippmann, Al-Ahmad et al. 2014), während sich die DD auf die Induktion des Mesoderms und die anschließende iBCEC-Spezifikation konzentriert (Qian, Maguire et al. 2017). Die erzielten Ergebnisse bestätigten, dass iBCECs, welche mittels CD abgeleitet wurden, im Vergleich zur humanen BCEC-Zelllinie (hCMEC/D3) zwar epitheliale Transkripte wie E-Cadherin (CDH1) besitzen, aber eine Herabregulierung von Thrombozyten-Endothelzell-Adhäsionsmolekül-1 (PECAM-1) und VE-Cadherin (CDH5) aufweisen. Die von CD abgeleiteten iBCECs hatten zudem eine höhere Barriere-Integrität und Funktionalität gezeigt. Im Wesentlichen führte die CD-Strategie zu iBCECs mit einem hohen transendothelialen elektrischen Widerstand (engl. Transendothelialelectrical resistance, TEER) von 2000 - 2500Ω*cm2, einem niedrigen Permeabilitätskoeffizienten (eng. Permeability co-efficient, PC) von < 0,50 μm/min für den Transport kleiner Moleküle wie Natriumfluorescein (NaF) und einer charakteristischen Expression von BCEC-spezifischen Tight Junction (TJ)-Proteinen wie Claudin-5 und Occludin. Außerdem bildeten iBCECs, welche über CD gewonnen wurden, keine Gefäßstrukturen als Reaktion auf angiogene Stimuli. DD hingegen führte zu iBCECs mit einer ähnlichen Herabregulierung der PECAM-1- und CDH5-Genexpression, die zusätzlich durch eine geringere Barriereintegrität, gemessen an einem niedrigen TEER von nur ~ 250 - 450 Ω*cm2 und einem hohen PC von > 5 μm/min, bei dem Transport von NaF gekennzeichnet war. Obwohl die über DD gewonnenen iBCECs in der Lage waren Gefäßnetze auszubilden, zeigten sie keine Expression der charakteristischen BCEC-TJs wie Claudin-5 und Occludin. Diese Ergebnisse führten zu der Hypothese, die in-vitro Differenzierung und Reifung von iBCECs zu verbessern, indem in-vivo-ähnliche Stimuli in-vitro angewandt werden, wie z. B. die direkte Kokultur mit Zelltypen der neurovaskulären Einheit (NVE) durch Sphäroidbildung und die Induktion von Scherstress in einem dynamischen Flussmodell. Im Vergleich zu iBCEC- 11 basierten Transwellmodellen, die zumeist in Monokulturen aufgebaut werden, zeigten die BHS-Sphäroide eine erhöhte Expression von PECAM-1 und eine reduzierte Expression von Epithelmarkern wie E-Cadherin (CDH1) und Claudin-6 (CLDN6). BHS-Sphäroide zeigten eine klassische BCEC-ähnliche Ultrastruktur, die durch TJ-Partikel auf der protoplasmatischen Phase (P-Phase) und der exoplasmatischen Phase (E-Phase) der Plasmamembran gekennzeichnet war. Die TJ-Stränge waren als Partikel und partikelfreie Rillen auf der E-Phase organisiert, während auf der P-Phase teils Partikel und teils kontinuierliche Stränge zu erkennen waren. BHS-Sphäroide zeigten auch eine positive Proteinexpression von Claudin-5, VE-Cadherin, PECAM-1, Glukose-Transporter-1 (GLUT-1), P-Glykoprotein (P-gp) und Transferrin-Rezeptor-1 (Tfr-1). Die BHS-Sphäroide wiesen ebenfalls höhere relative Impedanzwerte im Vergleich zu Sphäroiden ohne iBCEC-Barriere auf. Die Bewertung der Integrität der Barriere korrespondierte zudem mit einer geringeren Permeabilität für den niedermolekularen Tracer NaF, wobei Sphäroide mit iBCECs einen höheren Prozentsatz an relativen Fluoreszenzeinheiten (RFU%) von etwa 90% in den apikalen Kompartimenten aufwiesen, verglichen mit etwa 80% in Sphäroiden ohne iBCECs. Zusammenfassend lässt sich sagen, dass direkte zelluläre Kontakte im komplexen Sphäroidmodell zu einer verstärkten Reifung von iBCECs führten. In-vivo ist die BHS Scherbelastungen ausgesetzt, die einen wichtigen und oft vernachlässigten physiologischen Stimulus darstellen (Cucullo, Hossain et al. 2011). Um die Auswirkung von Scherstress auf die Eigenschaften und die Reifung von iBCECs zu messen, wurden diese in einem Bioreaktorsystem kultiviert.(Choi, Mathew et al. 2022). Hier war es möglich, iBCECs für insgesamt sieben Tage nach der Differenzierung (d17) erfolgreich in diesem System zu kultivieren und zusätzlich die Barriereintegrität nicht-invasiv zu überwachen. Bis d17 der Langzeitkultur fielen die TEER-Werte von iBCECs stetig von ~ 1800 Ω*cm2 ~ 400 Ω*cm2 unter statischen Bedingungen bzw. von ~ 2500 Ω*cm2 auf ~ 250 Ω*cm2 unter dynamischen Bedingungen. Zusätzliche Untersuchungen und Vergleiche von iBCECs unter diesen Kulturbedingungen mittels transkriptioneller und morphometrischer Analysen, sowie Expression von Proteinmarkern zeigten, dass iBCECs aufgrund der Langzeitkultur und des dynamischen Flusses eine verstärkte Reifung vorweisen. Wichtig ist, dass Claudin-5 bei d10 hauptsächlich im Zytoplasma exprimiert wurde und nur etwa 5% der iBCECs eine kontinuierliche Färbung an den Zellgrenzen aufwiesen. Mit zunehmender Kulturdauer zeigten iBCECs bei d17 in statischer Kultur ~ 18% der Zellen mit kontinuierlicher Zellrandexpression, während unter dynamischen Bedingungen bis zu ~ 30% der Zellen kontinuierliche Zellrandexpressionsmuster aufwiesen. In ähnlicher Weise zeigten ~ 33% der Zellen eine Zell-Zell-Grenzexpression von Occludin an d10 mit einem Anstieg auf ~ 55% unter d17 statischen und bis zu ~ 65% unter d17 dynamischen Bedingungen, was auf eine iBCEC-Reifung hinweist. Zusammenfassend zeigen die in dieser Arbeit vorgestellten Daten die Reifung von iBCECs in 12 BHS Sphäroiden, die durch direkte Zell - Zell Kontakte und in dynamischen Strömungsmodellen durch die Anwendung von Scherspannungen erreicht wird. Beide etablierten neuen Modelle müssen für pharmazeutische Anwendungen zusammen mit In-vitro-in-vivo-Korrelationen weiter validiert werden, um ihr volles Potential zu beweisen. KW - Blut-Hirn-Schranke KW - Blood-brain barrier Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-322475 ER - TY - JOUR A1 - Schwab, Andrea A1 - Meeuwsen, Annick A1 - Ehlicke, Franziska A1 - Hansmann, Jan A1 - Mulder, Lars A1 - Smits, Anthal A1 - Walles, Heike A1 - Kock, Linda T1 - Ex vivo culture platform for assessment of cartilage repair treatment strategies JF - ALTEX - Alternatives to animal experimentation N2 - There is a great need for valuable ex vivo models that allow for assessment of cartilage repair strategies to reduce the high number of animal experiments. In this paper we present three studies with our novel ex vivo osteochondral culture platform. It consists of two separated media compartments for cartilage and bone, which better represents the in vivo situation and enables supply of factors pecific to the different needs of bone and cartilage. We investigated whether separation of the cartilage and bone compartments and/or culture media results in the maintenance of viability, structural and functional properties of cartilage tissue. Next, we valuated for how long we can preserve cartilage matrix stability of osteochondral explants during long-term culture over 84 days. Finally, we determined the optimal defect size that does not show spontaneous self-healing in this culture system. It was demonstrated that separated compartments for cartilage and bone in combination with tissue-specific medium allow for long-term culture of osteochondral explants while maintaining cartilage viability, atrix tissue content, structure and mechanical properties for at least 56 days. Furthermore, we could create critical size cartilage defects of different sizes in the model. The osteochondral model represents a valuable preclinical ex vivo tool for studying clinically relevant cartilage therapies, such as cartilage biomaterials, for their regenerative potential, for evaluation of drug and cell therapies, or to study mechanisms of cartilage regeneration. It will undoubtedly reduce the number of animals needed for in vivotesting. KW - ex vivo model KW - osteochondral biopsy KW - cartilage repair KW - critical size defect KW - replacement Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-181665 VL - 34 IS - 2 ER - TY - JOUR A1 - Weißenberger, Manuel A1 - Wagenbrenner, Mike A1 - Nickel, Joachim A1 - Ahlbrecht, Rasmus A1 - Blunk, Torsten A1 - Steinert, Andre F. A1 - Gilbert, Fabian T1 - Comparative in vitro treatment of mesenchymal stromal cells with GDF-5 and R57A induces chondrogenic differentiation while limiting chondrogenic hypertrophy JF - Journal of Experimental Orthopaedics N2 - Purpose Hypertrophic cartilage is an important characteristic of osteoarthritis and can often be found in patients suffering from osteoarthritis. Although the exact pathomechanism remains poorly understood, hypertrophic de-differentiation of chondrocytes also poses a major challenge in the cell-based repair of hyaline cartilage using mesenchymal stromal cells (MSCs). While different members of the transforming growth factor beta (TGF-β) family have been shown to promote chondrogenesis in MSCs, the transition into a hypertrophic phenotype remains a problem. To further examine this topic we compared the effects of the transcription growth and differentiation factor 5 (GDF-5) and the mutant R57A on in vitro chondrogenesis in MSCs. Methods Bone marrow-derived MSCs (BMSCs) were placed in pellet culture and in-cubated in chondrogenic differentiation medium containing R57A, GDF-5 and TGF-ß1 for 21 days. Chondrogenesis was examined histologically, immunohistochemically, through biochemical assays and by RT-qPCR regarding the expression of chondrogenic marker genes. Results Treatment of BMSCs with R57A led to a dose dependent induction of chondrogenesis in BMSCs. Biochemical assays also showed an elevated glycosaminoglycan (GAG) content and expression of chondrogenic marker genes in corresponding pellets. While treatment with R57A led to superior chondrogenic differentiation compared to treatment with the GDF-5 wild type and similar levels compared to incubation with TGF-ß1, levels of chondrogenic hypertrophy were lower after induction with R57A and the GDF-5 wild type. Conclusions R57A is a stronger inducer of chondrogenesis in BMSCs than the GDF-5 wild type while leading to lower levels of chondrogenic hypertrophy in comparison with TGF-ß1. KW - bone marrow KW - cartilage KW - chondrogenesis KW - chondrogenic hypertrophy KW - mesenchymal stromal cell KW - GDF-5 KW - R57A Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-357770 VL - 10 ER - TY - JOUR A1 - Reuter, Christian A1 - Hauf, Laura A1 - Imdahl, Fabian A1 - Sen, Rituparno A1 - Vafadarnejad, Ehsan A1 - Fey, Philipp A1 - Finger, Tamara A1 - Jones, Nicola G. A1 - Walles, Heike A1 - Barquist, Lars A1 - Saliba, Antoine-Emmanuel A1 - Groeber-Becker, Florian A1 - Engstler, Markus T1 - Vector-borne Trypanosoma brucei parasites develop in artificial human skin and persist as skin tissue forms JF - Nature Communications N2 - Transmission of Trypanosoma brucei by tsetse flies involves the deposition of the cell cycle-arrested metacyclic life cycle stage into mammalian skin at the site of the fly’s bite. We introduce an advanced human skin equivalent and use tsetse flies to naturally infect the skin with trypanosomes. We detail the chronological order of the parasites’ development in the skin by single-cell RNA sequencing and find a rapid activation of metacyclic trypanosomes and differentiation to proliferative parasites. Here we show that after the establishment of a proliferative population, the parasites enter a reversible quiescent state characterized by slow replication and a strongly reduced metabolism. We term these quiescent trypanosomes skin tissue forms, a parasite population that may play an important role in maintaining the infection over long time periods and in asymptomatic infected individuals. KW - mechanisms of disease KW - parasitology KW - transcriptomics Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-358142 VL - 14 ER - TY - JOUR A1 - Bassler, Miriam C. A1 - Knoblich, Mona A1 - Gerhard-Hartmann, Elena A1 - Mukherjee, Ashutosh A1 - Youssef, Almoatazbellah A1 - Hagen, Rudolf A1 - Haug, Lukas A1 - Goncalves, Miguel A1 - Scherzad, Agmal A1 - Stöth, Manuel A1 - Ostertag, Edwin A1 - Steinke, Maria A1 - Brecht, Marc A1 - Hackenberg, Stephan A1 - Meyer, Till Jasper T1 - Differentiation of salivary gland and salivary gland tumor tissue via Raman imaging combined with multivariate data analysis JF - Diagnostics N2 - Salivary gland tumors (SGTs) are a relevant, highly diverse subgroup of head and neck tumors whose entity determination can be difficult. Confocal Raman imaging in combination with multivariate data analysis may possibly support their correct classification. For the analysis of the translational potential of Raman imaging in SGT determination, a multi-stage evaluation process is necessary. By measuring a sample set of Warthin tumor, pleomorphic adenoma and non-tumor salivary gland tissue, Raman data were obtained and a thorough Raman band analysis was performed. This evaluation revealed highly overlapping Raman patterns with only minor spectral differences. Consequently, a principal component analysis (PCA) was calculated and further combined with a discriminant analysis (DA) to enable the best possible distinction. The PCA-DA model was characterized by accuracy, sensitivity, selectivity and precision values above 90% and validated by predicting model-unknown Raman spectra, of which 93% were classified correctly. Thus, we state our PCA-DA to be suitable for parotid tumor and non-salivary salivary gland tissue discrimination and prediction. For evaluation of the translational potential, further validation steps are necessary. KW - salivary gland tumor KW - confocal Raman imaging KW - principal component analysis KW - discriminant analysis KW - multivariate data analysis KW - molecular diagnostics Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-355558 SN - 2075-4418 VL - 14 IS - 1 ER - TY - THES A1 - Kühnemundt, Johanna T1 - Defined microphysiologic 3D tumour models with aspects from the tumour microenvironment for the evaluation of cellular immunotherapies T1 - Definierte mikrophysiologische 3D-Tumormodelle mit Aspekten aus der Tumormikroumgebung zur Evaluierung von zellulären Immuntherapien N2 - Adoptive cellular immunotherapy with chimeric antigen receptor (CAR) T cells is highly effective in haematological malignancies. This success, however, has not been achieved in solid tumours so far. In contrast to hematologic malignancies, solid tumours include a hostile tumour microenvironment (TME), that poses additional challenges for curative effects and consistent therapeutic outcome. These challenges manifest in physical and immunological barriers that dampen efficacy of the CAR T cells. Preclinical testing of novel cellular immunotherapies is performed mainly in 2D cell culture and animal experiments. While 2D cell culture is an easy technique for efficacy analysis, animal studies reveal information about toxicity in vivo. However, 2D cell culture cannot fully reflect the complexity observed in vivo, because cells are cultured without anchorage to a matrix and only short-term periods are feasible. Animal studies provide a more complex tissue environment, but xenografts often lack human stroma and tumour inoculation occurs mostly ectopically. This emphasises the need for standardisable and scalable tumour models with incorporated TME-aspects, which enable preclinical testing with enhanced predictive value for the clinical outcome of immunotherapies. Therefore, microphysiologic 3D tumour models based on the biological SISmuc (Small Intestinal mucosa and Submucosa) matrix with preserved basement membrane were engaged and improved in this work to serve as a modular and versatile tumour model for efficacy testing of CAR T cells. In order to reflect a variety of cancer entities, TME-aspects, long-term stability and to enhance the read-out options they were further adapted to achieve scalable and standardisable defined microphysiologic 3D tumour models. In this work, novel culture modalities (semi-static, sandwich-culture) were characterised and established that led to an increased and organised tissue generation and long-term stability. Application of the SISmuc matrix was extended to sarcoma and melanoma models and serial bioluminescence intensity (BLI)-based in vivo imaging analysis was established in the microphysiologic 3D tumour models, which represents a time-efficient read-out method for quality evaluation of the models and treatment efficacy analysis, that is independent of the cell phenotype. Isolation of cancer-associated-fibroblasts (CAFs) from lung (tumour) tissue was demonstrated and CAF-implementation further led to stromal-enriched microphysiologic 3D tumour models with in vivo-comparable tissue-like architecture. Presence of CAFs was confirmed by CAF-associated markers (FAP, α-SMA, MMP-2/-9) and cytokines correlated with CAF phenotype, angiogenesis, invasion and immunomodulation. Additionally, an endothelial cell barrier was implemented for static and dynamic culture in a novel bioreactor set-up, which is of particular interest for the analysis of immune cell diapedesis. Studies in microphysiologic 3D Ewing’s sarcoma models indicated that sarcoma cells could be sensitised for GD2-targeting CAR T cells. After enhancing the scale of assessment of the microphysiologic 3D tumour models and improving them for CAR T cell testing, the tumour models were used to analyse their sensitivity towards differently designed receptor tyrosine kinase-like orphan receptor 1 (ROR1) CAR T cells and to study the effects of the incorporated TME-aspects on the CAR T cell treatment respectively. ROR1 has been described as a suitable target for several malignancies including triple negative breast cancer (TNBC), as well as lung cancer. Therefore, microphysiologic 3D TNBC and lung cancer models were established. Analysis of ROR1 CAR T cells that differed in costimulation, spacer length and targeting domain, revealed, that the microphysiologic 3D tumour models are highly sensitive and can distinguish optimal from sub-optimal CAR design. Here, higher affinity of the targeting domain induced stronger anti-tumour efficacy and anti-tumour function depended on spacer length, respectively. Long-term treatment for 14 days with ROR1 CAR T cells was demonstrated in dynamic microphysiologic 3D lung tumour models, which did not result in complete tumour cell removal, whereas direct injection of CAR T cells into TNBC and lung tumour models represented an alternative route of application in addition to administration via the medium flow, as it induced strong anti-tumour response. Influence of the incorporated TME-aspects on ROR1 CAR T cell therapy represented by CAF-incorporation and/or TGF-β supplementation was analysed. Presence of TGF-β revealed that the specific TGF-β receptor inhibitor SD-208 improves ROR1 CAR T cell function, because it effectively abrogated immunosuppressive effects of TGF-β in TNBC models. Implementation of CAFs should provide a physical and immunological barrier towards ROR1 CAR T cells, which, however, was not confirmed, as ROR1 CAR T cell function was retained in the presence of CAFs in stromal-enriched microphysiologic 3D lung tumour models. The absence of an effect of CAF enrichment on CAR T cell efficacy suggests a missing component for the development of an immunosuppressive TME, even though immunomodulatory cytokines were detected in co-culture models. Finally, improved gene-edited ROR1 CAR T cells lacking exhaustion-associated genes (PD-1, TGF-β-receptor or both) were challenged by the combination of CAF-enrichment and TGF-β in microphysiologic 3D TNBC models. Results indicated that the absence of PD-1 and TGF-β receptor leads to improved CAR T cells, that induce strong tumour cell lysis, and are protected against the hostile TME. Collectively, the microphysiologic 3D tumour models presented in this work reflect aspects of the hostile TME of solid tumours, engage BLI-based analysis and provide long-term tissue homeostasis. Therefore, they present a defined, scalable, reproducible, standardisable and exportable model for translational research with enhanced predictive value for efficacy testing and candidate selection of cellular immunotherapy, as exemplified by ROR1 CAR T cells. N2 - Die adoptive Immuntherapie mit chimären Antigenrezeptor (CAR) exprimierenden T-Zellen zeigt bei hämatologischen Krebsformen eine hohe Wirksamkeit. Bisher konnte dieser Erfolg für solide Tumore nicht erreicht werden. Im Gegensatz zu hämatologischen Krebsformen zeigen solide Tumore eine feindliche Tumormikroumgebung (TME), die zusätzliche Herausforderungen für die Erlangung kurativer Effekte und konsistenter Therapieergebnisse darstellen. Diese Herausforderungen äußern sich in physikalischen und immunologischen Barrieren, welche die Wirksamkeit der CAR-T-Zellen abschwächt. Zur präklinischen Testung neuartiger zellulärer Immuntherapien werden hauptsächlich 2D-Zellkulturen und Tierstudien durchgeführt. 2D-Zellkulturexperimente eignen sich vor allem für Wirksamkeitsanalysen, während Tierstudien Aufschluss über die Toxizität in-vivo geben können. Allerdings kann die 2D-Zellkultur die Komplexität der in-vivo Situation nicht vollständig widerspiegeln, da die Zellen ohne Verankerung an einer Matrix kultiviert werden und nur kurzfristige Zeiträume abgebildet werden können. Tierstudien bieten einen komplexeren Gewebekontext, wobei Xenografts aber oft das humane Stroma fehlt und die Tumorinokulation meist ektopisch erfolgt. Dies unterstreicht den Bedarf an standardisierbaren und skalierbaren Tumormodellen mit inkorporierten TME-Aspekten, die präklinische Testungen mit erhöhtem Vorhersagewert für den klinischen Erfolg von Immuntherapien ermöglichen. Daher wurden in dieser Arbeit mikrophysiologische 3D-Tumormodelle auf Basis der biologischen SISmuc (Small Intestinal mukosa und Submukosa)-Matrix mit erhaltener Basalmembran eingesetzt und verbessert, um als modulares und vielseitiges Tumormodell für die Wirksamkeitsprüfung von CAR T-Zellen zu dienen. Um eine Vielzahl von Krebsentitäten, TME-Aspekte und Langzeitstabilität abzubilden und um die Ausleseparamter zu verbessern, wurden die Tumormodelle weiter angepasst um skalierbare und standardisierbare definierte mikrophysiologische 3D Tumormodelle zu erhalten. In der vorliegenden Arbeit wurden neue Kulturmodalitäten (semistatische Kultur, Sandwich-Kultur) charakterisiert und etabliert, die zu einer vermehrten und erhöhten Gewebebildung sowie Langzeitstabilität der Modelle führen. Die Anwendung der SISmuc-Matrix wurde auf Sarkom- und Melanom-Modelle erweitert und in den mikrophysiologischen 3D-Tumormodellen wurde ein serielles Biolumineszenz-Intensitäts (BLI)-basiertes In-vivo-Analyse-Verfahren etabliert, welches eine zeiteffiziente Methode für die Qualitätsbewertung der Modelle sowie die Analyse der Therapiewirksamkeit darstellt, welche unabhängig vom Zell-Phänotyp ist. Die Isolation von Krebs-assoziierten Fibroblasten (CAFs) aus Lungen-(Tumor) Gewebe wurde demonstriert und die CAF-Implementierung führte des Weiteren zu stromal-angereicherten mikrophysiologischen 3D-Tumormodellen mit in-vivo vergleichbarer gewebeähnlicher Architektur. CAFs wurden mit Hilfe von CAF-assoziierten Markern (FAP, α-SMA, MMP-2/-9) und einer Zytokinanalyse in den Modellen identifiziert. Diese bestätigte ebenfalls Zytokine, welche mit Angiogenese, Invasion und Immunmodulation assoziiert sind. Zusätzlich wurde eine Endothelzellbarriere sowohl in statischer als auch in der dynamischen Kultur implementiert, wofür ein neuer Bioreaktoraufbau verwendet wurde, welcher insbesondere für die Analyse der Immunzelldiapedesis interessant ist. Studien in mikrophysiologischen 3D-Ewing-Sarkom-Modellen zeigten, dass diese für GD2-spezifische CAR-T-Zellen sensibilisiert werden können. Nach der Erweiterung des Untersuchungsumfangs der mikrophysiologischen 3D-Tumormodelle und deren Verbesserung für die CAR-T-Zell-Testung wurden die Tumormodelle verwendet, um ihre Sensitivität gegenüber unterschiedlich designten Rezeptor-Tyrosinkinase-like Orphan-Rezeptor 1 (ROR1) -spezifischen CAR-T-Zellen zu analysieren. Des Weiteren wurden die Auswirkungen der eingebauten TME-Aspekte auf die CAR-T-Therapie untersucht. ROR1 wurde als geeignetes Ziel für verschiedene maligne Erkrankungen beschrieben, darunter auch triple-negtive-breast-cancer (TNBC) und Lungenkrebs. Daher wurden mikrophysiologische 3D-TNBC- und Lungenkrebs-Modelle für die Testungen aufgebaut. Die Analyse von ROR1-CAR-T-Zellen, die sich in Kostimulation, Spacerlänge und der Ziel-Domäne unterschieden, zeigte, dass die mikrophysiologischen 3D-Tumormodelle eine hohe Sensitivität zur Unterscheidung von suboptimal und optimal designten CARs aufweisen. Dabei induzierte eine Ziel-Domäne mit höherer Affinität eine stärkere Anti-Tumor-Wirkung. Zusätzlich war die Anti-Tumor-Funktion abhängig von der Spacerlänge. In dynamischen mikrophysiologischen 3D-Lungentumormodellen wurde eine Langzeitbehandlung über 14 Tage mit ROR1-CAR-T-Zellen realisiert, die jedoch nicht zu einer vollständigen Entfernung der Tumorzellen führte. Die direkte Injektion von CAR-T-Zellen in TNBC- und Lungentumormodellen induzierte eine starke Anti-Tumorantwort und stellt somit neben der Zugabe über den Medienstrom einen alternativen Applikationsweg dar. Des Weiteren wurde der Einfluss der inkorporierten TME-Aspekte auf die ROR1 CAR T-Zelltherapie untersucht, welche sich durch CAF-Inkorporation und/oder TGF-β-Supplementierung darstellten. Die Zugabe von TGF-β zeigte, dass der spezifische TGF-β-Rezeptor-Inhibitor SD-208 die Funktion der ROR1 CAR T-Zellen verbesserte, da er die immunsuppressiven Effekte von TGF-β in TNBC-Modellen effektiv aufhob. Die Implementierung von CAFs sollte eine physikalische und immunologische Barriere gegenüber ROR1 CAR T-Zellen darstellen, was sich jedoch nicht bestätigte, da die Funktion der ROR1 CAR T-Zellen in Anwesenheit von CAFs in stromal-angereicherten mikrophysiologischen 3D-Lungentumormodellen erhalten blieb. Das Fehlen eines Effekts der CAF-Anreicherung auf die CAR T-Zell-Effektivität deutet auf eine fehlende Komponente für die Entwicklung eines immunsuppressiven TME hin, obwohl immunmodulatorische Zytokine in Co-Kultur-Modellen nachgewiesen wurden. Schließlich wurden verbesserte gen-editierte ROR1-CAR-T-Zellen, denen erschöpfungsassoziierte Gene (PD-1, TGF-β-Rezeptor oder beide) fehlten, durch die Kombination von CAF-Anreicherung und TGF-β in mikrophysiologischen 3D-TNBC-Modellen herausgefordert. Die Ergebnisse zeigten, dass ROR1 CAR T Zellen ohne PD-1 und TGF-β-Rezeptor überlegen sind, eine starke Tumorzell-Lyse induzieren und vor der feindlichen TME geschützt sind. Zusammenfassend spiegeln die in dieser Arbeit vorgestellten mikrophysiologischen 3D-Tumormodelle Aspekte der feindlichen TME solider Tumore wider, ermöglichen BLI-basierte Analysen und bieten eine langfristige Gewebehomöostase. Daher stellen sie ein definiertes, skalierbares, reproduzierbares, standardisierbares und exportierbares Modell für die translationale Forschung mit erhöhtem Vorhersagewert dar. Sie können für die Wirksamkeitsprüfung sowie Kandidatenauswahl von zellulären Immuntherapie verwendet werden, was vor allem am Beispiel der ROR1 CAR T-Zellen gezeigt wurde. KW - CAR T cell KW - immunotherapy KW - 3D tumour model KW - solid tumour KW - tumour microenvironment KW - TNBC KW - lung cancer KW - tumour stroma KW - microphysiologic 3D tumour model KW - Immuntherapie KW - Lungenkrebs KW - Stroma KW - Tumormikroumgebung Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-276674 ER - TY - THES A1 - Choi, Jihyoung T1 - Development of an Add-On Electrode for Non-Invasive Monitoring in Bioreactor Cultures and Medical Devices T1 - Entwicklung einer Zusatzelektrode für das nicht-invasive Monitoring von Bioreaktorkulturen und Medizinprodukten N2 - Electrochemical impedance spectroscopy (EIS) is a valuable technique analyzing electrochemical behavior of biological systems such as electrical characterization of cells and biomolecules, drug screening, and biomaterials in biomedical field. In EIS, an alternating current (AC) power signal is applied to the biological system, and the impedance of the system is measured over a range of frequencies. In vitro culture models of endothelial or epithelial barrier tissue can be achieved by culturing barrier tissue on scaffolds made with synthetic or biological materials that provide separate compartments (apical and basal sides), allowing for further studies on drug transport. EIS is a great candidate for non-invasive and real-time monitoring of the electrical properties that correlate with barrier integrity during the tissue modeling. Although commercially available transendothelial/transepithelial electrical resistance (TEER) measurement devices are widely used, their use is particularly common in static transwell culture. EIS is considered more suitable than TEER measurement devices in bioreactor cultures that involve dynamic fluid flow to obtain accurate and reliable measurements. Furthermore, while TEER measurement devices can only assess resistance at a single frequency, EIS measurements can capture both resistance and capacitance properties of cells, providing additional information about the cellular barrier's characteristics across various frequencies. Incorporating EIS into a bioreactor system requires the careful optimization of electrode integration within the bioreactor setup and measurement parameters to ensure accurate EIS measurements. Since bioreactors vary in size and design depending on the purpose of the study, most studies have reported using an electrode system specifically designed for a particular bioreactor. The aim of this work was to produce multi-applicable electrodes and established methods for automated non-invasive and real-time monitoring using the EIS technique in bioreactor cultures. Key to the electrode material, titanium nitride (TiN) coating was fabricated on different substrates (materials and shape) using physical vapor deposition (PVD) and housed in a polydimethylsiloxane (PDMS) structure to allow the electrodes to function as independent units. Various electrode designs were evaluated for double-layer capacitance and morphology using EIS and scanning electron microscopy (SEM), respectively. The TiN-coated tube electrode was identified as the optimal choice. Furthermore, EIS measurements were performed to examine the impact of influential parameters related to culture conditions on the TiN-coated electrode system. In order to demonstrate the versatility of the electrodes, these electrodes were then integrated into in different types of perfusion bioreactors for monitoring barrier cells. Blood-brain barrier (BBB) cells were cultured in the newly developed dynamic flow bioreactor, while human umblical vascular endothelial cells (HUVECs) and Caco-2 cells were cultured in the miniature hollow fiber bioreactor (HFBR). As a result, the TiN-coated tube electrode system enabled investigation of BBB barrier integrity in long-term bioreactor culture. While EIS measurement could not detect HUVECs electrical properties in miniature HFBR culture, there was the possibility of measuring the barrier integrity of Caco-2 cells, indicating potential usefulness for evaluating their barrier function. Following the bioreactor cultures, the application of the TiN-coated tube electrode was expanded to hemofiltration, based on the hypothesis that the EIS system may be used to monitor clotting or clogging phenomena in hemofiltration. The findings suggest that the EIS monitoring system can track changes in ion concentration of blood before and after hemofiltration in real-time, which may serve as an indicator of clogging of filter membranes. Overall, our research demonstrates the potential of TiN-coated tube electrodes for sensitive and versatile non-invasive monitoring in bioreactor cultures and medical devices. N2 - Die elektrochemische Impedanzspektroskopie (EIS) ist eine nützliche Methode, um das elektrochemische Verhalten von biologischen Systemen zu analysieren, wie z.B. die elektrische Charakterisierung von Zellen und Biomolekülen, Drug Screening und Biomaterialien im biomedizinischen Bereich. Für die EIS wird ein Wechselstrom an das biologische System angeschlossen und die Impedanz des Systems über einen Frequenzbereich gemessen. In vitro-Modelle von Gewebekulturen epithelialer Barrieren können mithilfe künstlicher oder biologischer Materialien, die über unterschiedliche Kompartimente (apikale und basolaterale Seite) verfügen, hergestellt werden und ermöglichen weitere Untersuchungen zum Transport von Arzneistoffen. Die EIS bietet dabei eine hervorragende Methode für das nicht-invasive Echtzeit-Monitoring der elektrischen Eigenschaften, die mit der Barriere-Integrität während der Gewebeentwicklung korreliert. Obwohl kommerziell erhältliche Geräte zur Messung des transendothelialen/transepithelialen elektrischen Widerstands (TEER) umfangreich verwendet werden, ist ihre Verwendung besonders bei statischen Transwell-Kulturen verbreitet. Durch die EIS kann im Gegensatz zur TEER-Messung für Bioreaktor-Kulturen, die einen dynamischen Medienfluss aufweisen, genauere und verlässliche Messungen erhalten werden. Zudem können EIS-Messungen anders als die TEER-Messung, die nur den Widerstand einer einzelnen Frequenz misst, gleichzeitig den elektrischen Widerstand und die Kapazität von Zellen erfassen und damit zusätzliche Informationen über die zellulären Barriereeigenschaften über verschiedene Frequenzen hinweg liefern. Der EIS-Einbau in ein Bioreaktor-System bedarf einer sorgfältigen Optimierung der Elektrodenintegration in das Bioreaktor-Setup und der Messparameter, um akkurate EIS-Messungen durchführen zu können. Da Bioreaktoren abhängig vom Untersuchungszweck in ihrer Größe und ihrem Design variieren, verwenden die meisten Studien speziell entwickelte Elektrodensysteme für einzelne Bioreaktoren. Das Ziel dieser Arbeit war die Herstellung von vielseitig anwendbaren Elektroden und etablierten Methoden für das automatisierte nicht-invasive Echtzeit-Monitoring von Bioreaktor-Kulturen mithilfe der EIS. Entscheidend für das Elektrodenmaterial war die Titannitrid (TiN)-Beschichtung, die auf verschiedenen Substraten (Materialien und Formen) durch Physical Vapor Deposition (PVD) hergestellt und in einer Polydimethylsiloxan (PDMS)-Struktur untergebracht wurde, damit die Elektroden unabhängig voneinander arbeiten können. Verschiedene Elektrodendesigns wurden auf Doppelschicht-Kapazität mithilfe der EIS bzw. auf die Morphologie mit Rasterelektronenmikroskopie untersucht. Die TiN-beschichteten Elektroden in Röhrenform erwiesen sich als optimal. Weiterhin wurden EIS-Messungen durchgeführt, um die Auswirkung von beeinflussenden Parametern auf die Kulturbedingungen durch das TiN-beschichtete Elektrodensystem zu untersuchen. Um die Vielseitigkeit der Elektroden aufzuzeigen, wurden diese anschließend zum Monitoring von Barriere-bildenden Zellen in unterschiedliche Perfusionsbioreaktoren integriert. Zellen der Blut-Hirn-Schranke (BHS) wurden im neu entwickelten dynamischen Flussreaktor kultiviert, wohingegen humane umbilikale vaskuläre Endothelzellen (HUVEC) und Caco-2-Zellen in Hohlfaserbioreaktoren (HFBR) in Miniaturform kultiviert wurden. Das TiN-beschichtete Röhrenelektrodensystem ermöglichte die Untersuchung der BHS-Barrieren-Integrität in einer Langzeit-Bioreaktorkultur. Während die EIS-Messung in der Miniaturform-HFBR-Kultur keine elektrischen Eigenschaften der HUVECs detektieren konnte, war es möglich, eine Barriere-Integrität der Caco-2-Zellen zu messen, die den potentiellen Nutzen für die Evaluierung deren Barrierefunktion aufzeigt. Nach den Bioreaktorkulturen wurde die Anwendung der TiN-beschichteten Röhrenelektrode auf die Hämofiltration erweitert, auf Grundlage der Hypothese, dass das EIS-System ein Gerinnen oder Verstopfen während der Hämofiltration überwachen könnte. Die Ergebnisse zeigen, dass das EIS-Monitoring-System Veränderungen in der Ionenkonzentration des Blutes vor und nach Hämofiltration in Echtzeit verfolgen kann, welches eventuell als Messgröße für ein Verstopfen der Filtermembranen genutzt werden kann. Insgesamt weisen TiN-beschichtete Röhrenelektroden unseren Forschungen zufolge ein großes Potential für ein empfindliches und vielfältiges nicht-invasives Monitoring von Bioreaktorkulturen und Medizingeräte auf. KW - Monitoring KW - Tissue Engineering KW - Electrode KW - Perfusion Bioreactor KW - Hemofiltration KW - Medizinprodukt KW - Electrochemical Impedance Spectroscopy Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-358232 ER - TY - JOUR A1 - Siverino, Claudia A1 - Fahmy-Garcia, Shorouk A1 - Niklaus, Viktoria A1 - Kops, Nicole A1 - Dolcini, Laura A1 - Misciagna, Massimiliano Maraglino A1 - Ridwan, Yanto A1 - Farrell, Eric A1 - van Osch, Gerjo J. V. M. A1 - Nickel, Joachim T1 - Addition of heparin binding sites strongly increases the bone forming capabilities of BMP9 in vivo JF - Bioactive Materials N2 - Highlights • Despite not being crucial for bone development BMP9 can induce bone growth in vivo. • BMP9 induced bone formation is strongly enhanced by introduced heparin binding sites. • BMP9s bone forming capabilities are triggered by extracellular matrix binding. • Heparin binding BMP9 (BMP9 HB) can improve the current therapies in treating bone fractures. Abstract Bone Morphogenetic proteins (BMPs) like BMP2 and BMP7 have shown great potential in the treatment of severe bone defects. In recent in vitro studies, BMP9 revealed the highest osteogenic potential compared to other BMPs, possibly due to its unique signaling pathways that differs from other osteogenic BMPs. However, in vivo the bone forming capacity of BMP9-adsorbed scaffolds is not superior to BMP2 or BMP7. In silico analysis of the BMP9 protein sequence revealed that BMP9, in contrast to other osteogenic BMPs such as BMP2, completely lacks so-called heparin binding motifs that enable extracellular matrix (ECM) interactions which in general might be essential for the BMPs' osteogenic function. Therefore, we genetically engineered a new BMP9 variant by adding BMP2-derived heparin binding motifs to the N-terminal segment of BMP9′s mature part. The resulting protein (BMP9 HB) showed higher heparin binding affinity than BMP2, similar osteogenic activity in vitro and comparable binding affinities to BMPR-II and ALK1 compared to BMP9. However, remarkable differences were observed when BMP9 HB was adsorbed to collagen scaffolds and implanted subcutaneously in the dorsum of rats, showing a consistent and significant increase in bone volume and density compared to BMP2 and BMP9. Even at 10-fold lower BMP9 HB doses bone tissue formation was observed. This innovative approach of significantly enhancing the osteogenic properties of BMP9 simply by addition of ECM binding motifs, could constitute a valuable replacement to the commonly used BMPs. The possibility to use lower protein doses demonstrates BMP9 HB's high translational potential. KW - bone morphogenetic protein 9 (BMP9) KW - heparin binding sites KW - bone regeneration KW - subcutaneous animal model Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-350470 VL - 29 ER - TY - THES A1 - Peindl, Matthias T1 - Refinement of 3D lung cancer models for automation and patient stratification with mode-of-action studies T1 - Weiterentwicklung von 3D Lungentumormodellen zur Automatisierung und Patienten-Stratifizierung mit Untersuchungen zur Wirkungsweise N2 - Lung cancer is the main cause of cancer-related deaths worldwide. Despite the availability of several targeted therapies and immunotherapies in the clinics, the prognosis for lung cancer remains poor. A major problem for the low benefit of these therapies is intrinsic and acquired resistance, asking for pre-clinical models for closer investigation of predictive biomarkers for refined personalized medicine and testing of possible combination therapies as well as novel therapeutic approaches to break resistances. One third of all lung adenocarcinoma harbor mutations in the KRAS gene, of which 39 % are transitions from glycine to cysteine in codon 12 (KRASG12C). Being considered “undruggable” in previous decades, KRASG12C-inhibitors now paved the way into the standard-of-care for lung adenocarcinoma treatment in the clinics. Still, the overall response rates as well as overall survival of patients treated with KRASG12C-inhibitors are sobering. Therefore, 3D KRASG12C-biomarker in vitro models were developed based on a decellularized porcine jejunum (SISmuc) using commercial and PDX-derived cell lines and characterized in regards of epithelial-mesenchymal-transition (EMT), stemness, proliferation, invasion and c-MYC expression as well as the sensitivity towards KRASG12C-inhibiton. The phenotype of lung tumors harboring KRAS mutations together with a c-MYC overexpression described in the literature regarding invasion and proliferation for in vivo models was well represented in the SISmuc models. A higher resistance towards targeted therapies was validated in the 3D models compared to 2D cultures, while reduced viability after treatment with combination therapies were exclusively observed in the 3D models. In the test system neither EMT, stemness nor the c-MYC expression were directly predictive for drug sensitivity. Testing of a panel of combination therapies, a sensitizing effect of the aurora kinase A (AURKA) inhibitor alisertib for the KRASG12C-inhibitor ARS-1620 directly correlating with the level of c-MYC expression in the corresponding 3D models was observed. Thereby, the capability of SISmuc tumor models as an in vitro test system for patient stratification was demonstrated, holding the possibility to reduce animal experiments. Besides targeted therapies the treatment of NSCLC with oncolytic viruses (OVs) is a promising approach. However, a lack of in vitro models to test novel OVs limits the transfer from bench to bedside. In this study, 3D NSCLC models based on the SISmuc were evaluated for their capability to perform efficacy and risk assessment of oncolytic viruses (OVs) in a pre-clinical setting. Hereby, the infection of cocultures of tumor cells and fibroblasts on the SISmuc with provided viruses demonstrated that in contrast to a wildtype herpes simplex virus 1 (HSV-1) based OV, the attenuated version of the OV exhibited specificity for NSCLC cells with a more advanced and highly proliferative phenotype, while fibroblasts were no longer permissive for infection. This approach introduced SISmuc tumor models as novel test system for in vitro validation of OVs. Finally, a workflow for validating the efficacy of anti-cancer therapies in 3D tumor spheroids was established for the transfer to an automated platform based on a two-arm-robot system. In a proof-of-concept process, H358 spheroids were characterized and treated with the KRASG12C-inhibitor ARS-1620. A time- and dose-dependent reduction of the spheroid area after treatment was defined together with a live/dead-staining as easy-to-perform and cost-effective assays for automated drug testing that can be readily performed in situ in an automated system. N2 - Lungentumoren sind die Hauptursache für krebsbedingte Todesfälle weltweit. Trotz der Verfügbarkeit diverser zielgerichteter Therapien und Immuntherapien im klinischen Alltag ist die Prognose für Lungenkrebs nach wie vor schlecht. Eine Hauptursache hierfür sind intrinsische und erworbene Resistenzen. Hieraus ergibt sich ein Bedarf für präklinische Modelle zur genaueren Untersuchung prädiktiver Biomarker für eine verbesserte personalisierte Medizin und zur Testung von Kombinationstherapien sowie neuartiger therapeutischer Ansätze, um bestehende Resistenzen zu brechen. Ein Drittel aller Lungen-Adenokarzinome weisen Mutationen im KRAS-Gen auf, von denen 39 % Transitionen von Glycin zu Cystein in Codon 12 (KRASG12C) darstellen. Obwohl KRAS in den vergangenen Jahrzehnten als "unbehandelbar" galt, haben sich KRASG12C-Inhibitoren nun den Weg in die klinische Standardbehandlung von Lungen-Adenokarzinomen gebahnt. Jedoch sind die Ansprech- und Überlebensraten von Patienten, die mit KRASG12C-Inhibitoren behandelt werden, ernüchternd. Daher wurden in dieser Arbeit 3D KRASG12C-Biomarker in vitro Modelle basierend auf dezellularisierten Schweinedünndarm (SISmuc) unter Verwendung kommerzieller und PDX-abgeleiteter Zelllinien aufgebaut und hinsichtlich der epithelial-mesenchymalen Transition (EMT), Stammzell-Eigenschaften, Proliferation, Invasion und c MYC-Expression sowie der Sensitivität gegenüber KRASG12C-Inhibitoren charakterisiert. Der in der Literatur für in vivo Modelle beschriebene Phänotyp von Lungentumoren mit KRAS-Mutationen und c-MYC-Überexpression in Bezug auf Invasion und Proliferation war in den SISmuc-Modellen reproduzierbar. Während in den 3D Modellen erhöhte Resistenz gegenüber zielgerichteten Therapien im Vergleich zu 2D beobachtet wurde, konnte eine verringerte Viabilität nach der Behandlung mit Kombinationstherapien ausschließlich in den 3D Modellen beobachtet werden. Im Test-System zeigten sich weder EMT noch die c-MYC-Expression als direkt prädiktiv für die Sensitivität gegenüber KRASG12C-Inhibitoren. Bei der Prüfung von verschiedenen Kombinationstherapien, wurde eine sensibilisierende Wirkung des Aurora-Kinase A (AURKA)-Inhibitors Alisertib für den KRASG12C-Inhibitor ARS-1620 beobachtet, welche direkt mit dem Grad der c-MYC-Expression in den entsprechenden 3D-Modellen korrelierte. Hierdurch konnte die Eignung von SISmuc Tumor Modellen als in vitro Test-System zur Patienten-Stratifizierung gezeigt werden, welches die Möglichkeit einer Reduktion von Tierversuchen birgt. Neben zielgerichteten Therapien ist die Behandlung von NSCLC mit onkolytischen Viren (OVs) ein vielversprechender Ansatz. Es mangelt jedoch an in vitro Modellen, um neue OVs in einer präklinischen Umgebung zu testen. Hierfür wurden 3D-NSCLC-Modelle auf der Grundlage der SISmuc bezüglich ihrer Eignung zur Durchführung von Wirksamkeits- und Risikobewertungen von OVs untersucht. Dabei zeigte die Infektion von Kokulturen aus Tumorzellen und Fibroblasten auf der SISmuc mit bereitgestellten Viren, dass die abgeschwächte Version des OV im Gegensatz zu einem auf dem Wildtyp des Herpes Simplex Virus 1 (HSV-1) basierenden OV eine Spezifität für NSCLC-Zellen mit einem fortgeschritteneren und stark proliferativen Phänotyp aufwies, während Fibroblasten sich für eine Infektion nicht länger permissiv zeigten. Dieser Ansatz stellt unter Beweis, dass SISmuc-Tumormodelle sich als neues Test-System zur in vitro Prüfung von OVs eignen. Schließlich wurde ein Arbeitsablauf zur Validierung der Wirksamkeit von Krebstherapien in 3D-Tumor-Sphäroiden für die Übertragung auf eine automatisierte Plattform auf der Grundlage eines zweiarmigen Robotersystems entwickelt. In einem Proof-of-Concept-Prozess wurden H358-Sphäroide charakterisiert und mit dem KRASG12C-Inhibitor ARS-1620 behandelt. Eine zeit- und dosisabhängige Reduktion der Sphäroid-Fläche nach der Behandlung wurde zusammen mit einer Lebend/Tot-Färbung als einfach durchzuführender und kostengünstiger Assay für automatisierte Medikamententests definiert, welche in situ in einer automatisierten Umgebung durchgeführt werden können. KW - Krebs KW - Tissue Engineering KW - Tumor models KW - Cancer KW - Targeted therapies KW - Automation Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-310693 ER - TY - JOUR A1 - Däullary, Thomas A1 - Imdahl, Fabian A1 - Dietrich, Oliver A1 - Hepp, Laura A1 - Krammer, Tobias A1 - Fey, Christina A1 - Neuhaus, Winfried A1 - Metzger, Marco A1 - Vogel, Jörg A1 - Westermann, Alexander J. A1 - Saliba, Antoine-Emmanuel A1 - Zdzieblo, Daniela T1 - A primary cell-based in vitro model of the human small intestine reveals host olfactomedin 4 induction in response to Salmonella Typhimurium infection JF - Gut Microbes N2 - Infection research largely relies on classical cell culture or mouse models. Despite having delivered invaluable insights into host-pathogen interactions, both have limitations in translating mechanistic principles to human pathologies. Alternatives can be derived from modern Tissue Engineering approaches, allowing the reconstruction of functional tissue models in vitro. Here, we combined a biological extracellular matrix with primary tissue-derived enteroids to establish an in vitro model of the human small intestinal epithelium exhibiting in vivo-like characteristics. Using the foodborne pathogen Salmonella enterica serovar Typhimurium, we demonstrated the applicability of our model to enteric infection research in the human context. Infection assays coupled to spatio-temporal readouts recapitulated the established key steps of epithelial infection by this pathogen in our model. Besides, we detected the upregulation of olfactomedin 4 in infected cells, a hitherto unrecognized aspect of the host response to Salmonella infection. Together, this primary human small intestinal tissue model fills the gap between simplistic cell culture and animal models of infection, and shall prove valuable in uncovering human-specific features of host-pathogen interplay. KW - intestinal enteroids KW - biological scaffold KW - Salmonella Typhimurium KW - OLFM4 KW - NOTCH KW - filamentous Salmonella Typhimurium KW - bacterial migration KW - bacterial virulence KW - 3D tissue model KW - olfactomedin 4 KW - infection Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-350451 VL - 15 IS - 1 ER - TY - JOUR A1 - Xu, Jietao A1 - Fahmy-Garcia, Shorouk A1 - Wesdorp, Marinus A. A1 - Kops, Nicole A1 - Forte, Lucia A1 - De Luca, Claudio A1 - Misciagna, Massimiliano Maraglino A1 - Dolcini, Laura A1 - Filardo, Giuseppe A1 - Labberté, Margot A1 - Vancíková, Karin A1 - Kok, Joeri A1 - van Rietbergen, Bert A1 - Nickel, Joachim A1 - Farrell, Eric A1 - Brama, Pieter A. J. A1 - van Osch, Gerjo J. V. M. T1 - Effectiveness of BMP-2 and PDGF-BB adsorption onto a collagen/collagen-magnesium-hydroxyapatite scaffold in weight-bearing and non-weight-bearing osteochondral defect bone repair: in vitro, ex vivo and in vivo evaluation JF - Journal of Functional Biomaterials N2 - Despite promising clinical results in osteochondral defect repair, a recently developed bi-layered collagen/collagen-magnesium-hydroxyapatite scaffold has demonstrated less optimal subchondral bone repair. This study aimed to improve the bone repair potential of this scaffold by adsorbing bone morphogenetic protein 2 (BMP-2) and/or platelet-derived growth factor-BB (PDGF-BB) onto said scaffold. The in vitro release kinetics of BMP-2/PDGF-BB demonstrated that PDGF-BB was burst released from the collagen-only layer, whereas BMP-2 was largely retained in both layers. Cell ingrowth was enhanced by BMP-2/PDFG-BB in a bovine osteochondral defect ex vivo model. In an in vivo semi-orthotopic athymic mouse model, adding BMP-2 or PDGF-BB increased tissue repair after four weeks. After eight weeks, most defects were filled with bone tissue. To further investigate the promising effect of BMP-2, a caprine bilateral stifle osteochondral defect model was used where defects were created in weight-bearing femoral condyle and non-weight-bearing trochlear groove locations. After six months, the adsorption of BMP-2 resulted in significantly less bone repair compared with scaffold-only in the femoral condyle defects and a trend to more bone repair in the trochlear groove. Overall, the adsorption of BMP-2 onto a Col/Col-Mg-HAp scaffold reduced bone formation in weight-bearing osteochondral defects, but not in non-weight-bearing osteochondral defects. KW - tissue engineering KW - regenerative medicine KW - osteochondral lesion KW - biocompatible materials KW - bone morphogenetic proteins KW - platelet-derived growth factor KW - animal model KW - weight-bearing Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-304019 SN - 2079-4983 VL - 14 IS - 2 ER - TY - JOUR A1 - Stefanakis, Mona A1 - Bassler, Miriam C. A1 - Walczuch, Tobias R. A1 - Gerhard-Hartmann, Elena A1 - Youssef, Almoatazbellah A1 - Scherzad, Agmal A1 - Stöth, Manuel Bernd A1 - Ostertag, Edwin A1 - Hagen, Rudolf A1 - Steinke, Maria R. A1 - Hackenberg, Stephan A1 - Brecht, Marc A1 - Meyer, Till Jasper T1 - The impact of tissue preparation on salivary gland tumors investigated by Fourier-transform infrared microspectroscopy JF - Journal of Clinical Medicine N2 - Due to the wide variety of benign and malignant salivary gland tumors, classification and malignant behavior determination based on histomorphological criteria can be difficult and sometimes impossible. Spectroscopical procedures can acquire molecular biological information without destroying the tissue within the measurement processes. Since several tissue preparation procedures exist, our study investigated the impact of these preparations on the chemical composition of healthy and tumorous salivary gland tissue by Fourier-transform infrared (FTIR) microspectroscopy. Sequential tissue cross-sections were prepared from native, formalin-fixed and formalin-fixed paraffin-embedded (FFPE) tissue and analyzed. The FFPE cross-sections were dewaxed and remeasured. By using principal component analysis (PCA) combined with a discriminant analysis (DA), robust models for the distinction of sample preparations were built individually for each parotid tissue type. As a result, the PCA-DA model evaluation showed a high similarity between native and formalin-fixed tissues based on their chemical composition. Thus, formalin-fixed tissues are highly representative of the native samples and facilitate a transfer from scientific laboratory analysis into the clinical routine due to their robust nature. Furthermore, the dewaxing of the cross-sections entails the loss of molecular information. Our study successfully demonstrated how FTIR microspectroscopy can be used as a powerful tool within existing clinical workflows. KW - formalin KW - fixation KW - tissue preparation KW - salivary gland neoplasia KW - FTIR spectroscopy KW - principal component analysis KW - discriminant analysis Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-304887 SN - 2077-0383 VL - 12 IS - 2 ER - TY - THES A1 - Schliermann [geb. Stratmann], Anna Theresa T1 - The Role of FGF Receptor 2 in GDF5 mediated Signal Transduction T1 - Die Rolle des FGF Rezeptors 2 in GDF5-vermittelter Signaltransduktion N2 - Bone morphogenetic proteins (BMPs) are involved in various aspects of cell-cell communication in complex life forms. They act as morphogens, help differentiate different cell types from different progenitor cells in development, and are involved in many instances of intercellular communication, from forming a body axis to healing bone fractures, from sugar metabolism to angiogenesis. If the same protein or protein family carries out many functions, there is a demand to regulate and fine-tune their biological activities, and BMPs are highly regulated to generate cell- and context-dependent outcomes. Not all such instances can be explained yet. Growth/differentiation factor (GDF)5 (or BMP14) synergizes with BMP2 on chondrogenic ATDC5 cells, but antagonizes BMP2 on myoblastic C2C12 cells. Known regulators of BMP2/GDF5 signal transduction failed to explain this context-dependent difference, so a microarray was performed to identify new, cell-specific regulatory components. One identified candidate, the fibroblast growth factor receptor (FGFR)2, was analyzed as a potential new co-receptor to BMP ligands such as GDF5: It was shown that FGFR2 directly binds BMP2, GDF5, and other BMP ligands in vitro, and FGFR2 was able to positively influence BMP2/GDF5-mediated signaling outcome in cell-based assays. This effect was independent of FGFR2s kinase activity, and independent of the downstream mediators SMAD1/5/8, p42/p44, Akt, and p38. The elevated colocalization of BMP receptor type IA and FGFR2 in the presence of BMP2 or GDF5 suggests a signaling complex containing both receptors, akin to other known co-receptors of BMP ligands such as repulsive guidance molecules. This unexpected direct interaction between FGF receptor and BMP ligands potentially opens a new category of BMP signal transduction regulation, as FGFR2 is the second receptor tyrosine kinase to be identified as BMP co-receptor, and more may follow. The integration of cell surface interactions between members of the FGF and BMP family especially may widen the knowledge of such cellular communication mechanisms which involve both growth factor families, including morphogen gradients and osteogenesis, and may in consequence help to improve treatment options in osteochodnral diseases. N2 - Bone morphogenetic proteins (BMPs) sind oft an interzellulärer Kommunikation beteiligt. Sie sind Morphogene, spielen eine Rolle in der Differenzierung von zahlreichen Zelltypen aus verschiedenen Vorgängerzellen während der Entwicklung, und sind an vielen weiteren Beispielen der Zell-Zell-Kommunikation beteiligt: von der Formation einer Körperachse bis hin zur Heilung von Knochenbrüchen, vom Zuckermetabolismus bis zur Angiogenese. Wann immer dasselbe Protein oder dieselbe Proteinfamilie so viele Funktionen erfüllt, bedarf es der Regulation und Feinabstimmung ihrer diversen biologischen Aktivitäten, und BMPs sind zu dem Erzielen zell- und kontextspezifischer Effekte in ihrer Wirkung entsprechend stark reguliert. Nicht in allen Fällen sind die Mechanismen solcher Regulation bisher bekannt. Growth/differentiation factor (GDF)5 (oder BMP14) agiert mit BMP2 auf den chondrogenen ATDC5 Zellen synergistisch, aber antagonisiert BMP2 auf den myoblastischen C2C12 Zellen. Diese kontextabhängige Diskrepanz konnte mithilfe der bekannten Regulatoren von BMP2/GDF5-mediierten Signalen nicht erklärt werden. Daher wurde ein Microarray durchgeführt, um neue, zellspezifische regulatorische Proteine zu identifizieren. Einer der identifizierten Kandidaten, fibroblast growth factor receptor (FGFR)2, wurde auf eine potentielle Funktion als neuer Korezeptor für BMP Liganden wie GDF5 analysiert: Es konnte gezeigt werden, dass FGFR2 BMP2, GDF5 und andere BMP Liganden in vitro direkt binden und die biologische Aktivität von BMP2 und GDF5 in Zellkultursystemen positiv beeinflussen konnte. Diese Beobachtungen waren unabhängig von der Kinaseaktivität des FGFR2, und unabhängig von den intrazellulären Mediatoren SMAD1/5/8, p42/p44, Akt und p38. Die erhöhte Kolokalisation von FGFR2 mit dem BMP Rezeptor IA in der Präsenz von BMP2 oder GDF5 weist darauf hin, dass der entsprechende Signalkomplex möglicherweise beide Rezeptoren gleichzeitig enthält; ähnlich, wie das für andere bekannte Korezeptoren von BMP Liganden wie etwa den repulsive guidance molecules der Fall ist. Die unerwartete direkte Interaktion von einem FGF Rezeptor mit BMP-Liganden ist möglicherweise nur ein Beispiel für einen generelleren Mechanismus. Tatsächlich ist FGFR2 bereits die zweite Rezeptortyrosinkinase, die als BMP-Korezeptor identifiziert wurde, und es ist möglich, dass es noch mehr gibt. Speziell im Bezug auf die FGF-BMP Interaktion bergen die hier dargestellten Ergebnisse Potential zu neuen Erkenntnissen. Die Proteinfamilien dieser beiden Wachstumsfaktoren sind häufiger an demselben zellulären Mechanismen beteiligt; etwa an der Entstehung von Morphogengradienten in der Entwicklung oder an der Osteogenese. Die Interaktion der FGF und BMP Proteinfamilien auf der Zelloberfläche könnte eine wertvolle Ergänzung zu der Untersuchung ihres Zusammenspiels im Zellinneren sein, und könnte in diesem Zusammenhang sogar langfristig die Behandlungsmöglichkeiten von osteochondralen Erkrankungen erweitern. KW - Molekularbiologie KW - FGF signaling KW - BMP signaling Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-192889 ER - TY - JOUR A1 - Feigl, Frederik Fabian A1 - Stahringer, Anika A1 - Peindl, Matthias A1 - Dandekar, Gudrun A1 - Koehl, Ulrike A1 - Fricke, Stephan A1 - Schmiedel, Dominik T1 - Efficient redirection of NK cells by genetic modification with chemokine receptors CCR4 and CCR2B JF - International Journal of Molecular Sciences N2 - Natural killer (NK) cells are a subset of lymphocytes that offer great potential for cancer immunotherapy due to their natural anti-tumor activity and the possibility to safely transplant cells from healthy donors to patients in a clinical setting. However, the efficacy of cell-based immunotherapies using both T and NK cells is often limited by a poor infiltration of immune cells into solid tumors. Importantly, regulatory immune cell subsets are frequently recruited to tumor sites. In this study, we overexpressed two chemokine receptors, CCR4 and CCR2B, that are naturally found on T regulatory cells and tumor-resident monocytes, respectively, on NK cells. Using the NK cell line NK-92 as well as primary NK cells from peripheral blood, we show that genetically engineered NK cells can be efficiently redirected using chemokine receptors from different immune cell lineages and migrate towards chemokines such as CCL22 or CCL2, without impairing the natural effector functions. This approach has the potential to enhance the therapeutic effect of immunotherapies in solid tumors by directing genetically engineered donor NK cells to tumor sites. As a future therapeutic option, the natural anti-tumor activity of NK cells at the tumor sites can be increased by co-expression of chemokine receptors with chimeric antigen receptors (CAR) or T cell receptors (TCR) on NK cells can be performed in the future. KW - chemokine receptor KW - migration KW - immune cell infiltration KW - trafficking KW - NK cells KW - immunotherapy KW - CCR2 KW - CCR4 KW - genetic engineering Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-304049 SN - 1422-0067 VL - 24 IS - 4 ER - TY - JOUR A1 - Koenig, Leopold A1 - Ramme, Anja Patricia A1 - Faust, Daniel A1 - Mayer, Manuela A1 - Flötke, Tobias A1 - Gerhartl, Anna A1 - Brachner, Andreas A1 - Neuhaus, Winfried A1 - Appelt-Menzel, Antje A1 - Metzger, Marco A1 - Marx, Uwe A1 - Dehne, Eva-Maria T1 - A human stem cell-derived brain-liver chip for assessing blood-brain-barrier permeation of pharmaceutical drugs JF - Cells N2 - Significant advancements in the field of preclinical in vitro blood-brain barrier (BBB) models have been achieved in recent years, by developing monolayer-based culture systems towards complex multi-cellular assays. The coupling of those models with other relevant organoid systems to integrate the investigation of blood-brain barrier permeation in the larger picture of drug distribution and metabolization is still missing. Here, we report for the first time the combination of a human induced pluripotent stem cell (hiPSC)-derived blood-brain barrier model with a cortical brain and a liver spheroid model from the same donor in a closed microfluidic system (MPS). The two model compounds atenolol and propranolol were used to measure permeation at the blood–brain barrier and to assess metabolization. Both substances showed an in vivo-like permeation behavior and were metabolized in vitro. Therefore, the novel multi-organ system enabled not only the measurement of parent compound concentrations but also of metabolite distribution at the blood-brain barrier. KW - blood-brain barrier (BBB) model KW - human induced pluripotent stem cells (hiPSCs) KW - microphysiological systems (MPS) KW - multi-organ chip KW - brain–liver chip Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-290375 SN - 2073-4409 VL - 11 IS - 20 ER - TY - JOUR A1 - Wußmann, Maximiliane A1 - Groeber-Becker, Florian Kai A1 - Riedl, Sabrina A1 - Alihodzic, Dina A1 - Padaric, Daniel A1 - Gerlitz, Lisa A1 - Stallinger, Alexander A1 - Liegl-Atzwanger, Bernadette A1 - Zweytick, Dagmar A1 - Rinner, Beate T1 - In model, in vitro and in vivo killing efficacy of antitumor peptide RDP22 on MUG-Mel2, a patient derived cell line of an aggressive melanoma metastasis JF - Biomedicines N2 - The host defense derived peptide was assessed in different model systems with increasing complexity employing the highly aggressive NRAS mutated melanoma metastases cell line MUG-Mel2. Amongst others, fluorescence microscopy and spectroscopy, as well as cell death studies were applied for liposomal, 2D and 3D in vitro models including tumor spheroids without or within skin models and in vivo mouse xenografts. Summarized, MUG-Mel2 cells were shown to significantly expose the negatively charged lipid phosphatidylserine on their plasma membranes, showing they are successfully targeted by RDP22. The peptide was able to induce cell death in MUG-Mel2 2D and 3D cultures, where it was able to kill tumor cells even inside the core of tumor spheroids or inside a melanoma organotypic model. In vitro studies indicated cell death by apoptosis upon peptide treatment with an LC\(_{50}\) of 8.5 µM and seven-fold specificity for the melanoma cell line MUG-Mel2 over normal dermal fibroblasts. In vivo studies in mice xenografts revealed effective tumor regression upon intratumoral peptide injection, indicated by the strong clearance of pigmented tumor cells and tremendous reduction in tumor size and proliferation, which was determined histologically. The peptide RDP22 has clearly shown high potential against the melanoma cell line MUG-Mel2 in vitro and in vivo. KW - melanoma metastases KW - NRAS mutation KW - antitumor peptide KW - tumor model systems KW - phosphatidylserine Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-297525 SN - 2227-9059 VL - 10 IS - 11 ER - TY - JOUR A1 - Eder, Sascha A1 - Hollmann, Claudia A1 - Mandasari, Putri A1 - Wittmann, Pia A1 - Schumacher, Fabian A1 - Kleuser, Burkhard A1 - Fink, Julian A1 - Seibel, Jürgen A1 - Schneider-Schaulies, Jürgen A1 - Stigloher, Christian A1 - Beyersdorf, Niklas A1 - Dembski, Sofia T1 - Synthesis and characterization of ceramide-containing liposomes as membrane models for different T cell subpopulations JF - Journal of Functional Biomaterials N2 - A fine balance of regulatory (T\(_{reg}\)) and conventional CD4\(^+\) T cells (T\(_{conv}\)) is required to prevent harmful immune responses, while at the same time ensuring the development of protective immunity against pathogens. As for many cellular processes, sphingolipid metabolism also crucially modulates the T\(_{reg}\)/T\(_{conv}\) balance. However, our understanding of how sphingolipid metabolism is involved in T cell biology is still evolving and a better characterization of the tools at hand is required to advance the field. Therefore, we established a reductionist liposomal membrane model system to imitate the plasma membrane of mouse T\(_{reg}\) and T\(_{conv}\) with regards to their ceramide content. We found that the capacity of membranes to incorporate externally added azide-functionalized ceramide positively correlated with the ceramide content of the liposomes. Moreover, we studied the impact of the different liposomal preparations on primary mouse splenocytes in vitro. The addition of liposomes to resting, but not activated, splenocytes maintained viability with liposomes containing high amounts of C\(_{16}\)-ceramide being most efficient. Our data thus suggest that differences in ceramide post-incorporation into T\(_{reg}\) and T\(_{conv}\) reflect differences in the ceramide content of cellular membranes. KW - liposome KW - ceramide KW - cell membrane model Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-286130 SN - 2079-4983 VL - 13 IS - 3 ER - TY - THES A1 - Sivarajan, Rinu T1 - Engineered Human Airway Mucosa for Modelling Respiratory Infections: Characterisation and Applications T1 - Gewebemodelle der humanen Atemwegsschleimhaut für Infektionsstudien der Atemwege: Charakterisierung und Anwendungen N2 - Respiratory infections are a significant health concern worldwide, and the airway epithelium plays a crucial role in regulating airway function and modulating inflammatory processes. However, most studies on respiratory infections have used cell lines or animal models, which may not accurately reflect native physiological conditions, especially regarding human pathogens. We generated human nasal mucosa (hNM) and tracheobronchial mucosa (hTM) models to address this issue using primary human airway epithelial cells and fibroblasts. We characterised these human airway tissue models (hAM) using high speed video microscopy, single cell RNA sequencing, immunofluorescence staining, and ultrastructural analyses that revealed their complexity and cellular heterogeneity. We demonstrated that Bordetella pertussis virulence factor adenylate cyclase toxin (CyaA) elevated the intracellular production of cyclic adenosine monophosphate (cAMP) and secretion of interleukin (IL) 6, IL 8, and human beta defensin 2 (HBD2). In addition, we compared the responses of the tissue models from two different anatomical sites (the upper and lower respiratory mucosa) and are the first to report such differential susceptibility towards CyaA using 3D primary airway cell derivedmodels. The effect of toxin treatment on the epithelial barrier integrity of the tissue models was assessed by measuring the flux of fluorescein isothiocyanate (FITC)-conjugated dextran across the models. Though we observed a cell type specific response with respect to intracellular cAMP production and IL 6, IL 8, and HBD2 secretion in the models treated with CyaA on the apical side, the epithelial membrane barrier integrity was not compromised. In addition to toxin studies, using these characterised models, we established viral infection studies for Influenza A (IAV), Respiratory Syncytial Virus subtype B (RSV), and severe acute respiratory syndrome coronavirus 2. We visualised the morphological consequences of the viral infection using ultrastructural analysis and immunofluorescence. We verified the effective infection in hAM by measuring the viral RNA using RTqPCR and detected elevated cytokine levels in response to infection using biochemical assays. In contrast to cell lines, studies on viral infection using hAM demonstrated that infected areas were localized to specific regions. This led to the formation of infection hotspots, which were more likely to occur when models derived from different donors were infected separately with all three viruses. IAV infected tissue models replicate the clinical findings of H1N1 infection, such as mucus hypersecretion, cytokine release, and infection-associated epithelial cell damage.Finally, we paved the steps towards understanding the impact of IAV infection on disease models. We generated hTM from biopsies obtained from chronic obstructive pulmonary disease (COPD) patients. As a model to study the impact of COPD on respiratory infections, considering the increase in COPD cases in the past decade and the continued predicted increase in the future. We established the IAV infection protocol to capture the early infection signatures in non-COPD and COPD conditions using scRNA-seq. We investigated the infection kinetics of IAV (H1N1-clinical isolate) in hTM and found that viruses were actively released approximately 24 hours post infection. The scRNA-seq data from the hTM derived from non-COPD and COPD patients, revealed lower levels of SCGB1A1 (club cell marker) gene expression in the COPD-control group compared to the non-COPD control group, consistent with previous clinical studies. Furthermore, we observed that IAV infection elevated SCGB1A1 gene expression especially in secretory cells of both the COPD and non COPD groups. This may imply the role of club cells as early responders during IAV infection providing epithelial repair, regeneration, and resistance to spread of infection. This is the first study to address the molecular diversity in COPD and non-COPD disease models infected with IAV investigating the early response (6 h) of specific cell types in the human lower airways towards infection using scRNA-seq. These findings highlight the potential interplay between COPD, IAV infection, and altered vulnerability to other viral infections and respiratory illnesses making the hAM applicable for addressing more specific research questions and validating potential targets, such as SCGB1A1 targeted therapy for chronic lung diseases. Our findings demonstrate the potential of the hNM and hTM for investigating respiratory infections, innate immune responses, and trained immunity in non-immune cells. Our experiments show that hAM may represent a more accurate representation of the native physiological condition and improve our understanding of the disease mechanisms. Furthermore, these models promote non-animal research as they replicate clinical findings. We can further increase their complexity by incorporating dynamic flow systems and immune cells catered to the research question. N2 - Infektionen der Atemwege stellen weltweit ein erhebliches Gesundheitsproblem dar, und das Epithel der Atemwege spielt eine entscheidende Rolle bei der Regulierung der Atemwegsfunktion und der Steuerung von Entzündungsprozessen. In den meisten Studien zu Atemwegsinfektionen wurden jedoch Zelllinien oder Tiermodelle verwendet, die die natürlichen physiologischen Bedingungen nicht genau widerspiegeln, insbesondere im Hinblick auf menschliche Krankheitserreger. Wir haben Modelle der menschlichen Nasenschleimhaut (hNM) und der Tracheobronchialschleimhaut (hTM) entwickelt, um dieses Problem mit primären menschlichen Epithelzellen und Fibroblasten der Atemwege zu lösen. Wir charakterisierten diese humanen Atemwegsgewebemodelle (hAM) mithilfe von Hochgeschwindigkeits-Videomikroskopie, Einzelzell-RNA-Sequenzierung (scRNA- seq), Immunfluoreszenzfärbung und ultrastrukturellen Analysen, die ihre Komplexität und zelluläre Heterogenität offenlegten. Wir konnten zeigen, dass der Virulenzfaktor Adenylatzyklasetoxin (CyaA) von Bordetella pertussis die intrazelluläre Produktion von zyklischem Adenosinmonophosphat (cAMP) und die Sekretion von Interleukin (IL)-6, IL-8 und humanem Beta-Defensin-2 (HBD-2) erhöht. Darüber hinaus verglichen wir die Reaktionen der Gewebemodelle aus zwei verschiedenen anatomischen Bereichen (obere und untere Atemwegsschleimhaut) und sind die ersten, die eine solche unterschiedliche Empfindlichkeit gegenüber CyaA anhand von 3D-Modellen aus Atemwegsprimärzellen berichten. Die Auswirkung der Toxinbehandlung auf die epitheliale Barriereintegrität der Gewebemodelle wurde durch Messung des Flusses von Fluorescein-Isothiocyanat (FITC)-konjugiertem Dextran durch die Modelle ermittelt. Obwohl wir eine zelltypspezifische Reaktion in Bezug auf die intrazelluläre cAMP-Produktion und die Sekretion von IL-6, IL-8 und HBD-2 in den mit CyaA behandelten Modellen auf der apikalen Seite beobachteten, war die Integrität der Epithelmembranbarriere nicht beeinträchtigt. Anhand dieser gut charakterisierten Modelle haben wir Virusinfektionsstudien für Influenza A (IAV), das respiratorische Synzytialvirus Subtyp B (RSV) und das schwere akute respiratorische Syndrom Coronavirus 2 (SARS-CoV-2) durchgeführt. Wir haben die morphologischen Folgen der Virusinfektion mithilfe von Ultrastrukturanalysen und Immunfluoreszenz sichtbar gemacht. Wir verifizierten die effektive Infektion in hAM durch Messung der viralen RNA mittels RT-qPCR und wiesen erhöhte IL-6- und IL-8- Spiegel als Reaktion auf die Infektion mittels biochemischer Assays nach. Im Gegensatz zu Zelllinien zeigten die Virusinfektionsstudien mit hAM, dass die infizierten Bereiche auf bestimmte Regionen beschränkt waren, was zu Infektions-Hotspots führte, die eher bei Modellen auftraten, die von verschiedenen Spendern stammten und mit allen drei Viren separat infiziert waren. IAV-infizierte Gewebemodelle replizieren die klinischen Befunde einer H1N1-Infektion, wie beispielsweise Schleimhypersekretion, Zytokinfreisetzung und infektionsassoziierte Epithelzellschäden. Schließlich haben wir die Auswirkungen einer IAV-Infektion auf Krankheitsmodelle untersucht. Dazu haben wir hTM aus Biopsien von Patienten mit chronisch obstruktiver Lungenerkrankung (COPD) isoliert. In Anbetracht der Zunahme an COPD-Fällen in den letzten zehn Jahren und der prognostizierten weiteren Zunahme in der Zukunft dient dies als Modell zur Untersuchung der Auswirkungen von COPD auf Atemwegsinfektionen. Wir erstellten ein IAV-Infektionsprotokoll, um die frühen Infektionssignaturen bei nicht-COPD- und COPD-Patienten mit Hilfe von scRNA-seq zu erfassen. Bei der untersuchten der Infektionskinetiken von IAV (klinisches H1N1- Isolat) in hTM stellten wir fest, dass die Viren etwa 24 Stunden nach der Infektion aktiv freigesetzt wurden. Die scRNA-seq-Daten von hTM, zeigten eine geringere Genexpression von SCGB1A1 (Clubzellmarker) in der COPD-Kontrollgruppe verglichen mit der nicht-COPD-Kontrollgruppe, was mit früheren klinischen Studien übereinstimmt. Darüber hinaus stellten wir fest, dass eine IAV-Infektion die SCGB1A1- Genexpression insbesondere in den sekretorischen Zellen beider Gruppen erhöhte. Dies könnte darauf hindeuten, dass Keimzellen während einer IAV-Infektion früh aktiviert werden und damit eventuell für die Reparatur und Regeneration des Epithels sorgen sowie der Ausbreitung der Infektion entgegenwirken. Hierbei handelt es sich um die erste Studie, die sich mit der molekularen Vielfalt in mit IAV infizierten COPD- und nicht-COPD-Modellen befasst und dabei ein besonderes Augenmerk auf die frühe Reaktion (6 Stunden) spezifischer Zelltypen der unteren Atemwege legt und diese mittels scRNA-seq untersucht. Diese Ergebnisse unterstreichen das potenzielle Zusammenspiel zwischen COPD, IAV-Infektion und der Anfälligkeit für andere Virusinfektionen sowie anderer Atemwegserkrankungen. Das zeight, dass die hAM für die Beantwortung spezifischerer Forschungsfragen und die Validierung potenzieller Zielstrukturen, wie z. B. einer gezielten SCGB1A1-Therapie für chronische Lungenerkrankungen, geeignet sind. Unsere Ergebnisse zeigen das Potenzial von hNM und hTM für die Untersuchung von Atemwegsinfektionen, angeborenen Immunreaktionen und ausgebildeter Immunität in nicht-immunen Zellen. Mit unseren Experimenten haben wir gezeigt, dass hAM eine genauere Darstellung des natürlichen physiologischen Zustands darstellen und unser Verständnis der Krankheitsmechanismen verbessern kann. Darüber hinaus könnten diese Modelle die Forschung ohne Tierversuche fördern, da sie dazu neigen, klinische Befunde zu replizieren. Wir können ihre Komplexität weiter erhöhen, indem wir dynamische Strömungssysteme und auf die Forschungsfrage abgestimmte Immunzellen einbeziehen. KW - Atemwege KW - Gewebemodelle KW - Atemwegsschleimhaut KW - Infektionsstudien Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-322414 ER - TY - THES A1 - Malkmus, Christoph T1 - Establishment of a 3D \(in\) \(vitro\) skin culture system for the obligatory human parasite \(Onchocerca\) \(volvulus\) T1 - Etablierung eines 3D-\(in\)-\(vitro\)-Hautkultursystems für den obligat humanen Parasiten \(Onchocerca\) \(volvulus\) N2 - Onchocerciasis, the world's second-leading infectious cause of blindness in humans –prevalent in Sub-Saharan Africa – is caused by Onchocerca volvulus (O. volvulus), an obligatory human parasitic filarial worm. Commonly known as river blindness, onchocerciasis is being targeted for elimination through ivermectin-based mass drug administration programs. However, ivermectin does not kill adult parasites, which can live and reproduce for more than 15 years within the human host. These impediments heighten the need for a deeper understanding of parasite biology and parasite-human host interactions, coupled with research into the development of new tools – macrofilaricidal drugs, diagnostics, and vaccines. Humans are the only definitive host for O. volvulus. Hence, no small-animal models exist for propagating the full life cycle of O. volvulus, so the adult parasites must be obtained surgically from subcutaneous nodules. A two-dimensional (2D) culture system allows that O. volvulus larvae develop from the vector-derived infective stage larvae (L3) in vitro to the early pre-adult L5 stages. As problematic, the in vitro development of O. volvulus to adult worms has so far proved infeasible. We hypothesized that an increased biological complexity of a three-dimensional (3D) culture system will support the development of O. volvulus larvae in vitro. Thus, we aimed to translate crucial factors of the in vivo environment of the developing worms into a culture system based on human skin. The proposed tissue model should contain 1. skinspecific extracellular matrix, 2. skin-specific cells, and 3. enable a direct contact of larvae and tissue components. For the achievement, a novel adipose tissue model was developed and integrated to a multilayered skin tissue comprised of epidermis, dermis and subcutis. Challenges of the direct culture within a 3D tissue model hindered the application of the three-layered skin tissue. However, the indirect coculture of larvae and skin models supported the growth of fourth stage (L4) larvae in vitro. The direct culture of L4 and adipose tissue strongly improved the larvae survival. Furthermore, the results revealed important cues that might represent the initial encapsulation of the developing worm within nodular tissue. These results demonstrate that tissue engineered 3D tissues represent an appropriate in vitro environment for the maintenance and examination of O. volvulus larvae. N2 - Onchozerkose, die weltweit zweithäufigste infektionsbedingte Ursache für Erblindung von Menschen, wird durch Onchocerca volvulus (O. volvulus) verursacht, ein parasitärer Fadenwurm. Die allgemein als Flussblindheit bekannte Onchozerkose wird mit dem Medikament Ivermectin bekämpft, das jedoch nicht die adulten Parasiten tötet, die im Menschen mehr als 15 Jahre lang leben und sich vermehren. Ein tieferes Verständnis der Biologie des Parasiten und dessen Interaktionen im menschlichen Wirt ist für die Erforschung und Entwicklung neuer Instrumente – makrofilarizide Medikamente, Diagnostika und Impfstoffe – erforderlich. Da der Mensch der einzige Endwirt für O. volvulus ist, gibt es keine Tiermodelle für dessen Vermehrung. Zu Forschungszwecken werden adulte Würmer daher chirurgisch aus subkutanen Knoten erkrankter Individuen gewonnen. Ein zweidimensionales (2D) Kultursystem ermöglicht die Entwicklung von aus dem Vektor isolierten infektiösen O. volvulus-Larven (L3) bis zu einem frühen präadulten Stadium. Als problematisch erwies sich bisher die in vitro Entwicklung von O. volvulus bis zum adulten Wurm. Unsere Hypothese ist, dass eine erhöhte biologische Komplexität des Kultursystems die Entwicklung von O. volvulus-Larven in vitro unterstützt. Daher wurden entscheidende Faktoren der in vivo-Umgebung entwickelnder Larven – die menschliche Haut – auf ein dreidimensionales (3D) Kultursystem übertragen. Dieses Kultursystem sollte 1. Haut-spezifische extrazelluläre Matrix enthalten, 2. hautspezifische Zellen und 3. einen direkten Kontakt zwischen Larven und Gewebekomponenten ermöglichen. Dafür wurde ein neuartiges Fettgewebemodell entwickelt, das in ein mehrschichtiges Hautgewebe integriert wurde – bestehend aus Epidermis, Dermis und subkutanem Fettgewebe. Die Anwendung des dreischichtigen Hautgewebes als direktes Kultursystem wurde durch technische Herausforderungen verhindert. Jedoch unterstützte die indirekte Ko-Kultur von Hautmodellen das Wachstum der Larven (L4) in vitro. Die direkte Kultur mit dem Fettgewebemodell verbesserte die Viabilität der Larven signifikant. Darüber hinaus konnten Anzeichen für eine beginnende Verkapselung der Larven durch humane Zellen und Matrix gezeigt werden kann. Die Ergebnisse demonstrieren, dass humane Gewebemodelle eine angemessene in vitro-Umgebung für die Kultur und die Erforschung von O. volvulus darstellen. KW - Tissue Engineering KW - Humanparasitologie KW - In-vitro-Kultur KW - Onchozerkose KW - Multilayered skin tissue model KW - Onchocerca volvulus KW - Skin Tissue Engineering KW - Parasitology Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-317171 ER - TY - JOUR A1 - Al-Hejailan, Reem A1 - Weigel, Tobias A1 - Schürlein, Sebastian A1 - Berger, Constantin A1 - Al-Mohanna, Futwan A1 - Hansmann, Jan T1 - Decellularization of full heart — optimizing the classical sodium-dodecyl-sulfate-based decellularization protocol JF - Bioengineering N2 - Compared to cell therapy, where cells are injected into a defect region, the treatment of heart infarction with cells seeded in a vascularized scaffold bears advantages, such as an immediate nutrient supply or a controllable and persistent localization of cells. For this purpose, decellularized native tissues are a preferable choice as they provide an in vivo-like microenvironment. However, the quality of such scaffolds strongly depends on the decellularization process. Therefore, two protocols based on sodium dodecyl sulfate or sodium deoxycholate were tailored and optimized for the decellularization of a porcine heart. The obtained scaffolds were tested for their applicability to generate vascularized cardiac patches. Decellularization with sodium dodecyl sulfate was found to be more suitable and resulted in scaffolds with a low amount of DNA, a highly preserved extracellular matrix composition, and structure shown by GAG quantification and immunohistochemistry. After seeding human endothelial cells into the vasculature, a coagulation assay demonstrated the functionality of the endothelial cells to minimize the clotting of blood. Human-induced pluripotent-stem-cell-derived cardiomyocytes in co-culture with fibroblasts and mesenchymal stem cells transferred the scaffold into a vascularized cardiac patch spontaneously contracting with a frequency of 25.61 ± 5.99 beats/min for over 16 weeks. The customized decellularization protocol based on sodium dodecyl sulfate renders a step towards a preclinical evaluation of the scaffolds. KW - tissue engineering KW - decellularization KW - vascularized scaffold KW - cardiac patch KW - dynamic culture Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-270781 SN - 2306-5354 VL - 9 IS - 4 ER - TY - JOUR A1 - Christ, Bastian A1 - Glaubitt, Walther A1 - Berberich, Katrin A1 - Weigel, Tobias A1 - Probst, Jörn A1 - Sextl, Gerhard A1 - Dembski, Sofia T1 - Sol-gel-derived fibers based on amorphous α-hydroxy-carboxylate-modified titanium(IV) oxide as a 3-dimensional scaffold JF - Materials N2 - The development of novel fibrous biomaterials and further processing of medical devices is still challenging. For instance, titanium(IV) oxide is a well-established biocompatible material, and the synthesis of TiO\(_x\) particles and coatings via the sol-gel process has frequently been published. However, synthesis protocols of sol-gel-derived TiO\(_x\) fibers are hardly known. In this publication, the authors present a synthesis and fabrication of purely sol-gel-derived TiO\(_x\) fiber fleeces starting from the liquid sol-gel precursor titanium ethylate (TEOT). Here, the α-hydroxy-carboxylic acid lactic acid (LA) was used as a chelating ligand to reduce the reactivity towards hydrolysis of TEOT enabling a spinnable sol. The resulting fibers were processed into a non-woven fleece, characterized with FTIR, \(^{13}\)C-MAS-NMR, XRD, and screened with regard to their stability in physiological solution. They revealed an unexpected dependency between the LA content and the dissolution behavior. Finally, in vitro cell culture experiments proved their potential suitability as an open-mesh structured scaffold material, even for challenging applications such as therapeutic medicinal products (ATMPs). KW - sol-gel chemistry KW - scaffold KW - dry spinning Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-270694 SN - 1996-1944 VL - 15 IS - 8 ER - TY - JOUR A1 - Schneider, Verena A1 - Kruse, Daniel A1 - Bernardelli de Mattos, Ives A1 - Zöphel, Saskia A1 - Tiltmann, Kendra-Kathrin A1 - Reigl, Amelie A1 - Khan, Sarah A1 - Funk, Martin A1 - Bodenschatz, Karl A1 - Groeber-Becker, Florian T1 - A 3D in vitro model for burn wounds: monitoring of regeneration on the epidermal level JF - Biomedicines N2 - Burns affect millions every year and a model to mimic the pathophysiology of such injuries in detail is required to better understand regeneration. The current gold standard for studying burn wounds are animal models, which are under criticism due to ethical considerations and a limited predictiveness. Here, we present a three-dimensional burn model, based on an open-source model, to monitor wound healing on the epidermal level. Skin equivalents were burned, using a preheated metal cylinder. The healing process was monitored regarding histomorphology, metabolic changes, inflammatory response and reepithelialization for 14 days. During this time, the wound size decreased from 25% to 5% of the model area and the inflammatory response (IL-1β, IL-6 and IL-8) showed a comparable course to wounding and healing in vivo. Additionally, the topical application of 5% dexpanthenol enhanced tissue morphology and the number of proliferative keratinocytes in the newly formed epidermis, but did not influence the overall reepithelialization rate. In summary, the model showed a comparable healing process to in vivo, and thus, offers the opportunity to better understand the physiology of thermal burn wound healing on the keratinocyte level. KW - skin models KW - open-source epidermis KW - wound model KW - impedance spectroscopy KW - wound physiology KW - burn wound Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-246068 SN - 2227-9059 VL - 9 IS - 9 ER - TY - THES A1 - Berger, Constantin T1 - Influence of the pancreatic extracellular matrix on pancreatic differentiation of human induced pluripotent stem cells and establishment of 3D organ models T1 - Einfluss der Extrazellulärmatrix des Pankreas auf die pankreatische Differenzierung humaner induziert pluripotenter Stammzellen und Etablierung von 3D Organmodellen N2 - Der Diabetes mellitus bezeichnet eine bislang unheilbare, metabolische Erkrankung, die mit schwerwiegenden Folgeerkrankungen einhergeht. Unter den potentiellen Strategien zur Heilung von Diabetes mellitus stellt die in vitro Generierung adulter β-Zellen des endokrinen Pankreas aus humanen induziert pluripotenten Stammzellen (hiPS) einen vielversprechenden Ansatz dar. Zwar ermöglichen bisherige Protokolle die Herstellung von Zellen mit einem β-Zell-ähnlichen Charakter, jedoch zeigen diese eine zunächst eingeschränkte Funktion, die sich erst im Verlauf einer vollständigen, durch Transplantation induzierten, Reifung der Zellen, normalisiert. Vorangegangene Studien zeigen, dass sich die Extrazellularmatrix (EZM) von Geweben positiv auf das Überleben und die Funktion adulter, isolierter Langerhans-Inseln des Pankreas auswirkt. Vor diesem Hintergrund stellt sich die Frage, ob Einflüsse der organspezifischen EZM die finale Reifung in vitro hergestellter β-Zellen herbeiführen können. Um diese Hypothese zu testen, wurde im Rahmen der vorliegenden Studie die Wirkung der pankreatischen EZM auf die in vitro Differenzierung von hiPS zu endokrinen Zellen des Pankreas untersucht sowie die Eignung der pankreatischen EZM zur Etablierung eines Organmodells des endokrinen Pankreas erprobt. Hierzu wurde zunächst eine pankreasspezifische EZM-Trägerstruktur (PanMa) durch Dezellularisierung von Pankreaten des Schweins mittels Natriumdesoxycholat hergestellt. Die generierte PanMa wurde anhand (immun-) histologischer Färbungen, Rasterelektronen-mikroskopie, Feststellung des DNA-Gehalts sowie durch Versuche zur Perfusion und Wiederbesiedelung mit Endothelzellen eingehend charakterisiert. Zudem wurde auf Basis der ermittelten Daten ein Bewertungssystem (PancScore) zur standardisierten Herstellung der PanMa entwickelt. Als Nächstes wurde untersucht, ob die PanMa über gewebespezifische EZM-Merkmale verfügt. Zu diesem Zweck wurden biophysikalische und strukturelle Eigenschaften wie Festigkeit, Porosität und Hygroskopie mittels rheologischer Messungen sowie Versuchen zur Teilchendiffusion und zum Wasserbindungsverhalten bestimmt und mit azellulären EZMs des Dünndarms (SISser) und der Lunge (LungMa) verglichen. Nach der eingehenden Analyse der PanMa wurde deren Effekt auf die Eigenschaften von Stammzellen sowie auf frühe Stadien der Stammzellentwicklung untersucht. Hierzu wurde die PanMa als Trägerstruktur während der Erhaltung sowie der spontanen Differenzierung von hiPS verwendet und der Einfluss der PanMa anhand von Genexpressionsanalysen und immunhistochemischer Färbungen analysiert. In einem nächsten Schritt wurde die Wirkung der PanMa auf die Differenzierung von hiPS zu endokrinen Zellen des Pankreas untersucht. Hierfür wurde die PanMa zum einen in flüssiger Form als Mediumzusatz sowie als solide Trägerstruktur während der Differenzierung von hiPS zu hormonexprimierenden Zellen (Rezania et al. 2012; Rezania et al. 2014) oder maturierenden β-Zellen verwendet (Rezania et al. 2014). Der Effekt der PanMa wurde anhand von Genexpressions-analysen, immunhistochemischer Färbungen und Analysen zur Glukose-abhängigen Insulinsekretion untersucht. In einem letzten Teil der Studie wurde die Eignung der PanMa zur verlängerten Kultivierung von hiPS-abgeleiteten endokrinen Zellen des Pankreas im Hinblick auf die Etablierung eines Organmodells des endokrinen Pankreas getestet. Hierzu wurde die PanMa zu einem Hydrogel weiterverarbeitet, welches zur Einkapselung und Kultivierung von hiPS-abgeleiteten hormonexprimierenden Zellen eingesetzt wurde. Um die Auswirkungen der Hydrogel-Kultur nachzuvollziehen, wurden die kultivierten Zellen mittels Genexpression, immun-histochemischer Färbungen und Analysen zur Glukose-abhängigen Insulinsekretion untersucht. Mittels Dezellularisierung porziner Pankreaten konnte eine zellfreie, pankreasspezifische EZM-Trägerstruktur mit geringen Restbeständen an DNA sowie einer weitgehend erhaltenen Mikro- und Ultrastruktur mit typischen EZM-Komponenten wie Kollagen I, III und IV hergestellt werden. Im Rahmen der Besiedelung arterieller Gefäße mit humanen Endothelzellen wurde die Zellkompatibilität der hergestellten PanMa sowie eine weitgehende Unversehrtheit der Gefäßstrukturen nachgewiesen. Verglichen zu SISser und LungMa zeichnete sich die PanMa als eine relativ weiche, stark wasserbindende, faserbasierte Struktur aus. Weiterhin konnten Hinweise für einen Effekt der PanMa auf den Stammzellcharakter und die frühe Entwicklung von hiPS beobachtet werden. Hierbei führte die Erhaltung von hiPS auf der PanMa zu einer leicht veränderten Expression von Genen des Kernpluripotenznetzwerks sowie zu einem reduziertem NANOG-Proteinsignal. Einhergehend mit diesen Beobachtungen zeigten hiPS während spontaner Differenzierung auf der PanMa eine verstärkte endodermale Entwicklung. Im Verlauf der pankreatischen Differenzierung führte die Kultivierung auf der PanMa zu einer signifikant verringerten Expression von Glukagon und Somatostatin, während die Expression von Insulin unverändert blieb, was auf eine Verminderung endokriner α- und δ-Zellen hinweist. Diese Veränderung äußerte sich jedoch nicht in einer verbesserten Glukose-abhängigen Insulinsekretion der generierten hormonexprimierenden Zellen. Unter Anwendung der PanMa als Hydrogel konnten hormonexprimierenden Zellen über einen verlängerten Zeitraum kultiviert werden. Nach 21 Tagen in Kultur zeigten die eingekapselten hormonexprimierenden Zellen eine unverändert hohe Viabilität, wiesen allerdings bereits eine erste veränderte Zellanordnung sowie eine leicht verminderte Glukose-abhängige Insulinsekretion auf. Zusammengefasst konnte in dieser Studie ein biologischer Effekt gewebespezifischer EZM-Merkmale auf die Differenzierung von hiPS nachgewiesen werden. Darüber hinaus weisen die Daten auf eine relevante Funktion der EZM im Rahmen der endokrinen Spezifizierung von hiPS während der pankreatischen Differenzierung hin. Diese Beobachtungen verdeutlichen die eminente Rolle der EZM in der Herstellung von funktionalen hiPS-abgeleiteten Zellen und plädieren für eine stärkere Einbindung organspezifischer EZMs im Bereich des Tissue Engineering und der klinischen Translation in der Regenerativen Medizin. N2 - Diabetes mellitus is an incurable, metabolic disease, which is associated with severe long-term complications. The in vitro generation of pancreatic β-cells from human induced pluripotent stem cells (hiPSCs) represent a promising strategy for a curative therapy of diabetes mellitus. However, current differentiation strategies largely fail to produce functional β-cells in vitro and require an additional in vivo transplantation to achieve terminal maturation. Previous studies demonstrated a beneficial effect of the extracellular matrix (ECM) on the survival and sustained function of adult, isolated islets of Langerhans. This raises the question whether organ-specific cell-ECM interactions might represent the missing link driving the final stage of β-cell development. In order to address this issue, this study investigated the impact of the pancreas ECM on in vitro β-cell differentiation and its use for the establishment of a pancreatic endocrine organ model. To this purpose, a pancreas-specific ECM scaffolds (PanMa) was derived from porcine pancreata using whole organ decellularization with Sodium Deoxycholate. In a first step, the generated PanMa was thoroughly characterized using (immuno-) histological stainings, scanning electron microscopy and DNA quantification as well as perfusion and recellularization experiments with endothelial cells. Based on these data, a scoring system (PancScore) for a standardized PanMa generation was developed. Next, the generated PanMa was tested for the presence of tissue-specific ECM features. Therefore, the biophysical and physico-structural characteristics, such as rigidity, porosity and hygroscopy were analyzed using rheological measurements, particle diffusion analyses as well as a water evaporation assay and compared to the properties of ECM scaffolds derived from porcine small intestine (SISser) and lung (LungMa) to examine organ-specific scaffold cues. Following the thorough scaffold characterization, the impact of the PanMa on pluripotency and early development of hiPSC was studied. To this purpose, gene and protein expression of hiPSCs during maintenance culture and spontaneous differentiation on the PanMa were assessed. In a next step, the impact of the PanMa on the pancreatic endocrine differentiation of hiPSCs was tested. Therefore, the PanMa was used as a liquid media supplement or as a solid scaffold during the directed differentiation of hiPSC towards either pancreatic hormone-expressing cells (Rezania et al. 2012; Rezania et al. 2014) or maturing β-cells (Rezania et al. 2014). The impact of the PanMa on the generated cells was examined by gene expression analysis, immunohistochemical staining of important stage markers, as well as glucose stimulated insulin secretion assays. In a last part of this study, the potential of the PanMa for the prolonged culture of hiPSC derived endocrine cells for the establishment of an in vitro organ model of the endocrine pancreas was examined. Therefore, a PanMa-derived hydrogel was generated and used for the encapsulation and culture of hiPSC-derived hormone-expressing cells (HECs). The influence of the PanMa-hydrogel culture was analyzed on gene, protein and functional level by gene expression analysis, immunohistochemical stainings and glucose stimulated insulin secretion. Whole organ decellularization resulted in the generation of an acellular PanMa scaffold, with low amounts of residual DNA and a preserved ECM micro- and ultrastructure, including important ECM components, such as collagen I, III and IV. Furthermore, the PanMa maintained an intact vessel system and was verified as cytocompatible as demonstrated by the successful recellularization of the arterial system with human endothelial cells. In comparison to SISser and LungMa, the PanMa was characterized as a relative soft, hygroscopic scaffold with a collagen-fiber based structure. Furthermore, the findings indicate that the ECM-specific properties have a relevant effect on the stem cell character and early multi-lineage decisions of hiPSCs. In this regard, maintenance of hiPSCs on the PanMa resulted in a slightly changed expression of pluripotency genes (OCT4, SOX2 and NANOG) and a weak immunohistochemical signal for NANOG protein, indicating a PanMa-dependent impact on hiPSC pluripotency. Strikingly, this presumption was corroborated by the finding that culture on the PanMa promoted an endodermal development of hiPSCs during spontaneous differentiation. In line with that, pancreatic differentiation of hiPSC on both the PanMa and SISser resulted in a significant decrease of glucagon and somatostatin gene expression as well as an unaltered insulin expression, suggesting an ECM-driven suppression of the development of non β-cell endocrine cells. However, this change did not result in an improved glucose stimulated insulin secretion of the generated HECs. Moreover, use of the PanMa as a hydrogel allowed prolonged culture of these cells in a defined culture system. HECs were viable after 21 days of culture, however already showed an altered islet morphology as well as a slightly decreased glucose stimulated insulin secretion. Altogether, this study demonstrates a relevant biological effect of tissue specific ECM cues on the in vitro differentiation of hiPSCs. More specifically, the data indicate an involvement of the ECM in the endocrine commitment of hiPSC-derived pancreatic cells during directed differentiation highlighting the ECM as an important regulator of pancreatic development. Collectively, these findings emphasize the relevance of the ECM for the fabrication of functional hiPSC-derived cell types and suggest a much stronger consideration of organ specific ECM cues for tissue engineering approaches as well as clinical translation in regenerative medicine. KW - Bauchspeicheldrüse KW - Induzierte pluripotente Stammzelle KW - Bindegewebe KW - Regenerative Medizin KW - Zelldifferenzierung KW - Extrazellulärmatrix KW - pancreas KW - Pankreas KW - Induced pluripotent stem cells KW - extracellular matrix KW - pancreatic differentiation KW - beta cell KW - tissue engineering KW - regenerative medicine Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-241268 ER - TY - JOUR A1 - Tuca, Alexandru-Cristian A1 - Bernardelli de Mattos, Ives A1 - Funk, Martin A1 - Winter, Raimund A1 - Palackic, Alen A1 - Groeber-Becker, Florian A1 - Kruse, Daniel A1 - Kukla, Fabian A1 - Lemarchand, Thomas A1 - Kamolz, Lars-Peter T1 - Orchestrating the dermal/epidermal tissue ratio during wound healing by controlling the moisture content JF - Biomedicines N2 - A balanced and moist wound environment and surface increases the effect of various growth factors, cytokines, and chemokines, stimulating cell growth and wound healing. Considering this fact, we tested in vitro and in vivo water evaporation rates from the cellulose dressing epicite\(^{hydro}\) when combined with different secondary dressings as well as the resulting wound healing efficacy in a porcine donor site model. The aim of this study was to evaluate how the different rates of water evaporation affected wound healing efficacy. To this end, epicite\(^{hydro}\) primary dressing, in combination with different secondary dressing materials (cotton gauze, JELONET\(^◊\), AQUACEL\(^®\) Extra\(^™\), and OPSITE\(^◊\) Flexifix), was placed on 3 × 3 cm-sized dermatome wounds with a depth of 1.2 mm on the flanks of domestic pigs. The healing process was analyzed histologically and quantified by morphometry. High water evaporation rates by using the correct secondary dressing, such as cotton gauze, favored a better re-epithelialization in comparison with the low water evaporation resulting from an occlusive secondary dressing, which favored the formation of a new and intact dermal tissue that nearly fully replaced all the dermis that was removed during wounding. This newly available evidence may be of great benefit to clinical wound management. KW - bacterial cellulose dressing KW - secondary wound dressing KW - moisture balance KW - wound healing KW - in vivo experiments Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-275115 SN - 2227-9059 VL - 10 IS - 6 ER - TY - JOUR A1 - Kaltdorf, Martin A1 - Breitenbach, Tim A1 - Karl, Stefan A1 - Fuchs, Maximilian A1 - Kessie, David Komla A1 - Psota, Eric A1 - Prelog, Martina A1 - Sarukhanyan, Edita A1 - Ebert, Regina A1 - Jakob, Franz A1 - Dandekar, Gudrun A1 - Naseem, Muhammad A1 - Liang, Chunguang A1 - Dandekar, Thomas T1 - Software JimenaE allows efficient dynamic simulations of Boolean networks, centrality and system state analysis JF - Scientific Reports N2 - The signal modelling framework JimenaE simulates dynamically Boolean networks. In contrast to SQUAD, there is systematic and not just heuristic calculation of all system states. These specific features are not present in CellNetAnalyzer and BoolNet. JimenaE is an expert extension of Jimena, with new optimized code, network conversion into different formats, rapid convergence both for system state calculation as well as for all three network centralities. It allows higher accuracy in determining network states and allows to dissect networks and identification of network control type and amount for each protein with high accuracy. Biological examples demonstrate this: (i) High plasticity of mesenchymal stromal cells for differentiation into chondrocytes, osteoblasts and adipocytes and differentiation-specific network control focusses on wnt-, TGF-beta and PPAR-gamma signaling. JimenaE allows to study individual proteins, removal or adding interactions (or autocrine loops) and accurately quantifies effects as well as number of system states. (ii) Dynamical modelling of cell–cell interactions of plant Arapidopsis thaliana against Pseudomonas syringae DC3000: We analyze for the first time the pathogen perspective and its interaction with the host. We next provide a detailed analysis on how plant hormonal regulation stimulates specific proteins and who and which protein has which type and amount of network control including a detailed heatmap of the A.thaliana response distinguishing between two states of the immune response. (iii) In an immune response network of dendritic cells confronted with Aspergillus fumigatus, JimenaE calculates now accurately the specific values for centralities and protein-specific network control including chemokine and pattern recognition receptors. KW - cellular signalling networks KW - computer modelling Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-313303 VL - 13 ER - TY - JOUR A1 - Sivarajan, Rinu A1 - Oberwinkler, Heike A1 - Roll, Valeria A1 - König, Eva-Maria A1 - Steinke, Maria A1 - Bodem, Jochen T1 - A defined anthocyanin mixture sourced from bilberry and black currant inhibits Measles virus and various herpesviruses JF - BMC Complementary Medicine and Therapies N2 - Background Anthocyanin-containing plant extracts and carotenoids, such as astaxanthin, have been well-known for their antiviral and anti-inflammatory activity, respectively. We hypothesised that a mixture of Ribes nigrum L. (Grossulariaceae) (common name black currant (BC)) and Vaccinium myrtillus L. (Ericaceae) (common name bilberry (BL)) extracts (BC/BL) with standardised anthocyanin content as well as single plant extracts interfered with the replication of Measles virus and Herpesviruses in vitro. Methods We treated cell cultures with BC/BL or defined single plant extracts, purified anthocyanins and astaxanthin in different concentrations and subsequently infected the cultures with the Measles virus (wild-type or vaccine strain Edmonston), Herpesvirus 1 or 8, or murine Cytomegalovirus. Then, we analysed the number of infected cells and viral infectivity and compared the data to non-treated controls. Results The BC/BL extract inhibited wild-type Measles virus replication, syncytia formation and cell-to-cell spread. This suppression was dependent on the wild-type virus-receptor-interaction since the Measles vaccine strain was unaffected by BC/BL treatment. Furthermore, the evidence was provided that the delphinidin-3-rutinoside chloride, a component of BC/BL, and purified astaxanthin, were effective anti-Measles virus compounds. Human Herpesvirus 1 and murine Cytomegalovirus replication was inhibited by BC/BL, single bilberry or black currant extracts, and the BC/BL component delphinidin-3-glucoside chloride. Additionally, we observed that BC/BL seemed to act synergistically with aciclovir. Moreover, BC/BL, the single bilberry and black currant extracts, and the BC/BL components delphinidin-3-glucoside chloride, cyanidin-3-glucoside, delphinidin-3-rutinoside chloride, and petunidin-3-galactoside inhibited human Herpesvirus 8 replication. Conclusions Our data indicate that Measles viruses and Herpesviruses are differentially susceptible to a specific BC/BL mixture, single plant extracts, purified anthocyanins and astaxanthin. These compounds might be used in the prevention of viral diseases and in addition to direct-acting antivirals, such as aciclovir. KW - anthocyanin KW - astaxanthin KW - bilberry KW - black currant KW - herpesvirus KW - measels virus Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-301423 VL - 22 ER - TY - JOUR A1 - Geiger, Nina A1 - König, Eva-Maria A1 - Oberwinkler, Heike A1 - Roll, Valeria A1 - Diesendorf, Viktoria A1 - Fähr, Sofie A1 - Obernolte, Helena A1 - Sewald, Katherina A1 - Wronski, Sabine A1 - Steinke, Maria A1 - Bodem, Jochen T1 - Acetylsalicylic acid and salicylic acid inhibit SARS-CoV-2 replication in precision-cut lung slices JF - Vaccines N2 - Aspirin, with its active compound acetylsalicylic acid (ASA), shows antiviral activity against rhino- and influenza viruses at high concentrations. We sought to investigate whether ASA and its metabolite salicylic acid (SA) inhibit SARS-CoV-2 since it might use similar pathways to influenza viruses. The compound-treated cells were infected with SARS-CoV-2. Viral replication was analysed by RTqPCR. The compounds suppressed SARS-CoV-2 replication in cell culture cells and a patient-near replication system using human precision-cut lung slices by two orders of magnitude. While the compounds did not interfere with viral entry, it led to lower viral RNA expression after 24 h, indicating that post-entry pathways were inhibited by the compounds. KW - acetylsalicylic acid KW - salicylic acid KW - antiviral activity KW - aspirin KW - SARS-CoV-2 KW - precision-cut lung slices Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-289885 SN - 2076-393X VL - 10 IS - 10 ER - TY - JOUR A1 - Ockermann, Philipp A1 - Lizio, Rosario A1 - Hansmann, Jan T1 - Healthberry 865\(^®\) and a subset of its single anthocyanins attenuate oxidative stress in human endothelial in vitro models JF - Nutrients N2 - Oxidative stress and inflammation play a pivotal role in the development of cardiovascular diseases, an ever-growing worldwide problem. As a non-pharmacological approach, diet, especially a flavonoid-rich diet, showed promising results in the reduction of cardiovascular diseases and alleviation of their symptoms. In this study, in vitro systems based on human microvascular endothelial cells (hmvEC) and human umbilical cord endothelial cells (HUVEC) were established to determine the effect of Healthberry 865\(^®\) (HB) and ten of its relating single anthocyanins on oxidative stress. Furthermore, five metabolites were used in order to examine the effect of anthocyanin's most common breakdown molecules. The results showed an effect of HB in both models after 24 h, as well as most of its single anthocyanins. Cyanidin-rutinoside, peonidin-galactoside, and petunidin-glucoside had a model-specific effect. For the metabolites, phloroglucinaldeyhde (PGA) showed an effect in both models, while vanillic acid (VA) only had an effect in HUVEC. When combined, a combination of several anthocyanins did not have a cumulative effect, except for combining glucosides in hmvEC. The combination of PGA and VA even revealed an inhibitive behavior. Overall, the study demonstrates the antioxidative effect of HB and several of its single anthocyanins and metabolites, which are partially model specific, and coincides with animal studies. KW - anthocyanins KW - reactive oxygen species KW - HUVEC KW - microvascular endothelial cells Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-281887 SN - 2072-6643 VL - 14 IS - 14 ER - TY - JOUR A1 - Herbert, Saskia-Laureen A1 - Fick, Andrea A1 - Heydarian, Motaharehsadat A1 - Metzger, Marco A1 - Wöckel, Achim A1 - Rudel, Thomas A1 - Kozjak-Pavlovic, Vera A1 - Wulff, Christine T1 - Establishment of the SIS scaffold-based 3D model of human peritoneum for studying the dissemination of ovarian cancer JF - Journal of Tissue Engineering N2 - Ovarian cancer is the second most common gynecological malignancy in women. More than 70% of the cases are diagnosed at the advanced stage, presenting as primary peritoneal metastasis, which results in a poor 5-year survival rate of around 40%. Mechanisms of peritoneal metastasis, including adhesion, migration, and invasion, are still not completely understood and therapeutic options are extremely limited. Therefore, there is a strong requirement for a 3D model mimicking the in vivo situation. In this study, we describe the establishment of a 3D tissue model of the human peritoneum based on decellularized porcine small intestinal submucosa (SIS) scaffold. The SIS scaffold was populated with human dermal fibroblasts, with LP-9 cells on the apical side representing the peritoneal mesothelium, while HUVEC cells on the basal side of the scaffold served to mimic the endothelial cell layer. Functional analyses of the transepithelial electrical resistance (TEER) and the FITC-dextran assay indicated the high barrier integrity of our model. The histological, immunohistochemical, and ultrastructural analyses showed the main characteristics of the site of adhesion. Initial experiments using the SKOV-3 cell line as representative for ovarian carcinoma demonstrated the usefulness of our models for studying tumor cell adhesion, as well as the effect of tumor cells on endothelial cell-to-cell contacts. Taken together, our data show that the novel peritoneal 3D tissue model is a promising tool for studying the peritoneal dissemination of ovarian cancer. KW - ovarian cancer KW - 3D tissue model KW - co-culture KW - peritoneal metastasis KW - cancer dissemination Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-301311 SN - 2041-7314 VL - 13 ER - TY - JOUR A1 - Siverino, Claudia A1 - Fahmy-Garcia, Shorouk A1 - Mumcuoglu, Didem A1 - Oberwinkler, Heike A1 - Muehlemann, Markus A1 - Mueller, Thomas A1 - Farrell, Eric A1 - van Osch, Gerjo J. V. M. A1 - Nickel, Joachim T1 - Site-directed immobilization of an engineered bone morphogenetic protein 2 (BMP2) variant to collagen-based microspheres induces bone formation in vivo JF - International Journal of Molecular Sciences N2 - For the treatment of large bone defects, the commonly used technique of autologous bone grafting presents several drawbacks and limitations. With the discovery of the bone-inducing capabilities of bone morphogenetic protein 2 (BMP2), several delivery techniques were developed and translated to clinical applications. Implantation of scaffolds containing adsorbed BMP2 showed promising results. However, off-label use of this protein-scaffold combination caused severe complications due to an uncontrolled release of the growth factor, which has to be applied in supraphysiological doses in order to induce bone formation. Here, we propose an alternative strategy that focuses on the covalent immobilization of an engineered BMP2 variant to biocompatible scaffolds. The new BMP2 variant harbors an artificial amino acid with a specific functional group, allowing a site-directed covalent scaffold functionalization. The introduced artificial amino acid does not alter BMP2′s bioactivity in vitro. When applied in vivo, the covalently coupled BMP2 variant induces the formation of bone tissue characterized by a structurally different morphology compared to that induced by the same scaffold containing ab-/adsorbed wild-type BMP2. Our results clearly show that this innovative technique comprises translational potential for the development of novel osteoinductive materials, improving safety for patients and reducing costs. KW - bone morphogenetic protein 2 (BMP2) KW - bone regeneration KW - covalent coupling KW - subcutaneous animal model Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-284572 SN - 1422-0067 VL - 23 IS - 7 ER - TY - JOUR A1 - Ribitsch, Iris A1 - Peham, Christian A1 - Ade, Nicole A1 - Duerr, Julia A1 - Handschuh, Stephan A1 - Schramel, Johannes Peter A1 - Vogl, Claus A1 - Walles, Heike A1 - Egerbacher, Monika A1 - Jenner, Florian T1 - Structure-Function relationships of equine menisci JF - PLoS ONE N2 - Meniscal pathologies are among the most common injuries of the femorotibial joint in both human and equine patients. Pathological forces and ensuing injuries of the cranial horn of the equine medial meniscus are considered analogous to those observed in the human posterior medial horn. Biomechanical properties of human menisci are site-and depth-specific. However, the influence of equine meniscus topography and composition on its biomechanical properties is yet unknown. A better understanding of equine meniscus composition and biomechanics could advance not only veterinary therapies for meniscus degeneration or injuries, but also further substantiate the horse as suitable translational animal model for (human) meniscus tissue engineering. Therefore, the aim of this study was to investigate the composition and structure of the equine knee meniscus in a site-and age-specific manner and their relationship with potential site-specific biomechanical properties. The meniscus architecture was investigated histologically. Biomechanical testing included evaluation of the shore hardness (SH), stiffness and energy loss of the menisci. The SH was found to be subjected to both age and site-specific changes, with an overall higher SH of the tibial meniscus surface and increase in SH with age. Stiffness and energy loss showed neither site nor age related significant differences. The macroscopic and histologic similarities between equine and human menisci described in this study, support continued research in this field. KW - Human Medial Meniscus KW - Articular-Cartilage KW - Biomechanical Properties KW - Compressive Properties KW - Human Knee KW - Collagen KW - Injuries KW - Models KW - Repair KW - Osteoarthritis Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-225214 VL - 13 IS - 3 ER - TY - JOUR A1 - Peindl, Matthias A1 - Göttlich, Claudia A1 - Crouch, Samantha A1 - Hoff, Niklas A1 - Lüttgens, Tamara A1 - Schmitt, Franziska A1 - Pereira, Jesús Guillermo Nieves A1 - May, Celina A1 - Schliermann, Anna A1 - Kronenthaler, Corinna A1 - Cheufou, Danjouma A1 - Reu-Hofer, Simone A1 - Rosenwald, Andreas A1 - Weigl, Elena A1 - Walles, Thorsten A1 - Schüler, Julia A1 - Dandekar, Thomas A1 - Nietzer, Sarah A1 - Dandekar, Gudrun T1 - EMT, stemness, and drug resistance in biological context: a 3D tumor tissue/in silico platform for analysis of combinatorial treatment in NSCLC with aggressive KRAS-biomarker signatures JF - Cancers N2 - Epithelial-to-mesenchymal transition (EMT) is discussed to be centrally involved in invasion, stemness, and drug resistance. Experimental models to evaluate this process in its biological complexity are limited. To shed light on EMT impact and test drug response more reliably, we use a lung tumor test system based on a decellularized intestinal matrix showing more in vivo-like proliferation levels and enhanced expression of clinical markers and carcinogenesis-related genes. In our models, we found evidence for a correlation of EMT with drug resistance in primary and secondary resistant cells harboring KRAS\(^{G12C}\) or EGFR mutations, which was simulated in silico based on an optimized signaling network topology. Notably, drug resistance did not correlate with EMT status in KRAS-mutated patient-derived xenograft (PDX) cell lines, and drug efficacy was not affected by EMT induction via TGF-β. To investigate further determinants of drug response, we tested several drugs in combination with a KRAS\(^{G12C}\) inhibitor in KRAS\(^{G12C}\) mutant HCC44 models, which, besides EMT, display mutations in P53, LKB1, KEAP1, and high c-MYC expression. We identified an aurora-kinase A (AURKA) inhibitor as the most promising candidate. In our network, AURKA is a centrally linked hub to EMT, proliferation, apoptosis, LKB1, and c-MYC. This exemplifies our systemic analysis approach for clinical translation of biomarker signatures. KW - EMT KW - drug resistance KW - invasion KW - stemness KW - 3D lung tumor tissue models KW - KRAS biomarker signatures KW - boolean in silico models KW - targeted combination therapy Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-270744 SN - 2072-6694 VL - 14 IS - 9 ER - TY - JOUR A1 - Weigel, Tobias A1 - Malkmus, Christoph A1 - Weigel, Verena A1 - Wußmann, Maximiliane A1 - Berger, Constantin A1 - Brennecke, Julian A1 - Groeber‐Becker, Florian A1 - Hansmann, Jan T1 - Fully Synthetic 3D Fibrous Scaffolds for Stromal Tissues—Replacement of Animal‐Derived Scaffold Materials Demonstrated by Multilayered Skin JF - Advanced Materials N2 - The extracellular matrix (ECM) of soft tissues in vivo has remarkable biological and structural properties. Thereby, the ECM provides mechanical stability while it still can be rearranged via cellular remodeling during tissue maturation or healing processes. However, modern synthetic alternatives fail to provide these key features among basic properties. Synthetic matrices are usually completely degraded or are inert regarding cellular remodeling. Based on a refined electrospinning process, a method is developed to generate synthetic scaffolds with highly porous fibrous structures and enhanced fiber‐to‐fiber distances. Since this approach allows for cell migration, matrix remodeling, and ECM synthesis, the scaffold provides an ideal platform for the generation of soft tissue equivalents. Using this matrix, an electrospun‐based multilayered skin equivalent composed of a stratified epidermis, a dermal compartment, and a subcutis is able to be generated without the use of animal matrix components. The extension of classical dense electrospun scaffolds with high porosities and motile fibers generates a fully synthetic and defined alternative to collagen‐gel‐based tissue models and is a promising system for the construction of tissue equivalents as in vitro models or in vivo implants. KW - 3D scaffolds KW - electrospinning KW - highly porous materials KW - multilayered skin KW - stromal tissues Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-276403 VL - 34 IS - 10 ER - TY - JOUR A1 - Weigel, Tobias A1 - Brennecke, Julian A1 - Hansmann, Jan T1 - Improvement of the electronic—neuronal interface by natural deposition of ECM JF - Materials N2 - The foreign body reaction to neuronal electrode implants limits potential applications as well as the therapeutic period. Developments in the basic electrode design might improve the tissue compatibility and thereby reduce the foreign body reaction. In this work, the approach of embedding 3D carbon nanofiber electrodes in extracellular matrix (ECM) synthesized by human fibroblasts for a compatible connection to neuronal cells was investigated. Porous electrode material was manufactured by solution coelectrospinning of polyacrylonitrile and polyamide as a fibrous porogen. Moreover, NaCl represented an additional particulate porogen. To achieve the required conductivity for an electrical interface, meshes were carbonized. Through the application of two different porogens, the electrodes' flexibility and porosity was improved. Human dermal fibroblasts were cultured on the electrode surface for ECM generation and removed afterwards. Scanning electron microscopy imaging revealed a nano fibrous ECM network covering the carbon fibers. The collagen amount of the ECM coating was quantified by hydroxyproline-assays. The modification with the natural protein coating on the electrode functionality resulted in a minor increase of the electrical capacity, which slightly improved the already outstanding electrical interface properties. Increased cell numbers of SH-SY5Y cell line on ECM-modified electrodes demonstrated an improved cell adhesion. During cell differentiation, the natural ECM enhanced the formation of neurites regarding length and branching. The conducted experiments indicated the prevention of direct cell-electrode contacts by the modification, which might help to shield temporary the electrode from immunological cells to reduce the foreign body reaction and improve the electrodes' tissue integration. KW - neuronal electrodes KW - carbon fiber KW - electrospinning KW - ECM coating Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-234047 SN - 1996-1944 VL - 14 IS - 6 ER - TY - JOUR A1 - Brachner, Andreas A1 - Fragouli, Despina A1 - Duarte, Iola F. A1 - Farias, Patricia M. A. A1 - Dembski, Sofia A1 - Ghosh, Manosij A1 - Barisic, Ivan A1 - Zdzieblo, Daniela A1 - Vanoirbeek, Jeroen A1 - Schwabl, Philipp A1 - Neuhaus, Winfried T1 - Assessment of human health risks posed by nano-and microplastics is currently not feasible JF - International Journal of Environmental Research and Public Health N2 - The exposure of humans to nano-and microplastic particles (NMPs) is an issue recognized as a potential health hazard by scientists, authorities, politics, non-governmental organizations and the general public. The concentration of NMPs in the environment is increasing concomitantly with global plastic production and the usage of plastic materials. NMPs are detectable in numerous aquatic organisms and also in human samples, therefore necessitating a risk assessment of NMPs for human health. So far, a comprehensive risk assessment of NMPs is hampered by limited availability of appropriate reference materials, analytical obstacles and a lack of definitions and standardized study designs. Most studies conducted so far used polystyrene (PS) spheres as a matter of availability, although this polymer type accounts for only about 7% of total plastic production. Differently sized particles, different concentration and incubation times, and various biological models have been used, yielding hardly comparable data sets. Crucial physico-chemical properties of NMPs such as surface (charge, polarity, chemical reactivity), supplemented additives and adsorbed chemicals have been widely excluded from studies, although in particular the surface of NMPs determines the interaction with cellular membranes. In this manuscript we give an overview about the critical parameters which should be considered when performing risk assessments of NMPs, including novel reference materials, taking into account surface modifications (e.g., reflecting weathering processes), and the possible role of NMPs as a substrate and/or carrier for (pathogenic) microbes. Moreover, we make suggestions for biological model systems to evaluate immediate toxicity, long-term effects and the potential of NMPs to cross biological barriers. We are convinced that standardized reference materials and experimental parameters along with technical innovations in (nano)-particle sampling and analytics are a prerequisite for the successful realization of conclusive human health risk assessments of NMPs. KW - nanoplastics KW - nanoparticles KW - microplastics KW - microparticles KW - human exposure KW - biological barriers KW - biofilm KW - microbe carrier KW - toxicity KW - neurotoxicity Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-219423 SN - 1660-4601 VL - 17 IS - 23 ER - TY - JOUR A1 - Kannapin, Felix A1 - Schmitz, Tobias A1 - Hansmann, Jan A1 - Schlegel, Nicolas A1 - Meir, Michael T1 - Measurements of transepithelial electrical resistance (TEER) are affected by junctional length in immature epithelial monolayers JF - Histochemistry and Cell Biology N2 - The measurement of transepithelial electrical resistance (TEER) is a common technique to determine the barrier integrity of epithelial cell monolayers. However, it is remarkable that absolute TEER values of similar cell types cultured under comparable conditions show an immense heterogeneity. Based on previous observations, we hypothesized that the heterogeneity of absolute TEER measurements can not only be explained by maturation of junctional proteins but rather by dynamics in the absolute length of cell junctions within monolayers. Therefore, we analyzed TEER in epithelial cell monolayers of Caco2 cells during their differentiation, with special emphasis on both changes in the junctional complex and overall cell morphology within monolayers. We found that in epithelial Caco2 monolayers TEER increased until confluency, then decreased for some time, which was then followed by an additional increase during junctional differentiation. In contrast, permeability of macromolecules measured at different time points as 4 kDA fluorescein isothiocyanate (FITC)-dextran flux across monolayers steadily decreased during this time. Detailed analysis suggested that this observation could be explained by alterations of junctional length along the cell borders within monolayers during differentiation. In conclusion, these observations confirmed that changes in cell numbers and consecutive increase of junctional length have a critical impact on TEER values, especially at stages of early confluency when junctions are immature. KW - Caco2 cells KW - TEER KW - barrier models KW - impedance spectroscopy KW - permeability Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-267465 SN - 1432-119X VL - 156 IS - 6 ER - TY - JOUR A1 - Schmid, Richard A1 - Tarau, Ioana-Sandra A1 - Rossi, Angela A1 - Leonhardt, Stefan A1 - Schwarz, Thomas A1 - Schuerlein, Sebastian A1 - Lotz, Christian A1 - Hansmann, Jan T1 - In Vivo-Like Culture Conditions in a Bioreactor Facilitate Improved Tissue Quality in Corneal Storage JF - Biotechnology Journal N2 - The cornea is the most-transplanted tissue worldwide. However, the availability and quality of grafts are limited due to the current methods of corneal storage. In this study, a dynamic bioreactor system is employed to enable the control of intraocular pressure and the culture at the air-liquid interface. Thereby, in vivo-like storage conditions are achieved. Different media combinations for endothelium and epithelium are tested in standard and dynamic conditions to enhance the viability of the tissue. In contrast to culture conditions used in eye banks, the combination of the bioreactor and biochrom medium 1 allows to preserve the corneal endothelium and the epithelium. Assessment of transparency, swelling, and the trans-epithelial-electrical-resistance (TEER) strengthens the impact of the in vivo-like tissue culture. For example, compared to corneas stored under static conditions, significantly lower optical densities and significantly higher TEER values were measured (p-value <0.05). Furthermore, healing of epithelial defects is enabled in the bioreactor, characterized by re-epithelialization and initiated stromal regeneration. Based on the obtained results, an easy-to-use 3D-printed bioreactor composed of only two parts was derived to translate the technology from the laboratory to the eye banks. This optimized bioreactor facilitates noninvasive microscopic monitoring. The improved storage conditions ameliorate the quality of corneal grafts and the storage time in the eye banks to increase availability and reduce re-grafting. KW - bioreactor KW - corneal endothelium KW - corneal epithelium KW - corneal storage KW - tissue culture Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-228620 VL - 13 IS - 1,1700344 ER - TY - THES A1 - Leikeim, Anna T1 - Vascularization Strategies for Full-Thickness Skin Equivalents to Model Melanoma Progression T1 - Vaskularisierungsstrategien für Vollhautäquivalente zur Modellierung der Melanom-Progression N2 - Malignant melanoma (MM) is the most dangerous type of skin cancer with rising incidences worldwide. Melanoma skin models can help to elucidate its causes and formation or to develop new treatment strategies. However, most of the current skin models lack a vasculature, limiting their functionality and applicability. MM relies on the vascular system for its own supply and for its dissemination to distant body sites via lymphatic and blood vessels. Thus, to accurately study MM progression, a functional vasculature is indispensable. To date, there are no vascularized skin models to study melanoma metastasis in vitro, which is why such studies still rely on animal experimentation. In the present thesis, two different approaches for the vascularization of skin models are employed with the aim to establish a vascularized 3D in vitro full-thickness skin equivalent (FTSE) that can serve as a test system for the investigation of the progression of MM. Initially, endothelial cells were incorporated in the dermal part of FTSEs. The optimal seeding density, a spheroid conformation of the cells and the cell culture medium were tested. A high cell density resulted in the formation of lumen-forming shapes distributed in the dermal part of the model. These capillary-like structures were proven to be of endothelial origin by staining for the endothelial cell marker CD31. The established vascularized FTSE (vFTSE) was characterized histologically after 4 weeks of culture, revealing an architecture similar to human skin in vivo with a stratified epidermis, separated from the dermal equivalent by a basement membrane indicated by collagen type IV. However, this random capillary-like network is not functional as it cannot be perfused. Therefore, the second vascularization approach focused on the generation of a perfusable tissue construct. A channel was molded within a collagen hydrogel and seeded with endothelial cells to mimic a central, perfusable vessel. The generation and the perfusion culture of the collagen hydrogel was enabled by the use of two custom-made, 3D printed bioreactors. Histological assessment of the hydrogels revealed the lining of the channel with a monolayer of endothelial cells, expressing the cell specific marker CD31. For the investigation of MM progression in vitro, a 3D melanoma skin equivalent was established. Melanoma cells were incorporated in the epidermal part of FTSEs, representing the native microenvironment of the tumor. Melanoma nests grew at the dermo-epidermal junction within the well stratified epidermis and were characterized by the expression of common melanoma markers. First experiments were conducted showing the feasibility of combining the melanoma model with the vFTSE, resulting in skin models with tumors at the dermo-epidermal junction and lumen-like structures in the dermis. Taken together, the models presented in this thesis provide further steps towards the establishment of a vascularized, perfusable melanoma model to study melanoma progression and metastasis. N2 - Das maligne Melanom (MM) ist die gefährlichste Form von Hautkrebs mit weltweit steigender Inzidenz. Melanom-Hautmodelle können helfen, seine Ursachen und Entstehung aufzuklären oder neue Behandlungsstrategien zu entwickeln. Den meisten bisherigen Hautmodellen fehlt jedoch ein Gefäßsystem, was ihre Funktionalität und Anwendbarkeit einschränkt. Das MM ist auf das Gefäßsystem angewiesen, sowohl für die eigene Versorgung als auch für die Ausbreitung über Lymph- und Blutgefäße zu entfernten Körperstellen. Um die Entwicklung des MM genau zu studieren, ist daher eine funktionelles Gefäßsystem unabdingbar. Bislang gibt es keine vaskularisierten Hautmodelle, um die Melanommetastasierung in vitro zu untersuchen, weshalb solche Studien immer noch auf Tierversuche angewiesen sind. In der vorliegenden Arbeit werden zwei unterschiedliche Ansätze zur Vaskularisierung von Hautmodellen mit dem Ziel verfolgt, ein vaskularisiertes 3D in vitro Vollhautmodell (full-thickness skin equivalent, FTSE) zu etablieren, das als Testsystem zur Untersuchung der Entwicklung des MM dienen kann. Einerseits wurden Endothelzellen in den dermalen Teil von FTSEs integriert. Die optimale Aussaatdichte, eine sphäroidale Konformation der Zellen und das Zellkulturmedium wurden getestet. Eine hohe Zelldichte führte zur Bildung von lumenbildenden Formen, die im dermalen Teil des Modells verteilt waren. Diese kapillarähnlichen Strukturen wurden durch Färbung für den Endothelzellmarker CD31 als endothelialen Ursprungs nachgewiesen. Das etablierte vaskularisierte FTSE (vFTSE) wurde nach 4 Wochen Kultur histologisch charakterisiert und zeigte eine der menschlichen Haut in vivo ähnliche Architektur mit einer geschichteten Epidermis, die vom dermalen Äquivalent durch eine Basalmembran, gezeigt durch Kollagen Typ IV, getrennt ist. Dieses zufällige kapillarartige Netzwerk ist jedoch nicht funktional, da es nicht durchblutet werden kann. Daher konzentrierte sich der zweite Vaskularisierungsansatz auf die Erzeugung eines perfundierbaren Gewebekonstrukts. Ein Kanal wurde in einem Kollagenhydrogel geformt und mit Endothelzellen besiedelt, um ein zentrales, perfundierbares Gefäß zu imitieren. Die Erzeugung und die Perfusionskultur des Kollagenhydrogels wurde durch die Verwendung von zwei speziell angefertigten, 3D-gedruckten Bioreaktoren ermöglicht. Die histologische Beurteilung der Hydrogele zeigte die Auskleidung des Kanals mit einer Einzelschicht von Endothelzellen, die den zellspezifischen Marker CD31 exprimieren. Für die Untersuchung der MM-Progression in vitro wurde ein 3D-Melanom-Hautäquivalent hergestellt. Melanomzellen wurden in den epidermalen Teil von FTSEs integriert, was die native Mikroumgebung des Tumors darstellt. Die Melanomnester wuchsen an der dermo-epidermalen Grenzfläche innerhalb der gut stratifizierten Epidermis und wurden durch die Expression gängiger Melanommarker charakterisiert. Zusätzlich konnte die Kombination des Melanom-Modells mit dem vFTSE gezeigt werden, was zu Hautmodellen mit Tumoren an der dermo-epidermalen Grenzfläche und lumenartigen Strukturen in der Dermis führte. Alles in allem bieten die in dieser Arbeit vorgestellten Modelle weitere Schritte hin zur Entwicklung eines vaskularisierten, perfundierbaren Melanommodell zur Erforschung der Melanomprogression und Metastasierung. KW - Tissue Engineering KW - In-vitro-Kultur KW - Melanom KW - skin model KW - vascularization KW - in vitro-Testsystem KW - perfused hydrogel Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-272956 ER - TY - JOUR A1 - Stuckensen, Kai A1 - Lamo-Espinosa, José M. A1 - Muiños-López, Emma A1 - Ripalda-Cemboráin, Purificación A1 - López-Martínez, Tania A1 - Iglesias, Elena A1 - Abizanda, Gloria A1 - Andreu, Ion A1 - Flandes-Iparraguirre, María A1 - Pons-Villanueva, Juan A1 - Elizalde, Reyes A1 - Nickel, Joachim A1 - Ewald, Andrea A1 - Gbureck, Uwe A1 - Prósper, Felipe A1 - Groll, Jürgen A1 - Granero-Moltó, Froilán T1 - Anisotropic cryostructured collagen scaffolds for efficient delivery of RhBMP−2 and enhanced bone regeneration JF - Materials N2 - In the treatment of bone non-unions, an alternative to bone autografts is the use of bone morphogenetic proteins (BMPs), e.g., BMP–2, BMP–7, with powerful osteoinductive and osteogenic properties. In clinical settings, these osteogenic factors are applied using absorbable collagen sponges for local controlled delivery. Major side effects of this strategy are derived from the supraphysiological doses of BMPs needed, which may induce ectopic bone formation, chronic inflammation, and excessive bone resorption. In order to increase the efficiency of the delivered BMPs, we designed cryostructured collagen scaffolds functionalized with hydroxyapatite, mimicking the structure of cortical bone (aligned porosity, anisotropic) or trabecular bone (random distributed porosity, isotropic). We hypothesize that an anisotropic structure would enhance the osteoconductive properties of the scaffolds by increasing the regenerative performance of the provided rhBMP–2. In vitro, both scaffolds presented similar mechanical properties, rhBMP–2 retention and delivery capacity, as well as scaffold degradation time. In vivo, anisotropic scaffolds demonstrated better bone regeneration capabilities in a rat femoral critical-size defect model by increasing the defect bridging. In conclusion, anisotropic cryostructured collagen scaffolds improve bone regeneration by increasing the efficiency of rhBMP–2 mediated bone healing. KW - rhBMP–2 KW - collagen sponge KW - cryostructured scaffolds KW - bone critical size defect Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-195966 SN - 1996-1944 VL - 12 IS - 19 ER - TY - JOUR A1 - Meyer, Till Jasper A1 - Gerhard-Hartmann, Elena A1 - Lodes, Nina A1 - Scherzad, Agmal A1 - Hagen, Rudolf A1 - Steinke, Maria A1 - Hackenberg, Stephan T1 - Pilot study on the value of Raman spectroscopy in the entity assignment of salivary gland tumors JF - PLoS One N2 - Background The entity assignment of salivary gland tumors (SGT) based on histomorphology can be challenging. Raman spectroscopy has been applied to analyze differences in the molecular composition of tissues. The aim of this study was to evaluate the suitability of RS for entity assignment in SGT. Methods Raman data were collected in deparaffinized sections of pleomorphic adenomas (PA) and adenoid cystic carcinomas (ACC). Multivariate data and chemometric analysis were completed using the Unscrambler software. Results The Raman spectra detected in ACC samples were mostly assigned to nucleic acids, lipids, and amides. In a principal component-based linear discriminant analysis (LDA) 18 of 20 tumor samples were classified correctly. Conclusion In this proof of concept study, we show that a reliable SGT diagnosis based on LDA algorithm appears possible, despite variations in the entity-specific mean spectra. However, a standardized workflow for tissue sample preparation, measurement setup, and chemometric algorithms is essential to get reliable results. KW - Head and neck cancers KW - salivary gland tumors KW - salivary glands KW - cancers and neoplasms KW - malignant tumors KW - lipids KW - raman spectroscopy KW - surgical oncology Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-264736 VL - 16 IS - 9 ER - TY - THES A1 - Fey, Christina T1 - Establishment of an intestinal tissue model for pre-clinical screenings T1 - Etablierung eines Darmgewebemodells für Präklinische Screenings N2 - The small intestine represents a strong barrier separating the lumen from blood circulation thereby playing a major role in the absorption and the transport of pharmacological agents prior to their arrival on the respective target site. In order to gain more knowledge about specialized uptake mechanisms and risk assessment for the patient after oral admission of drugs, intestinal in vitro models demonstrating a close similarity to the in vivo situation are needed. In the past, cell line-based in vitro models composed of Caco-2 cells cultured on synthetic cell carriers represented the “gold standard” in the field of intestinal tissue engineering. Expressive advantages of these models are a reproducible, cost-efficient and standardized model set up, but cell function can be negatively influenced by the low porosity or unwanted molecular adhesion effects of the artificial scaffold material. Natural extracellular matrices (ECM) such as the porcine decellularized small intestinal submucosa (SIS) are used as alternative to overcome some common drawbacks; however, the fabrication of these scaffolds is time- and cost-intensive, less well standardized and the 3Rs (replacement, reduction, refinement) principle is not entirely fulfilled. Nowadays, biopolymer-based scaffolds such as the bacterial nanocellulose (BNC) suggest an interesting option of novel intestinal tissue engineered models, as the BNC shows comparable features to the native ECM regarding fiber arrangement and hydrophilic properties. Furthermore, the BNC is of non-animal origin and the manufacturing process is faster as well as well standardized at low costs. In this context, the first part of this thesis analyzed the BNC as alternative scaffold to derive standardized and functional organ models in vitro. Therefore, Caco-2 cells were cultured on two versions of BNC with respect to their surface topography, the unmodified BNC as rather smooth surface and the surface-structured BNC presenting an aligned fiber arrangement. As controls, Caco-2 in vitro models were set up on PET and SIS matrices. In this study, the BNC-based models demonstrated organ-specific properties comprising typical cellular morphologies, a characteristic tight junction protein expression profile, representative ultrastructural features and the formation of a tight epithelial barrier together with a corresponding transport activity. In summary, these results validated the high quality of the BNC-based Caco-2 models under cost-efficient conditions and their suitability for pre-clinical research purposes. However, the full functional diversity of the human intestine cannot be presented by Caco-2 cells due to their tumorigenic background and their exclusive representation of mature enterocytes. Next to the scaffold used for the setup of in vitro models, the cellular unit mainly drives functional performance, which demonstrates the crucial importance of mimicking the cellular diversity of the small intestine in vitro. In this context, intestinal primary organoids are of high interest, as they show a close similarity to the native epithelium regarding their cellular diversity comprising enterocytes, goblet cells, enteroendocrine cells, paneth cells, transit amplifying cells and stem cells. In general, such primary organoids grow in a 3D Matrigel® based environment and a medium formulation supplemented with a variety of growth factors to maintain stemness, to inhibit differentiation and to stimulate cell migration supporting long term in vitro culture. Intestinal primary spheroid/organoid cultures were set up as Transwell®-like models on both BNC variants, which resulted in a fragmentary cell layer and thereby unfavorable properties of these scaffold materials under the applied circumstances. As the BNC manufacturing process is highly flexible, surface properties could be adapted in future studies to enable a good cell adherence and barrier formation for primary intestinal cells, too. However, the application of these organoid cultures in pre-clinical research represents an enormous challenge, as the in vitro culture is complex and additionally time- and cost-intensive. With regard to the high potential of primary intestinal spheroids/organoids and the necessity of a simplified but predictive model in pre-clinical research purposes, the second part of this thesis addressed the establishment of a primary-derived immortalized intestinal cell line, which enables a standardized and cost-efficient culture (including in 2D), while maintaining the cellular diversity of the organoid in vitro cultures. In this study, immortalization of murine and human intestinal primary organoids was induced by ectopic expression of a 10- (murine) or 12 component (human) pool of genes regulating stemness and the cell cycle, which was performed in cooperation with the InSCREENeX GmbH in a 2D- and 3D-based transduction strategy. In first line, the established cell lines (cell clones) were investigated for their cell culture prerequisites to grow under simplified and cost-efficient conditions. While murine cell clones grew on uncoated plastic in a medium formulation supplemented with EGF, Noggin, Y-27632 and 10% FCS, the human cell clones demonstrated the necessity of a Col I pre coating together with the need for a medium composition commonly used for primary human spheroid/organoid cultures. Furthermore, the preceding analyses resulted in only one human cell clone and three murine cell clones for ongoing characterization. Studies regarding the proliferative properties and the specific gene as well as protein expression profile of the remaining cell clones have shown, that it is likely that transient amplifying cells (TACs) were immortalized instead of the differentiated cell types localized in primary organoids, as 2D, 3D or Transwell®-based cultures resulted in slightly different gene expression profiles and in a dramatically reduced mRNA transcript level for the analyzed marker genes representative for the differentiated cell types of the native epithelium. Further, 3D cultures demonstrated the formation of spheroid-like structures; however without forming organoid-like structures due to prolonged culture, indicating that these cell populations have lost their ability to differentiate into specific intestinal cell types. The Transwell®-based models set up of each clone exhibit organ-specific properties comprising an epithelial-like morphology, a characteristic protein expression profile with an apical mucus-layer covering the villin-1 positive cell layer, thereby representing goblet cells and enterocytes, together with representative tight junction complexes indicating an integer epithelial barrier. The proof of a functional as well as tight epithelial barrier in TEER measurements and in vivo-like transport activities qualified the established cell clones as alternative cell sources for tissue engineered models representing the small intestine to some extent. Additionally, the easy handling and cell expansion under more cost-efficient conditions compared to primary organoid cultures favors the use of these newly generated cell clones in bioavailability studies. Altogether, this work demonstrated new components, structural and cellular, for the establishment of alternative in vitro models of the small intestinal epithelium, which could be used in pre-clinical screenings for reproducible drug delivery studies. N2 - Der Dünndarm bildet eine starke Barriere aus, welche das Lumen vom Blutkreislauf trennt, und dadurch maßgeblich an der Absorption und dem Transport von pharmakologischen Wirkstoffen beteiligt ist, bevor diese ihren Wirkort erreichen. Um ein detaillierteres Wissen über die speziellen Aufnahmemechanismen zu erlangen und zur Risikoabschätzung für den Patienten nach oraler Aufnahme dieser Medikamente, sind intestinale in vitro Modelle erforderlich, die eine große Ähnlichkeit mit der Situation in vivo aufweisen. In der Vergangenheit stellten Caco-2 Zelllinien-basierte in vitro Modelle, die auf synthetischen Trägerstrukturen aufgebaut sind, den „Goldstandard“ auf dem Gebiet der intestinalen Geweberekonstruktion dar. Bedeutende Vorteile dieser Modelle sind der reproduzierbare, kosteneffiziente und standardisierte Modellaufbau, jedoch können die zellulären Funktionen durch die geringe Porosität oder die unerwünschten molekularen Adhäsionseffekte des künstlichen Trägermaterials negativ beeinflusst werden. Um einige häufige Nachteile zu überwinden werden natürliche extrazelluläre Matrizen (ECM) wie die porzine dezellularisierte Dünndarm-submukosa (SIS) verwendet, jedoch ist die Herstellung dieser Trägerstrukturen zeit- und kostenintensiv, weniger gut standardisiert und entspricht nicht ganzheitlich dem 3R-Prinzip (Replace = Vermeiden, Reduce = Verringern, Refine = Verbessern). Heutzutage ermöglichen biopolymer-basierte Trägerstrukturen wie die bakterielle Nanozellulose (BNC) die Entwicklung von neuartigen intestinalen Gewebemodellen, da die BNC eine große Ähnlichkeit hinsichtlich der Faseranordnung und der hydrophilen Eigenschaften mit der nativen ECM aufweist. Darüber hinaus ist die BNC nicht tierischen Ursprungs und der Herstellungsprozess schneller, gut standardisiert als auch kostengünstig. In diesem Zusammenhang wurde im ersten Teil dieser Arbeit nachgewiesen, dass die BNC als alternative Trägerstruktur für standardisierte und funktionelle Organmodelle in vitro geeignet ist. Dafür wurden Caco-2 Zellen auf zwei Varianten der BNC kultiviert, die sich in ihrer Oberflächentopographie unterscheiden, wobei die nicht-modifizierte BNC eine glatte Oberfläche und die oberflächen-strukturierte BNC eine ausgerichtete Faseranordnung aufweist. Als Kontrollen dienten Caco 2 zellbasierte in vitro Modelle, die auf PET- oder SIS Matrizes aufgebaut wurden. In dieser Studie wiesen die BNC-basierten Modelle die wichtigsten organ-spezifischen Eigenschaften auf, darunter eine typische zelluläre Morphologie, ein charakteristisches Expressionsprofil der Tight Junction Proteine, repräsentative ultrastrukturelle Merkmale und die Bildung einer dichten epithelialen Barriere verbunden mit einer entsprechenden Transportaktivität. Zusammenfassend bestätigten diese Ergebnisse die hohe Qualität der BNC-basierten Caco-2 Modelle unter kosteneffizienten Herstellbedingungen und ihre Eignung für präklinische Forschungszwecke. Allerdings kann die volle Funktionsvielfalt des menschlichen Darms durch Caco-2 Zellen aufgrund ihres kanzerogenen Ursprungs und der exklusiven Repräsentanz von Enterozyten nicht abgebildet werden. Neben der Trägerstruktur die für den Aufbau der in vitro Modelle verwendet wird, trägt auch die zelluläre Einheit zur Etablierung von funktionalen Modellen bei, weshalb es von großer Bedeutung ist, die zelluläre Vielfalt des Dünndarms in diesen Modellen in vitro nachzuahmen. In diesem Zusammenhang sind die primären intestinalen Organoide, die sich hauptsächlich aus Enterozyten, Becherzellen, enteroendokrinen Zellen, Paneth Zellen, Vorläuferzellen und Stammzellen zusammensetzen, von großem Interesse, da die zelluläre Komponente eine große Ähnlichkeit zum nativen Epithel aufweist. Derartige primäre Organoide werden üblicherweise in einer 3D-Matrigel® Umgebung und einer speziellen Formulierung des Mediums, die mit einer Vielzahl an Wachstumsfaktoren ergänzt wird, um das Stammzellpotenzial zu erhalten, die Differenzierung zu hemmen, die Zellmigration zu stimulieren und somit eine langfristige in vitro-Kultivierung zu unterstützt. Intestinale primäre Sphäroid-/Organoidkulturen wurden auf beiden BNC Varianten als Transwell®-ähnliche Modelle aufgebaut. Dabei zeigte sich eine fragmentierte Zellschicht was darauf schließen lässt, dass die Matrix unter diesen Bedingungen für den Modellaufbau ungeeignet ist. Da der BNC-Herstellungsprozess sehr flexibel ist, könnten die Oberflächen-eigenschaften in zukünftigen Studien angepasst werden, um so eine gute Zelladhäsion auch für primäre Darmzellen zu ermöglichen. Die Anwendung dieser Organoid-basierten Kulturen stellt jedoch für die präklinische Forschung eine enorme Herausforderung dar, da die Kultivierung komplex und zudem sehr zeit- und kosten-intensiv ist. Im Hinblick auf das hohe Potenzial der primären intestinalen Sphäroide/Organoide und der Notwendigkeit eines vereinfachten aber prädiktiven Modells für präklinische Forschungs-zwecke, befasste sich der zweite Teil der Arbeit mit der Etablierung einer primären immortalisierten intestinalen Zelllinie, die eine standardisierte und kosteneffiziente Kultur ermöglicht, wobei die zelluläre Vielfalt der in vitro Organoid-Kulturen erhalten bleibt. In dieser Studie wurden primäre Organoide aus dem murinen und dem menschlichen Dünndarm durch die ektopische Expression eines 10- (murin) bzw. 12 Komponenten (human) Pools von Genen, welche im Hinblick auf die Regulation der Stammzellen und dem Zellzyklus bekannt sind, in Zusammenarbeit mit der InSCREENeX GmbH in einer 2D- und 3D-basierten Transduktionsstrategie immortalisiert. In erster Linie wurden die etablierten Zelllinien (Zellklone) auf ihren Bedarf an Wachstumsfaktoren für die Kultivierung unter vereinfachten und kosteneffizienten Bedingungen hin untersucht. Während die murinen Zellklone auf unbeschichteten Kunststoff in einer Mediumformulierung mit hEGF, mNoggin, Y-27632 und 10% FCS wuchsen, zeigten die humanen Zellklone eine Notwendigkeit für eine Col I-Vorbeschichtung zusammen mit einer Zusammensetzung des Mediums, wie sie üblicherweise für primäre humane Sphäroide/Organoide verwendet wird. Darüber hinaus führten diese vorangegangenen Analysen dazu, dass nur ein humaner Zellklon und drei murine Zellklone umfänglich charakterisiert wurden. Studien zu proliferativen Eigenschaften und spezifischen Gen- sowie Proteinexpressionsprofilen dieser Klone haben gezeigt, dass vermutlich Vorläuferzellen (TACs) anstelle der differenzierten Zelltypen der primären Organoide immortalisiert wurden, da die Kultivierung in 2D, 3D oder in Transwell®-basierten Modellen zu einem geringfügig veränderten Genexpressionsprofil im Vergleich untereinander und zudem zu einem stark reduzierten mRNA-Transkriptionswert für die analysierten Markergene, welche die differenzierten Zelltypen des nativen Epithels repräsentieren, die Folge war. Weiterhin zeigte die 3D-Kultivierung die Bildung von Sphäroid-ähnlichen Strukturen, jedoch keine Organoid-ähnlichen Strukturen unter verlängerten Kultur-bedingungen, was darauf hinweist, dass diese Zellpopulationen ihre Eigenschaft zur Differenzierung hin zu spezifischen intestinalen Zelltypen eingebüßt haben. Die Transwell®-basierten Modelle, welche für jeden Klon etabliert wurden, weisen zudem Organ-spezifische Eigenschaften auf, wie eine epitheliale Morphologie, ein charakteristisches Protein-expressionsprofil mit einer apikalen Schleimschicht, welche den Villin-1 positiven Zelllayer bedeckt und somit den Nachweis erbringt, dass die entstandenen immortalisierten Zellpopulationen zu einem gewissen Anteil aus Becherzellen und Enterozyten bestehen. Zudem konnten repräsentative Tight-Junction Komplexe, die auf eine dichte epitheliale Barriere hinweisen, in entsprechenden Proteinexpressionsprofilanalysen nachgewiesen werden. Der Nachweis einer sowohl dichten als auch funktionellen epithelialen Barriere konnte weitergehend durch TEER-Messungen und in vivo-ähnliche Transportmechanismen für die etablierten Zellklone qualifiziert werden, wodurch diese Zellen als alternative Zellquelle für in vitro Modelle des Dünndarms verwendet werden können. Darüber hinaus begünstigt die einfache Handhabung und Zellexpansion unter kostengünstigeren Bedingungen im Vergleich zu primären Organoidkulturen den Einsatz dieser neu-generierten Zellklone für Bioverfügbarkeits-Studien. Zusammenfassend zeigte diese Arbeit neue Komponenten, strukturelle und zelluläre, für die Etablierung alternativer in vitro-Modelle des Dünndarmepithels, die in präklinischen Screenings für reproduzierbare Studien hinsichtlich der Medikamententestung verwendet werden können. KW - Dünndarm KW - In vitro KW - Tissue Engineering KW - intestinal in vitro model KW - bacterial nanocellulose KW - primary-cell-derived immortalized cell line KW - in vitro Modelle KW - Bakterielle Nanocellulose KW - Primär-basierte immortalisierte Zelllinie Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-244107 ER - TY - JOUR A1 - Schwab, Andrea A1 - Buss, Alexa A1 - Pullig, Oliver A1 - Ehlicke, Franziska T1 - Ex vivo osteochondral test system with control over cartilage defect depth – A pilot study to investigate the effect of oxygen tension and chondrocyte based treatments in chondral and full thickness defects in an organ model JF - Osteoarthritis and Cartilage Open N2 - Objective Cartilage defect treatment strategies are dependent on the lesion size and severity. Osteochondral explant models are a platform to test cartilage repair strategies ex vivo. Current models lack in mimicking the variety of clinically relevant defect scenarios. In this controlled laboratory study, an automated device (artificial tissue cutter, ARTcut®) was implemented to reproducibly create cartilage defects with controlled depth. In a pilot study, the effect of cartilage defect depth and oxygen tension on cartilage repair was investigated. Design Osteochondral explants were isolated from porcine condyles. 4 ​mm chondral and full thickness defects were treated with either porcine chondrocytes (CHON) or co-culture of 20% CHON and 80% MSCs (MIX) embedded in collagen hydrogel. Explants were cultured with tissue specific media (without TGF-β) under normoxia (20% O\(_2\)) and physiological hypoxia (2% O\(_2\)). After 28 days, immune-histological stainings (collagen II and X, aggrecan) were scored (modified Bern score, 3 independent scorer) to quantitatively compare treatment outcome. Results ARTcut® represents a software-controlled device for creation of uniform cartilage defects. Comparing the scoring results of the MIX and the CHON treatment, a positive relation between oxygen tension and defect depth was observed. Low oxygen tension stimulated cartilaginous matrix deposition in MIX group in chondral defects and CHON treatment in full thickness defects. Conclusion ARTcut® has proved a powerful tool to create cartilage defects and thus opens a wide range of novel applications of the osteochondral model, including the relation between oxygen tension and defect depth on cartilage repair. KW - cartilage defectex vivo model KW - cartilage test system KW - chondrocytes KW - MSC KW - collagen type I hydrogel Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-260511 VL - 3 IS - 2 ER - TY - JOUR A1 - Zimniak, Melissa A1 - Kirschner, Luisa A1 - Hilpert, Helen A1 - Geiger, Nina A1 - Danov, Olga A1 - Oberwinkler, Heike A1 - Steinke, Maria A1 - Sewald, Katherina A1 - Seibel, Jürgen A1 - Bodem, Jochen T1 - The serotonin reuptake inhibitor Fluoxetine inhibits SARS-CoV-2 in human lung tissue JF - Scientific Reports N2 - To circumvent time-consuming clinical trials, testing whether existing drugs are effective inhibitors of SARS-CoV-2, has led to the discovery of Remdesivir. We decided to follow this path and screened approved medications "off-label" against SARS-CoV-2. Fluoxetine inhibited SARS-CoV-2 at a concentration of 0.8 mu g/ml significantly in these screenings, and the EC50 was determined with 387 ng/ml. Furthermore, Fluoxetine reduced viral infectivity in precision-cut human lung slices showing its activity in relevant human tissue targeted in severe infections. Fluoxetine treatment resulted in a decrease in viral protein expression. Fluoxetine is a racemate consisting of both stereoisomers, while the S-form is the dominant serotonin reuptake inhibitor. We found that both isomers show similar activity on the virus, indicating that the R-form might specifically be used for SARS-CoV-2 treatment. Fluoxetine inhibited neither Rabies virus, human respiratory syncytial virus replication nor the Human Herpesvirus 8 or Herpes simplex virus type 1 gene expression, indicating that it acts virus-specific. Moreover, since it is known that Fluoxetine inhibits cytokine release, we see the role of Fluoxetine in the treatment of SARS-CoV-2 infected patients of risk groups. KW - SARS-CoV-2 KW - viral epidemiology KW - viral infection Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-259820 VL - 11 ER - TY - JOUR A1 - Heydarian, Motaharehsadat A1 - Schweinlin, Matthias A1 - Schwarz, Thomas A1 - Rawal, Ravisha A1 - Walles, Heike A1 - Metzger, Marco A1 - Rudel, Thomas A1 - Kozjak-Pavlovic, Vera T1 - Triple co-culture and perfusion bioreactor for studying the interaction between Neisseria gonorrhoeae and neutrophils: A novel 3D tissue model for bacterial infection and immunity JF - Journal of Tissue Engineering N2 - Gonorrhea, a sexually transmitted disease caused by the bacteria Neisseria gonorrhoeae, is characterized by a large number of neutrophils recruited to the site of infection. Therefore, proper modeling of the N. gonorrhoeae interaction with neutrophils is very important for investigating and understanding the mechanisms that gonococci use to evade the immune response. We have used a combination of a unique human 3D tissue model together with a dynamic culture system to study neutrophil transmigration to the site of N. gonorrhoeae infection. The triple co-culture model consisted of epithelial cells (T84 human colorectal carcinoma cells), human primary dermal fibroblasts, and human umbilical vein endothelial cells on a biological scaffold (SIS). After the infection of the tissue model with N. gonorrhoeae, we introduced primary human neutrophils to the endothelial side of the model using a perfusion-based bioreactor system. By this approach, we were able to demonstrate the activation and transmigration of neutrophils across the 3D tissue model and their recruitment to the site of infection. In summary, the triple co-culture model supplemented by neutrophils represents a promising tool for investigating N. gonorrhoeae and other bacterial infections and interactions with the innate immunity cells under conditions closely resembling the native tissue environment. KW - Triple co-culture KW - biomimetic 3D tissue model KW - Neisseria gonorrhoeae KW - perfusion-based bioreactor system KW - neutrophil transmigration Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-259032 VL - 12 ER - TY - JOUR A1 - Borova, Solomiia A1 - Schlutt, Christine A1 - Nickel, Joachim A1 - Luxenhofer, Robert T1 - A Transient Initiator for Polypeptoids Postpolymerization α‐Functionalization via Activation of a Thioester Group JF - Macromolecular Chemistry and Physics N2 - Here, a postpolymerization modification method for an α-terminal functionalized poly-(N-methyl-glycine), also known as polysarcosine, is introduced. 4-(Methylthio)phenyl piperidine-4-carboxylate as an initiator for the ring-opening polymerization of N-methyl-glycine-N-carboxyanhydride followed by oxidation of the thioester group to yield an α-terminal reactive 4-(methylsulfonyl)phenyl piperidine-4-carboxylate polymer is utilized. This represents an activated carboxylic acid terminus, allowing straightforward modification with nucleophiles under mild reaction conditions and provides the possibility to introduce a wide variety of nucleophiles as exemplified using small molecules, fluorescent dyes, and model proteins. The new initiator yielded polymers with well-defined molar mass, low dispersity, and high end-group fidelity, as observed by gel permeation chromatography, nuclear magnetic resonance spectroscopy, and matrix-assisted laser desorption/ionization time-of-flight mass spectroscopy. The introduced method can be of great interest for bioconjugation, but requires optimization, especially for protein conjugation. KW - ring-opening polymerization KW - bioconjugation KW - functional initiators KW - polypeptoids KW - postpolymerization modification Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-257587 VL - 223 IS - 3 ER - TY - JOUR A1 - Sivarajan, Rinu A1 - Kessie, David Komla A1 - Oberwinkler, Heike A1 - Pallmann, Niklas A1 - Walles, Thorsten A1 - Scherzad, Agmal A1 - Hackenberg, Stephan A1 - Steinke, Maria T1 - Susceptibility of Human Airway Tissue Models Derived From Different Anatomical Sites to Bordetella pertussis and Its Virulence Factor Adenylate Cyclase Toxin JF - Frontiers in Cellular and Infection Microbiology N2 - To study the interaction of human pathogens with their host target structures, human tissue models based on primary cells are considered suitable. Complex tissue models of the human airways have been used as infection models for various viral and bacterial pathogens. The Gram-negative bacterium Bordetella pertussis is of relevant clinical interest since whooping cough has developed into a resurgent infectious disease. In the present study, we created three-dimensional tissue models of the human ciliated nasal and tracheo-bronchial mucosa. We compared the innate immune response of these models towards the B. pertussis virulence factor adenylate cyclase toxin (CyaA) and its enzymatically inactive but fully pore-forming toxoid CyaA-AC\(^-\). Applying molecular biological, histological, and microbiological assays, we found that 1 µg/ml CyaA elevated the intracellular cAMP level but did not disturb the epithelial barrier integrity of nasal and tracheo-bronchial airway mucosa tissue models. Interestingly, CyaA significantly increased interleukin 6, interleukin 8, and human beta defensin 2 secretion in nasal tissue models, whereas tracheo-bronchial tissue models were not significantly affected compared to the controls. Subsequently, we investigated the interaction of B. pertussis with both differentiated primary nasal and tracheo-bronchial tissue models and demonstrated bacterial adherence and invasion without observing host cell type-specific significant differences. Even though the nasal and the tracheo-bronchial mucosa appear similar from a histological perspective, they are differentially susceptible to B. pertussis CyaA in vitro. Our finding that nasal tissue models showed an increased innate immune response towards the B. pertussis virulence factor CyaA compared to tracheo-bronchial tissue models may reflect the key role of the nasal airway mucosa as the first line of defense against airborne pathogens. KW - human nasal epithelial cells KW - human tracheo-bronchial epithelial cells KW - human airway mucosa tissue models KW - adenylate cyclase toxin KW - Bordetella pertussis Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-253302 SN - 2235-2988 VL - 11 ER - TY - JOUR A1 - Haeusner, Sebastian A1 - Herbst, Laura A1 - Bittorf, Patrick A1 - Schwarz, Thomas A1 - Henze, Chris A1 - Mauermann, Marc A1 - Ochs, Jelena A1 - Schmitt, Robert A1 - Blache, Ulrich A1 - Wixmerten, Anke A1 - Miot, Sylvie A1 - Martin, Ivan A1 - Pullig, Oliver T1 - From Single Batch to Mass Production–Automated Platform Design Concept for a Phase II Clinical Trial Tissue Engineered Cartilage Product JF - Frontiers in Medicine N2 - Advanced Therapy Medicinal Products (ATMP) provide promising treatment options particularly for unmet clinical needs, such as progressive and chronic diseases where currently no satisfying treatment exists. Especially from the ATMP subclass of Tissue Engineered Products (TEPs), only a few have yet been translated from an academic setting to clinic and beyond. A reason for low numbers of TEPs in current clinical trials and one main key hurdle for TEPs is the cost and labor-intensive manufacturing process. Manual production steps require experienced personnel, are challenging to standardize and to scale up. Automated manufacturing has the potential to overcome these challenges, toward an increasing cost-effectiveness. One major obstacle for automation is the control and risk prevention of cross contaminations, especially when handling parallel production lines of different patient material. These critical steps necessitate validated effective and efficient cleaning procedures in an automated system. In this perspective, possible technologies, concepts and solutions to existing ATMP manufacturing hurdles are discussed on the example of a late clinical phase II trial TEP. In compliance to Good Manufacturing Practice (GMP) guidelines, we propose a dual arm robot based isolator approach. Our novel concept enables complete process automation for adherent cell culture, and the translation of all manual process steps with standard laboratory equipment. Moreover, we discuss novel solutions for automated cleaning, without the need for human intervention. Consequently, our automation concept offers the unique chance to scale up production while becoming more cost-effective, which will ultimately increase TEP availability to a broader number of patients. KW - ATMP KW - tissue engineering KW - GMP KW - manufacturing KW - autologous KW - cartilage regeneration KW - automation & robotics KW - automation Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-244631 SN - 2296-858X VL - 8 ER - TY - JOUR A1 - Li, Shushan A1 - Stöckl, Sabine A1 - Lukas, Christoph A1 - Götz, Julia A1 - Herrmann, Marietta A1 - Federlin, Marianne A1 - Grässel, Susanne T1 - hBMSC-Derived Extracellular Vesicles Attenuate IL-1β-Induced Catabolic Effects on OA-Chondrocytes by Regulating Pro-inflammatory Signaling Pathways JF - Frontiers in Bioengineering and Biotechnology N2 - Background: Human bone marrow-derived mesenchymal stromal cells (hBMSCs) provide a promising therapeutic approach in the cell-based therapy of osteoarthritis (OA). However, several disadvantages evolved recently, including immune responses of the host and regulatory hurdles, making it necessary to search for alternative treatment options. Extracellular vesicles (EVs) are released by multiple cell types and tissues into the extracellular microenvironment, acting as message carriers during intercellular communication. Here, we investigate putative protective effects of hBMSC-derived EVs as a cell-free approach, on IL-1β-stimulated chondrocytes obtained from OA-patients. Methods: EVs were harvested from the cell culture supernatant of hBMSCs by a sequential ultracentrifugation process. Western blot, scanning electron microscopy (SEM), and nanoparticle tracking analysis (NTA) were performed to characterize the purified particles as EVs. Intracellular incorporation of EVs, derived from PHK26-labeled hBMSCs, was tested by adding the labeled EVs to human OA chondrocytes (OA-CH), followed by fluorescence microscopy. Chondrocytes were pre-stimulated with IL-1β for 24 h, followed by EVs treatment for 24 h. Subsequently, proliferation, apoptosis, and migration (wound healing) were analyzed via BrdU assay, caspase 3/7 assay, and scratch assay, respectively. With qRT-PCR, the relative expression level of anabolic and catabolic genes was determined. Furthermore, immunofluorescence microscopy and western blot were performed to evaluate the protein expression and phosphorylation levels of Erk1/2, PI3K/Akt, p38, TAK1, and NF-κB as components of pro-inflammatory signaling pathways in OA-CH. Results: EVs from hBMSCs (hBMSC-EVs) promote proliferation and reduce apoptosis of OA-CH and IL-1β-stimulated OA-CH. Moreover, hBMSC-EVs attenuate IL-1β-induced reduction of chondrocyte migration. Furthermore, hBMSC-EVs increase gene expression of PRG4, BCL2, and ACAN (aggrecan) and decrease gene expression of MMP13, ALPL, and IL1ß in OA-CH. Notably, COL2A1, SOX9, BCL2, ACAN, and COMP gene expression levels were significantly increased in IL-1β+ EV groups compared with those IL-1β groups without EVs, whereas the gene expression levels of COLX, IL1B, MMP13, and ALPL were significantly decreased in IL-1β+ EV groups compared to IL-1β groups without EVs. In addition, the phosphorylation status of Erk1/2, PI3K/Akt, p38, TAK1, and NF-κB signaling molecules, induced by IL-1β, is prevented by hBMSC- EVs. Conclusion: EVs derived from hBMSCs alleviated IL-1β-induced catabolic effects on OA-CH via promoting proliferation and migration and reducing apoptosis, probably via downregulation of IL-1ß-activated pro-inflammatory Erk1/2, PI3K/Akt, p38, TAK1, and NF-κB signaling pathways. EVs released from BMSCs may be considered as promising cell-free intervention strategy in cartilage regenerative medicine, avoiding several adverse effects of cell-based regenerative approaches. KW - extracellular vesicles KW - IL-1ß KW - osteoarthritis KW - signaling pathways KW - hBMSC KW - chondrocytes Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-219749 SN - 2296-4185 VL - 8 ER - TY - JOUR A1 - Niedermair, Tanja A1 - Lukas, Christoph A1 - Li, Shushan A1 - Stöckl, Sabine A1 - Craiovan, Benjamin A1 - Brochhausen, Christoph A1 - Federlin, Marianne A1 - Herrmann, Marietta A1 - Grässel, Susanne T1 - Influence of Extracellular Vesicles Isolated From Osteoblasts of Patients With Cox-Arthrosis and/or Osteoporosis on Metabolism and Osteogenic Differentiation of BMSCs JF - Frontiers in Bioengineering and Biotechnology N2 - Background: Studies with extracellular vesicles (EVs), including exosomes, isolated from mesenchymal stem cells (MSC) indicate benefits for the treatment of musculoskeletal pathologies as osteoarthritis (OA) and osteoporosis (OP). However, little is known about intercellular effects of EVs derived from pathologically altered cells that might influence the outcome by counteracting effects from “healthy” MSC derived EVs. We hypothesize, that EVs isolated from osteoblasts of patients with hip OA (coxarthrosis/CA), osteoporosis (OP), or a combination of both (CA/OP) might negatively affect metabolism and osteogenic differentiation of bone-marrow derived (B)MSCs. Methods: Osteoblasts, isolated from bone explants of CA, OP, and CA/OP patients, were compared regarding growth, viability, and osteogenic differentiation capacity. Structural features of bone explants were analyzed via μCT. EVs were isolated from supernatant of naïve BMSCs and CA, OP, and CA/OP osteoblasts (osteogenic culture for 35 days). BMSC cultures were stimulated with EVs and subsequently, cell metabolism, osteogenic marker gene expression, and osteogenic differentiation were analyzed. Results: Trabecular bone structure was different between the three groups with lowest number and highest separation in the CA/OP group. Viability and Alizarin red staining increased over culture time in CA/OP osteoblasts whereas growth of osteoblasts was comparable. Alizarin red staining was by trend higher in CA compared to OP osteoblasts after 35 days and ALP activity was higher after 28 and 35 days. Stimulation of BMSC cultures with CA, OP, and CA/OP EVs did not affect proliferation but increased caspase 3/7-activity compared to unstimulated BMSCs. BMSC viability was reduced after stimulation with CA and CA/OP EVs compared to unstimulated BMSCs or stimulation with OP EVs. ALP gene expression and activity were reduced in BMSCs after stimulation with CA, OP, and CA/OP EVs. Stimulation of BMSCs with CA EVs reduced Alizarin Red staining by trend. Conclusion: Stimulation of BMSCs with EVs isolated from CA, OP, and CA/OP osteoblasts had mostly catabolic effects on cell metabolism and osteogenic differentiation irrespective of donor pathology and reflect the impact of tissue microenvironment on cell metabolism. These catabolic effects are important for understanding differences in effects of EVs on target tissues/cells when harnessing them as therapeutic drugs. KW - extracellular vesicles KW - mesenchymal stem cells KW - osteoblasts KW - osteoarthritis KW - osteoporosis KW - EVs KW - osteogenic differentiation Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-219902 SN - 2296-4185 VL - 8 ER - TY - JOUR A1 - Hinderer, Svenja A1 - Shen, Nian A1 - Ringuette, Léa-Jeanne A1 - Hansmann, Jan A1 - Reinhardt, Dieter P A1 - Brucker, Sara Y A1 - Davis, Elaine C A1 - Schenke-Layland, Katja T1 - In vitro elastogenesis: instructing human vascular smooth muscle cells to generate an elastic fiber-containing extracellular matrix scaffold JF - Biomedical Materials N2 - Elastic fibers are essential for the proper function of organs including cardiovascular tissues such as heart valves and blood vessels. Although (tropo)elastin production in a tissue-engineered construct has previously been described, the assembly to functional elastic fibers in vitro using human cells has been highly challenging. In the present study, we seeded primary isolated human vascular smooth muscle cells (VSMCs) onto 3D electrospun scaffolds and exposed them to defined laminar shear stress using a customized bioreactor system. Increased elastin expression followed by elastin deposition onto the electrospun scaffolds, as well as on newly formed fibers, was observed after six days. Most interestingly, we identified the successful deposition of elastogenesis-associated proteins, including fibrillin-1 and -2, fibulin-4 and -5, fibronectin, elastin microfibril interface located protein 1 (EMILIN-1) and lysyl oxidase (LOX) within our engineered constructs. Ultrastructural analyses revealed a developing extracellular matrix (ECM) similar to native human fetal tissue, which is composed of collagens, microfibrils and elastin. To conclude, the combination of a novel dynamic flow bioreactor and an electrospun hybrid polymer scaffold allowed the production and assembly of an elastic fiber-containing ECM. KW - elastin KW - elastic fibers KW - electrospinning KW - tissue engineering KW - regenerative medicine KW - heart valve KW - cardiovascular Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-254074 VL - 10 IS - 3 ER - TY - JOUR A1 - Ockermann, Philipp A1 - Headley, Laura A1 - Lizio, Rosario A1 - Hansmann, Jan T1 - A Review of the Properties of Anthocyanins and Their Influence on Factors Affecting Cardiometabolic and Cognitive Health JF - Nutrients N2 - The incidence of cardiovascular and metabolic diseases has increased over the last decades and is an important cause of death worldwide. An upcoming ingredient on the nutraceutical market are anthocyanins, a flavonoid subgroup, abundant mostly in berries and fruits. Epidemiological studies have suggested an association between anthocyanin intake and improved cardiovascular risk, type 2 diabetes and myocardial infarct. Clinical studies using anthocyanins have shown a significant decrease in inflammation markers and oxidative stress, a beneficial effect on vascular function and hyperlipidemia by decreasing low-density lipoprotein and increasing high-density lipoprotein. They have also shown a potential effect on glucose homeostasis and cognitive decline. This review summarizes the effects of anthocyanins in in-vitro, animal and human studies to give an overview of their application in medical prevention or as a dietary supplement. KW - anthocyanins KW - antioxidative KW - blood pressure KW - hyperlipidemia KW - diabetes KW - inflammation Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-245116 SN - 2072-6643 VL - 13 IS - 8 ER - TY - JOUR A1 - Wohlfarth, Carolin A1 - Schmitteckert, Stefanie A1 - Härtle, Janina D. A1 - Houghton, Lesley A. A1 - Dweep, Harsh A1 - Fortea, Marina A1 - Assadi, Ghazaleh A1 - Braun, Alexander A1 - Mederer, Tanja A1 - Pöhner, Sarina A1 - Becker, Philip P. A1 - Fischer, Christine A1 - Granzow, Martin A1 - Mönnikes, Hubert A1 - Mayer, Emeran A. A1 - Sayuk, Gregory A1 - Boeckxstaens, Guy A1 - Wouters, Mira M. A1 - Simrén, Magnus A1 - Lindberg, Greger A1 - Ohlsson, Bodil A1 - Schmidt, Peter Thelin A1 - Dlugosz, Aldona A1 - Agreus, Lars A1 - Andreasson, Anna A1 - D'Amato, Mauro A1 - Burwinkel, Barbara A1 - Bermejo, Justo Lorenzo A1 - Röth, Ralph A1 - Lasitschka, Felix A1 - Vicario, Maria A1 - Metzger, Marco A1 - Santos, Javier A1 - Rappold, Gudrun A. A1 - Martinez, Cristina A1 - Niesler, Beate T1 - miR-16 and miR-103 impact 5-HT4 receptor signalling and correlate with symptom profile in irritable bowel syndrome JF - Scientific Reports N2 - Irritable bowel syndrome (IBS) is a gut-brain disorder involving alterations in intestinal sensitivity and motility. Serotonin 5-HT4 receptors are promising candidates in IBS pathophysiology since they regulate gut motor function and stool consistency, and targeted 5-HT4R selective drug intervention has been proven beneficial in subgroups of patients. We identified a single nucleotide polymorphism (SNP) (rs201253747) c.*61 T > C within the 5-HT4 receptor gene \(HTR4\) to be predominantly present in diarrhoea-IBS patients (IBS-D). It affects a binding site for the miR-16 family and miR-103/miR-107 within the isoforms \({HTR4b/i}\) and putatively impairs \(HTR4\) expression. Subsequent miRNA profiling revealed downregulation of miR-16 and miR-103 in the jejunum of IBS-D patients correlating with symptoms. \(In\) \(vitro\) assays confirmed expression regulation via three 3′UTR binding sites. The novel isoform \(HTR4b\_2\) lacking two of the three miRNA binding sites escapes miR-16/103/107 regulationin SNP carriers. We provide the first evidence that \(HTR4\) expression is fine-tuned by miRNAs, and that this regulation is impaired either by the SNP c.*61 T > C or bydiminished levels of miR-16 and miR-103 suggesting that \(HTR4\) might be involved in the development of IBS-D. KW - Medicine KW - Gene regulation KW - Irritable bowel syndrome Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-173478 VL - 7 ER - TY - JOUR A1 - Appelt‐Menzel, Antje A1 - Oerter, Sabrina A1 - Mathew, Sanjana A1 - Haferkamp, Undine A1 - Hartmann, Carla A1 - Jung, Matthias A1 - Neuhaus, Winfried A1 - Pless, Ole T1 - Human iPSC‐Derived Blood‐Brain Barrier Models: Valuable Tools for Preclinical Drug Discovery and Development? JF - Current Protocols in Stem Cell Biology N2 - Translating basic biological knowledge into applications remains a key issue for effectively tackling neurodegenerative, neuroinflammatory, or neuroendocrine disorders. Efficient delivery of therapeutics across the neuroprotective blood‐brain barrier (BBB) still poses a demanding challenge for drug development targeting central nervous system diseases. Validated in vitro models of the BBB could facilitate effective testing of drug candidates targeting the brain early in the drug discovery process during lead generation. We here review the potential of mono‐ or (isogenic) co‐culture BBB models based on brain capillary endothelial cells (BCECs) derived from human‐induced pluripotent stem cells (hiPSCs), and compare them to several available BBB in vitro models from primary human or non‐human cells and to rodent in vivo models, as well as to classical and widely used barrier models [Caco‐2, parallel artificial membrane permeability assay (PAMPA)]. In particular, we are discussing the features and predictivity of these models and how hiPSC‐derived BBB models could impact future discovery and development of novel CNS‐targeting therapeutics. KW - blood‐brain barrier (BBB) KW - CNS disease KW - drug permeability screening KW - human‐induced pluripotent stem cells (hiPSC) KW - preclinical drug discovery Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-218509 VL - 55 IS - 1 ER - TY - JOUR A1 - Hofmann, Julian A1 - Fayez, Shaimaa A1 - Scheiner, Matthias A1 - Hoffmann, Matthias A1 - Oerter, Sabrina A1 - Appelt‐Menzel, Antje A1 - Maher, Pamela A1 - Maurice, Tangui A1 - Bringmann, Gerhard A1 - Decker, Michael T1 - Sterubin: Enantioresolution and Configurational Stability, Enantiomeric Purity in Nature, and Neuroprotective Activity in Vitro and in Vivo JF - Chemistry – A European Journal N2 - Alzheimer′s disease (AD) is a neurological disorder with still no preventive or curative treatment. Flavonoids are phytochemicals with potential therapeutic value. Previous studies described the flavanone sterubin isolated from the Californian plant Eriodictyon californicum as a potent neuroprotectant in several in vitro assays. Herein, the resolution of synthetic racemic sterubin (1) into its two enantiomers, (R)‐1 and (S)‐1, is described, which has been performed on a chiral chromatographic phase, and their stereochemical assignment online by HPLC‐ECD coupling. (R)‐1 and (S)‐1 showed comparable neuroprotection in vitro with no significant differences. While the pure stereoisomers were configurationally stable in methanol, fast racemization was observed in the presence of culture medium. We also established the occurrence of extracted sterubin as its pure (S)‐enantiomer. Moreover, the activity of sterubin (1) was investigated for the first time in vivo, in an AD mouse model. Sterubin (1) showed a significant positive impact on short‐ and long‐term memory at low dosages. KW - Alzheimer′s disease KW - chiral resolution KW - circular dichroism KW - Eriodictyon californicum KW - flavonoids KW - sterubin Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-215993 VL - 26 IS - 32 SP - 7299 EP - 7308 ER - TY - JOUR A1 - Lohr, David A1 - Terekhov, Maxim A1 - Veit, Franziska A1 - Schreiber, Laura Maria T1 - Longitudinal assessment of tissue properties and cardiac diffusion metrics of the ex vivo porcine heart at 7 T: Impact of continuous tissue fixation using formalin JF - NMR in Biomedicine N2 - In this study we aimed to assess the effects of continuous formalin fixation on diffusion and relaxation metrics of the ex vivo porcine heart at 7 T. Magnetic resonance imaging was performed on eight piglet hearts using a 7 T whole body system. Hearts were measured fresh within 3 hours of cardiac arrest followed by immersion in 10% neutral buffered formalin. T\(_{2}\)* and T\(_{2}\) were assessed using a gradient multi‐echo and multi‐echo spin echo sequence, respectively. A spin echo and a custom stimulated echo sequence were employed to assess diffusion time‐dependent changes in metrics of cardiac diffusion tensor imaging. SNR was determined for b = 0 images. Scans were performed for 5 mm thick apical, midcavity and basal slices (in‐plane resolution: 1 mm) and repeated 7, 15, 50, 100 and 200 days postfixation. Eigenvalues of the apparent diffusion coefficient (ADC) and fractional anisotropy (FA) decreased significantly (P < 0.05) following fixation. Relative to fresh hearts, FA values 7 and 200 days postfixation were 90% and 80%, while respective relative ADC values at those fixation stages were 78% and 92%. Statistical helix and sheetlet angle distributions as well as respective mean and median values showed no systematic influence of continuous formalin fixation. Similar to changes in the ADC, values for T\(_{2}\), T\(_{2}\)* and SNR dropped initially postfixation. Respective relative values compared with fresh hearts at day 7 were 64%, 79% and 68%, whereas continuous fixation restored T\(_{2}\), T\(_{2}\)* and SNR leading to relative values of 74%, 100%, and 81% at day 200, respectively. Relaxation parameters and diffusion metrics are significantly altered by continuous formalin fixation. The preservation of microstructure metrics following prolonged fixation is a key finding that may enable future studies of ventricular remodeling in cardiac pathologies. KW - cardiovascular MR methods KW - diffusion tensor imaging KW - heart structure KW - relaxometry Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-215536 VL - 33 IS - 7 ER - TY - THES A1 - Ramani Mohan, Ramkumar T1 - Effect of Mechanical Stress On Stem Cells to Improve Better Bone Regeneration T1 - Die Auswirkung von mechanischer Belastung auf Stammzellen zur Verbesserung der Knochenregeneration N2 - Critical size bone defects and nonunion fractures remain difficult to treat. Although cell‐loaded bone substitutes have improved bone ingrowth and formation, the lack of methods for achieving viability and the uniform distribution of cells in the scaffold limits their use as bone grafts. In addition, the predominant mechanical stimulus that drives early osteogenic cell maturation has not been clearly identified. Further, it is challenging to evaluate mechanical stimuli (i.e., deformation and fluid–flow-induced shear stress) because they are interdependent. This thesis compares different mechanical stimuli applied to cell-seeded scaffolds to develop bone grafts efficiently for the treatment of critical size bone defects. It also seeks to understand how deformation strain and interstitial fluid–flow-induced shear stress promote osteogenic lineage commitment. In this thesis, different scaffolds were seeded with primary human bone marrow mesenchymal stem cells (BM-MSCs) from different donors and subjected to static and dynamic culture conditions. In contrast with the static culture conditions, homogenous cell distributions were accomplished under dynamic culture conditions. Additionally, the induction of osteogenic lineage commitment without the addition of soluble factors was observed in the bioreactor system after one week of cell culture. To determine the role of mechanical stimuli, a bioreactor was developed to apply mechanical deformation force to a mesenchymal stem sell (MSC) line (telomerase reverse transcriptase (TERT)) expressing a strain-responsive AP-1 luciferase reporter construct on porous scaffolds. Increased luciferase expression was observed in the deformation strain compared with the shear stress strain. Furthermore, the expression of osteogenic lineage commitment markers such as osteonectin, osteocalcin (OC), osteopontin, runt-related transcription factor 2 (RUNX2), alkaline phosphate (AP), and collagen type 1 was significantly downregulated in the shear stress strain compared with the deformation strain. These findings establish that the deformation strain was the predominant stimulus causing skeletal precursors to undergo osteogenesis in earlier stages of osteogenic cell maturation. Finally, these findings were used to develop a bioreactor in vitro test system in which the effect of medication on osteoporosis could be tested. Primary human BM-MSCs from osteoporotic donors were subjected to strontium ranelate (an osteoporotic drug marketed as Protelos®). Increased expression of collagen type 1 and calcification was seen in the drugtreated osteoporotic stem cells compared with the nondrug-treated osteoporotic stem cells. Thus, this bioreactor technology can easily be adapted into an in vitro osteoporotic drug testing system. N2 - Knochendefekte kritischer Größe und Frakturen mit Pseudoarthrose bleiben schwierig zu behandeln. Obwohl zellbeladene Knochenersatzprodukte das Einwachsen und die Bildung von Knochen verbessert haben, schränken fehlende Methoden zur Erreichung der Lebensfähigkeit und der gleichmäßigen Verteilung der Zellen im Gerüst die Verwendung von Knochenersatzprodukten als Knochentransplantate ein. Ebenfalls konnte der vorherrschende mechanische Reiz, der die frühe osteogene Zellreifung antreibt nicht eindeutig identifiziert werden. Ferner ist es schwierig, mechanische Reize (d. H. Verformung und durch Flüssigkeitsströmung induzierte Scherbeanspruchung) zu bewerten, da diese Größen sie voneinander abhängig sind. Diese Arbeit vergleicht die Auswirkung verschiedener mechanischer Reize auf mit Zellen besiedelte Gerüste, um herauszufinden, ob Knochentransplantate effizient entwickelt werden können damit sie für die Behandlung von Knochendefekten einsetzbar sind. Des Weiteren wird versucht zu verstehen, wie Verformungsdehnung und durch interstitielle Flüssigkeitsströmung induzierte Scherbeanspruchung die Bindung osteogener Linien fördern. In dieser Arbeit wurden verschiedene Gerüste mit primären mesenchymalen Knochenmarkstammzellen (BM-MSCs) von verschiedenen Spendern ausgesät und statischen und dynamischen Kulturbedingungen ausgesetzt. Im Gegensatz zu den statischen Kulturbedingungen wurde unter dynamischen Kulturbedingungen eine homogene Zellverteilungen erreicht. Zusätzlich wurde im Bioreaktorsystem nach einer Woche Zellkultur eine Formung einer osteogenen Linienbindung auch ohne Zusätze von löslichen Faktoren beobachtet. Um die Rolle mechanischer Stimuli zu bestimmen, wurde ein Bioreaktor entwickelt, um auf porösen Scaffolds eine mechanische Verformungskraft auf eine mesenchymale Stammzelllinie (MSC) (Telomerase Reverse Transkriptase (TERT)) auszuüben. Diese exprimiert ein auf Dehnung ansprechendes AP-1-Luciferase-Reporterkonstrukt. Eine erhöhte LuciferaseExpression wurde in der Verformungsdehnung im Vergleich zur Scherspannungsdehnung beobachtet. Darüber hinaus war die Expression von osteogenen Linien Marker wie Osteonektin, Osteocalcin (OC), Osteopontin, Runt-verwandtem Transkriptionsfaktor 2 (RUNX2), alkalischem Phosphat (AP) und Kollagen Typ 1 in der Scherbeanspruchungsbelastung im Vergleich zur Verformungsdehnung signifikant herabreguliert. Diese Befunde belegen, dass die Verformungsdehnung der vorherrschende Stimulus war, der dazu führte, dass Skelettvorläufer in früheren Stadien der osteogenen Zellreifung eine Osteogenese durchliefen. Schließlich wurden diese Ergebnisse verwendet, um ein Bioreaktor-In-vitro-Testsystem zu entwickeln, in dem die Wirkung von Medikamenten auf Osteoporose getestet werden konnte. Primäre humane BM-MSCs von osteoporotischen Spendern wurden Strontiumranelat (einem als Protelos® vertriebenen Arzneimittel zur Therapie der Osteoporose) ausgesetzt. Eine erhöhte Expression von Kollagen Typ 1 und Verkalkung wurde in den mit Arzneimitteln behandelten osteoporotischen Stammzellen im Vergleich zu den nicht mit Arzneimitteln behandelten osteoporotischen Stammzellen beobachtet. Somit kann diese Bioreaktortechnologie leicht in ein in vitro Arzneimitteltestsystem angepasst werden. KW - Bioreactor KW - Mechanical deformation KW - Scaffold bone implant Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-240134 ER - TY - JOUR A1 - Berger, Constantin A1 - Zdzieblo, Daniela T1 - Glucose transporters in pancreatic islets JF - Pflügers Archiv - European Journal of Physiology N2 - The fine-tuning of glucose uptake mechanisms is rendered by various glucose transporters with distinct transportcharacteristics. In the pancreatic islet, facilitative diffusion glucose transporters (GLUTs), and sodium-glucosecotransporters (SGLTs) contribute to glucose uptake and represent important components in the glucose-stimulatedhormone release from endocrine cells, therefore playing a crucial role in blood glucose homeostasis. This reviewsummarizes the current knowledge aboutcell type-specific expression profiles as well as proven and putative functionsof distinct GLUT and SGLT family members in the human and rodent pancreatic islet and further discusses their possibleinvolvement in onset and progression ofdiabetes mellitus. In context of GLUTs, we focus on GLUT2, characterizing themain glucose transporter in insulin-secretingβ-cells in rodents. In addition, we discuss recent data proposing that otherGLUT family members, namely GLUT1 and GLUT3, render this task in humans. Finally, we summarize latest infor-mation about SGLT1 and SGLT2 as representatives of the SGLT family that have been reported to be expressed predominantly in the α-cell population with a suggested functional role in the regulation of glucagon release KW - Glucose transport KW - Pancreatic islet KW - β-Cell KW - α-Cell KW - GLUTs KW - SGLTs Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-232738 SN - 0031-6768 VL - 472 ER - TY - JOUR A1 - Kühnemundt, Johanna A1 - Leifeld, Heidi A1 - Scherg, Florian A1 - Schmitt, Matthias A1 - Nelke, Lena C. A1 - Schmitt, Tina A1 - Bauer, Florentin A1 - Göttlich, Claudia A1 - Fuchs, Maximilian A1 - Kunz, Meik A1 - Peindl, Matthias A1 - Brähler, Caroline A1 - Kronenthaler, Corinna A1 - Wischhusen, Jörg A1 - Prelog, Martina A1 - Walles, Heike A1 - Dandekar, Thomas A1 - Dandekar, Gudrun A1 - Nietzer, Sarah L. T1 - Modular micro-physiological human tumor/tissue models based on decellularized tissue for improved preclinical testing JF - ALTEX N2 - High attrition-rates entailed by drug testing in 2D cell culture and animal models stress the need for improved modeling of human tumor tissues. In previous studies our 3D models on a decellularized tissue matrix have shown better predictivity and higher chemoresistance. A single porcine intestine yields material for 150 3D models of breast, lung, colorectal cancer (CRC) or leukemia. The uniquely preserved structure of the basement membrane enables physiological anchorage of endothelial cells and epithelial-derived carcinoma cells. The matrix provides different niches for cell growth: on top as monolayer, in crypts as aggregates and within deeper layers. Dynamic culture in bioreactors enhances cell growth. Comparing gene expression between 2D and 3D cultures, we observed changes related to proliferation, apoptosis and stemness. For drug target predictions, we utilize tumor-specific sequencing data in our in silico model finding an additive effect of metformin and gefitinib treatment for lung cancer in silico, validated in vitro. To analyze mode-of-action, immune therapies such as trispecific T-cell engagers in leukemia, as well as toxicity on non-cancer cells, the model can be modularly enriched with human endothelial cells (hECs), immune cells and fibroblasts. Upon addition of hECs, transmigration of immune cells through the endothelial barrier can be investigated. In an allogenic CRC model we observe a lower basic apoptosis rate after applying PBMCs in 3D compared to 2D, which offers new options to mirror antigen-specific immunotherapies in vitro. In conclusion, we present modular human 3D tumor models with tissue-like features for preclinical testing to reduce animal experiments. KW - modular tumor tissue models KW - invasiveness KW - bioreactor culture KW - combinatorial drug predictions KW - immunotherapies Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-231465 VL - 38 ER - TY - JOUR A1 - Gensler, Marius A1 - Leikeim, Anna A1 - Möllmann, Marc A1 - Komma, Miriam A1 - Heid, Susanne A1 - Müller, Claudia A1 - Boccaccini, Aldo R. A1 - Salehi, Sahar A1 - Groeber-Becker, Florian A1 - Hansmann, Jan T1 - 3D printing of bioreactors in tissue engineering: A generalised approach JF - PLoS One N2 - 3D printing is a rapidly evolving field for biological (bioprinting) and non-biological applications. Due to a high degree of freedom for geometrical parameters in 3D printing, prototype printing of bioreactors is a promising approach in the field of Tissue Engineering. The variety of printers, materials, printing parameters and device settings is difficult to overview both for beginners as well as for most professionals. In order to address this problem, we designed a guidance including test bodies to elucidate the real printing performance for a given printer system. Therefore, performance parameters such as accuracy or mechanical stability of the test bodies are systematically analysed. Moreover, post processing steps such as sterilisation or cleaning are considered in the test procedure. The guidance presented here is also applicable to optimise the printer settings for a given printer device. As proof of concept, we compared fused filament fabrication, stereolithography and selective laser sintering as the three most used printing methods. We determined fused filament fabrication printing as the most economical solution, while stereolithography is most accurate and features the highest surface quality. Finally, we tested the applicability of our guidance by identifying a printer solution to manufacture a complex bioreactor for a perfused tissue construct. Due to its design, the manufacture via subtractive mechanical methods would be 21-fold more expensive than additive manufacturing and therefore, would result in three times the number of parts to be assembled subsequently. Using this bioreactor we showed a successful 14-day-culture of a biofabricated collagen-based tissue construct containing human dermal fibroblasts as the stromal part and a perfusable central channel with human microvascular endothelial cells. Our study indicates how the full potential of biofabrication can be exploited, as most printed tissues exhibit individual shapes and require storage under physiological conditions, after the bioprinting process. KW - stem cells KW - technology Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-231368 VL - 15 IS - 11 ER - TY - JOUR A1 - Weissenberger, Manuel A1 - Weissenberger, Manuela H. A1 - Wagenbrenner, Mike A1 - Heinz, Tizian A1 - Reboredo, Jenny A1 - Holzapfel, Boris M. A1 - Rudert, Maximilian A1 - Groll, Jürgen A1 - Evans, Christopher H. A1 - Steinert, Andre F. T1 - Different types of cartilage neotissue fabricated from collagen hydrogels and mesenchymal stromal cells via SOX9, TGFB1 or BMP2 gene transfer JF - PLoS One N2 - Objective As native cartilage consists of different phenotypical zones, this study aims to fabricate different types of neocartilage constructs from collagen hydrogels and human mesenchymal stromal cells (MSCs) genetically modified to express different chondrogenic factors. Design Human MSCs derived from bone-marrow of osteoarthritis (OA) hips were genetically modified using adenoviral vectors encoding sex-determining region Y-type high-mobility-group-box (SOX)9,transforming growth factor beta (TGFB) 1or bone morphogenetic protein (BMP) 2cDNA, placed in type I collagen hydrogels and maintained in serum-free chondrogenic media for three weeks. Control constructs contained unmodified MSCs or MSCs expressing GFP. The respective constructs were analyzed histologically, immunohistochemically, biochemically, and by qRT-PCR for chondrogenesis and hypertrophy. Results Chondrogenesis in MSCs was consistently and strongly induced in collagen I hydrogels by the transgenesSOX9,TGFB1andBMP2as evidenced by positive staining for proteoglycans, chondroitin-4-sulfate (CS4) and collagen (COL) type II, increased levels of glycosaminoglycan (GAG) synthesis, and expression of mRNAs associated with chondrogenesis. The control groups were entirely non-chondrogenic. The levels of hypertrophy, as judged by expression of alkaline phosphatase (ALP) and COL X on both the protein and mRNA levels revealed different stages of hypertrophy within the chondrogenic groups (BMP2>TGFB1>SOX9). Conclusions Different types of neocartilage with varying levels of hypertrophy could be generated from human MSCs in collagen hydrogels by transfer of genes encoding the chondrogenic factorsSOX9,TGFB1andBMP2. This technology may be harnessed for regeneration of specific zones of native cartilage upon damage. KW - stem cells KW - in vitro KW - chondrogenic differentiation KW - repair KW - chondrocytes KW - transplantation KW - stimulation KW - scaffolds KW - defects KW - therapy Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230494 VL - 15 IS - 8 ER - TY - JOUR A1 - Bittorf, Patrick A1 - Bergmann, Thorsten A1 - Merlin, Simone A1 - Olgasi, Chistina A1 - Pullig, Oliver A1 - Sanzenbacher, Ralf A1 - Zierau, Martin A1 - Walles, Heike A1 - Follenzi, Antonia A1 - Braspenning, Joris T1 - Regulatory-Compliant Validation of a Highly Sensitive qPCR for Biodistribution Assessment of Hemophilia A Patient Cells JF - Molecular Therapy - Methods & Clinical Development N2 - The investigation of the biodistribution profile of a cell-based medicinal product is a pivotal prerequisite to allow a factual benefit-risk assessment within the non-clinical to clinical translation in product development. Here, a qPCR-based method to determine the amount of human DNA in mouse DNA was validated according to the guidelines of the European Medicines Agency and the International Council for Harmonisation of Technical Requirements for Pharmaceuticals for Human Use. Furthermore, a preclinical worst-case scenario study was performed in which this method was applied to investigate the biodistribution of 2 x 10\(^6\) intravenously administered, genetically modified, blood outgrowth endothelial cells from hemophilia A patients after 24 h and 7 days. The validation of the qPCR method demonstrated high accuracy, precision, and linearity for the concentration interval of 1:1 x 10\(^3\) to 1:1 x 10\(^6\) human to mouse DNA. The application of this method in the biodistribution study resulted in the detection of human genomes in four out of the eight investigated organs after 24 h. After 7 days, no human DNA was detected in the eight organs analyzed. This biodistribution study provides mandatory data on the toxicokinetic safety profile of an actual candidate cell-based medicinal product. The extensive evaluation of the required validation parameters confirms the applicability of the qPCR method for non-clinical biodistribution studies. KW - outgrowth endothelial cells KW - real time PCR KW - in vivo KW - gene therapy KW - factor-VIII KW - murine KW - quantification KW - establishment KW - phenotype KW - xenotransplantation Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230284 VL - 18 ER - TY - JOUR A1 - Wallstabe, Julia A1 - Bussemer, Lydia A1 - Groeber-Becker, Florian A1 - Freund, Lukas A1 - Alb, Mirian A1 - Dragan, Mariola A1 - Waaga-Gasser, Ana Maria A1 - Jakubietz, Rafael A1 - Kneitz, Hermann A1 - Rosenwald, Andreas A1 - Rebhan, Silke A1 - Walles, Heike A1 - Mielke, Stephan T1 - Inflammation-Induced Tissue Damage Mimicking GvHD in Human Skin Models as Test Platform for Immunotherapeutics JF - ALTEX N2 - Due to the rapidly increasing development and use of cellular products, there is a rising demand for non-animal-based test platforms to predict, study and treat undesired immunity. Here, we generated human organotypic skin models from human biopsies by isolating and expanding keratinocytes, fibroblasts and microvascular endothelial cells and seeding these components on a collagen matrix or a biological vascularized scaffold matrix in a bioreactor. We then were able to induce inflammation-mediated tissue damage by adding pre-stimulated, mismatched allogeneic lymphocytes and/or inflammatory cytokine-containing supernatants histomorphologically mimicking severe graft versus host disease (GvHD) of the skin. This could be prevented by the addition of immunosuppressants to the models. Consequently, these models harbor a promising potential to serve as a test platform for the prediction, prevention and treatment of GvHD. They also allow functional studies of immune effectors and suppressors including but not limited to allodepleted lymphocytes, gamma-delta T cells, regulatory T cells and mesenchymal stromal cells, which would otherwise be limited to animal models. Thus, the current test platform, developed with the limitation that no professional antigen presenting cells are in place, could greatly reduce animal testing for investigation of novel immune therapies. KW - inflammation-induced tissue demage KW - immunotherapeutics Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-229974 VL - 37 IS - 3 ER - TY - JOUR A1 - Alzheimer, Mona A1 - Svensson, Sarah L. A1 - König, Fabian A1 - Schweinlin, Matthias A1 - Metzger, Marco A1 - Walles, Heike A1 - Sharma, Cynthia M. T1 - A three-dimensional intestinal tissue model reveals factors and small regulatory RNAs important for colonization with Campylobacter jejuni JF - PLoS Pathogens N2 - The Gram-negative Epsilonproteobacterium Campylobacter jejuni is currently the most prevalent bacterial foodborne pathogen. Like for many other human pathogens, infection studies with C. jejuni mainly employ artificial animal or cell culture models that can be limited in their ability to reflect the in-vivo environment within the human host. Here, we report the development and application of a human three-dimensional (3D) infection model based on tissue engineering to study host-pathogen interactions. Our intestinal 3D tissue model is built on a decellularized extracellular matrix scaffold, which is reseeded with human Caco-2 cells. Dynamic culture conditions enable the formation of a polarized mucosal epithelial barrier reminiscent of the 3D microarchitecture of the human small intestine. Infection with C. jejuni demonstrates that the 3D tissue model can reveal isolate-dependent colonization and barrier disruption phenotypes accompanied by perturbed localization of cell-cell junctions. Pathogenesis-related phenotypes of C. jejuni mutant strains in the 3D model deviated from those obtained with 2D-monolayers, but recapitulated phenotypes previously observed in animal models. Moreover, we demonstrate the involvement of a small regulatory RNA pair, CJnc180/190, during infections and observe different phenotypes of CJnc180/190 mutant strains in 2D vs. 3D infection models. Hereby, the CJnc190 sRNA exerts its pathogenic influence, at least in part, via repression of PtmG, which is involved in flagellin modification. Our results suggest that the Caco-2 cell-based 3D tissue model is a valuable and biologically relevant tool between in-vitro and in-vivo infection models to study virulence of C. jejuni and other gastrointestinal pathogens. KW - in vitro KW - stem cells KW - invasion KW - host KW - adhesion KW - epithelial cells KW - translocation KW - virulence KW - responses KW - microenvironment Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-229454 VL - 16 IS - 2 ER - TY - JOUR A1 - Schulte, Leon N. A1 - Schweinlin, Matthias A1 - Westermann, Alexander J. A1 - Janga, Harshavardhan A1 - Santos, Sara C. A1 - Appenzeller, Silke A1 - Walles, Heike A1 - Vogel, Jörg A1 - Metzger, Marco T1 - An Advanced Human Intestinal Coculture Model Reveals Compartmentalized Host and Pathogen Strategies during Salmonella Infection JF - mBio N2 - A major obstacle in infection biology is the limited ability to recapitulate human disease trajectories in traditional cell culture and animal models, which impedes the translation of basic research into clinics. Here, we introduce a three-dimensional (3D) intestinal tissue model to study human enteric infections at a level of detail that is not achieved by conventional two-dimensional monocultures. Our model comprises epithelial and endothelial layers, a primary intestinal collagen scaffold, and immune cells. Upon Salmonella infection, the model mimics human gastroenteritis, in that it restricts the pathogen to the epithelial compartment, an advantage over existing mouse models. Application of dual transcriptome sequencing to the Salmonella-infected model revealed the communication of epithelial, endothelial, monocytic, and natural killer cells among each other and with the pathogen. Our results suggest that Salmonella uses its type III secretion systems to manipulate STAT3-dependent inflammatory responses locally in the epithelium without accompanying alterations in the endothelial compartment. Our approach promises to reveal further human-specific infection strategies employed by Salmonella and other pathogens. IMPORTANCE Infection research routinely employs in vitro cell cultures or in vivo mouse models as surrogates of human hosts. Differences between murine and human immunity and the low level of complexity of traditional cell cultures, however, highlight the demand for alternative models that combine the in vivo-like properties of the human system with straightforward experimental perturbation. Here, we introduce a 3D tissue model comprising multiple cell types of the human intestinal barrier, a primary site of pathogen attack. During infection with the foodborne pathogen Salmonella enterica serovar Typhimurium, our model recapitulates human disease aspects, including pathogen restriction to the epithelial compartment, thereby deviating from the systemic infection in mice. Combination of our model with state-of-the-art genetics revealed Salmonella-mediated local manipulations of human immune responses, likely contributing to the establishment of the pathogen's infection niche. We propose the adoption of similar 3D tissue models to infection biology, to advance our understanding of molecular infection strategies employed by bacterial pathogens in their human host. KW - Salmonella KW - gene expression KW - infectious disease Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-229428 VL - 11, 2020 IS - 1 ER - TY - JOUR A1 - Fecher, David A1 - Hofmann, Elisabeth A1 - Buck, Andreas A1 - Bundschuh, Ralph A1 - Nietzer, Sarah A1 - Dandekar, Gudrun A1 - Walles, Thorsten A1 - Walles, Heike A1 - Lückerath, Katharina A1 - Steinke, Maria T1 - Human Organotypic Lung Tumor Models: Suitable For Preclinical \(^{18}\)F-FDG PET-Imaging JF - PLoS ONE N2 - Development of predictable in vitro tumor models is a challenging task due to the enormous complexity of tumors in vivo. The closer the resemblance of these models to human tumor characteristics, the more suitable they are for drug-development and –testing. In the present study, we generated a complex 3D lung tumor test system based on acellular rat lungs. A decellularization protocol was established preserving the architecture, important ECM components and the basement membrane of the lung. Human lung tumor cells cultured on the scaffold formed cluster and exhibited an up-regulation of the carcinoma-associated marker mucin1 as well as a reduced proliferation rate compared to respective 2D culture. Additionally, employing functional imaging with 2-deoxy-2-[\(^{18}\)F]fluoro-D-glucose positron emission tomography (FDG-PET) these tumor cell cluster could be detected and tracked over time. This approach allowed monitoring of a targeted tyrosine kinase inhibitor treatment in the in vitro lung tumor model non-destructively. Surprisingly, FDG-PET assessment of single tumor cell cluster on the same scaffold exhibited differences in their response to therapy, indicating heterogeneity in the lung tumor model. In conclusion, our complex lung tumor test system features important characteristics of tumors and its microenvironment and allows monitoring of tumor growth and -metabolism in combination with functional imaging. In longitudinal studies, new therapeutic approaches and their long-term effects can be evaluated to adapt treatment regimes in future. KW - lung and intrathoracic tumors KW - trachea KW - adenocarcinoma of the lung KW - cancer treatment KW - secondary lung tumors KW - pulmonary imaging KW - extracellular matrix KW - collagens Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-179678 VL - 11 IS - 8 ER - TY - JOUR A1 - Bianchi, Maria A1 - Sivarajan, Rinu A1 - Walles, Thorsten A1 - Hackenberg, Stephan A1 - Steinke, Maria T1 - Susceptibility of primary human airway epithelial cells to Bordetella pertussis adenylate cyclase toxin in two- and three-dimensional culture conditions JF - Innate Immunity N2 - The human pathogen Bordetella pertussis targets the respiratory epithelium and causes whooping cough. Its virulence factor adenylate cyclase toxin (CyaA) plays an important role in the course of infection. Previous studies on the impact of CyaA on human epithelial cells have been carried out using cell lines derived from the airways or the intestinal tract. Here, we investigated the interaction of CyaA and its enzymatically inactive but fully pore-forming toxoid CyaA-AC– with primary human airway epithelial cells (hAEC) derived from different anatomical sites (nose and tracheo-bronchial region) in two-dimensional culture conditions. To assess possible differences between the response of primary hAEC and respiratory cell lines directly, we included HBEC3-KT in our studies. In comparative analyses, we studied the impact of both the toxin and the toxoid on cell viability, intracellular cAMP concentration and IL-6 secretion. We found that the selected hAEC, which lack CD11b, were differentially susceptible to both CyaA and CyaA-AC–. HBEC3-KT appeared not to be suitable for subsequent analyses. Since the nasal epithelium first gets in contact with airborne pathogens, we further studied the effect of CyaA and its toxoid on the innate immunity of three-dimensional tissue models of the human nasal mucosa. The present study reveals first insights in toxin–cell interaction using primary hAEC. KW - Adenylate cyclase toxin KW - cyclic adenosine monophosphate KW - human respiratory epithelial cells KW - IL-6 KW - Bordetella pertussis Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-219849 SN - 1753-4259 SN - 1753-4267 VL - 27 IS - 1 SP - 89-98 ER - TY - JOUR A1 - Kessie, David K. A1 - Lodes, Nina A1 - Oberwinkler, Heike A1 - Goldman, William E. A1 - Walles, Thorsten A1 - Steinke, Maria A1 - Gross, Roy T1 - Activity of Tracheal Cytotoxin of Bordetella pertussis in a Human Tracheobronchial 3D Tissue Model JF - Frontiers in Cellular and Infection Microbiology N2 - Bordetella pertussis is a highly contagious pathogen which causes whooping cough in humans. A major pathophysiology of infection is the extrusion of ciliated cells and subsequent disruption of the respiratory mucosa. Tracheal cytotoxin (TCT) is the only virulence factor produced by B. pertussis that has been able to recapitulate this pathology in animal models. This pathophysiology is well characterized in a hamster tracheal model, but human data are lacking due to scarcity of donor material. We assessed the impact of TCT and lipopolysaccharide (LPS) on the functional integrity of the human airway mucosa by using in vitro airway mucosa models developed by co-culturing human tracheobronchial epithelial cells and human tracheobronchial fibroblasts on porcine small intestinal submucosa scaffold under airlift conditions. TCT and LPS either alone and in combination induced blebbing and necrosis of the ciliated epithelia. TCT and LPS induced loss of ciliated epithelial cells and hyper-mucus production which interfered with mucociliary clearance. In addition, the toxins had a disruptive effect on the tight junction organization, significantly reduced transepithelial electrical resistance and increased FITC-Dextran permeability after toxin incubation. In summary, the results indicate that TCT collaborates with LPS to induce the disruption of the human airway mucosa as reported for the hamster tracheal model. KW - tracheal cytotoxin KW - airway epithelia KW - tissue model KW - ciliostasis KW - tight junction KW - Bordetella pertussis Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-222736 SN - 2235-2988 VL - 10 ER - TY - JOUR A1 - Schmitz, Tobias A1 - Jannasch, Maren A1 - Weigel, Tobias A1 - Moseke, Claus A1 - Gbureck, Uwe A1 - Groll, Jürgen A1 - Walles, Heike A1 - Hansmann, Jan T1 - Nanotopographical Coatings Induce an Early Phenotype-Specific Response of Primary Material-Resident M1 and M2 Macrophages JF - Materials N2 - Implants elicit an immunological response after implantation that results in the worst case in a complete implant rejection. This biomaterial-induced inflammation is modulated by macrophages and can be influenced by nanotopographical surface structures such as titania nanotubes or fractal titanium nitride (TiN) surfaces. However, their specific impact on a distinct macrophage phenotype has not been identified. By using two different levels of nanostructures and smooth samples as controls, the influence of tubular TiO2 and fractal TiN nanostructures on primary human macrophages with M1 or M2-phenotype was investigated. Therefore, nanotopographical coatings were either, directly generated by physical vapor deposition (PVD) or by electrochemical anodization of titanium PVD coatings. The cellular response of macrophages was quantitatively assessed to demonstrate a difference in biocompatibility of nanotubes in respect to human M1 and M2-macrophages. Depending on the tube diameter of the nanotubular surfaces, low cell numbers and impaired cellular activity, was detected for M2-macrophages, whereas the impact of nanotubes on M1-polarized macrophages was negligible. Importantly, we could confirm this phenotypic response on the fractal TiN surfaces. The results indicate that the investigated topographies specifically impact the macrophage M2-subtype that modulates the formation of the fibrotic capsule and the long-term response to an implant. KW - nanotopographical surfaces KW - combination of physical vapor deposition and electrochemical etching KW - defined humanized test system KW - inflammatory response Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-203378 SN - 1996-1944 VL - 13 IS - 5 ER - TY - JOUR A1 - Jannasch, Maren A1 - Weigel, Tobias A1 - Engelhardt, Lisa A1 - Wiezoreck, Judith A1 - Gaetzner, Sabine A1 - Walles, Heike A1 - Schmitz, Tobias A1 - Hansmann, Jan T1 - \({In}\) \({vitro}\) chemotaxis and tissue remodeling assays quantitatively characterize foreign body reaction JF - ALTEX - Alternatives to Animal Experimentation N2 - Surgical implantation of a biomaterial triggers foreign-body-induced fibrous encapsulation. Two major mechanisms of this complex physiological process are (I) chemotaxis of fibroblasts from surrounding tissue to the implant region, followed by (II) tissue remodeling. As an alternative to animal studies, we here propose a process-aligned \({in}\) \({vitro}\) test platform to investigate the material dependency of fibroblast chemotaxis and tissue remodeling mediated by material-resident macrophages. Embedded in a biomimetic three-dimensional collagen hydrogel, chemotaxis of fibroblasts in the direction of macrophage-material-conditioned cell culture supernatant was analyzed by live cell imaging. A combination of statistical analysis with a complementary parameterized random walk model allowed quantitative and qualitative characterization of the cellular walk process. We thereby identified an increasing macrophage-mediated chemotactic potential ranking of biomaterials from glass over polytetrafluorethylene to titanium. To address long-term effects of biomaterial-resident macrophages on fibroblasts in a three-dimensional microenvironment, we further studied tissue remodeling by applying macrophage-material-conditioned medium on fibrous \({in}\) \({vitro}\) tissue models. A high correlation of the \({in}\) \({vitro}\) tissue model to state of the art \({in}\) \({vivo}\) study data was found. Titanium exhibited a significantly lower tissue remodeling capacity compared to polytetrafluorethylene. With this approach, we identified a material dependency of both chemotaxis and tissue remodeling processes, strengthening knowledge on their specific contribution to the foreign body reaction. KW - medicine KW - foreign body reaction KW - fibroblast chemotaxis KW - tissue remodeling KW - in vitro KW - quanititative characterization Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-172080 VL - 34 IS - 2 ER - TY - JOUR A1 - Suliman, Salwa A1 - Sun, Yang A1 - Pedersen, Torbjorn O. A1 - Xue, Ying A1 - Nickel, Joachim A1 - Waag, Thilo A1 - Finne-Wistrand, Anna A1 - Steinmüller-Nethl, Doris A1 - Krueger, Anke A1 - Costea, Daniela E. A1 - Mustafa, Kamal T1 - In vivo host response and degradation of copolymer scaffolds functionalized with nanodiamonds and bone morphogenetic protein 2 JF - Advanced Healthcare Materials N2 - The aim is to evaluate the effect of modifying poly[(L-lactide)-co-(epsilon-caprolactone)] scaffolds (PLCL) with nanodiamonds (nDP) or with nDP+physisorbed BMP-2 (nDP+BMP-2) on in vivo host tissue response and degradation. The scaffolds are implanted subcutaneously in Balb/c mice and retrieved after 1, 8, and 27 weeks. Molecular weight analysis shows that modified scaffolds degrade faster than the unmodified. Gene analysis at week 1 shows highest expression of proinflammatory markers around nDP scaffolds; although the presence of inflammatory cells and foreign body giant cells is more prominent around the PLCL. Tissue regeneration markers are highly expressed in the nDP+BMP-2 scaffolds at week 8. A fibrous capsule is detectable by week 8, thinnest around nDP scaffolds and at week 27 thickest around PLCL scaffolds. mRNA levels of ALP, COL1 alpha 2, and ANGPT1 are signifi cantly upregulating in the nDP+BMP-2 scaffolds at week 1 with ectopic bone seen at week 8. Even when almost 90% of the scaffold is degraded at week 27, nDP are observable at implantation areas without adverse effects. In conclusion, modifying PLCL scaffolds with nDP does not aggravate the host response and physisorbed BMP-2 delivery attenuates infl ammation while lowering the dose of BMP-2 to a relatively safe and economical level. KW - inflammatory response KW - biocompatibility KW - BMP-2 delivery KW - inflammation KW - tissue engineering Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-189764 VL - 5 IS - 6 ER - TY - JOUR A1 - Brendtke, Rico A1 - Wiehl, Michael A1 - Groeber, Florian A1 - Schwarz, Thomas A1 - Walles, Heike A1 - Hansmann, Jan T1 - Feasibility Study on a Microwave-Based Sensor for Measuring Hydration Level Using Human Skin Models JF - PLoS ONE N2 - Tissue dehydration results in three major types of exsiccosis—hyper-, hypo-, or isonatraemia. All three types entail alterations of salt concentrations leading to impaired biochemical processes, and can finally cause severe morbidity. The aim of our study was to demonstrate the feasibility of a microwave-based sensor technology for the non-invasive measurement of the hydration status. Electromagnetic waves at high frequencies interact with molecules, especially water. Hence, if a sample contains free water molecules, this can be detected in a reflected microwave signal. To develop the sensor system, human three-dimensional skin equivalents were instituted as a standardized test platform mimicking reproducible exsiccosis scenarios. Therefore, skin equivalents with a specific hydration and density of matrix components were generated and microwave measurements were performed. Hydration-specific spectra allowed deriving the hydration state of the skin models. A further advantage of the skin equivalents was the characterization of the impact of distinct skin components on the measured signals to investigate mechanisms of signal generation. The results demonstrate the feasibility of a non-invasive microwave-based hydration sensor technology. The sensor bears potential to be integrated in a wearable medical device for personal health monitoring. KW - gels KW - microwave radiation KW - collagens KW - skin physiology KW - reflection KW - skin anatomy KW - epidermis KW - antennas Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-179934 VL - 11 IS - 4 ER - TY - THES A1 - Siverino, Claudia T1 - Induction of ectopic bone formation by site directed immobilized BMP2 variants \(in\) \(vivo\) T1 - Induktion ektoper Knochenbildung durch gerichtet immobilisierte BMP2-Varianten \(in\) \(vivo\) N2 - In contrast to common bone fractures, critical size bone defects are unable to self-regenerate and therefore external sources for bone replacement are needed. Currently, the gold standard to treat critical size bone fractures, resulting from diseases, trauma or surgical interventions, is the use of autologous bone transplantation that is associated with several drawbacks such as postoperative pain, increased loss of blood during surgery and extended operative time. The field of bone tissue engineering focuses on the combination of biomaterials and growth factors to circumvent these adverse events and thereby to improve critical size bone defects treatment. To this aim, a promising approach is represented by using a collagen sponge soaked with one of the most powerful osteoinductive proteins, the bone morphogenetic protein 2 (BMP2). After the approval by the Food and Drug Administration (FDA), BMP2 was used to successfully treat several severe bone defects. However, the use of BMP2 delivery systems is associated with severe side effects such as inflammation, swelling, ectopic bone formation outside of the site of implantation and breathing problems if implanted in the area of the cervical spine. The occurrence of severe side effects is related to the supraphysiological amounts of the applied protein at the implantation site. The BMP2 is typically adsorbed into the scaffold and diffuses rapidly after implantation. Therefore, intensive research has been conducted to improve the protein’s retention ability, since a prolonged entrapment of the BMP2 at the implantation site would induce superior bone formation in vivo due to a minimized protein release. By controlling the release from newly designed materials or changing the protein immobilization methods, it seems possible to improve the osteoinductive properties of the resulting BMP2-functionalized scaffolds. The combination of biocompatible and biodegradable scaffolds functionalized with a covalently immobilized protein such as BMP2 would constitute a new alternative in bone tissue engineering by eliminating the aforementioned severe side effects. One of the most common immobilization techniques is represented by the so-called EDC/NHS chemistry. This coupling technique allows covalent biding of the growth factor but in a non-site direct manner, thus producing an implant with uncontrollable and unpredictable osteogenic activities. Therefore, the generation of BMP2 variants harboring functional groups that allow a site-directed immobilization to the scaffold, would enable the production of implants with reproducible osteogenic activity. The new BMP2 variants harbor an artificial amino acid at a specific position of the mature polypeptide sequence. The presence of the unnatural amino acid allows to use particular covalent immobilization techniques in a highly specific and site directed manner. The two selected BMP2 variants, BMP2 E83Plk and BMP2 E83Azide, were expressed in E. coli, renatured and purified by cation exchange chromatography. The final products were intensively analyzed in terms of purity and biological activity in vitro. The two BMP2 variants enabled the application of different coupling techniques and verify the possible options for site directed immobilization to the scaffold. Intensive analyses on the possible side effects caused by the coupling reactions and on the quantification of the coupled protein were performed. Both click chemistry reactions showed high reaction efficacies when the BMP2 variants were coupled to functionalized fluorophores. Quantification by ELISA and scintillation counting of radioactively labeled protein revealed different outcomes. Moreover, the amounts of protein detected for the BMP2 variants coupled to microspheres were similar to that of the wild type protein. Therefore, it was not possible to conclude whether the BMP2 variants were covalently coupled or just adsorbed. BMP2 variants being immobilized to various microspheres induced osteogenic differentiation of C2C12 cells in vitro, but only in those cells that were located in close proximity to the functionalized beads. This selectivity strongly indicates that the protein is for a great portion covalently coupled and not just adsorbed. Moreover, the difference between the covalently coupled BMP2 variants and the adsorbed BMP2 WT was confirmed in vivo. Injection of the BMP2-functionalized microspheres in a rat model induced subcutaneous bone formation. The main aim of the animal experiment was to prove whether covalently coupled BMP2 induces bone formation at significant lower doses if compared to the amount being required if the protein is simply adsorbed. To this aim, several BMP2 concentrations were tested in this animal experiment. The BMP2 variants, being covalently immobilized, were hypothesized to be retained and therefore bio-available at the site of implantation for a prolonged time. However, in the animal experiments, lower doses of either coupled or adsorbed protein were unable to induce any bone formation within the 12 weeks. In contrast, the highest doses induced bone formation that was first detected at week 4. During the 12 weeks of the experiment, an increase in bone density and a steady state bone volume was observed. These results were obtained only for the covalently coupled BMP2 E83Azide but not for BMP2 E83Plk that did not induce bone formation in any condition. The negative outcome after application of BMP2 E83Plk suggested that the coupling reaction might have provoked changes in the protein structure that extremely influenced its osteogenic capabilities in vivo. However, the histological examination of the different ossicles induced either by BMP2 WT or BMP2 E83Azide, revealed clear morphological differences. BMP2 WT induced a bone shell-like structure, while the covalently coupled protein induced uniform bone formation also throughout the inner part. The differences between the two newly formed bones can be clearly associated with the different protein delivery mechanisms. Thus, the developed functionalized microspheres constitute a new interesting strategy that needs further investigations in order to be able to be used as replacement of the currently used BMP2 WT loaded medical devices. N2 - Knochendefekte kritischer Größe sind im Vergleich zu normalen Knochenfrakturen nicht in der Lage selbst zu heilen. Daher werden zusätzlich Knochenersatzmaterialien zu deren Heilung benötigt. Der derzeitige Goldstandard in der Behandlung dieser Defekte, die durch Krankheiten, Traumata oder durch chirurgische Eingriffe hervorgerufen werden können, ist Transplantation autologen Knochens, was jedoch mit einigen Nachteilen verbunden ist. Als Alternative können neuartige biokompatible Materialien mit intrinsischem osteogenen Potential verwendet werden. Solche Materialien können Wachstumsfaktoren beinhalten welche aktiv die Heilung des beschädigten Knochens fördern. Ein vielversprechender Ansatz um dieses Ziel zu erreichen, ist der Einsatz eines Kollagenträgers, welcher mit einem der stärksten osteoinduktiven Proteine, dem Bone Morphogenic Protein 2 (BMP2) dotiert ist. Nach der Genehmigung durch die Food and Drug Administration (FDA), wurde BMP2 erfolgreich bei der Behandlung von schwerwiegenden Knochendefekten eingesetzt. Daher wird es als bisher beste Alternative zu autologen Transplantaten sowie als beste Möglichkeit zur Anregung der Knochenneubildung angesehen. Nichtdestotrotz geht der Einsatz von mit BMP2 beladenen Trägersystemen mit Nebenwirkungen, wie Entzündungen Schwellungen, Knochenwucherungen abseits des behandelten Defektes sowie Atembeschwerden bei Behandlungen im Bereich der Halswirbelsäule einher. Die Nebenwirkungen werden durch die supraphysiologische Menge an Protein, mit der die Trägerstruktur beladen wird hervorgerufen. Jedoch ist solch eine Menge an Protein nötig, da die Abgabe des Proteins an der Transplantationsstelle sehr schnell abläuft. Deshalb konzentriert sich die Forschung auf die Verbesserung der Freisetzungskinetik, da ein längerer Verbleib des BMP2 an der Implantationsstelle sowie eine verringerte Freisetzung des Proteins eine bessere Knochenbildung in vivo herbeiführt. Die Freisetzungskinetik kann durch die Eigenschaften neu entwickelter Materialien selbst oder durch alternative Methoden der Kopplung des Proteins an die Trägerstruktur verändert werden. Die Kombination aus biokompatiblen sowie biodegradierbaren Trägerstrukturen, an die über kovalente Bindungen BMP2 gebunden wird, stellt eine vielversprechende Alternative dar, welche die vorgenannten Nebenwirkungen bei der Knochenregeneration eliminiert. Die am häufigsten eingesetzte Methode zur kovalenten Anbindung von Proteinen an Trägerstukturen erfolgt über die sogenannte EDC/NHS-Chemie. Diese Technik erlaubt die allerdings nur eine ungerichtete Anbindung wodurch die standardisierte Reproduktion eines möglichen Medizinproduktes erschwert wird. Als Resultat entstehen sehr wahrscheinlich Implantate mit unvorhersehbaren osteogenen Eigenschaften. Die Herstellung von BMP2-Varianten, welche gerichtet an Trägerstrukturen gekoppelt werden können, ermöglicht die Herstellung von Implantaten mit reproduzierbarer osteogener Aktivität. Alle hier vorgestellte Varianten beinhalten eine artifizielle Aminosäure an einer bestimmten Stelle in der Polypeptidsequenz. Die künstliche Aminosäure ermöglicht den Einsatz spezieller Kopplungschemien für kovalente Bindungen, welche dadurch per Definition spezifisch und gerichtet sind. Für weiterführende Experimente wurden die folgende BMP2-Varianten ausgewählt: BMP2 E83Plk und BMP2 E83Azide. Diese wurden durch Expression in E. coli gewonnen, renaturiert und mittels Ionenchromatographie aufgereinigt. Die gewonnenen Produkte wurden hinsichtlich ihrer Reinheit und biologischen Aktivität in vitro untersucht. Beide BMP2 Varianten ermöglichen den Einsatz verschiedener Kopplungstechniken an geeignete Trägerstrukturen. Analysen hinsichtlich möglicher Nebenwirkungen aufgrund der Kupplungsreaktion sowie die genaue Quantifizierung der gekoppelten Proteine auf den Mikrosphären wurden durchgeführt. Beide Kopplungsstrategien zeigten eine hohe Effizienz wobei für die Quantifizierung der Proteinmengen mittels ELISA und Szintillationszählung unterschiedliche Werte gemessen wurden. Des Weiteren war die gemessene Proteinmenge von an Mikrosphären gekoppelten BMP2 Varianten in einem ähnlichen Bereich, wie die bei der ungekoppelten BMP2 WT Kontrolle gemessen wurden. Daher war es nicht möglich zu bestimmen, inwieweit die verwendeten BMP2-Varianten kovalent gebunden oder lediglich adsorbiert waren. Die BMP2 Varianten, die anhand der verwendeten Kopplungschemie in kovalent gebundener Form vorliegenden sollten, induzierten unabhängig vom jeweils verwendeten Material der Sphären die osteogene Differenzierung von C2C12 Zellen die in unmittelbarem Kontakt zu diesen Sphären standen. Im Falle von BMP2 WT beinhaltenden Sphären wurde auch Zelldifferenzierung in Distanz zu den einzelnen Sphären beobachten, was auf Diffusionsprozesse hindeutet. Da dies im Falle der kovalent gekoppelten BMP-2 Varianten nicht beobachtet werden konnte zeigt, dass das Protein hier zum Großteil kovalent gebunden vorliegt und nicht nur adsorbiert wird. Unterschiede zwischen den kovalent gebundenen BMP2 Varianten und dem adsorbierten Wildtyp zeigten sich auch in den Tierexperimenten. Mikrosphären, welche mit BMP2 WT oder einem der beiden BMP2 Varianten beladenen waren, wurden einer Ratte subkutan injiziert, was zu einer ektopen Knochenbildung führte. Das Ziel des Tierversuches war, zu überprüfen, ob geringere Dosen an kovalent gebundenem BMP2, verglichen mit der hohen benötigten Menge an adsorbiertem Protein diese Knochenneubildung induzieren kann. Dabei wurden verschiedene BMP2 Konzentrationen getestet. Die Hypothese war, dass die kovalent gebundenen BMP2 Varianten zurückgehalten werden beziehungsweise langsamer freigesetzt werden und daher über einen längeren Zeitraum an der Implantationsstelle wirksam sind. Allerdings konnte im Tierversuch weder durch niedrig dosiertes (< 10 μg) kovalent gebundenes noch durch adsorbiertes Protein innerhalb von 12 Wochen ektope Knochenbildung induziert werden. Dagegen konnte mit der höchsten Dosis bereits nach 4 Wochen Knochenbildung nachgewiesen werden. Während des zwölfwöchigen Experiments konnte ein Anstieg der Knochendichte und ein Steady State des Knochenvolumens beobachtet werden. Dies traf jedoch nur für das kovalent gebundene BMP2 E83Azide zu, jedoch nicht für das BMP2 E83Plk, welches bei allen Dosen kein Knochenwachstum hervorrufen konnte. Das negative Ergebnis nach der Gabe von BMP2 E83Plk deutet darauf hin, dass die hier verwendete Kopplungschemie möglicherweise eine Veränderung der Proteinstruktur bewirkt und dadurch die biologische Aktivität des Proteins verloren geht. Allerdings zeigten histologische Untersuchungen der gebildeten Knochenstrukturen, welche durch BMP2 WT oder durch BMP2 E83Azide hervorgerufen wurden, deutliche morphologische Unterschiede. BMP2 WT erzeugt eine solide schalenförmige Strukturen während das kovalent gebundene Protein ein eher gleichförmiges Knochenwachstum induziert, auch im Inneren der gebildeten Knochenstruktur, welches hier Reste implantierten Mikrosphären umschließt. Dies konnte nicht in den durch BMP2 WT induzierten Knochenstrukturen nachgewiesen werden. Der Unterschied zwischen den zwei Formen neu gebildeten Knochens kann mit den verschiedenen Freisetzungsmechanismen in Verbindung gebracht werden. Daher stellt die Entwicklung funktionalisierter Mikrosphären eine neue interessante Strategie dar, welche weiterführende Untersuchungen benötigt, um die aktuell genutzten BMP2 WT beinhaltenden Medizinprodukte zu ersetzen. KW - Bone morphogenetic protein 2 KW - ectopic bone formation KW - site directed immobilization KW - bone regeneration KW - in vivo study Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-169359 ER - TY - THES A1 - Radakovic, Dejan T1 - Development of a Dialysis Graft Based on Tissue Engineering Methods T1 - Entwicklung einer Dialysegraft basierend auf Tissue Engineering-Methoden N2 - Despite advancements of modern medicine, the number of patients with the the end-stage kidney disease keeps growing, and surgical procedures to establish and maintain a vascular access for hemodialysis are rising accordingly. Surgical access of choice remains autogenous arteriovenous fistula, whereas approach “fistula first at all costs” leads to failure in certain subgroups of patients. Modern synthetic vascular grafts fail to deliver long-term results comparable with AV fistula. With all that in mind, this work has an aim of developing a new alternative vascular graft, which can be used for hemodialysis access using the methods of TE, especially electrospinning technique. It is hypothesized that electrospun scaffold, made of PCL and collagen type I may assemble mechanical properties similar to native blood vessels. Seeding such electrospun scaffolds with human microvascular endothelial cells (hmvECs) and preconditioning with shear stress and continuous flow might achieve sufficient endothelial lining being able to resist acute thrombosis. One further topic considered on-site infections, which represents one of the most spread complications of dialysis therapy due to continuous needle punctures. The main hypothesis was that during electrospinning process, polymers can be blended with antibiotics with the aim of producing scaffolds with antimicrobial properties, which could lead to reducing the risk of on-site infection on one side, while not affecting the cell viability. N2 - Trotz der Fortschritte in der modernen Medizin wächst die Zahl der Patienten mit Nierenerkrankungen im Endstadium weiter, und die chirurgischen Verfahren zur Herstellung und Aufrechterhaltung eines Gefäßzugangs für die Hämodialyse nehmen entsprechend zu. Der chirurgische Zugang der Wahl bleibt eine autogene arteriovenöse Fistel, während der Ansatz „Fistel zuerst um jeden Preis“ bei bestimmten Untergruppen von Patienten zum Versagen führt. Moderne synthetische Gefäßtransplantate liefern keine mit AV-Fisteln vergleichbaren Langzeitergebnisse. Vor diesem Hintergrund zielt diese Arbeit darauf ab, ein neues alternatives Gefäßtransplantat zu entwickeln, das für den Zugang zur Hämodialyse unter Verwendung der TE-Methoden, insbesondere der Elektrospinntechnik, verwendet werden kann. Es wird angenommen, dass ein elektrogesponnenes Gerüst aus PCL und Kollagen Typ I ähnliche mechanische Eigenschaften wie native Blutgefäße aufweisen kann. Die Besiedelung solcher elektrogesponnener Gerüste mit menschlichen mikrovaskulären Endothelzellen (hmvECs) und das Vorkonditionieren mit Scherbeanspruchung und kontinuierlichem Fluss könnte eine ausreichende Endothelialisierung erreichen, um eine akute Thrombose vermeiden zu können. Ein weiteres Thema waren lokale Infektionen, die eine der am weitesten verbreiteten Komplikationen der Dialysetherapie aufgrund kontinuierlicher Nadelstiche darstellen. Die Haupthypothese war, dass Polymere während des Elektrospinnprozesses mit Antibiotika gemischt werden können, um Gerüste mit antimikrobiellen Eigenschaften herzustellen, die dazu führen können, dass das Risiko einer Infektion vor Ort auf einer Seite verringert wird, ohne die Lebensfähigkeit der Zellen zu beeinträchtigen. KW - Elektrospinnen KW - Tissue Engineering KW - Electrospinning Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-208492 ER - TY - JOUR A1 - Nietzer, Sarah A1 - Baur, Florentin A1 - Sieber, Stefan A1 - Hansmann, Jan A1 - Schwarz, Thomas A1 - Stoffer, Carolin A1 - Häfner, Heide A1 - Gasser, Martin A1 - Waaga-Gasser, Ana Maria A1 - Walles, Heike A1 - Dandekar, Gudrun T1 - Mimicking metastases including tumor stroma: a new technique to generate a three-dimensional colorectal cancer model based on a biological decellularized intestinal scaffold JF - Tissue Engineering Part C-Methods N2 - Tumor models based on cancer cell lines cultured two-dimensionally (2D) on plastic lack histological complexity and functionality compared to the native microenvironment. Xenogenic mouse tumor models display higher complexity but often do not predict human drug responses accurately due to species-specific differences. We present here a three-dimensional (3D) in vitro colon cancer model based on a biological scaffold derived from decellularized porcine jejunum (small intestine submucosa+mucosa, SISmuc). Two different cell lines were used in monoculture or in coculture with primary fibroblasts. After 14 days of culture, we demonstrated a close contact of human Caco2 colon cancer cells with the preserved basement membrane on an ultrastructural level as well as morphological characteristics of a well-differentiated epithelium. To generate a tissue-engineered tumor model, we chose human SW480 colon cancer cells, a reportedly malignant cell line. Malignant characteristics were confirmed in 2D cell culture: SW480 cells showed higher vimentin and lower E-cadherin expression than Caco2 cells. In contrast to Caco2, SW480 cells displayed cancerous characteristics such as delocalized E-cadherin and nuclear location of beta-catenin in a subset of cells. One central drawback of 2D cultures-especially in consideration of drug testing-is their artificially high proliferation. In our 3D tissue-engineered tumor model, both cell lines showed decreased numbers of proliferating cells, thus correlating more precisely with observations of primary colon cancer in all stages (UICC I-IV). Moreover, vimentin decreased in SW480 colon cancer cells, indicating a mesenchymal to epithelial transition process, attributed to metastasis formation. Only SW480 cells cocultured with fibroblasts induced the formation of tumor-like aggregates surrounded by fibroblasts, whereas in Caco2 cocultures, a separate Caco2 cell layer was formed separated from the fibroblast compartment beneath. To foster tissue generation, a bioreactor was constructed for dynamic culture approaches. This induced a close tissue-like association of cultured tumor cells with fibroblasts reflecting tumor biopsies. Therapy with 5-fluorouracil (5-FU) was effective only in 3D coculture. In conclusion, our 3D tumor model reflects human tissue-related tumor characteristics, including lower tumor cell proliferation. It is now available for drug testing in metastatic context-especially for substances targeting tumor-stroma interactions. KW - Multicenter randomized-trial KW - Carcinoma cells KW - Tissue KW - Fluorouracil KW - Matrix KW - 1st-line treatment KW - Beta-catenin KW - Invasion KW - 5-Fluorouracil KW - Fibroblasts Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-188202 VL - 22 IS - 7 ER - TY - JOUR A1 - Burns, Alan J. A1 - Goldstein, Allan M. A1 - Newgreen, Donald F. A1 - Stamp, Lincon A1 - Schäfer, Karl-Herbert A1 - Metzger, Marco A1 - Hotta, Ryo A1 - Young, Heather M. A1 - Andrews, Peter W. A1 - Thapar, Nikhil A1 - Belkind-Gerson, Jaime A1 - Bondurand, Nadege A1 - Bornstein, Joel C. A1 - Chan, Wood Yee A1 - Cheah, Kathryn A1 - Gershon, Michael D. A1 - Heuckeroth, Robert O. A1 - Hofstra, Robert M.W. A1 - Just, Lothar A1 - Kapur, Raj P. A1 - King, Sebastian K. A1 - McCann, Conor J. A1 - Nagy, Nandor A1 - Ngan, Elly A1 - Obermayr, Florian A1 - Pachnis, Vassilis A1 - Pasricha, Pankaj J. A1 - Sham, Mai Har A1 - Tam, Paul A1 - Vanden Berghe, Pieter T1 - White paper on guidelines concerning enteric nervous system stem cell therapy for enteric neuropathies JF - Developmental Biology N2 - Over the last 20 years, there has been increasing focus on the development of novel stem cell based therapies for the treatment of disorders and diseases affecting the enteric nervous system (ENS) of the gastrointestinal tract (so-called enteric neuropathies). Here, the idea is that ENS progenitor/stem cells could be transplanted into the gut wall to replace the damaged or absent neurons and glia of the ENS. This White Paper sets out experts' views on the commonly used methods and approaches to identify, isolate, purify, expand and optimize ENS stem cells, transplant them into the bowel, and assess transplant success, including restoration of gut function. We also highlight obstacles that must be overcome in order to progress from successful preclinical studies in animal models to ENS stem cell therapies in the clinic. KW - Neural crest cells KW - Rat mynteric plexus KW - Intestinal pseudoobstruction KW - Hypertrophic pyloric-stenosis KW - Hirschsprung disease liability KW - Slow-transit constipation KW - Oxide synthase gene KW - Term follow-up KW - Nitric-oxide KW - In-vivo KW - Enteric nervous system KW - Enteric neuropathies KW - Stem cells KW - Cell replacement therapy KW - Hirschsprung disease Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-187415 VL - 417 IS - 2 ER - TY - JOUR A1 - Groeber, Florian A1 - Schober, Lena A1 - Schmid, Freia F. A1 - Traube, Andrea A1 - Kolbus-Hernandez, Silvia A1 - Daton, Karolina A1 - Hoffmann, Sebastian A1 - Petersohn, Dirk A1 - Schaefer-Korting, Monika A1 - Walles, Heike A1 - Mewes, Karsten R. T1 - Catch-up validation study of an in vitro skin irritation test method based on an open source reconstructed epidermis (phase II) JF - Toxicology in Vitro N2 - To replace the Draize skin irritation assay (OECD guideline 404) several test methods based on reconstructed human epidermis (RHE) have been developed and were adopted in the OECD test guideline 439. However, all validated test methods in the guideline are linked to RHE provided by only three companies. Thus,the availability of these test models is dependent on the commercial interest of the producer. To overcome this limitation and thus to increase the accessibility of in vitro skin irritation testing, an open source reconstructed epidermis (OS-REp) was introduced. To demonstrate the capacity of the OS-REp in regulatory risk assessment, a catch-up-validation study was performed. The participating laboratories used in-house generated OS-REp to assess the set of 20 reference substances according to the performance standards amending the OECD test guideline 439. Testing was performed under blinded conditions. The within-laboratory reproducibility of 87% and the inter-laboratory reproducibility of 85% prove a high reliability of irritancy testing using the OS-REp protocol. In addition, the prediction capacity was with an accuracy of 80% comparable to previous published RHE based test protocols. Taken together the results indicate that the OS-REp test method can be used as a standalone alternative skin irritation test replacing the OECD test guideline 404. KW - Model KW - Chemicals KW - Assay KW - Episkin KW - Vivo KW - RHE KW - In vitro skin irritation testing KW - Open source reconstructed epidermis KW - Validation KW - Alternative test methods Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-187311 VL - 36 ER - TY - JOUR A1 - Suliman, Salwa A1 - Mustafa, Kamal A1 - Krueger, Anke A1 - Steinmüller-Nethl, Doris A1 - Finne-Wistrand, Anna A1 - Osdal, Tereza A1 - Hamza, Amani O. A1 - Sun, Yang A1 - Parajuli, Himalaya A1 - Waag, Thilo A1 - Nickel, Joachim A1 - Johannessen, Anne Christine A1 - McCormack, Emmet A1 - Costea, Daniela Elena T1 - Nanodiamond modified copolymer scaffolds affects tumour progression of early neoplastic oral keratinocytes JF - Biomaterials N2 - This study aimed to evaluate the tumorigenic potential of functionalising poly(LLA-co-CL) scaffolds. The copolymer scaffolds were functionalised with nanodiamonds (nDP) or with nDP and physisorbed BMP-2 (nDP-PHY) to enhance osteoinductivity. Culturing early neoplastic dysplastic keratinocytes (DOK\(^{Luc}\)) on nDP modified scaffolds reduced significantly their subsequent sphere formation ability and decreased significantly the cells' proliferation in the supra-basal layers of in vitro 3D oral neoplastic mucosa (3D-OT) when compared to DOK\(^{Luc}\) previously cultured on nDP-PHY scaffolds. Using an in vivo non-invasive environmentally-induced oral carcinogenesis model, nDP scaffolds were observed to reduce bioluminescence intensity of tumours formed by DOK\(^{Luc}\) + carcinoma associated fibroblasts (CAF). nDP modification was also found to promote differentiation of DOK\(^{Luc}\) both in vitro in 3D-OT and in vivo in xenografts formed by DOKLuc alone. The nDP-PHY scaffold had the highest number of invasive tumours formed by DOK\(^{Luc}\) + CAF outside the scaffold area compared to the nDP and control scaffolds. In conclusion, in vitro and in vivo results presented here demonstrate that nDP modified copolymer scaffolds are able to decrease the tumorigenic potential of DOK\(^{Luc}\), while confirming concerns for the therapeutic use of BMP-2 for reconstruction of bone defects in oral cancer patients due to its tumour promoting capabilities. KW - Bone morphogenetic protein-2 KW - Sinus floor augmentation KW - Marrow stromal cells KW - Growth; BMP-2 KW - Tumorigenicity KW - Biodegradable polymer scaffolds KW - Mandibular continuity defects KW - Squamous-cell carcinoma KW - In-vitro KW - Mesenchymal transition KW - BMP-2 KW - Bone tissue engineering KW - Biocompatibility KW - Microenvironment KW - Oral squamous cell carcinoma Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-188287 VL - 95 ER - TY - JOUR A1 - Schwedhelm, Ivo A1 - Zdzieblo, Daniela A1 - Appelt-Menzel, Antje A1 - Berger, Constantin A1 - Schmitz, Tobias A1 - Schuldt, Bernhard A1 - Franke, Andre A1 - Müller, Franz-Josef A1 - Pless, Ole A1 - Schwarz, Thomas A1 - Wiedemann, Philipp A1 - Walles, Heike A1 - Hansmann, Jan T1 - Automated real-time monitoring of human pluripotent stem cell aggregation in stirred tank reactors JF - Scientific Reports N2 - The culture of human induced pluripotent stem cells (hiPSCs) at large scale becomes feasible with the aid of scalable suspension setups in continuously stirred tank reactors (CSTRs). Innovative monitoring options and emerging automated process control strategies allow for the necessary highly defined culture conditions. Next to standard process characteristics such as oxygen consumption, pH, and metabolite turnover, a reproducible and steady formation of hiPSC aggregates is vital for process scalability. In this regard, we developed a hiPSC-specific suspension culture unit consisting of a fully monitored CSTR system integrated into a custom-designed and fully automated incubator. As a step towards cost-effective hiPSC suspension culture and to pave the way for flexibility at a large scale, we constructed and utilized tailored miniature CSTRs that are largely made from three-dimensional (3D) printed polylactic acid (PLA) filament, which is a low-cost material used in fused deposition modelling. Further, the monitoring tool for hiPSC suspension cultures utilizes in situ microscopic imaging to visualize hiPSC aggregation in real-time to a statistically significant degree while omitting the need for time-intensive sampling. Suitability of our culture unit, especially concerning the developed hiPSC-specific CSTR system, was proven by demonstrating pluripotency of CSTR-cultured hiPSCs at RNA (including PluriTest) and protein level. KW - Biomedical engineering KW - Stem-cell biotechnology Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-202649 VL - 9 ER - TY - JOUR A1 - Lohr, David A1 - Terekhov, Maxim A1 - Weng, Andreas Max A1 - Schroeder, Anja A1 - Walles, Heike A1 - Schreiber, Laura Maria T1 - Spin echo based cardiac diffusion imaging at 7T: An ex vivo study of the porcine heart at 7T and 3T JF - PLoS ONE N2 - Purpose of this work was to assess feasibility of cardiac diffusion tensor imaging (cDTI) at 7 T in a set of healthy, unfixed, porcine hearts using various parallel imaging acceleration factors and to compare SNR and derived cDTI metrics to a reference measured at 3 T. Magnetic resonance imaging was performed on 7T and 3T whole body systems using a spin echo diffusion encoding sequence with echo planar imaging readout. Five reference (b = 0 s/mm\(^2\)) images and 30 diffusion directions (b = 700 s/mm\(^2\)) were acquired at both 7 T and 3 T using a GRAPPA acceleration factor R = 1. Scans at 7 T were repeated using R = 2, R = 3, and R = 4. SNR evaluation was based on 30 reference (b = 0 s/mm\(^2\)) images of 30 slices of the left ventricle and cardiac DTI metrics were compared within AHA segmentation. The number of hearts scanned at 7 T and 3 T was n = 11. No statistically significant differences were found for evaluated helix angle, secondary eigenvector angle, fractional anisotropy and apparent diffusion coefficient at the different field strengths, given sufficiently high SNR and geometrically undistorted images. R≥3 was needed to reduce susceptibility induced geometric distortions to an acceptable amount. On average SNR in myocardium of the left ventricle was increased from 29±3 to 44±6 in the reference image (b = 0 s/mm\(^2\)) when switching from 3 T to 7 T. Our study demonstrates that high resolution, ex vivo cDTI is feasible at 7 T using commercial hardware. KW - Heart KW - Diffusion tensor imaging KW - Eigenvectors KW - Cardiac ventricles KW - Tractography KW - Magnetic resonance imaging KW - Data acquisition KW - Swine Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-201376 VL - 14 IS - 3 ER - TY - JOUR A1 - Derakhshani, Shaghayegh A1 - Kurz, Andreas A1 - Japtok, Lukasz A1 - Schumacher, Fabian A1 - Pilgram, Lisa A1 - Steinke, Maria A1 - Kleuser, Burkhard A1 - Sauer, Markus A1 - Schneider-Schaulies, Sibylle A1 - Avota, Elita T1 - Measles virus infection fosters dendritic cell motility in a 3D environment to enhance transmission to target cells in the respiratory epithelium JF - Frontiers in Immunology N2 - Transmission of measles virus (MV) from dendritic to airway epithelial cells is considered as crucial to viral spread late in infection. Therefore, pathways and effectors governing this process are promising targets for intervention. To identify these, we established a 3D respiratory tract model where MV transmission by infected dendritic cells (DCs) relied on the presence of nectin-4 on H358 lung epithelial cells. Access to recipient cells is an important prerequisite for transmission, and we therefore analyzed migration of MV-exposed DC cultures within the model. Surprisingly, enhanced motility toward the epithelial layer was observed for MV-infected DCs as compared to their uninfected siblings. This occurred independently of factors released from H358 cells indicating that MV infection triggered cytoskeletal remodeling associated with DC polarization enforced velocity. Accordingly, the latter was also observed for MV-infected DCs in collagen matrices and was particularly sensitive to ROCK inhibition indicating infected DCs preferentially employed the amoeboid migration mode. This was also implicated by loss of podosomes and reduced filopodial activity both of which were retained in MV-exposed uninfected DCs. Evidently, sphingosine kinase (SphK) and sphingosine-1-phosphate (S1P) as produced in response to virus-infection in DCs contributed to enhanced velocity because this was abrogated upon inhibition of sphingosine kinase activity. These findings indicate that MV infection promotes a push-and-squeeze fast amoeboid migration mode via the SphK/S1P system characterized by loss of filopodia and podosome dissolution. Consequently, this enables rapid trafficking of virus toward epithelial cells during viral exit. KW - dendritic cell KW - cell migration KW - measles virus KW - 3D tissue model KW - sphingosine-1-phosphate Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-201818 VL - 10 IS - 1294 ER - TY - JOUR A1 - Karl, Franziska A1 - Wußmann, Maximiliane A1 - Kreß, Luisa A1 - Malzacher, Tobias A1 - Fey, Phillip A1 - Groeber‐Becker, Florian A1 - Üçeyler, Nurcan T1 - Patient‐derived in vitro skin models for investigation of small fiber pathology JF - Annals of Clinical and Translational Neurology N2 - Objective To establish individually expandable primary fibroblast and keratinocyte cultures from 3‐mm skin punch biopsies for patient‐derived in vitro skin models to investigate of small fiber pathology. Methods We obtained 6‐mm skin punch biopsies from the calf of two patients with small fiber neuropathy (SFN) and two healthy controls. One half (3 mm) was used for diagnostic intraepidermal nerve fiber density (IENFD). From the second half, we isolated and cultured fibroblasts and keratinocytes. Cells were used to generate patient‐derived full‐thickness three‐dimensional (3D) skin models containing a dermal and epidermal component. Cells and skin models were characterized morphologically, immunocyto‐ and ‐histochemically (vimentin, cytokeratin (CK)‐10, CK 14, ki67, collagen1, and procollagen), and by electrical impedance. Results Distal IENFD was reduced in the SFN patients (2 fibers/mm each), while IENFD was normal in the controls (8 fibers/mm, 7 fibers/mm). Two‐dimensional (2D) cultured skin cells showed normal morphology, adequate viability, and proliferation, and expressed cell‐specific markers without relevant difference between SFN patient and healthy control. Using 2D cultured fibroblasts and keratinocytes, we obtained subject‐derived 3D skin models. Morphology of the 3D model was analogous to the respective skin biopsy specimens. Both, the dermal and the epidermal layer carried cell‐specific markers and showed a homogenous expression of extracellular matrix proteins. Interpretation Our protocol allows the generation of disease‐specific 2D and 3D skin models, which can be used to investigate the cross‐talk between skin cells and sensory neurons in small fiber pathology. KW - neurology Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-201649 VL - 6 IS - 9 ER - TY - JOUR A1 - Gomes, Sara F. Martins A1 - Westermann, Alexander J. A1 - Sauerwein, Till A1 - Hertlein, Tobias A1 - Förstner, Konrad U. A1 - Ohlsen, Knut A1 - Metzger, Marco A1 - Shusta, Eric V. A1 - Kim, Brandon J. A1 - Appelt-Menzel, Antje A1 - Schubert-Unkmeir, Alexandra T1 - Induced pluripotent stem cell-derived brain endothelial cells as a cellular model to study Neisseria meningitidis infection JF - Frontiers in Microbiology N2 - Meningococcal meningitis is a severe central nervous system infection that occurs when Neisseria meningitidis (Nm) penetrates brain endothelial cells (BECs) of the meningeal blood-cerebrospinal fluid barrier. As a human-specific pathogen, in vivo models are greatly limited and pose a significant challenge. In vitro cell models have been developed, however, most lack critical BEC phenotypes limiting their usefulness. Human BECs generated from induced pluripotent stem cells (iPSCs) retain BEC properties and offer the prospect of modeling the human-specific Nm interaction with BECs. Here, we exploit iPSC-BECs as a novel cellular model to study Nm host-pathogen interactions, and provide an overview of host responses to Nm infection. Using iPSC-BECs, we first confirmed that multiple Nm strains and mutants follow similar phenotypes to previously described models. The recruitment of the recently published pilus adhesin receptor CD147 underneath meningococcal microcolonies could be verified in iPSC-BECs. Nm was also observed to significantly increase the expression of pro-inflammatory and neutrophil-specific chemokines IL6, CXCL1, CXCL2, CXCL8, and CCL20, and the secretion of IFN-γ and RANTES. For the first time, we directly observe that Nm disrupts the three tight junction proteins ZO-1, Occludin, and Claudin-5, which become frayed and/or discontinuous in BECs upon Nm challenge. In accordance with tight junction loss, a sharp loss in trans-endothelial electrical resistance, and an increase in sodium fluorescein permeability and in bacterial transmigration, was observed. Finally, we established RNA-Seq of sorted, infected iPSC-BECs, providing expression data of Nm-responsive host genes. Altogether, this model provides novel insights into Nm pathogenesis, including an impact of Nm on barrier properties and tight junction complexes, and suggests that the paracellular route may contribute to Nm traversal of BECs. KW - Neisseria meningitidis KW - meningococcus KW - bacteria KW - stem cells KW - blood-cerebrospinal fluid barrier KW - blood-brain barrier KW - brain endothelial cells Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-201562 VL - 10 IS - 1181 ER - TY - JOUR A1 - Nickel, Joachim A1 - Mueller, Thomas D. T1 - Specification of BMP signaling JF - Cells N2 - Bone Morphogenetic Proteins (BMPs) together with the Growth and Differentiation Factors (GDFs) form the largest subgroup of the Transforming Growth Factor (TGF)β family and represent secreted growth factors, which play an essential role in many aspects of cell communication in higher organisms. As morphogens they exert crucial functions during embryonal development, but are also involved in tissue homeostasis and regeneration in the adult organism. Their involvement in maintenance and repair processes of various tissues and organs made these growth factors highly interesting targets for novel pharmaceutical applications in regenerative medicine. A hallmark of the TGFβ protein family is that all of the more than 30 growth factors identified to date signal by binding and hetero-oligomerization of a very limited set of transmembrane serine-threonine kinase receptors, which can be classified into two subgroups termed type I and type II. Only seven type I and five type II receptors exist for all 30plus TGFβ members suggesting a pronounced ligand-receptor promiscuity. Indeed, many TGFβ ligands can bind the same type I or type II receptor and a particular receptor of either subtype can usually interact with and bind various TGFβ ligands. The possible consequence of this ligand-receptor promiscuity is further aggravated by the finding that canonical TGFβ signaling of all family members seemingly results in the activation of just two distinct signaling pathways, that is either SMAD2/3 or SMAD1/5/8 activation. While this would implicate that different ligands can assemble seemingly identical receptor complexes that activate just either one of two distinct pathways, in vitro and in vivo analyses show that the different TGFβ members exert quite distinct biological functions with high specificity. This discrepancy indicates that our current view of TGFβ signaling initiation just by hetero-oligomerization of two receptor subtypes and transduction via two main pathways in an on-off switch manner is too simplified. Hence, the signals generated by the various TGFβ members are either quantitatively interpreted using the subtle differences in their receptor-binding properties leading to ligand-specific modulation of the downstream signaling cascade or additional components participating in the signaling activation complex allow diversification of the encoded signal in a ligand-dependent manner at all cellular levels. In this review we focus on signal specification of TGFβ members, particularly of BMPs and GDFs addressing the role of binding affinities, specificities, and kinetics of individual ligand-receptor interactions for the assembly of specific receptor complexes with potentially distinct signaling properties. KW - TGFβ/BMP signaling KW - ligand-receptor promiscuity KW - signal specification Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-193869 SN - 2073-4409 VL - 8 IS - 12 ER - TY - JOUR A1 - Meyer, Till Jasper A1 - Scherzad, Agmal A1 - Moratin, Helena A1 - Gehrke, Thomas Eckert A1 - Killisperger, Julian A1 - Hagen, Rudolf A1 - Wohlleben, Gisela A1 - Polat, Bülent A1 - Dembski, Sofia A1 - Kleinsasser, Norbert A1 - Hackenberg, Stephan T1 - The radiosensitizing effect of zinc oxide nanoparticles in sub-cytotoxic dosing is associated with oxidative stress in vitro JF - Materials N2 - Radioresistance is an important cause of head and neck cancer therapy failure. Zinc oxide nanoparticles (ZnO-NP) mediate tumor-selective toxic effects. The aim of this study was to evaluate the potential for radiosensitization of ZnO-NP. The dose-dependent cytotoxicity of ZnO-NP\(_{20 nm}\) and ZnO-NP\(_{100 nm}\) was investigated in FaDu and primary fibroblasts (FB) by an MTT assay. The clonogenic survival assay was used to evaluate the effects of ZnO-NP alone and in combination with irradiation on FB and FaDu. A formamidopyrimidine-DNA glycosylase (FPG)-modified single-cell microgel electrophoresis (comet) assay was applied to detect oxidative DNA damage in FB as a function of ZnO-NP and irradiation exposure. A significantly increased cytotoxicity after FaDu exposure to ZnO-NP\(_{20 nm}\) or ZnO-NP\(_{100 nm}\) was observed in a concentration of 10 µg/mL or 1 µg/mL respectively in 30 µg/mL of ZnO-NP\(_{20 nm}\) or 20 µg/mL of ZnO-NP\(_{100 nm}\) in FB. The addition of 1, 5, or 10 µg/mL ZnO-NP\(_{20 nm}\) or ZnO-NP\(_{100 nm}\) significantly reduced the clonogenic survival of FaDu after irradiation. The sub-cytotoxic dosage of ZnO-NP\(_{100 nm}\) increased the oxidative DNA damage compared to the irradiated control. This effect was not significant for ZnO-NP\(_{20 nm}\). ZnO-NP showed radiosensitizing properties in the sub-cytotoxic dosage. At least for the ZnO-NP\(_{100 nm}\), an increased level of oxidative stress is a possible mechanism of the radiosensitizing effect. KW - zinc oxide nanoparticles KW - irradiation KW - oxidative DNA damage KW - head and neck squamous cell carcinoma Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-193897 SN - 1996-1944 VL - 12 IS - 24 ER - TY - JOUR A1 - Belka, Janina A1 - Nickel, Joachim A1 - Kurth, Dirk G. T1 - Growth on metallo-supramolecular coordination polyelectrolyte (MEPE) stimulates osteogenic differentiation of human osteosarcoma cells (MG63) and human bone marrow derived mesenchymal stem cells JF - Polymers N2 - Background: Culturing of cells is typically performed on standard tissue culture plates generating growth conditions, which in general do not reflect the native three-dimensional cellular environment. Recent investigations provide insights in parameters, which strongly affect the general cellular behavior triggering essential processes such as cell differentiation. The physical properties of the used material, such as stiffness, roughness, or topology, as well as the chemical composition of the cell-surface interface are shown to play a key role in the initiation of particular cellular responses. Methods: We extended our previous research, which identified thin films of metallo-supramolecular coordination polyelectrolytes (MEPEs) as substrate to trigger the differentiation of muscular precursor cells. Results: Here, we show that the same MEPEs similarly stimulate the osteogenic differentiation of pre-osteoblasts. Remarkably, MEPE modified surfaces also trigger the differentiation of primary bone derived mesenchymal stem cells (BMSCs) towards the osteogenic lineage. Conclusion: This result leads to the conclusion that these surfaces individually support the specification of cell differentiation toward lineages that correspond to the natural commitment of the particular cell types. We, therefore, propose that Fe-MEPEs may be used as scaffold for the treatment of defects at least in muscular or bone tissue. KW - cell differentiation KW - metallo-supramolecular polymer KW - interface KW - iron metabolism Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-197264 SN - 2073-4360 VL - 11 IS - 7 ER - TY - JOUR A1 - Baur, Florentin A1 - Nietzer, Sarah L. A1 - Kunz, Meik A1 - Saal, Fabian A1 - Jeromin, Julian A1 - Matschos, Stephanie A1 - Linnebacher, Michael A1 - Walles, Heike A1 - Dandekar, Thomas A1 - Dandekar, Gudrun T1 - Connecting cancer pathways to tumor engines: a stratification tool for colorectal cancer combining human in vitro tissue models with boolean in silico models JF - Cancers N2 - To improve and focus preclinical testing, we combine tumor models based on a decellularized tissue matrix with bioinformatics to stratify tumors according to stage-specific mutations that are linked to central cancer pathways. We generated tissue models with BRAF-mutant colorectal cancer (CRC) cells (HROC24 and HROC87) and compared treatment responses to two-dimensional (2D) cultures and xenografts. As the BRAF inhibitor vemurafenib is—in contrast to melanoma—not effective in CRC, we combined it with the EGFR inhibitor gefitinib. In general, our 3D models showed higher chemoresistance and in contrast to 2D a more active HGFR after gefitinib and combination-therapy. In xenograft models murine HGF could not activate the human HGFR, stressing the importance of the human microenvironment. In order to stratify patient groups for targeted treatment options in CRC, an in silico topology with different stages including mutations and changes in common signaling pathways was developed. We applied the established topology for in silico simulations to predict new therapeutic options for BRAF-mutated CRC patients in advanced stages. Our in silico tool connects genome information with a deeper understanding of tumor engines in clinically relevant signaling networks which goes beyond the consideration of single drivers to improve CRC patient stratification. KW - in silico simulation KW - 3D tissue models KW - colorectal cancer KW - BRAF mutation KW - targeted therapy KW - stratification Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-193798 SN - 2072-6694 VL - 12 IS - 1 ER - TY - JOUR A1 - Heydarian, Motaharehsadat A1 - Yang, Tao A1 - Schweinlin, Matthias A1 - Steinke, Maria A1 - Walles, Heike A1 - Rudel, Thomas A1 - Kozjak-Pavlovic, Vera T1 - Biomimetic human tissue model for long-term study of Neisseria gonorrhoeae infection JF - Frontiers in Microbiology N2 - Gonorrhea is the second most common sexually transmitted infection in the world and is caused by Gram-negative diplococcus Neisseria gonorrhoeae. Since N. gonorrhoeae is a human-specific pathogen, animal infection models are only of limited use. Therefore, a suitable in vitro cell culture model for studying the complete infection including adhesion, transmigration and transport to deeper tissue layers is required. In the present study, we generated three independent 3D tissue models based on porcine small intestinal submucosa (SIS) scaffold by co-culturing human dermal fibroblasts with human colorectal carcinoma, endometrial epithelial, and male uroepithelial cells. Functional analyses such as transepithelial electrical resistance (TEER) and FITC-dextran assay indicated the high barrier integrity of the created monolayer. The histological, immunohistochemical, and ultra-structural analyses showed that the 3D SIS scaffold-based models closely mimic the main characteristics of the site of gonococcal infection in human host including the epithelial monolayer, the underlying connective tissue, mucus production, tight junction, and microvilli formation. We infected the established 3D tissue models with different N. gonorrhoeae strains and derivatives presenting various phenotypes regarding adhesion and invasion. The results indicated that the disruption of tight junctions and increase in interleukin production in response to the infection is strain and cell type-dependent. In addition, the models supported bacterial survival and proved to be better suitable for studying infection over the course of several days in comparison to commonly used Transwell® models. This was primarily due to increased resilience of the SIS scaffold models to infection in terms of changes in permeability, cell destruction and bacterial transmigration. In summary, the SIS scaffold-based 3D tissue models of human mucosal tissues represent promising tools for investigating N. gonorrhoeae infections under close-to-natural conditions. KW - 3D tissue model KW - small intestinal submucosa scaffold KW - co-culture KW - infection KW - Neisseria gonorrhoeae Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-197912 SN - 1664-302X VL - 10 IS - 1740 ER - TY - THES A1 - Baur, Florentin Philipp T1 - Establishment of a 3D tumour model and targeted therapy of BRAF-mutant colorectal cancer T1 - Entwicklung eines 3D Tumormodells und zielgerichtete Behandlung von BRAF-mutiertem kolorektalen Karzinom N2 - Cancer remains after cardiovascular diseases the leading cause of death worldwide and an estimated 8.2 million people died of it in 2012. By 2030, 13 million cancer deaths are expected due to the growth and ageing of the population. Hereof, colorectal cancer (CRC) is the third most common cancer in men and the second in women with a wide geographical variation across the world. Usually, CRC begins as a non-cancerous growth leading to an adenomatous polyp, or adenoma, arising from glandular cells. Since research has brought about better understanding of the mechanisms of cancer development, novel treatments such as targeted therapy have emerged in the past decades. Despite that, up to 95% of anticancer drugs tested in clinical phase I trials do not attain a market authorisation and hence these high attrition rates remain a key challenge for the pharmaceutical industry, making drug development processes enormously costly and inefficient. Therefore, new preclinical in vitro models which can predict drug responses in vivo more precisely are urgently needed. Tissue engineering not only provides the possibility of creating artificial three-dimensional (3D) in vitro tissues, such as functional organs, but also enables the investigation of drug responses in pathological tissue models, that is, in 3D cancer models which are superior to conventional two-dimensional (2D) cell cultures on petri dishes and can overcome the limitations of animal models, thereby reducing the need for preclinical in vivo models. In this thesis, novel 3D CRC models on the basis of a decellularised intestinal matrix were established. In the first part, it could be shown that the cell line SW480 exhibited different characteristics when grown in a 3D environment from those in conventional 2D culture. While the cells showed a mesenchymal phenotype in 2D culture, they displayed a more pronounced epithelial character in the 3D model. By adding stromal cells (fibroblasts), the cancer cells changed their growth pattern and built tumour-like structures together with the fibroblasts, thereby remodelling the natural mucosal structures of the scaffold. Additionally, the established 3D tumour model was used as a test system for treatment with standard chemotherapeutic 5-fluorouracil (5-FU). The second part of the thesis focused on the establishment of a 3D in vitro test system for targeted therapy. The US Food and Drug Administration has already approved of a number of drugs for targeted therapy of specific types of cancer. For instance, the small molecule vemurafenib (PLX4032, Zelboraf™) which demonstrated impressive response rates of 50–80% in melanoma patients with a mutation of the rapidly accelerated fibrosarcoma oncogene type B (BRAF) kinase which belongs to the mitogen active protein kinase (MAPK) signalling pathway. However, only 5% of CRC patients harbouring the same BRAF mutation respond to treatment with vemurafenib. An explanation for this unresponsiveness could be a feedback activation of the upstream EGFR, reactivating the MAPK pathway which sustains a proliferative signalling. To test this hypothesis, the two early passage cell lines HROC24 and HROC87, both presenting the mutation BRAF V600E but differing in other mutations, were used and their drug response to vemurafenib and/or gefitinib was assessed in conventional 2D cell culture and compared to the more advanced 3D model. Under 3D culture conditions, both cell lines showed a reduction of the proliferation rate only in the combination therapy approach. Furthermore, no significant differences between the various treatment approaches and the untreated control regarding apoptosis rate and viability for both cell lines could be found in the 3D tumour model which conferred an enhanced chemoresistance to the cancer cells. Because of the observed unresponsiveness to BRAF inhibition by vemurafenib as can be seen in the clinic for patients with BRAF mutations in CRC, the cell line HROC87 was used for further xenografting experiments and analysis of activation changes in the MAPK signalling pathway. It could be shown that the cells presented a reactivation of Akt in the 3D model when treated with both inhibitors, suggesting an escape mechanism for apoptosis which was not present in cells cultured under conventional 2D conditions. Moreover, the cells exhibited an activation of the hepatocyte growth factor receptor (HGFR, c-Met) in 2D and 3D culture, but this was not detectable in the xenograft model. This shows the limitations of in vivo models. The results suggest another feedback activation loop than that to the EGFR which might not primarily be involved in the resistance mechanism. This reflects the before mentioned high attrition rates in the preclinical drug testing. N2 - Krebs ist nach Herz- und Kreislauferkrankungen die führende Todesursache weltweit und 2012 starben daran geschätzt 8,2 Millionen Menschen. Für das Jahr 2030 werden 13 Millionen Krebstote erwartet, was auf das Bevölkerungswachstum und deren Überalterung zurückzuführen ist. Dabei ist das kolorektale Karzinom (engl. colorectal cancer, CRC) der dritthäufigste Krebs bei Männern und der zweithäufigste bei Frauen. Für gewöhnlich entwickelt sich CRC aus einem nicht-kanzerösen Wachstum, das zu einem adenomatösen Polyp bzw. Adenom führt, welches aus Drüsenzellen hervorgeht. Da die Forschung in den vergangenen Jahrzehnten ein besseres Verständnis für die Mechanistik der Krebsentstehung hervorgebracht hat, entstanden neuartige Behandlungsformen, wie die zielgerichtete Krebstherapie. Hohe Versagensraten, welche den Medikamentenentwicklungsprozess sehr kostenaufwendig und ineffizient machen, bleiben eine entscheidende Herausforderung für die pharmazeutische Industrie. Deshalb werden dringend neue präklinische in vitro Modelle, die bessere in vivo Wirkungsvorhersagen liefern, benötigt. Das Tissue Engineering bietet die Möglichkeit künstliche dreidimensionale (3D) in vitro Gewebe herzustellen, z.B. funktionelle Organe, aber es ermöglicht auch, die Reaktion auf ein Medikament in pathologischen Gewebemodellen, wie beispielsweise Krebsmodelle, zu untersuchen. Diese sind der konventionellen zweidimensionalen (2D) Zellkultur in Petrischalen überlegen und können die begrenzten Möglichkeiten von Tiermodellen erweitern, was zudem die Notwendigkeit für präklinische in vivo Modelle vermindert. In der vorliegenden Arbeit wurden neuartige 3D CRC Modelle auf Basis einer dezellularisierten intestinalen Matrix entwickelt. Im ersten Teil konnte gezeigt werden, dass die Zelllinie SW480 verschiedene Charakteristika bezüglich des Wachstums in der konventionellen 2D Zellkultur oder der 3D Umgebung aufwies. Im Gegensatz zu den mesenchymalen Eigenschaften der Zellen in der 2D Zellkultur, zeigten sie im 3D Modell einen betonteren epithelialen Charakter. Durch das Hinzufügen von Fibroblasten änderten die Krebszellen ihr Wachstumsverhalten und sie bildeten zusammen tumorartige Strukturen aus, wobei die natürlichen Strukturen der Darmmatrix, Krypten und Villi, umgebaut wurden. Zusätzlich wurde das entwickelte 3D Tumormodell als Testsystem für das Standardchemotherapeutikum 5-Fluorouracil (5-FU) herangezogen. Der zweite Teil der Dissertation konzentrierte sich auf die Entwicklung eines 3D in vitro Testsystems für die zielgerichtete Behandlung. Es gibt schon eine Reihe von der US Food and Drug Administration zugelassenen Medikamente für die zielgerichtete Behandlung spezifischer Tumorentitäten, wie z.B. Vemurafenib (PLX4032, Zelboraf™), das eindrucksvolle Ansprechraten von 50–80% bei Melanompatienten mit BRAF-Mutation erzielt. Trotzdem sprechen nur 5% der CRC-Patienten mit der gleichen BRAF-Mutation auf die Behandlung mit Vemurafenib an. Gründe für diese Unempfindlichkeit könnte eine Rückkoppelung zum aufwärtsgelegenen EGFR sein, der das Signal zur Proliferation aufrecht erhält. Um diese Hypothese zu überprüfen, wurden die zwei Zelllinien HROC24 und HROC87, die beide die BRAF V600E-Mutation tragen aber sich in anderen Mutationen unterscheiden, mit Vemurafenib und/oder Gefitinib behandelt und das Ansprechen auf die Substanzen in der herkömmlichen 2D Zellkultur sowie im fortschrittlicheren 3D Modell verglichen. In 3D Kulturbedingungen zeigten beide Zelllinien eine Senkung der Proliferation nur im Kombinationstherapie-Ansatz. Außerdem wurden bei den 3D Modellen keine signifikanten Unterschiede zwischen den verschiedenen Behandlungsansätzen und der unbehandelten Kontrolle, hinsichtlich der Apoptoserate und Viabilität, gefunden. Das deutet auf eine erhöhte Chemoresistenz der Krebszellen in der 3D Umgebung hin. Wegen der vorhandenen Unempfindlichkeit der Zelllinie HROC87 gegenüber der BRAF-Inhibierung mit Vemurafenib, wie es auch in der Klinik im Fall von Patienten mit BRAF-Mutation des CRC beobachtet werden kann, wurden diese Zellen für weitere Xenograft-Experimente und Analysen von Aktivierungsunterschieden im MAPK-Signaltransduktionsweg herangezogen. Weiterhin zeigten die Zellen eine Aktivierung des „hepatocyte growth factor receptor“ (HGFR, c-Met) in 2D und 3D Zellkultur, der jedoch nicht im Xenograft-Modell zu sehen war, was die limitierte Übertragbarkeit von Ergebnissen des Tiermodells auf den Menschen verdeutlicht. Dies spiegelt wiederum die obenstehend erwähnten hohen Versagensraten in der präklinischen Medikamententestung wider. Zusammengefasst kann das Tissue Engineering Möglichkeiten zur Herstellung und Entwicklung neuartiger 3D Testsysteme bieten, welche besser die in vivo Situation abbilden. Für eine Medikamententestung in Übereinstimmung mit personalisierter Medizin eröffnet das 3D Tumormodell vielversprechende Wege, welche in Zukunft das präklinische Screening verbessern sowie die hohen Versagensraten und Tierversuche vermindern könnten. KW - Dickdarmtumor KW - Therapie KW - BRAF-mutant KW - colorectal cancer KW - targeted therapy KW - 3D tumour model KW - BRAF-mutiert KW - kolorektales Karzinom KW - zielgerichtete Behandlung KW - 3D Tumormodell KW - In vitro KW - 3D KW - tumour Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-174129 ER - TY - THES A1 - AL-Hijailan, Reem Saud T1 - Establishment of endothelialized cardiac tissue using human induced pluripotent stem cells generated cardiomyocytes T1 - Etablierung eines endothelialisierten kardialen Gewebes mittels Kardiomyozyten, differenziert aus induzierten pluripotenten Stammzellen N2 - Cardiovascular diseases are considered the leading cause of death worldwide according to the World Health Organization. Heart failure is the last stage of most of these diseases, where loss of myocardium leads to architectural and functional decline. The definitive treatment option for patients with CVDs is organ or tissue transplantation, which relies on donor availability. Therefore, generating an autologous bioengineered myocardium or heart could overcome this limitation. In addition, generating cardiac patches will provide ventricular wall support and enable reparative stem cells delivery to damaged areas. Although many hurdles still exist, a good number of researches have attempted to create an engineered cardiac tissue which can induce endogenous cardiac repair by replacing damaged myocardium. The present study provided cardiac patches in two models, one by a detergent coronary perfusion decellularization protocol that was optimized, and the other that resulted in a 3D cell-free extracellular matrix with intact architecture and preserved s-glycosaminoglycan and vasculature conduits. Perfusion with 1% Sodium dodecyle sulfate (SDS) under constant pressure resulted in cell-free porcine scaffold within two and cell-free rat scaffold in 7 days, whereas scaffold perfused with 4% sodium deoxycholate (SDO) was not able to remove cells completely. Re-reendothelialization of tissue vasculature was obtained by injecting human microvascular endothelial cell and human fibroblast in 2:1 ratio in a dynamic culture. One-week later, CD31 positive cells and endothelium markers were observed, indicating new blood lining. Moreover, functionality test of re-endothelialized tissue revealed improvement in clotting seen in decellularized tissues. When the tissue was ready to be repopulated, porcine induced pluripotent stem cells (PiPSc) were generated by transfected reprogramming of porcine skin fibroblast and then differentiated to cardiac cells following a robust protocol, for an autologous cardiac tissue model. However, due to the limitation in the PiPSc cell number, alternatively, human induced pluripotent stem cells generated cardiac cells were used. For reseeding a coculture of human iPSc generated cardiac cells, human mesenchymal stem cells and human fibroblast in 2:1:1 ratio respectively were used in a dynamic culture for 6-8 weeks. Contractions at different areas of the tissue were recorded at an average beating rate of 67 beats/min. In addition, positive cardiac markers (Troponin T), Fibroblast (vemintin), and mesenchymal stem cells (CD90) were detected. Not only that, but by week 3, MSC started differentiating to cardiac cells progressively until few CD90 positive cells were very few by week 6 with increasing troponin t positive cells in parallel. Electrophysiological and drug studies were difficult to obtain due to tissue thickness and limited assessment sources. However, the same construct was established using small intestine submucosa (SISer) scaffold, which recorded a spontaneous beating rate between 0.88 and 1.2 Hz, a conduction velocity of 23.9 ± 0.74 cm s−1, and a maximal contraction force of 0.453 ± 0.015 mN. Moreover, electrophysiological studies demonstrated a drug-dependent response on beating rate; a higher adrenalin frequency was revealed in comparison to the untreated tissue and isoproterenol administration, whereas a decrease in beating rate was observed with propranolol and untreated tissue. The present study demonstrated the establishment of vascularized cardiac tissue, which can be used for human clinical application. N2 - Etablierung eines endothelialisierten kardialen Gewebes mittels Kardiomyozyten, differenziert aus induzierten pluripotenten Stammzellen KW - cardiac tissue KW - biological scaffolds KW - decellularization KW - induced pluripotent stem cells Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-173979 ER - TY - THES A1 - Nelke, Lena T1 - Establishment and optimization of 3-dimensional mamma carcinoma models for therapy simulation and drug testing T1 - Etablierung und Optimierung 3-dimensionaler Mammakarzinommodelle für die Therapiesimulation und die Wirkstofftestung N2 - Breast cancer is the most common cancer among women worldwide and the second most common cause of cancer death in the developed countries. As the current state of the art in first-line drug screenings is highly ineffective, there is an urgent need for novel test systems that allow for reliable predictions of drug sensitivity. In this study, a tissue engineering approach was used to successfully establish and standardize a 3-dimensional (3D) mamma carcinoma test system that was optimized for the testing of anti-tumour therapies as well as for the investigation of tumour biological issues. This 3D test system is based on the decellularised scaffold of a porcine small intestinal segment and represents the three molecular subsets of oestrogen receptor-positive, HER2/Neu-overexpressing and triple negative breast cancer (TNBC). The characterization of the test system with respect to morphology as well as the expression of markers for epithelial-mesenchymal transition (EMT) and differentiation indicate that the 3D tumour models cultured under static and dynamic conditions reflect tumour relevant features and have a good correlation with in vivo tumour tissue from the corresponding xenograft models. In this respect, the dynamic culture in a flow bioreactor resulted in the generation of tumour models that exhibited best reflection of the morphology of the xenograft material. Furthermore, the proliferation indices of 3D models were significantly reduced compared to 2-dimensional (2D) cell culture and therefore better reflect the in vivo situation. As this more physiological proliferation index prevents an overestimation of the therapeutic effect of cytostatic compounds, this is a crucial advantage of the test system compared to 2D culture. Moreover, it could be shown that the 3D models can recapitulate different tumour stages with respect to tumour cell invasion. The scaffold SISmuc with the preserved basement membrane structure allowed the investigation of invasion over this barrier which tumour cells of epithelial origin have to cross in in vivo conditions during the process of metastasis formation. Additionally, the data obtained from ultrastructural analysis and in situ zymography indicate that the invasion observed is connected to a tumour cell-associated change in the basement membrane in which matrix metalloproteinases (MMPs) are also involved. This features of the model in combination with the mentioned methods of analysis could be used in the future to mechanistically investigate invasive processes and to test anti-metastatic therapy strategies. The validation of the 3D models as a test system with respect to the predictability of therapeutic effects was achieved by the clinically relevant targeted therapy with the monoclonal antibody trastuzumab which induces therapeutic response only in patients with HER2/Neu-overexpressing mamma carcinomas due to its specificity for HER2. While neither in 2D nor in 3D models of all molecular subsets a clear reduction of cell viability or an increase in apoptosis could be observed, a distinct increase in antibody-dependent cell-mediated cytotoxicity (ADCC) was detected only in the HER2/NEU-overexpressing 3D model with the help of an ADCC reporter gene assay that had been adapted for the application in the 3D model in the here presented work. This correlates with the clinical observations and underlines the relevance of ADCC as a mechanism of action (MOA) of trastuzumab. In order to measure the effects of ADCC on the tumour cells in a direct way without the indirect measurement via a reporter gene, the introduction of an immunological component into the models was required. This was achieved by the integration of peripheral blood mononuclear cells (PBMCs), thereby allowing the measurement of the induction of tumour cell apoptosis in the HER2/Neu-overexpressing model. Hence, in this study an immunocompetent model could be established that holds the potential for further testing of therapies from the emergent field of cancer immunotherapies. Subsequently, the established test system was used for the investigation of scientific issues from different areas of application. By the comparison of the sensitivity of the 2D and 3D model of TNBC towards the water-insoluble compound curcumin that was applied in a novel nanoformulation or in a DMSO-based formulation, the 3D test system was successfully applied for the evaluation of an innovative formulation strategy for poorly soluble drugs in order to achieve cancer therapy-relevant concentrations. Moreover, due to the lack of targeted therapies for TNBC, the TNBC model was applied for testing novel treatment strategies. On the one hand, therapy with the WEE1 kinase inhibitor MK 1775 was evaluated as a single agent as well as in combination with the chemotherapeutic agent doxorubicin. This therapy approach did not reveal any distinct benefits in the 3D test system in contrast to testing in 2D culture. On the other hand, a novel therapy approach from the field of cellular immunotherapies was successfully applied in the TNBC 3D model. The treatment with T cells that express a chimeric antigen receptor (CAR) against ROR1 revealed in the static as well as in the dynamic model a migration of T cells into the tumour tissue, an enhanced proliferation of T cells as well as an efficient lysis of the tumour cells via apoptosis and therefore a specific anti-cancer effect of CAR-transduced T cells compared to control T cells. These results illustrate that the therapeutic application of CAR T cells is a promising strategy for the treatment of solid tumours like TNBC and that the here presented 3D models are suitable for the evaluation and optimization of cellular immunotherapies. In the last part of this work, the 3D models were expanded by components of the tumour stroma for future applications. By coculture with fibroblasts, the natural structures of the intestinal scaffold comprising crypts and villi were remodelled and the tumour cells formed tumour-like structures together with the fibroblasts. This tissue model displayed a strong correlation with xenograft models with respect to morphology, marker expression as well as the activation of dermal fibroblasts towards a cancer-associated fibroblast (CAF) phenotype. For the integration of adipocytes which are an essential component of the breast stroma, a coculture with human adipose-derived stromal/stem cells (hASCs) which could be successfully differentiated along the adipose lineage in 3D static as well as dynamic models was established. These models are suitable especially for the mechanistic analysis of the reciprocal interaction between tumour cells and adipocytes due to the complex differentiation process. Taken together, in this study a human 3D mamma carcinoma test system for application in the preclinical development and testing of anti-tumour therapies as well as in basic research in the field of tumour biology was successfully established. With the help of this modular test system, relevant data can be obtained concerning the efficacy of therapies in tumours of different molecular subsets and different tumour stages as well as for the optimization of novel therapy strategies like immunotherapies. In the future this can contribute to improve the preclinical screening and thereby to reduce the high attrition rates in pharmaceutical industry as well as the amount of animal experiments. N2 - Brustkrebs ist die häufigste Krebsart bei Frauen und die zweithäufigste Todesursache bei Krebserkrankungen in den Industrienationen. Aufgrund der Ineffizienz der derzeit verwendeten Modelle für die Identifizierung neuer Therapeutika herrscht ein hoher Bedarf an neuartigen Testsystemen, welche aussagekräftige Vorhersagen über die Wirksamkeit ermöglichen. In dieser Arbeit wurde mit Hilfe des Tissue Engineerings erfolgreich ein 3-dimensionales (3D) Mammakarzinom-Testsystem etabliert, standardisiert und für die Testung von anti-tumoralen Therapien sowie weitere tumorbiologische Fragestellungen optimiert. Dieses 3D Testsystem basiert auf der dezellularisierten Gerüststruktur eines porcinen Dünndarmsegments und repräsentiert die drei molekularen Subtypen des Östrogen-Rezeptor-positiven, HER2/Neu-überexprimierenden sowie des tripel-negativen Brustkrebses (TNBC). Die Charakterisierung des Testsystems anhand der Morphologie sowie der Expression von Markern zur Bestimmung der epithelialen-mesenchymalen Transition (EMT) und der Differenzierung zeigte, dass die statisch und dynamisch kultivierten 3D Modelle Tumor-relevante Charakteristika widerspiegeln und eine deutliche Ähnlichkeit zu in vivo Tumormaterial aus entsprechenden Xenograft-Modellen aufweisen, wobei die dynamische Kultivierung in einem Flussreaktor zur Generierung von Tumormodellen führte, welche die Morphologie des Tumorgewebes aus Xenograft-Modellen am besten repräsentierten. Des Weiteren war die Proliferationsrate in den 3D Modellen im Vergleich zu 2-dimensionalen (2D) Zellkulturen signifikant reduziert und entspricht daher eher der Situation in vivo. Dies ist ein entscheidender Vorteil des Testsystems gegenüber der 2D Zellkultur, da durch die physiologischere Proliferationsrate eine Überschätzung des Therapieeffekts zytostatischer Medikamente vermieden wird. Zudem konnte gezeigt werden, dass mit Hilfe der 3D Modelle unterschiedliche Tumorstadien in Bezug auf die Tumorzellinvasion abgebildet werden können. Die Gerüststruktur SISmuc mit erhaltener Basalmembranstruktur ermöglichte eine Untersuchung der Invasion über diese Barriere, welche Tumorzellen epithelialen Ursprungs unter in vivo-Bedingungen beim Prozess der Metastasierung überwinden müssen. Zudem deuten die durch ultrastrukturelle Analysen und in situ Zymographie gewonnenen Daten darauf hin, dass die beobachtete Invasion mit einer Tumorzell-assoziierten Veränderung der Basalmembran, an der auch Matrix-Metalloproteinasen (MMPs) beteiligt sind, einhergeht. Diese Eigenschaften des Modells in Kombination mit den erwähnten Untersuchungsmethoden könnten in Zukunft dazu eingesetzt werden, Invasionsprozesse mechanistisch zu untersuchen sowie neue anti-metastatisch wirkende Therapiestrategien zu testen. Die Validierung der 3D Modelle als Testsystem bezüglich der Vorhersagbarkeit von Therapieeffekten erfolgte mit Hilfe der klinisch relevanten, zielgerichteten Therapie mit dem monoklonalen Antikörper Trastuzumab, welcher aufgrund seiner Spezifität für HER2/Neu nur in Patienten mit HER2/Neu-überexprimierendem Mammakarzinom einen Therapieerfolg erzielt. Während weder in 2D noch in den 3D Modellen aller molekularer Subtypen eine eindeutige Reduktion der Zellviabilität oder ein Anstieg der Apoptose gemessen werden konnte, zeigte sich mit Hilfe eines ADCC-Reportergenassays, der in dieser Arbeit für die Anwendung im 3D Modell angepasst wurde, ein deutlicher Anstieg der Antikörper-abhängigen zellvermittelten Zytotoxizität (ADCC) lediglich für das HER2/Neu-überexprimierende Modell. Dies entspricht den klinischen Beobachtungen und unterstreicht die Relevanz der ADCC als Wirkmechanismus des Antikörpers. Um die direkten Effekte einer ADCC auf die Tumorzellen im 3D Testsystem direkt – ohne den Umweg über ein Reportergen – messbar zu machen, war die Einführung einer immunologischen Komponente notwendig. Dies gelang mit Hilfe der Integration von mononukleären Zellen des peripheren Blutes (PBMCs), wodurch die Induktion der Apoptose im HER2/Neu-überexprimierenden Modell messbar war. Somit konnte im Rahmen dieser Arbeit ein immunkompetentes Modell etabliert werden, welche das Potenzial für weitere Testungen aus dem aufstrebenden Bereich der Krebsimmuntherapien bietet. Anschließend wurde das etablierte Testsystem zur Untersuchung von Fragestellungen aus unterschiedlichen Anwendungsbereichen eingesetzt. Durch den Vergleich der Sensitivität von Tumorzellen in 2D und im 3D Modell des TNBC gegenüber des wasserunlöslichen Wirkstoffs Curcumin, welcher in einer neuartigen Nanoformulierung bzw. in einer DMSO-basierten Formulierung appliziert wurde, konnte das 3D Testsystem für die Evaluation einer innovativen Formulierungsstrategie für unlösliche Wirkstoffe angewendet werden, um für die Krebstherapie relevante Dosierungen zu erreichen. Weiterhin wurden aufgrund des Mangels an zielgerichteten Therapien für das tripel-negative Mammakarzinom neuartige Therapiestrategien anhand des 3D Modells getestet. Zum einen wurde die Therapie mit dem WEE1-Kinase Inhibitor MK 1775 als Monotherapie sowie in Kombination mit dem Chemotherapeutikum Doxorubicin evaluiert. Diese zeigte im Gegensatz zu Testungen in 2D Kultur keinen eindeutigen Therapieeffekt im 3D Testsystem. Zum anderen wurde eine neuartige Behandlung aus dem Bereich der zellulären Immuntherapie erfolgreich im TNBC 3D Modell angewendet. Die Behandlung mit T-Zellen, welche einen chimären Antigen-Rezeptor (CAR) gegen ROR1 tragen, zeigte sowohl im statischen als auch im dynamischen Modell eine Migration der T-Zellen in das Tumorgewebe, eine erhöhte Proliferation der T-Zellen sowie eine effiziente Lyse der Tumorzellen mittels Apoptose und damit eine spezifische anti-tumorale Wirkung der CAR-transduzierten T-Zellen im Vergleich zu Kontroll-T-Zellen. Diese Ergebnisse verdeutlichen einerseits, dass die therapeutische Anwendung von CAR-T-Zellen eine vielversprechende Strategie für die Behandlung von soliden Tumoren wie des TNBC ist, zum anderen, dass die hier vorgestellten 3D Modelle als Testsystem für die Evaluierung und Optimierung von zellulären Immuntherapien geeignet sind. Im letzten Teil der Arbeit wurde das 3D Modell für die zukünftige Anwendung um Komponenten des Tumorstromas erweitert. Durch die Kokultur mit Fibroblasten wurden die natürlichen Strukturen der Darmmatrix, bestehend aus Krypten und Villi, umgebaut und die Krebszellen bildeten zusammen mit den Fibroblasten tumorartige Strukturen aus. Das so erzeugte Gewebemodell zeigte sowohl in morphologischer Hinsicht als auch bezogen auf die Markerexpression und die Aktivierung der dermalen Fibroblasten hin zu Krebs-assoziierten Fibroblasten (CAFs) starke Ähnlichkeit mit Xenograft-Modellen. Für die Integration von Adipozyten, welche ein wichtiger Bestandteil des Stromas in der Brust sind, wurde eine Kokultur mit humanen, aus dem Fettgewebe stammenden Stroma-/Stammzellen (hASCs) etabliert, welche sowohl im statischen als auch im dynamischen 3D Modell erfolgreich adipogen differenziert werden konnten. Diese Modelle eignen sich aufgrund des komplexen Differenzierungsprozesses vor allem für die mechanistische Untersuchung der Interaktionen zwischen Tumorzellen und Adipozyten. Zusammenfassend ist es in dieser Arbeit gelungen, ein humanes 3D Mammakarzinom-Testsystem zur Anwendung in der präklinischen Entwicklung und Testung anti-tumoraler Therapien sowie der Grundlagenforschung im Bereich der Tumorbiologie zu etablieren. Mit Hilfe dieses modularen Testsystems können relevante Daten zur Wirksamkeit von Therapien in Tumoren unterschiedlicher molekularer Subtypen sowie unterschiedlich fortgeschrittener Tumorstadien und zur Optimierung neuartiger Therapiestrategien wie Immuntherapien gewonnen werden. Dies kann in Zukunft dazu beitragen das präklinische Screening zu verbessern und somit die hohen klinischen Ausfallraten in der pharmazeutischen Industrie und die Zahl von Tierversuchen zu reduzieren. KW - Brustkrebs KW - Mamma carcinoma KW - Tissue Engineering KW - Drug testing KW - 3D model KW - therapy simulation KW - Mammakarzinom KW - Wirkstofftestung KW - 3D Modell KW - Therapiesimulation Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-172280 ER - TY - JOUR A1 - Appelt-Menzel, Antje A1 - Cubukova, Alevtina A1 - Günther, Katharina A1 - Edenhofer, Frank A1 - Piontek, Jörg A1 - Krause, Gerd A1 - Stüber, Tanja A1 - Walles, Heike A1 - Neuhaus, Winfried A1 - Metzger, Marco T1 - Establishment of a Human Blood-Brain Barrier Co-culture Model Mimicking the Neurovascular Unit Using Induced Pluri- and Multipotent Stem Cells JF - Stem Cell Reports N2 - In vitro models of the human blood-brain barrier (BBB) are highly desirable for drug development. This study aims to analyze a set of ten different BBB culture models based on primary cells, human induced pluripotent stem cells (hiPSCs), and multipotent fetal neural stem cells (fNSCs). We systematically investigated the impact of astrocytes, pericytes, and NSCs on hiPSC-derived BBB endothelial cell function and gene expression. The quadruple culture models, based on these four cell types, achieved BBB characteristics including transendothelial electrical resistance (TEER) up to 2,500 Ω cm\(^{2}\) and distinct upregulation of typical BBB genes. A complex in vivo-like tight junction (TJ) network was detected by freeze-fracture and transmission electron microscopy. Treatment with claudin-specific TJ modulators caused TEER decrease, confirming the relevant role of claudin subtypes for paracellular tightness. Drug permeability tests with reference substances were performed and confirmed the suitability of the models for drug transport studies. KW - blood-brain barrier (BBB) model KW - human induced pluripotent stem cells (hiPSCs)human induced pluripotent stem cells (hiPSCs) KW - multipotent fetal neural stem cells (fNSCs) KW - neurovascular unit in vitro Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170982 VL - 8 IS - 4 ER - TY - JOUR A1 - Jannasch, Maren A1 - Gaetzner, Sabine A1 - Weigel, Tobias A1 - Walles, Heike A1 - Schmitz, Tobias A1 - Hansmann, Jan T1 - A comparative multi-parametric in vitro model identifies the power of test conditions to predict the fibrotic tendency of a biomaterial JF - Scientific Reports N2 - Despite growing effort to advance materials towards a low fibrotic progression, all implants elicit adverse tissue responses. Pre-clinical biomaterial assessment relies on animals testing, which can be complemented by in vitro tests to address the Russell and Burch’s 3R aspect of reducing animal burden. However, a poor correlation between in vitro and in vivo biomaterial assessments confirms a need for suitable in vitro biomaterial tests. The aim of the study was to identify a test setting, which is predictive and might be time- and cost-efficient. We demonstrated how sensitive in vitro biomaterial assessment based on human primary macrophages depends on test conditions. Moreover, possible clinical scenarios such as lipopolysaccharide contamination, contact to autologous blood plasma, and presence of IL-4 in an immune niche influence the outcome of a biomaterial ranking. Nevertheless, by using glass, titanium, polytetrafluorethylene, silicone, and polyethylene representing a specific material-induced fibrotic response and by comparison to literature data, we were able to identify a test condition that provides a high correlation to state-of-the-art in vivo studies. Most important, biomaterial ranking obtained under native plasma test conditions showed a high predictive accuracy compared to in vivo assessments, strengthening a biomimetic three-dimensional in vitro test platform. KW - inflammation KW - experimental models of disease KW - biomaterial tests KW - in vitro Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170908 VL - 7 IS - 1689 ER - TY - JOUR A1 - Straßer, Marion A1 - Schrauth, Joachim H. X. A1 - Dembski, Sofia A1 - Haddad, Daniel A1 - Ahrens, Bernd A1 - Schweizer, Stefan A1 - Christ, Bastian A1 - Cubukova, Alevtina A1 - Metzger, Marco A1 - Walles, Heike A1 - Jakob, Peter M. A1 - Sextl, Gerhard T1 - Calcium fluoride based multifunctional nanoparticles for multimodal imaging JF - Beilstein Journal of Nanotechnology N2 - New multifunctional nanoparticles (NPs) that can be used as contrast agents (CA) in different imaging techniques, such as photoluminescence (PL) microscopy and magnetic resonance imaging (MRI), open new possibilities for medical imaging, e.g., in the fields of diagnostics or tissue characterization in regenerative medicine. The focus of this study is on the synthesis and characterization of CaF\(_{2}\):(Tb\(^{3+}\),Gd\(^{3+}\)) NPs. Fabricated in a wet-chemical procedure, the spherical NPs with a diameter of 5–10 nm show a crystalline structure. Simultaneous doping of the NPs with different lanthanide ions, leading to paramagnetism and fluorescence, makes them suitable for MR and PL imaging. Owing to the Gd\(^{3+}\) ions on the surface, the NPs reduce the MR T\(_{1}\) relaxation time constant as a function of their concentration. Thus, the NPs can be used as a MRI CA with a mean relaxivity of about r = 0.471 mL·mg\(^{−1}\)·s\(^{−1}\). Repeated MRI examinations of four different batches prove the reproducibility of the NP synthesis and determine the long-term stability of the CAs. No cytotoxicity of NP concentrations between 0.5 and 1 mg·mL\(^{−1}\) was observed after exposure to human dermal fibroblasts over 24 h. Overall this study shows, that the CaF\(_{2}\):(Tb\(^{3+}\),Gd\(^{3+}\)) NPs are suitable for medical imaging. KW - calcium fluoride nanoparticles KW - magnetic resonance imaging (MRI) KW - multifunctional nanoparticles KW - multimodal imaging KW - photoluminescence Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170657 VL - 8 ER - TY - JOUR A1 - Lotz, Christian A1 - Schmid, Freia F. A1 - Rossi, Angela A1 - Kurdyn, Szymon A1 - Kampik, Daniel A1 - De Wever, Bart A1 - Walles, Heike A1 - Groeber, Florian K. T1 - Alternative Methods for the Replacement of Eye Irritation Testing JF - ALTEX - Alternatives to Animal Experimentation N2 - In the last decades significant regulatory attempts were made to replace, refine and reduce animal testing to assess the risk of consumer products for the human eye. As the original in vivo Draize eye test is criticized for limited predictivity, costs and ethical issues, several animal-free test methods have been developed to categorize substances according to the global harmonized system (GHS) for eye irritation. This review summarizes the progress of alternative test methods for the assessment of eye irritation. Based on the corneal anatomy and current knowledge of the mechanisms causing eye irritation, different ex vivo and in vitro methods will be presented and discussed with regard to possible limitations and status of regulatory acceptance. In addition to established in vitro models, this review will also highlight emerging, full thickness cornea models that might be suited to predict all GHS categories. KW - eye irritation testing KW - alternatives KW - Draize eye test KW - OECD guideline KW - corneal equivalent Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-164444 VL - 33 IS - 1 ER - TY - JOUR A1 - Groeber, Florian A1 - Engelhardt, Lisa A1 - Lange, Julia A1 - Kurdyn, Szymon A1 - Schmid, Freia F. A1 - Rücker, Christoph A1 - Mielke, Stephan A1 - Walles, Heike A1 - Hansmann, Jan T1 - A First Vascularized Skin Equivalent as an Alternative to Animal Experimentation JF - ALTEX - Alternatives to Animal Experimentation N2 - Tissue-engineered skin equivalents mimic key aspects of the human skin, and can thus be employed as wound coverage for large skin defects or as in vitro test systems as an alternative to animal models. However, current skin equivalents lack a functional vasculature limiting clinical and research applications. This study demonstrates the generation of a vascularized skin equivalent with a perfused vascular network by combining a biological vascularized scaffold (BioVaSc) based on a decellularized segment of a porcine jejunum and a tailored bioreactor system. Briefly, the BioVaSc was seeded with human fibroblasts, keratinocytes, and human microvascular endothelial cells. After 14 days at the air-liquid interface, hematoxylin & eosin and immunohistological staining revealed a specific histological architecture representative of the human dermis and epidermis including a papillary-like architecture at the dermal-epidermal-junction. The formation of the skin barrier was measured non-destructively using impedance spectroscopy. Additionally, endothelial cells lined the walls of the formed vessels that could be perfused with a physiological volume flow. Due to the presence of a complex in-vivo-like vasculature, the here shown skin equivalent has the potential for skin grafting and represents a sophisticated in vitro model for dermatological research. KW - alternative to animal testing KW - skin equivalents KW - tissue engineering KW - vascularization Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-164438 VL - 33 IS - 4 ER -