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Diese Arbeit hatte zum Ziel quantitative Analysen histologischer Aufnahmen der Haut nach unterschiedlichen Gesichtspunkten zu etablieren. Im ersten Abschnitt wurde die bildgestützte Quantifizierung der epidermalen Histomorphologie untersucht. Nach Sichtung und Beurteilung von 2145 hochauflösenden Fotografien HE-gefärbter Epidermis- und Vollhautmodellen jeglichen Zustands, wurde der BSGC-Score als Facettenklassifikation mit seinen insgesamt 40 Beurteilungskriterien aufgestellt. Die unterschiedlichen epidermalen Strata wurden mit Wichtungsfaktoren belegt. Die Bewertungskategorien sind mit einem Ampelsystem unterlegt. Eine Befundungsformel wurde aufgestellt. Weitere Bestandteile des BSGC-Scores sind eine Anleitung mit Bildbeilage sowie Dokumentationselemente. Die Anwendung erfolgte erfolgreich im Rahmen der Qualitätssicherung an Chargentests und zur Verlaufsbeurteilung eines In-vitro-Verbrennungsmodells aus humaner Epidermis durch Schneider et al. (2021) Der BSGC-Score dient als zügig durchführbares Evaluationstool zur Befundung von In-vitro-Epidermismodellen und nicht als diagnostisches Mittel. Der zweite Abschnitt beschäftigt sich mit der Vaskularisierung als Parameter der kutanen Wundheilung. Es wurden aSMA-IF-gefärbte Abbildungen porciner Verwundungsmodelle betrachtet und nach der Entfernung drüsiger Strukturen Gefäßanschnitte zu Beginn manuell ausgezählt. Hieraus wurden die nötigen Einstellungen für die Bildbearbeitungssoftware ImageJ ermittelt und die Abbildungen dieser anschließend zugeführt. Es erfolgte die automatisierte Quantifizierung elliptischer Formationen mit einer Größe ≥ 30 Pixel. Im nächsten Schritt wurden die Abbildungen in die Bereiche Wundrand, Wundgrund und Wundheilung unterteilt. In dem Bereich Wundheilung zeigte sich eine signifikant größere Revaskularisierung als in Wundgrund. Abschließend erfolgte der Vergleich sekundärer Wundauflagen. Der Vergleich der Quotienten Wundheilung/Wundgrund nicht-okklusiver und okklusiver Wundauflagen zeigte keinen signifikanten Unterschied in der Neovaskularisierung. Die isolierte Betrachtung der Revaskularisierung als einzelner Prozess der Wundheilung kann nicht als generelles Kriterium für die Gesamtbeurteilung dienen. Hier findet die gewählte Methodik ihre Limitation. Zukünftige Anwendungsbereiche des BSGC-Scores sind die Ausweitung auf Vollhautmodelle und andere Verwundungsmodalitäten. Eine automatisierte und durch eine KI-gestützte Befundung ist ebenfalls aufgrund des zugrundeliegenden umfangreichen Datensatzes denkbar. Auch kann eine automatisierte softwaregestützte Quantifizierung der Vaskularisierung als überblickende und zügige Beurteilung der Wundheilung sinnvoll erscheinen.
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.
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.
Biomechanische Eigenschaften eines biomaterialbasierten Kreuzbandkonstruktes in-vivo und in-vitro
(2023)
Kreuzbandrupturen stellen nach wie vor eine Herausforderung in der klinischen Praxis hinsichtlich kurz- und langfristiger unerwünschter Nebenwirkungen dar (z.B. Reruptur und Arthrosebildung).
In der vorliegenden Arbeit wird der entwickelte Ansatz eines Kollagen-I-basierten künstlichen Kreuzbandkonstruktes hinsichtlich der Reißfestigkeit, Lagerung, Verstärkungsmöglichkeit mittels Fiber-tape und langfristigen Arthroseentstehung untersucht mittels in-vitro und in-vivo Untersuchungen unter zur Hilfe nahme des Minipig Tiermodels.
Die Ergebnisse zeigen keinen Einfluss der Lagerungstemperatur sowie des Lagerungszeitraums auf die Reißfestigkeit des Konstruktes, sowie eine mögliche initiale Verstärkung mittels Fibertape im Minipig. Darüber hinaus wurde mikroskopisch wie makroskopische Arthroseentstehung nachgewiesen. Das Ausmaß der Arthroseentstehung ist diesbezüglich mit einer Abweichung der Konstruktimplantation von der ursprünglichen Kreuzbandinsertion mittels MRT bestätigt worden.
Die Vordere Kreuzband (VKB)-Ruptur ist eine häufige Verletzung, welche eine hohe individuelle und sozioökonomische Belastung verursacht. Eine etablierte Therapie ist die VKB-Plastik, problematisch sind jedoch die hohen Rerupturraten nach operativer Versorgung. In der Annahme, dass Mesenchymale Stammzellen (MSC) eine bedeutende Rolle für die Heilung spielen, sollte in der vorliegenden Arbeit untersucht werden, ob ein Zusammenhang zwischen Zahl und Qualität der aus dem VKB isolierten MSC sowie der Latenz zwischen Ruptur und Rekonstruktion besteht und so ein optimaler Therapiezeitraum eingegrenzt werden kann.
Zunächst erfolgte die Zellisolierung aus intraoperativ gewonnenen VKB-Biopsien. Je nach Latenz zwischen Ruptur und Operation wurden drei Gruppen (akute ≙ ≤ 30 d, subakute ≙ 31-90 d, verzögerte Rekonstruktion ≙ > 90 d) gebildet. Zum Nachweis von MSC wurden die Zellen hinsichtlich ihrer Plastikadhärenz, eines multipotenten Differenzierungspotentials sowie eines spezifischen Oberflächenantigenmusters (CD73+, CD90+, CD105+, CD34-) untersucht. Zudem wurde ihr Einflusses auf die biomechanischen und histologischen Eigenschaften eines analysiert.
Der Nachweis von MSC war in allen Gruppen möglich. Das Proliferationspotential war in Gruppe II am größten, ebenso der Anteil der MSC an allen Zellen. Er war 5,4% (4,6% - 6,3%, 95% CI; p < 0,001) höher als in Gruppe I und 18,9% (18,2% - 19,6%, 95% CI; p < 0,001) höher als in Gruppe III. In den mit Zellen kultivierten Bandkonstrukten konnte im Gegensatz zu zellfreien Konstrukten humanes Kollagen I nachgewiesen werden. Die Stabilität nahm bei Kultivierung mit Zellen ab.
Die Ergebnisse legen nahe, dass das Regenerationspotential bei subakuter VKB-Rekonstruktion (31-90 d) am höchsten ist. Potenziell ursächlich sind die Regeneration hemmende Entzündungsprozesse zu Beginn sowie degenerative Prozesse im längerfristigen Verlauf. Zudem konnte gezeigt werden, dass die isolierten Zellen die Eigenschaften eines Bandkonstruktes durch Bildung von Kollagen I und Reduktion der Stabilität im kurzfristigen Verlauf verändern und dementsprechend den Therapieerfolg beeinflussen könnten. Zur Verifizierung der Ergebnisse bedarf es weiterer Untersuchungen.
Das maligne Melanom nimmt als Tumorerkrankung mit hoher Metastasierungsrate und steigenden Inzidenzraten bei höchster Mortalität aller Hauttumoren eine zunehmende Bedeutung in der modernen Onkologie ein. Frühzeitige Diagnosemöglichkeiten und moderne Behandlungen konnten das Überleben der Patienten bereits erheblich verbessern. Jedoch besteht nach wie vor Bedarf an geeigneten Modellen, um die Melanomprogression vollständig zu verstehen und neue wirksame Therapien zu entwickeln. Hierfür werden häufig Tiermodelle verwendet, diese spiegeln jedoch nicht die menschliche Mikroumgebung wider. Zweidimensionalen Zellkulturen fehlen dagegen entscheidende Elemente der Tumormikroumgebung. Daher wurde in dieser Arbeit ein dreidimensionales epidermales Tumormodell des malignen Melanoms, welches aus primären humanen Keratinozyten und verschiedenen Melanomzelllinien besteht, entwickelt. Die eingesetzten Melanomzelllinien variieren in ihren Treibermutationen, wodurch das Modell in der Lage ist, Wirkstoffe zu untersuchen, die spezifisch auf diese Mutationen wirken. Mit Techniken des Tissue Engineerings konnte ein dreidimensionales Hautmodell aufgebaut werden, das alle charakteristischen Schichten der Epidermis aufweist und im Bereich des stratum basale Melanomcluster ausbildet. Diese reichen je nach Größe und Ausdehnung bis in suprabasale Epidermisschichten hinein. Die Tumor-Histopathologie, der Tumorstoffwechsel sowie tumorassoziierte Proteinsekretionen ließen sich im in vitro Modell nachweisen. Darüber hinaus konnte ein Protokoll entwickelt werden, mit dem einzelne Zellen aus den Modellen reisoliert werden können. Dies ermöglichte es, den Proliferationszustand innerhalb des jeweiligen Modells zu charakterisieren und die Wirkung von Antitumortherapien gezielt zu bewerten. Die Anwendbarkeit als Testsystem im Bereich der Tumortherapeutika wurde mit dem in der Klinik häufig verwendeten v-raf-Maus-Sarkom-Virus-Onkogen-Homolog B (BRAF)-Inhibitor Vemurafenib demonstriert. Der selektive BRAF-Inhibitor reduzierte erfolgreich das Tumorwachstum in den Modellen mit BRAF-mutierten Melanomzellen, was durch eine Verringerung der metabolischen Aktivität, der proliferierenden Zellen und des Glukoseverbrauchs gezeigt wurde. Für die Implementierung des Modells in die präklinische Therapieentwicklung wurde B-B-Dimethylacrylshikonin, ein vielversprechender Wirkstoffkandidat, welcher einen Zellzyklusarrest mit anschließender Apoptose bewirkt, im Modell getestet.
Bei einer Anwendung der Modelle im Bereich der Testung topischer Behandlungen ist eine Barrierefunktion der Modelle notwendig, die der in vivo Situation nahe kommt. Die Barriereeigenschaften der Hautäquivalente wurden durch die Melanomzellen nachweislich nicht beeinflusst, sind aber im Vergleich zur in vivo Situation noch unzureichend. Eine signifikante Steigerung der Hautbarriere konnte durch die Bereitstellung von Lipiden und die Anregung hauteigener Regenerationsprozesse erreicht werden. Über den Nachweis des transepidermalen Wasserverlusts konnte eine Messmethode zur nicht-invasiven Bestimmung der Hautbarriere etabliert und über den Vergleich zur Impedanzspektroskopie validiert werden. Hierbei gelang es, erstmals die Korrelation der Hautmodelle zur in vivo Situation über ein solches Verfahren zu zeigen. Das entwickelte epidermale Modell konnte durch die Integration eines dermalen Anteils und einer Endothelzellschicht noch weiter an die komplexe Struktur und Physiologie der Haut angepasst werden um Untersuchungen, die mit der Metastierung und Invasion zusammenhängen, zu ermöglichen. Die artifizielle Dermis basiert auf einem Kollagen-Hydrogel mit primären Fibroblasten. Eine dezellularisierte Schweinedarmmatrix ließ sich zur Erweiterung des Modells um eine Endothelzellschicht nutzen. Dabei wanderten die primären Fibroblasten apikal in die natürliche Schweindarmmatrix ein, während die Endothelzellen basolateral eine geschlossene Schicht bildeten.
Die in dieser Arbeit entwickelten Gewebemodelle sind in der Lage, die Vorhersagekraft der in vitro Modelle und die in vitro - in vivo Korrelation zu verbessern. Durch die Kombination des Melanommodells mit einer darauf abgestimmten Analytik wurde ein neuartiges Werkzeug für die präklinische Forschung zur Testung von pharmazeutischen Wirkstoffen geschaffen.
Infectious diseases caused by pathogenic microorganisms are one of the largest socioeconomic burdens today. Although infectious diseases have been studied for decades, in numerous cases, the precise mechanisms involved in the multifaceted interaction between pathogen and host continue to be elusive. Thus, it still remains a challenge for researchers worldwide to develop novel strategies to investigate the molecular context of infectious diseases in order to devise preventive or at least anti-infective measures. One of the major drawbacks in trying to obtain in-depth knowledge of how bacterial pathogens elicit disease is the lack of suitable infection models to authentically mimic the disease progression in humans. Numerous studies rely on animal models to emulate the complex temporal interactions between host and pathogen occurring in humans. While they have greatly contributed to shed light on these interactions, they require high maintenance costs, are afflicted with ethical drawbacks, and are not always predictive for the infection outcome in human patients. Alternatively, in-vitro two-dimensional (2D) cell culture systems have served for decades as representatives of human host environments to study infectious diseases. These cell line-based models have been essential in uncovering virulence-determining factors of diverse pathogens as well as host defense mechanisms upon infection. However, they lack the morphological and cellular complexity of intact human tissues, limiting the insights than can be gained from studying host-pathogen interactions in these systems.
The focus of this thesis was to establish and innovate intestinal human cell culture models to obtain in-vitro reconstructed three-dimensional (3D) tissue that can faithfully mimic pathogenesis-determining processes of the zoonotic bacterium Campylobacter jejuni (C. jejuni). Generally employed for reconstructive medicine, the field of tissue engineering provides excellent tools to generate organ-specific cell culture models in vitro, realistically recapitulating the distinctive architecture of human tissues. The models employed in this thesis are based on decellularized extracellular matrix (ECM) scaffolds of porcine intestinal origin. Reseeded with intestinal human cells, application of dynamic culture conditions promoted the formation of a highly polarized mucosal epithelium maintained by functional tight and adherens junctions. While most other in-vitro infection systems are limited to a flat monolayer, the tissue models developed in this thesis can display the characteristic 3D villi and crypt structure of human small intestine.
First, experimental conditions were established for infection of a previously developed, statically cultivated intestinal tissue model with C. jejuni. This included successful isolation of bacterial colony forming units (CFUs), measurement of epithelial barrier function, as well as immunohistochemical and histological staining techniques. In this way, it became possible to follow the number of viable bacteria during the infection process as well as their translocation over the polarized epithelium of the tissue model. Upon infection with C. jejuni, disruption of tight and adherens junctions could be observed via confocal microscopy and permeability measurements of the epithelial barrier. Moreover, C. jejuni wildtype-specific colonization and barrier disruption became apparent in addition to niche-dependent bacterial localization within the 3D microarchitecture of the tissue model. Pathogenesis-related phenotypes of C. jejuni mutant strains in the 3D host environment deviated from those obtained with conventional in-vitro 2D monolayers but mimicked observations made in vivo. Furthermore, a genome-wide screen of a C. jejuni mutant library revealed significant differences for bacterial factors required or dispensable for interactions with unpolarized host cells or the highly prismatic epithelium provided by the intestinal tissue model. Elucidating the role of several previously uncharacterized factors specifically important for efficient colonization of a 3D human environment, promises to be an intriguing task for future research.
At the frontline of the defense against invading pathogens is the protective, viscoelastic mucus layer overlying mucosal surfaces along the human gastrointestinal tract (GIT). The development of a mucus-producing 3D tissue model in this thesis was a vital step towards gaining a deeper understanding of the interdependency between bacterial pathogens and host-site specific mucins. The presence of a mucus layer conferred C. jejuni wildtype-specific protection against epithelial barrier disruption by the pathogen and prevented a high bacterial burden during the course of infection. Moreover, results obtained in this thesis provide evidence in vitro that the characteristic corkscrew morphology of C. jejuni indeed grants a distinct advantage in colonizing mucous surfaces.
Overall, the results obtained within this thesis highlight the strength of the tissue models to combine crucial features of native human intestine into accessible in-vitro infection models. Translation of these systems into infection research demonstrated their ability to expose in-vivo like infection outcomes. While displaying complex organotypic architecture and highly prismatic cellular morphology, these tissue models still represent an imperfect reflection of human tissue. Future advancements towards inclusion of human primary and immune cells will strive for even more comprehensive model systems exhibiting intricate multicellular networks of in-vivo tissue. Nevertheless, the work presented in this thesis emphasizes the necessity to investigate host-pathogen interactions in infection models authentically mimicking the natural host environment, as they remain among the most vital parts in understanding and counteracting infectious diseases.
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.
Many arthropods such as mosquitoes, ticks, bugs, and flies are vectors for the transmission of pathogenic parasites, bacteria, and viruses. Among these, the unicellular parasite Trypanosoma brucei (T. brucei) causes human and animal African trypanosomiases and is transmitted to the vertebrate host by the tsetse fly. In the fly, the parasite goes through a complex developmental cycle in the alimentary tract and salivary glands ending with the cellular differentiation into the metacyclic life cycle stage. An infection in the mammalian host begins when the fly takes a bloodmeal, thereby depositing the metacyclic form into the dermal skin layer. Within the dermis, the cell cycle-arrested metacyclic forms are activated, re-enter the cell cycle, and differentiate into proliferative trypanosomes, prior to dissemination throughout the host.
Although T. brucei has been studied for decades, very little is known about the early events in the skin prior to systemic dissemination. The precise timing and the mechanisms controlling differentiation of the parasite in the skin continue to be elusive, as does the characterization of the proliferative skin-residing trypanosomes. Understanding the first steps of an infection is crucial for developing novel strategies to prevent disease establishment and its progression.
A major shortcoming in the study of human African trypanosomiasis is the lack of suitable infection models that authentically mimic disease progression. In addition, the production of infectious metacyclic parasites requires tsetse flies, which are challenging to keep. Thus, although animal models - typically murine - have produced many insights into the pathogenicity of trypanosomes in the mammalian host, they were usually infected by needle injection into the peritoneal cavity or tail vein, bypassing the skin as the first entry point. Furthermore, animal models are not always predictive for the infection outcome in human patients. In addition, the relatively small number of metacyclic parasites deposited by the tsetse flies makes them difficult to trace, isolate, and study in animal hosts.
The focus of this thesis was to develop and validate a reconstructed human skin equivalent as an infection model to study the development of naturally-transmitted metacyclic parasites of T. brucei in mammalian skin. The first part of this work describes the development and characterization of a primary human skin equivalent with improved mechanical properties. To achieve this, a computer-assisted compression system was designed and established. This system allowed the improvement of the mechanical stability of twelve collagen-based dermal equivalents in parallel through plastic compression, as evaluated by rheology. The improved dermal equivalents provided the basis for the generation of the skin equivalents and reduced their contraction and weight loss during tissue formation, achieving a high degree of standardization and reproducibility. The skin equivalents were characterized using immunohistochemical and histological techniques and recapitulated key anatomical, cellular, and functional aspects of native human skin. Furthermore, their cellular heterogeneity was examined using single-cell RNA sequencing - an approach which led to the identification of a remarkable repertoire of extracellular matrix-associated genes expressed by different cell subpopulations in the artificial skin. In addition, experimental conditions were established to allow tsetse flies to naturally infect the skin equivalents with trypanosomes.
In the second part of the project, the development of the trypanosomes in the artificial skin was investigated in detail. This included the establishment of methods to successfully isolate skin-dwelling trypanosomes to determine their protein synthesis rate, cell cycle and metabolic status, morphology, and transcriptome. Microscopy techniques to study trypanosome motility and migration in the skin were also optimized. Upon deposition in the artificial skin by feeding tsetse, the metacyclic parasites were rapidly activated and established a proliferative population within one day. This process was accompanied by: (I) reactivation of protein synthesis; (II) re-entry into the cell cycle; (III) change in morphology; (IV) increased motility. Furthermore, these observations were linked to potentially underlying developmental mechanisms by applying single-cell parasite RNA sequencing at five different timepoints post-infection.
After the initial proliferative phase, the tsetse-transmitted trypanosomes appeared to enter a reversible quiescence program in the skin. These quiescent skin-residing trypanosomes were characterized by very slow replication, a strongly reduced metabolism, and a transcriptome markedly different from that of the deposited metacyclic forms and the early proliferative trypanosomes. By mimicking the migration from the skin to the bloodstream, the quiescent phenotype could be reversed and the parasites returned to an active proliferating state. Given that previous work has identified the skin as an anatomical reservoir for T. brucei during disease, it is reasonable to assume that the quiescence program is an authentic facet of the parasite's behavior in an infected host.
In summary, this work demonstrates that primary human skin equivalents offer a new and promising way to study vector-borne parasites under close-to-natural conditions as an alternative to animal experimentation. By choosing the natural transmission route - the bite of an infected tsetse fly - the early events of trypanosome infection have been detailed with unprecedented resolution. In addition, the evidence here for a quiescent, skin-residing trypanosome population may explain the persistence of T. brucei in the skin of aparasitemic and asymptomatic individuals. This could play an important role in maintaining an infection over long time periods.
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.
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.
Die Stammzellforschung beschäftigt sich bereits seit Jahren mit der Frage, wie Gewebe oder sogar Organe im Labor hergestellt werden können. Als besonders vielversprechend erscheinen hierfür humane Mesenchymale Stammzellen (hMSC), da diese in vielen Fällen direkt vom Empfänger gewonnen werden können und so keine Organ- oder Gewebeabstoßung durch Abwehrreaktionen zu erwarten ist. Für die weitere Erforschung des Verhaltens von Stammzellen in vivo ist es notwendig, diese nicht-invasiv darstellen zu können. Dies ist zum Beispiel mittels Magnetischer Partikel Bildgebung (MPI) möglich. Hierfür müssen die Stammzellen mit einer geeigneten Substanz markiert werden. Eine solche sind beispielsweise superparamagnetische Eisenoxidnanopartikel (SPION). Derzeit gibt es keine von den medizinischen Zulassungsbehörden zugelassenen SPION die ohne TA in hMSC aufgenommen werden. In der hier vorliegenden Arbeit sollte also im Rahmen des
EU-weiten „IDEA-Projekts“ ein geeigneter SPION identifiziert werden, der eine optimale Zell-Partikel-Interaktion aufweist und sowohl mittels MPI als auch mit Raman-Spektroskopie nachweisbar ist. Zudem sollte die Nachweisbarkeit des SPION über einen längeren Zeitraum gegeben und kein Einfluss auf die hMSC feststellbar sein. Es wurden hMSC mit den Eisenoxidnanopartikeln M4E, M4F, M4F2 und M3A-PDL in unterschiedlichen Konzentrationen markiert. Für M3A-PDL und M4E erfolgten bei einer Konzentration von 0,5 mg/ml Untersuchungen in Zellkultur sowie auf SIS-ser als Matrix im 3D-Modell. Desweiteren wurde das Differenzierungsverhalten der mit M4E markierten hMSC bei chondrogener Differenzierung untersucht. Außerdem kamen Magnetische Partikel Spektroskopie (MPS) und Raman-Spektroskopie als nicht-invasive Nachweisverfahren zum Einsatz. Der SPION-Nachweis erfolgte histologisch mittels Berliner Blau Färbung. Untersuchungen zu Zellviabilität und Proliferation erfolgten durch Trypanblau sowie Ki67-Antikörper-Färbung. Um Nachzuweisen ob auch markierte Zellen proliferieren wurde eigens ein kombiniertes Färbeprotokoll zur Kombination von Berliner Blau und immunhistochemischer Färbung
etabliert. Der Erfolg der chrondrogenen Differenzierung wurde mittels Alcianblau, Aggrecan- und Kollagen-II-Antikörper Färbung überprüft. Es konnte gezeigt werden, dass M4E bei der Markierung von hMSC eine sehr gute Zell-Partikel-Interaktion aufweist und im Gegensatz zu M3A auch ohne TA in die Zellen aufgenommen wird. Durch beide Partikel werden Zellviabilität und Proliferation nicht beeinflusst. M4F sowie M4F2 ist zur Markierung nicht geeignet. Die Markierung ließ sich im 3D-Modell mit vier Wochen deutlich länger nachweisen als in 2D Zellkultur mit maximal zwei Wochen. Die chondrogene Differenzierung wird durch die Markierung mit 0,5 mg/ml M4E beeinflusst. M3A-PDL sind durch MPS nachweisbar. Die Raman-Spektroskopie eignet sich zur Differenzierung zwischen mit M3A-PDL markierten und unmarkierten hMSC. Es ist im Rahmen dieser Arbeit gelungen, einen
Eisenoxidnanopartikel mit hervorragender Zell-Partikel-Interaktion zu identifizieren, der ohne zusätzliches TA eine intensive Markierung der hMSC ermöglicht und mit MPS nachweisbar ist. Für M4E konnte in weiteren Arbeiten am Institut bereits gezeigt werden, dass auch eine Differenzierung zwischen markierten und unmarkierten Zellen mittels Raman-Spektroskopie möglich ist. Die chondrogene Differenzierung der hMSC wurde in der vorliegenden Arbeit allerdings beeinträchtigt. In der Literatur finden sich Hinweise auf eine dosisabhängige Inhibition der Differenzierung. Es sind daher weitere Versuche notwendig, um herauszufinden, ob die Inhibition der Differenzierung möglicherweise bei geringerer SPION-Konzentration weniger ausgeprägt ist. Zudem sollte untersucht werden, ob auch geringere Konzentrationen in den Zellen über mehrere Wochen mittels MPS nachweisbar bleiben. Desweiteren sollten Untersuchungen in, der in vivo Situation ähnlicheren,
Systemen, wie dem dynamischen Umfeld einer BioVaSc-TERM® durchgeführt werden um bessere Vorhersagen zum Verhalten markierter hMSC in vivo treffen zu können.
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.
Testung verschiedener Strategien für die Regeneration von Knorpeldefekten im Ex vivo-Testsystem
(2021)
Die Degeneration des Gelenkknorpels ist Hauptursache für chronische Schmerzen und eine dadurch bedingte Einschränkung der Lebensqualität. Für die Sozialversicherungssysteme ist dies mit steigenden Kosten verbunden. Gegenwärtige Behandlungsoptionen wie die Mikrofrakturierung oder die (matrix-assoziierte) Autologe Chondrozytentransplantation (M-) ACT führen zu einem minderwertigen Reparaturgewebe aus Faserknorpel mit unzureichenden mechanischen Eigenschaften an der Defektstelle. Es besteht ein Bedarf an der Entwicklung und Testung neuer Knorpeltherapien, die ein funktionelles Reparaturgewebe für nachhaltige Beschwerdefreiheit erzeugen. Das hier verwendete kürzlich etablierte osteochondrale Ex vivo-Testsystem (EVTS) eignet sich zur Evaluation unterschiedlicher zellbasierter Behandlungsansätze für die Knorpelregeneration.
Aus der medialen Femurkondyle von Schweinen wurden zylindrische 8 mm große osteochondrale Explantate (OCE) isoliert. Es wurden Knorpel-Knochendefekte und reine Knorpeldefekte kreiert und mit autologen Schweine-Chondrozyten (CZ) bzw. einer Mischung aus CZ und mesenchymalen Stammzellen (MSC) gefüllt, die in Kollagen Typ I Hydrogel eingebettet waren. Nach vierwöchiger Kultivierung wurden die Proben histologisch und immunhistochemisch gefärbt (Safranin-O-Färbung, Kollagen Typ II, Aggrekan), die Zellvitalität (Lebend-Tot-Färbung) überprüft und die extrazelluläre Matrixproduktion analysiert. Nach vierwöchiger Kultur im EVTS in Normoxie und Hypoxie zeigten sich die in Kollagen-I-Hydrogel eingebetteten Zellen lebensfähig. Die Auswertung der verschiedenen Ansätze erfolgte über den standardisierten ICRS-II-Score der International Cartilage Repair Society (ICRS) mit drei unabhängigen Bewertern. Insgesamt resultierten bessere Ergebnisse im Hinblick auf die Matrixsynthese in den Monokulturen aus CZ im Vergleich zu den Co-Kulturen aus CZ und MSCs. Da dieser Unterschied nicht groß war, könnten MSCs zur Einsparung autologer CZ eine Alternative in der Behandlung von Knorpeldefekten darstellen. Hypoxie spielte eine Rolle bei reinen Knorpeldefekten, nicht bei Knorpel-Knochendefekten. Dies bestätigt die Bedeutung des physiologischen hypoxischen Milieus des Gelenkknorpels, das einen niedrigen Sauerstoffgehalt von 2-5
VII
% aufweist. Die Ergebnisse zeigen, dass die unterschiedlichen Faktoren aus Zellkombination, Knorpeldefektgröße und Kultivierung in Hypoxie oder Normoxie Einfluss auf die Ausbildung der extrazellulären Matrix haben. Weiterhin fehlt jedoch das Verständnis für die genauen Mechanismen des Knorpelregenerationsverhaltens. Ex vivo-Testsysteme können dabei helfen ein weiteres Verständnis zu erlangen und entsprechende Behandlungsstrategien zu evaluieren.
Gegenstand dieser Arbeit war die Etablierung eines dreidimensionalen in vitro Tumormodells, welches ein orales in vivo Plattenepithelkarzinom nachbilden sollte. Dabei standen Aufbau, Reproduzierbarkeit und Reliabilität an vorderster Stelle. Als Zellquelle sollten sowohl Tumorzellen aus den Zelllinien FaDu, HLaC79 und HLaC79 Clone 1 als auch primäre Zellen aus karzinogenem Primärgewebe dienen. Als Referenz wurden dabei stets Modelle aus primär isolierten Zellen herangezogen, die ein Äquivalent zur gesunden Mundschleimhaut bildeten. Während der Isolationsvorgang von pathologischen Zellen primärer Plattenepithelkarzinomen aus der Mundhöhle und dem Pharynx aufgrund zahlreicher Kontaminationen und Stagnationen des Zellwachstums keinen Erfolg erzielte und der Versuch eingestellt wurde, war es mit den Tumorzelllinien FaDu und HLaC79 möglich, dreidimensionale in vitro Tumormodelle herzustellen. Ihre Malignität wurde durch die besonderen histologischen Architekturstörungen wie die geringere Epitheldicke, das Fehlen einer Parakeratinisierung im Stratum corneum und die Invasion von Tumorzellen in die Submukosa verdeutlicht. Um einen eindeutigen Vergleich zu den Mukosaäquivalenten zu ziehen, fand eine Immunhistochemie mit unterschiedlichen Markern statt, die vor allem den gestörten Epithelaufbau des Tumormodells verdeutlichte. Als Maß für die Zell-Zell-Kontakte, die im Laufe der Kultivierung entstanden, diente der transepitheliale elektrische Widerstand. Die Behandlung der Tumorzellen und Tumormodelle mit dem klinisch bewährten Zytostatikum Paclitaxel und dem neuen Polyether-Antibiotikum Salinomycin erzielte vor allem in der zweidimensionalen Kultivierung große Erfolge. Hier wurde verdeutlicht, dass Paclitaxel toxisch auf die HLaC79 Tumorzellen wirkt, während die paclitaxelresistenten HLaC79 Clone 1 Tumorzellen immun gegen dieses Medikament sind. Salinomycin hingegen sorgte für eine Verringerung der Zellviabilität bei beiden Zelllinien. Die histologischen Untersuchungen nach der 24-stündigen Medikamentenapplikation mit Paclitaxel bei den Tumormodellen zeigten keine signifikanten Unterschiede, während der transepitheliale elektrische Widerstand stieg und auf eine verstärkte Barriere nach Paclitaxelgabe schließen ließ.
Bevor ein zellbasiertes GTMP erstmalig beim Menschen angewendet werden kann, müssen verschiedene notwendige nicht-klinische Studien durchgeführt werden. Wichtig ist hier u.a. die Untersuchung der Biodistribution im Tiermodel. Diese umfasst die Verteilung, das Engraftment, die Persistenz, die Eliminierung und gegebenenfalls die Expansion der humanen Zellen in verschiedenen Organen, meistens im Mausmodel. Deshalb wurde eine qPCR-basierte Analysenmethode entwickelt, mit der humane genomische DNA innerhalb von muriner genomischer DNA bestimmt werden kann, und entsprechend den regulatorischen Richtlinien der European Medicines Agency und des International Council for Harmonisation validiert. Anschließend wurde diese Methode innerhalb einer präklinischen worst-case Szenario Biodistributionsstudie angewendet. Das Ziel dieser Studie war die Untersuchung des Biodistributionsprofils von genetisch modifizierten Blood Outgrowth Endothelial Cells von Hämophilie A Patienten 24 Stunden und sieben Tage nach intravenöser Applikation einer Dosis von 2x106 Zellen. Die Isolation, genetische Modifikation und die Expansion der Zellen sollte entsprechend den Richtlinien der Guten Herstellungspraxis durchgeführt werden. Hierbei ist die Auswahl und Anwendung geeigneter und essentieller Rohstoffe wichtig. Gleichermaßen ist die Durchführung einer definierten Qualitätskontrollstrategie notwendig und die Patientenzellen sollten nur innerhalb von nicht-klinischen Studien eingesetzt werden, wenn alle Akzeptanzkriterien erfüllt wurden. Die Validierung der qPCR-Methode zeigte eine hohe Genauigkeit, Präzision und Linearität innerhalb des Konzentrationsintervalls von 1:1x103 bis 1:1x106 humanen zu murinen Genomen. Bei Anwendung dieser Methode für die Biodistributionsstudie konnten nach 24 Stunden humane Genome in vier der acht untersuchten Mausorgane bestimmt werden. Nach sieben Tagen konnten in keinem der acht Organe humane Genome nachgewiesen werden...
Bisherige per Tissue Engineering hergestellte Testsysteme der Mundschleimhaut basieren in der Regel auf allogenen und teils dysplastischen Keratinozyten. Dies schmälert die Aussagekraft der gewonnenen Ergebnisse hinsichtlich des Anspruchs, Nativgewebe bestmöglich nachzubilden.
In der vorliegenden Arbeit sollte daher ein am Lehrstuhl für Tissue Engineering und Regenerative Medizin entwickeltes Protokoll zur Herstellung dreidimensionaler epidermaler Oralmukosaäquivalente auf Basis autologer Keratinozyten auf seine Eigenschaften und Einsatzmöglichkeit als in-vitro Testsystem untersucht werden.
Nach erfolgreicher Isolierung und Kultivierung im Monolayer konnten insgesamt 420 Modelle zu drei verschiedenen Zeitpunkten (Passagen) aufgebaut werden. Die Untersuchung von Histologie, Viabilität und Barrierefunktion mittels MTT, TEER und Natriumfluoresceinpermeabilität konnte einen suffizienten Aufbau von verhorntem, mehrschichtigen oralen Plattenepithel nachweisen. Gleichzeitig konnte eine Abnahme der Epithelqualität mit steigendem Keratinozytenalter festgestellt werden.
Eine sich anschließende Untersuchung von 14 Cytokeratinen sowie Apoptosemarkern per effizienzkorrigierter und normalisierter RT-qPCR konnte die Überlegenheit der dreidimensionalen autologen Oralmukosaäquivalente gegenüber der zweidimensionalen Monolayerkultur auf Genebene zeigen.
Gonorrhea is the second most common sexually transmitted infection worldwide and is caused by Gram-negative, human-specific diplococcus Neisseria gonorrhoeae. It colonizes the mucosal surface of the female reproductive tract and the male urethra. A rapid increase in antibiotic resistance makes gonorrhea a serious threat to public health worldwide. Since N. gonorrhoeae is a human-specific pathogen, animal infection models are not able to recapitulate all the features of infection. Therefore, a realistic in vitro cell culture model is urgently required for studying the gonorrhea infection. In this study, we established and characterized three independent 3D tissue models based on the porcine small intestinal submucosa (SIS) scaffold by co-culturing human dermal fibroblasts with human colorectal carcinoma, endometrial epithelial, and male uroepithelial cells. The histological, immunohistochemical, and ultra-structural analysis showed that the 3D SIS scaffold-based models closely mimic the main characteristics of the site of gonococcal infection in the human host including the formation of epithelial monolayer, underlying connective tissue, mucus production, tight junction (TJ), and microvilli. In addition, functional analysis such as transepithelial electrical resistance (TEER) and barrier permeability indicated high barrier integrity of the cell layer. We infected the established 3D tissue models with different N. gonorrhoeae strains and derivatives presenting various phenotypes regarding adhesion and invasion. The results showed disruption of TJs and growing the interleukins production in response to the infection, which depends on the type of strain and cell. In addition, the 3D tissue models supported bacterial survival, which provided an appropriate in vitro model for long-term infection study. This could be mainly because of the high resilience of the 3D tissue models based on the SIS scaffold to the infection in terms of alteration in permeability, cell destruction, and bacterial transmigration.
During gonorrhea infection, a high level of neutrophils migrates to the site of infection. The studies also showed that N. gonorrhoeae can survive or even replicate inside the neutrophils. Therefore, studying the interaction between neutrophils and N. gonorrhoeae is substantially under scrutiny. For this purpose, we generated a 3D tissue model by triple co-culturing of human primary fibroblast cells, human colorectal carcinoma cells, and human umbilical vein endothelial cells. The tissue model was subsequently infected by N. gonorrhoeae. A perfusion-based bioreactor system was employed to recreate blood flow in the side of endothelial cells and consequently study human neutrophils transmigration to the site of infection. We observed neutrophils activation upon the infection. Furthermore, we demonstrated the uptake of N. gonorrhoeae by human neutrophils and reverse transmigration of neutrophils to the basal side carrying N. gonorrhoeae. In summary, the introduced 3D tissue models in this research represent a promising tool to investigate N. gonorrhoeae infections under close-to-natural conditions.
Induced pluripotent stem cells (iPSCs) have been recognised as a virtually unlimited source of stem cells that can be generated in a patient-specific manner. Due to these cells’ potential to give rise to all differentiated cell types of the human body, they have been widely used to derive differentiated cells for drug screening and disease modelling purposes. iPSCs also garner much interest as they can potentially serve as a source for cell replacement therapy. Towards the realisation of these biomedical applications, this thesis aims to address challenges that are associated with scale-up, safety and biofabrication.
Firstly, the manufacture of a high number of human iPSCs (hiPSCs) will require standardised procedures for scale-up and the development of a flexible bioprocessing method, since standard adherent hiPSC culture exhibits limited scalability and is labour-intensive. While the quantity of cells that are required for cell therapy depends largely on the tissue and defect that these replacing cells are meant to correct, an estimate of 1 × 10^9 has been suggested to be sufficient for several indications, including myocardial infarction and islet replacement for diabetes. Here, the development of an integrated, microcarrier-free workflow to transition standard adherent hiPSC culture (6-well plates) to scalable stirred suspension culture in bioreactors (1 L working volume, 2.4 L maximum working volume) is presented. The two-phase bioprocess lasts 14 days and generates hiPSC aggregates measuring 198 ± 58 μm in diameter on the harvesting day, yielding close to 2 × 10^9 cells. hiPSCs can be maintained in stirred suspension for at least 7 weeks with weekly passaging, while exhibiting pluripotency-associated markers TRA-1-60, TRA-1-81, SSEA-4, OCT4, and SOX2. These cells retain their ability to differentiate into cells of all the three germ layers in vitro, exemplified by cells positive for AFP, SMA, or TUBB3. Additionally, they maintain a stable karyotype and continue to respond to specification cues, demonstrated by directed differentiation into beating cardiomyocyte-like cells. Therefore, the aim of manufacturing high hiPSC quantities was met using a state-of-the-art scalable suspension bioreactor platform.
Secondly, multipotent stem cells such as induced neural stem cells (iNSCs) may represent a safer source of renewable cells compared to pluripotent stem cells. However, pre-conditioning of stem cells prior to transplantation is a delicate issue to ensure not only proper function in the host but also safety. Here, iNSCs which are normally maintained in the presence of factors such as hLIF, CHIR99021, and SB431542 were cultured in basal medium for distinct periods of time. This wash-out procedure results in lower proliferation while maintaining key neural stem cell marker PAX6, suggesting a transient pre-differentiated state. Such pre-treatment may aid transplantation studies to suppress tumourigenesis through transplanted cells, an approach that is being evaluated using a mouse model of experimental focal demyelination and autoimmune encephalomyelitis.
Thirdly, biomedical applications of stem cells can benefit from recent advancements in biofabrication, where cells can be arranged in customisable topographical layouts. Employing a 3DDiscovery bioprinter, a bioink consisting of hiPSCs in gelatin-alginate was extruded into disc-shaped moulds or printed in a cross-hatch infill pattern and cross-linked with calcium ions. In both discs and printed patterns, hiPSCs recovered from these bioprints showed viability of around 70% even after 4 days of culture when loaded into gelatin-alginate solution in aggregate form. They maintained pluripotency-associated markers TRA-1-60 and SSEA-4 and continued to proliferate after re-plating. As further proof-of-principle, printed hiPSC 3D constructs were subjected to targeted neuronal differentiation, developing typical neurite outgrowth and resulting in a widespread network of cells throughout and within the topology of the printed matrix. Staining against TUBB3 confirmed neuronal identity of the differentiated cellular progeny. In conclusion, these data demonstrate that hiPSCs not only survive the 3D-printing process but were able to differentiate along the printed topology in cellular networks.
In reconstructive and plastic surgery, there exists a growing demand of adequate tissue implants, since currently available strategies for autologous transplantation are limited by complications including transplant failure and donor site morbidity. By developing in vitro and in vivo autologous substitutes for defective tissue sites, adipose tissue engineering can address these challenges, although there are several obstacles to overcome. One of the major limitations is the sufficient vascularization of in vitro engineered large constructs that remains crucial and demanding for functional tissues. Decellularized jejunal segments may represent a suitable scaffolding system with preexisting capillary structures that can be repopulated with human microvascular endothelial cells (hMVECs), and a luminal matrix applicable for the adipogenic differentiation of human adipose-derived stem cells (hASCs). Hence, co-culture of these cells in jejunal segments, utilizing a custom-made bioreactor system, was characterized in terms of vascularization and adipose tissue development. Substantial adipogenesis of hASCs was demonstrated within the jejunal lumen in contrast to non-induced controls, and the increase of key adipogenic markers was verified over time upon induction. The development of major extracellular matrix components of mature adipose tissue, such as laminin and collagen IV, was shown within the scaffold in induced samples. Successful reseeding of the vascular network with hMVECs was demonstrated in long-term culture and co-localization of vascular structures and adipogenically differentiated hASCs was observed. Therefore, these results represent a novel approach for in vitro engineering of vascularized adipose tissue constructs that warrants further investigations in preclinical studies.
Another still existing obstacle in adipose tissue engineering is the insufficient knowledge about the applied cells, for instance the understanding of how cells can be optimally expanded and differentiated for successful engineering of tissue transplants. Even though hASCs can be easily isolated from liposuction of abdominal fat depots, yielding low donor site morbidity, huge numbers of cells are required to entirely seed complex and large 3D matrices or scaffolds. Thus, cells need to be large-scale expanded in vitro on the premise of not losing their differentiation capacity caused by replicative aging. Accordingly, an improved differentiation of hASCs in adipose tissue engineering approaches remains still desirable since most engineered constructs exhibit an inhomogeneous differentiation pattern. For mesenchymal stem cells (MSCs), it has been shown that growth factor application can lead to a significant improvement of both proliferation and differentiation capacity. Especially basic fibroblast growth factor (bFGF) represents a potent mitogen for MSCs, while maintaining or even promoting their osteogenic, chondrogenic and adipogenic differentiation potential. As there are currently different contradictory information present in literature about the applied bFGF concentration and the explicit effect of bFGF on ASC differentiation, here, the effect of bFGF on hASC proliferation and differentiation capacity was investigated at different concentrations and time points in 2D culture. Preculture of hASCs with bFGF prior to adipogenic induction showed a remarkable effect, whereas administration of bFGF during culture did not improve adipogenic differentiation capacity. Furthermore, the observations indicated as mode of action an impact of this preculture on cell proliferation capacity, resulting in increased cellular density at the time of adipogenic induction. The difference in cell density at this time point appeared to be pivotal for increased adipogenic capacity of the cells, which was confirmed in a further experiment employing different seeding densities. Interestingly, furthermore, the obtained results suggested a cell-cell contact-mediated mechanism positively influencing adipogenic differentiation. As a consequence, subsequently, studies were conducted focusing on intercellular communication of these cells, which has hardly been investigated to date.
Despite the multitude of literature on the differentiation capacity of ASCs, little is reported about the physiological properties contributing to and controlling the process of lineage differentiation. Direct intercellular communication between adjacent cells via gap junctions has been shown to modulate differentiation processes in other cell types, with connexin 43 (Cx43) being the most abundant isoform of the gap junction-forming connexins. Thus, in the present study we focused on the expression of Cx43 and gap junctional intercellular communication (GJIC) in hASCs, and its significance for adipogenic differentiation of these cells. Cx43 expression in hASCs was demonstrated histologically and on the gene and protein expression level and was shown to be greatly positively influenced by cell seeding density. Functionality of gap junctions was proven by dye transfer analysis in growth medium. Adipogenic differentiation of hASCs was shown to be also distinctly elevated at higher cell seeding densities. Inhibition of GJIC by 18α-glycyrrhetinic acid significantly compromised adipogenic differentiation, as demonstrated by histology, triglyceride quantification, and adipogenic marker gene expression. Flow cytometry analysis showed a lower proportion of cells undergoing adipogenesis when GJIC was inhibited, further indicating the importance of GJIC in the differentiation process. Altogether, these results demonstrate the impact of direct cell-cell communication via gap junctions on the adipogenic differentiation process of hASCs and may contribute to further integrate direct intercellular crosstalk in rationales for tissue engineering approaches.