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Sonstige beteiligte Institutionen
Development and proof of concept of a biological vascularized cell‐based drug delivery system
(2019)
A major therapeutic challenge is the increasing incidence of chronic disorders.
The persistent impairment or loss of tissue function requires constitutive on‐demand
drug availability optimally achieved by a drug delivery system ideally directly connected
to the blood circulation of the patient. However, despite the efforts and achievements in
cell‐based therapies and the generation of complex and customized cell‐specific
microenvironments, the generation of functional tissue is still unaccomplished.
This study demonstrates the capability to generate a vascularized platform technology to
potentially overcome the supply restraints for graft development and clinical application
with immediate anastomosis to the blood circulation.
The ability to decellularize segments of the rat intestine while preserving the ECM for
subsequent reendothelialization was proven. The reestablishment of a functional
arteriovenous perfusion circuit enabled the supply of co‐cultured cells capable to replace
the function of damaged tissue or to serve as a drug delivery system. During in vitro
studies, the applicability of the developed miniaturized biological vascularized scaffold
(mBioVaSc‐TERM®) was demonstrated. While indicating promising results in short term
in vivo studies, long term implantations revealed current limitations for the translation
into clinical application. The gained insights will impact further improvements of quality
and performance of this promising platform technology for future regenerative therapies.
Articular cartilage lesions that occur upon intensive sport, trauma or degenerative disease represent a severe therapeutic problem. At present, osteoarthritis is the most common joint disease worldwide, affecting around 10% of men and 18% of women over 60 years of age (302). The poor self-regeneration capacity of cartilage and the lack of efficient therapeutic treatment options to regenerate durable articular cartilage tissue, provide the rationale for the development of new treatment options based on cartilage tissue engineering approaches (281). The integrated use of cells, biomaterials and growth factors to guide tissue development has the potential to provide functional substitutes of lost or damaged tissues (2,3). For the regeneration of cartilage, the availability of mesenchymal stromal cells (MSCs) or their recruitment into the defect site is fundamental (281). Due to their high proliferation capacity, the possibility to differentiate into chondrocytes and their potential to attract other progenitor cells into the defect site, bone marrow-derived mesenchymal stromal cells (BMSCs) are still regarded as an attractive cell source for cartilage tissue engineering (80). However, in order to successfully engineer cartilage tissue, a better understanding of basic principles of developmental processes and microenvironmental cues that guide chondrogenesis is required.
Expansion microscopy (ExM) is a novel tool to improve the resolution of fluorescence-based microscopy that has not yet been used to visualize intracellular pathogens. Here we show the expansion of the intracellular pathogen Chlamydia trachomatis, enabling to differentiate its two distinct forms, catabolic active reticulate bodies (RB) and infectious elementary bodies (EB), on a conventional confocal microscope. We show that ExM enables the possibility to precisely locate chlamydial effector proteins, such as CPAF or Cdu1, within and outside of the chlamydial inclusion. Thus, we claim that ExM offers the possibility to address a broad range of questions and may be useful for further research on various intracellular pathogens.
Das humane Schädeldach besteht aus fünf Schädelplatten, die durch intramembranöse Ossifikation entstehen. Wenn diese in der Embryonalentwicklung aufeinandertreffen, bilden sich Schädelnähte aus, die eine Fusion der Schädelplatten verhindern und damit ein Schädelwachstum parallel zu Gehirnentwicklung ermöglichen. Für diesen Prozess ist eine Balance aus Zellproliferation und Differenzierung nötig, deren Aufrechterhaltung wiederum durch eine komplexe Regulation von verschiedenen Signalwegen gewährleistet wird. Störungen in diesem regulatorischen System können zu einer vorzeitigen Fusion der Schädelplatten, Kraniosynostose genannt, führen. Die Kraniosynostose ist eine der häufigsten kraniofazialen Fehlbildungen beim Menschen. Durch kompensatorisches Wachstum an den nicht fusionierten Suturen entstehen charakteristische Schädeldeformationen, die sekundär einen erhöhten intrakranialen Druck zur Folge haben können. Eine vorzeitige Fusion der Suturen kann sowohl isoliert als auch syndromal zusammen mit weiteren klinischen Auffälligkeiten vorliegen. Bisher sind über 150 verschiedene Kraniosynostose Syndrome beschrieben und insgesamt 25-30% aller Kraniosynostose Patienten sind von einer syndromalen Form betroffen. Da die klinischen Merkmale der Kraniosynostose Syndrome variabel sind und zum Teil überlappen, ist eine klare klinische Diagnose häufig erschwert. Sowohl Umwelteinflüsse als auch genetische Veränderungen können die Ursache für Kraniosynostosen sein. Vor allem bei syndromalen Kraniosynostosen wurden genetische Veränderungen, wie beispielsweise Mutationen in den Genen FGFR2, FGFR3, TWIST1 und EFNB1, identifiziert. Darüber hinaus wurden chromosomale Veränderungen wie partielle Monosomien von 7p, 9p oder 11p sowie partielle Trisomien von 5q, 13q oder 15q mit Kraniosynostose assoziiert. Trotzdem ist in über 50% der Fälle die genetische Ursache unbekannt und die Pathogenese von Kraniosynostosen noch nicht vollständig geklärt.
Ziel dieser Arbeit war es neue genetische Ursachen bei Kraniosynostose Patienten zu identifizieren und so zur Aufklärung der Pathogenese beizutragen. Es wurde die genomische DNA von 83 Patienten molekulargenetisch durch Mikroarray basierte vergleichende Genomhybridisierung (Array-CGH) oder durch ein speziell entworfenes Next Generation Sequencing (NGS) Genpanel untersucht. Bei 30% der Patienten konnte eine potentiell pathogene Veränderung identifiziert werden. Davon waren 23% chromosomale Aberrationen wie unbalancierte Translokationen, isolierte interstitielle Verluste und ein Zugewinn an genomischen Material. Bei zwei Patienten wurden unbalancierte Translokationen mit partieller 5q Trisomie nachgewiesen. Das Gen MSX2 liegt innerhalb des duplizierten Bereichs, sodass möglicherweise eine MSX2 Überexpression vorliegt. Für ein normales Schädelwachstum ist jedoch die richtige Menge an MSX2 kritisch. Des Weiteren wurde eine partielle Deletion von TCF12 detektiert, die in einer Haploinsuffizienz von TCF12 resultiert. TCF12 Mutationen sind mit Koronarnahtsynosten assoziiert. In einem anderen Fall lag das Gen FGF10 innerhalb der duplizierten 5p15.1-p12 Region. Das Gen kodiert für einen Liganden des FGF Signalwegs und wurde bisher noch nicht mit Kraniosynostose assoziiert. Aufgrund dessen wurden Analysen im Tiermodell Danio rerio durchgeführt. Eine simulierte Überexpression durch Injektion der fgf10a mRNA in das 1-Zell Stadium führte zu schweren Gehirn-, Herz- und Augendefekten.
Mittels NGS wurden 77% der potentiell pathogenen genetischen Veränderungen identifiziert. Hierfür wurde in dieser Arbeit ein Genpanel erstellt, das 68 Gene umfasst. Es wurden sowohl bekannte Kraniosynostose- als auch Kandidaten-Gene sowie Gene, die mit der Ossifikation assoziiert sind, in die Analyse eingeschlossen. Das Genpanel wurde durch die Sequenzierung von fünf Kontrollproben mit bekannten Mutationen erfolgreich validiert. Anschließend wurde die genomische DNA von 66 Patienten analysiert. Es konnten 20 (potentiell) pathogene Varianten identifiziert werden. Neben bereits bekannten Mutationen in den Genen FGFR1, FGFR2, FGFR3 und TWIST1, konnten zusätzlich 8 neue, potentiell pathogene Varianten in den Genen ERF, MEGF8, MSX2, PTCH1 und TCF12 identifiziert werden. Die Ergebnisse dieser Arbeit tragen dazu bei das Mutationsspektrum dieser Gene zu erweitern. Bei zwei der Varianten handelte es sich um potentielle Spleißvarianten. Für diese konnte in einem in vitro Spleißsystem gezeigt werden, dass sie eine Änderung des Spleißmusters bewirken. Der Nachweis von zwei seltenen Varianten in den Genen FGFR2 und HUWE1 hat außerdem dazu beigetragen die Pathogenität dieser spezifischen Varianten zu bekräftigen. Eine Variante in POR, die aufgrund bioinformatischer Analysen als potentiell pathogen bewertet wurde, wurde nach der Segregationsanalyse als wahrscheinlich benigne eingestuft. Zusammenfassend konnten bei etwa einem Drittel der Patienten, die mit dem NGS Genpanel analysiert wurden, eine genetische Ursache identifiziert werden. Dieses Genpanel stellt somit ein effizientes diagnostisches Tool dar, das zukünftig in der genetischen Routine-Diagnostik von Kraniosynostose-Patienten eingesetzt werden kann. Die Ergebnisse dieser Arbeit zeigen, dass sowohl eine Untersuchung auf CNVs als auch auf Sequenzänderungen bei Kraniosynostose Patienten sinnvoll ist.
The alarming increase in the magnitude and spatiotemporal patterns of changes in composition, structure and function of forest ecosystems during recent years calls for enhanced cross-border mitigation and adaption measures, which strongly entail intensified research to understand the underlying processes in the ecosystems as well as their dynamics. Remote sensing data and methods are nowadays the main complementary sources of synoptic, up-to-date and objective information to support field observations in forest ecology. In particular, analysis of three-dimensional (3D) remote sensing data is regarded as an appropriate complement, since they are hypothesized to resemble the 3D character of most forest attributes. Following their use in various small-scale forest structural analyses over the past two decades, these sources of data are now on their way to be integrated in novel applications in fields like citizen science, environmental impact assessment, forest fire analysis, and biodiversity assessment in remote areas. These and a number of other novel applications provide valuable material for the Forests special issue “3D Remote Sensing Applications in Forest Ecology: Composition, Structure and Function”, which shows the promising future of these technologies and improves our understanding of the potentials and challenges of 3D remote sensing in practical forest ecology worldwide.
The plasma membrane is one of the most thoroughly studied and at the same time most complex, diverse, and least understood cellular structures. Its function is determined by the molecular composition as well as the spatial arrangement of its components. Even after decades of extensive membrane research and the proposal of dozens of models and theories, the structural organization of plasma membranes remains largely unknown. Modern imaging tools such as super-resolution fluorescence microscopy are one of the most efficient techniques in life sciences and are widely used to study the spatial arrangement and quantitative behavior of biomolecules in fixed and living cells. In this work, direct stochastic optical reconstruction microscopy (dSTORM) was used to investigate the structural distribution of mem-brane components with virtually molecular resolution. Key issues are different preparation and staining strategies for membrane imaging as well as localization-based quantitative analyses of membrane molecules.
An essential precondition for the spatial and quantitative analysis of membrane components is the prevention of photoswitching artifacts in reconstructed localization microscopy images. Therefore, the impact of irradiation intensity, label density and photoswitching behavior on the distribution of plasma membrane and mitochondrial membrane proteins in dSTORM images was investigated. It is demonstrated that the combination of densely labeled plasma membranes and inappropriate photoswitching rates induces artificial membrane clusters. Moreover, inhomogeneous localization distributions induced by projections of three-dimensional membrane structures such as microvilli and vesicles are prone to generate artifacts in images of biological membranes. Alternative imaging techniques and ways to prevent artifacts in single-molecule localization microscopy are presented and extensively discussed.
Another central topic addresses the spatial organization of glycosylated components covering the cell membrane. It is shown that a bioorthogonal chemical reporter system consisting of modified monosaccharide precursors and organic fluorophores can be used for specific labeling of membrane-associated glycoproteins and –lipids. The distribution of glycans was visualized by dSTORM showing a homogeneous molecule distribution on different mammalian cell lines without the presence of clusters. An absolute number of around five million glycans per cell was estimated and the results show that the combination of metabolic labeling, click chemistry, and single-molecule localization microscopy can be efficiently used to study cell surface glycoconjugates.
In a third project, dSTORM was performed to investigate low-expressing receptors on cancer cells which can act as targets in personalized immunotherapy. Primary multiple myeloma cells derived from the bone marrow of several patients were analyzed for CD19 expression as potential target for chimeric antigen receptor (CAR)-modified T cells. Depending on the patient, 60–1,600 CD19 molecules per cell were quantified and functional in vitro tests demonstrate that the threshold for CD19 CAR T recognition is below 100 CD19 molecules per target cell. Results are compared with flow cytometry data, and the important roles of efficient labeling and appropriate control experiments are discussed.
Studying how cambial age and axial height affects wood anatomical traits may improve our understanding of xylem hydraulics, heartwood formation and axial growth. Radial strips were collected from six different heights (0–11.3 m) along the main trunk of three Manchurian catalpa (Catalpa bungei) trees, yielding 88 samples. In total, thirteen wood anatomical vessel and fiber traits were observed usinglight microscopy (LM) and scanning electron microscopy (SEM), and linear models were used to analyse the combined effect of axial height, cambial age and their interaction. Vessel diameter differed by about one order of magnitude between early- and latewood, and increased significantly with both cambial age and axial height in latewood, while it was positively affected by cambial age and independent of height in earlywood. Vertical position further had a positive effect on earlywood vessel density, and negative effects on fibre wall thickness, wall thickness to diameter ratio and length. Cambial age had positive effects on the pit membrane diameter and vessel element length, while the annual diameter growth decreased with both cambial age and axial position. In contrast, early- and latewood fiber diameter were unaffected by both cambial age and axial height. We further observed an increasing amount of tyloses from sapwood to heartwood, accompanied by an increase of warty layers and amorphous deposits on cell walls, bordered pit membranes and pit apertures. This study highlights the significant effects of cambial age and vertical position on xylem anatomical traits, and confirms earlier work that cautions to take into account xylem spatial position when interpreting wood anatomical structures, and thus, xylem hydraulic functioning.
Fin development and regeneration are complex biological processes that are highly relevant in teleost fish. They share genetic factors, signaling pathways and cellular properties to coordinate formation of regularly shaped extremities. Especially correct tissue structure defined by extracellular matrix (ECM) formation is essential. Gene expression and protein localization studies demonstrated expression of fndc3a (fibronectin domain containing protein 3a) in both developing and regenerating caudal fins of zebrafish (Danio rerio). We established a hypomorphic fndc3a mutant line (fndc3a\(^{wue1/wue1}\)) via CRISPR/Cas9, exhibiting phenotypic malformations and changed gene expression patterns during early stages of median fin fold development. These developmental effects are mostly temporary, but result in a fraction of adults with permanent tail fin deformations. In addition, caudal fin regeneration in adult fndc3a\(^{wue1/wue1}\) mutants is hampered by interference with actinotrichia formation and epidermal cell organization. Investigation of the ECM implies that loss of epidermal tissue structure is a common cause for both of the observed defects. Our results thereby provide a molecular link between these developmental processes and foreshadow Fndc3a as a novel temporal regulator of epidermal cell properties during extremity development and regeneration in zebrafish.
In mammals the melanocortin 4 receptor (Mc4r) signaling system has been mainly associated with the regulation of appetite and energy homeostasis. In fish of the genus Xiphophorus (platyfish and swordtails) puberty onset is genetically determined by a single locus, which encodes the mc4r. Wild populations of Xiphophorus are polymorphic for early and late-maturing individuals. Copy number variation of different mc4r alleles is responsible for the difference in puberty onset. To answer whether this is a special adaptation of the Mc4r signaling system in the lineage of Xiphophorus or a more widely conserved mechanism in teleosts, we studied the role of Mc4r in reproductive biology of medaka (Oryzias latipes), a close relative to Xiphophorus and a well-established model to study gonadal development. To understand the potential role of Mc4r in medaka, we characterized the major features of the Mc4r signaling system (mc4r, mrap2, pomc, agrp1). In medaka, all these genes are expressed before hatching. In adults, they are mainly expressed in the brain. The transcript of the receptor accessory protein mrap2 co-localizes with mc4r in the hypothalamus in adult brains indicating a conserved function of modulating Mc4r signaling. Comparing growth and puberty between wild-type and mc4r knockout medaka revealed that absence of Mc4r does not change puberty timing but significantly delays hatching. Embryonic development of knockout animals is retarded compared to wild-types. In conclusion, the Mc4r system in medaka is involved in regulation of growth rather than puberty.
In plants, antimicrobial immune responses involve the cellular release of anions and are responsible for the closure of stomatal pores. Detection of microbe-associated molecular patterns (MAMPs) by pattern recognition receptors (PRRs) induces currents mediated via slow-type (S-type) anion channels by a yet not understood mechanism. Here, we show that stomatal closure to fungal chitin is conferred by the major PRRs for chitin recognition, LYK5 and CERK1, the receptor-like cytoplasmic kinase PBL27, and the SLAH3 anion channel. PBL27 has the capacity to phosphorylate SLAH3, of which S127 and S189 are required to activate SLAH3. Full activation of the channel entails CERK1, depending on PBL27. Importantly, both S127 and S189 residues of SLAH3 are required for chitin-induced stomatal closure and anti-fungal immunity at the whole leaf level. Our results demonstrate a short signal transduction module from MAMP recognition to anion channel activation, and independent of ABA-induced SLAH3 activation.