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This thesis concerned the design and examination of a scaffold for tissue engineering applications. The template for the presented scaffold came from nature itself: the intercellular space in tissues that provides structure and support to the cells of the respective tissue, known as extracellular matrix (ECM). Fibres are a predominant characteristic feature of ECM, providing adhesion sites for cell-matrix interactions. In this dissertation a fibrous mesh was generated using the electrospinning technique to mimic the fibrous structure of the ECM. Two base polymers were explored: a biodegradable polyester, poly(D,L-lactide-co-glycolide); and a functional PEG-based star polymer, NCO-sP(EO-stat-PO). This topic was described in three major parts: the first part was materials based, concerning the chemical design and characterisation of the polymer scaffolds; the focus was then shifted to the cellular response to this fibrous scaffold; and finally the in vivo performance of the material was preliminarily assessed. The first steps towards an electrospun mesh started with adjusting the spinning parameters for the generation of homogeneous fibres. As reported in Chapter 3 a suitable setup configuration was on the one hand comprised of a spinning solution that consisted of 28.5 w/v% PLGA RG 504 and 6 w/v% NCO-sP(EO-stat-PO) in 450 µL acetone, 50 µL DMSO and 10 µL of an aqueous trifluoroacetic acid solution. On the other hand an ideal spinning behaviour was achieved at process parameters such as a flow rate of 0.5 mL/h, spinneret to collector distance of 12-16 cm and a voltage of 13 kV. The NCO-sP(EO-stat-PO) containing fibres proved to be highly hydrophilic as the functional additive was present on the fibre surface. Furthermore, the fibres featured a bulk degradation pattern as a consequence of the proportion of PLGA. Besides the morphologic similarity to ECM fibres, the functionality of the electrospun fibres is also decisive for a successful ECM mimicry. In Chapter 4, the passive as well as active functionality of the fibres was investigated. The fibres were required to be protein repellent to prevent an unspecific cell adhesion. This was proven as even 6.5 % sP(EO-stat-PO) in the PLGA fibres reduced any unspecific protein adsorption of bovine serum albumin and foetal calf serum to less than 1 %. However, avidin based proteins attached to the fibres. This adhesion process was avoided by an additional fibre surface treatment with glycidol. The active functionalisation of NCO-sP(EO-stat-PO)/PLGA fibres was investigated with two fluorescent dyes and biocytin. A threefold, chemically orthogonal, fibre modification was achieved with these dyes. The chapters about the chemical and mechanical properties laid the basis for the in vitro chapters where a specific fibre functionalisation with peptides was conducted to analyse the cell adhesion and biochemical expressions. Beginning with fibroblasts in Chapter 5 the focus was on the specific cell adhesion on the electrospun fibres. While NCO-sP(EO-stat-PO)/PLGA fibres without peptides did not allow any adhesion of fibroblasts, a fibre modification with GRGDS (an adhesion mediating peptide sequence) induced the adhesion and spreading of human dermal fibroblasts on the fibrous scaffolds. The control sequence GRGES that has no adhesion mediating qualities did not lead to any cell adhesion as observed on fibres without modifications. While the experiments of Chapter 5 were a proof-of-concept, in Chapter 6 a possible application in cartilage tissue engineering was examined. Therefore, primary human chondrocytes were seeded on fibrous scaffolds with various peptide sequences. Though the chondrocytes exhibited high viability on all scaffolds, an active interaction of cells and fibres was only found for the decorin derived sequence CGKLER. Live-cell-imaging revealed both cell attachment and migration within CGKLER-modified meshes. As chondrocytes undergo a de-differentiation towards a fibroblast-like phenotype, the chondrogenic re-differentiation on these scaffolds was investigated in a long term cell culture experiment of 28 days. Therefore, the glycosaminoglycan production was analysed as well as the mRNA expression of genes coding for collagen I and II, aggrecan and proteoglycan 4. In general only low amounts of the chondrogenic markers were measured, suggesting no chondrogenic differentiation. For conclusive evidence follow-up experiments are required that support or reject the findings. The success of an implant for tissue engineering relies not only on the response of the targeted cell type but also on the immune reaction caused by leukocytes. Hence, Chapter 7 dealt with primary human macrophages and their behaviour and phenotype on two-dimensional (2D) surfaces compared to three-dimensional (3D) fibrous substrates. It was found that the general non-adhesiveness of NCO-sP(EO-stat-PO) surfaces and fibres does not apply to macrophages. The cells aligned along the fibres on surfaces or resided in the pores of the meshes. On flat surfaces without 3D structure the macrophages showed a retarded adhesion kinetic accompanied with a high migratory activity indicating their search for a topographical feature to adhere to. Moreover, a detailed investigation of cell surface markers and chemokine signalling revealed that macrophages on 2D surfaces exhibited surface markers indicating a healing phenotype while the chemokine release suggested a pro-inflammatory phenotype. Interestingly, the opposite situation was found on 3D fibrous substrates with pro-inflammatory surface markers and pro-angiogenic cytokine release. As the immune response largely depends on cellular communication, it was concluded that the NCO-sP(EO-stat-PO)/PLGA fibres induce an adequate immune response with promising prospects to be used in a scaffold for tissue engineering. The final chapter of this thesis reports on a first in vivo study conducted with the presented electrospun fibres. Here, the fibres were combined with a polypropylene mesh for the treatment of diaphragmatic hernias in a rabbit model. Two scaffold series were described that differed in the overall surface morphology: while the fibres of Series A were incorporated into a thick gel of NCO-sP(EO-stat-PO), the scaffolds of Series B featured only a thin hydrogel layer so that the overall fibrous structure could be retained. After four months in vivo the treated defects of the diaphragm were significantly smaller and filled mainly with scar tissue. Thick granulomas occurred on scaffolds of Series A while the implants of Series B did not induce any granuloma formation. As a consequence of the generally positive outcome of this study, the constructs were enhanced with a drug release system in a follow-up project. The incorporated drug was the MMP-inhibitor Ilomastat which is intended to reduce the formation of scar tissue. In conclusion, the simple and straight forward fabrication, the threefold functionalisation possibility and general versatile applicability makes the meshes of NCO-sP(EO-stat-PO)/PLGA fibres a promising candidate to be applied in tissue engineering scaffolds in the future.
Die ischämische Herzerkrankung (Angina pectoris, Herzinfarkt), eine führende Todesursache in den Industrienationen, wird hauptsächlich durch Intervention an den Koronararterien mittels Ballondilatation meist in Kombination mit einer Stentimplantation behandelt. Trotz aktueller Verbesserungen im Stentdesing und dem Einsatz von medikamente-freisetzenden Stents kommt es immer noch in etwa 10 – 20 % der Interventionen, in Abhängigkeit des jeweiligen Risikoprofils, zu der Entwicklung einer Restenose. Der pathophysiologische Prozess der Neointimaentwicklung, welche der Restenoseentstehung nach Stentimplantation zu Grunde liegt, ist im Wesentlichen durch einwandernde glatte Gefässmuskelzellen (GMZ) bedingt. Eine zentrale Rolle bei der Zellwanderung nehmen alpha V Integrine ein. Um den Prozess der Restenose zu verhindern, stellen somit diese Rezeptoren und die durch sie ausgelösten Signalkaskaden einen vielversprechenden Angriffspunkt dar. Wir konnten nach Stimulation von GMZ aus Schweinen mit den EZM Proteinen Vitronektin (VN), Fibronektin (FN) und Kollagen (CN) eine verstärkte Tyrosinphosphorylierung (PTyr) v.a. eines etwa 116 kDa grossen Proteins zeigen, das mittels Immunpräzipitation als “focal adhesion kinase” (FAK) identifiziert wurde. VN stellte hierbei den stärksten Stimulus dar. Die erhöhte PTyr zeigte sich am Tyrosinrest 397 von FAK (PTyr-397), der Autophosphorylierungsstelle der Kinase, und deutet damit auf eine durch Proteinstimulation induzierte, erhöhte Aktivität von FAK hin. Die erhöhte PTyr von FAK war nicht zu beobachten, wenn die GMZ ohne spezifische Rezeptor-Ligand Interaktion auf Poly-L-Lysin adhärierten. Die Aktivierung von FAK nach Stimulation mit VN, FN und CN war dabei abhängig von alpha V Integrinen und lies sich durch Zugabe eines kompetetiven alpha V Inhibitors in einer Dosis- abhängigen Weise unterdrücken. Die Inhibition war am deutlichsten nach VN Stimulation zu beobachten. Bei Kultivierung der Zellen mit dem Inhibitor über 7 Tage in einer Konzentration von 1 µM war in der Durchlichtmikroskopie im Vergleich zu kultivierten Zellen ohne Inhibitor keine Veränderung zu erkennen. Bei 10 µM Cilengitide verkleinerte sich der Zelldurchmesser, die Zellen blieben jedoch an der Oberfläche der Zellkulturschalen adhärent. In der IF Mikroskopie zeigte sich nach 30 min eine Abnahme der intrazellulären PTyr und ein Abbau des Aktinzytoskeletts unter Einfluss von 10 µM des Inhibitors auf kultivierte adhärente GMZ. Es gab keinen Hinweis auf Induktion einer Apoptose. Auf VN und CN konnten die zuvor suspendierten GMZ gut adhärieren, während auf einer mit FN beschichteten Oberfläche die Anzahl der angehefteten Zellen im Vergleich zu einer unbeschichteten Oberfläche nicht anstieg. Die Adhäsion der GMZ auf VN konnte der Hemmstoff stark vermindern, während er auf die Adhäsion auf FN und CN keinen Einfluss hatte. Die Inhibition der Aktivierung von FAK durch den alpha V Integrininhibitor korrelierte mit der Reduktion der durch die Proteinen stimulierten Migration (Haptotaxis) der primären GMZ. Der Inhibitor führte bei einer Konzentration von 10 µM bei VN Stimulation zu einer fast vollständigen Inhibition der Haptotaxis, während er nach FN bzw. CN Stimulation die Anzahl der gewanderten Zellen bei dieser Konzentration um etwa 30 % verringerte. Die Migrationsrate wurde mit Hilfe eines modifizierten Boyden-Kammer Migrationsversuchs ermittelt. Unsere Ergebnisse unterstreichen die Schlüsselrolle der alpha V Integrine in der Motilität von GMZ. Sie nehmen Einfluss auf Signalkaskaden, die von FAK abhängig sind und die Haptotaxis zu regulieren scheinen. Diese Ergebnisse machen die alpha V Integrine zu einem vielversprechenden Angriffspunkt, um eine Restenose nach Stentimplantation zu verhindern. Der Einsatz des alpha V Integrininhibitors Cilengitide, der mit einem Medikamente-freisetzenden Stent lokal an dem Ort des pathologischen Geschehens appliziert werden kann, lässt somit eine weitere Reduktion der Restenoserate erhoffen, was in einem nächsten Schritt mittels eines in vivo Modells untersucht werden muss.