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In der Plastischen Chirurgie erfordert die Rekonstruktion von ästhetisch anspruchsvollen Bereichen in vielen Fällen die Wiederherstellung von subkutanem Fettgewebe. Neben chirurgischen Rekonstruktionen könnte das Tissue Engineering von Fettgewebe einen wertvollen Beitrag leisten. Jedoch bringt es vielschichtige Herausforderungen mit sich und ist zum aktuellen Zeitpunkt nur limitiert möglich. Ein Ansatz ist die Schaffung einer Trägermatrix zur Besiedelung und Differenzierung von Stammzellen. Auf dieser Basis sollten in der vorliegenden Arbeit zwei Teilbereiche untersucht werden. In dem ersten Teilbereich erfolgten Untersuchungen verschiedener Gewinnungsmethoden von ASCs aus dem subkutanen Fettgewebe bezogen auf ihr Effizienz. Die untersuchten Liposuktionstechniken zeigten eine deutlich höhere Effizienz gegenüber der mechanischen Gewinnungsmethode bezogen auf die gewonnene Zellzahl. In den Viabilitätsuntersuchungen zeigte sich eine ähnliche Tendenz. ASCs aller drei Gewinnungsmethoden proliferierten durchaus gleich gut, jedoch zeigten die histologischen und quantitativen Adipogeneseuntersuchungen tendenziell mehr Lipidbildung bei den Liposuktionstechniken.
Das übergeordnete Ziel des zweiten Abschnittes dieser Arbeit war es eine Trägermatrix auf Hyaluronsäure-Basis mit dem vielseitig modifizierbarem Crosslinker Polyglycidol zu untersuchen, sie mit mesenchymalen Stammzellen aus dem Fettgewebe zu besiedeln und diese adipogen zu differenzieren. Des Weiteren erfolgten erste Versuche die Hydrogele mit funktionellen Gruppen zu modifizieren um eine Verbesserung der Adhäsion der Zellen im Hydrogel zu erreichen. Die unmodifizierten Hydrogele waren zu jeder Zeit stabil in ihrer Form und zeigten nach Besiedelung mit ASCs eine gleichmäßige Verteilung der Zellen im Gel. Auch ließ sich die Adipogenese histologisch visualisieren und biochemisch bestätigen. Die inkorporierten Peptide brachten eine peptidabhängige und konzentrationsabhängige Veränderung der Zellverteilung im Hydrogel. Eine Steigerung der Funktionalität der Zellen bezogen auf das Überleben und die Adipogenese konnte in diesen ersten Versuchen noch nicht gezeigt werden.
Generell zeigt sich eine Eignung der hyaluronsäurebasierten mit Polyglycidol-verlinkten Hydrogele für das Tissue Engineering von Fettgewebe. Weitere Untersuchungen bezüglich der Modifikation der Hydrogele mit adhäsiven und adipogenen funktionellen Gruppen bietet sich daher an und könnte ein fettgewebsähnliches Umgebungsmilieu hervorbringen.
In Analogie zu natürlichen Proteingerüsten wurden poly-Acrylamid-Hydrogele mit polaren funktionellen Gruppen modifiziert, die in der Biomineralisation eine wichtige Rolle spielen. Durch gezielte Variation der Synthesebedingungen ist es möglich, Art, Gehalt und räumliche Anordnung der ionischen Funktionalitäten in den Copolymernetzwerken einzustellen. Die Hydrogele wurden in einer Doppeldiffusionsanordnung zur Mineralisation von CaCO3 eingesetzt und die Ergebnisse mit Gelatinegel als natürlichem Reaktionsmedium verglichen. Entgegen der ursprünglichen Erwartungen konnten in Gelatinegel keine Hinweise auf molekular-chemische Wechselwirkungen zwischen dem Proteinnetzwerk und den Mineralisationsprodukten nachgewiesen werden. Im Verlauf der Kristallisation wird die organische Matrix lediglich passiv inkorporiert. Allerdings bewirkt die heterogene Verteilung in den hantelähnlichen Kompositpartikeln die Auffächerung der Wachstumsfronten, so daß sich im Verlauf des Kristallwachstums eine Zwillingsstruktur der makroskopischen Produkte ausbildet. Der Netzwerkeffekt der organischen Matrix wird jedoch von dem lokalen chemischen Milieu in dem Gelkörper überlagert. Die Ähnlichkeit der Produkte mit natürlichen Biomineralen weist darauf hin, daß auch Biomineralisationsprozesse lediglich Folge eines unspezifischen chemischen Milieus sein können. Deutliche Analogien zu natürlichen Biomineralisationsprodukten wurden bei der Materialabscheidung in unfunktionalisierten poly-Acrylamid-Hydrogelen beobachtet. Die oktaedrische Form der Mineralisationsprodukte ist untypisch für Calcit und kennzeichnet einen spezifischen Kristallisationsmechanismus. Obwohl die Aggregate aus zahlreichen rhomboedrischen Calcit-Bausteinen zusammengefügt sind, weisen die makroskopischen Produkte eine gestörte einkristalline Struktur auf. Das große Mosaik der Röntgenbeugungsmaxima ist auf die Fehlorientierung kohärent streuender Bereiche zurückzuführen. Basierend auf den Untersuchungsergebnissen wurde ein Aggregationsmodell postuliert: Die simultane orientierte Verwachsung rhomboedrischer Untereinheiten sowie das Flächenwachstum dieser Bausteine führt zu der oktaedrischen Morphologie der Aggregate. Die prinzipielle Analogie der Mineralisationsprodukte mit vielen Biomineralen richtet den Blick auf die Frage, inwieweit alleine die physikalische Struktur extrazellulärer Matrices eine wichtige Rolle bei der Biomineralisation spielt. Die Ergebnisse der Mineralisationsversuche in Sulfonat-funktionalisierten Hydrogelen untermauern den dominanten Effekt der Netzwerkstruktur. Die stark polaren funktionellen Gruppen modifizieren lediglich die Morphologie der Aggregate, führen aber nicht zu einer grundlegenden Veränderung der Nukleation und des Wachstumsmechanismus. Demgegenüber zeigt sich in Carboxylat-funktionalisiertem poly-Acrylamid eine deutlich erhöhte Keimdichte und eine intermediäre Stabilisierung von Vaterit. Dieser spezifische Einfluß der Carboxylatgruppen auf die Keimbildung relativiert das oft für Biomineralisationsvorgänge postulierte ionotrope Nukleationsmodell und unterstreicht die Notwendigkeit einer stereochemischen Verwandtschaft zwischen den organischen Funktionalitäten und der entstehenden Kristallphase. Besonders deutlich wird die Bedeutung der Carboxylatgruppen bei der Mineralisation in Gelmatrices, die mit poly-L-Aspartat versetzt wurden. Die Wirkungsweise des Gelatinegels sowie der Kompartimenteffekt des poly-Acrylamid wird durch die Wechselwirkung des Additivs mit der anorganischen Phase überkompensiert: Im Verlauf der Doppeldiffusion entstehen in den untersuchten Hydrogelen Vaterit-Agglomerate, die permanent stabilisiert sind. Da die Kristallisationsmechanismen der reinen Gelmatrices rhomboedrische Calcit-Keimkristalle voraussetzen, werden die Netzwerkeffekte durch die Bildung sphärischer Vaterit-Partikel außer Kraft gesetzt. Möglicherweise beruht auch die Morphogenese natürlicher Biomineralisationsprodukte auf einem Wechselspiel des physikalischen Netzwerkeffekts einer extrazellulären Matrix und der Wirkungsweise modifikationsselektiver Makromoleküle. In den unterschiedlichen Hydrogelmatrices sind, trotz einheitlicher Versuchsbedingungen, drei grundsätzlich verschiedene Kristallisationsmechanismen des Calcits wirksam: In Gelatinegel kommt es zu lagenweisem Wachstum, die oktaedrischen Produkte aus poly-Acrylamid gehen auf die Aggregation vorgeformter Untereinheiten zurück und in Carboxylat-funktionalisierten Netzwerken entstehen sphärolithische Kristalle. Diese Ergebnisse belegen auf anschauliche Weise eine Wechselwirkung der organischen Matrix mit der anorganischen Phase. In natürlichen Systemen wird dieser Effekt durch komplexe genetische und zelluläre Prozesse gesteuert, die sich in-vitro nicht simulieren lassen. Allerdings weisen die Analogien der Mineralisationsversuche mit natürlichen Biomineralisationsprozessen auf vergleichbare Prinzipien hin. Demzufolge können die Mechanismen der Biomineralisation verhältnismäßig trivial sein, allein die biologische Reproduzierbarkeit der Materialabscheidung setzt ein hohes Maß an genetischer Steuerung voraus. Von einer weiterführenden Untersuchung der Mechanismen, die der Biomineralisation zugrunde liegen, sind wesentliche Impulse für eine biomimetische Materialsynthese zu erwarten. Wie die spezifische Wechselwirkung der Carboxylatgruppen mit der Kristallphase nahelegt, sollten die molekular-chemischen Effekte polarer funktioneller Gruppen im Mittelpunkt des Interesses stehen. Für ein besseres Gesamtverständnis muß daher eine Brücke zwischen der "mesoskopischen" Wirkung gelartiger Medien und entsprechenden Vorgängen auf atomarer Skala geschlagen werden. Die atomaren Mechanismen bei der Kristallisation von CaCO3 in Gegenwart verschiedener Additive werden in einem Partnerprojekt an der Universität Münster untersucht [Set03]. Die Zusammenführung dieser beiden Sichtweisen läßt ein tiefgreifendes Verständnis der allgemeinen Prinzipien der Biomineralisation erwarten.
Articular cartilage damage caused by sports accidents, trauma or gradual wear and tear can lead to degeneration and the development of osteoarthritis because cartilage tissue has only limited capacity for intrinsic healing. Osteoarthritis causes reduction of mobility and chronic pain and is one of the leading causes of disability in the elderly population. Current clinical treatment options can reduce pain and restore mobility for some time, but the formed repair tissue has mostly inferior functionality compared to healthy articular cartilage and does not last long-term. Articular cartilage tissue engineering is a promising approach for the improvement of the quality of cartilage repair tissue and regeneration. In this thesis, a promising new cell type for articular cartilage tissue engineering, the so-called articular cartilage progenitor cell (ACPC), was investigated for the first time in the two different hydrogels agarose and HA-SH/P(AGE-co-G) in comparison to mesenchymal stromal cells (MSCs). In agarose, ACPCs´ and MSCs´ chondrogenic capacity was investigated under normoxic (21 % oxygen) and hypoxic (2 % oxygen) conditions in monoculture constructs and in zonally layered co-culture constructs with ACPCs in the upper layer and MSCs in the lower layer. In the newly developed hyaluronic acid (HA)-based hydrogel HA-SH/P(AGE-co-G), chondrogenesis of ACPCs and MSCs was also evaluated in monoculture constructs and in zonally layered co-culture constructs like in agarose hydrogel. Additionally, the contribution of the bioactive molecule hyaluronic acid to chondrogenic gene expression of MSCs was investigated in 2D monolayer, 3D pellet and HA-SH hydrogel culture. It was shown that both ACPCs and MSCs could chondrogenically differentiate in agarose and HA-SH/P(AGE-co-G) hydrogels. In agarose hydrogel, ACPCs produced a more articular cartilage-like tissue than MSCs that contained more glycosaminoglycan (GAG), less type I collagen and only little alkaline phosphatase (ALP) activity. Hypoxic conditions did not increase extracellular matrix (ECM) production of ACPCs and MSCs significantly but improved the quality of the neo-cartilage tissue produced by MSCs. The creation of zonal agarose constructs with ACPCs in the upper layer and MSCs in the lower layer led to an ECM production in zonal hydrogels that lay in general in between the ECM production of non-zonal ACPC and MSC hydrogels. Even though zonal co-culture of ACPCs and MSCs did not increase ECM production, the two cell types influenced each other and, for example, modulated the staining intensities of type II and type I collagen in comparison to non-zonal constructs under normoxic and hypoxic conditions. In HA-SH/P(AGE-co-G) hydrogel, MSCs produced more ECM than ACPCs, but the ECM was limited to the pericellular region for both cell types. Zonal HASH/P(AGE-co-G) hydrogels resulted in a native-like zonal distribution of ECM as MSCs in the lower zone produced more ECM than ACPCs in the upper zone. It appeared that chondrogenesis of ACPCs was supported by hydrogels without biological attachment sites such as agarose, and that chondrogenesis of MSCs benefited from hydrogels with biological cues like HA. As HA is an attractive material for cartilage tissue engineering, and the HA-based hydrogel HA-SH/P(AGE-co-G) appeared to be beneficial for MSC chondrogenic differentiation, the contribution of HA to chondrogenic gene expression of MSCs was investigated. An upregulation of chondrogenic gene expression was found in 2D monolayer and 3D pellet culture of MSCs in response to HA supplementation, while gene expression of osteogenic and adipogenic transcription factors was not upregulated. MSCs, encapsulated in a HA-based hydrogel, showed upregulation of gene expression for chondrogenic, osteogenic and adipogenic differentiation markers as well as for stemness markers. In a 3D bioprinting process, using the HA-based hydrogel, gene expression levels of MSCs mostly did not change. Nevertheless, expression of three tested genes (COL2A1, SOX2, CD168) was downregulated in printed in comparison to cast constructs, underscoring the importance of closely monitoring cellular behaviour during and after the printing process. In summary, it was confirmed that ACPCs are a promising cell source for articular cartilage engineering with advantages over MSCs when they were cultured in a suitable hydrogel like agarose. The performance of the cells was strongly dependent on the hydrogel environment they were cultured in. The different chondrogenic performance of ACPCs and MSCs in agarose and HA-SH/P(AGE-co-G) hydrogels highlighted the importance of choosing suitable hydrogels for the different cell types used in articular cartilage tissue engineering. Hydrogels with high polymer content, such as the investigated HA-SH/P(AGE-co-G) hydrogels, can limit ECM distribution to the pericellular area and should be developed further towards less polymer content, leading to more homogenous ECM distribution of the cultured cells. The influence of HA on chondrogenic gene expression and on the balance between differentiation and maintenance of stemness in MSCs was demonstrated. More studies should be performed in the future to further elucidate the signalling functions of HA and the effects of 3D bioprinting in HA-based hydrogels. Taken together, the results of this thesis expand the knowledge in the area of articular cartilage engineering with regard to the rational combination of cell types and hydrogel materials and open up new possible approaches to the regeneration of articular cartilage tissue.
Die vorliegende Dissertation beschäftigt sich mit nichtlinearen Reaktions-Transport-Systemen, die in zweidimensionalen Medien chemische Wellen und propagierende Fronten ausbilden können. Grundlage dieser Art von räumlichen Mustern sind sogenannte erregbare Systeme. Ein Themengebiet der Arbeit umfasst die Untersuchung von Spiralwellen in der Belousov-Zhabotinsky-Reaktion (BZ-Reaktion). Ein weiterer Teilabschnitt behandelt die Wechselwirkung zwischen Polymersystemen und nichtlinearen chemischen Reaktionen. In den untersuchten, räumlich ausgedehnten Systemen spielt die Kopplung nichtlinearer chemischer Reaktionen an Transportprozesse eine wichtige Rolle. Die generischen Typen von chemischen Mustern sind Pulswellen in einer Raumdimension, kreisförmige Wellen und Spiralen in einem zweidimensionalen System und kugelschalen- bzw. schraubenförmige Wellen in drei Raumdimensionen. Auf theoretischer Basis werden Effekte von Spiralwellen bei Änderung der Erregbarkeit des Reaktionsmediums dargestellt.In der vorliegenden Arbeit ist es erstmals gelungen, eine Methode zu entwickeln, die es erlaubt die Erregbarkeit in der BZ-Reaktion sowie in einer Vielzahl weiterer nichtlinearer Reaktionen zu beeinflussen. Ein weiteres Themengebiet dieser Dissertation ist die Untersuchung von pH-Systeme in Hydrogelen. Dies sind hydrophile Gele, die ihr Volumen in wässrigen Lösungen verändern können. In der vorliegenden Arbeit wurden Gele auf der Basis von Acrylamid und Methacrylat als Copolymer verwendet und an die oben beschriebenen pH-Oszillatoren angekoppelt. Durch Polymerisation von Acrylamid zusammen mit Natriummethacrylat konnte ein mit einem pH-Oszillator beladenes Gel hergestellt werden, das nach Start der Reaktion durch eine kleine Menge Säure mit einer deutlichen Volumenkontraktion reagiert. Diese Kontraktion des Gels konnte ausgenutzt werden, um die chemische Energie eines pH-Reaktionssystems in eine mechanische Kraftwirkung umzuwandeln.
Chondrogenic differentiation of human mesenchymal stem cells and articular cartilage reconstruction
(2008)
Articular cartilage defects are still one of the major challenges in orthopedic and trauma surgery. Today, autologous chondrocyte transplantation (ACT), as a cell-based therapy, is an established procedure. However, one major limitation of this technique is the loss of the chondrogenic phenotype during expansion. Human mesenchymal stem cells (hMSCs) have an extensive proliferation potential and the capacity to differentiate into chondrocytes when maintained under specific conditions. They are therefore considered as candidate cells for tissue engineering approaches of functional cartilage tissue substitutes. First in this study, hMSCs were embedded in a collagen type I hydrogel to evaluate the cartilaginous construct in vitro. HMSC collagen hydrogels cultivated in different culture media showed always a marked contraction, most pronounced in chondrogenic differentiation medium supplemented with TGF-ß1. After stimulation with chondrogenic factors (dexamethasone and TGF-ß1) hMSCs were able to undergo chondrogenesis when embedded in the collagen type I hydrogel, as evaluated by the temporal induction of cartilage-specific gene expression. Furthermore, the cells showed a chondrocyte-like appearance and were homogeneously distributed within a proteoglycan- and collagen type II-rich extracellular matrix, except a small area in the center of the constructs. In this study, chondrogenic differentiation could not be realized with every hMSC preparation. With the improvement of the culture conditions, e.g. the use of a different FBS lot in the gel fabrication process, a higher amount of cartilage-specific matrix deposition could be achieved. Nevertheless, the large variations in the differentiation capacity display the high donor-to-donor variability influencing the development of a cartilaginous construct. Taken together, the results demonstrate that the collagen type I hydrogel is a suitable carrier matrix for hMSC-based cartilage regeneration therapies which present a promising future alternative to ACT. Second, to further improve the quality of tissue-engineered cartilaginous constructs, mechanical stimulation in specific bioreactor systems are often employed. In this study, the effects of mechanical loading on hMSC differentiation have been examined. HMSC collagen hydrogels were cultured in a defined chondrogenic differentiation medium without TGF-ß1 and subjected to a combined mechanical stimulation protocol, consisting of perfusion and cyclic uniaxial compression. Bioreactor cultivation neither affected overall cell viability nor the cell number in collagen hydrogels. Compared with non-loaded controls, mechanical loading promoted the gene expression of COMP and biglycan and induced an up-regulation of matrix metalloproteinase 3. These results circumstantiate that hMSCs are sensitive to mechanical forces, but their differentiation to chondrocytes could not be induced. Further studies are needed to identify the specific metabolic pathways which are altered by mechanical stimulation. Third, for the development of new cell-based therapies for articular cartilage repair, a reliable cell monitoring technique is required to track the cells in vivo non-invasively and repeatedly. This study aimed at analyzing systematically the performance and biological impact of a simple and efficient labeling protocol for hMSCs. Very small superparamagnetic iron oxide particles (VSOPs) were used as magnetic resonance (MR) contrast agent. Iron uptake was confirmed histologically with prussian blue staining and quantified by mass spectrometry. Compared with unlabeled cells, VSOP-labeling did neither influence significantly the viability nor the proliferation potential of hMSCs. Furthermore, iron incorporation did not affect the differentiation capacity of hMSCs. The efficiency of the labeling protocol was assessed with high resolution MR imaging at 11.7 Tesla. VSOP-labeled hMSCs were visualized in a collagen type I hydrogel indicated by distinct hypointense spots in the MR images, resulting from an iron specific loss of signal intensity. This was confirmed by prussian blue staining. In summary, this labeling technique has great potential to visualize hMSCs and track their migration after transplantation for articular cartilage repair with MR imaging.
This thesis concerned the quantification of cell adhesion molecules (CAM) in and on thin hydrogel films as surface modification of biomaterials. The established and well characterized, per se inert NCO-sP(EO-stat-PO) hydrogel system which allows the easy and reproducible bioactivation with peptides was used as basis for this thesis. Two methods can be used to functionalize the coatings. Ligands can either be mixed into the prepolymer solution in prior to layer formation (mix-in method), or freshly prepared coatings can be incubated with ligand solution (incubation method). Divided into three major parts, the first part of the thesis dealt with the concentration of ligands in the bulk hydrogel, whereas the second part of the thesis focused on the surface sensitive quantification of CAMs at the biointerface. The results were correlated with cell adhesion kinetics. The third part of this thesis investigated the biochemical and the structural mimicry of the extracellular matrix (ECM). ECM proteins were presented via sugar-lectin mediated binding and cell behavior on these surfaces was analyzed. Cell behavior on three-dimensional fibers with identical surface chemistry as the coatings in the previous sections of the thesis was analyzed and correlated with the amount of peptide used for bioactivation. Overall, the main question of this work was ‘How much?’ regarding maximal as well as optimal ligand concentrations for controlled cell-hydrogel interactions. The focus in the first practical part of this thesis was to analyze the amount of ligands in NCO-sP(EO-stat-PO) hydrogels using classical quantification methods. Coatings in 96-well plates as well as on glass were functionalized with GRGDS and 125I-YRGDS for radioisotopic detection (Chapter 3). Using the incubation method for functionalization, a maximal ligand binding using peptide concentrations of 600 µg/mL could be determined. When functionalization was introduced via the mix-in method, a clear tendency for higher ligand concentrations with increasing ligand to prepolymer ratio was observed, but no maximal ligand binding could be detected with a ligand to prepolymer ratio of 2/1 being the highest ratio investigated. This ratio of 2/1 was not exceeded to ensure that complete crosslinking of the hydrogel was not affected. In Chapter 4, a fluorinated amino acid and an iodinated peptide were immobilized to the hydrogels using the mix-in method and were detected by X-ray photoelectron spectroscopy (XPS) and time-of-flight secondary ion mass spectrometry (TOF-SIMS). In these measurements, maximal ligand binding was detected for a ligand to prepolymer ratio of 1/1. Higher ligand to prepolymer ratios did not result in any significant increase in ligand concentrations in the surface near regions of the crosslinked hydrogels. To address the question of how many ligands were actually accessible for cell interaction at the interface, surface sensitive quantification methods were applied in the second part of this thesis. For the quantification with surface plasmon resonance (SPR) and surface acoustic wave technology (SAW) (Chapter 5), the hydrogel coating procedure needed to be transferred onto cystamine functionalized gold surfaces. Characterization with ellipsometry and atomic force microscopy (AFM) revealed inhomogeneous cystamine binding to the activated surfaces, which resulted in inhomogeneous coatings. Nevertheless, it could be shown that SPR as well as SAW were suitable methods for the surface sensitive quantification of the ligand concentration on NCO-sP(EO-stat-PO) hydrogels. Non-functionalized coatings resisted non-specific serum as well as streptavidin (SA) adsorption. Coatings functionalized with biocytin and GRGDSK-biotin introduced specific SA binding that was dependent on the biotin concentration at the surface. Additionally, enzyme linked immunosorbent assay (ELISA) and enzyme linked lectin assay (ELLA) (Chapter 6) were applied to coatings in 96-well plates and on glass. Coatings were functionalized with the model molecule biocytin, the biotinylated peptide GRGDSK-biotin, the ECM protein fibronectin (FN), as well as the carbohydrates N-acetylglucosamine (GlcNAc) and N-acetyllactosamine (LacNAc). All ligands could be successfully detected with antibodies or SA via ELISA or ELLA. Maximal GRGDSK-biotin binding to the hydrogel coatings on glass was achieved at a peptide to prepolymer ratio of 1/5, which was used as reference value in Chapter 8. Last but not least, cell adhesion (Chapter 7) was quantified depending on the GRGDS concentration on hydrogel coatings on glass. Maximal adhesion of primary human dermal fibroblast (HDF) was observed at GRGDS to prepolymer ratios of 1/5, when adherent cells were counted on life cell images. Quantification of adherent cells using the CASY® cell counter revealed maximal HDF adhesion at molar ligand to prepolymer ratios of 1/2. However, cell vitality detected by intracellular enzyme activities was not dependent on the GRGDS concentration. Cells which managed to adhere were vital regardless of the amount of ligands present. Additionally, adhesion of fibroblasts from the murine cell line NIH L929 was analyzed by counting on life cell images. These cells, being much smaller than the HDF cells, needed higher GRGDS to prepolymer ratios (2/1) for proper cell adhesion. All quantification methods applied to analyze hydrogels which were functionalized by the mix-in method in Chapter 3, 4, 6 and 7, were compared in Chapter 8. Radiodetection gave information about the ligand concentrations throughout the whole hydrogel and no maximal amount of ligands could be detected when increasing the peptide to prepolymer ratio. In contrast, XPS and TOF-SIMS which only penetrated the surface near regions of the coating, a maximal ligand binding to the hydrogel was detected for 1/1 ratios. SPR and SAW were not included in this comparison, as the coatings on gold need to be optimized first. The two surface sensitive quantification methods (ELISA and HDF adhesion) could give information about the quantity of peptide which was sterically available for SA or cell binding. With these methods, maximal SA and cell binding was detected at ratios of 1/5. These results underline the importance of carefully compare the different methods. Beside ligand quantification on hydrogels, the third part of this thesis was concerned with the biochemical and structural mimicry of the ECM by advanced ECM engineering to design biomimetic biomaterials that are better accepted by cells and tissue. The subject of Chapter 9 was the biomimetic and flexible presentation of the ECM protein FN. FN was attached via sugar-lectin mediated binding to NCO-sP(EO-stat-PO) hydrogels. The build-up of the covalently immobilized sugar poly-N-acetyllactosamine (polyLacNAc), the subsequent non-covalent binding of the fungal galectin His6CGL2, and FN could be elegantly proven by fluorescent staining on coatings which were functionalized with the sugar by micro contact printing (MCP). Further experiments were carried out on build-ups, where polyLacNAc was immobilized on the hydrogel by incubation. Optimal parameters for the layer build-up were determined by ELLA/ELISA. Only the complete build-up induced proper adhesion of HDFs. Compared to tissue culture polystyrene (TCPS), cells adhered and spread faster on the biomimetic surfaces. The flexible presentation of FN allowed HDFs to rearrange homogenously immobilized FN into fibrillar structures, which seemed not to be possible when FN was adsorbed on glass or covalently bound directly to the hydrogel coatings. This new approach of a flexible and biomimetic presentation of an ECM protein allows new ways to design biomaterials with best possible cell-material interactions. The work described in Chapter 10 focused on the structural mimicry of the fibrous ECM structures by electrospinning of synthetic, bioactive, and degradable fibers. Poly(D,L-lactide-co-glycolide) (PLGA) and NCO-sP(EO-stat-PO) were electrospun out of one solution in an easy one-step preparation resulting in fibers with an ultrathin inert hydrogel layer at the surface. By adding GRGDS to the solution prior to electrospinning, specifically interacting fibers could be obtained. In comparison to PLGA, the adsorption of bovine serum albumin (BSA) could be reduced by 99.2%. As a control, the non-active peptide GRGES was immobilized to the fiber. These fibers did not allow cell adhesion, showing that the integrity of the hydrogel coated fibers was not affected by the immobilization of peptides. HDF adhesion was obtained by functionalization with GRGDS, leading to the adhesion, spreading, and proliferation of HDFs. Also mesenchymal stem cells (MSC) could adhere to GRGDS functionalized fibers. Additionally, for ligand quantification, the ELISA technique was successfully transferred to fiber substrates. To highlight the potential of the approaches for the biochemical and structural mimicry of the ECM, the sugar polyLacNAc was immobilized on the PLGA/sP(EO-stat-PO) fibers followed by the subsequent layer build-up with His6CGL2 and FN. These fibers triggered HDF adhesion.
Synthetic bone replacement materials have their application in non-load bearing defects with the function of (re-)construction or substitution of bone. This tissue itself represents a biological composite material based on mineralized collagen fibrils and combines the mechanical strength of the mineral with the ductility of the organic matrix. By mimicking these outstanding properties with polymer-cement-composites, an imitation of bone is feasible. A promising approach for such replacement materials are dual setting systems, which are generated by dissolution-precipitation reaction with cement setting in parallel to polymerization and gelation of the organic phase forming a coherent hydrogel network. Hereby, the high brittleness of the pure inorganic network was shifted to a more ductile and elastic behavior.
The aim of this thesis was focused on the development of different dual setting systems to modify pure calcium phosphate cements’ (CPCs’) mechanical performance by incorporation of a hydrogel matrix.
A dual setting system based on hydroxyapatite (HA) and cross-linked 2-hydroxyethyl methacrylate (HEMA) via radical polymerization was advanced by homogenous incorporation of a degradable cross-linker composed of poly(ethylene glycol) (PEG) as well as poly(lactic acid) (PLA) with reactive terminal methacrylate functionalities (PEG-PLLA-DMA). By integration of this high molecular weight structure in the HEMA-hydrogel network, a significant increase in energy absorption (toughness) under 4-point bending testing was observed. An addition of only 10 wt% hydrogel precursor (referred to the liquid phase) resulted in a duplication of stress over a period of 8 days. Additionally, the calculated elasticity was positively affected and up to six times higher compared to pure HA. With a constantly applied force during compressive strength testing, a deformation and thus strain levels of about 10 % were reached immediately after preparation.
For higher degradability, the system was modified in a second approach regarding organic as well as inorganic phase. The latter component was changed by brushite forming cement that is resorbable in vivo due to solubility processes. This CPC was combined with a hydrogel based on PEG-PLLA-DMA and other dimethacrylated PEGs with different molecular weights and concentrations. Hereby, new reaction conditions were created including a shift to acidic conditions. On this ground, the challenge was to find a new radical initiator system. Suitable candidates were ascorbic acid and hydrogen peroxide. that started the polymerization and successful gelation in this environment. These highly flexible dual set composites showed a very high ductility with an overall low strength compared to HA-based models. After removal of the applied force during compressive strength testing, a complete shape recovery was observed for the samples containing the highest polymeric amount (50 wt%) of PEG-PLLA-DMA.
Regarding phase distribution in the constructs, a homogenously incorporated hydrogel network was demonstrated in a decalcifying study with ethylenediaminetetraacetic acid. Intact, coherent hydrogels remained after dissolution of the inorganic phase via calcium ion complexation.
In a third approach, the synthetic hydrogel matrix of the previously described system was replaced by the natural biopolymer gelatin. Simultaneously to brushite formation, physical as well as chemical cross-linking by the compound genipin was performed in the dual setting materials. Thanks to the incorporation of gelatin, elasticity increased significantly, in which concentrations up to 10.0 w/v% resulted in a certain cohesion of samples after compressive strength testing. They did not dissociate in little pieces but remained intact cuboid specimens though having cracks or fissures. Furthermore, the drug release of two active pharmaceutical ingredients (vancomycin and rifampicin) was investigated over a time frame of 5 weeks. The release exponent was determined according to Korsmeyer-Peppas with n = 0.5 which corresponds to the drug liberation model of Higuchi. A sustained release was observed for the antibiotic vancomycin encapsulated in composites with a gelatin concentration of 10.0 w/v% and a powder-to-liquid ratio of 2.5 g/mL.
With respect to these developments of different dual setting systems, three novel approaches were successfully established by polymerization of monomers and cross-linking of precursors forming an incorporated, homogenous hydrogel matrix in a calcium phosphate network. All studies showed an essential transfer of mechanical performance in direction of flexibility and bendability.
After examining suitable parameters for a newly designed system, dynamic SIPGP could be developed. For the first time, SIPGP was performed while applying a constant flow of monomer solution through the reaction system. This added a new parameter: the flow rate (rfl). Accordingly, this parameter was examined, comparing dynamic to static SIPGP. It could be shown, that by applying higher rfl to the system, the contact angle increases, which indicates a slower coating. The flow patterns inside the reactor were then modelled and calculated. These calculations indicated, that, due to higher flow velocities, the contact angle on the coated samples would be lower on the sides of the sample and higher in the middle. This finding was verified by contact angle measurements. The influence of dynamic SIPGP on the temperature inside the reaction chamber during the reaction was examined by temperature sensors inside the reactor. This showed, that the constant flow of monomer solution can be utilized to decrease the warming of the reaction solution during the reaction. Finally it was shown, that dynamic SIPGP can decrease the formation of bulk polymer on the sample, which is forming during the reaction. This enables SIPGP to fabricate more homogeneous coatings by applying a constant monomer flow.
Zusammenfassung
In der Regenerativen Medizin sind polymerbasierte Biomaterialien von großer Bedeutung für
die Entwicklung und Anwendung verbesserter bzw. neuer Therapien. Die Erforschung der
Oberflächeneigenschaften von Biomaterialien, welche als Implantate eingesetzt werden, ist
eine grundlegende Voraussetzung für deren erfolgreichen Einsatz. Die Protein-Oberflächen-
Interaktion geschieht initial, sobald ein Implantat mit Körperflüssigkeiten oder mit Gewebe
in Kontakt kommt, und trägt maßgeblich zur direkten Wechselwirkung von Implantat und
umgebenden Zellen bei. Dieser Prozess wird in der vorliegenden Arbeit an Gelatine untersucht.
Daher bestand ein Ziel darin, stabile, nanometerdünne Gelatineoberflächen herzustellen
und darauf die Adsorption von humanen Plasmaproteinen und bakteriellen Proteinen zu
analysieren.
Die Abscheidung der Gelatinefilme in variabler Schichtdicke auf zuvor mit PPX-Amin modifizierten
Oberflächen wurde unter Verwendung eines Rotationsbeschichters durchgeführt.
Um stabile Hydrogelfilme zu erhalten, wurden die Amingruppen der disaggregierten Gelatinefibrillen
untereinander und mit denen der Amin-Modifizierung durch ein biokompatibles
Diisocyanat quervernetzt. Dieser Prozess lieferte einen reproduzierbaren und chemisch stabilen
Gelatinefilm, welcher durch die substratunabhängige Amin-Modifizierung kovalent auf
unterschiedlichste Oberflächen aufgebracht werden konnte. Die durch den Herstellungsprozess
präzise eingestellte Schichtdicke (Nano- bzw. Mikrometermaßstab) wurde mittels Ellipsometrie
und Rasterkraftmikroskopie ermittelt. Die ebenso bestimmte Rauheit war unabhängig
von der Schichtdicke sehr gering. Gelatinefilme, die auf funktionalisierte und strukturierte
Proben aufgebracht wurden, konnten durch Elektronenmikroskopie dargestellt werden. Mit
Hilfe der Infrarot-Reflexions-Absorptions-Spektroskopie wurden die Gelatinefilme im Hinblick
auf ihre Stabilität chemisch charakterisiert. Zur Quantifizierung der Adsorption humaner
Plasmaproteine (Einzelproteinlösungen) und komplexer Proteingemische aus steril filtrierten
Kulturüberständen des humanpathogenen Bakteriums Pseudomonas aeruginosa wurde die
Quarzkristall-Mikrowaage mit Dissipationsüberwachung eingesetzt. Hiermit konnte nicht
nur die adsorbierte Menge an Proteinen auf dem Gelatinehydrogel bzw. Referenzoberflächen
(Gold, PPX-Amin, Titan), sondern auch die viskoelastischen Eigenschaften des adsorbierten
Proteinfilms bestimmt werden. Allgemein adsorbierte auf dem Gelatinehydrogel eine geringere
Proteinmasse im Vergleich zu den Referenzoberflächen. Circa ein Viertel der adsorbierten
Proteine migrierte in die Poren des gequollenen Gels und veränderte dessen viskoelastische
Eigenschaften. Durch anschließende MALDI-ToF/MS- und MS/MS-Analyse konnten die bakteriellen
Proteine auf den untersuchten Oberflächen identifiziert und untereinander verglichen
werden. Hierbei zeigten sich nur geringfügige Unterschiede in der Proteinzusammensetzung.
Zudem wurde eine Sekundärionenmassenspektrometrie mit Flugzeitanalyse an reinen Gelatinefilmen
und an mit humanen Plasmaproteinen beladenen Gelatinefilmen durchgeführt.
Durch eine anschließende multivariante Datenanalyse konnte zwischen den untersuchten
Proben eindeutig differenziert werden. Dieser Ansatz ermöglicht es, die Adsorption von
unterschiedlichen Proteinen auf proteinbasierten Oberflächen markierungsfrei zu untersuchen
und kann zur Aufklärung der in vivo-Situation beitragen. Darüber hinaus bietet dieser
Untersuchungsansatz neue Perspektiven für die Gestaltung und das schnelle und effiziente
Screening von unterschiedlichen Proteinzusammensetzungen.
Biomaterialien können jedoch nicht nur als Implantate oder Implantatbeschichtungen eingesetzt
werden. Im Bereich des drug delivery und der Depotarzneimittel sind biologisch
abbaubare Polymere, aufgrund ihrer variablen Eigenschaften, von großem Interesse. Die
Behandlung von bakteriellen und fungalen Pneumonien stellt insbesondere bei Menschen mit
Vorerkrankungen wie Cystische Fibrose oder primäre Ziliendyskinesie eine große Herausforderung
dar. Oral oder intravenös applizierte Wirkstoffe erreichen die Erreger aufgrund der
erhöhten Zähigkeit des Bronchialsekretes oft nicht in ausreichender Konzentration. Daher
besteht ein weiteres Ziel der vorliegenden Arbeit darin, mittels electrohydrodynamic cojetting
mikrometergroße, inhalierbare, wirkstoffbeladene Partikel mit zwei Kompartimenten
(Janus-Partikel) herzustellen und deren Eignung für die therapeutische Anwendung bei
Lungeninfektionen zu untersuchen.
Durch das in dieser Arbeit entwickelte Lösungsmittelsystem können Janus-Partikel aus
biologisch abbaubaren Co-Polymeren der Polymilchsäure (Poly(lactid-co-glycolid), PLGA)
hergestellt und mit verschiedenen Wirkstoffen beladen werden. Darunter befinden sich ein
Antibiotikum (Aztreonam, AZT), ein Antimykotikum (Itraconazol, ICZ), ein Mukolytikum
(Acetylcystein, ACC) und ein Antiphlogistikum (Ibuprofen, IBU). Die Freisetzung der eingelagerten
Wirkstoffe, mit Ausnahme von ICZ, konnte unter physiologischen Bedingungen
mittels Dialyse und anschließender Hochleistungsflüssigkeitschromatographie gemessen werden.
Die Freisetzungsrate wird von der Kettenlänge des Polymers beeinflusst, wobei eine
kürzere Kettenlänge zu einer schnelleren Freisetzung führt. Das in die Partikel eingelagerte
Antimykotikum zeigte in vitro eine gute Wirksamkeit gegen Aspergillus nidulans. Durch das
Einlagern von ICZ in die Partikel ist es möglich diesen schlecht wasserlöslichen Wirkstoff in
eine für Patienten zugängliche und wirksame Applikationsform zu bringen. In Interaktion mit
P. aeruginosa erzielten die mit Antibiotikum beladenen Partikel in vitro bessere Ergebnisse
als der Wirkstoff in Lösung, was sich in einem in vivo-Infektionsmodell mit der Wachsmotte
Galleria mellonella bestätigte. AZT-beladene Partikel hatten gegenüber einer identischen
Wirkstoffmenge in Lösung eine 27,5% bessere Überlebensrate der Wachsmotten zur Folge.
Des Weiteren hatten die Partikel keinen messbaren negativen Einfluss auf die Wachsmotten.
Dreidimensionale Atemwegsschleimhautmodelle, hergestellt mit Methoden des Tissue Engineerings,
bildeten die Basis für Untersuchungen der Partikel in Interaktion mit humanen
Atemwegszellen. Die Untersuchung von Apoptose- und Entzündungsmarkern im Überstand
der 3D-Modelle zeigte diesbezüglich keinen negativen Einfluss der Partikel auf die humanen
Zellen. Diese gut charakterisierten und standardisierten in vitro-Testsysteme machen es
möglich, Medikamentenuntersuchungen an menschlichen Zellen durchzuführen. Hinsichtlich
der histologischen Architektur und funktionellen Eigenschaften der 3D-Modelle konnte eine
hohe in vitro-/in vivo-Korrelation zu menschlichem Gewebe festgestellt werden. Humane
Mucine auf den 3D-Modellen dienten zur Untersuchung der schleimlösenden Wirkung von
ACC-beladenen Partikeln. Standen diese in räumlichem Kontakt zu den Mucinen, wurde deren
Zähigkeit durch das freigesetzte ACC herabgesetzt, was qualitativ mittels histologischen
Methoden bestätigt werden konnte.
Die in dieser Arbeit entwickelten Herstellungsprotokolle dienen als Grundlage und können
für die Synthese ähnlicher Systeme, basierend auf anderen Polymeren und Wirkstoffen,
modifiziert werden. Gelatine und PLGA erwiesen sich als vielseitig einsetzbare Werkstoffe
und bieten eine breite Anwendungsvielfalt in der Regenerativen Medizin, was die erzielten
Resultate bekräftigen.
Aim of this thesis was the development of functionalizable hydrogel coatings for melt electrowritten PCL scaffolds and of bioprintable hydrogels for biofabrication.
Hydrogel coatings of melt electrowritten scaffolds enabled to control the surface hydrophilicity, thereby allowing cell-material interaction studies of biofunctionalized scaffolds in minimal protein adhesive environments. For this purpose, a hydrophilic star- shaped crosslinkable polymer was used and the coating conditions were optimized. Moreover, newly developed photosensitive scaffolds facilitated a time and pH independent biofunctionalization.
Bioprintable hydrogels for biofabrication were based on the allyl-functionalization of gelatin (GelAGE) and modified hyaluronic acid-products, to enable hydrogel crosslinking by means of the thiol-ene click chemistry. Optimization of GelAGE hydrogel properties was achieved through an in-depth analysis of the synthesis parameters, varying Ene:SH ratios, different crosslinking molecules and photoinitiators. Homogeneity of thiol-ene crosslinked networks was compared to free radical polymerized hydrogels and the applicability of GelAGE as bioink for extrusion-based bioprinting was investigated. Purely hyaluronic acid-based bioinks were hypothesized to maintain mechanical- and rheological properties, cell viabilities and the processability, upon further decreasing the overall hydrogel polymer and thiol content.
Hydrogel coatings: Highly structured PCL scaffolds were fabricated with MEW and subjected to coatings with six-armed star-shaped crosslinkable polymers (sP(EO-stat-PO)). Crosslinking results from the aqueous induced hydrolysis of reactive isocyanate groups (NCO) of sP(EO-stat-PO) and increased the surface hydrophilicity and provided a platform for biofunctionalizations in minimal protein adhesive environments. Not only the coating procedure was optimized with respect to sP(EO-stat-PO) concentrations and coating durations, instead scaffold pre-treatments were developed, which were fundamental to enhance the final hydrophilicity to completely avoid unspecific protein adsorption on sP(EO-stat-PO) coated scaffolds. The sP(EO-stat-PO) layer thickness of around 100 nm generally allows in vitro studies not only in dependence on the scaffold biofunctionalization but also on the scaffold architecture. The hydrogel coating extent was assessed via an indirect quantification of the NCO-hydrolysis products. Knowledge of NCO-hydrolysis kinetics enabled to achieve a balance of sufficiently coated scaffolds while maintaining the presence of NCO-groups that were exploited for subsequent biofunctionalizations. However, this time and pH dependent biofunctionalization was restricted to small biomolecules. In order to overcome this limitation and to couple high molecular weight biomolecules another reaction route was developed. This route was based on the photolysis of diazirine moieties and enabled a time and pH independent scaffold biofunctionalization with streptavidin and collagen type I. The fibril formation ability of collagen was used to obtain different collagen conformations on the scaffolds and a preliminary in vitro study demonstrated the applicability to investigate cell-material interactions.
The herein developed scaffolds could be applied to gain deeper insights into the fundamentals of cellular sensing. Especially the complexity by which cells sense e.g. collagen remain to be further elucidated. Therefore, different hierarchies of collagen-like conformations could be coupled to the scaffolds, e.g. gelatin or collagen-derived peptide sequences, and the activation of DDR receptors in dependence on the complexity of the coupled substances could be determined. Due to the strong streptavidin-biotin bond, streptavidin functionalized scaffolds could be applied as a versatile platform to allow immobilization of any biotinylated molecules.
Gelatin-based bioinks: First the GelAGE products were synthesized with respect to molecular weight distributions and amino acid composition integrity. A detailed study was conducted with varying molar ratios of reactants and synthesis durations and implied that gelatin degradation was most dominant for high alkaline synthesis conditions with long reaction times. Gelatin possesses multiple functionalizable groups and the predominant functionalization of amine groups was confirmed via different model substances and analyses. Polymer network homogeneity was proven for the GelAGE system compared to free radical polymerized hydrogels with GelMA. A detailed analysis of hydrogel compositions with varying functional group ratios and UV- or Vis-light photoinitiators was executed. The UV-initiator concentration is restricted due to cytotoxicity and potential cellular DNA damages upon UV-irradiation, whereas the more cytocompatible Vis- initiator system enabled mechanical stiffness tuning over a wide range by controlling the photoinitiator concentration at constant Ene:SH ratios and polymer weight percentages. Versatility of the GelAGE bioink for different AM techniques was proved by exploiting the thermo-gelling behavior of differently degraded GelAGE products for stereolithography and extrusion-based printing. Moreover, the viability of cell-laden GelAGE constructs was demonstrated for extrusion-based bioprinting. By applying different multifunctional thiol-macromolecular crosslinkers the mechanical and rheological properties improved concurrently to the processability. Importantly, lower thiol-crosslinker concentrations were required to yield superior mechanical strengths and physico-chemical properties of the hydrogels as compared to the small bis-thiol-crosslinker. Extrusion-based bioprinting with distinct encapsulated cells underlined the need for individual optimization of cell-laden hydrogel formulations.
Not only the viability of encapsulated cells in extrusion-based bioprinted constructs should be assessed, instead other parameters such as cell morphology or production of collagen or glycosaminoglycans should be considered as these represent some of the crucial prerequisites for cartilage Tissue Engineering applications. Moreover, these studies should be expanded to the stereolithographic approach and ultimately the versatility and cytocompatibility of formulations with macromolecular crosslinkers would be of interest. Macromolecular crosslinkers allowed reducing polymer weight percentages and amounts of thiol groups and are thus expected to contribute to increased cytocompatibility, especially in combination with the more cytocompatible Vis-initiator system, which remains to be elucidated.
Hyaluronic acid-based bioinks: Different molecular weight hyaluronic acid (HA) products were synthesized to bear ene- (HAPA) or thiol-functionalities (LHASH) to enable pure HA thiol-ene crosslinked hydrogels. Depending on the molecular weight of modified HA products, polymer weight percentages and Ene:SH ratios, a wide range of mechanical stiffness was covered. However, the manageability of high molecular weight HA (HHAPA) product solutions (HHAPA + LHASH) was restricted to 5.0 wt.-% as a consequence of the high viscosity. Based on the same HA thiol component (LHASH), hybrid hydrogels of HA with GelAGE were compared to pure HA hydrogels. Although the overall polymer weight percentage of HHAPA + LHASH hydrogels was significantly lowered compared to hybrid hydrogels (GelAGE + LHASH), similar mechanical and physico-chemical properties of pure HA hydrogels were determined with maintained Ene:SH ratios. Low viscous low molecular weight HA precursor solutions (LHAPA + LHASH) prevented the applicability for extrusion-based bioprinting, whereas the non-thermoresponsive HHAPA + LHASH system could be bioprinted with only one-fourth of the polymer content of hybrid formulations. The high viscous behavior of HHAPA + LHASH solutions, lower polymer weight percentages, decreased printing pressures and consequently declined shear stress during printing, were hypothesized to contribute to high cell viabilities in extrusion-based bioprinted constructs compared to the hybrid bioink.
The low molecular weight HA precursor formulation (LHAPA + LHASH) was not applicable for extrusion-based printing, but this system has potential for other AM techniques such as stereolithography. Similar to the GelAGE system a more detailed study on the functions of encapsulated cells would be useful to further develop this system. Moreover, the initiation with the Vis-initiator should be conducted.