@phdthesis{SchaefergebStichler2019, author = {Sch{\"a}fer [geb. Stichler], Simone}, title = {Thiol-ene Cross-linked Poly(glycidol) / Hyaluronic Acid Based Hydrogels for 3D Bioprinting}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-174713}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {The aim of the work was the development of thiol-ene cross-linked hydrogels based on functionalized poly(glycidol)s (PG) and hyaluronic acid (HA) for extrusion based 3D bioprinting. Additionally, the functionalization of the synthesized PG with peptides and the suitability of these polymers for physically cross-linked gels were investigated, in a proof of principle study in order to demonstrate the versatile use of PG polymers in hydrogel development. First, the precursor polymers of the different hydrogel systems were synthesized. For thiol-ene cross-linked hydogels, linear allyl-functionalized PG (P(AGE-co-G)) and three different thiol-(SH-)functionalized polymers, ester-containing PG-SH (PG SHec), ester-free PG-SH (PG-SHef) and HA-SH were synthesized and analysed, The degree of functionalization of these polymers was adjustable. For physically cross-linked hydrogels, peptide-functionalized PG (P(peptide-co-G)), was synthesized through polymer analogue thiol-ene modification of P(AGE-co-G). Subsequently, thiol-ene cross-linked hydrogels were prepared with the synthesized thiol- and allyl-functionalized polymers. Depending on the origin of the used polymers, two different systems were obtained: on the one hand synthetic hydrogels consisting of PG-SHec/ef and P(AGE-co-G) and on the other hand hybrid gels, consisting of HA-SH and P(AGE-co-G). In synthetic gels, the degradability of the gels was determined by the applied PG-SH. The use of PG-SHec resulted in hydrolytically degradable hydrogels, whereas the cross-linking with PG-SHef resulted in non-degradable gels. The physical properties of these different hydrogel systems were determined by swelling, mechanical and diffusion studies and subsequently compared among each other. In swelling studies the differences of degradable and non-degradable synthetic hydrogels as well as the differences of synthetic compared to hybrid hydrogels were demonstrated. Next, the stiffness and the swelling ratios (SR) of the established hydrogel systems were examined in dependency of different parameters, such as incubation time, polymer concentration and UV irradiation. In general, these measurements revealed the same trends for synthetic and hybrid hydrogels: an increased polymer concentration as well as prolonged UV irradiation led to an increased network density. Moreover, it was demonstrated that the incorporation of additional non-bound HMW HA hampered the hydrogel cross-linking resulting in gels with decreased stiffness and increased SR. This effect was strongly dependent on the amount of additional HMW HA. The diffusion of different molecular weight fluorescein isothiocyanate-dextran (FITC-dextran) through hybrid hydrogels (with/without HMW HA) gave information about the mesh size of these gels. The smallest FITC-dextran (4 kDa) completely diffused through both hydrogel systems within the first week, whereas only 55 \% of 40 kDa and 5-10 \% HMW FITC-dextrans (500 kDa and 2 MDa) could diffuse through the networks. The applicability of synthetic and hybrid hydrogels for cartilage regeneration purpose was investigated through by biological examinations. It was proven that both gels support the survival of embedded human mesenchymal stromal cells (hMSCs) (21/28 d in vitro culture), however, the chondrogenic differentiation was significantly improved in hybrid hydrogels compared to synthetic gels. The addition of non-bound HMW HA resulted in a slightly less distinct chondrogenesis. Lastly the printability of the established hydrogel systems was examined. Therefore, the viscoelastic properties of the hydrogel solutions were adjusted by incorporation of non-bound HMW HA. Both systems could be successfully printed with high resolution and high shape fidelity. The introduction of the double printing approach with reinforcing PCL allowed printing of hydrogel solutions with lower viscosities. As a consequence, the amount of additional HMW HA necessary for printing could be reduced allowing successful printing of hybrid hydrogel solutions with embedded cells. It was demonstrated that the integrated cells survived the printing process with high viability measured after 21 d. Moreover, by this reinforcing technique, robust hydrogel-containing constructs were fabricated. In addition to thiol-ene cross-linked hydrogels, hydrogel cross-linking via ionic interactions was investigated with a hybrid hydrogel based on HMW HA and peptide-functionalized PG. Rheological measurements revealed an increase in the viscosity of a 2 wt.\% HMW HA solution by the addition of peptide-functionalized PG. The increase in viscosity could be attributed to the ionic interactions between the positively charge PG and the negatively charge HMW HA. In conclusion, throughout this thesis thiol-ene chemistry and PG were introduced as promising cross-linking reaction and polymer precursor for the field of biofabrication. Furthermore, the differences of hybrid and synthetic hydrogels as well as chemically and physically cross-linked hydrogels were demonstrated. Moreover, the double printing approach was demonstrated to be a promising tool for the fabrication of robust hydrogel-containing constructs. It opens the possibility of printing hydrogels that were not printable yet, due to too low viscosities.}, subject = {Hyalurons{\"a}ure}, language = {en} } @phdthesis{Bertlein2019, author = {Bertlein, Sarah}, title = {Hydrogels as Biofunctional Coatings and Thiol-Ene Clickable Bioinks for Biofabrication}, doi = {10.25972/OPUS-17422}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-174225}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {Ziel dieser Arbeit war die Entwicklung von funktionalisierbaren Hydrogel Beschichtungen f{\"u}r Schmelz-elektrogeschriebene PCL Ger{\"u}ste und von Bio-druckbaren Hydrogelen f{\"u}r die Biofabrikation. Hydrogel Beschichtungen von Schmelz-elektrogeschriebenen Konstrukten erm{\"o}glichten die Kontrolle der Oberfl{\"a}chen-Hydrophilie und damit Zell-Material Interaktionsstudien in minimal Protein-adh{\"a}siven Umgebungen. Zu diesem Zweck wurde ein hydrophiles sternf{\"o}rmiges vernetzbares Polymer verwendet und eine Optimierung der Beschichtungsbedingungen durchgef{\"u}hrt. Außerdem boten neu entwickelte photosensitive Konstrukte eine Zeit- und pH-unabh{\"a}ngige Biofunktionalisierung. Bio-druckbare Hydrogele f{\"u}r die Biofabrikation basierten auf der Allyl-Funktionalisierung von Gelatine (GelAGE) und modifizierten Hyalurons{\"a}ure-Produkten, die das Hydrogel-Vernetzen mittels Thiol-En Click Chemie erm{\"o}glichen. Die Optimierung der GelAGE Hydrogel-Eigenschaften wurde durch eine detaillierte Analyse der Syntheseparameter, variierender En:SH Verh{\"a}ltnisse, unterschiedlicher Vernetzungsmolek{\"u}le und Photoinitiatoren erreicht. Die Homogenit{\"a}t der Thiol-En Netzwerke wurde mit denen der freien radikalischen Polymerisation verglichen und die Verwendbarkeit von GelAGE als Bio-Tinte f{\"u}r den Extrusions-basierten Bio-Druck wurde untersucht. Es wurde angenommen, dass reine Hyalurons{\"a}ure-basierte Bio-Tinten eine Beibehaltung der mechanischen und rheologischen Eigenschaften, der Zellviabilit{\"a}t und der Prozessierbarkeit erm{\"o}glichen trotz geringerem Polymer- und Thiol-Anteil der Hydrogele. Hydrogel-Beschichtungen: Hoch definierte PCL Ger{\"u}ste wurden mittels MEW hergestellt und anschließend mit sechs armigen sternf{\"o}rmigen vernetzbaren Polymeren (sP(EO-stat-PO)) beschichtet. Die Vernetzung wird durch die w{\"a}ssrig-induzierte Hydrolyse reaktiver Isocyanatgruppen (NCO) von sP(EO-stat-PO) bedingt. Diese Beschichtung erh{\"o}hte die Oberfl{\"a}chen-Hydrophilie und stellte eine Plattform f{\"u}r weitere Biofunktionalisierungen, in minimal Protein-adh{\"a}siven Umgebungen, dar. Nicht nur das Beschichtungsprotokoll wurde hinsichtlich der sP(EO-stat-PO) Konzentrationen und der Beschichtungsdauern optimiert, sondern auch Vorbehandlungen der Ger{\"u}ste wurden entwickelt. Diese waren essentiell um die finale Hydrophilie von sP(EO-stat-PO) beschichteten Ger{\"u}ste so zu erh{\"o}hen, dass unspezifische Protein-Adh{\"a}sionen vollst{\"a}ndig unterbunden wurden. Die sP(EO-stat-PO) Schichtdicke, von ungef{\"a}hr 100 nm, erm{\"o}glicht generell in vitro Studien nicht nur in Abh{\"a}ngigkeit der Ger{\"u}st-Biofunktionalisierung, sondern auch in Abh{\"a}ngigkeit der Ger{\"u}st-Architektur durchzuf{\"u}hren. Das Ausmaß der Hydrogel-Beschichtung wurde mittels einer indirekten Quantifizierung der NCO-Hydrolyse-Produkte ermittelt. Kenntnis {\"u}ber die NCO-Hydrolyse-Kinetik erm{\"o}glichte ein Gleichgewicht zwischen ausreichend beschichteten Ger{\"u}sten und der Pr{\"a}senz der NCO-Gruppen herzustellen, welche f{\"u}r die anschließenden Biofunktionalisierungen genutzt wurden. Diese Zeit- und pH-abh{\"a}ngige Biofunktionalisierung war jedoch nur f{\"u}r kleine Biomolek{\"u}le m{\"o}glich. Um diese Beschr{\"a}nkung zu umgehen und auch hochmolekulare Biomolek{\"u}le kovalent anzubinden, wurde ein anderer Reaktionsweg entwickelt. Dieser basierte auf der Photolyse von Diazirin-Gruppen und erm{\"o}glichte eine Zeit- und pH-unabh{\"a}ngige Biofunktionalisierung der Ger{\"u}ste mit Streptavidin und Kollagen Typ I. Die Fibrillen bildende Eigenschaft von Kollagen wurde genutzt um auf den Ger{\"u}sten verschiedene Kollagen-Konformationen zu erhalten und eine erste in vitro Studie best{\"a}tigte die Anwendbarkeit f{\"u}r Zell-Material Interaktionsstudien. Die hier entwickelten Ger{\"u}ste k{\"o}nnten verwendet werden um tiefere Einblicke in die Grundlagen der zellul{\"a}ren Wahrnehmung zu erhalten. Insbesondere die Komplexit{\"a}t mit der Zellen z.B. Kollagen wahrnehmen bleibt weiterhin kl{\"a}rungsbed{\"u}rftig. Hierf{\"u}r k{\"o}nnten diverse Hierarchien von Kollagen-{\"a}hnlichen Konformationen an die Ger{\"u}ste gebunden werden, z.B. Gelatine oder Kollagen-abgeleitete Peptidsequenzen. Dann k{\"o}nnte die Aktivierung der DDR-Rezeptoren in Abh{\"a}ngigkeit der Komplexit{\"a}t der angebundenen Substanzen bestimmt werden. Aufgrund der starken Streptavidin-Biotin Bindung k{\"o}nnten Streptavidin funktionalisierte Ger{\"u}ste eine vielseitige Plattform f{\"u}r die Immobilisierung von jeglichen biotinylierten Molek{\"u}len darstellen. Gelatine-basierte Bio-Tinten: Zuerst wurden die GelAGE-Produkte hinsichtlich der Molekulargewichts-Verteilung und der Integrit{\"a}t der Aminos{\"a}uren-Zusammensetzung synthetisiert. Eine detailliert Studie, mit variierenden molaren Edukt-Verh{\"a}ltnissen und Synthese-Zeitspannen, wurde durchgef{\"u}hrt und implizierte, dass der Gelatine Abbau am deutlichsten f{\"u}r stark alkalische Synthesebedingungen mit langen Reaktionszeiten war. Gelatine beinhaltet mehrere funktionalisierbare Gruppen und anhand diverser Model-Substanzen und Analysen wurde die vorrangige Amingruppen-Funktionalisierung ermittelt. Die Homogenit{\"a}t des GelAGE-Polymernetzwerkes, im Vergleich zu frei radikalisch polymerisierten GelMA-Hydrogelen, wurde best{\"a}tigt. Eine ausf{\"u}hrliche Analyse der Hydrogel-Zusammensetzungen mit variierenden funktionellen Gruppen Verh{\"a}ltnissen und UV- oder Vis-Licht induzierbaren Photoinitiatoren wurde durchgef{\"u}hrt. Die UV-Initiator Konzentration ist aufgrund der Zell-Toxizit{\"a}t und der potenziellen zellul{\"a}ren DNA-Besch{\"a}digung durch UV-Bestrahlung eingeschr{\"a}nkt. Das Zell-kompatiblere Vis-Initiator System hingegen erm{\"o}glichte, durch die kontrollierte Photoinitiator-Konzentration bei konstanten En:SH Verh{\"a}ltnissen und Polymeranteilen, die Einstellung der mechanischen Eigenschaften {\"u}ber eine große Spanne hinweg. Die Flexibilit{\"a}t der GelAGE Bio-Tinte f{\"u}r unterschiedliche additive Fertigungstechniken konnte, durch Ausnutzung des temperaturabh{\"a}ngigen Gelierungsverhaltens unterschiedlich stark degradierter GelAGE Produkte, f{\"u}r Stereolithographie und Extrusions-basiertem Druck bewiesen werden. Außerdem wurde die Viabilit{\"a}t zellbeladener GelAGE Konstrukte bewiesen, die mittels Extrusions-basiertem Bio-Druck erhalten wurden. Die Verwendung diverser multifunktioneller und makromolekularer Thiol-Vernetzungsmolek{\"u}le erm{\"o}glichte eine Verbesserung der mechanischen und rheologischen Eigenschaften und ebenso der Prozessierbarkeit. Verglichen mit dem kleinen bis-Thiol-funktionellen Vernetzungsmolek{\"u}l waren geringere Thiol-Vernetzer-Konzentrationen notwendig um bessere mechanische Festigkeiten und physikochemische Eigenschaften der Hydrogele zu erhalten. Der Extrusions-basierte Bio-Druck unterschiedlicher eingekapselter Zellen verdeutlichte die Notwendigkeit der individuellen Optimierung von Zell-beladenen Hydrogel-Formulierungen. Nicht nur die Zellviabilit{\"a}t von eingekapselten Zellen in Extrusions-basierten biogedruckten Konstrukten sollte bewertet werden, sondern auch andere Parameter wie die Zellmorphologie oder die Kollagen- oder Glykosaminoglykan-Produktion, da diese einige der essentiellen Voraussetzungen f{\"u}r die Verwendung in Knorpel Tissue Engineering Konzepten darstellen. Außerdem sollten diese Studien auf die stereolithographischen Ans{\"a}tze erweitert werden und letztlich w{\"a}re die Flexibilit{\"a}t und Zellkompatibilit{\"a}t der Formulierungen mit makromolekularen Vernetzern von Interesse. Makromolekulare Vernetzer erm{\"o}glichten die Reduktion des Polymeranteils und des Thiol-Gehalts und k{\"o}nnen, insbesondere in Kombination mit dem Zell-kompatibleren Vis-Initiator-System, voraussichtlich zu einer gesteigerten Zellkompatibilit{\"a}t beitragen, was zu kl{\"a}ren bleibt. Hyalurons{\"a}ure-basierte Bio-Tinten: Unterschiedliche Hyalurons{\"a}ure-Produkte (HA) wurden synthetisiert, sodass diese En- (HAPA) oder Thiol-Funktionalit{\"a}ten (LHASH) beinhalteten, um reine HA Thiol-En vernetzte Hydrogele zu erhalten. In Abh{\"a}ngigkeit des Molekulargewichts der HA-Produkte, der Polymeranteile und des En:SH Verh{\"a}ltnisses, konnte eine große Spanne an mechanischen Festigkeiten abgedeckt werden. Aufgrund der hohen Viskosit{\"a}t war allerdings im Falle von hochmolekularen HA (HHAPA) Produkt-L{\"o}sungen (HHAPA + LHASH) die Handhabbarkeit auf 5.0 wt.-\% beschr{\"a}nkt. Die Verwendung der gleichen HA Thiol-Komponenten (LHASH) erm{\"o}glichte Hybrid-Hydrogele, mit HA und GelAGE, mit reinen HA-Hydrogelen zu vergleichen. Obwohl der Polymeranteil von HHAPA + LHASH Hydrogelen signifikant geringer war, als im Vergleich zu Hybrid-Hydrogelen (GelAGE + LHASH), wurden f{\"u}r gleiche En:SH Verh{\"a}ltnisse {\"a}hnliche mechanische und physikochemische Eigenschaften reiner HA-Hydrogele bestimmt. Aufgrund der geringen Viskosit{\"a}t niedermolekularer HA L{\"o}sungen (LHAPA + LHASH) konnten diese nicht f{\"u}r den Extrusions-basierten Druck verwendet werden. Das nicht temperaturabh{\"a}ngige HHAPA + LHASH System hingegen konnte mit nur einem Viertel des Polymeranteils der Hybrid Formulierungen gedruckt werden. Im Vergleich zu der Hybrid Bio-Tinte wurde angenommen, dass das hoch viskose Verhalten von HHAPA + LHASH L{\"o}sungen, der geringere Polymeranteil, der geringere Druck f{\"u}r das Drucken und eine demzufolge geringere Scherspannung, maßgeblich zu der hohen Zellviabilit{\"a}t in Extrusions-basiert-biogedruckten Konstrukten beisteuerten. Die niedrigmolekulare HA Formulierung (LHAPA + LHASH) konnte zwar nicht f{\"u}r den Extrusions-basierten Druck verwendet werden, allerdings besitzt dieses System Potential f{\"u}r andere additive Fertigungstechniken wie z.B. der Stereolithographie. Um dieses System weiterzuentwickeln w{\"a}re, analog zu dem GelAGE System, eine detailliertere Studie zu den Funktionen eingekapselter Zellen hilfreich. Außerdem sollte die Initiierung dieses Systems mit dem Vis-Initiator untersucht werden.}, subject = {Biomaterial}, language = {en} } @phdthesis{Roedel2019, author = {R{\"o}del, Michaela}, title = {Development of Dual Setting Cement Systems as Composite Biomaterials with Ductile Properties}, doi = {10.25972/OPUS-18277}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-182776}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {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.}, subject = {Calciumphosphate}, language = {en} } @phdthesis{Lorson2019, author = {Lorson, Thomas}, title = {Novel Poly(2-oxazoline) Based Bioinks}, doi = {10.25972/OPUS-18051}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-180514}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {Motivated by the great potential which is offered by the combination of additive manufacturing and tissue engineering, a novel polymeric bioink platform based on poly(2 oxazoline)s was developed which might help to further advance the young and upcoming field of biofabrication. In the present thesis, the synthesis as well as the characteristics of several diblock copolymers consisting of POx and POzi have been investigated with a special focus on their suitability as bioinks. In general, the copolymerization of 2-oxazolines and 2-oxazines bearing different alkyl side chains was demonstrated to yield polymers in good agreement with the degree of polymerization aimed for and moderate to low dispersities. For every diblock copolymer synthesized during the present study, a more or less pronounced dependency of the dynamic viscosity on temperature could be demonstrated. Diblock copolymers comprising a hydrophilic PMeOx block and a thermoresponsive PnPrOzi block showed temperature induced gelation above a degree of polymerization of 50 and a polymer concentration of 20 wt\%. Such a behavior has never been described before for copolymers solely consisting of poly(cyclic imino ether)s. Physically cross linked hydrogels based on POx b POzi copolymers exhibit reverse thermal gelation properties like described for solutions of PNiPAAm and Pluronic F127. However, by applying SANS, DLS, and SLS it could be demonstrated that the underlying gel formation mechanism is different for POx b POzi based hydrogels. It appears that polymersomes with low polydispersity are formed already at very low polymer concentrations of 6 mg/L. Increasing the polymer concentration resulted in the formation of a bicontinuous sponge like structure which might be formed due to the merger of several vesicles. For longer polymer chains a phase transition into a gyroid structure was postulated and corresponds well with the observed rheological data. Stable hydrogels with an unusually high mechanical strength (G' ~ 4 kPa) have been formed above TGel which could be adjusted over a range of 20 °C by changing the degree of polymerization if maintaining the symmetric polymer architecture. Variations of the chain ends revealed only a minor influence on TGel whereas the influence of the solvent should not be neglected as shown by a comparison of cell culture medium and MilliQ water. Rotationally as well as oscillatory rheological measurements revealed a high suitability for printing as POx b POzi based hydrogels exhibit strong shear thinning behavior in combination with outstanding recovery properties after high shear stress. Cell viability assays (WST-1) of PMeOx b PnPrOzi copolymers against NIH 3T3 fibroblasts and HaCat cells indicated that the polymers were well tolerated by the cells as no dose-dependent cytotoxicity could be observed after 24 h at non-gelling concentrations up to 100 g/L. In summary, copolymers consisting of POx and POzi significantly increased the accessible range of properties of POx based materials. In particular thermogelation of aqueous solutions of diblock copolymers comprising PMeOx and PnPrOzi was never described before for any copolymer consisting solely of POx or POzi. In combination with other characteristics, e.g. very good cytocompatibility at high polymer concentrations and comparably high mechanical strength, the formed hydrogels could be successfully used for 3D bioprinting. Although the results appear promising and the developed hydrogel is a serious bioink candidate, competition is tough and it remains an open question which system or systems will be used in the future.}, subject = {Polymere}, language = {en} }