TY - JOUR A1 - Ouhaddi, Yassine A1 - Charbonnier, Baptiste A1 - Porge, Juliette A1 - Zhang, Yu-Ling A1 - Garcia, Isadora A1 - Gbureck, Uwe A1 - Grover, Liam A1 - Gilardino, Mirko A1 - Harvey, Edward A1 - Makhoul, Nicholas A1 - Barralet, Jake T1 - Development of neovasculature in axially vascularized calcium phosphate cement scaffolds JF - Journal of Functional Biomaterials N2 - Augmenting the vascular supply to generate new tissues, a crucial aspect in regenerative medicine, has been challenging. Recently, our group showed that calcium phosphate can induce the formation of a functional neo-angiosome without the need for microsurgical arterial anastomosis. This was a preclinical proof of concept for biomaterial-induced luminal sprouting of large-diameter vessels. In this study, we investigated if sprouting was a general response to surgical injury or placement of an inorganic construct around the vessel. Cylindrical biocement scaffolds of differing chemistries were placed around the femoral vein. A contrast agent was used to visualize vessel ingrowth into the scaffolds. Cell populations in the scaffold were mapped using immunohistochemistry. Calcium phosphate scaffolds induced 2.7–3 times greater volume of blood vessels than calcium sulphate or magnesium phosphate scaffolds. Macrophage and vSMC populations were identified that changed spatially and temporally within the scaffold during implantation. NLRP3 inflammasome activation peaked at weeks 2 and 4 and then declined; however, IL-1β expression was sustained over the course of the experiment. IL-8, a promoter of angiogenesis, was also detected, and together, these responses suggest a role of sterile inflammation. Unexpectedly, the effect was distinct from an injury response as a result of surgical placement and also was not simply a foreign body reaction as a result of placing a rigid bioceramic next to a vein, since, while the materials tested had similar microstructures, only the calcium phosphates tested elicited an angiogenic response. This finding then reveals a potential path towards a new strategy for creating better pro-regenerative biomaterials. KW - angiogenesis KW - axial vascularization KW - bioceramic KW - bioinorganic KW - calcium phosphate KW - NLRP3 KW - inflammation Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-304026 SN - 2079-4983 VL - 14 IS - 2 ER - TY - THES A1 - Witteler, Charlotte Marie T1 - Untersuchung des zellbiologischen Verhaltens von Fibroblasten in modifizierten Gelatine-Methacrylat basierten Harzen für den volumetrischen Biodruck T1 - Investigation of the cell biological behavior of fibroblasts in modified gelatin-methacrylate based resins for volumetric bioprinting N2 - Was vor einigen Jahren undenkbar erschien, könnte zukünftig möglich sein: Krankes Gewebe mit Gesundem ersetzen, das in vitro mit modernsten Biofabrikationstechniken hergestellt wird. Dabei werden bisherige Grenzen überschritten: Während lichtbasierte Biodruckverfahren wie die Zwei-Photonen-Polymerisation Auflösungen bis in den Nanometerbereich erzielen, ermöglicht der Volumetrische Biodruck (VB) den Druck zentimetergroßer Konstrukte in wenigen Sekunden. Diese Geschwindigkeiten erweisen sich unter Biodruckverfahren als konkurrenzlos und werden erreicht, da das Bioharz nicht konsekutiv, sondern zugleich vernetzt wird. Einschränkend gilt bislang nur der Mangel an geeigneten Bioharzen für den VB. Daher beschäftigt sich vorliegende Arbeit mit der Charakterisierung und Modifikation eines dafür geeigneten Bioharzes: Gelatine-Methacrylat (GelMA). Dank seiner Zusammensetzung ähnelt das etablierte Hydrogelsystem der Extratrazellularmatrix: Der Gelatine-Anteil ermöglicht Biokompatibilität und Bioaktivität durch zelladhäsive sowie degradierbare Aminosäure-Sequenzen. Zugleich können durch photovernetzbare Methacryloyl-Substituenten Konstrukte mit einer Formstabilität bei 37 °C erzeugt werden. Zunächst wurde das Bioharz zellbiologisch charakterisiert, indem mit der embryonalen Mausfibroblasten-Zelllinie NIH-3T3 beladene GelMA-Zylinder gegossen, photopolymerisiert und kultiviert wurden. Im Verlauf einer Woche wurde die Zytokompatibilität der Gele anhand der Proliferationsfähigkeit (PicoGreen-Assay), des Metabolismus (CCK-8-Assay) und der Vitalität (Live/Dead-Assay) der Zellen beurteilt. Dabei wurden Polymerkonzentrationen von 6 – 8 % sowie GelMA-Harze zweier verschiedener Molekulargewichte verglichen. Alle hergestellten Gele erwiesen sich als zytokompatibel, 6 % ige Gele ließen im Inneren jedoch zusätzlich eine beginnende Zellspreizung zu und ein niedriges GelMA-Molekulargewicht verstärkte die gemessene Proliferation. Die sich anschließende mechanische und physikalische Charakterisierung belegte, dass höher konzentrierte Gele einen größeren E-Modul aufwiesen und damit steifer waren. Eine Modifikation der Gele mit Fibronektin beeinflusste die Zellverträglichkeit weder positiv noch negativ und die Zugabe von Kollagen war wegen Entmischungseffekten nicht bewertbar. Es liegt die Vermutung nah, dass eine weitere Reduktion der Polymerkonzentration und damit Verringerung der Gelsteifigkeit der Schlüssel für mehr Zellspreizung und -wachstum ist. Da jedoch die Druckbarkeit des Bioharzes die weitere Senkung des GelMA-Gehalts limitiert, sollten zunächst Methoden entwickelt werden, welche die Netzwerkdichte des GelMAs anderweitig herabsetzen. N2 - What seemed unthinkable a few years ago could be possible in the future: replacing diseased tissue with healthy tissue produced in vitro using the latest biofabrication techniques. Previous limits are being exceeded: While light-based bioprinting processes such as two-photon polymerization achieve resolutions down to the nanometer range, volumetric bioprinting (VB) makes it possible to print centimeter-sized constructs in just a few seconds. These speeds are unrivaled among bioprinting processes and are achieved because the bioresin is not cross-linked consecutively but simultaneously. The only limitation to date is the lack of suitable bioresins for VB. Therefore, the present work deals with the characterization and modification of a suitable bioresin: gelatine methacrylate (GelMA). Thanks to its composition, the established hydrogel system is similar to the extracellular matrix: The gelatine component enables biocompatibility and bioactivity through cell-adhesive as well as degradable amino acid sequences. At the same time, photo-crosslinkable methacryloyl substituents can be used to produce constructs with dimensional stability at 37 °C. First, the bioresin was characterized cell biologically by casting, photopolymerizing and culturing GelMA cylinders loaded with the embryonic mouse fibroblast cell line NIH-3T3. Over the course of a week, the cytocompatibility of the gels was assessed based on proliferation capacity (PicoGreen assay), metabolism (CCK-8 assay) and viability (Live/Dead assay) of the cells. Polymer concentrations of 6 - 8 % and GelMA resins of two different molecular weights were compared. All gels produced were found to be cytocompatible, however, 6 % gels additionally allowed incipient cell spreading inside and a low GelMA molecular weight increased the measured proliferation. The subsequent mechanical and physical characterization showed that gels with higher concentration had a higher modulus of elasticity and were therefore stiffer. Modifications of the gels with fibronectin had neither a positive nor negative effect on cell compatibility and the addition of collagen could not be evaluated due to segregation effects. It is reasonable to assume that further reduction in polymer concentration and thus a reduction in gel stiffness is the key to more cell spreading and growth. However, since the printability of the bioresin limits further reduction of the GelMA content, methods should first be developed to reduce the network density of the GelMA in other ways. KW - 3D Bioprinting KW - Fibroblast KW - Gelatine KW - Polymer-Gel KW - GelMA KW - Bioharz KW - Volumetrischer Biodruck KW - Polymergehalt KW - Modifikation Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-349460 ER - TY - THES A1 - Andelovic, Kristina T1 - Characterization of arterial hemodynamics using mouse models of atherosclerosis and tissue-engineered artery models T1 - Charakterisierung arterieller Hämodynamiken in atherosklerotischen Mausmodellen und tissue-engineerten Arterienmodellen N2 - Within this thesis, three main approaches for the assessment and investigation of altered hemodynamics like wall shear stress, oscillatory shear index and the arterial pulse wave velocity in atherosclerosis development and progression were conducted: 1. The establishment of a fast method for the simultaneous assessment of 3D WSS and PWV in the complete murine aortic arch via high-resolution 4D-flow MRI 2. The utilization of serial in vivo measurements in atherosclerotic mouse models using high-resolution 4D-flow MRI, which were divided into studies describing altered hemodynamics in late and early atherosclerosis 3. The development of tissue-engineered artery models for the controllable application and variation of hemodynamic and biologic parameters, divided in native artery models and biofabricated artery models, aiming for the investigation of the relationship between atherogenesis and hemodynamics Chapter 2 describes the establishment of a method for the simultaneous measurement of 3D WSS and PWV in the murine aortic arch at, using ultra high-field MRI at 17.6T [16], based on the previously published method for fast, self-navigated wall shear stress measurements in the murine aortic arch using radial 4D-phase contrast MRI at 17.6 T [4]. This work is based on the collective work of Dr. Patrick Winter, who developed the method and the author of this thesis, Kristina Andelovic, who performed the experiments and statistical analyses. As the method described in this chapter is basis for the following in vivo studies and undividable into the sub-parts of the contributors without losing important information, this chapter was not split into the single parts to provide fundamental information about the measurement and analysis methods and therefore better understandability for the following studies. The main challenge in this chapter was to overcome the issue of the need for a high spatial resolution to determine the velocity gradients at the vascular wall for the WSS quantification and a high temporal resolution for the assessment of the PWV without prolonging the acquisition time due to the need for two separate measurements. Moreover, for a full coverage of the hemodynamics in the murine aortic arch, a 3D measurement is needed, which was achieved by utilization of retrospective navigation and radial trajectories, enabling a highly flexible reconstruction framework to either reconstruct images at lower spatial resolution and higher frame rates for the acquisition of the PWV or higher spatial resolution and lower frame rates for the acquisition of the 3D WSS in a reasonable measurement time of only 35 minutes. This enabled the in vivo assessment of all relevant hemodynamic parameters related to atherosclerosis development and progression in one experimental session. This method was validated in healthy wild type and atherosclerotic Apoe-/- mice, indicating no differences in robustness between pathological and healthy mice. The heterogeneous distribution of plaque development and arterial stiffening in atherosclerosis [10, 12], however, points out the importance of local PWV measurements. Therefore, future studies should focus on the 3D acquisition of the local PWV in the murine aortic arch based on the presented method, in order to enable spatially resolved correlations of local arterial stiffness with other hemodynamic parameters and plaque composition. In Chapter 3, the previously established methods were used for the investigation of changing aortic hemodynamics during ageing and atherosclerosis in healthy wild type and atherosclerotic Apoe-/- mice using the previously established methods [4, 16] based on high-resolution 4D-flow MRI. In this work, serial measurements of healthy and atherosclerotic mice were conducted to track all changes in hemodynamics in the complete aortic arch over time. Moreover, spatially resolved 2D projection maps of WSS and OSI of the complete aortic arch were generated. This important feature allowed for the pixel-wise statistical analysis of inter- and intragroup hemodynamic changes over time and most importantly – at a glance. The study revealed converse differences of local hemodynamic profiles in healthy WT and atherosclerotic Apoe−/− mice, with decreasing longWSS and increasing OSI, while showing constant PWV in healthy mice and increasing longWSS and decreasing OSI, while showing increased PWV in diseased mice. Moreover, spatially resolved correlations between WSS, PWV, plaque and vessel wall characteristics were enabled, giving detailed insights into coherences between hemodynamics and plaque composition. Here, the circWSS was identified as a potential marker of plaque size and composition in advanced atherosclerosis. Moreover, correlations with PWV values identified the maximum radStrain could serve as a potential marker for vascular elasticity. This study demonstrated the feasibility and utility of high-resolution 4D flow MRI to spatially resolve, visualize and analyze statistical differences in all relevant hemodynamic parameters over time and between healthy and diseased mice, which could significantly improve our understanding of plaque progression towards vulnerability. In future studies the relation of vascular elasticity and radial strain should be further investigated and validated with local PWV measurements and CFD. Moreover, the 2D histological datasets were not reflecting the 3D properties and regional characteristics of the atherosclerotic plaques. Therefore, future studies will include 3D plaque volume and composition analysis like morphological measurements with MRI or light-sheet microscopy to further improve the analysis of the relationship between hemodynamics and atherosclerosis. Chapter 4 aimed at the description and investigation of hemodynamics in early stages of atherosclerosis. Moreover, this study included measurements of hemodynamics at baseline levels in healthy WT and atherosclerotic mouse models. Due to the lack of hemodynamic-related studies in Ldlr-/- mice, which are the most used mouse models in atherosclerosis research together with the Apoe-/- mouse model, this model was included in this study to describe changing hemodynamics in the aortic arch at baseline levels and during early atherosclerosis development and progression for the first time. In this study, distinct differences in aortic geometries of these mouse models at baseline levels were described for the first time, which result in significantly different flow- and WSS profiles in the Ldlr-/- mouse model. Further basal characterization of different parameters revealed only characteristic differences in lipid profiles, proving that the geometry is highly influencing the local WSS in these models. Most interestingly, calculation of the atherogenic index of plasma revealed a significantly higher risk in Ldlr-/- mice with ongoing atherosclerosis development, but significantly greater plaque areas in the aortic arch of Apoe-/- mice. Due to the given basal WSS and OSI profile in these two mouse models – two parameters highly influencing plaque development and progression – there is evidence that the regional plaque development differs between these mouse models during very early atherogenesis. Therefore, future studies should focus on the spatiotemporal evaluation of plaque development and composition in the three defined aortic regions using morphological measurements with MRI or 3D histological analyses like LSFM. Moreover, this study offers an excellent basis for future studies incorporating CFD simulations, analyzing the different measured parameter combinations (e.g., aortic geometry of the Ldlr-/- mouse with the lipid profile of the Apoe-/- mouse), simulating the resulting plaque development and composition. This could help to understand the complex interplay between altered hemodynamics, serum lipids and atherosclerosis and significantly improve our basic understanding of key factors initiating atherosclerosis development. Chapter 5 describes the establishment of a tissue-engineered artery model, which is based on native, decellularized porcine carotid artery scaffolds, cultured in a MRI-suitable bioreactor-system [23] for the investigation of hemodynamic-related atherosclerosis development in a controllable manner, using the previously established methods for WSS and PWV assessment [4, 16]. This in vitro artery model aimed for the reduction of animal experiments, while simultaneously offering a simplified, but completely controllable physical and biological environment. For this, a very fast and gentle decellularization protocol was established in a first step, which resulted in porcine carotid artery scaffolds showing complete acellularity while maintaining the extracellular matrix composition, overall ultrastructure and mechanical strength of native arteries. Moreover, a good cellular adhesion and proliferation was achieved, which was evaluated with isolated human blood outgrowth endothelial cells. Most importantly, an MRI-suitable artery chamber was designed for the simultaneous cultivation and assessment of high-resolution 4D hemodynamics in the described artery models. Using high-resolution 4D-flow MRI, the bioreactor system was proven to be suitable to quantify the volume flow, the two components of the WSS and the radStrain as well as the PWV in artery models, with obtained values being comparable to values found in literature for in vivo measurements. Moreover, the identification of first atherosclerotic processes like intimal thickening is achievable by three-dimensional assessment of the vessel wall morphology in the in vitro models. However, one limitation is the lack of a medial smooth muscle cell layer due to the dense ECM. Here, the utilization of the laser-cutting technology for the generation of holes and / or pits on a microscale, eventually enabling seeding of the media with SMCs showed promising results in a first try and should be further investigated in future studies. Therefore, the proposed artery model possesses all relevant components for the extension to an atherosclerosis model which may pave the way towards a significant improvement of our understanding of the key mechanisms in atherogenesis. Chapter 6 describes the development of an easy-to-prepare, low cost and fully customizable artery model based on biomaterials. Here, thermoresponsive sacrificial scaffolds, processed with the technique of MEW were used for the creation of variable, biomimetic shapes to mimic the geometric properties of the aortic arch, consisting of both, bifurcations and curvatures. After embedding the sacrificial scaffold into a gelatin-hydrogel containing SMCs, it was crosslinked with bacterial transglutaminase before dissolution and flushing of the sacrificial scaffold. The hereby generated channel was subsequently seeded with ECs, resulting in an easy-to-prepare, fast and low-cost artery model. In contrast to the native artery model, this model is therefore more variable in size and shape and offers the possibility to include smooth muscle cells from the beginning. Moreover, a custom-built and highly adaptable perfusion chamber was designed specifically for the scaffold structure, which enabled a one-step creation and simultaneously offering the possibility for dynamic cultivation of the artery models, making it an excellent basis for the development of in vitro disease test systems for e.g., flow-related atherosclerosis research. Due to time constraints, the extension to an atherosclerosis model could not be achieved within the scope of this thesis. Therefore, future studies will focus on the development and validation of an in vitro atherosclerosis model based on the proposed bi- and three-layered artery models. In conclusion, this thesis paved the way for a fast acquisition and detailed analyses of changing hemodynamics during atherosclerosis development and progression, including spatially resolved analyses of all relevant hemodynamic parameters over time and in between different groups. Moreover, to reduce animal experiments, while gaining control over various parameters influencing atherosclerosis development, promising artery models were established, which have the potential to serve as a new platform for basic atherosclerosis research. N2 - Im Rahmen dieser Arbeit wurden drei Hauptansätze zur Bewertung und Untersuchung der veränderten Hämodynamik wie Wandschubspannung, des oszillatorischen Scherindex und der arteriellen Pulswellengeschwindigkeit bei der Entwicklung und Progression der Atherosklerose durchgeführt: 1. Die Etablierung einer schnellen Methode zur gleichzeitigen Bestimmung der 3D-Wandschubspannung und der Pulswellengeschwindigkeit im gesamten Aortenbogen der Maus mittels hochauflösender 4D-Fluss-MRT 2. Die Verwendung von seriellen in vivo Messungen in atherosklerotischen Mausmodellen mittels hochauflösender 4D-Fluss-MRT, die in Studien zur Beschreibung der veränderten Hämodynamik bei später und früher Atherosklerose aufgeteilt wurden 3. Die Entwicklung von tissue-engineerten Arterienmodellen für die kontrollierte Anwendung und Variation von hämodynamischen und biologischen Parametern, unterteilt in native Arterienmodelle und biofabrizierte Arterienmodelle, mit dem Ziel, die Beziehung zwischen Atherogenese und veränderter Hämodynamik zu untersuchen Kapitel 2 beschreibt die Etablierung einer Methode zur gleichzeitigen Messung von 3D-Wandschubspannung und Pulswellengeschwindigkeit im Aortenbogen der Maus unter Verwendung der Ultrahochfeld-MRT bei 17,6T [16], die auf der zuvor veröffentlichten Methode zur schnellen, selbstnavigierten Messung der Wandschubspannung im Aortenbogen der Maus unter Verwendung der radialen 4D-Phasenkontrast-MRT bei 17,6T [4] basiert. Dieses Projekt basiert auf der gemeinsamen Arbeit von Dr. Patrick Winter, der diese Methode entwickelt hat, und der Autorin dieser Thesis, Kristina Andelovic, die die Experimente und statistischen Analysen durchgeführt hat. Da die in diesem Kapitel beschriebene Methode die Grundlage für die folgenden in vivo Studien darstellt und sich nicht in die einzelnen Beiträge der Autoren aufteilen lässt, ohne dass wichtige Informationen verloren gehen, wurde dieses Kapitel nicht in die einzelnen Teile aufgeteilt, um grundlegende Informationen über die Mess- und Analysemethoden zu liefern und somit eine bessere Verständlichkeit für die folgenden Studien zu gewährleisten. Die größte Herausforderung in diesem Kapitel bestand darin, die Anforderung an eine hohe räumliche Auflösung zur Bestimmung der Geschwindigkeitsgradienten an der Gefäßwand für die WSS-Quantifizierung und an eine hohe zeitliche Auflösung für die Bestimmung der Pulswellengeschwindigkeit zu erfüllen, ohne die Messzeit aufgrund der Notwendigkeit von zwei separaten Messungen zu verlängern. Darüber hinaus ist für eine vollständige Erfassung der Hämodynamik im murinen Aortenbogen eine vollständige 3D-Messung des Aortenbogens erforderlich, die durch die Nutzung der retrospektiven Navigation und radialen Trajektorien erreicht wurde. Dies wurde durch ein hoch flexibles Rekonstruktionssystem ermöglicht, das entweder Bilder mit geringerer räumlicher Auflösung und höheren Bildraten für die Erfassung der Pulswellengeschwindigkeit oder mit höherer räumlicher Auflösung und niedrigeren Bildraten für die Erfassung der 3D-WSS in einer angemessenen Messzeit von nur 35 Minuten rekonstruieren konnte. Die in vivo-Bestimmung aller relevanter hämodynamischen Parameter, die mit der Entwicklung und dem Fortschreiten der Atherosklerose zusammenhängen, wurde somit in einer einzigen experimentellen Sitzung ermöglicht. Die Methode wurde an gesunden Wildtyp- und atherosklerotischen Apoe-/- Mäusen validiert, wobei keine Unterschiede in der Robustheit der Messungen zwischen pathologischen und gesunden Mäusen festgestellt werden konnten. Die heterogene Verteilung der Plaqueentwicklung und Arterienversteifung in der Atherosklerose [10, 12] weist jedoch auf die Wichtigkeit lokaler PWV-Messungen hin. Zukünftige Studien sollten sich daher auf die 3D-Erfassung der lokalen PWV im murinen Aortenbogen auf Grundlage der vorgestellten Methode konzentrieren, um räumlich aufgelöste Korrelationen der lokalen arteriellen Steifigkeit mit anderen hämodynamischen Parametern und der Plaquezusammensetzung zu ermöglichen. In Kapitel 3 wurden die zuvor etablierten Methoden zur Untersuchung der sich verändernden Hämodynamik in der Aorta während des Alterns und der Atherosklerose bei gesunden Wildtyp- und atherosklerotischen Apoe-/- Mäusen verwendet [4, 16], die auf hochauflösender 4D-Fluss MRT basieren. In dieser Arbeit wurden serielle Messungen an gesunden und atherosklerotischen Mäusen durchgeführt, um alle Veränderungen der Hämodynamik im gesamten Aortenbogen über die Zeit zu verfolgen. Zudem wurden in dieser Arbeit räumlich aufgelöste 2D-Projektionskarten der WSS und des OSI des gesamten Aortenbogens generiert. Diese Methode ermöglichte die pixelweise statistische Analyse der Unterschiede und hämodynamischen Veränderungen zwischen und innerhalb von Gruppen im Zeitverlauf und die Visualisierung auf einen Blick. Die Studie ergab sich gegensätzlich entwickelnde lokale hämodynamische Profile bei gesunden WT- und atherosklerotischen Apoe-/- Mäusen, wobei die longWSS über die Zeit abnahm und der OSI zunahm, während die PWV bei gesunden Mäusen konstant blieb. Im Gegensatz nahm die longWSS zu und der OSI bei kranken Mäusen ab, während die PWV über die Zeit zunahm. Darüber hinaus wurden räumlich aufgelöste Korrelationen zwischen WSS, PWV, Plaque und Gefäßwandeigenschaften ermöglicht, die detaillierte Einblicke in die Zusammenhänge zwischen Hämodynamik und Plaquezusammensetzung in der Atherosklerose bieten. Dabei wurde die zirkumferentielle WSS als potenzieller Marker für die Plaquegröße und -zusammensetzung bei fortgeschrittener Atherosklerose identifiziert. Darüber hinaus ergaben Korrelationen mit der PWV, dass der maximale radiale Druck als potenzieller Marker für die vaskuläre Elastizität dienen könnte. Zusammengefasst demonstriert diese Studie die Nützlichkeit der hochauflösenden 4D-Fluss MRT zur räumlichen Auflösung, Visualisierung und Analyse statistischer Unterschiede in allen relevanten hämodynamischen Parametern im Zeitverlauf und zwischen gesunden und erkrankten Mäusen, was unser Verständnis der Plaqueprogression in Richtung Vulnerabilität erheblich verbessern könnte. In zukünftigen Studien sollte jedoch der Zusammenhang zwischen Gefäßelastizität und radialem Druck weiter untersucht und mit lokalen PWV-Messungen und CFD validiert werden. Darüber hinaus spiegelten die histologischen 2D-Datensätze nicht die 3D-Eigenschaften und regionalen Charakteristika der atherosklerotischen Plaques wider. Daher sollten künftige Studien eine Analyse des 3D-Plaquevolumens und der 3D-Plaquenzusammensetzung sowie morphologische Messungen mittels MRT oder der Lichtblattmikroskopie mit einbeziehen, um das fundamentale Verständnis der Beziehung zwischen veränderter Hämodynamik und der Atherosklerose weiter zu verbessern. In Kapitel 4 ging es um die Beschreibung und Untersuchung der Hämodynamik in frühen Stadien der Atherosklerose. Darüber hinaus umfasste diese Studie zum ersten Mal Messungen der basalen Hämodynamik in gesunden WT- und atherosklerotischen Mausmodellen. Aufgrund des Mangels an Studien, die die Hämodynamik in Ldlr-/- Mäusen beschreiben, die zusammen mit dem Apoe-/- Mausmodell die am häufigsten verwendeten Mausmodelle in der Atheroskleroseforschung sind, wurde dieses Modell in diese Studie integriert, um erstmals die sich verändernde Hämodynamik im Aortenbogen zu Beginn und während der Entwicklung und Progression der frühen Atherosklerose zu beschreiben. In dieser Studie wurden erstmals deutliche Unterschiede in den basalen Aortengeometrien dieser Mausmodelle identifiziert, die zu signifikant unterschiedlichen Fluss- und WSS-Profilen im Ldlr-/- Mausmodell führen. Eine weitere basale Charakterisierung verschiedener Parameter ergab nur modell-charakteristische Unterschiede in den Lipidprofilen, was beweist, dass die Geometrie die lokale WSS in diesen Modellen stark beeinflusst. Interessanterweise ergab die Berechnung des atherogenen Plasma-Indexes ein signifikant höheres Risiko bei Ldlr-/- Mäusen mit fortschreitender Atheroskleroseentwicklung, aber signifikant größere Plaqueflächen im Aortenbogen der Apoe-/- Mäuse. Aufgrund des gegebenen basalen WSS- und OSI-Profils in diesen beiden Mausmodellen - zwei Parameter, die die Plaque-Entwicklung und -Progression stark beeinflussen - gibt es Hinweise darauf, dass sich die regionale Plaque-Entwicklung zwischen diesen Mausmodellen während der Atherogenese stark unterscheidet. Daher sollten sich künftige Studien auf die räumlich-zeitliche Bewertung der Plaqueentwicklung und -Zusammensetzung in den drei definierten Aortenregionen konzentrieren, wobei morphologische Messungen mittels MRT oder histologische 3D-Analysen wie LSFM zum Einsatz kommen. Darüber hinaus bietet diese Studie eine hervorragende Grundlage für künftige Studien mit CFD-Simulationen, in denen die verschiedenen gemessenen Parameterkombinationen (z. B. die Aortengeometrie der Ldlr-/-Maus mit dem Lipidprofil der Apoe-/- Maus) analysiert und die daraus resultierende Plaqueentwicklung und -Zusammensetzung simuliert werden. Dies könnte zum Verständnis des komplexen Zusammenspiels zwischen veränderter Hämodynamik, Serumlipiden und Atherosklerose beitragen und unser grundlegendes Verständnis der Schlüsselfaktoren für die Entstehung von Atherosklerose deutlich verbessern. In Kapitel 5 wird die Etablierung eines tissue-engineerten Arterienmodells beschrieben, das auf nativen, von Schweinehalsschlagadern hergestellten, dezellularisierten Gerüststrukturen basiert. Diese wurden zudem in einem MRT-geeigneten Bioreaktorsystem [23] kultiviert, um die hämodynamisch bedingte Atheroskleroseentwicklung auf kontrollierbare Weise zu untersuchen, wobei hierfür die zuvor etablierten Methoden zur WSS- und PWV-Bewertung [4, 16] verwendet wurden. Dieses in vitro Arterienmodell zielte auf die Reduzierung von Tierversuchen ab und bot gleichzeitig eine vereinfachte, aber vollständig kontrollierbare physikalische und biologische Umgebung. Zu diesem Zweck wurde in einem ersten Schritt ein sehr schnelles und schonendes Dezellularisierungsverfahren etabliert, das zu Gerüststrukturen basierend auf Schweinehalsschlagadern führte, die eine vollständige Azellularität aufwiesen, wobei gleichzeitig die Zusammensetzung der extrazellulären Matrix, die allgemeine Ultrastruktur und die mechanischen Eigenschaften der nativen Arterien erhalten blieben. Darüber hinaus wurde eine gute Zelladhäsion und -proliferation erreicht, die mit isolierten menschlichen Endothelzellen aus humanem Vollblut untersucht wurde. Darüber hinaus wurde zum ersten Mal eine MRT-geeignete Arterienkammer für die gleichzeitige Kultivierung der generierten Modelle und der Untersuchung der hochauflösenden 4D-Hämodynamik in diesen Arterienmodellen entwickelt. Unter Verwendung der hochauflösenden 4D-Fluss-MRT erwies sich das Bioreaktorsystem als sehr geeignet, den Volumenstrom, die beiden Komponenten der WSS inklusive dem radialen Druck und die PWV in den Arterienmodellen zu quantifizieren, wobei die erhaltenen Werte sehr gut mit den in der Literatur gefundenen Werten für in vivo-Messungen vergleichbar sind. Darüber hinaus lassen sich durch die dreidimensionale Untersuchung der Gefäßwandmorphologie in den in vitro-Modellen erste atherosklerotische Prozesse wie die Verdickung der Intima erkennen. Eine Einschränkung ist jedoch das Fehlen einer medialen glatten Muskelzellschicht aufgrund der dichten ECM des Gewebegerüsts. Die Verwendung der Laserschneidetechnik zur Erzeugung von Löchern und / oder Gruben im Mikrometerbereich, die eine Besiedlung des Mediums mit SMCs ermöglichen, zeigte in einem ersten Versuch vielversprechende Ergebnisse und sollte in zukünftigen Studien daher dringend weiter untersucht werden. Das präsentierte Arterienmodell verfügt somit über alle relevanten Komponenten für die Erweiterung zu einem Atherosklerosemodell und ebnet den Weg für ein deutlich besseres Verständnis der Schlüsselmechanismen in der Atherogenese. Kapitel 6 beschreibt die Entwicklung eines einfach herzustellenden, kostengünstigen und vollständig an gegebene Bedürfnisse anpassbaren Arterienmodells auf Grundlage von Biomaterialien. Hier wurden thermoresponsive Opfergerüststrukturen, die mit der MEW-Technik hergestellt wurden, zur Herstellung variabler, biomimetischer Formen verwendet, um die geometrischen Eigenschaften des Aortenbogens, bestehend aus Verzweigungen und Krümmungen, zu imitieren. Nach der Einbettung der Opfergerüststruktur in ein Gelatin-Hydrogel, das zudem SMCs enthält, wurde es mit bakterieller Transglutaminase vernetzt, bevor es aufgelöst und gespült wurde. Der so entstandene Hydrogelkanal wurde anschließend mit Endothelzellen besiedelt, wodurch ein einfach zu erstellendes, schnelles und kostengünstiges Arterienmodell entstand. Im Gegensatz zum nativen Arterienmodell ist dieses Modell daher deutlich variabler in Größe und Form und bietet die wichtige Möglichkeit, von Anfang an glatte Muskelzellen mit einzubringen. Darüber hinaus wurde speziell für die gegebene Gerüststruktur eine maßgeschneiderte und hochgradig anpassungsfähige Perfusionskammer entwickelt, die eine sehr schnelle und einstufige Herstellung des Arterienmodells ermöglicht und gleichzeitig die Möglichkeit zur dynamischen Kultivierung der Modelle bietet, was eine hervorragende Grundlage für die Entwicklung von in vitro Krankheits-Testsystemen für z.B. die Atheroskleroseforschung im Zusammenhang mit der Hämodynamik darstellt. Aus Zeitgründen konnte die Ausweitung auf ein Atherosklerosemodell jedoch im Rahmen dieser Arbeit nicht realisiert werden. Daher werden sich zukünftige Studien auf die Entwicklung und Validierung eines in vitro-Atherosklerosemodells konzentrieren, das auf den hier entwickelten zwei- und dreischichtigen Arterienmodellen basiert. Zusammenfassend lässt sich sagen, dass diese Arbeit den Weg für eine schnelle Erfassung und detaillierte Analyse der sich verändernden Hämodynamik während der Entwicklung und der Progression der Atherosklerose geebnet hat, einschließlich räumlich aufgelöster Analysen aller relevanten hämodynamischen Parameter im Zeitverlauf innerhalb einer Gruppe und zwischen verschiedenen Gruppen. Darüber hinaus wurden vielversprechende Arterienmodelle etabliert, die das Potenzial haben, als neue Plattform für die Atherosklerose-Grundlagenforschung zu dienen, um Tierversuche zu minimieren und gleichzeitig die Kontrolle über verschiedene Parameter zu erlangen, die die Atheroskleroseentwicklung beeinflussen. KW - Hämodynamik KW - Arteriosklerose KW - Tissue Engineering KW - Atherosclerosis KW - MRI KW - Hemodynamics KW - Tissue Engineering KW - Biofabrication KW - Artery Models Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-303601 ER - TY - THES A1 - Vogt, Fabian T1 - Elektrochemisch abgeschiedenes Calciumhydroxid Ca(OH)\(_2\) als antibakterielle, antiinflammatorische und proosseointegrative Titanimplantat-Oberflächen-Modifikation im In vivo Versuch T1 - Electrochemically deposited calcium hydroxide Ca(OH)\(_2\) as an antibacterial, anti-inflammatory and proosseointegrative titanium implant surface modification in an in vivo experiment N2 - Das Ziel der experimentellen Studie war die Erprobung der (bereits in vitro erfolgreich getesteten) Ca(OH)2-Beschichtung In vivo unter dem Aspekt, ob und inwieweit die antibakteriellen und somit auch antiinflammatorischen bzw. entzündungsmoderierenden Eigenschaften der Ca(OH)2-Beschichtung eine sinnvolle und effektive Ergänzung zu den bisher erfolgreich eingesetzten Calciumphosphat(CaP)-Beschichtungen mit bewiesenen, guten proosseointegrativen Eigenschaften bei lasttragenden Implantaten sein können. Zusammenfassend kann festgestellt werden, dass die Ergebnisse der In vitro Untersuchung durch die In vivo Versuche in den Bereichen 0-100 KBE grundsätzlich als gestützt gelten können. Die Zuverlässigkeit der Wirkung durch Ca(OH)2 nimmt jedoch mit steigender KBE-Zahl ab, sodass weitere Testreihen sinnvoll sind. N2 - The aim of the experimental study was to test the Ca(OH)2-coating (which has already been successfully tested in vitro) in vivo under the aspect of whether and to what extent the antibacterial and thus also anti-inflammatory or inflammation-moderating properties of the Ca(OH)2-coating can be a useful and effective addition to the common successfully used calcium phosphate (CaP)-coatings with proven, good proosseointegrative properties in load-bearing implants. In summary, it can be stated that the results of the in vitro investigation can generally be considered supported through the in vivo tests in the range of 0 -100 CFU. However, the reliability of the effect caused by Ca(OH)2 decreases as the CFU number increases, so further series of tests make sense. KW - Calciumhydroxid KW - Implantat KW - In vivo KW - antibakteriell KW - antiinflammatorisch KW - proosseointegrativ KW - S.aureus KW - Tierversuch KW - Titan Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-346343 ER - TY - THES A1 - Mittmann, Silvia T1 - Etablierung von Hydroxylapatit-Prüfkörpern zur in-vitro Qualifizierung von Knochenklebern T1 - Establishment of hydroxyapatite test specimens for in vitro qualification of bone adhesives N2 - Im Rahmen dieser Arbeit sollte herausgefunden werden, inwiefern Calciumorthophosphatzemente (CPC) dafür geeignet sind, um als Prüfkörper zur Qualifizierung von Knochenklebern zu dienen, und worin ihre Limitationen bestehen. Dazu sollte nicht nur ein materieller Vergleich verschiedener hydroxylapatitbildender Zemente mit Knochen erfolgen. Es sollte auch das Adhäsionsverhalten neuartiger Knochenkleber auf den verschiedenen Prüfkörpermaterialien verglichen werden, um mögliche Rückschlüsse für die Eignung als standardisierbares in-vitro Prüfkörpermaterial ziehen zu können. Gegenstand der Untersuchung war ein α-Tricalciumphosphat (α-TCP)-System und ein Tetracalciumphosphat (TTCP)-System welche im Rahmen einer Zement-Abbindereaktion calciumdefizitären Hydroxylapatit (CDHA) bzw. stöchiometrischen Hydroxylapatit (HA) bilden. Die Materialien wurden dazu verwendet Prüfkörperteile in Form von Zylindern (5 x 5 mm) und Plättchen (20 x 10 x 5 mm) herzustellen, die dann mit verschiedenen Knochenklebern verklebt werden konnten. Der stärkste der verwendeten Kleber war ein Cyanoacrylat-Kleber (Truglue®). Er erzielte auf Prüfkörpern aus Knochen nach 24-stündiger Lagerung in PBS mittlere Abscherfestigkeiten von ca. 4,22 ± 1,92 MPa. Als zweitstärkster Kleber erwies sich ein neuartiger zementbasierter Kleber, der aus wärmebehandeltem Trimagnesiumphosphat-Hydrat und Phosphoserin bestand. Dieser Kleber erzielte unter den gleichen Umständen mittlere Abscherfestigkeiten von ca. 1,89 ± 0,29 MPa. Etwas schwächer schnitt ein ebenfalls neuartiger zementbasierter Kleber ab, der aus dem Magnesiumphosphat Farringtonit, sowie aus Magnesiumoxid und 25 % Phytinsäure bestand. Dieser Kleber erzielte mittlere Abscherfestigkeiten von ca. 0,51 ± 0,16 MPa. Insgesamt haben die Untersuchungen gezeigt, dass die in-vitro Qualifizierung von Knochenklebern unter Verwendung von Prüfkörpern aus Zement möglich wäre. Die Prüfkörper aus CDHA vereinten die meisten Vorteile und wären für Klebesysteme mit Abscherfestigkeiten von bis zu 2 MPa geeignet. Dabei erzeugten die Knochenkleber auf CDHA zwar abweichende Abscherfestigkeiten als auf Knochen, doch ließ sich ein vergleichbarer Trend bei stets reduzierten Varianzen erkennen. Durch die gute Konsistenz der Zementpaste war die Herstellung homogener Prüfkörper möglich. Aufgrund der Stabilität von CDHA unter wässrigen Bedingungen konnten Langzeitversuche ohne Einschränkungen vorgenommen werden. Die Limitationen der Prüfkörper aus CDHA bestanden allerdings darin, dass sie nicht für Abscherversuche von stärkeren Klebern geeignet waren. In solchen Fällen versagten die Prüfkörper noch bevor die maximale Abscherfestigkeit des jeweiligen Klebers gemessen werden konnte. N2 - Until now, in vitro qualification of bone adhesives was mostly performed on bone test specimens of animal origin. The work dealt with the question to what extent test specimens made of synthetic hydroxyapatite would be suitable for the in vitro qualification of bone adhesives. For this purpose, test specimens were prepared from an a-TCP cement system and a TTCP cement system and compared with each other. The shear strengths of various novel bone adhesives were tested on the synthetic test specimens after different time intervals. KW - Knochenersatz KW - Knochenkleber Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-299140 ER - TY - THES A1 - Weichhold, Jan Lukas T1 - Injectable calcium phosphate-based bone replacement cements T1 - Injizierbare calciumphosphat-basierte Knochenersatzzemente N2 - The human body has very good self-healing capabilities for numerous different injuries to a variety of different tissues. This includes the main human mechanical framework, the skeleton. The skeleton is limited in its healing without additional aid by medicine mostly by the defect size. When the defect reaches a size above 2.5 cm the regeneration of the defect ends up faulty. Here is where implants, defect fillers and other support approaches developed in medicine can help the body to heal the big defect still successfully. Usually sturdy implants (auto-/allo-/xenogenic) are implanted in the defect to bridge the distance, but for auto- and allogenic implants a suitable donor site must be found and for all sources the implant needs to be shaped into the defect specific site to ensure a perfect fit, the best support and good healing. This shaping is very time consuming and prone to error, already in the planning phase. The use of a material that is moldable and sets in the desired shape shortly after applying negates these disadvantages. Cementitious materials offer exactly this property by being in a pasty stage after the powder and liquid components have been mixed and the subsequently hardening to a solid implant. These properties also enable the extrusion, and therefore may also enable the injection, of the cement via a syringe in a minimal invasive approach. To enable a good injection of the cement modifications are necessary. This work aimed to modify commonly used calcium phosphate-based cement systems based on α-TCP (apatitic) and β-TCP (brushitic). These have been modified with sodium phytate and phytic acid, respectively. Additionally, the α-TCP system has been modified with sodium pyrophosphate, in a second study, to create a storable aqueous paste that can be activated once needed with a highly concentrated sodium orthophosphate solution. The powder phase of the α-TCP cement system consisted of nine parts α-TCP and one part CDHA. These were prepared to have different particle sizes and therefore enable a better powder flowability through the bimodal size distribution. α-TCP had a main particle size of 20 μm and CDHA of 2.6 μm. The modification with sodium phytate led to an adsorption of phytate ions on the surface of the α-TCP particles, where they started to form complexes with the Ca2+ ions in the solution. This adsorption had two effects. The first was to make the calcium ions unavailable, preventing supersaturation and ultimately the precipitation of CDHA what would lead to the cement hardening. The second was the increase of the absolute value of the surface charge, zeta potential, of the powder in the cement paste. Here a decrease from +3 mV to -40 mV could be measured. A strong value for the zeta potential leads to a higher repulsion of similarly charged particles and therefore prevents powder agglomeration and clogging on the nozzle during injection. These two modifications (bimodal particles size distribution and phytic acid) lead to a significant increase in the paste injectability. The unmodified paste was injectable for 30 % only, where all modified pastes were practically fully injectable ~90 % (the residual paste remained in the nozzle, while the syringe plunger already reached the end of the syringe). A very similar observation could be made for the β-TCP system. This system was modified with phytic acid. The zeta potential was decreased even stronger from -10 ± 1.5 mV to -71.5 ± 12 mV. The adsorption of the phytate ions and subsequent formation of chelate complexes with the newly dissolved Ca2+ ions also showed a retarding effect in the cements setting reaction. Where the unmodified cement was not measurable in the rheometer, as the reaction was faster than the measurement setup (~1.5 min), the modified cements showed a transition through the gel point between 3-6 min. This means the pastes stayed between 2 and 4 times longer viscous than without the modification. Like with the first cement system also here the effects of the phytate addition showed its beneficial influence in the injectability measurement. The unmodified cement was not injectable at all, due to the same issue already encountered at the rheology measurements, but all modified pastes were fully injectable for at least 5 min (lowest phytate concentration) and at least 10 min (all other concentrations) after the mixing of powder and liquid. The main goal of the last modification with sodium pyrophosphate was to create a paste that was stable in aqueous environment without setting until the activation takes place, but it should still show good injectability as this was the desired way of application after activation. Like before also the zeta potential changed after the addition of pyrophosphate. It could be lowered from -22 ± 2mV down to -61 to -68 ± 4mV (depending on the pyrophosphate concentration). The pastes were stored in airtight containers at room temperature and checked for their phase composition over 14 days. The unmodified paste showed a beginning phase conversion to hydroxyapatite between 7 and 14 days. All other pastes were still stable and unreacted. The pastes were activated with a high concentrated (30 wt%) sodium orthophosphate solution. After the activation the pastes were checked for their injectability and showed an increase from -57 ± 11% for the unmodified paste to -89 ± 3% (practically fully injectable as described earlier) for the best modified paste (PP005). It can be concluded that the goal of enabling full injection of conventional calcium phosphate bone cement systems was reached. Additional work produced a storage stable paste that still ensures full injectability. Subsequent work already used the storable paste and modified it with hyaluronic acid to create an ink for 3D extrusion printing. The first two cement systems have also already been investigated in cell culture for their influence on osteoblasts and osteoclasts. The next steps would have to go more into the direction of translation. Figuring out what properties still need to be checked and where the modification needs adjustment to enable a clinical use of the presented systems. N2 - Der menschliche Körper verfügt über sehr gute Selbstheilungsfähigkeiten für zahlreiche verschiedene Verletzungen in unterschiedlichen Geweben. Dazu gehört auch das wichtigste mechanische Gerüst des Menschen, das Skelett. Das Skelett ist in seiner Heilung ohne zusätzliche Hilfe durch die Medizin vor allem durch die Defektgröße begrenzt. Erreicht der Defekt eine Größe von mehr als 2,5 cm, ist die Regeneration des Defekts nicht mehr gewährleistet. Hier können Implantate, Defektfüller und andere in der Medizin entwickelte Unterstützungsansätze dem Körper helfen, den großen Defekt noch erfolgreich zu heilen. In der Regel werden stabile Implantate (auto-/allo-/xenogen) in den Defekt eingesetzt, um den Abstand zu überbrücken. Für auto- und allogene Implantate muss jedoch eine geeignete Spenderstelle gefunden werden, und für alle Quellen muss das Implantat in die defektspezifische Stelle geformt werden, um eine perfekte Passform, den besten Halt und eine gute Heilung zu gewährleisten. Diese Formgebung ist sehr zeitaufwendig und fehleranfällig, schon in der Planungsphase. Die Verwendung eines Materials, das formbar ist und kurz nach dem Auftragen in der gewünschten Form aushärtet, negiert diese Nachteile. Zementartige Materialien bieten genau diese Eigenschaft, indem sie sich nach dem Vermischen von Pulver und flüssigen Komponenten in einem pastösen Stadium befinden und anschließend zu einem festen Implantat aushärten. Diese Eigenschaften ermöglichen auch die Extrusion und damit möglicherweise auch die Injektion des Zements über eine Spritze in einem minimalinvasiven Verfahren. Um eine gute Injektion des Zements zu ermöglichen, sind Modifikationen erforderlich. Ziel dieser Arbeit war es, die gängigen Zementsysteme auf Kalziumphosphatbasis zu modifizieren, die auf α-TCP (apatitisch) und β-TCP (brushitisch) basieren. Diese wurden mit Natriumphytat bzw. Phytinsäure modifiziert. Zusätzlich wurde das α-TCP-System in einer zweiten Studie mit Natriumpyrophosphat modifiziert, um eine lagerfähige wasserbasierte Paste zu schaffen, die bei Bedarf mit einer hochkonzentrierten Natriumorthophosphatlösung aktiviert werden kann. Die Pulverphase des α-TCP-Zementsystems bestand aus neun Teilen α-TCP und einem Teil CDHA. Diese wurden so aufbereitet, dass sie unterschiedliche Partikelgrößen aufweisen und somit eine bessere Fließfähigkeit des Pulvers durch die bimodale Größenverteilung ermöglichen. α-TCP hatte eine Hauptpartikelgröße von 20 μm und CDHA von 2,6 μm. Die Modifizierung mit Natriumphytat führte zu einer Adsorption von Phytat-Ionen an der Oberfläche der α-TCP-Partikel, wo sie Komplexe mit den Ca2+-Ionen in der Lösung zu bilden begannen. Diese Adsorption hatte zwei Auswirkungen. Die erste bestand darin, dass die Calciumionen nicht mehr verfügbar waren, wodurch die Übersättigung und letztlich die Ausfällung von CDHA verhindert wurde, was zur Erhärtung des Zements geführt hätte. Der zweite Effekt war die Erhöhung des Betrags der Oberflächenladung, des Zetapotenzials, des Pulvers in der Zementpaste. Hier konnte eine Abnahme von +3 mV auf -40 mV gemessen werden. Ein hoher Wert für das Zetapotenzial führt zu einer stärkeren Abstoßung ähnlich geladener Teilchen und verhindert somit die Agglomeration des Pulvers und das Verstopfen der Kanüle während der Injektion. Diese beiden Modifikationen (bimodale Partikelgrößenverteilung und Phytinsäure) führen zu einer deutlichen Verbesserung der Injektionsfähigkeit der Paste. Die unmodifizierte Paste war nur zu 30 % injizierbar, während alle modifizierten Pasten praktisch vollständig injizierbar waren ~90 %(die Restpaste blieb in der Kanüle, während der Spritzenkolben bereits das Ende der Spritze erreichte). Eine sehr ähnliche Beobachtung konnte für das β-TCP-System gemacht werden. Dieses System wurde mit Phytinsäure modifiziert. Das Zetapotenzial sank noch stärker von -10 ± 1,5 mV auf -71,5 ± 12mV. Die Adsorption der Phytat-Ionen und die anschließende Bildung von Chelatkomplexen mit den neu gelösten Ca2+-Ionen zeigten ebenfalls eine verzögernde Wirkung bei der Abbindereaktion des Zements. Während der unmodifizierte Zement im Rheometer nicht messbar war, da die Reaktion schneller verlief als der Messaufbau (~1,5 min), zeigten die modifizierten Zemente einen Übergang durch den Gelpunkt zwischen 3-6 min. Dies bedeutet, dass die Pasten zwischen 2 und 4 mal länger viskos blieben als ohne die Modifikation. Wie beim ersten Zementsystem zeigte sich auch hier der positive Einfluss des Phytatzusatzes bei der Messung der Injektionsfähigkeit. Der unmodifizierte Zement war überhaupt nicht injizierbar, was auf das gleiche Problem zurückzuführen ist, das bereits bei den rheologischen Messungen aufgetreten ist, aber alle modifizierten Pasten waren mindestens 5 min (niedrigste Phytatkonzentration) und mindestens 10 min (alle anderen Konzentrationen) nach dem Mischen von Pulver und Flüssigkeit vollständig injizierbar. Das Hauptziel der letzten Modifikation mit Natriumpyrophosphat bestand darin, eine Paste zu schaffen, die in wässriger Umgebung stabil ist und bis zur Aktivierung nicht aushärtet, die aber dennoch eine gute Injektionsfähigkeit aufweisen sollte, da dies die gewünschte Art der Anwendung nach der Aktivierung war. Wie zuvor änderte sich auch das Zetapotenzial nach der Zugabe von Pyrophosphat. Es konnte von -22 ± 2mV auf -61 bis -68 ± 4mV (abhängig von der Pyrophosphatkonzentration) gesenkt werden. Die Pasten wurden in luftdichten Behältern bei Raumtemperatur gelagert und über 14 Tage auf ihre Phasenzusammensetzung untersucht. Die unmodifizierte Paste zeigte zwischen 7 und 14 Tagen eine beginnende Phasenumwandlung in Hydroxyapatit. Alle anderen Pasten waren noch stabil und nicht umgewandelt. Die Pasten wurden mit einer hochkonzentrierten (30 Gew.-%) Natriumorthophosphatlösung aktiviert. Nach der Aktivierung wurden die Pasten auf ihre Injektionsfähigkeit geprüft und zeigten einen Anstieg von -57 ± 11 % für die unmodifizierte Paste auf -89 ± 3 % (praktisch vollständig injizierbar, wie zuvor beschrieben) für die beste modifizierte Paste (PP005). Daraus lässt sich schließen, dass das Ziel, die vollständige Injektion herkömmlicher Kalziumphosphat-Knochenzementsysteme zu ermöglichen, erreicht wurde. Weitere Arbeiten führten zu einer lagerstabilen Paste, die dennoch eine vollständige Injektionsfähigkeit gewährleistet. In nachfolgenden Arbeiten wurde die lagerfähige Paste bereits verwendet und mit Hyaluronsäure modifiziert, um eine Tinte für den 3D-Extrusionsdruck herzustellen. Die ersten beiden Zementsysteme wurden auch bereits in Zellkulturen auf ihren Einfluss auf Osteoblasten und Osteoklasten untersucht. Die nächsten Schritte müssten mehr in Richtung Translation gehen. Es gilt herauszufinden, welche Eigenschaften noch überprüft werden müssen und wo die Modifikation angepasst werden muss, um einen klinischen Einsatz der vorgestellten Systeme zu ermöglichen. KW - Calciumphosphat KW - Cement KW - Knochenersatz KW - Zement KW - Injectability KW - Bone-replacement KW - IP6 KW - Modification KW - Rheology KW - Setting Control KW - Calcium Phosphate Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-326616 ER - TY - THES A1 - Renner, Tobias T1 - Neue adhäsive mineral-organische Knochenzemente auf Basis von Phosphoserin und Magnesiumphosphaten bzw. -oxiden T1 - Novel adhesive mineral-organic bone cements based on phosphoserine and magnesium phosphates or oxides N2 - Heutige chirurgische Situationen können zeitweise den Einsatz eines Knochenkleber erfordern, welcher sich jedoch noch nicht in der klinischen Praxis etablieren konnte. In jüngster Vergangenheit haben mit Phosphoserin modifizierte Zemente (PMC) auf der Grundlage von Verbindungen zwischen o-Phosphoserin (OPLS) und Calciumphosphaten wie Tetracalciumphosphat (TTCP) oder α-Tricalciumphosphat (α-TCP) an Popularität gewonnen. Ebenso bekommen chelatbildende Magnesiumphosphatzemente als mineralische Knochenadhäsive mehr Zuspruch. In dieser Arbeit wurden neue mineralorganische Knochenzemente auf der Basis von Phosphoserin und Magnesiumphosphaten oder -oxiden untersucht, die hervorragende Hafteigenschaften besitzen. Diese wurden mittels Röntgenbeugung, Fourier-Infrarot-Spektroskopie und Elektronenmikroskopie analysiert und mechanischen Tests unterzogen, um die Haftfestigkeit am Knochen nach Alterung unter physiologischen Bedingungen zu bestimmen. Die neuartigen biomineralischen Klebstoffe zeigen eine ausgezeichnete Haftfestigkeit an Knochen mit etwa 6,6-7,3 MPa unter Scherbelastung. Die Adhäsive sind auch aufgrund ihres kohäsiven Versagensmusters und ihres duktilen Charakters vielversprechend. In diesem Zusammenhang sind die neuen adhäsiven Zemente den derzeit vorherrschenden Knochenadhäsiven überlegen. Ergänzend wurde versucht, dieses neue System mit unterschiedlichen Additiven zu modifizieren. Dabei wurde Mannit erfolgreich als Porogen verwendet. Dreiarmiges sternförmiges NCO-sP(EO-stat-PO) sollte die adhäsiven Eigenschaften und das Leistungspotenzial unter Wasser verbessern. Zuletzt wurden mit Glycerol präfabrizierte Pasten hergestellt, welche gelagert werden können und bei Kontakt mit Wasser aushärten. Generell ist zu betonen, dass künftige Bemühungen um Knochenklebstoffe aus Phosphoserin und Mg2+ sehr lohnenswert erscheinen. N2 - Present surgical situations require a bone adhesive which has not yet been developed for use in clinical applications. Recently, phosphoserine modified cements (PMC) based on mixtures of o-phosphoserine (OPLS) and calcium phosphates, such as tetracalcium phosphate (TTCP) or α-tricalcium phosphate (α-TCP) as well as chelate setting magnesium phosphate cements have gained increasing popularity for their use as mineral bone adhesives. Here, we investigated new mineral-organic bone cements based on phosphoserine and magnesium phosphates or oxides, which possess excellent adhesive properties. These were analyzed by X-ray diffraction, Fourier infrared spectroscopy and electron microscopy and subjected to mechanical tests to determine the bond strength to bone after ageing at physiological conditions. The novel biomineral adhesives demonstrate excellent bond strength to bone with approximately 6.6–7.3 MPa under shear load. The adhesives are also promising due to their cohesive failure pattern and ductile character. In this context, the new adhesive cements are superior to currently prevailing bone adhesives. In addition, an attempt was made to modify this new system with different additives. Mannite was successfully used as a porogen. Three-armed star-shaped NCO-sP(EO-stat-PO) should improve the adhesive properties and performance potential under water. Last glycerol-prefabricated pastes were prepared, which could be stored and cure upon contact with water. In general, it should be emphasized that future efforts on bone adhesives from phosphoserine and Mg2+ seem very worthwhile. KW - Phosphoserin KW - Klebstoff KW - Magnesiumphosphate KW - Knochenzement KW - Magnesiumoxid KW - bone adhesive KW - bone glue KW - magnesium phosphate cement KW - organophosphates KW - bone cement Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-323210 ER - TY - THES A1 - Gefel, Eugen T1 - Zelluläre Resorption 3D-gedruckter Knochenimplantate auf Basis von Calciummagnesiumphosphaten T1 - Cellular resorption of 3D-printed bone implants based on calcium magnesium phosphates N2 - Für die Behandlung von Knochendefekten kritischer Größe gibt es heute eine Reihe von Therapiemöglichkeiten. Neuartige Ansätze mit Magnesiumphosphat- (MPC) und Calciummagnesiumphosphatzementen (CMPC) haben sich als echte Alternativen zu den etablierten Calciumphosphaten erwiesen. Ziel war es, die Osteoklastogenese in vitro auf 3D-pulvergedrucktem CMPC und MPC zu induzieren und die zelluläre Resorption (zR) zu analysieren. Polystyrol (PS), Glas, β-TCP und Brushit-bildender Zement dienten als Referenzen. Als Proben wurden Zemente der allgemeinen stöchiometrischen Summenformel CaxMg(3–x)(PO4)2 (x = 0; 0,25; 0,75; 3) verwendet, die Struvit oder Newberyit enthielten. Für die Osteoklastogenese wurden monozytenangereicherte PBMCs aus Buffy-Coat mittels dreifacher Dichtegradientenzentrifugation isoliert, auf die Prüfoberflächen ausgesät und über einen Zeitraum von 22 Tagen mit Zytokinen (M-CSF und RANKL) stimuliert. Die Interaktion der Zellen mit den Zementen bzw. PS/Glas wurde mittels TRAP-Färbung und -Aktivität, DNA- und Ionenkonzentrationen (Ca2+, Mg2+, PO43–, pH-Wert), Rasterelektronen-, Durchlicht-, Auflicht- und Fluoreszenzmikroskopie analysiert. Auf den Struvit- und Newberyit-bildenden Zementen konnten keine für Osteoklasten typischen Riesenzellen nachgewiesen werden. Auf den Struvit-bildenden Zementen wurde deutlich mehr mononukleäre Zellen nachgewiesen wurden als auf den Newberyit-bildenden Zementen. Während die Freisetzung von Mg2+ und PO43– ausschließlich durch die chemische Degradation erfolgte, wurde Ca2+ zunächst adsorbiert und anschließend durch zR freigesetzt. Die erhöhte Ca2+-Adsorption im Vergleich zur Ca2+-Resorption führte insgesamt zu einer Calcium-Präzipitation. Da lediglich auf β-TCP Resorptionslakunen beobachtet wurden, wird angenommen, dass auf den CMPC, MPC und Brushite-bildenden Zementen die zellvermittelte Ca2+-Freisetzung von den Präzipitaten ausging, die von Makrophagen auf den Zementen und/oder Riesenzellen auf den Wellplatten resorbiert wurden. N2 - There are a number of therapeutic options available today for the treatment of critical size bone defects. Novel approaches using magnesium phosphate (MPC) and calcium magnesium phosphate cements (CMPC) have proven to be real alternatives to the established calcium phosphates. The aim was to induce osteoclastogenesis in vitro on 3D powder-printed CMPC and MPC and to analyse cellular resorption (zR). Polystyrene (PS), glass, β-TCP and brushite-forming cement served as references. Cements of the general stoichiometric molecular formula CaxMg(3-x)(PO4)2 (x = 0; 0.25; 0.75; 3) containing struvite or newberyite were used as samples. For osteoclastogenesis, monocyte-enriched PBMCs were isolated from buffy coat by triple density gradient centrifugation, seeded onto the test surfaces and stimulated with cytokines (M-CSF and RANKL) over a period of 22 days. The interaction of the cells with the cements or PS/glass was analysed by TRAP staining and activity, DNA and ion concentrations (Ca2+, Mg2+, PO43-, pH), SEM, transmitted light, reflected light and fluorescence microscopy. No giant cells typical of osteoclasts could be detected on the struvite- and newberyite-forming cements. On the struvite-forming cements, significantly more mononuclear cells were detected than on the newberyite-forming cements. While the release of Mg2+ and PO43- was exclusively by chemical degradation, Ca2+ was first adsorbed and then released by zR. The increased Ca2+ adsorption compared to Ca2+ resorption led to calcium precipitation overall. Since resorption lacunae were only observed on β-TCP, it is assumed that on the CMPC, MPC and Brushite-forming cements, the cell-mediated Ca2+ release originated from the precipitates resorbed by macrophages on the cements and/or giant cells on the well plates. KW - Knochenzement KW - Osteoklast KW - Struvit KW - Calciumphosphat KW - Magnesiumphosphate KW - Newberyit KW - Calciummagnesiumphosphat KW - Bioresorption KW - 3D Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-322248 ER - TY - JOUR A1 - Janzen, Dieter A1 - Bakirci, Ezgi A1 - Faber, Jessica A1 - Andrade Mier, Mateo A1 - Hauptstein, Julia A1 - Pal, Arindam A1 - Forster, Leonard A1 - Hazur, Jonas A1 - Boccaccini, Aldo R. A1 - Detsch, Rainer A1 - Teßmar, Jörg A1 - Budday, Silvia A1 - Blunk, Torsten A1 - Dalton, Paul D. A1 - Villmann, Carmen T1 - Reinforced Hyaluronic Acid-Based Matrices Promote 3D Neuronal Network Formation JF - Advanced Healthcare Materials N2 - 3D neuronal cultures attempt to better replicate the in vivo environment to study neurological/neurodegenerative diseases compared to 2D models. A challenge to establish 3D neuron culture models is the low elastic modulus (30–500 Pa) of the native brain. Here, an ultra-soft matrix based on thiolated hyaluronic acid (HA-SH) reinforced with a microfiber frame is formulated and used. Hyaluronic acid represents an essential component of the brain extracellular matrix (ECM). Box-shaped frames with a microfiber spacing of 200 µm composed of 10-layers of poly(ɛ-caprolactone) (PCL) microfibers (9.7 ± 0.2 µm) made via melt electrowriting (MEW) are used to reinforce the HA-SH matrix which has an elastic modulus of 95 Pa. The neuronal viability is low in pure HA-SH matrix, however, when astrocytes are pre-seeded below this reinforced construct, they significantly support neuronal survival, network formation quantified by neurite length, and neuronal firing shown by Ca\(^{2+}\) imaging. The astrocyte-seeded HA-SH matrix is able to match the neuronal viability to the level of Matrigel, a gold standard matrix for neuronal culture for over two decades. Thus, this 3D MEW frame reinforced HA-SH composite with neurons and astrocytes constitutes a reliable and reproducible system to further study brain diseases. KW - 3D model systems KW - melt electrowriting KW - cortical neurons KW - astrocytes KW - Ca\(^{2+}\)-Imaging KW - hyaluronic acid Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318682 VL - 11 IS - 21 ER - TY - JOUR A1 - Lamberger, Zan A1 - Zainuddin, Shakir A1 - Scheibel, Thomas A1 - Lang, Gregor T1 - Polymeric Janus Fibers JF - ChemPlusChem N2 - Janus fibers are a class of composite materials comprising mechanical and chemical to biological functionality. Combining different materials and functionalities in one micro- or even nanoscale fiber enables otherwise unreachable synergistic physicochemical effects with unprecedented opportunities for technical or biomedical applications. Here, recent developments of processing technologies and applications of polymeric Janus fibers will be reviewed. Various examples in the fields of textiles, catalysis, sensors as well as medical applications, like drug delivery systems, tissue engineering and antimicrobial materials, are presented to illuminate the outstanding potential of such high-end functional materials for novel applications in the upcoming future. KW - hybrid materials KW - polymers KW - nanofibers KW - spinning KW - Janus fibers Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318516 VL - 88 IS - 2 ER - TY - JOUR A1 - Kade, Juliane C. A1 - Bakirci, Ezgi A1 - Tandon, Biranche A1 - Gorgol, Danila A1 - Mrlik, Miroslav A1 - Luxenhofer, Robert A1 - Dalton, Paul D. T1 - The Impact of Including Carbonyl Iron Particles on the Melt Electrowriting Process JF - Macromolecular Materials and Engineering N2 - Melt electrowriting, a high-resolution additive manufacturing technique, is used in this study to process a magnetic polymer-based blend for the first time. Carbonyl iron (CI) particles homogenously distribute into poly(vinylidene fluoride) (PVDF) melts to result in well-defined, highly porous structures or scaffolds comprised of fibers ranging from 30 to 50 µm in diameter. This study observes that CI particle incorporation is possible up to 30 wt% without nozzle clogging, albeit that the highest concentration results in heterogeneous fiber morphologies. In contrast, the direct writing of homogeneous PVDF fibers with up to 15 wt% CI is possible. The fibers can be readily displaced using magnets at concentrations of 1 wt% and above. Combined with good viability of L929 CC1 cells using Live/Dead imaging on scaffolds for all CI concentrations indicates that these formulations have potential for the usage in stimuli-responsive applications such as 4D printing. KW - additive manufacturing KW - melt electrospinning writing KW - magnetoactive materials KW - electroactive polymers Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318482 SN - 1438-7492 VL - 307 IS - 12 ER - TY - JOUR A1 - Ryma, Matthias A1 - Genç, Hatice A1 - Nadernezhad, Ali A1 - Paulus, Ilona A1 - Schneidereit, Dominik A1 - Friedrich, Oliver A1 - Andelovic, Kristina A1 - Lyer, Stefan A1 - Alexiou, Christoph A1 - Cicha, Iwona A1 - Groll, Jürgen T1 - A Print-and-Fuse Strategy for Sacrificial Filaments Enables Biomimetically Structured Perfusable Microvascular Networks with Functional Endothelium Inside 3D Hydrogels JF - Advanced Materials N2 - A facile and flexible approach for the integration of biomimetically branched microvasculature within bulk hydrogels is presented. For this, sacrificial scaffolds of thermoresponsive poly(2-cyclopropyl-2-oxazoline) (PcycloPrOx) are created using melt electrowriting (MEW) in an optimized and predictable way and subsequently placed into a customized bioreactor system, which is then filled with a hydrogel precursor solution. The aqueous environment above the lower critical solution temperature (LCST) of PcycloPrOx at 25 °C swells the polymer without dissolving it, resulting in fusion of filaments that are deposited onto each other (print-and-fuse approach). Accordingly, an adequate printing pathway design results in generating physiological-like branchings and channel volumes that approximate Murray's law in the geometrical ratio between parent and daughter vessels. After gel formation, a temperature decrease below the LCST produces interconnected microchannels with distinct inlet and outlet regions. Initial placement of the sacrificial scaffolds in the bioreactors in a pre-defined manner directly yields perfusable structures via leakage-free fluid connections in a reproducible one-step procedure. Using this approach, rapid formation of a tight and biologically functional endothelial layer, as assessed not only through fluorescent dye diffusion, but also by tumor necrosis factor alpha (TNF-α) stimulation, is obtained within three days. KW - hydrogels KW - microvasculature KW - melt electrowriting Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318532 VL - 34 IS - 28 ER - TY - JOUR A1 - Weigl, Franziska A1 - Blum, Carina A1 - Sancho, Ana A1 - Groll, Jürgen T1 - Correlative Analysis of Intra– Versus Extracellular Cell Detachment Events via the Alignment of Optical Imaging and Detachment Force Quantification JF - Advanced Materials Technologies N2 - In recent decades, hybrid characterization systems have become pillars in the study of cellular biomechanics. Especially, Atomic Force Microscopy (AFM) is combined with a variety of optical microscopy techniques to discover new aspects of cell adhesion. AFM, however, is limited to the early-stage of cell adhesion, so that the forces of mature cell contacts cannot be addressed. Even though the invention of Fluidic Force Microscopy (FluidFM) overcomes these limitations by combining the precise force-control of AFM with microfluidics, the correlative investigation of detachment forces arising from spread mammalian cells has been barely achieved. Here, a novel multifunctional device integrating Fluorescence Microscopy (FL) into FluidFM technology (FL-FluidFM) is introduced, enabling real-time optical tracking of entire cell detachment processes in parallel to the undisturbed acquisition of force-distance curves. This setup, thus, allows for entailing two pieces of information at once. As proof-of-principle experiment, this method is applied to fluorescently labeled rat embryonic fibroblast (REF52) cells, demonstrating a precise matching between identified force-jumps and visualized cellular unbinding steps. This study, thus, presents a novel characterization tool for the correlated evaluation of mature cell adhesion, which has great relevance, for instance, in the development of biomaterials or the fight against diseases such as cancer. KW - Fluorescence Microscopy KW - FluidFM technology KW - detachment force quantification Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318544 SN - 2365-709X VL - 7 IS - 11 ER - TY - JOUR A1 - Pien, Nele A1 - Bartolf–Kopp, Michael A1 - Parmentier, Laurens A1 - Delaey, Jasper A1 - de Vos, Lobke A1 - Mantovani, Diego A1 - van Vlierberghe, Sandra A1 - Dubruel, Peter A1 - Jungst, Tomasz T1 - Melt Electrowriting of a Photo–Crosslinkable Poly(ε–caprolactone)–Based Material into Tubular Constructs with Predefined Architecture and Tunable Mechanical Properties JF - Macromolecular Materials and Engineering N2 - Melt electrowriting (MEW) is an additive manufacturing process that produces highly defined constructs with elements in the micrometer range. A specific configuration of MEW enables printing tubular constructs to create small-diameter tubular structures. The small pool of processable materials poses a bottleneck for wider application in biomedicine. To alleviate this obstacle, an acrylate-endcapped urethane-based polymer (AUP), using a poly(ε-caprolactone) (PCL) (molar mass: 20 000 g mol\(^{−1}\)) (AUP PCL20k) as backbone material, is synthesized and utilized for MEW. Spectroscopic analysis confirms the successful modification of the PCL backbone with photo-crosslinkable acrylate endgroups. Printing experiments of AUP PCL20k reveal limited printability but the photo-crosslinking ability is preserved post-printing. To improve printability and to tune the mechanical properties of printed constructs, the AUP-material is blended with commercially available PCL (AUP PCL20k:PCL in ratios 80:20, 60:40, 50:50). Print fidelity improves for 60:40 and 50:50 blends. Blending enables modification of the constructs' mechanical properties to approximate the range of blood vessels for transplantation surgeries. The crosslinking-ability of the material allows pure AUP to be manipulated post-printing and illustrates significant differences in mechanical properties of 80:20 blends after crosslinking. An in vitro cell compatibility assay using human umbilical vein endothelial cells also demonstrates the material's non-cytotoxicity. KW - acrylate-endcapped urethane-based polymer (AUP) KW - tubular constructs KW - physicochemical characterization KW - photo-crosslinking KW - melt electrowriting (MEW) Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318524 SN - 1438-7492 VL - 307 IS - 7 ER - TY - JOUR A1 - Haag, Hannah A1 - Sonnleitner, David A1 - Lang, Gregor A1 - Dalton, Paul D. T1 - Melt electrowriting to produce microfiber fragments JF - Polymers for Advanced Technologies KW - melt electrowriting KW - medical-grade poly(ε-caprolactone) KW - fiber Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318465 SN - 1042-7147 VL - 33 IS - 6 SP - 1989 EP - 1992 ER - TY - JOUR A1 - Böhm, Christoph A1 - Tandon, Biranche A1 - Hrynevich, Andrei A1 - Teßmar, Jörg A1 - Dalton, Paul D. T1 - Processing of Poly(lactic–co–glycolic acid) Microfibers via Melt Electrowriting JF - Macromolecular Chemistry and Physics N2 - Polymers sensitive to thermal degradation include poly(lactic-co-glycolic acid) (PLGA), which is not yet processed via melt electrowriting (MEW). After an initial period of instability where mean fiber diameters increase from 20.56 to 27.37 µm in 3.5 h, processing stabilizes through to 24 h. The jet speed, determined using critical translation speed measurements, also reduces slightly in this 3.5 h period from 500 to 433 mm min\(^{−1}\) but generally remains constant. Acetyl triethyl citrate (ATEC) as an additive decreases the glass transition temperature of PLGA from 49 to 4 °C, and the printed ATEC/PLGA fibers exhibits elastomeric behavior upon handling. Fiber bundles tested in cyclic mechanical testing display increased elasticity with increasing ATEC concentration. The processing temperature of PLGA also reduces from 165 to 143 °C with increase in ATEC concentration. This initial window of unstable direct writing seen with neat PLGA can also be impacted through the addition of 10-wt% ATEC, producing fiber diameters of 14.13 ± 1.69 µm for the first 3.5 h of heating. The investigation shows that the initial changes to the PLGA direct-writing outcomes seen in the first 3.5 h are temporary and that longer times result in a more stable MEW process. KW - poly(lactide-co-glycolide) KW - 3D printing KW - additive manufacturing KW - electrohydrodynamics KW - melt electrospinning writing KW - plasticizers Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318444 VL - 223 IS - 5 ER - TY - JOUR A1 - Kade, Juliane C. A1 - Otto, Paul F. A1 - Luxenhofer, Robert A1 - Dalton, Paul D. T1 - Melt electrowriting of poly(vinylidene difluoride) using a heated collector JF - Polymers for Advanced Technologies N2 - Previous research on the melt electrowriting (MEW) of poly(vinylidene difluoride) (PVDF) resulted in electroactive fibers, however, printing more than five layers is challenging. Here, we investigate the influence of a heated collector to adjust the solidification rate of the PVDF jet so that it adheres sufficiently to each layer. A collector temperature of 110°C is required to improve fiber processing, resulting in a total of 20 fiber layers. For higher temperatures and higher layers, an interesting phenomenon occurred, where the intersection points of the fibers coalesced into periodic spheres of diameter 206 ± 52 μm (26G, 150°C collector temperature, 2000 mm/min, 10 layers in x- and y-direction).The heated collector is an important component of a MEW printer that allows polymers with a high melting point to be processable with increased layers. KW - additive manufacturing KW - polymer processing KW - melt electrowriting KW - electroactive Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318493 SN - 1042-7147 VL - 32 IS - 12 SP - 4951 EP - 4955 ER - TY - JOUR A1 - Brand, Jessica S. A1 - Forster, Leonard A1 - Böck, Thomas A1 - Stahlhut, Philipp A1 - Teßmar, Jörg A1 - Groll, Jürgen A1 - Albrecht, Krystyna T1 - Covalently Cross-Linked Pig Gastric Mucin Hydrogels Prepared by Radical-Based Chain-Growth and Thiol-ene Mechanisms JF - Macromolecular Bioscience N2 - Mucin, a high molecular mass hydrophilic glycoprotein, is the main component of mucus that coats every wet epithelium in animals. It is thus intrinsically biocompatible, and with its protein backbone and the o-glycosidic bound oligosaccharides, it contains a plethora of functional groups which can be used for further chemical modifications. Here, chain-growth and step-growth (thiol-ene) free-radical cross-linked hydrogels prepared from commercially available pig gastric mucin (PGM) are introduced and compared as cost-efficient and easily accessible alternative to the more broadly applied bovine submaxillary gland mucin. For this, PGM is functionalized with photoreactive acrylate groups or allyl ether moieties, respectively. Whereas homopolymerization of acrylate-functionalized polymers is performed, for thiol-ene cross-linking, the allyl-ether-functionalized PGM is cross-linked with thiol-functionalized hyaluronic acid. Morphology, mechanical properties, and cell compatibility of both kinds of PGM hydrogels are characterized and compared. Furthermore, the biocompatibility of these hydrogels can be evaluated in cell culture experiments. KW - click chemistry KW - photopolymerization KW - hydrogels KW - mucin KW - thiol-ene Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318453 VL - 22 IS - 4 ER - TY - THES A1 - Dahinten, Anna T1 - Baghdadit - Biozemente in der Anwendung als endodontischer Funktionswerkstoff T1 - Baghdadite - biocements in the application as endodontic functional material N2 - In kürzlich erschienenen Studien hat sich die Zementformulierung Baghdadit (Ca3ZrSi2O9) durch Eigenschaften wie eine hydraulische Aktivität, Röntgenopazität und bioaktive Wirkung als potenzielles Material für die endodontische Anwendung qualifiziert. Ziel dieser Studie war es, Baghdadit als einphasigen Biozement und in Form verschiedener Materialzusammensetzungen auf vorteilhafte Eigenschaften im Hinblick auf die Anwendung als endodontischen Funktionswerkstoff zu untersuchen. Nach eigenständiger Herstellung des mechanisch aktivierten Zementpulvers Ca3ZrSi2O9, erfolgte die Charakterisierung der verschiedenen Zementformulierungen maBag, Bag100Bru und Bag50Bru hinsichtlich der Injizierbarkeit, des pH-Verlaufs während der Abbindung, der Druckfestigkeit und Phasenzusammensetzung mittels XRD. Daneben wurde Baghdadit zu je drei verschiedenen Gewichtsanteilen als Füllstoff in eine Methacrylat-basierte Matrix integriert und hinsichtlich der Fließfähigkeit entsprechend der Norm DIN EN ISO 6876:2012, des qualitativen Polymerisationsgrads und der Druckfestigkeit geprüft. Mit einer Auswahl der oben genannten Materialien erfolgte die Untersuchung der antibakteriellen Wirksamkeit, der Röntgensichtbarkeit orientierend an der Norm DIN EN ISO 13116:2014 und der Dichtigkeit im Wurzelkanal. N2 - In recent studies, the cement formulation Baghdadite (Ca3ZrSi2O9) has been qualified as a potential material for endodontic application by properties such as a hydraulic activity, radiopacity and bioactive effect. The aim of this study was to investigate baghdadite as a single-phase biocement and in the form of different material compositions for advantageous properties with regard to its application as an endodontic filling material. After the production of the mechanically activated cement powder Ca3ZrSi2O9, the different cement formulations maBag, Bag100Bru and Bag50Bru were characterized with regard to injectability, pH curve during setting, compressive strength and phase composition carried out by XRD. In addition, baghdadite was integrated as filler into a methacrylate-based matrix in three different proportions by weight. These experimental sealers were tested with regard to flowability according to DIN EN ISO 6876:2012, the qualitative degree of polymerization and the compressive strength. With a selection of the above-mentioned materials the investigation of the antibacterial efficacy, the radiopacity based on the standard DIN EN ISO 13116:2014 and the sealing ability in bovine root canals were carried out. KW - Endodontie KW - Funktionswerkstoff KW - Baghdadit KW - Biozement KW - Zahnmedizin Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-319892 ER - TY - THES A1 - Holzmeister, Ib T1 - Branched silica precursors as additives for mineral bone cements T1 - Verzweigte Silica-Vorläufer als Additive für mineralische Knochenzemente N2 - Mineral biocements are brittle materials, which usually results in catastrophic failure during mechanical loading. Here, previous works demonstrated the feasibility of reducing brittleness by a dual-setting approach, in which a silica sol was simultaneously gelled during the setting of a brushite forming cement. The current thesis aimed at further improving this concept by both using a novel silicate based cement matrix for an enhanced bonding between cement and silica matrix as well as multifunctional silica precursors to increase the network density of the gel. Due to its well-known biocompatibility and osteogenic regeneration capacity, baghdadite was chosen as mineral component of such composites. This required in a first approach the conversion of baghdadite ceramics into self-setting cement formulations. This was investigated initially by using baghdadite as reactive filler in a brushite forming cement (Chapter 4). Here, the ß-TCP component in a equimolar mixture of ß-TCP and acidic monocalcium phosphate anhydrous was subsequently replaced by baghdadite at various concentrations (0, 5, 10, 20, 30, 50, and 100 wt%) to study the influence on physicochemical cement properties such as mechanical performance, radiopacity, phase composition and microstructure. X-ray diffraction profiles demonstrated the dissolution of baghdadite during the cement reaction without affecting the crystal structure of the precipitated brushite phase. In addition, EDX analysis showed that calcium is homogeneously distributed in the cement matrix, while zirconium and silicon form cluster-like aggregates ranging in size from a few micrometers to more than 50 µm. X-ray images and µ-CT analyses indicate improved X-ray visibility with increased incorporation of baghdadite in brushite cement, with an aluminum equivalent thickness nearly doubling at a baghdadite content of 50 wt%. At the same time, the compressive strength of brushite cement increased from 12.9 ± 3.1 MPa to 21.1 ± 4.1 MPa at a baghdadite content of 10 wt%. Cell culture medium conditioned with powdered brushite cement approached physiological pH values when increasing amounts of baghdadite were added to the cement (pH = 6.47 for pure brushite, pH = 7.02 for brushite with 20 wt% baghdadite substitution). Baghdadite substitution also affected the ion content in the culture medium and thus the proliferation activity of primary human osteoblasts in vitro. The results demonstrated for the first time the suitability of baghdadite as a reactive cement additive for improving the radiopacity, mechanical performance, and cytocompatibility of brushite cements. A second approach (Chapter 5) aimed to produce single component baghdadite cements by an increase of baghdadite solubility to initiate a self-setting cement reaction. For this, the material was mechanically activated by longer grinding times of up to 24h leading to both a decrease in particle and crystallite size as well as a partial amorphization of baghdadite. Baghdadite cements were formed by adding water at a powder to liquid ratio of 2.0 g/ml. Maximum compressive strengths were determined to be ~2 MPa after 3 days of setting for a 24-hour ground material. Inductively coupled plasma mass spectrometry (ICP-MS) measurements showed an incongruent dissolution profile of the set cements, with preferential dissolution of calcium and only minor release of zirconium ions. Cement formation occurs under alkaline conditions, with the unground raw powder resulting in a pH of 11.9 during setting, while prolonged grinding increases the pH to about 12.3. Finally, mechanically activated baghdadite cements were combined with inorganic silica networks (Chapter 6) to create dual-setting cements with a further improvement of mechanical performance. While a modification of the cement pastes with a TEOS derived sol was already thought to improve strength, it was hypothesized that using multi-arm silica precursors can further enhance their mechanical performance due to a higher network density. In addition, this should also reduce pore size of both gels and cement and hence will be able to adjust the release kinetics of incorporated drugs. For this, multi-armed silica precursors were synthesized by the reaction of various multivalent alcohols (ethylene glycol, glycerine, pentaerythrit) with an isocyanate modified silica precursor. After hydrolysis under acidic conditions, the sols were mixed with baghdadite cement powders in order to allow a simultaneous gel formation and cement setting. Since the silica monomers have a high degree of linkage sites, this resulted in a branched network that interpenetrated with the growing cement crystals. In addition to minor changes in the crystalline phase composition as determined by X-ray diffraction, the novel composites exhibited improved mechanical properties with up to 20 times higher compressive strength and further benefit from an about 50% lower overall porosity than the reference pure baghdadite cement. In addition, the initial burst release of the model drug vancomycin was completely inhibited by the added silica matrix. This observation was verified by testing for the antimicrobial activity with Staphylococcus aureus by measuring the inhibition zones of selected samples after 24 h and 48 h, whereas the antimicrobial effectiveness of a constant vancomycin release could be demonstrated. The current thesis clearly demonstrated the high potential of baghdadite as a cement formulation for medical application. The initially poor mechanical properties of such cements can be overcome by special processing techniques or by combination with silica networks. The achieved mechanical performance is > 10 MPa and hence suitable for bone replacement under non-load bearing conditions. The high intrinsic radiopacity as well as the alkaline pH during setting may open the way ahead to further dental applications, e.g. as root canal sealers or filler in dental composites. Here, the high pH is thought to lead to antimicrobial properties of such materials similar to commonly applied calcium hydroxide or calcium silicates, however combined with an intrinsic radiopacity for X-ray imaging. This would simplify such formulations to single component materials which are less susceptible to demixing processes during transport, storage or processing. N2 - Mineralische Biozemente sind spröde Materialien, die bei mechanischer Belastung in der Regel ein katastrophales Versagen zeigen. In früheren Arbeiten konnte die Sprödigkeit durch einen dual-härtenden Materialansatz verringert werden, bei dem ein dem Zement zugesetztes Kieselsol während des Aushärtens eines Bruschit-bildenden Zements simultan geliert und so die Matrix verstärkt. Die vorliegende Arbeit zielte darauf ab, dieses Konzept weiter zu verbessern, indem sowohl eine neuartige Zementmatrix auf Silikatbasis für eine verbesserte Bindung zwischen Zement und Kieselsäurematrix als auch multifunktionale Kieselsäure Precursoren zur Erhöhung der Netzwerkdichte des Gels verwendet wurden. Aufgrund der nachgewiesenen Biokompatibilität und osteogenen Regenerationsfähigkeit wurde Baghdadit als mineralischer Bestandteil solcher Komposite gewählt. Dies erforderte in einem ersten Ansatz die Umwandlung von Baghdadit-Keramik in selbsthärtende Zementformulierungen. Dies wurde zunächst durch die Verwendung von Baghdadit als reaktiver Füllstoff in einem Bruschit-bildenden Zement untersucht (Kapitel 4). Dabei wurde die β-TCP-Komponente in einem äquimolaren Gemisch aus β-TCP und saurem Monocalciumphosphat sukzessive durch Baghdadit in verschiedenen Konzentrationen (0, 5, 10, 20, 30, 50 und 100 Gew.-%) ersetzt, um den Einfluss auf die physikalisch-chemischen Zementeigenschaften, wie mechanische Festigkeit, Röntgenopazität, Phasenzusammensetzung und Mikrostruktur zu untersuchen. Röntgenbeugungsprofile zeigten die Auflösung von Baghdadit während der Zementreaktion, ohne die Kristallstruktur der ausgefällten Bruschitphase zu beeinträchtigen. Darüber hinaus zeigte die EDX-Analyse, dass Calcium homogen in der Zementmatrix verteilt ist, während Zirkon und Silizium clusterartige Aggregate mit einer Größe von einigen Mikrometern bis zu mehr als 50 µm bilden. Röntgenbilder und µ-CT-Analysen zeigen eine verbesserte Röntgensichtbarkeit bei erhöhtem Baghdadit-Anteil im Bruschit-Zement, wobei sich die Aluminium-Äquivalentdicke bei einem Baghdadit-Gehalt von 50 Gew.-% nahezu verdoppelt. Gleichzeitig stieg die Druckfestigkeit von Bruschitzement von 12,9 ± 3,1 MPa auf 21,1 ± 4,1 MPa bei einem Baghdaditgehalt von 10 Gew.-%. Zellkulturmedium, das mit pulverförmigem Bruschitzement konditioniert wurde, näherte sich physiologischen pH-Werten an, wenn dem Zement steigende Mengen an Baghdadit zugesetzt wurden (pH = 6,47 für reinen Bruschitzement, pH = 7,02 für Bruschitzement mit 20 Gew.-% Baghdadit-Substitution). Die Baghdadit-Substitution wirkte sich auch auf den Ionengehalt im Kulturmedium und damit auf die Proliferationsaktivität von primären menschlichen Osteoblasten in vitro aus. Die Ergebnisse zeigten zum ersten Mal die Eignung von Baghdadit als reaktives Zementadditiv zur Verbesserung der Röntgenopazität, der mechanischen Eigenschaften und der Zytokompatibilität von Bruschitzementen. Ein zweiter Ansatz (Kapitel 5) zielte auf die Herstellung einkomponentiger Baghdadit-Zemente durch eine Erhöhung der Baghdadit-Löslichkeit ab, um eine Zementreaktion zu initiieren. Dazu wurde das Material durch längere Mahlung von bis zu 24 Stunden mechanisch aktiviert, was sowohl zu einer Abnahme der Partikel- und Kristallitgröße, als auch zu einer teilweisen Amorphisierung von Baghdadit führte. Baghdadit-Zemente wurden durch Zugabe von Wasser bei einem Verhältnis von Pulver zu Flüssigkeit von 2,0 g/ml erhalten. Die maximalen Druckfestigkeiten wurden mit ~2 MPa nach 3 Tagen Aushärtung für ein 24 Stunden gemahlenes Material ermittelt. Massenspektrometrische Messungen mit induktiv gekoppeltem Plasma (ICP-MS) ergaben ein inkongruentes Auflösungsprofil der abgebundenen Zemente mit einer bevorzugten Auflösung von Calcium und einer nur geringen Freisetzung von Zirkonium-Ionen. Die Zementbildung erfolgt unter alkalischen Bedingungen, wobei das ungemahlene Rohpulver während des Abbindens einen pH-Wert von 11.9 aufweist, während ein längeres Mahlen den pH-Wert auf etwa 12.3 erhöht. Abschließend wurden mechanisch aktivierte Baghdadit-Zemente mit anorganischen Silica-Netzwerken kombiniert (Kapitel 6), um dual härtende Zemente mit einer weiteren Verbesserung der mechanischen Eigenschaften zu erhalten. Während eine Modifikation der Zementpasten mit einem TEOS-abgeleiteten Sol bereits die Festigkeit verbessern sollte, wurde angenommen, dass die Verwendung von mehrarmigen Kieselsäure-Precursoren die mechanische Festigkeit aufgrund einer höheren Netzwerkdichte weiter verbessern kann. Darüber hinaus sollte sich auch die Porengröße von Gelen und Zement verringern, so dass die Freisetzungskinetik von inkorporierten Wirkstoffen angepasst werden kann. Zu diesem Zweck wurden mehrarmige Kieselsäure-Precursoren durch die Reaktion verschiedener mehrwertiger Alkohole (Ethylenglykol, Glycerin, Pentaerythrit) mit einem isocyanatmodifizierten Kieselsäure-Precursor synthetisiert. Nach der Hydrolyse unter sauren Bedingungen wurden die Sole mit Baghdadit-Zementpulvern gemischt, um eine gleichzeitige Gelbildung und Zementabbindung zu ermöglichen. Da die Kieselsäuremonomere einen hohen Grad an Verknüpfungsstellen aufweisen, führte dies zu einem verzweigten Netzwerk, das die ausfallenden Zementkristalle durchdrang. Neben geringfügigen Veränderungen in der Zusammensetzung der durch Röntgenbeugung bestimmten kristallinen Phasen, wiesen die neuartigen Komposite verbesserte mechanische Eigenschaften mit einer bis zu 20-fach höheren Druckfestigkeit auf und profitierten außerdem von einer um etwa 50 % geringeren Gesamtporosität als der reine Baghdadit-Referenzzement. Darüber hinaus wurde die anfängliche starke Freisetzung („burst release“) des Modellwirkstoffs Vancomycin durch die zugesetzte Silica-Matrix vollständig gehemmt. Diese Beobachtung wurde durch Prüfung der antimikrobiellen Aktivität mit Staphylococcus aureus durch Messung des Hemmhofs im Agar-Diffusionstest ausgewählter Proben nach 24 h und 48 h verifiziert, wobei die antimikrobielle Wirksamkeit einer konstanten Vancomycin-Freisetzung nachgewiesen werden konnte. Die vorliegende Arbeit zeigte deutlich das hohe Potenzial von Baghdadit Zementformulierungen für medizinische Anwendungen. Die anfänglich schlechten mechanischen Eigenschaften solcher Zemente können durch spezielle Verarbeitungstechniken oder durch die Kombination mit Silicanetzwerken überwunden werden. Die erzielten mechanischen Eigenschaften liegen bei > 10 MPa und die Materialien eignen sich daher für den Knochenersatz unter nicht-lasttragenden Bedingungen. Die hohe intrinsische Röntgenopazität sowie der alkalische pH-Wert während der Aushärtung könnten den Weg für weitere dentale Anwendungen öffnen, z. B. als Wurzelkanal-Zemente oder Füllstoff in Dentalkompositen. Hier ist davon auszugehen, dass der hohe pH-Wert zu antimikrobiellen Eigenschaften solcher Materialien führt, ähnlich wie bei den üblicherweise verwendeten Calciumhydroxiden oder Calciumsilikaten, jedoch in Kombination mit einer intrinsischen Röntgenopazität. Dies würde solche Formulierungen zu einkomponentigen Systemen vereinfachen, die weniger anfällig für Entmischungsprozesse während Transport, Lagerung oder Verarbeitung sind. KW - Zement KW - Sol-gel KW - Baghdadite KW - Cement KW - Silica precursor KW - Dual-setting Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-275044 ER - TY - JOUR A1 - Bothe, Friederike A1 - Deubel, Anne-Kathrin A1 - Hesse, Eliane A1 - Lotz, Benedict A1 - Groll, Jürgen A1 - Werner, Carsten A1 - Richter, Wiltrud A1 - Hagmann, Sebastien T1 - Treatment of focal cartilage defects in minipigs with zonal chondrocyte/mesenchymal progenitor cell constructs JF - International Journal of Molecular Sciences N2 - Despite advances in cartilage repair strategies, treatment of focal chondral lesions remains an important challenge to prevent osteoarthritis. Articular cartilage is organized into several layers and lack of zonal organization of current grafts is held responsible for insufficient biomechanical and biochemical quality of repair-tissue. The aim was to develop a zonal approach for cartilage regeneration to determine whether the outcome can be improved compared to a non-zonal strategy. Hydrogel-filled polycaprolactone (PCL)-constructs with a chondrocyte-seeded upper-layer deemed to induce hyaline cartilage and a mesenchymal stromal cell (MSC)-containing bottom-layer deemed to induce calcified cartilage were compared to chondrocyte-based non-zonal grafts in a minipig model. Grafts showed comparable hardness at implantation and did not cause visible signs of inflammation. After 6 months, X-ray microtomography (µCT)-analysis revealed significant bone-loss in both treatment groups compared to empty controls. PCL-enforcement and some hydrogel-remnants were retained in all defects, but most implants were pressed into the subchondral bone. Despite important heterogeneities, both treatments reached a significantly lower modified O’Driscoll-score compared to empty controls. Thus, PCL may have induced bone-erosion during joint loading and misplacement of grafts in vivo precluding adequate permanent orientation of zones compared to surrounding native cartilage. KW - cartilage repair KW - osteochondral defect KW - tissue engineering KW - starPEG hydrogel KW - chondrocyte KW - MSC KW - zonal construct KW - minipig Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-285118 SN - 1422-0067 VL - 20 IS - 3 ER - TY - JOUR A1 - An, Ran A1 - Strissel, Pamela L. A1 - Al-Abboodi, Majida A1 - Robering, Jan W. A1 - Supachai, Reakasame A1 - Eckstein, Markus A1 - Peddi, Ajay A1 - Hauck, Theresa A1 - Bäuerle, Tobias A1 - Boccaccini, Aldo R. A1 - Youssef, Almoatazbellah A1 - Sun, Jiaming A1 - Strick, Reiner A1 - Horch, Raymund E. A1 - Boos, Anja M. A1 - Kengelbach-Weigand, Annika T1 - An innovative arteriovenous (AV) loop breast cancer model tailored for cancer research JF - Bioengineering N2 - Animal models are important tools to investigate the pathogenesis and develop treatment strategies for breast cancer in humans. In this study, we developed a new three-dimensional in vivo arteriovenous loop model of human breast cancer with the aid of biodegradable materials, including fibrin, alginate, and polycaprolactone. We examined the in vivo effects of various matrices on the growth of breast cancer cells by imaging and immunohistochemistry evaluation. Our findings clearly demonstrate that vascularized breast cancer microtissues could be engineered and recapitulate the in vivo situation and tumor-stromal interaction within an isolated environment in an in vivo organism. Alginate–fibrin hybrid matrices were considered as a highly powerful material for breast tumor engineering based on its stability and biocompatibility. We propose that the novel tumor model may not only serve as an invaluable platform for analyzing and understanding the molecular mechanisms and pattern of oncologic diseases, but also be tailored for individual therapy via transplantation of breast cancer patient-derived tumors. KW - arteriovenous loop KW - breast cancer KW - animal model Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-278919 SN - 2306-5354 VL - 9 IS - 7 ER - TY - JOUR A1 - Karakaya, Emine A1 - Bider, Faina A1 - Frank, Andreas A1 - Teßmar, Jörg A1 - Schöbel, Lisa A1 - Forster, Leonard A1 - Schrüfer, Stefan A1 - Schmidt, Hans-Werner A1 - Schubert, Dirk Wolfram A1 - Blaeser, Andreas A1 - Boccaccini, Aldo R. A1 - Detsch, Rainer T1 - Targeted printing of cells: evaluation of ADA-PEG bioinks for drop on demand approaches JF - Gels N2 - A novel approach, in the context of bioprinting, is the targeted printing of a defined number of cells at desired positions in predefined locations, which thereby opens up new perspectives for life science engineering. One major challenge in this application is to realize the targeted printing of cells onto a gel substrate with high cell survival rates in advanced bioinks. For this purpose, different alginate-dialdehyde—polyethylene glycol (ADA-PEG) inks with different PEG modifications and chain lengths (1–8 kDa) were characterized to evaluate their application as bioinks for drop on demand (DoD) printing. The biochemical properties of the inks, printing process, NIH/3T3 fibroblast cell distribution within a droplet and shear forces during printing were analyzed. Finally, different hydrogels were evaluated as a printing substrate. By analysing different PEG chain lengths with covalently crosslinked and non-crosslinked ADA-PEG inks, it was shown that the influence of Schiff's bases on the viscosity of the corresponding materials is very low. Furthermore, it was shown that longer polymer chains resulted in less stable hydrogels, leading to fast degradation rates. Several bioinks highly exhibit biocompatibility, while the calculated nozzle shear stress increased from approx. 1.3 and 2.3 kPa. Moreover, we determined the number of cells for printed droplets depending on the initial cell concentration, which is crucially needed for targeted cell printing approaches. KW - bioprinting KW - drop on demand KW - sodium alginate KW - polyethylene glycol KW - shear stress Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-267317 SN - 2310-2861 VL - 8 IS - 4 ER - TY - JOUR A1 - Wieland, Annalena A1 - Strissel, Pamela L. A1 - Schorle, Hannah A1 - Bakirci, Ezgi A1 - Janzen, Dieter A1 - Beckmann, Matthias W. A1 - Eckstein, Markus A1 - Dalton, Paul D. A1 - Strick, Reiner T1 - Brain and breast cancer cells with PTEN loss of function reveal enhanced durotaxis and RHOB dependent amoeboid migration utilizing 3D scaffolds and aligned microfiber tracts JF - Cancers N2 - Background: Glioblastoma multiforme (GBM) and metastatic triple-negative breast cancer (TNBC) with PTEN mutations often lead to brain dissemination with poor patient outcome, thus new therapeutic targets are needed. To understand signaling, controlling the dynamics and mechanics of brain tumor cell migration, we implemented GBM and TNBC cell lines and designed 3D aligned microfibers and scaffolds mimicking brain structures. Methods: 3D microfibers and scaffolds were printed using melt electrowriting. GBM and TNBC cell lines with opposing PTEN genotypes were analyzed with RHO-ROCK-PTEN inhibitors and PTEN rescue using live-cell imaging. RNA-sequencing and qPCR of tumor cells in 3D with microfibers were performed, while scanning electron microscopy and confocal microscopy addressed cell morphology. Results: In contrast to the PTEN wildtype, GBM and TNBC cells with PTEN loss of function yielded enhanced durotaxis, topotaxis, adhesion, amoeboid migration on 3D microfibers and significant high RHOB expression. Functional studies concerning RHOB-ROCK-PTEN signaling confirmed the essential role for the above cellular processes. Conclusions: This study demonstrates a significant role of the PTEN genotype and RHOB expression for durotaxis, adhesion and migration dependent on 3D. GBM and TNBC cells with PTEN loss of function have an affinity for stiff brain structures promoting metastasis. 3D microfibers represent an important tool to model brain metastasizing tumor cells, where RHO-inhibitors could play an essential role for improved therapy. KW - 3D tumor model KW - 3D microfiber KW - amoeboid cell migration KW - brain cancer KW - breast cancer KW - PTEN KW - RHO KW - ROCK KW - durotaxis KW - topotaxis Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-248443 SN - 2072-6694 VL - 13 IS - 20 ER - TY - JOUR A1 - Haider, Malik Salman A1 - Ahmad, Taufiq A1 - Yang, Mengshi A1 - Hu, Chen A1 - Hahn, Lukas A1 - Stahlhut, Philipp A1 - Groll, Jürgen A1 - Luxenhofer, Robert T1 - Tuning the thermogelation and rheology of poly(2-oxazoline)/poly(2-oxazine)s based thermosensitive hydrogels for 3D bioprinting JF - Gels N2 - As one kind of “smart” material, thermogelling polymers find applications in biofabrication, drug delivery and regenerative medicine. In this work, we report a thermosensitive poly(2-oxazoline)/poly(2-oxazine) based diblock copolymer comprising thermosensitive/moderately hydrophobic poly(2-N-propyl-2-oxazine) (pPrOzi) and thermosensitive/moderately hydrophilic poly(2-ethyl-2-oxazoline) (pEtOx). Hydrogels were only formed when block length exceeded certain length (≈100 repeat units). The tube inversion and rheological tests showed that the material has then a reversible sol-gel transition above 25 wt.% concentration. Rheological tests further revealed a gel strength around 3 kPa, high shear thinning property and rapid shear recovery after stress, which are highly desirable properties for extrusion based three-dimensional (3D) (bio) printing. Attributed to the rheology profile, well resolved printability and high stackability (with added laponite) was also possible. (Cryo) scanning electron microscopy exhibited a highly porous, interconnected, 3D network. The sol-state at lower temperatures (in ice bath) facilitated the homogeneous distribution of (fluorescently labelled) human adipose derived stem cells (hADSCs) in the hydrogel matrix. Post-printing live/dead assays revealed that the hADSCs encapsulated within the hydrogel remained viable (≈97%). This thermoreversible and (bio) printable hydrogel demonstrated promising properties for use in tissue engineering applications. KW - poly(2-ethyl-2-oxazoline) KW - shear thinning KW - shape fidelity KW - cyto-compatibility KW - bio-printability Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-241781 SN - 2310-2861 VL - 7 IS - 3 ER - TY - JOUR A1 - Schmid, Rafael A1 - Schmidt, Sonja K. A1 - Hazur, Jonas A1 - Detsch, Rainer A1 - Maurer, Evelyn A1 - Boccaccini, Aldo R. A1 - Hauptstein, Julia A1 - Teßmar, Jörg A1 - Blunk, Torsten A1 - Schrüfer, Stefan A1 - Schubert, Dirk W. A1 - Horch, Raymund E. A1 - Bosserhoff, Anja K. A1 - Arkudas, Andreas A1 - Kengelbach-Weigand, Annika T1 - Comparison of hydrogels for the development of well-defined 3D cancer models of breast cancer and melanoma JF - Cancers N2 - Bioprinting offers the opportunity to fabricate precise 3D tumor models to study tumor pathophysiology and progression. However, the choice of the bioink used is important. In this study, cell behavior was studied in three mechanically and biologically different hydrogels (alginate, alginate dialdehyde crosslinked with gelatin (ADA–GEL), and thiol-modified hyaluronan (HA-SH crosslinked with PEGDA)) with cells from breast cancer (MDA-MB-231 and MCF-7) and melanoma (Mel Im and MV3), by analyzing survival, growth, and the amount of metabolically active, living cells via WST-8 labeling. Material characteristics were analyzed by dynamic mechanical analysis. Cell lines revealed significantly increased cell numbers in low-percentage alginate and HA-SH from day 1 to 14, while only Mel Im also revealed an increase in ADA–GEL. MCF-7 showed a preference for 1% alginate. Melanoma cells tended to proliferate better in ADA–GEL and HA-SH than mammary carcinoma cells. In 1% alginate, breast cancer cells showed equally good proliferation compared to melanoma cell lines. A smaller area was colonized in high-percentage alginate-based hydrogels. Moreover, 3% alginate was the stiffest material, and 2.5% ADA–GEL was the softest material. The other hydrogels were in the same range in between. Therefore, cellular responses were not only stiffness-dependent. With 1% alginate and HA-SH, we identified matrices that enable proliferation of all tested tumor cell lines while maintaining expected tumor heterogeneity. By adapting hydrogels, differences could be accentuated. This opens up the possibility of understanding and analyzing tumor heterogeneity by biofabrication. KW - breast cancer KW - melanoma KW - biofabrication KW - hydrogel KW - tumor heterogeneity Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-211195 SN - 2072-6694 VL - 12 IS - 8 ER - TY - THES A1 - Schaufler, Christian Thomas Siegfried T1 - Osteogenes Potential additiv gefertigter Calciummagnesiumphosphat-Keramiken T1 - Osteogenic potential of calciummagnesiumphosphate ceramics processed by additive manufacturing N2 - Der steigende Bedarf an Knochenersatzmaterialien (KEM) in Medizin und Zahnmedizin verdeutlicht die Notwendigkeit der Etablierung weiterer alloplastischer, also synthetisch hergestellter, KEMs. Additive Fertigung ermöglicht die Herstellung patientenspezifischer Implantate. Hierfür wird auf Basis von 3D Bildgebung eines Knochendefekts, ein Implantat mittels CAD geplant und anschließend mittels additiver Fertigung, zum Beispiel durch 3D Pulverdruck hergestellt. Ziel dieser Arbeit war die Untersuchung des osteogenen Potentials in vitro von Calciummagnesiumphosphatkeramiken mit der allgemeinen Strukturformel CaxMg(3-x)(PO4)2 mit x = 0; 0,25; 0,75; 1,5; 3 aus additiver Fertigung. Hierfür wurden Prüfkörper mittels 3D Pulverdruck gedruckt, anschließend durch Hochtemperatursinterung verfestigt und durch Behandlung mit reaktiven Lösungen nachgehärtet. Abhängig von der reaktiven Lösung wandelte sich die Keramik teilweise in Struvit, Bruschit und Newberyit um. Die biologische Testung in vitro erfolgte mit hFOB 1.19 Zellen und ergab eine gute Biokompatibilität sowie die Ausdifferenzierung osteogener Progenitorzellen für fast alle Keramikphasen, wobei die newberyithaltigen Keramiken tendenziell bessere Ergebnisse erzielten. N2 - The increasing demand of materials for bone grafting in medicine and dentistry highlights the need of synthetically made, alloplastic, materials for bone grafting. Additive manufacturing enables the production of patient-fitted implants. For this purpose, the implant is virtually planed based on a 3D image dataset, using the CAD technique and produced by additive manufacturing like 3D powder printing. The aim of this study was to investigate the osteogenic potential of calcium magnesium phosphate ceramics (CaxMg(3-x)(PO4)2 with x = 0; 0,25; 0,75; 1,5; 3) in vitro processed by 3D powder printing. Scaffolds were made by 3D powder printing, solidified by high temperature sintering and afterwards post treated with reactive solutions. The reactive solution caused the precipitation of either brushite, newberyite or struvite. The biological testing in vitro, using hFOB 1.19 cells, showed good cytocompatibility and differentiation of osteogenic cells for nearly all ceramics mentioned above. The ceramics containing newberyite achieved slightly better results at all. KW - Knochenzement KW - 3D-Druck KW - Tricalciumphosphatkeramik KW - Magnesiumphosphate KW - Struvit KW - Calciummagnesiumphosphat-Keramik KW - 3D Pulverdruck KW - Newberyit KW - Stanfieldit KW - Knochenersatzmaterial Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-311798 ER - TY - THES A1 - Kade, Juliane Carolin T1 - Expanding the Processability of Polymers for a High-Resolution 3D Printing Technology T1 - Erweiterung der Verarbeitbarkeit von Polymeren für eine hochauflösende 3D-Drucktechnologie N2 - This thesis identifies how the printing conditions for a high-resolution additive manufacturing technique, melt electrowriting (MEW), needs to be adjusted to process electroactive polymers (EAPs) into microfibers. Using EAPs based on poly(vinylidene difluoride) (PVDF), their ability to be MEW-processed is studied and expands the list of processable materials for this technology. N2 - Im Rahmen dieser Arbeit wird melt electrowriting (MEW), eine hochauflösende additive Fertigungstechnik, zur Herstellung von Polymerfasern im unteren Mikrometerbereich eingesetzt. Neue Materialien, hauptsächlich elektroaktive Polymere (EAPs) auf Basis von Poly(vinylidendifluorid) (PVDF), werden hinsichtlich ihrer Druckbarkeit untersucht, um die Liste der prozessierbaren Materialien für diese Technologie zu erweitern. KW - Polymere KW - Melt electrowriting KW - Biofabrication KW - 3D-Druck KW - 3D Printing KW - Polymers Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-270057 ER - TY - THES A1 - Böhm, Christoph T1 - Thermal Stability of the Polyesters PCL and PLGA during Melt Electrowriting T1 - Thermische Stabilität der Polyester PCL und PLGA während des Melt Electrowriting Prozesses N2 - The focus of this thesis was to investigate how PCL and PLGA react to the heat exposure that comes with the MEW process over a defined timespan. To assess the thermal stability of PCL during MEW over 25 d, an automated collection of fibers has been used to determine the CTS on each day of heating for three different temperatures. PCL is exceptionally stable over 25 d at 75 °C, whereas for 85 °C and 95 °C a slight upward trend during the last 10 d could be observed, which is an indication for thermal degradation. Same trend could be observed for diameter of fibers produced at a fixed collector speed. For all temperatures, CTS during the first 5 d decreased due to inhomogeneities of the melt. Physical analysis of the fibers by XRD and mechanical testing showed no significant changes. To investigate the chemical details of the thermal durability, PCL was artificially aged over 25 d at 75 °C, 85 °C and 95 °C. Data from GPC analysis and rheology revealed that PCL is degrading steadily at all three temperatures. Combined with GC-MS analysis, two different mechanisms for degradation could be observed: random chain scission and unzipping. Additional GPC experiment using a mixture of PCL and a fluorescence labelled PCL showed that PCL was undergoing ester interchange reactions, which could explain its thermal stability. PLGA was established successfully as material for MEW. GPC results revealed that PLGA degraded heavily in the one-hour preheating period. To reduce the processing temperature, ATEC was blended with PLGA in three mixtures. This slowed down degradation and a processing window of 6 h could be established. Mechanical testing with fibers produced with PLGA and all three blends was performed. PLGA was very brittle, whereas the blends showed an elastic behavior. This could be explained by ester interchange reactions that formed a loosely crosslinked network with ATEC. N2 - Ziel dieser Arbeit war, die Veränderung von PCL und PLGA während des MEW-Verfahrens bei bestimmten Temperaturen über einen definierten Zeitraum zu untersuchen. Für die Bewertung der thermischen Stabilität von PCL während des MEW-Prozesses über 25 d wurden Fasern in einem vorgegebenen Druckmuster gesammelt, um täglich die CTS für drei verschiedene Temperaturen zu bestimmen. Allgemein war PCL bei 75 °C über 25 d thermisch stabil. Allerdings nahm die CTS bei allen Temperaturen während der ersten 5 d aufgrund von Inhomogenitäten der Schmelze ab. Bei 85 °C und 95 °C wurde in den letzten 10 d ein leichter Anstieg der CTS beobachtet, was auf thermische Degradation hinweist. Dieser Anstieg war ebenfalls im Durchmesser der Fasern zu beobachten, die mit konstanter Kollektorgeschwindigkeit hergestellt wurden. Die physikalische Untersuchung der Fasern mittels XRD und mechanischer Tests ergab keine signifikanten Veränderungen. Um die Chemie der thermischen Beständigkeit zu untersuchen, wurde PCL über 25 d bei 75 °C, 85 °C und 95 °C künstlich gealtert. GPC- und rheologische Analysen zeigten, dass PCL bei allen Temperaturen stetig abbaut. Mit der GC-MS-Analyse konnten zwei Abbaumechanismen beobachtet werden: zufällige Kettenspaltung und Unzipping. GPC-Messungen mit einer Mischung aus PCL und einem fluoreszenzmarkierten PCL zeigten, dass es zu Esteraustauschreaktionen kommt, welche die thermische Stabilität erklären. PLGA wurde erfolgreich als Material für MEW etabliert. Die GPC-Daten zeigten, dass PLGA während der einstündigen Aufheizphase stark abgebaut wurde. Um die Verarbeitungstemperatur zu senken, wurden drei Mischungen mit verschiedenen Verhältnissen von PLGA und ATEC hergestellt. Dadurch verlangsamte sich der Abbau, wodurch ein Verarbeitungsfenster von 6 h erreicht wurde. Mechanische Tests zeigten für PLGA ein sprödes, für die Mischungen ein elastisches Verhalten. Dies kann durch Esteraustauschreaktionen mit ATEC erklärt werden, durch die ein Polymernetzwerk entstehen könnte. KW - Degradation KW - Polylactid-co-Glycolid KW - Polycaprolacton KW - Additive Fertigung KW - polycaprolactone KW - poly(lactic-co-glycolic acid) KW - additive manufacturing KW - degradation KW - Rapid Prototyping KW - PCL KW - PLGA Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-306139 ER - TY - JOUR A1 - Rödel, Michaela A1 - Teßmar, Jörg A1 - Groll, Jürgen A1 - Gbureck, Uwe T1 - Tough and Elastic alpha-Tricalcium Phosphate Cement Composites with Degradable PEG-Based Cross-Linker JF - Materials N2 - Dual setting cements composed of an in situ forming hydrogel and a reactive mineral phase combine high compressive strength of the cement with sufficient ductility and bending strength of the polymeric network. Previous studies were focused on the modification with non-degradable hydrogels based on 2-hydroxyethyl methacrylate (HEMA). Here, we describe the synthesis of suitable triblock degradable poly(ethylene glycol)-poly(lactide) (PEG-PLLA) cross-linker to improve the resorption capacity of such composites. A study with four different formulations was established. As reference, pure hydroxyapatite (HA) cements and composites with 40 wt% HEMA in the liquid cement phase were produced. Furthermore, HEMA was modified with 10 wt% of PEG-PLLA cross-linker or a test series containing only 25% cross-linker was chosen for composites with a fully degradable polymeric phase. Hence, we developed suitable systems with increased elasticity and 5-6 times higher toughn ess values in comparison to pure inorganic cement matrix. Furthermore, conversion rate from alpha-tricalcium phosphate (alpha-TCP) to HA was still about 90% for all composite formulations, whereas crystal size decreased. Based on this material development and advancement for a dual setting system, we managed to overcome the drawback of brittleness for pure calcium phosphate cements. KW - dual setting system KW - bending strength KW - calcium phosphate cement KW - composite material KW - HEMA KW - hydroxyapatite KW - free radical polymerization Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-226437 VL - 12 IS - 53 ER - TY - JOUR A1 - Hauptstein, Julia A1 - Forster, Leonard A1 - Nadernezhad, Ali A1 - Groll, Jürgen A1 - Teßmar, Jörg A1 - Blunk, Torsten T1 - Tethered TGF-β1 in a hyaluronic acid-based bioink for bioprinting cartilaginous tissues JF - International Journal of Molecular Sciences N2 - In 3D bioprinting for cartilage regeneration, bioinks that support chondrogenic development are of key importance. Growth factors covalently bound in non-printable hydrogels have been shown to effectively promote chondrogenesis. However, studies that investigate the functionality of tethered growth factors within 3D printable bioinks are still lacking. Therefore, in this study, we established a dual-stage crosslinked hyaluronic acid-based bioink that enabled covalent tethering of transforming growth factor-beta 1 (TGF-β1). Bone marrow-derived mesenchymal stromal cells (MSCs) were cultured over three weeks in vitro, and chondrogenic differentiation of MSCs within bioink constructs with tethered TGF-β1 was markedly enhanced, as compared to constructs with non-covalently incorporated TGF-β1. This was substantiated with regard to early TGF-β1 signaling, chondrogenic gene expression, qualitative and quantitative ECM deposition and distribution, and resulting construct stiffness. Furthermore, it was successfully demonstrated, in a comparative analysis of cast and printed bioinks, that covalently tethered TGF-β1 maintained its functionality after 3D printing. Taken together, the presented ink composition enabled the generation of high-quality cartilaginous tissues without the need for continuous exogenous growth factor supply and, thus, bears great potential for future investigation towards cartilage regeneration. Furthermore, growth factor tethering within bioinks, potentially leading to superior tissue development, may also be explored for other biofabrication applications. KW - biofabrication KW - bioink KW - chondrogenic differentiation KW - dual-stage crosslinking KW - hyaluronic acid KW - tethering KW - transforming growth factor-beta 1 Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-284239 SN - 1422-0067 VL - 23 IS - 2 ER - TY - THES A1 - Weigl, Franziska T1 - Correlation of FluidFM® Technology and Fluorescence Microscopy for the Visualization of Cellular Detachment Steps T1 - Korrelation der FluidFM® Technologie und Fluoreszenzmikroskopie zur Visualisierung von zellulären Ablöseschritten N2 - This thesis aimed the development of a correlated device which combines FluidFM® with Fluorescence Microscopy (FL) (FL-FluidFM®) and enables the simultaneous quantification of adhesion forces and fluorescent visualization of mature cells. The implementation of a PIFOC was crucial to achieve a high-resolution as well as a stable but dynamic focus level. The functionality of SCFS after hardware modification was verified by comparing two force-curves, both showing the typical force progression and measured with the optimized and conventional hardware, respectively. Then, the integration of FL was examined by detaching fluorescently labeled REF52 cells. The fluorescence illumination of the cytoskeleton showed the expected characteristic force profile and no evidence of interference effects. Afterwards a corresponding correlative data analysis was addressed including manual force step fitting, the identification of visualized cellular unbinding, and a time-dependent correlation. This procedure revealed a link between the area of cytoskeletal unbinding and force-jumps. This was followed by a comparison of the detachment characteristics of intercellular connected HUVECs and individual REF52 cells. HUVECs showed maximum detachment forces in the same order of magnitude as the ones of single REF52 cells. This contrasted with the expected strong cohesiveness of endothelial cells and indicated a lack of cell-cell contact formation. The latter was confirmed by a comparison of HUVECs, primary HBMVECs, and immortalized EA.hy926 cells fluorescently labeled for two marker proteins of intercellular junctions. This unveiled that both the previous cultivation duration and the cell type have a major impact on the development of intercellular junctions. In summary, the correlative FL FluidFM® represents a powerful novel approach, which enables a truly contemporaneous performance and, thus, has the potential to reveal new insights into the mechanobiological properties of cell adhesion. N2 - Ziel dieser Arbeit war die Entwicklung eines korrelierten Gerätes, das FluidFM® mit Fluoreszenzmikroskopie (FL) kombiniert (FL-FluidFM®) und die gleichzeitige Quantifizierung von Adhäsionskräften und Fluoreszenzvisualisierung ausgereifter Zellen ermöglicht. Die Implementierung eines PIFOC war entscheidend, um eine hohe Auflösung sowie ein stabiles, aber dynamisches Fokusniveau zu erreichen. Die Funktionalität der SCFS nach der Hardwaremodifikation wurde durch den Vergleich zweier Kraftkurven verifiziert, die beide den typischen Kraftverlauf zeigten und jeweils mit der optimierten bzw. konventionellen Hardware gemessen wurden. Anschließend wurde die Integration von FL durch das Ablösen fluoreszenzmarkierter REF52-Zellen untersucht. Unter Fluoreszenzbeleuchtung des Zytoskeletts zeigte sich das erwartete charakteristische Kraftprofil und kein Hinweis auf Störeffekte. Anschließend wurde eine entsprechende korrelative Datenanalyse durchgeführt, die eine manuelle Kraftstufenanpassung, die Identifizierung der visualisierten zellulären Ablösung und eine zeitabhängige Korrelation umfasste. Dieses Verfahren ergab einen Zusammenhang zwischen dem Bereich der Zytoskelett-Ablösung und den Kraftsprüngen. Es folgte ein Vergleich der Ablösungseigenschaften von interzellulär verbundenen HUVECs und einzelnen REF52-Zellen. HUVECs zeigten maximale Ablösekräfte in der gleichen Größenordnung wie die von einzelnen REF52-Zellen. Dies stand im Gegensatz zu der erwarteten starken Kohäsion von Endothelzellen und deutete auf eine fehlende Zell-Zell-Kontaktbildung hin. Letzteres wurde durch einen Vergleich von HUVECs, primären HBMVECs und immortalisierten EA.hy926-Zellen bestätigt, die für zwei Markerproteine für interzelluläre Verbindungen fluoreszierend markiert wurden. Dabei zeigte sich, dass sowohl die vorherige Kultivierungsdauer als auch der Zelltyp einen großen Einfluss auf die Entwicklung von interzellulären Verbindungen haben. Zusammenfassend lässt sich sagen, dass das korrelative FL-FluidFM® einen leistungsstarken neuen Ansatz darstellt, der eine korrelative Durchführung ermöglicht und somit das Potenzial hat, neue Erkenntnisse über die mechanobiologischen Eigenschaften der Zelladhäsion zu liefern KW - Correlative microscopy KW - FluidFM KW - Fluorescence Microscopy KW - Cell adhesion KW - Korrelative Mikroskopie Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-298763 ER - TY - THES A1 - Forster, Leonard T1 - Hyaluronic acid based Bioinks for Biofabrication of Mesenchymal Stem Cells T1 - Hyaluronsäure basierte Biotinten zur Biofabrikation von Mesenchymalen Stromazellen N2 - As a major component of the articular cartilage extracellular matrix, hyaluronic acid is a widely used biomaterial in regenerative medicine and tissue engineering. According to its well-known interaction with multiple chondrocyte surface receptors which positively affects many cellular pathways, some approaches by combining mesenchymal stem cells and hyaluronic acid-based hydrogels are already driven in the field of cartilage regeneration and fat tissue. Nevertheless, a still remaining major problem is the development of the ideal matrix for this purpose. To generate a hydrogel for the use as a matrix, hyaluronic acid must be chemically modified, either derivatized or crosslinked and the resulting hydrogel is mostly shaped by the mold it is casted in whereas the stem cells are embedded during or after the gelation procedure which does not allow for the generation of zonal hierarchies, cell density or material gradients. This thesis focuses on the synthesis of different hyaluronic acid derivatives and poly(ethylene glycol) crosslinkers and the development of different hydrogel and bioink compositions that allow for adjustment of the printability, integration of growth factors, but also for the material and biological hydrogel, respectively bioink properties. N2 - Hyaluronsäure basierte Biotinten zur Biofabrikation von Mesenchymalen Stromazellen [ausführliche Zusammenfassung: siehe pdf] KW - hyaluronic acid KW - bioink KW - biofabrication KW - mesenchymal stem cells KW - HASH KW - PEG KW - hydrogel Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-298603 ER - TY - THES A1 - Shan, Junwen T1 - Tailoring Hyaluronic Acid and Gelatin for Bioprinting T1 - Modifikation von Hyaluronsäure und Gelatine für die Anwendung im Biodruck N2 - In the field of biofabrication, biopolymer-based hydrogels are often used as bulk materials with defined structures or as bioinks. Despite their excellent biocompatibility, biopolymers need chemical modification to fulfill mechanical stability. In this thesis, the primary alcohol of hyaluronic acid was oxidized using TEMPO/TCC oxidation to generate aldehyde groups without ring-opening mechanism of glycol cleavage using sodium periodate. For crosslinking reaction of the aldehyde groups, adipic acid dihydrazide was used as bivalent crosslinker for Schiff Base chemistry. This hydrogel system with fast and reversible crosslinking mechanism was used successfully as bulk hydrogel for chondrogenic differentiation with human mesenchymal stem cells (hMSC). Gelatin was modified with pentenoic acid for crosslinking reaction via light controllable thiol-ene reaction, using thiolated 4-arm sPEG as multivalent crosslinker. Due to preservation of the thermo responsive property of gelatin by avoiding chain degradation during modification reaction, this gelatin-based hydrogel system was successfully processed via 3D printing with low polymer concentration. Good cell viability was achieved using hMSC in various concentrations after 3D bioprinting and chondrogenic differentiation showed promising results. N2 - Im Bereich der Biofabrikation werden Hydrogele auf Biopolymerbasis häufig als Bulkmaterial mit definierten Strukturen oder als Biotinten verwendet. Obwohl Biopolymere eine hervorragende Biokompatibilität aufweisen, müssen sie jedoch chemisch modifiziert werden, um gewisse mechanische Stabilität für den Einsatz in der Biofabrikation zu erreichen. In dieser Arbeit wurde der primäre Alkohol der Hyaluronsäure mit Hilfe der TEMPO/TCC-Oxidation oxidiert, um Aldehydgruppen zu generieren. Dabei findet kein Ringöffnungsmechanismus statt, wie er bei der Glykolspaltung mit Natriumperiodat vorkommt. Für die Vernetzungsreaktion der Aldehydgruppen wurde Adipinsäuredihydrazid als bivalenter Vernetzer für die Bildung der Schiffschen Base verwendet. Dieses Hydrogelsystem mit schnellem und reversiblem Vernetzungsmechanismus wurde erfolgreich als Bulkhydrogel für die chondrogene Differenzierung mit humanen mesenchymalen Stammzellen (hMSC) erfolgreich eingesetzt. Als Mikrogele könnte das System in künftigen Forschungsarbeiten auf seine Verdruckbarkeit getestet werden. Gelatine wurde mit Pentensäure modifiziert, um die Vernetzungsreaktion über eine lichtkontrollierbare Thiol-En-Reaktion durchzuführen, bei der thioliertes 4-armiges sPEG als multivalenter Vernetzer verwendet wurde. Da die thermoresponsive Eigenschaft der Gelatine erhalten blieb, indem der Kettenabbau während der Modifizierungsreaktion vermieden wurde, konnte dieses Hydrogelsystem auf Gelatinebasis erfolgreich im 3D-Druck mit niedriger Polymerkonzentration verarbeitet werden. Mit hMSC in verschiedenen Konzentrationen wurde nach dem 3D-Biodruck eine gute Zellviabilität erreicht und die chondrogene Differenzierung zeigte vielversprechende Ergebnisse. KW - Hydrogel KW - Biomaterial KW - Biofabrication of hydrogels KW - Biomaterial KW - Chemical modification of biopolymers KW - Chondrogenic differentiation Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-298256 ER - TY - THES A1 - Ryma, Matthias T1 - Exploiting the Thermoresponsive Properties of Poly(2-oxazoline)s for Biofabrication T1 - Anwendung der Thermoresponsivität von Poly(2-oxazolin) für die Biofabrikation N2 - In this thesis, non-modified POx, namely PnPrOx and PcycloPrOx, with an LCST in the physiological range between 20 and 37°C have been utilized as materials for three different biofabrication approaches. Their thermoresponsive behavior and processability were exploited to establish an easy-to-apply coating for cell sheet engineering, a novel method to create biomimetic scaffolds based on aligned fibrils via Melt Electrowriting (MEW) and the application of melt electrowritten sacrificial scaffolds for microchannel creation for hydrogels. Chapter 3 describes the establishment of a thermoresponsive coating for tissue culture plates. Here, PnPrOx was simply dissolved in water and dried in well plates and petri dishes in an oven. PnPrOx adsorbed to the surface, and the addition of warm media generated a cell culture compatible coating. It was shown that different cell types were able to attach and proliferate. After confluency, temperature reduction led to the detachment of cell sheets. Compared to standard procedures for surface coating, the thermoresponsive polymer is not bound covalently to the surface and therefore does not require specialized equipment and chemical knowledge. However, it should be noted that the detachment of the cell layer requires the dissolution of the PnPrOx-coating, leading to possible polymer contamination. Although it is only a small amount of polymer dissolved in the media, the detached cell sheets need to be washed by media exchange for further processing if required. ... N2 - In dieser Dissertation wurden die unmodifizierten Poly(2-oxazoline) PnPrOx und PcycloProx, welche eine LCST im physiologischen Bereich zwischen 20 und 37°C aufweisen, für drei verschiedene Biofabrikationsansätze verwendet. Deren Thermoresponsivität und Prozessierbarkeit wurde genutzt, um ein simples Beschichten von Oberflächen für Cell Sheet Engineering, eine neue Methode zur Herstellung biomimetischer Gerüststrukturen basierend auf der Generierung von Fibrillenbündeln via Melt Electrowriting und die Anwendung als Opferstrukturen zur Generierung von Mikrokanälen in Hydrogelen zu etablieren. KW - Thermoresponsive Polymere KW - Dihydrooxazole KW - 3D-Druck KW - Melt Electrowriting KW - Biofabrikation KW - Poly(2-oxazoline) KW - Cell Sheet Engineering KW - Vaskularisation Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-247462 ER - TY - JOUR A1 - Seifert, Annika A1 - Gruber, Julia A1 - Gbureck, Uwe A1 - Groll, Jürgen T1 - Morphological control of freeze‐structured scaffolds by selective temperature and material control in the ice‐templating process JF - Advanced Engineering Materials N2 - Herein, it is aimed to highlight the importance of the process parameter choice during directional solidification of polymer solutions, as they have a significant influence on the pore structure and orientation. Biopolymer solutions (alginate and chitosan) are directionally frozen, while systematically varying parameters such as the external temperature gradient, the temperature of the overall system, and the temperatures of the cooling surfaces. In addition, the effect of material properties such as molecular weight, solution concentration, or viscosity on the sample morphology is investigated. By selecting appropriate temperature gradients and cooling surface temperatures, aligned pores ranging in size between (50 ± 22) μm and (144 ± 56) μm are observed in the alginate samples, whereas the pore orientation is influenced by altering the external temperature gradient. As this gradient increases, the pores are increasingly oriented perpendicular to the sample surface. This is also observed in the chitosan samples. However, if the overall system is too cold, that is, using temperatures of the lower cooling surface down to −60 °C combined with low temperatures of the upper cooling surface, control over pore orientation is lost. This is also found when viscosity of chitosan solutions is above ≈5 Pas near the freezing point. KW - unidirectional freezing KW - anisotropic porous structures KW - morphology controls KW - systematic investigations Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-256330 VL - 24 IS - 3 ER - TY - JOUR A1 - Abd El-Aziz, Asmaa M. A1 - El-Maghraby, Azza A1 - Ewald, Andrea A1 - Kandil, Sherif H. T1 - In-vitro cytotoxicity study: cell viability and cell morphology of carbon nanofibrous scaffold/hydroxyapatite nanocomposites JF - Molecules N2 - Electrospun carbon nanofibers (CNFs), which were modified with hydroxyapatite, were fabricated to be used as a substrate for bone cell proliferation. The CNFs were derived from electrospun polyacrylonitrile (PAN) nanofibers after two steps of heat treatment: stabilization and carbonization. Carbon nanofibrous (CNF)/hydroxyapatite (HA) nanocomposites were prepared by two different methods; one of them being modification during electrospinning (CNF-8HA) and the second method being hydrothermal modification after carbonization (CNF-8HA; hydrothermally) to be used as a platform for bone tissue engineering. The biological investigations were performed using in-vitro cell counting, WST cell viability and cell morphology after three and seven days. L929 mouse fibroblasts were found to be more viable on the hydrothermally-modified CNF scaffolds than on the unmodified CNF scaffolds. The biological characterizations of the synthesized CNF/HA nanofibrous composites indicated higher capability of bone regeneration. KW - HA modifiedCNF membranes KW - cytotoxicity KW - WST test KW - cell counting KW - cell viability KW - cell morphology Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-234037 SN - 1420-3049 VL - 26 IS - 6 ER - TY - JOUR A1 - Heilig, Philipp A1 - Sandner, Phoebe A1 - Jordan, Martin Cornelius A1 - Jakubietz, Rafael Gregor A1 - Meffert, Rainer Heribert A1 - Gbureck, Uwe A1 - Hoelscher-Doht, Stefanie T1 - Experimental drillable magnesium phosphate cement is a promising alternative to conventional bone cements JF - Materials N2 - Clinically used mineral bone cements lack high strength values, absorbability and drillability. Therefore, magnesium phosphate cements have recently received increasing attention as they unify a high mechanical performance with presumed degradation in vivo. To obtain a drillable cement formulation, farringtonite (Mg\(_3\)(PO\(_4\))\(_2\)) and magnesium oxide (MgO) were modified with the setting retardant phytic acid (C\(_6\)H\(_{18}\)O\(_{24}\)P\(_6\)). In a pre-testing series, 13 different compositions of magnesium phosphate cements were analyzed concentrating on the clinical demands for application. Of these 13 composites, two cement formulations with different phytic acid content (22.5 wt% and 25 wt%) were identified to meet clinical demands. Both formulations were evaluated in terms of setting time, injectability, compressive strength, screw pullout tests and biomechanical tests in a clinically relevant fracture model. The cements were used as bone filler of a metaphyseal bone defect alone, and in combination with screws drilled through the cement. Both formulations achieved a setting time of 5 min 30 s and an injectability of 100%. Compressive strength was shown to be ~12–13 MPa and the overall displacement of the reduced fracture was <2 mm with and without screws. Maximum load until reduced fracture failure was ~2600 N for the cements only and ~3800 N for the combination with screws. Two new compositions of magnesium phosphate cements revealed high strength in clinically relevant biomechanical test set-ups and add clinically desired characteristics to its strength such as injectability and drillability. KW - magnesium phosphate cement KW - phytic acid KW - inositol hexaphosphate KW - drillable bone cement KW - tibial head depression fracture KW - synbones KW - artificial bones KW - biomechanical evaluation KW - cyclic testing KW - load to failure testing Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-236633 SN - 1996-1944 VL - 14 IS - 8 ER - TY - JOUR A1 - Kowalewicz, Katharina A1 - Vorndran, Elke A1 - Feichtner, Franziska A1 - Waselau, Anja-Christina A1 - Brueckner, Manuel A1 - Meyer-Lindenberg, Andrea T1 - In-vivo degradation behavior and osseointegration of 3D powder-printed calcium magnesium phosphate cement scaffolds JF - Materials N2 - Calcium magnesium phosphate cements (CMPCs) are promising bone substitutes and experience great interest in research. Therefore, in-vivo degradation behavior, osseointegration and biocompatibility of three-dimensional (3D) powder-printed CMPC scaffolds were investigated in the present study. The materials Mg225 (Ca\(_{0.75}\)Mg\(_{2.25}\)(PO\(_4\))\(_2\)) and Mg225d (Mg225 treated with diammonium hydrogen phosphate (DAHP)) were implanted as cylindrical scaffolds (h = 5 mm, Ø = 3.8 mm) in both lateral femoral condyles in rabbits and compared with tricalcium phosphate (TCP). Treatment with DAHP results in the precipitation of struvite, thus reducing pore size and overall porosity and increasing pressure stability. Over 6 weeks, the scaffolds were evaluated clinically, radiologically, with Micro-Computed Tomography (µCT) and histological examinations. All scaffolds showed excellent biocompatibility. X-ray and in-vivo µCT examinations showed a volume decrease and increasing osseointegration over time. Structure loss and volume decrease were most evident in Mg225. Histologically, all scaffolds degraded centripetally and were completely traversed by new bone, in which the remaining scaffold material was embedded. While after 6 weeks, Mg225d and TCP were still visible as a network, only individual particles of Mg225 were present. Based on these results, Mg225 and Mg225d appear to be promising bone substitutes for various loading situations that should be investigated further. KW - farringtonite KW - stanfieldite KW - 3D powder printing KW - scaffold KW - biocompatibility KW - degradable bone substitutes KW - osseointegration KW - in-vivo Micro-Computed Tomography Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-228929 SN - 1996-1944 VL - 14 IS - 4 ER - TY - THES A1 - Nadolinski, Annemarie T1 - Einfluss des extrusionsbasierten 3D-Drucks von Einzelzellen und Sphäroiden in Alginat-Gelatine-Hydrogelen auf die chondrogene Differenzierung humaner mesenchymaler Stromazellen T1 - Impact of extrusion-based 3D printing of single cells and spheroids in alginate-gelatin hydrogels on chondrogenic differentiation of human mesenchymal stromal cells N2 - Knorpeldefekte gelten in der Medizin als besonders schwierig zu beheben, da das avaskuläre und aneurale hyaline Knorpelgewebe nur über sehr begrenzte Selbstheilungskräfte verfügt. Die Entwicklung neuer klinischer Therapien für eine erfolgreiche Regeneration bis hin zum vollständigen Ersatz von beschädigtem oder erkranktem Knorpel stellt daher das Ziel umfangreicher Forschung dar. Darüber hinaus zeichnet sich Knorpel durch eine organisierte, zonale Zell-Matrix-Verteilung und -Dichte aus, die möglichst naturgetreu nachgebildet werden muss, um einen adäquaten Gelenkknorpelersatz zu schaffen. Das dreidimensionale Bioprinting von humanen mesenchymalen Stromazellen (hMSCs) in Hydrogelen ist hierbei ein vielversprechender Ansatz. Es sind jedoch umfangreiche Studien erforderlich, um herauszufinden, wie 3D-Stammzellkonstrukte mit unterschiedlichen Zelldichten und Zell-Zell-Wechselwirkungen in einer gedruckten Hydrogel Matrix interagieren. Deshalb wurde in dieser Arbeit untersucht, ob die mesenchymalen Stromazellen in Form von Einzelzellen oder Sphäroiden durch das Extrusionsdruckverfahren in ihrer Proliferationsfähigkeit und ihrem chondrogenen Differenzierungspotential beeinträchtigt werden. Hierfür wurden in dieser Arbeit sowohl das Zellüberleben als auch Proliferations- und Differenzierungsmarker in gedruckten und nicht gedruckten Proben mit Einzelzellkonzentrationen von 2-20 Millionen Zellen sowie bei Sphäroiden mit ca 4000 Zellen/Sphäroid untersucht. Es konnte gezeigt werden, dass das extrusionsbasierte Druckverfahren keine negativen Auswirkungen auf die Überlebensfähigkeit und die Proliferation der hMSCs hat. Zum Nachweis der chondrogenen Differenzierung wurden mehrere Experimente durchgeführt. Durch die Expression von Typ-II-Kollagen und Aggrecan sowie durch die Quantifizierung von GAG welches zu einem großen Teil in der ECM von Knorpelgewebe zu finden ist, konnte bestätigt werden, dass die mesenchymalen Stromazellen durch den Druckprozess ihr chondrogenes Differenzierungspotential nicht einbüßen. Die beim 3D-Bioprinting auftretenden Scherkräfte scheinen die in-vitro Chondrogenese sogar ohne chemische Stimulation durch TGF-β1 anzustoßen. Außerdem zeigten die Sphäroidgruppen ein höheres chondrogenes Differenzierungspotential als die Einzelzellgruppen. Um dies im Zusammenhang mit dem 3D Extrusionsdruckverfahren zu bestätigen, erscheint es sinnvoll, weitere Versuche mit noch höheren Zellkonzentrationen in Form von Sphäroiden durchzuführen. Zusammenfassend zeigte sich in dieser Arbeit, dass das extrusionsbasierte Druckverfahren in Alginat/Gelatine Hydrogelen keine Zellschädigung verursacht und weder die chondrogene Differenzierung von Einzelzellen noch von Sphäroiden beeinträchtigt. N2 - Cartilage defects are considered particularly difficult to repair in medicine, since avascular and aneural hyaline cartilage tissue has only very limited self-healing capabilities. The development of new clinical therapies for successful regeneration to complete replacement of damaged or diseased cartilage therefore represents the goal of extensive research. In addition, cartilage is characterized by an organized, zonal cell-matrix distribution and density that must be replicated as closely as possible to nature in order to create an adequate articular cartilage replacement. Three-dimensional bioprinting of human mesenchymal stromal cells (hMSCs) in hydrogels is a promising approach in this regard. However, extensive studies are needed to determine how 3D stem cell constructs interact with different cell densities and cell-cell interactions in a printed hydrogel matrix. Therefore, this work investigated whether the mesenchymal stromal cells in the form of single cells or spheroids are affected in their proliferative capacity and chondrogenic differentiation potential by the extrusion printing process. For this purpose, cell survival as well as proliferation and differentiation markers were investigated in this work in printed and non-printed samples with single cell concentrations of 2-20 million cells and in spheroids with approximately 4000 cells/spheroid. It was shown that the extrusion-based printing process had no negative effects on the survival and proliferation of hMSCs. Several experiments were performed to demonstrate chondrogenic differentiation. By expressing type II collagen and aggrecan and quantifying GAG which is largely found in the ECM of cartilage tissue, it was confirmed that the mesenchymal stromal cells do not lose their chondrogenic differentiation potential by the printing process. The shear forces involved in 3D bioprinting appear to trigger in vitro chondrogenesis even without chemical stimulation by TGF-β1. In addition, the spheroid groups showed a higher chondrogenic differentiation potential than the single cell groups. To confirm this in the context of the 3D extrusion printing process, it seems reasonable to perform further experiments with even higher cell concentrations in the form of spheroids. In summary, this work showed that the extrusion-based printing process in alginate/gelatin hydrogels does not cause cell damage and does not affect the chondrogenic differentiation of either single cells or spheroids. KW - Tissue Engineering KW - Bioprinting KW - Mesenchymale Stromazellen Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-280472 ER - TY - JOUR A1 - Pinzner, Florian A1 - Keller, Thorsten A1 - Mut, Jürgen A1 - Bechold, Julian A1 - Seibel, Jürgen A1 - Groll, Jürgen T1 - Polyoxazolines with a vicinally double-bioactivated terminus for biomacromolecular affinity assessment JF - Sensors N2 - Interactions between proteins and carbohydrates with larger biomacromolecules, e.g., lectins, are usually examined using self-assembled monolayers on target gold surfaces as a simplified model measuring setup. However, most of those measuring setups are either limited to a single substrate or do not allow for control over ligand distance and spacing. Here, we develop a synthetic strategy, consisting of a cascade of a thioesterification, native chemical ligation (NCL) and thiol-ene reaction, in order to create three-component polymer conjugates with a defined double bioactivation at the chain end. The target architecture is the vicinal attachment of two biomolecule residues to the α telechelic end point of a polymer and a thioether group at the ω chain end for fixating the conjugate to a gold sensor chip surface. As proof-of-principle studies for affinity measurements, we demonstrate the interaction between covalently bound mannose and ConA in surface acoustic wave (SAW) and surface plasmon resonance (SPR) experiments. KW - polyoxazolines KW - functionalization KW - lectin Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-239530 SN - 1424-8220 VL - 21 IS - 9 ER - TY - THES A1 - Smolan, Willi T1 - Linear Multifunctional PEG-Alternatives for Bioconjugation and Hydrogel Formation T1 - Lineare Multifunktionelle PEG-Alternativen für Biokonjugation und Hydrogelbildung N2 - The objective of this thesis was the synthesis and characterisation of two linear multifunctional PEG-alternatives for bioconjugation and hydrogel formation: i) Hydrophilic acrylate based copolymers containing peptide binding units and ii) hydrophilic polyether based copolymers containing different functional groups for a physical crosslinking. In section 3.1 the successful synthesis of water soluble and linear acrylate based polymers containing oligo(ethylene glycol) methyl ether acrylate with either linear thioester functional 2-hydroxyethyl acrylate, thiolactone acrylamide, or vinyl azlactone via the living radical polymerisation technique Reversible Addition Fragmentation Chain Transfer (RAFT) and via free-radical polymerisation is described. The obtained polymers were characterized via GPC, 1H NMR, IR and RAMAN spectroscopy. The RAFT end group was found to be difficult to remove from these short polymer chains and accordingly underwent the undesired side reaction aminolysis with the peptide during the conjugation studies. Besides that, polymers without RAFT end groups did not show any binding of the peptide at the thioester groups, which can be improved in future by using higher reactant concentrations and higher amount of binding units at the polymer. Polymers containing the highly reactive azlactone group showed a peptide binding of 19 %, but unfortunately this function also underwent spontaneous hydrolysis before the peptide could even be bound. In all cases, oligo(ethylene glycol) methyl ether acrylate was used with a relatively high molecular weight (Mn = 480 Da) was used, which eventually was efficiently shielding the introduced binding units from the added peptide. In future, a shorter monomer with Mn = 300 Da or less or hydrophilic N,N’-dialkyl acrylamide based polymers with less steric hindrance could be used to improve this bioconjugation system. Additionally, the amount of monomers containing peptide binding units in the polymer can be increased and have an additional spacer to achieve higher loading efficiency. The water soluble, linear and short polyether based polymers, so called polyglycidols, were successfully synthesized and modified as described in section 3.2. The obtained polymers were characterized using GPC, 1H NMR, 31P{1H} NMR, IR, and RAMAN spectroscopy. The allyl groups which were present up to 20 % were used for radical induced thiol-ene chemistry for the introduction of functional groups intended for the formation of the physically crosslinking hydrogels. For the positively charged polymers, first a chloride group had to be introduced for the subsequent nucleophilic substitution with the imidazolium compound. There, degrees of modifications were found in the range 40-97 % due to the repulsion forces of the charges, decreased concentration of active chloride groups, and limiting solution concentrations of the polymer for this reaction. For the negatively charged polymers, first a protected phosphonamide moiety was introduced with a deprotection step afterwards showing 100 % conversion for all reactions. Preliminary hydrogel tests did not show a formation of a three-dimensional network of the polymer chains which was attributed to the short backbone length of the used polymers, but the gained knowledge about the synthetic routes for the modification of the polymer was successfully transferred to longer linear polyglycidols. The same applies to the introduction of electron rich and electron poor compounds showing π-π stacking interactions by UV-vis spectroscopy. Finally, long linear polyglycidyl ethers were synthesised successfully up to molecular weights of Mn ~ 30 kDa in section 3.3, which was also proven by GPC, 1H NMR, IR and RAMAN spectroscopy. This applies to the homopolymerisation of ethoxyethyl glycidyl ether, allyl glycidyl ether and their copolymerisation with an amount of the allyl compound ~ 10 %. Attempts for higher molecular weights up to 100 kDa showed an uncontrolled polymerisation behaviour and eventually can be improved in future by choosing a lower initiation temperature. Also, the allyl side groups were modified via radical induced thiol-ene chemistry to obtain positively charged functionalities via imidazolium moieties (85 %) and negatively charged functionalities via phosphonamide moieties (100 %) with quantitative degree of modifications. Hydrogel tests have still shown a remaining solution by using long linear polyglycidols carrying negative charges with long/short linear polyglycidols carrying positive charges. The addition of calcium chloride led to a precipitate of the polymer instead of a three-dimensional network formation representing a too high concentration of ions and therefore shielding water molecules with prevention from dissolving the polymer. These systems can be improved by tuning the polymers structure like longer polymer chains, longer spacer between polymer backbone and charge, and higher amount of functional groups. The objective of the thesis was partly reached containing detailed investigated synthetic routes for the design and characterisation of functional polymers which could be used in future with improvements for bioconjugation and hydrogel formation tests. N2 - Das Ziel dieser Arbeit war es zwei lineare multifunktionale PEG-Alternativen für die Bioconjugation und Hydrogelbildung herzustellen und zu charakterisieren: i) Wasserlösliche Acrylat-basierte Copolymere mit Peptidbindungseinheiten und ii) wasserlösliche Polyether-basierte Copolymere mit verschiedenen funktionalen Gruppen für eine physikalische Vernetzung. In Abschnitt 3.1 wurde die erfolgreiche Synthese von wasserlöslichen und linearen Acrylat-basierten Polymeren, die Oligo(ethylen glycol) methyl ether acrylat mit jeweils 2-Hydroxyethyl acrylate modifiziert mit linearem Thioester, Thiolactonacrylamid und Vinylazlacton enthielten, mittels der lebenden Polymerisationstechnik Reversible Additions-Fragmentierungs Kettenübertragung (RAFT) und mittels freier radikalischer Polymerisation durch GPC, 1H NMR, IR und RAMAN Spektroskopie bewiesen. Es erwies sich als schwer die RAFT-Endgruppe von den kurzen Polymerketten zu entfernen und führte zur Nebenreaktion Aminolyse mit dem Peptid während des Konjugationsprozesses. Außerdem zeigten Polymere ohne RAFT-Endgruppen keine Peptidbindung an den Thioestergruppen, was durch höhere Konzentration der Reaktanten und größeren Anteil an Peptidbindungseinheiten am Polymer in Zukunft verbessert werden könnte. Polymere mit Azlaktongruppen zeigten eine Bindung von 19 %, wobei dies eine sehr reaktive Gruppe ist und vor der Peptidbindung noch hydrolysieren kann. In allen Fällen wurde Oligo(ethylen glycol) methyl ether acrylat mit Mn = 480 Da verwendet, welches die Peptidbindungsstellen abschirmen kann. Daher können in Zukunft Monomere mit Mn = 300 Da oder N,N’-Dialkylacrylamid-basierte Monomere mit weniger sterischer Hinderung für dieses System verwendet werden. Zusätzlich kann der Anteil an Monomeren mit Peptidbindungseinheiten im Polymer und zusätzlicher Seitenkette erhöht werden, um höhere Bindungseffektivitäten zu erreichen. Die erfolgreiche Synthese und Modifikation von wasserlöslichen, linearen und kurzen Polyether-basierten Polymeren, sogenannten Polyglycidolen, konnte in Abschnitt 3.2 mittels GPC, 1H NMR, 31P{1H} NMR, IR und RAMAN Spektroskopie bewiesen werden. Die Allylgruppe, die bis zu 20 % vorhanden war, wurde für die radikalisch induzierte Thiol-En Chemie zur Einführung von funktionellen Gruppen verwendet. Für die positiv geladenen Polymere, wurde zuerst eine Chloridgruppe generiert, die anschließend für die nukleophile Substitution mit einer Imidazolkomponente verwendet wurde. Dabei wurden Substitutionsgrade von 40-97 % gefunden, was an den Abstoßungskräften der Ladungen, verringerter Konzentration der aktiven Chloridgruppen und der begrenzten Löslichkeitskonzentration bei dieser Reaktion liegt. Für die negativ geladenen Polymere wurde zuerst eine geschützte Phosphonamidgruppe eingeführt, die anschließend entschützt wurde und bei allen Reaktionen einen Umsatz von 100 % zeigte. Vorläufige Hydrogeltests zeigten keine Bildung eines dreidimensionales Netzwerks der Polymerketten aber es wurden Erkenntnisse über die synthetischen Routen für die Modifikation der Polymere für den Transfer auf lange lineare Polyglycidole gewonnen. Das gleiche gilt für die Einführung von elektronreichen und elektronarmen Komponenten, die eine π-π Stapelwechselwirkung mittels UV-vis Spektroskopie zeigte. Letztlich wurden lange lineare Polyglycidole bis zu Molmassen von Mn ~ 30 kDa erfolgreich in Abschnitt 3.3 hergestellt und mittels GPC, 1H NMR, IR and RAMAN Spektroskopie bewiesen. Dies gilt für die Homopolymerisation von Ethoxyethyl glycidyl ether, Ally glycidyl ether und deren Copolymerisation mit einem Anteil der Allylkomponente von ~ 10 %. Versuche um höhere Molekulargewichte bis zu 100 kDa zeigten ein unkontrolliertes Polymerisationsverhalten, welches durch eine niedrigere Initiierungstemperatur weiter verbessert werden kann. Ebenso wurden die Allylseitengruppen mittels radikalisch induzierter Thiol-En Chemie modifiziert, um positivgeladene Funktionalitäten durch Imidazolgruppen (85 %) und negativgeladene Funktionalitäten durch Phosphonamidgruppen (100 %) in quantitativen Umsätzen einzuführen. Hydrogeltests von langen linearen Polyglycidolen, die negativ geladene Gruppen haben, mit langen/kurzen linearen Polyglycidolen, die positiv geladene Gruppen haben, haben eine verbleibende Lösung gezeigt. Die Zugabe von Calciumchlorid führte zum Ausfall des Polymers anstatt zu einem dreidimensionalen Netzwerk repräsentiert durch eine zu hohe Ionenkonzentration. Dies führte zu einer Abschirmung der Wassermoleküle vom Polymer und verhinderte, dies aufzulösen. Das System kann verbessert werden, indem die Polymerstruktur variiert wird, z.B. durch längere Polymerketten, größere Abstände zwischen Polymerhauptkette und Ladung und einen größeren Anteil an funktionellen Gruppen. Das Ziel der Arbeit wurde teilweise erreicht, welches detailliert untersuchte Syntheserouten für das Design und die Charakterisierung von funktionellen Polymeren beinhaltet, welche in Zukunft mit Verbesserungen für Bioconjuations- und Hydrogelformulierungstests verwendet werden können. KW - Wasserlösliche Polymere KW - Ringöffnungspolymerisation KW - Hydrogel KW - polyglycidol KW - RAFT KW - polymer-peptide-conjugate KW - ring opening polymerisation KW - thiol-ene Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-278734 ER - TY - THES A1 - Seifert, Annika Kristina T1 - Unidirectional freezing of soft and hard matter for biomedical applications T1 - Unidirektionales Gefrieren von weichen und harten Materialien für biomedizinische Anwendungen N2 - A multitude of human tissues, such as bones, tendons, or muscles, are characterized by a hierarchical and highly ordered structure. In many cases, the loss of these tissues requires reconstruction using biocompatible replacement materials. In the field of bone replacement, the pore structure of the material has a crucial influence. Anisotropic porosity would have the advantage of facilitating the ingrowth of cells and newly formed blood vessels as well as the transport of nutrients. In this thesis, scaffolds with a highly ordered and anisotropic pore structure were fabricated using unidirectional freezing. Systematic investigations were carried out on biopolymer solutions (alginate and chitosan) to gain a deeper understanding of the freeze-structuring process. The knowledge gained was then applied to the development of anisotropically structured bone substitute materials. Here, the previously existing material platform for anisotropically structured calcium phosphates was extended to low-temperature phases such as calcium deficient hydroxyapatite (CDHA) or the secondary phosphates monetite and brushite. After the implantation of a biomaterial, the inevitably triggered initial immune response plays a key role in the success of a graft, with immune cells such as neutrophils or macrophages being of particular importance. In this thesis, the influence of anisotropically structured alpha-TCP and CDHA scaffolds as well as their unstructured references on human monocytes/macrophages was investigated. Macrophages produced extracellular traps (ETs) due to mineral nanoparticles formed by the binding of phosphate and calcium ions to human platelet lysate. In particular, incubation of alpha-TCP samples in lysate containing cell culture medium resulted in pronounced particle formation and enhanced release of ETs. N2 - Eine Vielzahl menschlicher Gewebe, wie beispielsweise Knochen, Sehnen oder Muskeln, ist durch eine hierarchische und zum Teil hochgradig geordnete Struktur gekennzeichnet. Der beispielsweise durch Unfälle oder Krankheiten bedingte Verlust dieser Gewebe erfordert in vielen Fällen eine Rekonstruktion mit biokompatiblen Ersatzmaterialien. Neben der chemischen Zusammensetzung spielt deren Architektur eine wichtige Rolle für die Geweberegeneration und schließlich den Heilungserfolg des Implantats. Auch im Bereich des Knochenersatzes hat die Porenstruktur des Materials hierauf einen zentralen Einfluss, wobei der Einsatz von Materialien mit anisotroper Porosität neben der strukturellen Nachahmung des Gewebes den Vorteil hätte, dass das Einwachsen von Zellen und neu gebildeten Blutgefäßen sowie der Nährstofftransport erleichtert würden. In der vorliegenden Doktorarbeit wurden anisotrop poröse Scaffolds mit einer hochgradig geordneten Porenstruktur mit Hilfe der Gefrierstrukturierung hergestellt. Hierfür wurde eine in früheren Arbeiten entwickelte Anlage verwendet, um einen definierten Temperaturgradienten in der Probe zur gerichteten Erstarrung zu erzeugen. Der Kern des Systems besteht aus zwei übereinander angeordneten Peltier-Elemente (PEs), zwischen denen sich die Probenlösung befindet. Durch die Variation der PE-Temperaturen kann das Eiskristallwachstum und schließlich die Porenstruktur innerhalb des Biomaterials gezielt beeinflusst und an die Anforderungen einer gewünschten Anwendung angepasst werden. Das Ziel dieser Arbeit war, ein tieferes Verständnis des Gefrierstrukturierungsprozesses zu erlangen und die gewonnenen Erkenntnisse auf die Entwicklung anisotrop poröser Knochenersatzmaterialien zu übertragen. Hierfür wurden in Kapitel 3 zunächst systematische Untersuchungen an Biopolymerlösungen (Alginat und Chitosan) durchgeführt. Dabei konnte gezeigt werden, dass neben dem äußeren Temperaturgradienten auch die Temperaturen der PEs, die Kühlrate sowie Materialeigenschaften wie das Molekulargewicht, die Konzentration und die Viskosität der Lösung die Porenstruktur beeinflussen. Die Temperatur des Gesamtsystems bestimmte sowohl die Kühlrate als auch die Porendurchmesser, so dass höhere Kühlraten zu kleineren Poren führten. Die Porenorientierung konnte hingegen durch den externen Temperaturgradienten beeinflusst werden, wobei die Poren mit steigendem Gradienten zunehmend senkrecht zur Probenoberfläche orientiert ausgerichtet waren. Bestimmte Parameterkonstellationen, wie beispielsweise eine Temperatur der unteren Kühlfläche unterhalb von 60 °C kombiniert mit einer geringen Temperatur des oberen PE sowie eine hohe Viskosität (über 5 Pas nahe 0 °C) der Vorlösung führten allerdings dazu, dass die Porenausrichtung nicht mehr kontrollierbar war. Auf Basis von Kapitel 4 konnte die bis dato für anisotrop strukturierte Calciumphosphate existierende Materialplattform auf Niedrigtemperaturphasen wie calciumarmen Hydroxylapatit (CDHA) oder die sekundären Phosphate Monetit und Bruschit erweitert werden. Hierfür wurde gesintertes oder ungesintertes -Tricalciumphosphat (-TCP) mit anisotroper Porenstruktur durch hydrothermale Behandlung oder Inkubation in Phosphorsäure in die oben genannten Phasen umgewandelt. Durch die hydrothermale Behandlung konnte sowohl bei ungesinterten als auch bei gesinterten -TCP-Proben eine Phasenumwandlung in CDHA erzielt werden. Die Inkubation in Phosphorsäure führte zu einer Umwandlung in Monetit und Bruschit. Durch die hydrothermale Behandlung für 72 h bei 175 °C erhöhte sich die Porosität der ungesinterten Proben geringfügig von 85 % auf 88 %, während bei den gesinterten Proben ein Anstieg von 75 % auf 88 % zu beobachten war. Darüber hinaus ging eine Phasenumwandlung in CDHA durch die Bildung von feinen Kristallnadeln und -plättchen mit einer Vergrößerung der spezifischen Oberfläche einher. Hinsichtlich der mechanischen Eigenschaften war besonders bemerkenswert, dass die Druckfestigkeit der ungesinterten Proben durch die Phasenumwandlung in Monetit signifikant von (0.76  0.11) auf (5.29  0.94) MPa erhöht wurde. In Kapitel 5 wurde der Einfluss von anisotrop porösen -TCP und CDHA Scaffolds sowie unstrukturierten und aus den gleichen Calciumphosphatphasen bestehenden Referenzproben auf humane Monozyten/Makrophagen untersucht. Nach der Implantation eines Biomaterials spielt die unweigerlich ausgelöste erste Immunreaktion eine Schlüsselrolle für den Erfolg eines Transplantats, wobei Immunzellen wie Neutrophile oder Makrophagen eine entscheidende Rolle spielen. Makrophagen können zur Immobilisierung und zum Abtöten von Mikroorganismen extrazelluläre Fasern (ETs) produzieren. Während in früheren Arbeiten nachgewiesen werden konnte, dass Neutrophile als Reaktion auf Biomaterialien ETs produzieren können, wurde dieser Mechanismus für Makrophagen erstmals in der vorliegenden Doktorarbeit gezeigt. Die ET-Freisetzung wurde von mineralischen Nanopartikeln ausgelöst, welche durch die Bindung von Phosphat- und Calciumionen an menschliches Thrombozytenlysat gebildet wurden. Insbesondere die Inkubation von  TCP Proben in lysathaltigem Zellkulturmedium führte zu einer ausgeprägten Partikelformierung und schließlich zu einer verstärkten Bildung von ETs. Dies ging mit einer erhöhten Freisetzung von pro-inflammatorischen Zytokinen im Vergleich zu CDHA einher. An diese Arbeit anschließende Experimente könnten beispielsweise die Wiederholung von systematischen Studien, wie sie in Kapitel 3 für Biopolymere vorgestellt wurden, mit synthetischen Polymeren wie Polyvinylalkohol (PVA) umfassen. PVA ist ein für den Einsatz als Kryoprotektor vielversprechendes Material, dessen Verwendung für die Kryokonservierung von biologischen Materialien zwingend notwendig ist. Darüber hinaus wäre die Durchführung von in vivo Experimenten erforderlich, um die starke Freisetzung von ETs durch Makrophagen als Reaktion auf strukturierte -TCP Scaffolds sowie die geringere Expression auf CDHA Scaffolds eingehender zu analysieren. KW - Freezing KW - Morphology KW - Unidirectional Freezing KW - Anisotropic structures KW - Calcium phosphate-based biomaterials KW - Macrophage extracellular traps KW - Gefrierstrukturierung Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-277281 ER - TY - JOUR A1 - Stuckensen, Kai A1 - Lamo-Espinosa, José M. A1 - Muiños-López, Emma A1 - Ripalda-Cemboráin, Purificación A1 - López-Martínez, Tania A1 - Iglesias, Elena A1 - Abizanda, Gloria A1 - Andreu, Ion A1 - Flandes-Iparraguirre, María A1 - Pons-Villanueva, Juan A1 - Elizalde, Reyes A1 - Nickel, Joachim A1 - Ewald, Andrea A1 - Gbureck, Uwe A1 - Prósper, Felipe A1 - Groll, Jürgen A1 - Granero-Moltó, Froilán T1 - Anisotropic cryostructured collagen scaffolds for efficient delivery of RhBMP−2 and enhanced bone regeneration JF - Materials N2 - In the treatment of bone non-unions, an alternative to bone autografts is the use of bone morphogenetic proteins (BMPs), e.g., BMP–2, BMP–7, with powerful osteoinductive and osteogenic properties. In clinical settings, these osteogenic factors are applied using absorbable collagen sponges for local controlled delivery. Major side effects of this strategy are derived from the supraphysiological doses of BMPs needed, which may induce ectopic bone formation, chronic inflammation, and excessive bone resorption. In order to increase the efficiency of the delivered BMPs, we designed cryostructured collagen scaffolds functionalized with hydroxyapatite, mimicking the structure of cortical bone (aligned porosity, anisotropic) or trabecular bone (random distributed porosity, isotropic). We hypothesize that an anisotropic structure would enhance the osteoconductive properties of the scaffolds by increasing the regenerative performance of the provided rhBMP–2. In vitro, both scaffolds presented similar mechanical properties, rhBMP–2 retention and delivery capacity, as well as scaffold degradation time. In vivo, anisotropic scaffolds demonstrated better bone regeneration capabilities in a rat femoral critical-size defect model by increasing the defect bridging. In conclusion, anisotropic cryostructured collagen scaffolds improve bone regeneration by increasing the efficiency of rhBMP–2 mediated bone healing. KW - rhBMP–2 KW - collagen sponge KW - cryostructured scaffolds KW - bone critical size defect Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-195966 SN - 1996-1944 VL - 12 IS - 19 ER - TY - JOUR A1 - Holzmeister, Ib A1 - Weichhold, Jan A1 - Groll, Jürgen A1 - Zreiqat,, Hala A1 - Gbureck, Uwe T1 - Hydraulic reactivity and cement formation of baghdadite JF - Journal of the American Ceramic Society N2 - In this study, the hydraulic reactivity and cement formation of baghdadite (Ca\(_{3}\)ZrSi\(_{2}\)O\(_{9}\)) was investigated. The material was synthesized by sintering a mixture of CaCO\(_{3}\), SiO\(_{2}\), and ZrO\(_{2}\) and then mechanically activated using a planetary mill. This leads to a decrease in particle and crystallite size and a partial amorphization of baghdadite as shown by X-ray powder diffraction (XRD) and laser diffraction measurements. Baghdadite cements were formed by the addition of water at a powder to liquid ratio of 2.0 g/ml. Maximum compressive strengths were found to be ~2 MPa after 3-day setting for a 24-h ground material. Inductively coupled plasma mass spectrometry (ICP-MS) measurements showed an incongruent dissolution profile of set cements with a preferred dissolution of calcium and only marginal release of zirconium ions. Cement formation occurs under alkaline conditions, whereas the unground raw powder leads to a pH of 11.9 during setting, while prolonged grinding increased pH values to approximately 12.3. KW - baghdadite KW - bone cement KW - hydraulic reactivity KW - mechanical activation Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-259457 VL - 104 IS - 7 ER - TY - JOUR A1 - Garitano-Trojaola, Andoni A1 - Sancho, Ana A1 - Götz, Ralph A1 - Eiring, Patrick A1 - Walz, Susanne A1 - Jetani, Hardikkumar A1 - Gil-Pulido, Jesus A1 - Da Via, Matteo Claudio A1 - Teufel, Eva A1 - Rhodes, Nadine A1 - Haertle, Larissa A1 - Arellano-Viera, Estibaliz A1 - Tibes, Raoul A1 - Rosenwald, Andreas A1 - Rasche, Leo A1 - Hudecek, Michael A1 - Sauer, Markus A1 - Groll, Jürgen A1 - Einsele, Hermann A1 - Kraus, Sabrina A1 - Kortüm, Martin K. T1 - Actin cytoskeleton deregulation confers midostaurin resistance in FLT3-mutant acute myeloid leukemia JF - Communications Biology N2 - The presence of FMS-like tyrosine kinase 3-internal tandem duplication (FLT3-ITD) is one of the most frequent mutations in acute myeloid leukemia (AML) and is associated with an unfavorable prognosis. FLT3 inhibitors, such as midostaurin, are used clinically but fail to entirely eradicate FLT3-ITD+AML. This study introduces a new perspective and highlights the impact of RAC1-dependent actin cytoskeleton remodeling on resistance to midostaurin in AML. RAC1 hyperactivation leads resistance via hyperphosphorylation of the positive regulator of actin polymerization N-WASP and antiapoptotic BCL-2. RAC1/N-WASP, through ARP2/3 complex activation, increases the number of actin filaments, cell stiffness and adhesion forces to mesenchymal stromal cells (MSCs) being identified as a biomarker of resistance. Midostaurin resistance can be overcome by a combination of midostaruin, the BCL-2 inhibitor venetoclax and the RAC1 inhibitor Eht1864 in midostaurin-resistant AML cell lines and primary samples, providing the first evidence of a potential new treatment approach to eradicate FLT3-ITD+AML. Garitano-Trojaola et al. used a combination of human acute myeloid leukemia (AML) cell lines and primary samples to show that RAC1-dependent actin cytoskeleton remodeling through BCL2 family plays a key role in resistance to the FLT3 inhibitor, Midostaurin in AML. They showed that by targeting RAC1 and BCL2, Midostaurin resistance was diminished, which potentially paves the way for an innovate treatment approach for FLT3 mutant AML. KW - actin KW - acute myeloid leukaemia Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-260709 VL - 4 IS - 1 ER - TY - JOUR A1 - Eidmann, Annette A1 - Ewald, Andrea A1 - Boelch, Sebastian P. A1 - Rudert, Maximilian A1 - Holzapfel, Boris M. A1 - Stratos, Ioannis T1 - In vitro evaluation of antibacterial efficacy of vancomycin-loaded suture tapes and cerclage wires JF - Journal of Materials Science: Materials in Medicine N2 - Usage of implants containing antibiotic agents has been a common strategy to prevent implant related infections in orthopedic surgery. Unfortunately, most implants with microbial repellent properties are characterized by accessibility limitations during daily clinical practice. Aim of this in vitro study was to investigate whether suture tapes and cerclage wires, which were treated with vancomycin, show a sustainable antibacterial activity. For this purpose, we used 24 stainless steel wire cerclages and 24 ultra-high molecular weight polyethylene and polyester suture tape test bodies. The test bodies were incubated for 30 min. in 100 mg/ml vancomycin solution or equivalent volumes of 0.9% NaCl. After measuring the initial solution uptake of the test bodies, antibacterial efficacy via agar diffusion test with Staphylococcus aureus and vancomycin elution tests were performed 1, 2, 3, and 6 days after incubation. Vancomycin-loaded tapes as well as vancomycin-loaded cerclage wires demonstrated increased bacterial growth inhibition when compared to NaCl-treated controls. Vancomycin-loaded tapes showed an additional twofold and eightfold increase of bacterial growth inhibition compared to vancomycin-loaded wires at day 1 and 2, respectively. Elution tests at day 1 revealed high levels of vancomycin concentration in vancomycin loaded tapes and wires. Additionally, the concentration in vancomycin loaded tapes was 14-fold higher when compared to vancomycin loaded wires. Incubating suture tapes and cerclage wires in vancomycin solution showed a good short-term antibacterial activity compared to controls. Considering the ease of vancomycin application on suture tapes or wires, our method could represent an attractive therapeutic strategy in biofilm prevention in orthopedic surgery. KW - anti-bacterial agents / administration & dosage KW - anti-bacterial agents / chemistry KW - bone wires KW - drug liberation KW - materials testing KW - anti-bacterial agents / pharmacology KW - biocompatible Materials KW - prostheses and implants KW - Staphylococcus aureus / drug effects KW - sutures KW - Vancomycin / administration & dosage KW - Vancomycin / chemistry KW - Vancomycin / pharmacology Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-260089 VL - 32 IS - 4 ER - TY - JOUR A1 - Böhm, Christoph A1 - Stahlhut, Philipp A1 - Weichhold, Jan A1 - Hrynevich, Andrei A1 - Teßmar, Jörg A1 - Dalton, Paul D. T1 - The Multiweek Thermal Stability of Medical-Grade Poly(ε-caprolactone) During Melt Electrowriting JF - Small N2 - Melt electrowriting (MEW) is a high-resolution additive manufacturing technology that places unique constraints on the processing of thermally degradable polymers. With a single nozzle, MEW operates at low throughput and in this study, medical-grade poly(ε-caprolactone) (PCL) is heated for 25 d at three different temperatures (75, 85, and 95 °C), collecting daily samples. There is an initial increase in the fiber diameter and decrease in the jet speed over the first 5 d, then the MEW process remains stable for the 75 and 85 °C groups. When the collector speed is fixed to a value at least 10% above the jet speed, the diameter remains constant for 25 d at 75 °C and only increases with time for 85 and 95 °C. Fiber fusion at increased layer height is observed for 85 and 95 °C, while the surface morphology of single fibers remain similar for all temperatures. The properties of the prints are assessed with no observable changes in the degree of crystallinity or the Young's modulus, while the yield strength decreases in later phases only for 95 °C. After the initial 5-d period, the MEW processing of PCL at 75 °C is extraordinarily stable with overall fiber diameters averaging 13.5 ± 1.0 µm over the entire 25-d period. KW - polycaprolactone KW - 3D printing KW - additive manufacturing KW - electrohydrodynamic KW - melt electrospinning writing Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-257741 VL - 18 IS - 3 ER - TY - JOUR A1 - Blum, Carina A1 - Taskin, Mehmet Berat A1 - Shan, Junwen A1 - Schilling, Tatjana A1 - Schlegelmilch, Katrin A1 - Teßmar, Jörg A1 - Groll, Jürgen T1 - Appreciating the First Line of the Human Innate Immune Defense: A Strategy to Model and Alleviate the Neutrophil Elastase-Mediated Attack toward Bioactivated Biomaterials JF - Small N2 - Biointerface engineering is a wide-spread strategy to improve the healing process and subsequent tissue integration of biomaterials. Especially the integration of specific peptides is one promising strategy to promote the regenerative capacity of implants and 3D scaffolds. In vivo, these tailored interfaces are, however, first confronted with the innate immune response. Neutrophils are cells with pronounced proteolytic potential and the first recruited immune cells at the implant site; nonetheless, they have so far been underappreciated in the design of biomaterial interfaces. Herein, an in vitro approach is introduced to model and analyze the neutrophil interaction with bioactivated materials at the example of nano-bioinspired electrospun surfaces that reveals the vulnerability of a given biointerface design to the contact with neutrophils. A sacrificial, transient hydrogel coating that demonstrates optimal protection for peptide-modified surfaces and thus alleviates the immediate cleavage by neutrophil elastase is further introduced. KW - solution electrospinning KW - human neutrophil elastase (HNE) KW - peptide immobilization KW - polymeric matrix Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-257691 VL - 17 IS - 13 ER - TY - JOUR A1 - Bakirci, Ezgi A1 - Frank, Andreas A1 - Gumbel, Simon A1 - Otto, Paul F. A1 - Fürsattel, Eva A1 - Tessmer, Ingrid A1 - Schmidt, Hans‐Werner A1 - Dalton, Paul D. T1 - Melt Electrowriting of Amphiphilic Physically Crosslinked Segmented Copolymers JF - Macromolecular Chemistry and Physics N2 - Various (AB)\(_{n}\) and (ABAC)\(_{n}\) segmented copolymers with hydrophilic and hydrophobic segments are processed via melt electrowriting (MEW). Two different (AB)\(_{n}\) segmented copolymers composed of bisurea segments and hydrophobic poly(dimethyl siloxane) (PDMS) or hydrophilic poly(propylene oxide)-poly(ethylene oxide)-poly(propylene oxide) (PPO-PEG-PPO) segments, while the amphiphilic (ABAC)\(_{n}\) segmented copolymers consist of bisurea segments in the combination of hydrophobic PDMS segments and hydrophilic PPO-PEG-PPO segments with different ratios, are explored. All copolymer compositions are processed using the same conditions, including nozzle temperature, applied voltage, and collector distance, while changes in applied pressure and collector speed altered the fiber diameter in the range of 7 and 60 µm. All copolymers showed excellent processability with MEW, well-controlled fiber stacking, and inter-layer bonding. Notably, the surfaces of all four copolymer fibers are very smooth when visualized using scanning electron microscopy. However, the fibers show different roughness demonstrated with atomic force microscopy. The non-cytotoxic copolymers increased L929 fibroblast attachment with increasing PDMS content while the different copolymer compositions result in a spectrum of physical properties. KW - melt electrowriting KW - 3D printing KW - additive manufacturing KW - electrohydrodynamics Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-257572 VL - 222 IS - 22 ER - TY - JOUR A1 - Hauptstein, Julia A1 - Forster, Leonard A1 - Nadernezhad, Ali A1 - Horder, Hannes A1 - Stahlhut, Philipp A1 - Groll, Jürgen A1 - Blunk, Torsten A1 - Teßmar, Jörg T1 - Bioink Platform Utilizing Dual-Stage Crosslinking of Hyaluronic Acid Tailored for Chondrogenic Differentiation of Mesenchymal Stromal Cells JF - Macromolecular Bioscience N2 - 3D bioprinting often involves application of highly concentrated polymeric bioinks to enable fabrication of stable cell-hydrogel constructs, although poor cell survival, compromised stem cell differentiation, and an inhomogeneous distribution of newly produced extracellular matrix (ECM) are frequently observed. Therefore, this study presents a bioink platform using a new versatile dual-stage crosslinking approach based on thiolated hyaluronic acid (HA-SH), which not only provides stand-alone 3D printability but also facilitates effective chondrogenic differentiation of mesenchymal stromal cells. A range of HA-SH with different molecular weights is synthesized and crosslinked with acrylated (PEG-diacryl) and allylated (PEG-diallyl) polyethylene glycol in a two-step reaction scheme. The initial Michael addition is used to achieve ink printability, followed by UV-mediated thiol–ene reaction to stabilize the printed bioink for long-term cell culture. Bioinks with high molecular weight HA-SH (>200 kDa) require comparably low polymer content to facilitate bioprinting. This leads to superior quality of cartilaginous constructs which possess a coherent ECM and a strongly increased stiffness of long-term cultured constructs. The dual-stage system may serve as an example to design platforms using two independent crosslinking reactions at one functional group, which allows adjusting printability as well as material and biological properties of bioinks. KW - hyaluronic acid KW - biofabrication KW - chondrogenic differentiation KW - dual-stage crosslinking KW - extracellular matrix Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-257556 VL - 22 IS - 2 ER - TY - JOUR A1 - Hrynevich, Andrei A1 - Achenbach, Pascal A1 - Jungst, Tomasz A1 - Brook, Gary A. A1 - Dalton, Paul D. T1 - Design of Suspended Melt Electrowritten Fiber Arrays for Schwann Cell Migration and Neurite Outgrowth JF - Macromolecular Bioscience N2 - In this study, well-defined, 3D arrays of air-suspended melt electrowritten fibers are made from medical grade poly(ɛ-caprolactone) (PCL). Low processing temperatures, lower voltages, lower ambient temperature, increased collector distance, and high collector speeds all aid to direct-write suspended fibers that can span gaps of several millimeters between support structures. Such processing parameters are quantitatively determined using a “wedge-design” melt electrowritten test frame to identify the conditions that increase the suspension probability of long-distance fibers. All the measured parameters impact the probability that a fiber is suspended over multimillimeter distances. The height of the suspended fibers can be controlled by a concurrently fabricated fiber wall and the 3D suspended PCL fiber arrays investigated with early post-natal mouse dorsal root ganglion explants. The resulting Schwann cell and neurite outgrowth extends substantial distances by 21 d, following the orientation of the suspended fibers and the supporting walls, often generating circular whorls of high density Schwann cells between the suspended fibers. This research provides a design perspective and the fundamental parametric basis for suspending individual melt electrowritten fibers into a form that facilitates cell culture. KW - cell migration KW - electrospinning KW - fibers KW - neurite growth KW - polycaprolactone KW - tissue engineering Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-257535 VL - 21 IS - 7 ER - TY - THES A1 - Meininger, Markus T1 - Calcium hydroxide as antibacterial implant coating T1 - Calciumhydroxid als antibaterielle Implantatbeschichtung N2 - In modern medicine hip and knee joint replacement are common surgical procedures. However, about 11 % of hip implants and about 7 % of knee implants need re-operations. The comparison of implant registers revealed two major indications for re-operations: aseptic loosening and implant infections, that both severely impact the patients’ health and are an economic burden for the health care system. To address these problems, a calcium hydroxide coating on titanium was investigated in this thesis. Calcium hydroxide is a well-known antibacterial agent and used with success in dentistry. The coatings were applied with electrochemically assisted deposition, a versatile tool that combines easiness of process with the ability to coat complex geometries homogeneously. The pH-gradient during coating was investigated and showed the surface confinement of the coating process. Surface pre-treatment altered the surface morphology and chemistry of the titanium substrates and was shown to affect the morphology of the calcium hydroxide coatings. The influence of the coating parameters stirring speed and current pulsing were examined in various configurations and combinations and could also affect the surface morphology. A change in surface morphology results in a changed adhesion and behavior of cells and bacteria. Thus, the parameters surface pre-treatment, stirring speed and current pulsing presented a toolset for tailoring cellular response and antibacterial properties. Microbiological tests with S. aureus and S. epidermidis were performed to test the time-dependent antibacterial activity of the calcium hydroxide coatings. A reduction of both strains could be achieved for 13 h, which makes calcium hydroxide a promising antibacterial coating. To give insight into biofilm growth, a protocol for biofilm staining was investigated on titanium disks with S. aureus and S. epidermidis. Biofilm growth could be detected after 5 days of bacterial incubation, which was much earlier than the 3 weeks that are currently assumed in medical treatment. Thus, it should be considered to treat infections as if a biofilm were present from day 5 on. The ephemeral antibacterial properties of calcium hydroxide were further enhanced and prolonged with the addition of silver and copper ions. Both ionic modifications significantly enhanced the bactericidal potential. The copper modification showed higher antibacterial effects than the silver modification and had a higher cytocompatibility which was comparable to the pure calcium hydroxide coating. Thus, copper ions are an auspicious option to enhance the antibacterial properties. Calcium hydroxide coatings presented in this thesis have promising antibacterial properties and can easily be applied to complex geometries, thus they are a step in fighting aseptic loosening and implant infections. N2 - Der Fortschritt in der modernen Medizin ist so weit, dass Hüft- und Kniegelenkersatz mit Implantaten heutzutage Standardoperationen sind. Allerdings kommt es in circa 11 % des Hüftgelenkersatzes und 7 % des Kniegelenkersatzes zu nicht zufriedenstellenden Ergebnissen und Revisionen sind nötig. Der Vergleich von Implantationsregistern zeigte zwei Hauptindikatoren für Revisionen: aseptische Lockerung und Implantatinfektionen, welche die Gesundheit der Patienten stark beeinträchtigen und eine wirtschaftliche Belastung für das Gesundheitssystem darstellen. Um diese Probleme anzugehen, wurde Calciumhydroxid auf Titan als Beschichtung aufge- bracht und in dieser Arbeit untersucht. Calciumhydroxid ist ein bekanntes antibakterielles Material und wird erfolgreich in der Zahnheilkunde eingesetzt. Die Beschichtungen wurden mit elektrochemisch gestützter Abscheidung aufgebracht, da diese Methode einen einfachen Prozess mit der Möglichkeit vereint, komplexe Geometrien homogen zu beschichten. In dieser Arbeit wurde der pH-Gradient während der Beschichtung untersucht und zeig- te die Beschränkung des Beschichtungsprozesses auf die direkte Oberfläche der Probe. Eine Vorbehandlung der Titansubstrate veränderte die Morphologie und die Chemie der Oberflä- chen und dadurch auch die Morphologie der Calciumhydroxidbeschichtung. Der Einfluss der Beschichtungsparameter Rührgeschwindigkeit und Pulsen des Stroms wurden in zahlreichen Konfigurationen und Kombinationen getestet und konnte ebenfalls die Oberflächenmorphologie verändern. Die Oberflächenmorphologie wiederum beeinflusst die Adhäsion und das Verhalten von Zellen und Bakterien. Deshalb sind die Parameter Oberflächenvorbehandlung, Rührge- schwindigkeit und Pulsen des Stroms ein Instrument für das Einstellen einer angepassten Zellantwort und der antibakteriellen Eigenschaften. Mikrobiologische Tests mit S. aureus und S. epidermidis wurden unternommen, um die Zeitabhängigkeit der antibakteriellen Aktivität auf Calciumhydroxidbeschichtungen zu bestimmen. Eine Reduktion beider Stämme konnte nach 13 h erreicht werden, was Calciumhydroxid zu einer erfolgversprechenden antibakteriellen Beschichtung macht. Um einen Einblick in das Wachstum von Biofilmen zu geben, wurde ein Protokoll zur Biofilm- Färbung auf Titanplättchen mit S. aureus und S. epidermidis entwickelt. Biofilm-Wachstum konnte nach 5 Tagen Bakterien-Inkubation detektiert werden, was sehr viel früher war als die 3 Wochen, die aktuell bei der Behandlung von Implantatinfektionen angenommen werden. Folglich muss schon nach 5 Tagen darüber nachgedacht werden, Behandlungsmethoden gegen einen Biofilm anzuwenden. Die kurzzeitigen antibakteriellen Eigenschaften von Calciumhydroxid konnten durch den Zusatz von Silber- und Kupferionen weiter verbessert und verlängert werden. Beide Ionen erhöhten die antibakterielle Wirkung signifikant. Die Kupfermodifikation zeigte dabei einen größeren antibakteriellen Effekt als die Silbermodifikation und war gleichzeitig besser zell- verträglich. Die Zytokompatibilität der Kupfermodifikation lag auf dem Niveau der reinen Calciumhydroxidbeschichtungen. Deshalb sind Kupferionen eine vielversprechende Möglichkeit für eine weitere Verbesserung der antibakteriellen Eigenschaften. Die in dieser Arbeit vorgestellten Calciumhydroxidbeschichtungen haben ein großes Potential als antibakterielle Oberflächen und können sehr leicht auch auf komplizierte Geometrien aufgebracht werden. Deshalb können sie ein entscheidender Baustein bei der Vermeidung von aseptischer Lockerung und Implantatinfektionen sein. KW - Calciumhydroxid KW - Implantat KW - Beschichtung KW - antibakteriell KW - antibacterial KW - implant KW - coating KW - calciumhydroxide Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-261122 ER - TY - THES A1 - Gruber, Julia T1 - Gefrierstrukturierung von Biopolymer-Keramik-Kompositen T1 - Freeze-Structuring of Biopolymer-Ceramic-Composites N2 - Das Ziel der vorliegenden Arbeit war, die Gefrierstrukturierung von Biopolymer-Keramik-Kompositen zur Nachahmung von osteochondralem Gewebe zu untersuchen. Dies diente der Forschung an alternativen Therapiemethoden zur Regeneration von osteochondralen Defekten, da durch derzeitige Therapien oftmals nur ein minderwertiger Reparaturknorpel gebildet wird und keine langfristigen Erfolge erzielt werden. Die Herstellung der Proben zur Nachahmung von osteochondralem Gewebe erfolgte mit der Technik der Gefrierstrukturierung, wodurch anisotrope und hoch geordnete Systeme erhalten wurden. Im Rahmen einer systematischen Untersuchung wurden mehrere Parameter, wie beispielsweise der externe Temperaturgradient, variiert und deren Auswirkungen auf die Proben untersucht. Im ersten Versuchsteil wurde die bidirektionale Gefrierstrukturierung untersucht, um die Morphologie der hergestellten Proben zu optimieren. Anschließend wurden zweischichtige Alginat- bzw. Kollagen-Bruschit-Systeme zur Nachahmung von osteochondralem Gewebe hergestellt. Die erste Schicht sollte Knochen imitieren, während die zweite Schicht Knorpel nachahmte. Die Morphologie der hergestellten Proben wurde unter dem Stereo- und Rasterelektronenmikroskop untersucht. Zur Untersuchung des mechanischen Verbundes zwischen den Schichten wurden Zugversuche durchgeführt. Alle hergestellten Systeme waren hoch geordnet und anisotrop. Die zweischichtigen Systeme wiesen einen Verbund beider Schichten auf und durch die Variation verschiedenster Parameter konnte ein näheres Verständnis des Einflusses dieser auf die Probenmorphologie erlangt werden. N2 - The aim of the present work was to investigate the freeze-structuring of biopolymer-ceramic-composites to mimic osteochondral tissue. This served to research alternative therapy methods for the regeneration of osteochondral defects, as current therapies often do not achieve long-term success. The preparation of samples to mimic osteochondral tissue was performed using the technique of freeze-structuring, obtaining anisotropic and highly ordered systems. As part of a systematic investigation several parameters, such as the external temperature gradient, were varied and their effects on the samples were studied. In the first part of the experiment, bidirectional freeze-structuring was investigated to optimize the morphology of the prepared samples. Subsequently, two-layered alginate- or collagen-bruschite-systems were prepared to mimic osteochondral tissue. The first layer was intended to mimic bone, while the second layer mimicked cartilage. The morphology of the prepared samples was examined under the microscope. Tensile tests were performed to investigate the mechanical bond between the layers. All the fabricated systems were highly ordered and anisotropic. The two-layered systems had a composite of both layers and by varying a wide range of parameters, a more detailed understanding of the influence of these on the sample morphology could be obtained. KW - Gerichtete Erstarrung KW - Gefrierstrukturierung KW - Freeze-Structuring KW - Osteochondrales Gewebe Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-259533 ER - TY - THES A1 - Youssef, Almoatazbellah T1 - Fabrication of Micro-Engineered Scaffolds for Biomedical Application T1 - Fabrikation von Scaffolds mit optimierter Mikroarchitektur für biomedizinische Anwendungen N2 - Thermoplastic polymers have a history of decades of safe and effective use in the clinic as implantable medical devices. In recent years additive manufacturing (AM) saw increased clinical interest for the fabrication of customizable and implantable medical devices and training models using the patients’ own radiological data. However, approval from the various regulatory bodies remains a significant hurdle. A possible solution is to fabricate the AM scaffolds using materials and techniques with a clinical safety record, e.g. melt processing of polymers. Melt Electrowriting (MEW) is a novel, high resolution AM technique which uses thermoplastic polymers. MEW produces scaffolds with microscale fibers and precise fiber placement, allowing the control of the scaffold microarchitecture. Additionally, MEW can process medical-grade thermoplastic polymers, without the use of solvents paving the way for the production of medical devices for clinical applications. This pathway is investigated in this thesis, where the layout is designed to resemble the journey of a medical device produced via MEW from conception to early in vivo experiments. To do so, first, a brief history of the development of medical implants and the regenerative capability of the human body is given in Chapter 1. In Chapter 2, a review of the use of thermoplastic polymers in medicine, with a focus on poly(ε-caprolactone) (PCL), is illustrated, as this is the polymer used in the rest of the thesis. This review is followed by a comparison of the state of the art, regarding in vivo and clinical experiments, of three polymer melt AM technologies: melt-extrusion, selective laser sintering and MEW. The first two techniques already saw successful translation to the bedside, producing patient-specific, regulatory-approved AM implants. To follow in the footsteps of these two technologies, the MEW device parameters need to be optimized. The MEW process parameters and their interplay are further discussed in Chapter 3 focusing on the importance of a steady mass flow rate of the polymer during printing. MEW reaches a balance between polymer flow, the stabilizing electric field and moving collector to produce reproducible, high-resolution scaffolds. An imbalance creates phenomena like fiber pulsing or arcing which result in defective scaffolds and potential printer damage. Chapter 4 shows the use of X-ray microtomography (µCT) as a non-destructive method to characterize the pore-related features: total porosity and the pore size distribution. MEW scaffolds are three-dimensional (3D) constructs but have long been treated in the literature as two-dimensional (2D) ones and characterized mainly by microscopy, including stereo- and scanning electron microscopy, where pore size was simply reported as the distance between the fibers in a single layer. These methods, together with the trend of producing scaffolds with symmetrical pores in the 0/90° and 0/60/120° laydown patterns, disregarded the lateral connections between pores and the potential of MEW to be used for more complex 3D structures, mimicking the extracellular matrix. Here we characterized scaffolds in the aforementioned symmetrical laydown patterns, along with the more complex 0/45/90/135° and 0/30/60/90/120/150° ones. A 2D pore size estimation was done first using stereomicroscopy, followed by and compared to µCT scanning. The scaffolds with symmetrical laydown patterns resulted in the predominance of one pore size, while those with more complex patterns had a broader distribution, which could be better shown by µCT scans. Moreover, in the symmetrical scaffolds, the size of 3D pores was not able to reach the value of the fiber spacing due to a flattening effect of the scaffold, where the thickness of the scaffold was less than the fiber spacing, further restricting the pore size distribution in such scaffolds. This method could be used for quality assurance of fabricated scaffolds prior to use in in vitro or in vivo experiments and would be important for a clinical translation. Chapter 5 illustrates a proof of principle subcutaneous implantation in vivo experiment. MEW scaffolds were already featured in small animal in vivo experiments, but to date, no analysis of the foreign body reaction (FBR) to such implants was performed. FBR is an immune reaction to implanted foreign materials, including medical devices, aimed at protecting the host from potential adverse effects and can interfere with the function of some medical implants. Medical-grade PCL was used to melt electrowrite scaffolds with 50 and 60 µm fiber spacing for the 0/90° and 0/60/120° laydown patterns, respectively. These implants were implanted subcutaneously in immunocompetent, outbred mice, with appropriate controls, and explanted after 2, 4, 7 and 14 days. A thorough characterization of the scaffolds before implantation was done, followed by a full histopathological analysis of the FBR to the implants after excision. The scaffolds, irrespective of their pore geometry, induced an extensive FBR in the form of accumulation of foreign body giant cells around the fiber walls, in a manner that almost occluded available pore spaces with little to no neovascularization. This reaction was not induced by the material itself, as the same reaction failed to develop in the PCL solid film controls. A discussion of the results was given with special regard to the literature available on flat surgical meshes, as well as other hydrogel-based porous scaffolds with similar pore sizes. Finally, a general summary of the thesis in Chapter 6 recapitulates the most important points with a focus on future directions for MEW. N2 - Thermoplastische Polymere werden seit Jahrzehnten erfolgreich in der Klinik eingesetzt und für die Herstellung von Medizinprodukten verwendet. Vorangetrieben durch das zunehmende klinische Interesse an additiven Fertigungsverfahren, z.B. zur Herstellung patientenspezifischer Trainingsmodelle und implantierbarer Medizinprodukte, rücken thermoplastische Materialien noch mehr in den Fokus der klinischen Forschung. Allerdings stellt die Marktzulassung durch die verschiedenen Gesundheitsbehörden eine große Hürde dar. Eine mögliche Lösung ist die Gerüstfabrikation mit Materialien und Verfahren, die bereits etablierte Sicherheitsstandards durchlaufen haben, z. B. die Schmelzverarbeitung der Polymere. Ein neuartiges und hochauflösendes additives Fertigungsverfahren, welches die Verarbeitung von Thermoplasten ermöglicht, ist Melt Electrowriting (MEW). Mittels MEW lassen sich Gerüste, die aus Fasern mit Durchmessern im Mikrometerbereich zusammengesetzt sind, herstellen. Neben der hohen Kontrolle über den Faserdurchmesser ermöglicht MEW auch eine genaue Ablage der Fasern und erlaubt dadurch, die Mikroarchitektur der Konstrukte vorzugeben. Zudem kann das Verfahren medizinisch zugelassene thermoplastische Polymere ohne die Verwendung von Lösungsmitteln verarbeiten und ist somit für die Herstellung medizinischer Produkte sehr relevant. Diese Relevanz sollte im Rahmen der vorliegenden Dissertation evaluiert werden, indem der Weg, den ein Medizinprodukt von der Konzeption bis hin zu in vivo Vorversuchen durchlaufen muss, anhand von Konstrukten, die mittels MEW hergestellt wurden, nachgeahmt wurde. Um eine Basis für das Verständnis dieses Prozesses zu schaffen, wird in Kapitel 1 erst die Geschichte der Entwicklung medizinischer Implantate zusammengefasst sowie ein Einblick in die regenerativen Fähigkeiten des menschlichen Körpers gegeben. Das zweite Kapitel befasst sich mit der Anwendung von thermoplastischen Polymeren im Bereich implantierbarer Medizinprodukte, wobei der Hauptfokus auf Poly(ε-caprolactone) (PCL) liegt, da dies der in der vorliegenden Arbeit verwendete Thermoplast ist. Es folgt ein Vergleich von in vivo sowie klinischen Versuchen dreier für die Biomedizin relevanten additiven Fertigungsverfahren, mit denen sich thermoplastische Polymere verarbeiten lassen: Die Mikro-Schmelzextrusion, das selektive Lasersintern und das MEW. Die ersten zwei Verfahren sind bereits erfolgreich in klinischen Anwendungen etabliert und ermöglichen die routinemäßige Herstellung von additiv gefertigten, patientenspezifischen, auf dem Markt zugelassenen Implantaten. Damit MEW in diese Fußstapfen treten kann, müssen die Prozessparameter und deren Zusammenspiel genau analysiert werden. Dieser Thematik widmet sich Kapitel 3, wobei die Untersuchung des Massendurchsatzes des Polymers während des Druckens diskutiert wird. Um den MEW-Prozess kontrollieren zu können, muss eine Balance zwischen Polymerdurchsatz, dem stabilisierenden elektrischen Feld und dem beweglichen Kollektor erreicht werden. Dies ist Grundlage für die reproduzierbare Herstellung hochaufgelöster Konstrukte. Ein Ungleichgewicht der Prozessparameter verursacht Phänomene wie Fiber Pulsing oder sogar elektrischen Durchschlag, welche zu defekten Konstrukten oder sogar zur Schädigung des Druckers führen können. Kapitel 4 zeigt die Anwendung der Röntgenmikrocomputertomographie (µCT) als eine zerstörungsfreie Charakterisierungsmethode für MEW-Konstrukte, die die Quantifizierung charakteristischer Eigenschaften wie der Porosität und der Porengrößenverteilung ermöglicht. MEW-Konstrukte wurden in der Literatur lange als zweidimensional behandelt und hauptsächlich durch mikroskopische Verfahren wie die Stereo- und Rasterelektronmikroskopie charakterisiert. Die zweidimensionale Porengröße wurde hauptsächlich durch die Bestimmung des Faserabstands definiert und daraus errechnet, mit einer Tendenz der Herstellung der Konstrukte mit symmetrischen Poren in 0/90° und 0/60/120° Ablagemustern. Da es sich bei den Konstrukten jedoch um dreidimensionale (3D) Fasergerüste handelt, wurden die seitlichen Verbindungen zwischen den Poren und das Potential der Anwendung des MEW für die Herstellung von komplexeren 3D-Strukturen, wie bei der extrazellulären Matrix mit interkonnektierenden Poren, vernachlässigt. Aus diesem Grund wurden in der vorliegenden Arbeit µCT-Scans verwendet, um die Porosität der Konstrukte besser wiedergeben zu können. Hierzu wurden verschiedene Ablagemuster mit symmetrischen Poren in 0/90° und 0/60/120° Mustern und komplexere Porenstrukturen durch Ablagen von 0/45/90/135° und 0/30/60/90/120/150° Geometrien hergestellt. Diese Konstrukte wurden dann mittels mikroskopischer und tomographischer Aufnahmen charakterisiert und die Ergebnisse miteinander verglichen. Es zeigte sich, dass symmetrische Ablagemuster zu Konstrukten mit der Prädominanz einer Porengröße geführt haben. Bei den komplexeren Strukturen ergab sich jedoch ein klarer Unterschied, weil die interkonnektierenden Poren nur mit Hilfe von µCT-Scans erfasst werden konnten. Dies zeigte sich durch eine breitere Porenverteilung bei der Auswertung der rekonstruierten Scans. Die Porengrößen in den Konstrukten mit den symmetrischen Mustern konnten aufgrund einer Verflachungswirkung nicht die des Faserabstands erreichen. Die Dicke der Konstrukte war geringer als der Faserabstand mit einer weiteren einschränkenden Wirkung auf die Porenverteilung in den symmetrischen Konstrukten. µCT kann deshalb für die Qualitätssicherung von medizinischen Produkten, die mittels MEW hergestellt wurden, eingesetzt werden. Da die Methode zerstörungsfrei ist, könnte sie auch vor in vitro oder in vivo Versuchen verwendet werden. Kapitel 5 präsentiert eine Machbarkeitsstudie eines subkutanen in vivo Implantationsversuchs. Aus der Literatur ist zwar bekannt, dass MEW-Konstrukte bereits in vivo in Kleintierversuchen verwendet wurden, eine Analyse der Fremdkörperreaktion (FKR) zu solchen Implantaten wurde bisher jedoch noch nicht durchgeführt. FKR ist eine Immunreaktion gegen fremde, implantierte Materialien, einschließlich medizinischer Geräte, um den Wirt vor potenziellen Nebenwirkungen zu schützen. Allerdings könnte sie die Funktion verschiedener medizinischer Implantate beeinträchtigen Um dieser Fragestellung nachzugehen, wurde im Rahmen der vorliegenden Dissertation PCL mittels MEW zu Konstrukten mit 50 und 60 µm Fiberabstand in 0/90° bzw. 0/60/120° Ablagemuster verarbeitet. Diese Konstrukte wurden subkutan in immunkompetente, fremdgezüchtete Mäuse mit entsprechenden Kontrollen implantiert und nach 2, 4, 7 und 14 Tagen explantiert. Vor der Implantation wurde die Konstrukte ausführlich charakterisiert, gefolgt von einer vollen histopathologischen Analyse des FKR. Unabhängig von der Porengeometrie haben die Konstrukte eine deutliche Immunreaktion im Sinne einer Ansammlung von Fremdkörperriesenzellen um die Fasern der Konstrukte hervorgerufen. Hierbei wurden die Poren fast komplett verschlossen, ohne dass es zu einer Neovaskularisation kam. Es konnte nachgewiesen werden, dass die deutliche Immunantwort nicht durch das Material hervorgerufen wurde, da sie bei der Implantation von dichtem PCL-Film nicht beobachtet wurde. Eine Diskussion der Ergebnisse erfolgte unter Berücksichtigung aktueller Literatur zu klinischen Versuchen von flachen chirurgischen Netzen sowie porösen Hydrogel-basierten Implantaten mit vergleichbarer Porengröße. Abschließend wird die Arbeit in Kapitel 6 zusammengefasst und die wichtigsten Punkte rekapituliert. Der Fokus des Kapitels liegt hierbei auf dem zukünftigen Potential des MEW als Fabrikationsmethode für medizinische Produkte. KW - melt electrowriting KW - medical device KW - biomaterials KW - subcutaneous implanation KW - x-ray micro computed tomography Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-235457 ER - TY - JOUR A1 - Nadernezhad, Ali A1 - Ryma, Matthias A1 - Genç, Hatice A1 - Cicha, Iwona A1 - Jüngst, Thomasz A1 - Groll, Jürgen T1 - Melt electrowriting of isomalt for high‐resolution templating of embedded microchannels JF - Advanced Material Technologies N2 - Fabrication of microchannels using 3D printing of sugars as fugitive material is explored in different fields, including microfluidics. However, establishing reproducible methods for the controlled production of sugar structures with sub-100 μm dimensions remains a challenge. This study pioneers the processing of sugars by melt electrowriting (MEW) enabling the fabrication of structures with so far unprecedented resolution from Isomalt. Based on a systematic variation of process parameters, fibers with diameters down to 20 μm can be fabricated. The flexibility in the adjustment of fiber diameter by on-demand alteration of MEW parameters enables generating constructs with perfusable channels within polydimethylsiloxane molds. These channels have a diameter that can be adjusted from 30 to 200 μm in a single design. Taken together, the experiments show that MEW strongly benefits from the thermal and physical stability of Isomalt, providing a robust platform for the fabrication of small-diameter embedded microchannel systems. KW - medicine KW - sugar glass printing KW - embedded templating KW - melt electrowriting KW - microfibers KW - microfluidics KW - sacrificial printing Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-256401 VL - 6 IS - 8 ER - TY - JOUR A1 - Ryma, Matthias A1 - Tylek, Tina A1 - Liebscher, Julia A1 - Blum, Carina A1 - Fernandez, Robin A1 - Böhm, Christoph A1 - Kastenmüller, Wolfgang A1 - Gasteiger, Georg A1 - Groll, Jürgen T1 - Translation of collagen ultrastructure to biomaterial fabrication for material-independent but highly efficient topographic immunomodulation JF - Advanced materials N2 - Supplement-free induction of cellular differentiation and polarization solely through the topography of materials is an auspicious strategy but has so far significantly lagged behind the efficiency and intensity of media-supplementation-based protocols. Consistent with the idea that 3D structural motifs in the extracellular matrix possess immunomodulatory capacity as part of the natural healing process, it is found in this study that human-monocyte-derived macrophages show a strong M2a-like prohealing polarization when cultured on type I rat-tail collagen fibers but not on collagen I films. Therefore, it is hypothesized that highly aligned nanofibrils also of synthetic polymers, if packed into larger bundles in 3D topographical biomimetic similarity to native collagen I, would induce a localized macrophage polarization. For the automated fabrication of such bundles in a 3D printing manner, the strategy of “melt electrofibrillation” is pioneered by the integration of flow-directed polymer phase separation into melt electrowriting and subsequent selective dissolution of the matrix polymer postprocessing. This process yields nanofiber bundles with a remarkable structural similarity to native collagen I fibers, particularly for medical-grade poly(ε-caprolactone). These biomimetic fibrillar structures indeed induce a pronounced elongation of human-monocyte-derived macrophages and unprecedentedly trigger their M2-like polarization similar in efficacy as interleukin-4 treatment. KW - biofabrication KW - extracellular matrix KW - immunomodulation KW - macrophages KW - melt electrofibrillation KW - melt electrowriting Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-256381 VL - 33 IS - 33 ER - TY - JOUR A1 - Mieszczanek, Pawel A1 - Robinson, Thomas M. A1 - Dalton, Paul D. A1 - Hutmacher, Dietmar W. T1 - Convergence of Machine Vision and Melt Electrowriting JF - Advanced Materials N2 - Melt electrowriting (MEW) is a high-resolution additive manufacturing technology that balances multiple parametric variables to arrive at a stable fabrication process. The better understanding of this balance is underscored here using high-resolution camera vision of jet stability profiles in different electrical fields. Complementing this visual information are fiber-diameter measurements obtained at precise points, allowing the correlation to electrified jet properties. Two process signatures—the jet angle and for the first time, the Taylor cone area—are monitored and analyzed with a machine vision system, while SEM imaging for diameter measurement correlates real-time information. This information, in turn, allows the detection and correction of fiber pulsing for accurate jet placement on the collector, and the in-process assessment of the fiber diameter. Improved process control is used to successfully fabricate collapsible MEW tubes; structures that require exceptional accuracy and printing stability. Using a precise winding angle of 60° and 300 layers, the resulting 12 mm-thick tubular structures have elastic snap-through instabilities associated with mechanical metamaterials. This study provides a detailed analysis of the fiber pulsing occurrence in MEW and highlights the importance of real-time monitoring of the Taylor cone volume to better understand, control, and predict printing instabilities. KW - polycaprolactone KW - 3D printing KW - digitization KW - electrohydrodynamic KW - melt electrospinning writing Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-256365 VL - 33 IS - 29 ER - TY - JOUR A1 - Seifert, Annika A1 - Groll, Jürgen A1 - Weichhold, Jan A1 - Boehm, Anne V. A1 - Müller, Frank A. A1 - Gbureck, Uwe T1 - Phase Conversion of Ice‐Templated α‐Tricalcium Phosphate Scaffolds into Low‐Temperature Calcium Phosphates with Anisotropic Open Porosity JF - Advanced Engineering Materials N2 - The current study aims to extend the material platform for anisotropically structured calcium phosphates to low-temperature phases such as calcium-deficient hydroxyapatite (CDHA) or the secondary phosphates monetite and brushite. This is achieved by the phase conversion of highly porous α-tricalcium phosphate (α-TCP) scaffolds fabricated by ice-templating into the aforementioned phases by hydrothermal treatment or incubation in phosphoric acid. Prior to these steps, α-TCP scaffolds are either sintered for 8 h at 1400 °C or remain in their original state. Both nonsintered and sintered α-TCP specimens are converted into CDHA by hydrothermal treatment, while a transformation into monetite and brushite is achieved by incubation in phosphoric acid. Hydrothermal treatment for 72 h at 175 °C increases the porosity in nonsintered samples from 85% to 88% and from 75% to 88% in the sintered ones. An increase in the specific surface area from (1.102 ± 0.005) to (9.17 ± 0.01) m2 g−1 and from (0.190 ± 0.004) to (2.809 ± 0.002) m2 g−1 due to the phase conversion is visible for both the nonsintered and sintered samples. Compressive strength of the nonsintered samples increases significantly from (0.76 ± 0.11) to (5.29 ± 0.94) MPa due to incubation in phosphoric acid. KW - phase conversion KW - α-tricalcium phosphate Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-256311 VL - 23 IS - 5 ER - TY - JOUR A1 - Doryab, Ali A1 - Taskin, Mehmet Berat A1 - Stahlhut, Philipp A1 - Schröppel, Andreas A1 - Orak, Sezer A1 - Voss, Carola A1 - Ahluwalia, Arti A1 - Rehberg, Markus A1 - Hilgendorff, Anne A1 - Stöger, Tobias A1 - Groll, Jürgen A1 - Schmid, Otmar T1 - A Bioinspired in vitro Lung Model to Study Particokinetics of Nano-/Microparticles Under Cyclic Stretch and Air-Liquid Interface Conditions JF - Frontiers in Bioengineering and Biotechnology N2 - Evolution has endowed the lung with exceptional design providing a large surface area for gas exchange area (ca. 100 m\(^{2}\)) in a relatively small tissue volume (ca. 6 L). This is possible due to a complex tissue architecture that has resulted in one of the most challenging organs to be recreated in the lab. The need for realistic and robust in vitro lung models becomes even more evident as causal therapies, especially for chronic respiratory diseases, are lacking. Here, we describe the Cyclic In VItro Cell-stretch (CIVIC) “breathing” lung bioreactor for pulmonary epithelial cells at the air-liquid interface (ALI) experiencing cyclic stretch while monitoring stretch-related parameters (amplitude, frequency, and membrane elastic modulus) under real-time conditions. The previously described biomimetic copolymeric BETA membrane (5 μm thick, bioactive, porous, and elastic) was attempted to be improved for even more biomimetic permeability, elasticity (elastic modulus and stretchability), and bioactivity by changing its chemical composition. This biphasic membrane supports both the initial formation of a tight monolayer of pulmonary epithelial cells (A549 and 16HBE14o\(^{-}\)) under submerged conditions and the subsequent cell-stretch experiments at the ALI without preconditioning of the membrane. The newly manufactured versions of the BETA membrane did not improve the characteristics of the previously determined optimum BETA membrane (9.35% PCL and 6.34% gelatin [w/v solvent]). Hence, the optimum BETA membrane was used to investigate quantitatively the role of physiologic cyclic mechanical stretch (10% linear stretch; 0.33 Hz: light exercise conditions) on size-dependent cellular uptake and transepithelial transport of nanoparticles (100 nm) and microparticles (1,000 nm) for alveolar epithelial cells (A549) under ALI conditions. Our results show that physiologic stretch enhances cellular uptake of 100 nm nanoparticles across the epithelial cell barrier, but the barrier becomes permeable for both nano- and micron-sized particles (100 and 1,000 nm). This suggests that currently used static in vitro assays may underestimate cellular uptake and transbarrier transport of nanoparticles in the lung. KW - lung cell model KW - cyclic stretch KW - ALI culture KW - bioinspired membrane KW - particle study Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-223830 SN - 2296-4185 VL - 9 ER - TY - JOUR A1 - Groll, J A1 - Burdick, J A A1 - Cho, D-W A1 - Derby, B A1 - Gelinsky, M A1 - Heilshorn, S C A1 - Jüngst, T A1 - Malda, J A1 - Mironov, V A A1 - Nakayama, K A1 - Ovsianikov, A A1 - Sun, W A1 - Takeuchi, S A1 - Yoo, J J A1 - Woodfield, T B F T1 - A definition of bioinks and their distinction from biomaterial inks JF - Biofabrication N2 - Biofabrication aims to fabricate biologically functional products through bioprinting or bioassembly (Groll et al 2016 Biofabrication 8 013001). In biofabrication processes, cells are positioned at defined coordinates in three-dimensional space using automated and computer controlled techniques (Moroni et al 2018 Trends Biotechnol. 36 384–402), usually with the aid of biomaterials that are either (i) directly processed with the cells as suspensions/dispersions, (ii) deposited simultaneously in a separate printing process, or (iii) used as a transient support material. Materials that are suited for biofabrication are often referred to as bioinks and have become an important area of research within the field. In view of this special issue on bioinks, we aim herein to briefly summarize the historic evolution of this term within the field of biofabrication. Furthermore, we propose a simple but general definition of bioinks, and clarify its distinction from biomaterial inks. KW - bioink KW - biomaterial ink KW - definition Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-253993 VL - 11 IS - 1 ER - TY - JOUR A1 - Sun, Wei A1 - Starly, Binil A1 - Daly, Andrew C A1 - Burdick, Jason A A1 - Groll, Jürgen A1 - Skeldon, Gregor A1 - Shu, Wenmiao A1 - Sakai, Yasuyuki A1 - Shinohara, Marie A1 - Nishikawa, Masaki A1 - Jang, Jinah A1 - Cho, Dong-Woo A1 - Nie, Minghao A1 - Takeuchi, Shoji A1 - Ostrovidov, Serge A1 - Khademhosseini, Ali A1 - Kamm, Roger D A1 - Mironov, Vladimir A1 - Moroni, Lorenzo A1 - Ozbolat, Ibrahim T T1 - The bioprinting roadmap JF - Biofabrication N2 - This bioprinting roadmap features salient advances in selected applications of the technique and highlights the status of current developments and challenges, as well as envisioned advances in science and technology, to address the challenges to the young and evolving technique. The topics covered in this roadmap encompass the broad spectrum of bioprinting; from cell expansion and novel bioink development to cell/stem cell printing, from organoid-based tissue organization to bioprinting of human-scale tissue structures, and from building cell/tissue/organ-on-a-chip to biomanufacturing of multicellular engineered living systems. The emerging application of printing-in-space and an overview of bioprinting technologies are also included in this roadmap. Due to the rapid pace of methodological advancements in bioprinting techniques and wide-ranging applications, the direction in which the field should advance is not immediately clear. This bioprinting roadmap addresses this unmet need by providing a comprehensive summary and recommendations useful to experienced researchers and newcomers to the field. KW - biofabrication KW - bioprinting KW - cell printing KW - biological models KW - disease models KW - organoids KW - organ-on-a-chip Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-254027 VL - 12 IS - 2 ER - TY - JOUR A1 - Shan, Junwen A1 - Böck, Thomas A1 - Keller, Thorsten A1 - Forster, Leonard A1 - Blunk, Torsten A1 - Groll, Jürgen A1 - Teßmar, Jörg T1 - TEMPO/TCC as a Chemo Selective Alternative for the Oxidation of Hyaluronic Acid JF - Molecules N2 - Hyaluronic acid (HA)-based hydrogels are very commonly applied as cell carriers for different approaches in regenerative medicine. HA itself is a well-studied biomolecule that originates from the physiological extracellular matrix (ECM) of mammalians and, due to its acidic polysaccharide structure, offers many different possibilities for suitable chemical modifications which are necessary to control, for example, network formation. Most of these chemical modifications are performed using the free acid function of the polymer and, additionally, lead to an undesirable breakdown of the biopolymer’s backbone. An alternative modification of the vicinal diol of the glucuronic acid is oxidation with sodium periodate to generate dialdehydes via a ring opening mechanism that can subsequently be further modified or crosslinked via Schiff base chemistry. Since this oxidation causes a structural destruction of the polysaccharide backbone, it was our intention to study a novel synthesis protocol frequently applied to selectively oxidize the C6 hydroxyl group of saccharides. On the basis of this TEMPO/TCC oxidation, we studied an alternative hydrogel platform based on oxidized HA crosslinked using adipic acid dihydrazide as the crosslinker. KW - hyaluronic acid KW - oxidation KW - hydrogel formation KW - Schiff base chemistry Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-248362 SN - 1420-3049 VL - 26 IS - 19 ER - TY - JOUR A1 - Tylek, Tina A1 - Blum, Carina A1 - Hrynevich, Andrei A1 - Schlegelmilch, Katrin A1 - Schilling, Tatjana A1 - Dalton, Paul D A1 - Groll, Jürgen T1 - Precisely defined fiber scaffolds with 40 μm porosity induce elongation driven M2-like polarization of human macrophages JF - Biofabrication N2 - Macrophages are key players of the innate immune system that can roughly be divided into the pro-inflammatory M1 type and the anti-inflammatory, pro-healing M2 type. While a transient initial pro-inflammatory state is helpful, a prolonged inflammation deteriorates a proper healing and subsequent regeneration. One promising strategy to drive macrophage polarization by biomaterials is precise control over biomaterial geometry. For regenerative approaches, it is of particular interest to identify geometrical parameters that direct human macrophage polarization. For this purpose, we advanced melt electrowriting (MEW) towards the fabrication of fibrous scaffolds with box-shaped pores and precise inter-fiber spacing from 100 μm down to only 40 μm. These scaffolds facilitate primary human macrophage elongation accompanied by differentiation towards the M2 type, which was most pronounced for the smallest pore size of 40 μm. These new findings can be important in helping to design new biomaterials with an enhanced positive impact on tissue regeneration. KW - cell elongation KW - human macrophages KW - melt electrowriting (MEW) KW - macrophage polarization KW - 3D scaffolds Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-254012 VL - 12 IS - 2 ER - TY - JOUR A1 - Diloksumpan, Paweena A1 - de Ruijter, Mylène A1 - Castilho, Miguel A1 - Gbureck, Uwe A1 - Vermonden, Tina A1 - van Weeren, P René A1 - Malda, Jos A1 - Levato, Riccardo T1 - Combining multi-scale 3D printing technologies to engineer reinforced hydrogel-ceramic interfaces JF - Biofabrication N2 - Multi-material 3D printing technologies that resolve features at different lengths down to the microscale open new avenues for regenerative medicine, particularly in the engineering of tissue interfaces. Herein, extrusion printing of a bone-biomimetic ceramic ink and melt electrowriting (MEW) of spatially organized polymeric microfibres are integrated for the biofabrication of an osteochondral plug, with a mechanically reinforced bone-to-cartilage interface. A printable physiological temperature-setting bioceramic, based on α-tricalcium phosphate, nanohydroxyapatite and a custom-synthesized biodegradable and crosslinkable poloxamer, was developed as bone support. The mild setting reaction of the bone ink enabled us to print directly within melt electrowritten polycaprolactone meshes, preserving their micro-architecture. Ceramic-integrated MEW meshes protruded into the cartilage region of the composite plug, and were embedded with mechanically soft gelatin-based hydrogels, laden with articular cartilage chondroprogenitor cells. Such interlocking design enhanced the hydrogel-to-ceramic adhesion strength >6.5-fold, compared with non-interlocking fibre architectures, enabling structural stability during handling and surgical implantation in osteochondral defects ex vivo. Furthermore, the MEW meshes endowed the chondral compartment with compressive properties approaching those of native cartilage (20-fold reinforcement versus pristine hydrogel). The osteal and chondral compartment supported osteogenesis and cartilage matrix deposition in vitro, and the neo-synthesized cartilage matrix further contributed to the mechanical reinforcement at the ceramic-hydrogel interface. This multi-material, multi-scale 3D printing approach provides a promising strategy for engineering advanced composite constructs for the regeneration of musculoskeletal and connective tissue interfaces. KW - biofabrication KW - melt electrowriting KW - bioinspired interface KW - bone and cartilage tissue engineering KW - microfibres KW - ceramics Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-254005 VL - 12 IS - 2 ER - TY - JOUR A1 - Hazur, Jonas A1 - Detsch, Rainer A1 - Karakaya, Emine A1 - Kaschta, Joachim A1 - Teßmar, Jörg A1 - Schneidereit, Dominik A1 - Friedrich, Oliver A1 - Schubert, Dirk W A1 - Boccaccini, Aldo R T1 - Improving alginate printability for biofabrication: establishment of a universal and homogeneous pre-crosslinking technique JF - Biofabrication N2 - Many different biofabrication approaches as well as a variety of bioinks have been developed by researchers working in the field of tissue engineering. A main challenge for bioinks often remains the difficulty to achieve shape fidelity after printing. In order to overcome this issue, a homogeneous pre-crosslinking technique, which is universally applicable to all alginate-based materials, was developed. In this study, the Young’s Modulus after post-crosslinking of selected hydrogels, as well as the chemical characterization of alginate in terms of M/G ratio and molecular weight, were determined. With our technique it was possible to markedly enhance the printability of a 2% (w/v) alginate solution, without using a higher polymer content, fillers or support structures. 3D porous scaffolds with a height of around 5 mm were printed. Furthermore, the rheological behavior of different pre-crosslinking degrees was studied. Shear forces on cells as well as the flow profile of the bioink inside the printing nozzle during the process were estimated. A high cell viability of printed NIH/3T3 cells embedded in the novel bioink of more than 85% over a time period of two weeks could be observed. KW - alginate KW - bioprinting KW - rheology KW - bioink KW - pre-crosslinking KW - printability KW - shape fidelity Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-254030 VL - 12 IS - 4 ER - TY - JOUR A1 - Dogan, Leyla A1 - Scheuring, Ruben A1 - Wagner, Nicole A1 - Ueda, Yuichiro A1 - Schmidt, Sven A1 - Wörsdörfer, Philipp A1 - Groll, Jürgen A1 - Ergün, Süleyman T1 - Human iPSC-derived mesodermal progenitor cells preserve their vasculogenesis potential after extrusion and form hierarchically organized blood vessels JF - Biofabrication N2 - Post-fabrication formation of a proper vasculature remains an unresolved challenge in bioprinting. Established strategies focus on the supply of the fabricated structure with nutrients and oxygen and either rely on the mere formation of a channel system using fugitive inks or additionally use mature endothelial cells and/or peri-endothelial cells such as smooth muscle cells for the formation of blood vessels in vitro. Functional vessels, however, exhibit a hierarchical organization and multilayered wall structure that is important for their function. Human induced pluripotent stem cell-derived mesodermal progenitor cells (hiMPCs) have been shown to possess the capacity to form blood vessels in vitro, but have so far not been assessed for their applicability in bioprinting processes. Here, we demonstrate that hiMPCs, after formulation into an alginate/collagen type I bioink and subsequent extrusion, retain their ability to give rise to the formation of complex vessels that display a hierarchical network in a process that mimics the embryonic steps of vessel formation during vasculogenesis. Histological evaluations at different time points of extrusion revealed the initial formation of spheres, followed by lumen formation and further structural maturation as evidenced by building a multilayered vessel wall and a vascular network. These findings are supported by immunostainings for endothelial and peri-endothelial cell markers as well as electron microscopic analyses at the ultrastructural level. Moreover, endothelial cells in capillary-like vessel structures deposited a basement membrane-like matrix at the basal side between the vessel wall and the alginate-collagen matrix. After transplantation of the printed constructs into the chicken chorioallantoic membrane (CAM) the printed vessels connected to the CAM blood vessels and get perfused in vivo. These results evidence the applicability and great potential of hiMPCs for the bioprinting of vascular structures mimicking the basic morphogenetic steps of de novo vessel formation during embryogenesis. KW - vascular biofabrication KW - human iPSC-derived mesodermal cells (hiMPCs) KW - extrusion of hiMPC-containing bioinks alginate + collagen type I KW - multilayered vessel wall with intimate, media and adventitia KW - vascular network and hierarchical organized vessels KW - electron microscopy KW - serial block face EM Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-254046 VL - 13 IS - 4 ER - TY - JOUR A1 - Hochleitner, Gernot A1 - Jüngst, Tomasz A1 - Brown, Toby D A1 - Hahn, Kathrin A1 - Moseke, Claus A1 - Jakob, Franz A1 - Dalton, Paul D A1 - Groll, Jürgen T1 - Additive manufacturing of scaffolds with sub-micron filaments via melt electrospinning writing JF - Biofabrication N2 - The aim of this study was to explore the lower resolution limits of an electrohydrodynamic process combined with direct writing technology of polymer melts. Termed melt electrospinning writing, filaments are deposited layer-by-layer to produce discrete three-dimensional scaffolds for in vitro research. Through optimization of the parameters (flow rate, spinneret diameter, voltage, collector distance) for poly-ϵ-caprolactone, we could direct-write coherent scaffolds with ultrafine filaments, the smallest being 817 ± 165 nm. These low diameter filaments were deposited to form box-structures with a periodicity of 100.6 ± 5.1 μm and a height of 80 μm (50 stacked filaments; 100 overlap at intersections). We also observed oriented crystalline regions within such ultrafine filaments after annealing at 55 °C. The scaffolds were printed upon NCO-sP(EO-stat-PO)-coated glass slide surfaces and withstood frequent liquid exchanges with negligible scaffold detachment for at least 10 days in vitro. KW - additive manufacturing KW - 3D printing KW - biodegradable polymers KW - microstructures KW - nanostructures Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-254053 VL - 7 IS - 3 ER - TY - JOUR A1 - Paxton, Naomi A1 - Smolan, Willi A1 - Böck, Thomas A1 - Melchels, Ferry A1 - Groll, Jürgen A1 - Jungst, Tomasz T1 - Proposal to assess printability of bioinks for extrusion-based bioprinting and evaluation of rheological properties governing bioprintability JF - Biofabrication N2 - The development and formulation of printable inks for extrusion-based 3D bioprinting has been a major challenge in the field of biofabrication. Inks, often polymer solutions with the addition of crosslinking to form hydrogels, must not only display adequate mechanical properties for the chosen application but also show high biocompatibility as well as printability. Here we describe a reproducible two-step method for the assessment of the printability of inks for bioprinting, focussing firstly on screening ink formulations to assess fibre formation and the ability to form 3D constructs before presenting a method for the rheological evaluation of inks to characterise the yield point, shear thinning and recovery behaviour. In conjunction, a mathematical model was formulated to provide a theoretical understanding of the pressure-driven, shear thinning extrusion of inks through needles in a bioprinter. The assessment methods were trialled with a commercially available crème, poloxamer 407, alginate-based inks and an alginate-gelatine composite material. Yield stress was investigated by applying a stress ramp to a number of inks, which demonstrated the necessity of high yield for printable materials. The shear thinning behaviour of the inks was then characterised by quantifying the degree of shear thinning and using the mathematical model to predict the window of printer operating parameters in which the materials could be printed. Furthermore, the model predicted high shear conditions and high residence times for cells at the walls of the needle and effects on cytocompatibility at different printing conditions. Finally, the ability of the materials to recover to their original viscosity after extrusion was examined using rotational recovery rheological measurements. Taken together, these assessment techniques revealed significant insights into the requirements for printable inks and shear conditions present during the extrusion process and allow the rapid and reproducible characterisation of a wide variety of inks for bioprinting. KW - bioprinting KW - rheology KW - modelling KW - bioink Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-254061 VL - 9 IS - 4 ER - TY - JOUR A1 - Götz, Lisa-Marie A1 - Holeczek, Katharina A1 - Groll, Jürgen A1 - Jüngst, Tomasz A1 - Gbureck, Uwe T1 - Extrusion-Based 3D Printing of Calcium Magnesium Phosphate Cement Pastes for Degradable Bone Implants JF - Materials N2 - This study aimed to develop printable calcium magnesium phosphate pastes that harden by immersion in ammonium phosphate solution post-printing. Besides the main mineral compound, biocompatible ceramic, magnesium oxide and hydroxypropylmethylcellulose (HPMC) were the crucial components. Two pastes with different powder to liquid ratios of 1.35 g/mL and 1.93 g/mL were characterized regarding their rheological properties. Here, ageing over the course of 24 h showed an increase in viscosity and extrusion force, which was attributed to structural changes in HPMC as well as the formation of magnesium hydroxide by hydration of MgO. The pastes enabled printing of porous scaffolds with good dimensional stability and enabled a setting reaction to struvite when immersed in ammonium phosphate solution. Mechanical performance under compression was approx. 8–20 MPa as a monolithic structure and 1.6–3.0 MPa for printed macroporous scaffolds, depending on parameters such as powder to liquid ratio, ageing time, strand thickness and distance. KW - magnesium phosphate cement KW - extrusion-based 3D printing KW - degradable implant Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-246110 SN - 1996-1944 VL - 14 IS - 18 ER - TY - JOUR A1 - Lüdemann, Martin A1 - Jakuscheit, Axel A1 - Ewald, Andrea A1 - Frühmann, Leena A1 - Hölscher-Doht, Stefanie A1 - Rudert, Maximilian A1 - von Hertzberg-Boelch, Sebastian Philipp T1 - Influence of Tranexamic Acid on Elution Characteristics and Compressive Strength of Antibiotic-Loaded PMMA-Bone Cement with Gentamicin JF - Materials N2 - Purpose: The topical application of tranexamic acid (TXA) into the joint space during total joint arthroplasty (TJA) with no increase of complications, has been widely reported. We investigated the influence of TXA on antibiotic release, activity of the released antibiotic against a clinical isolate of S. aureus, and compressive strength of a widely used commercially prepared gentamicin-loaded cement brand (PALACOS R + G). Method: 12 bone cement cylinders (diameter and height = 6 and 12 mm, respectively) were molded. After curing in air for at least 1 h, six of the cylinders were completely immersed in 5 mL of fetal calf serum (FCS) and the other six were completely immersed in a solution consisting of 4.9 mL of FCS and 0.1 mL (10 mg) of TXA. Gentamicin elution tests were performed over 7 d. Four hundred µL of the gentamicin eluate were taken every 24 h for the first 7 d without renewing the immersion fluid. The gentamicin concentration was determined in a clinical analyzer using a homogeny enzyme immuno-assay. The antimicrobial activity of the eluate, obtained after day 7, was tested. An agar diffusion test regime was used with Staphylococcus aureus. Bacteria were grown in a LB medium and plated on LB agar plates to get a bacterial lawn. Fifty µL of each eluate were pipetted on 12-mm diameter filter discs, which were placed in the middle of the agar gel. After 24 h of cultivation at 37 °C, the zone of inhibition (ZOI) for each specimen was measured. The compressive strength of the cements was determined per ISO 5833. Results: At each time point in the gentamicin release test, the difference in gentamicin concentration, obtained from specimens immersed in the FCS solution only and those immersed in the FCS + TXA solution was not significant (p = 0.055–0.522). The same trend was seen in each of the following parameters, after 7 d of immersion: (1) Cumulative gentamicin concentration (p < 0.297); (2) gentamicin activity against S. aureus (strongly visible); (3) ZOI size (mostly > 20 mm) (p = 0.631); and (4) compressive strength (p = 0.262). Conclusions: For the PALACOS R + G specimens, the addition of TXA to FCS does not produce significant decreases in gentamicin concentration, in the activity of the gentamicin eluate against a clinical isolate of S. aureus, the zone of inhibition of S. aureus, and in the compressive strength of the cement, after 7 d of immersion in the test solution. KW - gentamicin-loaded poly (methyl methacrylate) bone cement KW - total joint arthroplasty KW - total knee arthroplasty KW - tranexamic acid Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-246236 SN - 1996-1944 VL - 14 IS - 19 ER - TY - THES A1 - Haker, Felix T1 - Entwicklung eines in vitro Ansatzes zur Testung von Biofilm-Nachweismethoden und Antibiotikawirksamkeit T1 - Development of an in vitro approach for testing biofilm detection methods and antibiotic effectiveness N2 - Diese Arbeit befasst sich mit der Untersuchung von aus Patientenisolaten gewonnenen S. aureus Kulturen und deren Biofilmbildung auf implantatähnlichen Titan-Oberflächen. Ziel war es, den zeitlichen Ablauf bakterieller periprothetischer Infektionen über einen Zeitraum von 21 Tagen zu beschreiben und besser zu verstehen. Dazu sollte überprüft werden, ob ein fluoreszenzspektrometrisch ausgewertetes LIVE/DEAD Assay eine zusätzliche Aussage zum Status der im Biofilm befindlichen Zellen liefern kann. Zudem wurde die Biofilmentwicklung anhand etablierter fluoreszenzspektrometrischer Methoden (Concanavalin-A-Markierung extrazellulärer Polymerer Substanzen, DNA-Markierung mit Hoechst 33342) untersucht. Es konnte ein reproduzierbarer Verlauf der Entwicklung des Biofilms, sowie der DNA-Menge aufgezeigt werden. Das LIVE/DEAD Assay lieferte keine signifikanten Ergebnisse in Bezug auf das Verhältnis lebender zu toter S. aureus Zellen im Biofilm. Weiter wurde die Angreifbarkeit des frühen, am Titan adhärenten Biofilms (Alter 1-5 Tage) durch das in der Orthopädie gängig eingesetzte Antibiotikum Gentamicin untersucht. Die Wirksamkeit konnte zu jedem getesteten Zeitpunkt der ersten fünf Tage durch Anzucht von Kolonien bestätigt werden. Auch wurde die Wirksamkeit über das LIVE/DEAD Assay überprüft, jedoch konnten hier keine aussagekräftigen Daten gewonnen werden, die diese Methode zur Überprüfung der Antibiotikawirksamkeit empfehlen könnten. N2 - This thesis deals with the investigation of S. aureus cultures obtained from patient isolates and their biofilm formation on implant-like titanium surfaces. The aim was to describe and better understand the chronological sequence of bacterial periprosthetic infections over a period of 21 days. For this purpose, it should be checked whether a LIVE/DEAD assay evaluated by fluorescence spectrometry can provide additional information on the status of the cells in the biofilm. In addition, the development of biofilms was investigated using established fluorescence spectrometric methods (Concanavalin-A labelling of extracellular polymer substances, DNA labelling with Hoechst 33342). A reproducible course of the development of the biofilm and the amount of DNA could be shown. The LIVE/DEAD assay did not provide any significant results with regarding the ratio of live to dead S. aureus cells in the biofilm. The vulnerability of the early biofilm adhering to titanium (age 1-5 days) was also examined by using the antibiotic gentamicin, which is commonly used in orthopedics. By cultivating colonies it could be shown, that the antibiotic was effective at every tested time during the first five days. The effectiveness was also checked using the LIVE / DEAD assay, but no meaningful data could be obtained here that could recommend this method for checking the effectiveness of antibiotics against adherent Biofilms. KW - Biofilm KW - Endoprothese KW - periprothetische Infektion KW - periprosthetic infection Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-250703 ER - TY - JOUR A1 - Mechau, Jannik A1 - Frank, Andreas A1 - Bakirci, Ezgi A1 - Gumbel, Simon A1 - Jungst, Tomasz A1 - Giesa, Reiner A1 - Groll, Jürgen A1 - Dalton, Paul D. A1 - Schmidt, Hans‐Werner T1 - Hydrophilic (AB)\(_{n}\) Segmented Copolymers for Melt Extrusion‐Based Additive Manufacturing JF - Macromolecular Chemistry and Physics N2 - Several manufacturing technologies beneficially involve processing from the melt, including extrusion‐based printing, electrospinning, and electrohydrodynamic jetting. In this study, (AB)\(_{n}\) segmented copolymers are tailored for melt‐processing to form physically crosslinked hydrogels after swelling. The copolymers are composed of hydrophilic poly(ethylene glycol)‐based segments and hydrophobic bisurea segments, which form physical crosslinks via hydrogen bonds. The degree of polymerization was adjusted to match the melt viscosity to the different melt‐processing techniques. Using extrusion‐based printing, a width of approximately 260 µm is printed into 3D constructs, with excellent interlayer bonding at fiber junctions, due to hydrogen bonding between the layers. For melt electrospinning, much thinner fibers in the range of about 1–15 µm are obtained and produced in a typical nonwoven morphology. With melt electrowriting, fibers are deposited in a controlled way to well‐defined 3D constructs. In this case, multiple fiber layers fuse together enabling constructs with line width in the range of 70 to 160 µm. If exposed to water the printed constructs swell and form physically crosslinked hydrogels that slowly disintegrate, which is a feature for soluble inks within biofabrication strategies. In this context, cytotoxicity tests confirm the viability of cells and thus demonstrating biocompatibility of this class of copolymers. KW - 3D printing KW - (AB)\(_{n}\) segmented copolymers KW - biocompatibility KW - melt electrowriting Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-224513 VL - 222 IS - 1 ER - TY - THES A1 - Haschke, Sebastian T1 - Untersuchung Thiol-En vernetzter Gelatine Hydrogele und Vergleich mit Alginat-Gelatine in Bezug auf das in vitro Zellverhalten von Fibroblasten T1 - Analysis of thiol-ene crosslinked gelatin hydrogels and comparison with alginate-gelatin regarding the in vitro cell behaviour of fibroblasts N2 - Hydrogele stehen als Material für den 3D-Biodruck zunehmend im Fokus aktueller Forschung, da sie aufgrund ihrer wasserhaltigen Struktur optimale Voraussetzungen für Anwendungen der Zellkultur aufweisen. Durch die Verarbeitung solcher Biotinten mittels additiver Fertigungstechniken der Biofabrikation erhofft man sich beschädigtes oder krankes Gewebe zu heilen oder zu ersetzen. Allerdings wird der Fortschritt in diesem Bereich durch einen Mangel an geeigneten Materialien gebremst, weshalb die Entwicklung neuer Biotinten von zentraler Bedeutung ist. Das Polymer GelAGE ist ein am Lehrstuhl für Funktionswerkstoffe der Medizin und Zahnheilkunde der Universität Würzburg synthetisiertes Hydrogelsystem. Zu diesem über eine Thiol-En Reaktion vernetzenden Material stehen systematische Untersuchungen der für die in vitro Zellkultur relevanten Eigenschaften noch aus. Das Ziel dieser Arbeit war daher die biologische Evaluation von GelAGE und der Vergleich mit der Biotinte Alginat-Gelatine. Zu diesem Zweck wurden L929-Zellen für 7 Tage in verschiedenen Hydrogelzusammensetzungen in vitro kultiviert. Um die zytokompatiblen Eigenschaften in den verschiedenen Versuchsgruppen zu untersuchen, wurden die Proben mittels der in vitro Testverfahren Live/Dead Färbung, DNA-Assay, CCK-8-Assay und Phalloidin-Färbung analysiert. Im Rahmen dieser Arbeit konnte ein Herstellungsprotokoll für das Material GelAGE etabliert werden, welches eine Grundlage für die Durchführung weiterer biologischer Experimente bietet. Das Resultat der biologischen Untersuchungen war, dass das Polymer GelAGE als zytokompatibel bewertet werden kann, es jedoch nicht die Qualität des Alginat-Gelatine Hydrogelsystems aufweist. Allerdings konnten die Eigenschaften der GelAGE Proben teilweise durch eine Modifikation mit Humanem Plättchenlysat verbessert werden. Des Weiteren konnten deutliche Unterschiede in der Zell-Material- Interaktion zwischen den verschiedenen GelAGE Varianten nachgewiesen werden. N2 - Hydrogels are in the focus of current research as a material for 3D-bioprinting, as they provide optimal conditions for cell culture applications. By processing such bioinks through additive manufacturing techniques, researchers aim to heal or replace damaged or diseased tissue. However, progress in this field is hampered by a lack of suitable materials, which is why the development of new bioinks is crucial. The polymer GelAGE is a hydrogel system synthesised at the Department for Functional Materials in Medicine and Dentistry at the University of Würzburg, which cross-links via a thiol-ene reaction. Systematic investigations of the properties that are relevant for the in vitro cell culture of this material are still pending. Therefore, the aim of this thesis was the biological evaluation of GelAGE and the comparison with the bioink alginate-gelatine. For this purpose, L929 cells were cultured in vitro for 7 days in different hydrogel compositions. In order to investigate the cytocompatibility the samples were analysed using the in vitro assays Live/Dead staining, DNA-assay, CCK-8-assay and Phalloidin staining. Within the scope of this project, it was possible to establish a protocol for the material GelAGE, which provides a basis for conducting further biological experiments. The result of the biological investigations was that the polymer GelAGE can be evaluated as cytocompatible, although it does not have the quality of the alginate-gelatine hydrogel system. However, the properties of the GelAGE samples could be partially improved by modification with human platelet lysate. Furthermore, clear differences in the cell-material interaction between the different GelAGE variants could be demonstrated. KW - Hydrogel KW - Biotinte KW - 3D-Biodruck KW - Biodruck KW - Biofabrikation KW - GelAGE KW - Alginate-Gelatine KW - L929 Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-248727 ER - TY - JOUR A1 - Doryab, Ali A1 - Taskin, Mehmet Berat A1 - Stahlhut, Philipp A1 - Schröppel, Andreas A1 - Wagner, Darcy E. A1 - Groll, Jürgen A1 - Schmid, Otmar T1 - A Biomimetic, Copolymeric Membrane for Cell‐Stretch Experiments with Pulmonary Epithelial Cells at the Air‐Liquid Interface JF - Advanced Functional Materials N2 - Chronic respiratory diseases are among the leading causes of death worldwide, but only symptomatic therapies are available for terminal illness. This in part reflects a lack of biomimetic in vitro models that can imitate the complex environment and physiology of the lung. Here, a copolymeric membrane consisting of poly(ε‐)caprolactone and gelatin with tunable properties, resembling the main characteristics of the alveolar basement membrane is introduced. The thin bioinspired membrane (≤5 μm) is stretchable (up to 25% linear strain) with appropriate surface wettability and porosity for culturing lung epithelial cells under air–liquid interface conditions. The unique biphasic concept of this membrane provides optimum characteristics for initial cell growth (phase I) and then switch to biomimetic properties for cyclic cell‐stretch experiments (phase II). It is showed that physiologic cyclic mechanical stretch improves formation of F‐actin cytoskeleton filaments and tight junctions while non‐physiologic over‐stretch induces cell apoptosis, activates inflammatory response (IL‐8), and impairs epithelial barrier integrity. It is also demonstrated that cyclic physiologic stretch can enhance the cellular uptake of nanoparticles. Since this membrane offers considerable advantages over currently used membranes, it may lead the way to more biomimetic in vitro models of the lung for translation of in vitro response studies into clinical outcome. KW - alveolar‐capillary barrier KW - cyclic mechanical stretch KW - hybrid polymers KW - in vitro cell‐stretch model KW - tunable ultra‐thin biphasic membrane Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-225645 VL - 31 IS - 10 ER - TY - JOUR A1 - Horder, Hannes A1 - Guaza Lasheras, Mar A1 - Grummel, Nadine A1 - Nadernezhad, Ali A1 - Herbig, Johannes A1 - Ergün, Süleyman A1 - Teßmar, Jörg A1 - Groll, Jürgen A1 - Fabry, Ben A1 - Bauer-Kreisel, Petra A1 - Blunk, Torsten T1 - Bioprinting and differentiation of adipose-derived stromal cell spheroids for a 3D breast cancer-adipose tissue model JF - Cells N2 - Biofabrication, including printing technologies, has emerged as a powerful approach to the design of disease models, such as in cancer research. In breast cancer, adipose tissue has been acknowledged as an important part of the tumor microenvironment favoring tumor progression. Therefore, in this study, a 3D-printed breast cancer model for facilitating investigations into cancer cell-adipocyte interaction was developed. First, we focused on the printability of human adipose-derived stromal cell (ASC) spheroids in an extrusion-based bioprinting setup and the adipogenic differentiation within printed spheroids into adipose microtissues. The printing process was optimized in terms of spheroid viability and homogeneous spheroid distribution in a hyaluronic acid-based bioink. Adipogenic differentiation after printing was demonstrated by lipid accumulation, expression of adipogenic marker genes, and an adipogenic ECM profile. Subsequently, a breast cancer cell (MDA-MB-231) compartment was printed onto the adipose tissue constructs. After nine days of co-culture, we observed a cancer cell-induced reduction of the lipid content and a remodeling of the ECM within the adipose tissues, with increased fibronectin, collagen I and collagen VI expression. Together, our data demonstrate that 3D-printed breast cancer-adipose tissue models can recapitulate important aspects of the complex cell–cell and cell–matrix interplay within the tumor-stroma microenvironment KW - adipose-derived stromal cells KW - adipose tissue KW - bioprinting KW - breast cancer model KW - extracellular matrix KW - hyaluronic acid KW - spheroids Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-236496 VL - 10 IS - 4 ER - TY - THES A1 - Blum, Carina T1 - A first step to an integral biointerface design for the early phase of regeneration T1 - Ein erster Schritt zur Etablierung eines integralen biologischen Grenzflächendesigns für die frühe Phase der Regeneration N2 - The implantation of any foreign material into the body automatically starts an immune reaction that serves as the first, mandatory step to regenerate tissue. The course of this initial immune reaction decides on the fate of the implant: either the biomaterial will be integrated into the host tissue to subsequently fulfill its intended function (e.g., tissue regeneration), or it will be repelled by fibrous encapsulation that determines the implant failure. Especially neutrophils and macrophages play major roles during this inflammatory response and hence mainly decide on the biomaterial's fate. For clinically relevant tissue engineering approaches, biomaterials may be designed in shape and morphology as well as in their surface functionality to improve the healing outcome, but also to trigger stem cell responses during the subsequent tissue regeneration phase. The main focus of this thesis was to unravel the influence of scaffold characteristics, including scaffold morphology and surface functionality, on primary human innate immune cells (neutrophils and macrophages) and human mesenchymal stromal cells (hMSCs) to assess their in vitro immune response and tissue regeneration capacity, respectively. The fiber-based constructs were produced either via melt electrowriting (MEW), when the precise control over scaffold morphology was required, or via solution electrospinning (ES), when the scaffold design could be neglected. All the fiber-based scaffolds used throughout this thesis were composed of the polymer poly(ε caprolactone) (PCL). A novel strategy to model and alleviate the first direct cell contact of the immune system with a peptide-bioactived fibrous material was presented in chapter 3 by treating the material with human neutrophil elastase (HNE) to imitate the neutrophil attack. The main focus of this study was put on the effect of HNE towards an RGDS-based peptide that was immobilized on the surface of a fibrous material to improve subsequent L929 cell adhesion. The elastase efficiently degraded the peptide-functionality, as evidenced by a decreased L929 cell adhesion, since the peptide integrated a specific HNE-cleavage site (AAPV-motif). A sacrificial hydrogel coating based on primary oxidized hyaluronic acid (proxHA), which dissolved within a few days after the neutrophil attack, provided an optimal protection of the peptide-bioactivated fibrous mesh, i.e, the hydrogel alleviated the neutrophil attack and largely ensured the biomaterial's integrity. Thus, according to these results, a means to protect the biomaterial is required to overcome the neutrophil attack. Chapter 4 was based on the advancement of melt electrowriting (MEW) to improve the printing resolution of MEW scaffolds in terms of minimal inter-fiber distances and a concomitant high stacking precision. Initially, to gain a better MEW understanding, the influence of several parameters, including spinneret diameter, applied pressure, and collector velocity on mechanical properties, crystallinity, fiber diameter and fiber surface morphology was analyzed. Afterward, innovative MEW designs (e.g., box-, triangle-, round , and wall-shaped scaffolds) have been established by pushing the printing parameters to their physical limits. Further, the inter-fiber distance within a standardized box-structured scaffold was successfully reduced to 40 µm, while simultaneously a high stacking precision was maintained. In collaboration with a co-worker of my department (Tina Tylek, who performed all cell-based experiments in this study), these novel MEW scaffolds have been proven to facilitate human monocyte-derived macrophage polarization towards the regenerative M2 type in an elongation-driven manner with a more pronounced effect with decreasing pore sizes. Finally, a pro-adipogenic platform for hMSCs was developed in chapter 5 using MEW scaffolds with immobilized, complex ECM proteins (e.g., human decellularized adipose tissue (DAT), laminin (LN), and fibronectin (FN)) to test for the adipogenic differentiation potential in vitro. Within this thesis, a special short-term adipogenic induction regime enabled to more thoroughly assess the intrinsic pro-adipogenic capacity of the composite biomaterials and prevented any possible masking by the commonly used long-term application of adipogenic differentiation reagents. The scaffolds with incorporated DAT consistently showed the highest adipogenic outcome and hence provided an adipo-inductive microenvironment for hMSCs, which holds great promise for applications in soft tissue regeneration. Future studies should combine all three addressed projects in a more in vivo-related manner, comprising a co-cultivation setup of neutrophils, macrophages, and MSCs. The MEW-scaffold, particularly due to its ability to combine surface functionality and adjustable morphology, has been proven to be a successful approach for wound healing and paves the way for subsequent tissue regeneration. N2 - Die Implantation eines Biomaterials löst stets eine Immunreaktion im Körper aus, die den ersten zwingenden Schritt zur Geweberegeneration darstellt. Der Verlauf dieser anfänglichen Immunreaktion entscheidet über das Schicksal des Implantats: Entweder wird das Biomaterial in das Wirtsgewebe integriert, um anschließend seine vorgesehene Funktion (z.B. Geweberegeneration) zu erfüllen, oder aber es findet eine Abstoßungsreaktion durch Einkapselung des Implantats statt. Insbesondere Neutrophile und Makrophagen spielen für die Immunantwort eine wichtige Rolle und entscheiden daher hauptsächlich über das Schicksal des Biomaterials. Für klinisch relevante Ansätze der Gewebezüchtung können Biomaterialien sowohl in ihrer Morphologie als auch in ihrer Oberflächenfunktionalität so gestaltet werden, dass sie zum einen die Wundheilung verbessern, zum anderen auch Stammzellreaktionen während der anschließenden Geweberegenerationsphase auslösen. Der Fokus dieser Doktorarbeit lag auf der Beurteilung des Einflusses von Morphologie und Oberflächenfunktionalität fasriger Scaffolds auf die frühe Phase der Geweberegeneration. Insbesondere wurde die in vitro-Immunantwort von primären humanen Immunzellen (Neutrophile und Makrophagen) sowie die Geweberegenerationskapazität von humanen mesenchymalen Stromazellen (hMSCs) untersucht. Die hierfür verwendeten faserbasierten Poly(ε-Caprolacton) (PCL) Scaffolds wurden entweder mittels Solution Electrospinning (ES) oder Melt Electrowriting (MEW) hergestellt. Während ES eine zufällig orientierte Faserablage zur Folge hat, erlaubt MEW eine präzise Kontrolle der Scaffold-Morphologie. Zunächst wurde eine neue Strategie zur Nachahmung und Abmilderung des ersten direkten Zellkontakts während der Immunreaktion vorgestellt. Dabei wurde die Interaktion zwischen Neutrophilen mit einem Peptid-bioaktivierten Fasermaterial untersucht (Kapitel 3), wobei der sog. Neutrophilen-Angriff mittels des Enzyms Neutrophilen Elastase (HNE) nachgeahmt wurde. Das an der Faseroberfläche immobilisierte CGGGAAPVGGRGDS-Peptid verfügte über eine spezifische HNE-Schnittstelle (AAPV-Motiv), an welcher die Elastase das Peptid effizient degradieren konnte. Das Degradationsverhalten des Enzyms wurde anschließend über L929 Zelladhärenz analysiert, welche über das RGDS-Motiv im Peptid vermittelt wurde. Im Rahmen der Arbeit konnte nachgewiesen werden, dass der Neutrophilen-Angriff und die damit einhergehende Verringerung des RGDS-Motivs zu einer reduzierten Zelladhärenz führte. Die Einbettung des Scaffolds in ein Hydrogel auf der Basis von Aldehyd-haltiger Hyaluronsäure (proxHA) bot während des Neutrophilen-Angriffs einen optimalen Schutz der Peptidfunktionalität. Um diese wiederum anschließend für Adhäsionsversuche verfügbar zu machen, konnte das Hydrogelsystem derartig eingestellt werden, dass sich dieses innerhalb weniger Tage auflöste. Auf diese Weise konnte das Hydrogel den Neutrophilen-Angriff abmildern und so die Integrität des Biomaterials weitestgehend gewährleisten. Kapitel 4 behandelt die Präzisierung der Faserablage, insbesondere die Verringerung des Faserabstands, während des MEW-Prozesses. Zunächst wurde der Einfluss verschiedener Parameter (Spinndüsendurchmesser, angelegter Luftdruck und Kollektorgeschwindigkeit) auf die mechanischen Eigenschaften, die Kristallinität, den Faserdurchmesser und die Faseroberflächenmorphologie analysiert. Durch Optimierung der Druckparameter konnten innovative MEW-Designs (u.a. mit runder Porengeometrie) gedruckt werden. Der Abstand zwischen den Fasern in einem Scaffold mit standardisierter kastenförmiger Porengeometrie wurde erfolgreich auf 40 µm reduziert, während gleichzeitig eine hohe Stapelpräzision gewährleistet wurde. In Zusammenarbeit mit einer Kollegin am Lehrstuhl (Tina Tylek, die alle zellbasierten Experimente in dieser Studie durchführte) wurde nachgewiesen, dass diese innovativen MEW-Scaffolds die Polarisierung menschlicher Makrophagen in Richtung des regenerativen M2-Typs förderten. Die Makrophagen-Polarisierung ging einher mit einer Zellelongation, wobei dieser Effekt verstärkt für kleinere Porengrößen auftrat. Abschließend stand die Untersuchung der pro-adipogenen Wirkung von faserfunktionalisierten MEW-Scaffolds im Fokus (Kapitel 5), welche mit ECM-Proteinen, wie beispielsweise dezellularisiertes Fettgewebe (DAT), beschichtet wurden. Das pro-adipogene Potential dieser Materialien wurde mit Hilfe einer adipogenen Kurzzeitinduktion näher analysiert, da eine Langzeitapplikation der Differenzierungsreagenzien diesen Effekt überdeckte. Die Scaffolds mit der DAT-Beschichtung zeigten durchweg die höchste adipogene Differenzierung und boten somit für Stammzellen eine adipo-induzierende Mikroumgebung, weshalb sie für die Anwendung in der Weichgeweberegeneration sehr vielversprechend sind. An diese Arbeit anschließende Experimente sollten alle drei Projekte in einem Co-Kulturansatz von Neutrophilen, Makrophagen und MSCs kombinieren, um so einen stärkeren in vivo-Bezug herzustellen. Hierfür erweist sich das MEW-Scaffold insbesondere durch seine Kombinationsfähigkeit der Oberflächenfunktionalität und Morphologie als Ansatz für einen erfolgreichen Wundheilungsprozess und ebnet damit den Weg für eine bestmögliche Geweberegeneration. KW - Scaffold KW - Biomaterial KW - tissue regeneration KW - melt electrowriting KW - Scaffold Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-212117 ER - TY - INPR A1 - Schaefer, Natascha A1 - Janzen, Dieter A1 - Bakirci, Ezgi A1 - Hrynevich, Andrei A1 - Dalton, Paul D. A1 - Villmann, Carmen T1 - 3D Electrophysiological Measurements on Cells Embedded within Fiber-Reinforced Matrigel T2 - Advanced Healthcare Materials N2 - 2D electrophysiology is often used to determine the electrical properties of neurons, while in the brain, neurons form extensive 3D networks. Thus, performing electrophysiology in a 3D environment provides a closer situation to the physiological condition and serves as a useful tool for various applications in the field of neuroscience. In this study, we established 3D electrophysiology within a fiber-reinforced matrix to enable fast readouts from transfected cells, which are often used as model systems for 2D electrophysiology. Using melt electrowriting (MEW) of scaffolds to reinforce Matrigel, we performed 3D electrophysiology on a glycine receptor-transfected Ltk-11 mouse fibroblast cell line. The glycine receptor is an inhibitory ion channel associated when mutated with impaired neuromotor behaviour. The average thickness of the MEW scaffold was 141.4 ± 5.7µm, using 9.7 ± 0.2µm diameter fibers, and square pore spacings of 100 µm, 200 µm and 400 µm. We demonstrate, for the first time, the electrophysiological characterization of glycine receptor-transfected cells with respect to agonist efficacy and potency in a 3D matrix. With the MEW scaffold reinforcement not interfering with the electrophysiology measurement, this approach can now be further adapted and developed for different kinds of neuronal cultures to study and understand pathological mechanisms under disease conditions. KW - 3D cultures Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-244194 ER - TY - JOUR A1 - Wang, Shuang A1 - Sarwat, Mariah A1 - Wang, Peng A1 - Surrao, Denver C. A1 - Harkin, Damien G. A1 - St John, James A. A1 - Bolle, Eleonore C. L. A1 - Forget, Aurelien A1 - Dalton, Paul D. A1 - Dargaville, Tim R. T1 - Hydrogels with Cell Adhesion Peptide‐Decorated Channel Walls for Cell Guidance JF - Macromolecular Rapid Communications N2 - A method is reported for making hollow channels within hydrogels decorated with cell‐adhesion peptides exclusively at the channel surface. Sacrificial fibers of different diameters are used to introduce channels within poly(ethylene glycol) hydrogels crosslinked with maleimide‐thiol chemistry, which are backfilled with a cysteine‐containing peptide solution which is conjugated to the lumen with good spatial efficiency. This allows for peptide patterning in only the areas of the hydrogel where they are needed when used as cell‐guides, reducing the amount of required peptide 20‐fold when compared to bulk functionalization. The power of this approach is highlighted by successfully using these patterned hydrogels without active perfusion to guide fibroblasts and olfactory ensheathing cells—the latter having unique potential in neural repair therapies. KW - 3D printing KW - cell guidance KW - cell transplantation KW - melt electrowriting KW - synthetic hydrogels Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-218031 VL - 41 IS - 15 ER - TY - JOUR A1 - Liashenko, Ievgenii A1 - Hrynevich, Andrei A1 - Dalton, Paul D. T1 - Designing Outside the Box: Unlocking the Geometric Freedom of Melt Electrowriting using Microscale Layer Shifting JF - Advanced Materials N2 - Melt electrowriting, a high‐resolution additive manufacturing technology, has so far been developed with vertical stacking of fiber layers, with a printing trajectory that is constant for each layer. In this work, microscale layer shifting is introduced through deliberately offsetting the printing trajectory for each printed layer. Inaccuracies during the printing of sinusoidal walls are corrected via layer shifting, resulting in accurate control of their geometry and mechanical properties. Furthermore, more substantial layer shifting allows stacking of fiber layers in a horizontal manner, overcoming the electrostatic autofocusing effect that favors vertical layer stacking. Novel nonlinear geometries, such as overhangs, wall texturing and branching, and smooth and abrupt changes in printing trajectory are presented, demonstrating the flexibility of the layer shifting approach beyond the state‐of‐the‐art. The practice of microscale layer shifting for melt electrowriting enables more complex geometries that promise to have a profound impact on the development of products in a broad range of applications. KW - 3D printing KW - additive manufacturing KW - biomaterials KW - electrohydrodynamics KW - melt electrospinning writing Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-217974 VL - 32 IS - 28 ER - TY - JOUR A1 - Janzen, Dieter A1 - Bakirci, Ezgi A1 - Wieland, Annalena A1 - Martin, Corinna A1 - Dalton, Paul D. A1 - Villmann, Carmen T1 - Cortical Neurons form a Functional Neuronal Network in a 3D Printed Reinforced Matrix JF - Advanced Healthcare Materials N2 - Impairments in neuronal circuits underly multiple neurodevelopmental and neurodegenerative disorders. 3D cell culture models enhance the complexity of in vitro systems and provide a microenvironment closer to the native situation than with 2D cultures. Such novel model systems will allow the assessment of neuronal network formation and their dysfunction under disease conditions. Here, mouse cortical neurons are cultured from embryonic day E17 within in a fiber‐reinforced matrix. A soft Matrigel with a shear modulus of 31 ± 5.6 Pa is reinforced with scaffolds created by melt electrowriting, improving its mechanical properties and facilitating the handling. Cortical neurons display enhance cell viability and the neuronal network maturation in 3D, estimated by staining of dendrites and synapses over 21 days in vitro, is faster in 3D compared to 2D cultures. Using functional readouts with electrophysiological recordings, different firing patterns of action potentials are observed, which are absent in the presence of the sodium channel blocker, tetrodotoxin. Voltage‐gated sodium currents display a current–voltage relationship with a maximum peak current at −25 mV. With its high customizability in terms of scaffold reinforcement and soft matrix formulation, this approach represents a new tool to study neuronal networks in 3D under normal and, potentially, disease conditions. KW - 3D electrophysiology KW - 3D neuronal networks KW - cortical neurons KW - melt electrowriting Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-215400 VL - 9 IS - 9 ER - TY - JOUR A1 - Hu, Chen A1 - Hahn, Lukas A1 - Yang, Mengshi A1 - Altmann, Alexander A1 - Stahlhut, Philipp A1 - Groll, Jürgen A1 - Luxenhofer, Robert T1 - Improving printability of a thermoresponsive hydrogel biomaterial ink by nanoclay addition JF - Journal of Materials Science N2 - As a promising biofabrication technology, extrusion-based bioprinting has gained significant attention in the last decade and major advances have been made in the development of bioinks. However, suitable synthetic and stimuli-responsive bioinks are underrepresented in this context. In this work, we described a hybrid system of nanoclay Laponite XLG and thermoresponsive block copolymer poly(2-methyl-2-oxazoline)-b-poly(2-n-propyl-2-oxazine) (PMeOx-b-PnPrOzi) as a novel biomaterial ink and discussed its critical properties relevant for extrusion-based bioprinting, including viscoelastic properties and printability. The hybrid hydrogel retains the thermogelling properties but is strengthened by the added clay (over 5 kPa of storage modulus and 240 Pa of yield stress). Importantly, the shear-thinning character is further enhanced, which, in combination with very rapid viscosity recovery (~ 1 s) and structure recovery (~ 10 s), is highly beneficial for extrusion-based 3D printing. Accordingly, various 3D patterns could be printed with markedly enhanced resolution and shape fidelity compared to the biomaterial ink without added clay. KW - printability KW - thermoresponsive hydrogel Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-234894 SN - 0022-2461 VL - 56 ER - TY - THES A1 - Horvat-Csóti [geb. Horvat], Sonja T1 - Development of Nanocarriers for Treatment and Diagnostics of Aspergillosis T1 - Entwicklung von Nanoträgern für die Behandlung und Diagnose von Aspergillosis N2 - This thesis aimed to evaluate the possibility to use nanoparticles as antifungal drug carriers as well as their potential application in screening and diagnostics of invasive aspergillosis. The interaction of nanogels, superparamagnetic iron oxide nanoparticles (SPIOs) and gold nanoparticles (GNP) with fungal-specific polysaccharides, cells and biofilms was investigated. Firstly, it was evaluated how the charge of nanogels influence their interaction with fungal cells. Linear poly(glycidol)s (pG) and poly(2-methyl-2-oxazoline) (pMOx) polymers were synthesized and further functionalized with thiol groups for preparation of redox responsive nanogels. Results showed that negatively charged nanogels were internalized by the fungi to a much greater extent than positively charged ones. Furthermore, it was investigated how amphiphilicity of polymers used for preparation of nanogels influences nanogel-fungi interaction. It was concluded that nanogels prepared from polymers with degree of functionalization of 10% had the strongest interaction, regardless the length of the alkyl chain. Moreover, amphotericin B-loaded nanogels had a higher antifungal effect and lower toxicity towards mammalian cells than the free drug. In addition, inverse nanoprecipitation of thiol functionalized pGs was shown to be successful for preparation of nanogels with narrow size distribution. It was also demonstrated that crosslinking of the polymeric coating in hydrogel-like network with thiol functionalized pGs improved the SPIOs imaging performance. Finally, it was investigated whether GNPs could be used as model particles for the assessment of targeting to fungi. Fc dectin-1 was conjugated covalently to GNPs decorated with pGs, and binding affinity towards β-glucans was tested by surface plasmon resonance. In summary, this thesis demonstrated evidence for the potential of pG nanogels and pG coated nanoparticles for antifungal therapy and diagnostics of fungal infections caused by A. fumigatus. N2 - Die vorliegende Arbeit befasst sich mit der Evaluation der Eignung von Nanopartikeln für das Screening, die Diagnose und als Wirkstofftransportsysteme für die Behandlung von invasiver Aspergillose. Hierzu wurde die Interaktion von Nanogelen, superparamagnetischen Eisenoxid Nanopartikeln (SPIO) und Gold Nanopartikeln (GNP) mit pilz-spezifischen Polysacchariden, dem Pilz Aspergillus fumigatus sowie Pilz-Biofilmen untersucht. ... KW - Therapeutisches System KW - Nanogels KW - Aspergillosis KW - Iron Oxide Nanoparticles KW - Dectin-1 KW - Poly(glycidol)s KW - Aspergillose KW - Nanopartikel KW - Wirkstoff-Träger-System Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-238218 ER - TY - JOUR A1 - Schmidt, Stefanie A1 - Abinzano, Florencia A1 - Mensinga, Anneloes A1 - Teßmar, Jörg A1 - Groll, Jürgen A1 - Malda, Jos A1 - Levato, Riccardo A1 - Blunk, Torsten T1 - Differential production of cartilage ECM in 3D agarose constructs by equine articular cartilage progenitor cells and mesenchymal stromal cells JF - International Journal of Molecular Sciences N2 - Identification of articular cartilage progenitor cells (ACPCs) has opened up new opportunities for cartilage repair. These cells may be used as alternatives for or in combination with mesenchymal stromal cells (MSCs) in cartilage engineering. However, their potential needs to be further investigated, since only a few studies have compared ACPCs and MSCs when cultured in hydrogels. Therefore, in this study, we compared chondrogenic differentiation of equine ACPCs and MSCs in agarose constructs as monocultures and as zonally layered co-cultures under both normoxic and hypoxic conditions. ACPCs and MSCs exhibited distinctly differential production of the cartilaginous extracellular matrix (ECM). For ACPC constructs, markedly higher glycosaminoglycan (GAG) contents were determined by histological and quantitative biochemical evaluation, both in normoxia and hypoxia. Differential GAG production was also reflected in layered co-culture constructs. For both cell types, similar staining for type II collagen was detected. However, distinctly weaker staining for undesired type I collagen was observed in the ACPC constructs. For ACPCs, only very low alkaline phosphatase (ALP) activity, a marker of terminal differentiation, was determined, in stark contrast to what was found for MSCs. This study underscores the potential of ACPCs as a promising cell source for cartilage engineering. KW - ACPC KW - chondroprogenitors KW - tissue engineering KW - MSC KW - agarose KW - hypoxia KW - ECM KW - co-culture KW - zonal KW - cartilage Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-236180 SN - 1422-0067 VL - 21 IS - 19 ER - TY - JOUR A1 - Lorson, Thomas A1 - Ruopp, Matthias A1 - Nadernezhad, Ali A1 - Eiber, Julia A1 - Vogel, Ulrich A1 - Jungst, Tomasz A1 - Lühmann, Tessa T1 - Sterilization Methods and Their Influence on Physicochemical Properties and Bioprinting of Alginate as a Bioink Component JF - ACS Omega N2 - Bioprinting has emerged as a valuable threedimensional (3D) biomanufacturing method to fabricate complex hierarchical cell-containing constructs. Spanning from basic research to clinical translation, sterile starting materials are crucial. In this study, we present pharmacopeia compendial sterilization methods for the commonly used bioink component alginate. Autoclaving (sterilization in saturated steam) and sterile filtration followed by lyophilization as well as the pharmacopeia non-compendial method, ultraviolet (UV)-irradiation for disinfection, were assessed. The impact of the sterilization methods and their effects on physicochemical and rheological properties, bioprinting outcome, and sterilization efficiency of alginate were detailed. Only sterile filtration followed by lyophilization as the sterilization method retained alginate's physicochemical properties and bioprinting behavior while resulting in a sterile outcome. This set of methods provides a blueprint for the analysis of sterilization effects on the rheological and physicochemical pattern of bioink components and is easily adjustable for other polymers used in the field of biofabrication in the future. KW - hydrogels Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-229460 N1 - Lizenz: https://pubs.acs.org/page/policy/authorchoice_termsofuse.html VL - 5 IS - 12 ER - TY - JOUR A1 - Weissenberger, Manuel A1 - Weissenberger, Manuela H. A1 - Wagenbrenner, Mike A1 - Heinz, Tizian A1 - Reboredo, Jenny A1 - Holzapfel, Boris M. A1 - Rudert, Maximilian A1 - Groll, Jürgen A1 - Evans, Christopher H. A1 - Steinert, Andre F. T1 - Different types of cartilage neotissue fabricated from collagen hydrogels and mesenchymal stromal cells via SOX9, TGFB1 or BMP2 gene transfer JF - PLoS One N2 - Objective As native cartilage consists of different phenotypical zones, this study aims to fabricate different types of neocartilage constructs from collagen hydrogels and human mesenchymal stromal cells (MSCs) genetically modified to express different chondrogenic factors. Design Human MSCs derived from bone-marrow of osteoarthritis (OA) hips were genetically modified using adenoviral vectors encoding sex-determining region Y-type high-mobility-group-box (SOX)9,transforming growth factor beta (TGFB) 1or bone morphogenetic protein (BMP) 2cDNA, placed in type I collagen hydrogels and maintained in serum-free chondrogenic media for three weeks. Control constructs contained unmodified MSCs or MSCs expressing GFP. The respective constructs were analyzed histologically, immunohistochemically, biochemically, and by qRT-PCR for chondrogenesis and hypertrophy. Results Chondrogenesis in MSCs was consistently and strongly induced in collagen I hydrogels by the transgenesSOX9,TGFB1andBMP2as evidenced by positive staining for proteoglycans, chondroitin-4-sulfate (CS4) and collagen (COL) type II, increased levels of glycosaminoglycan (GAG) synthesis, and expression of mRNAs associated with chondrogenesis. The control groups were entirely non-chondrogenic. The levels of hypertrophy, as judged by expression of alkaline phosphatase (ALP) and COL X on both the protein and mRNA levels revealed different stages of hypertrophy within the chondrogenic groups (BMP2>TGFB1>SOX9). Conclusions Different types of neocartilage with varying levels of hypertrophy could be generated from human MSCs in collagen hydrogels by transfer of genes encoding the chondrogenic factorsSOX9,TGFB1andBMP2. This technology may be harnessed for regeneration of specific zones of native cartilage upon damage. KW - stem cells KW - in vitro KW - chondrogenic differentiation KW - repair KW - chondrocytes KW - transplantation KW - stimulation KW - scaffolds KW - defects KW - therapy Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230494 VL - 15 IS - 8 ER - TY - JOUR A1 - Fuchs, Konrad F. A1 - Heilig, Philipp A1 - McDonogh, Miriam A1 - Boelch, Sebastian A1 - Gbureck, Uwe A1 - Meffert, Rainer H. A1 - Hoelscher-Doht, Stefanie A1 - Jordan, Martin C. T1 - Cement-augmented screw fixation for calcaneal fracture treatment: a biomechanical study comparing two injectable bone substitutes JF - Journal of Orthopaedic Surgery and Research N2 - Background The role of cement-augmented screw fixation for calcaneal fracture treatment remains unclear. Therefore, this study was performed to biomechanically analyze screw osteosynthesis by reinforcement with either a calcium phosphate (CP)-based or polymethylmethacrylate (PMMA)-based injectable bone cement. Methods A calcaneal fracture (Sanders type IIA) including a central cancellous bone defect was generated in 27 synthetic bones, and the specimens were assigned to 3 groups. The first group was fixed with four screws (3.5 mm and 6.5 mm), the second group with screws and CP-based cement (Graftys (R) QuickSet; Graftys, Aix-en-Provence, France), and the third group with screws and PMMA-based cement (Traumacem (TM) V+; DePuy Synthes, Warsaw, IN, USA). Biomechanical testing was conducted to analyze peak-to-peak displacement, total displacement, and stiffness in following a standardized protocol. Results The peak-to-peak displacement under a 200-N load was not significantly different among the groups; however, peak-to-peak displacement under a 600- and 1000-N load as well as total displacement exhibited better stability in PMMA-augmented screw osteosynthesis compared to screw fixation without augmentation. The stiffness of the construct was increased by both CP- and PMMA-based cements. Conclusion Addition of an injectable bone cement to screw osteosynthesis is able to increase fixation strength in a biomechanical calcaneal fracture model with synthetic bones. In such cases, PMMA-based cements are more effective than CP-based cements because of their inherently higher compressive strength. However, whether this high strength is required in the clinical setting for early weight-bearing remains controversial, and the non-degradable properties of PMMA might cause difficulties during subsequent interventions in younger patients. KW - arthritis KW - bone KW - calcaneus KW - cement KW - fracture KW - fixation KW - osteoporosis KW - sanders KW - screw Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230336 VL - 15 ER - TY - JOUR A1 - Horvat, Sonja A1 - Vogel, Patrick A1 - Kampf, Thomas A1 - Brandl, Andreas A1 - Alshamsan, Aws A1 - Alhadlaq, Hisham A. A1 - Ahamed, Maqusood A1 - Albrecht, Krystyna A1 - Behr, Volker C. A1 - Beilhack, Andreas A1 - Groll, Jürgen T1 - Crosslinked Coating Improves the Signal‐to‐Noise Ratio of Iron Oxide Nanoparticles in Magnetic Particle Imaging (MPI) JF - ChemNanoMat N2 - Magnetic particle imaging is an emerging tomographic method used for evaluation of the spatial distribution of iron‐oxide nanoparticles. In this work, the effect of the polymer coating on the response of particles was studied. Particles with covalently crosslinked coating showed improved signal and image resolution. KW - crosslinked coating KW - imaging agents KW - magnetic properties KW - MPI KW - MPS Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-214718 VL - 6 IS - 5 SP - 755 EP - 758 ER - TY - JOUR A1 - Weissenberger, M. A1 - Weissenberger, M. H. A1 - Gilbert, F. A1 - Groll, J. A1 - Evans, C. H. A1 - Steinert, A. F. T1 - Reduced hypertrophy in vitro after chondrogenic differentiation of adult human mesenchymal stem cells following adenoviral SOX9 gene delivery JF - BMC Musculoskeletal Disorders N2 - Background Mesenchymal stem cell (MSC) based-treatments of cartilage injury are promising but impaired by high levels of hypertrophy after chondrogenic induction with several bone morphogenetic protein superfamily members (BMPs). As an alternative, this study investigates the chondrogenic induction of MSCs via adenoviral gene-delivery of the transcription factor SOX9 alone or in combination with other inducers, and comparatively explores the levels of hypertrophy and end stage differentiation in a pellet culture system in vitro. Methods First generation adenoviral vectors encoding SOX9, TGFB1 or IGF1 were used alone or in combination to transduce human bone marrow-derived MSCs at 5 x 10\(^2\) infectious particles/cell. Thereafter cells were placed in aggregates and maintained for three weeks in chondrogenic medium. Transgene expression was determined at the protein level (ELISA/Western blot), and aggregates were analysed histologically, immunohistochemically, biochemically and by RT-PCR for chondrogenesis and hypertrophy. Results SOX9 cDNA was superior to that encoding TGFB1, the typical gold standard, as an inducer of chondrogenesis in primary MSCs as evidenced by improved lacuna formation, proteoglycan and collagen type II staining, increased levels of GAG synthesis, and expression of mRNAs associated with chondrogenesis. Moreover, SOX9 modified aggregates showed a markedly lower tendency to progress towards hypertrophy, as judged by expression of the hypertrophy markers alkaline phosphatase, and collagen type X at the mRNA and protein levels. Conclusion Adenoviral SOX9 gene transfer induces chondrogenic differentiation of human primary MSCs in pellet culture more effectively than TGFB1 gene transfer with lower levels of chondrocyte hypertrophy after 3 weeks of in vitro culture. Such technology might enable the formation of more stable hyaline cartilage repair tissues in vivo. KW - Mesenchymal stem cell KW - Cartilage KW - SOX9 KW - Gene therapy KW - Chondrogenesis KW - Hypertrophy KW - Adenovirus KW - Bone marrow Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-229232 VL - 20 ER - TY - THES A1 - Hinderer, Sandra T1 - Charakterisierung der Freisetzung verschiedener Antibiotika aus resorbierbaren anorganischen Knochenersatzmaterialien sowie die Untersuchung des Einflusses auf materialcharakteristische Eigenschaften T1 - Characterization of the release of various antibiotics from resorbable inorganic bone substitute materials and the study of the influence on material characteristic properties N2 - Synthetische anorganische Knochenersatzmaterialien auf Calcium-Phosphat- und Magnesium-Phosphat-Basis wurden in der hier vorliegenden Dissertation mit verschiedenen handelsüblichen Antibiotika versetzt und deren Freisetzungsverhalten charakterisiert. Zudem wurde der Einfluss des Antibiotikazusatzes auf bestimmte materialcharakteristische Eigenschaften untersucht, hierbei fanden die Quecksilberporosimetrie, die Röntgendiffraktometrie und die Rasterelektronenmikroskopie ihre Anwendung. Insbesondere für die Knochenersatzmaterialien auf Calcium-Phosphat-Basis sollte eine klinisch praktikable und demnach möglichst einfache Methode etabliert werden, um die Kombination mit einem Antibiotikum durchzuführen. Die Detektion der Antibiotika erfolgte mit Hilfe eines UV/VIS-Spektrophotometers. Zudem wurde für einige ausgewählte Kombinationen aus Antibiotikum und Knochenersatzmaterial durch einen Agardiffusionstest die antibakterielle Wirkung nach der Freisetzung aus dem jeweiligen Trägermaterial bestätigt. N2 - Synthetic inorganic bone substitute materials based on calcium phosphate and magnesium phosphate were mixed with various commercially available antibiotics and their release behavior was characterized in the present dissertation. In addition, the influence of the antibiotic addition on certain material characteristic properties was investigated using mercury porosimetry, X-ray diffractometry and scanning electron microscopy. For the calcium-phosphate-based bone substitutes in particular, the aim was to establish a clinically practicable and therefore as simple as possible method for carrying out the combination with an antibiotic. Antibiotics were detected using a UV/VIS spectrophotometer. In addition, for some selected combinations of antibiotic and bone substitute material, an agar diffusion test was used to confirm the antibacterial effect after release from the respective carrier material. KW - Wirkstofffreisetzung KW - Antibiotikum KW - Knochenzement KW - Calciumphosphat KW - UV-VIS-Spektroskopie KW - Antibiotikafreisetzung KW - local drug delivery Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230836 ER - TY - THES A1 - Jung, Melissa T1 - Entwicklung und Charakterisierung vorgemischter lagerstabiler Zementpasten für den 3D-Druck T1 - Development and characterization of premixed cement pastes for 3D printing N2 - Ziel dieser Arbeit war die Entwicklung und Charakterisierung vorgemischter Calciumphosphatzementpasten sowie die Übertragung des Konzepts dieser Pasten auf den 3D-Druck. Es wurden drei verschiedene Zementformulierungen untersucht, basierend auf Pulvermischungen aus α-TCP/DCPA/CaCO3 (Biozement D), TTCP/DCPA und β-TCP/MCPA, die auf verschiedene Materialeigenschaften geprüft und einem 3D-Druckversuch unterzogen wurden. Die Biozement D Paste wurde mit drei Pulver-Flüssigkeits-Verhältnissen (PLR) (80/20, 85/15, 87/13), die TTCP/DCPA Paste mit zwei PLR (83/17, 85/15), und die β-TCP/MCPA Paste ebenfalls mit zwei PLR (67/33, 70/30) getestet. Alle Pasten konnten mit dem 3D-Drucker erfolgreich verdruckt werden. Die Biozement D Paste mit dem PLR 85/15 stellte sich in ihrer Gruppe als die geeignetste Paste heraus. Bessere Ergebnisse bezüglich der Injizierbarkeit und Druckbarkeit erreichte die TTCP/DCPA Paste. Hier wurden mit beiden PLR formstabile Scaffolds erzielt. Feine Wabenmuster konnten mit dem PLR von 83/17 in Kombination mit einer hohen Druckgeschwindigkeit hergestellt werden. Mit dem höheren PLR (85/15) und einer niedrigeren Druckgeschwindigkeit stieg die Formstabilität weiter an, wodurch die hexagonale Struktur exakter gedruckt werden konnte. Ein gutes Druckergebnis konnte auch mit der β-TCP/MCPA Paste und dem PLR 70/30 erreicht werden. N2 - The aim of this work was the development and characterization of pre-mixed calcium phosphate cement pastes and the transfer of the concept of these pastes to 3D printing. Three different cement formulations were tested, based on powder mixture of α-TCP/DCPA/CaCO3 (Biozement D), TTCP/DCPA and β-TCP/MCPA, which were analyzed for various material properties and subjected to a 3D printing process. The Biozement D paste was made with three powder-to-liquid ratios (PLR) (80/20, 85/15, 87/13), the TTCP/DCPA paste with two PLRs (83/17, 85/15), and the β-TCP/MCPA paste also with two PLR (67/33, 70/30). Every paste could be successfully printed with the 3D printer. The Biozement D paste with the PLR 85/15 turned out to be the most suitable paste in its group. The TTCP/DCPA paste achieved better results in terms of injectability and printability. Dimensionally stable scaffolds were achieved with both PLR. Fine honeycomb patterns could be produced with the PLR of 83/17 in combination with a high printing speed. With the higher PLR (85/15) and a lower printing speed, the dimensional stability increased further, which enabled the hexagonal structure to be printed more precisely. A good print result could also be achieved with the β-TCP/MCPA paste and the PLR 70/30. KW - Knochenzemente KW - 3D-Druck KW - vorgemischt KW - Zementpaste KW - 3d printing KW - premixed KW - cement paste Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230189 ER - TY - THES A1 - Pinzner, Florian T1 - Vicinal and Double Chemoselective Biofunctionalization of Polyoxazolines T1 - Vicinale und doppelt chemoselektive Biofunktionalisierung von Polyoxazolinen N2 - In this work, a toolbox was provided to create three-component polymer conjugates with a defined architecture, designed to bear different biocomponents that can interact with larger biological systems in biomacromolecular recognition experiments. The target architecture is the attachment of two biomolecule ‘arms’ to the alpha telechelic end point of a polymer and fixating the conjugate to the gold surface of SAW and SPR sensor chips with the polymer’s other omega chain end. This specific design of a conjugate will be implemented by using a strategy to yield novel double alpha as well as omega telechelic functionalized POx and the success of all cascade reaction steps leading to the final conjugation product will be proven through affinity measurements between covalently bound mannose and ConA. All reactions were performed on a low molecular model level first and then transferred to telechelic and also side chain functionalized polymer systems. N2 - In der vorliegenden Arbeit wurden hydrophile Polymere und Biomakromoleküle chemoselektiv und vicinal miteinander an einer Bindungsstelle verknüpft. Die Kombination der Native Chemical Ligation (NCL) mit der Thiol–En-Reaktion stellte hierfür eine geeignete Methode dar. Ein Machbarkeitsbeweis wurde anhand einer niedermolekularen Modellreaktion erbracht und nachfolgend unter der Verwendung von Polyoxazolinen auf makromolekulare Polymersysteme übertragen. Die erfolgreiche Darstellung der Konjugate wurde durch biomakromolekulare Bindungsaffinitäts-Messungen zu dem Lektin ConA bestätigt. KW - Polyoxazoline KW - Polyoxazolines Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-229758 ER - TY - JOUR A1 - Schmitz, Tobias A1 - Jannasch, Maren A1 - Weigel, Tobias A1 - Moseke, Claus A1 - Gbureck, Uwe A1 - Groll, Jürgen A1 - Walles, Heike A1 - Hansmann, Jan T1 - Nanotopographical Coatings Induce an Early Phenotype-Specific Response of Primary Material-Resident M1 and M2 Macrophages JF - Materials N2 - Implants elicit an immunological response after implantation that results in the worst case in a complete implant rejection. This biomaterial-induced inflammation is modulated by macrophages and can be influenced by nanotopographical surface structures such as titania nanotubes or fractal titanium nitride (TiN) surfaces. However, their specific impact on a distinct macrophage phenotype has not been identified. By using two different levels of nanostructures and smooth samples as controls, the influence of tubular TiO2 and fractal TiN nanostructures on primary human macrophages with M1 or M2-phenotype was investigated. Therefore, nanotopographical coatings were either, directly generated by physical vapor deposition (PVD) or by electrochemical anodization of titanium PVD coatings. The cellular response of macrophages was quantitatively assessed to demonstrate a difference in biocompatibility of nanotubes in respect to human M1 and M2-macrophages. Depending on the tube diameter of the nanotubular surfaces, low cell numbers and impaired cellular activity, was detected for M2-macrophages, whereas the impact of nanotubes on M1-polarized macrophages was negligible. Importantly, we could confirm this phenotypic response on the fractal TiN surfaces. The results indicate that the investigated topographies specifically impact the macrophage M2-subtype that modulates the formation of the fibrotic capsule and the long-term response to an implant. KW - nanotopographical surfaces KW - combination of physical vapor deposition and electrochemical etching KW - defined humanized test system KW - inflammatory response Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-203378 SN - 1996-1944 VL - 13 IS - 5 ER - TY - THES A1 - Wettstein, Lars T1 - Elektrochemische Abscheidung von Bruschitschichten auf Titan in Gegenwart von Kristallisationsinhibitoren zur Steuerung von Kristallitgröße und biologischer Reaktion T1 - Brushite coatings on titanium by electrochemical deposition in the presence of crystallization inhibitors to control of crystallite size and biological reaction N2 - Es erfolgte eine elektrochemische Abscheidung von Bruschitschichten auf Titan in Gegenwart von Kristallisationsinhibitoren. Dabei wurden die Kristallisationsinhibitoren Zitronensäure, treta-Natriumdiphosphat-Decahydrat und Phytinsäure verwendet und die entstandenen Schichten mit denen ohne Inhibitorzugabe verglichen. Um das Ausmaß der Inhibierung zu verifizieren, wurde die Masse aller Schichten gemessen, welche für die Inhibition mit Zitronensäure und Phytinsäure abnahm und für Natriumdiphosphat zunahm. Die kristallographische Zusammensetzung der mit und ohne Inhibierung abgeschiedenen Schichten wurde mit Hilfe der Röntgendiffraktometrie bestimmt und zeigte, dass sich reine Bruschitschichten mit unterschiedlichem amorphem Anteil abschieden. Die daraus entstandenen Werte lieferten zugleich die Informationen über die einzelnen Kristallitgrößen innerhalb der Schichten. Über den Einfluss der Inhibitoren auf die Schichtmorphologie gaben rasterelektronenmikroskopische Aufnahmen weiteren Aufschluss. Die Inhibition verursachte teils mit Rissen durchzogene Schichten, deren Kristallformationen sich von Standardelektrolyt unterschieden. Ausgewählte Proben wurden unter verschiedenen Bedingungen desinfiziert bzw. sterilisiert und nachfolgend erneut gewogen und mittels Röntgendiffraktogrammetrie und Rasterelektronenmikroskopie analysiert. Nach der Desinfektion entstanden reine Bruschitschichten, die an Masse verloren aber trotzdem die typischen Kristallformationen zeigten. Die Sterilisation führte zur Umwandlung von Bruschit in Monetit und Hydroxylapatit. Des Weiteren wurde die biologische Reaktion der Schichten auf humane fötale Osteoblasten-Zelllinien zur Überprüfung der Zellverträglichkeit ermittelt. Die entstandenen Ergebnisse waren nicht verwertbar und enthielt sehr hohe Standardabweichungen. N2 - Brushite coatings were deposited on titanium by electrochemical deposition in the presence of various crystallization inhibitors such as citric acid, treta-sodium diphosphate decahydrate and phytic acid. The resulting layers were compared with those without inhibitor addition. To verify the extent of inhibition, the mass of all layers was measured, which decreased for inhibition with citric acid and phytic acid and increased for sodium diphosphate. The crystallographic composition of the layers deposited with and without inhibition was determined by X-ray diffraction and showed pure brushite caotings with different amorphous content. The resulting values also provided information about the individual crystallite sizes within the layers. Scanning electron microscope images provided further information about the influence of the inhibitors of the layer morphology. The inhibition caused layers partly interspersed with cracks, whose crystal formations differed from the standard electrolyte. Selected samples were disinfected or sterilized under various conditions and subsequently reweighed and analyzed by X-ray diffraction and scanning electron microscopy. After disinfection, pure brushite caotings were formed, which lost mass but still showed the typical crystal formations. Sterilization led to the transformation of brushite into monetite and hydroxyapatite. Furthermore, the biological response of the layers to human fetal osteoblast cell lines was determined to test cell compatibility. The results obtained were not usable and contained very high standard deviations. KW - Elektrochemische Abscheidung KW - Bruschitbeschichtung KW - Inhibition KW - electrochemical deposition KW - brushite coating Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-217502 ER - TY - JOUR A1 - No, Young Jung A1 - Holzmeister, Ib A1 - Lu, Zufu A1 - Prajapati, Shubham A1 - Shi, Jeffrey A1 - Gbureck, Uwe A1 - Zreiqat, Hala T1 - Effect of Baghdadite Substitution on the Physicochemical Properties of Brushite Cements JF - Materials N2 - Brushite cements have been clinically used for irregular bone defect filling applications, and various strategies have been previously reported to modify and improve their physicochemical properties such as strength and injectability. However, strategies to address other limitations of brushite cements such as low radiopacity or acidity without negatively impacting mechanical strength have not yet been reported. In this study, we report the effect of substituting the beta-tricalcium phosphate reactant in brushite cement with baghdadite (Ca\(_3\)ZrSi\(_2\)O\(_9\)), a bioactive zirconium-doped calcium silicate ceramic, at various concentrations (0, 5, 10, 20, 30, 50, and 100 wt%) on the properties of the final brushite cement product. X-ray diffraction profiles indicate the dissolution of baghdadite during the cement reaction, without affecting the crystal structure of the precipitated brushite. EDX analysis shows that calcium is homogeneously distributed within the cement matrix, while zirconium and silicon form cluster-like aggregates with sizes ranging from few microns to more than 50 µm. X-ray images and µ-CT analysis indicate enhanced radiopacity with increased incorporation of baghdadite into brushite cement, with nearly a doubling of the aluminium equivalent thickness at 50 wt% baghdadite substitution. At the same time, compressive strength of brushite cement increased from 12.9 ± 3.1 MPa to 21.1 ± 4.1 MPa with 10 wt% baghdadite substitution. Culture medium conditioned with powdered brushite cement approached closer to physiological pH values when the cement is incorporated with increasing amounts of baghdadite (pH = 6.47 for pure brushite, pH = 7.02 for brushite with 20 wt% baghdadite substitution). Baghdadite substitution also influenced the ionic content in the culture medium, and subsequently affected the proliferative activity of primary human osteoblasts in vitro. This study indicates that baghdadite is a beneficial additive to enhance the radiopacity, mechanical performance and cytocompatibility of brushite cement KW - baghdadite KW - calcium phosphate cement KW - radiopacity KW - setting reaction KW - mechanical performance Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-196980 SN - 1996-1944 VL - 12 IS - 10 ER - TY - JOUR A1 - Jungst, Tomasz A1 - Pennings, Iris A1 - Schmitz, Michael A1 - Rosenberg, Antoine J. W. P. A1 - Groll, Jürgen A1 - Gawlitta, Debby T1 - Heterotypic Scaffold Design Orchestrates Primary Cell Organization and Phenotypes in Cocultured Small Diameter Vascular Grafts JF - Advanced Functional Materials N2 - To facilitate true regeneration, a vascular graft should direct the evolution of a neovessel to obtain the function of a native vessel. For this, scaffolds have to permit the formation of an intraluminal endothelial cell monolayer, mimicking the tunica intima. In addition, when attempting to mimic a tunica media‐like outer layer, the stacking and orientation of vascular smooth muscle cells (vSMCs) should be recapitulated. An integral scaffold design that facilitates this has so far remained a challenge. A hybrid fabrication approach is introduced by combining solution electrospinning and melt electrowriting. This allows a tissue‐structure mimetic, hierarchically bilayered tubular scaffold, comprising an inner layer of randomly oriented dense fiber mesh and an outer layer of microfibers with controlled orientation. The scaffold supports the organization of a continuous luminal endothelial monolayer and oriented layers of vSM‐like cells in the media, thus facilitating control over specific and tissue‐mimetic cellular differentiation and support of the phenotypic morphology in the respective layers. Neither soluble factors nor a surface bioactivation of the scaffold is needed with this approach, demonstrating that heterotypic scaffold design can direct physiological tissue‐like cell organization and differentiation. KW - biofabricated vascular graft KW - heterotypic scaffold design KW - hybrid fabrication KW - primary vascular smooth muscle‐like cells (vSMCs) KW - melt electrowriting (MEW) Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-217039 VL - 29 ER - TY - THES A1 - Heise, Kathrin Leonie T1 - Charakterisierung eines 3D-Mikrotumormodells zur Untersuchung von Tumor-Stroma-Interaktionen T1 - Characterization of a 3D microtumor model for the investigation of tumor-stroma interactions N2 - Tumorzellen, Stromazellen, Extrazellulärmatrix (EZM) und lösliche Faktoren in der Tumormikroumgebung beeinflussen und verstärken sich gegenseitig in der Ausbildung eines malignen Phänotyps. Sowohl die fibrotische EZM als auch eine kleine Subpopulation von pluripotenten Tumorstammzellen sind bekanntermaßen für die Steigerung der Tumoraggressivität verantwortlich. Inwiefern diese beiden unabhängigen Faktoren im Kontext von Brustkrebs miteinander in Beziehung stehen, ist jedoch bis heute unklar. Um untersuchen zu können, welchen Beitrag Tumorzellen, Stromazellen, EZM und lösliche Faktoren einzeln und im Zusammenspiel zur Malignität eines Tumors leisten, ist die Entwicklung geeigneter in-vitro-Modelle unabdingbar. Daher war es das Ziel dieser Arbeit, ein 3D-Mikrotumormodell zu generieren, in dem eine Analyse dieser genannten Faktoren stattfinden könnte. An diesem Modell wurden darüber hinaus erste Untersuchungen von im Tumorkontext bekannten EZM-Proteinen durchgeführt. Um die dreidimensionale Anordnung von Tumorzellen und ihrer Gewebeumgebung adäquat wiedergeben zu können, beinhalteten die 3D-Tumorsphäroide sowohl Brustkrebszellen (MDA-MB-231) als auch Stromazellen (hASCs). Die EZM als wichtiger Bestandteil der (Tumor-) Mikroumgebung sollte übersichtshalber durch Hämatoxylin-Eosin-Färbung und detaillierter durch immunhistochemische Analyse nach zwei verschiedenen Kulturzeitpunkten charakterisiert werden, um EZM-Veränderungen im zeitlichen Verlauf darzustellen. Im Fokus der Analyse standen die beiden wichtigsten profibrotischen EZM-Proteine Fibronektin und Kollagen I, die maßgeblich an der Pathogenese von Brustkrebs beteiligt sind. Zudem wurde das Vorkommen des Myofibroblastenmarkers α-SMA untersucht. An den Sphäroiden einer Kontrollgruppe, die lediglich hASCs beinhaltete, sollte vergleichend eine Analyse der genannten EZM-Proteine sowie α-SMA durchgeführt werden. Um schließlich den Einfluss der von Tumorzellen sezernierten löslichen Faktoren in der Tumormikroumgebung herauszustellen, wurden Sphäroide aus hASCs in tumorkonditioniertem Medium gezüchtet und darin ebenfalls Matrixproteine und α-SMA untersucht. Abschließend erfolgte eine Korrelation der EZM-Analyse mit dem Vorhandensein von Tumorstammzellen in den 3D-Tumorsphäroiden. Dafür wurden die Tumorstammzellen mithilfe eines GFP-basierten Reporters für den Stammzellmarker NANOG (NANOG-GFP-Reporterzelllinie) in mikroskopischen Aufnahmen der 3D-Tumorsphäroide nachgewiesen und im Kontext mit der EZM lokalisiert. N2 - Tumor cells, stromal cells, extracellular matrix (ECM), and soluble factors in the tumor microenvironment interact and potentiate mutually in the evolution of the malignant phenotype. Both fibrotic ECM as well as a small subpopulation of pluripotent tumor stem cells are well-known to enhance tumor aggressiveness. To what extend these independent factors interact with each other in the context of breast cancer is, however, unknown. In order to investigate in what ways tumor cells, stromal cells, ECM, and soluble factors enhance malignancy individually or in combination it is necessary to establish suitable in vitro models. Thus, the objective of this work was to generate a 3D microtumor model that could allow an analysis of these factors. Furthermore, initial investigations were made on those ECM proteins that are known for their significant role in tumors. To capture and reflect the three-dimensional structure of tumor cells and their microenvironment adequately the 3D tumor spheroids were produced from both breast cancer cells (MDA-MB-231) and from stromal cells (hASCs). The ECM being a pivotal component of the (tumor-) microenvironment was characterized by haematoxylin and eosin staining and more detailed by immunohistochemical analysis after two different culturing periods to outline the ECM alterations in the course of time. The focus was on the two most important profibrotic ECM proteins, fibronectin and collagen I, which are substantially involved in the pathogenesis of breast cancer. Furthermore, we evaluated the occurrence of the myofibroblastic marker α-SMA. With the help of spheroids of a control group containing solely hASCs we processed a comparative analysis of the above-mentioned ECM proteins as well as α-SMA. In order to expose the influence of soluble factors secreted by tumor cells in the tumor microenvironment we furthermore produced spheroids in tumor conditioned medium and again analyzed the matrix proteins and α-SMA. Finally, we investigated the correlation of ECM analysis with the occurrence of tumor stem cells in our 3D tumor spheroids. With the help of a GFP-based reporter cell line for the stem cell marker NANOG, we detected tumor stem cells and observed them being co-localized with ECM proteins in microscopic images. KW - Brustkrebs KW - Tumormicroenvironment KW - Tumorstammzellen KW - in-vitro-Modell KW - Mikrotumormodell KW - Extrazellulärmatrix KW - Co-Kultur KW - NANOG Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-215347 ER - TY - JOUR A1 - Brückner, Theresa A1 - Meininger, Markus A1 - Groll, Jürgen A1 - Kübler, Alexander C. A1 - Gbureck, Uwe T1 - Magnesium Phosphate Cement as Mineral Bone Adhesive JF - Materials N2 - Mineral bone cements were actually not developed for their application as bone-bonding agents, but as bone void fillers. In particular, calcium phosphate cements (CPC) are considered to be unsuitable for that application, particularly under moist conditions. Here, we showed the ex vivo ability of different magnesium phosphate cements (MPC) to adhere on bovine cortical bone substrates. The cements were obtained from a mixture of farringtonite (Mg\(_3\)(PO\(_4\))\(_2\)) with different amounts of phytic acid (C\(_6\)H\(_{18}\)O\(_{24}\)P\(_6\), inositol hexaphosphate, IP6), whereas cement setting occurred by a chelation reaction between Mg\(^{2+}\) ions and IP6. We were able to show that cements with 25% IP6 and a powder-to-liquid ratio (PLR) of 2.0 g/mL resulted in shear strengths of 0.81 ± 0.12 MPa on bone even after 7 d storage in aqueous conditions. The samples showed a mixed adhesive–cohesive failure with cement residues on the bone surface as indicated by scanning electron microscopy and energy-dispersive X-ray analysis. The presented material demonstrated appropriate bonding characteristics, which could enable a broadening of the mineral bone cements’ application field to bone adhesives KW - magnesium phosphate cement KW - phytic acid KW - bone adhesive Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-193052 SN - 1996-1944 VL - 12 IS - 23 ER - TY - THES A1 - Link, Yasmin T1 - 3D-Druck mikrofluidischer Systeme mittels Stereolithografie T1 - 3D printing of microfluidic systems by stereolithography N2 - Der 3D-Druck ist ein elementarer Bestandteil der Biofabrikation. Beispielsweise wird mittels Biotinten und einem geeigneten 3D-Druckverfahren Schicht für Schicht eine Geometrie aufgebaut. Durch die Gestaltung von mikrofluidischen Druckköpfen wird eine Möglichkeit geschaffen multiple Materialansätze im Druckkopf zu vermischen und so in einem bestimmten Mischungsverhältnis zu drucken. Mit dem DLP-SLA-Drucker Vida HD Crown and Bridge (EnvisionTEC) und dem Harz E-Shell 600 (EnvisionTEC) wurden zunächst die Auflösungsgrenzen des Druckers ermittelt sowie Komponenten für die Realisierung eines mikrofluidischen Druckkopfes prozessiert. Bei den Komponenten handelt es sich zum einen um Geometrien, die beispielsweise als Mischeinheit im Kanal dienen können und des Weiteren um senkrechte Kanäle die Biotinten führen können, sowie um Kanäle, die als Zuläufe für den Hauptkanal des mikrofluidischen Druckkopfs dienen können. Die Eigenschaften und die technische Realisierbarkeit der gedruckten Objekte wurden eruiert. Dabei wurden die jeweiligen Geometrien und Kanalöffnungen vermessen, große Aspektverhältnisse der Geometrien untersucht und die Durchgängigkeit der Kanäle geprüft. Zukünftig können die prozessierten Komponenten für einen mikrofluidischen Druckkopf variabel kombiniert werden und auf dieser Basis weiterführende Experimente stattfinden. N2 - 3D printing is an essential part of biofabrication. For example, geometries are built up layer by layer using bio-inks and a suitable 3D printing process. New options are given by the fabrication of a microfluidic print head. The design of microfluidic print heads creates the possibility of mixing multiple materials inside the print head and thus start printing certain mixing ratios. The resolution limits of the DLP-SLA printer Vida HD Crown and Bridge (EnvisionTEC) using the resin E-Shell 600 (EnvisionTEC) were first determined and components for the layout of a microfluidic print head were processed. The components are, on one hand, geometries that can serve as a mixing device inside the channel, and on the other hand, vertical channels that can carry bio-inks and channels that serve as inlets for the main channel of the microfluidic print head. The properties of the printed objects were examined, the respective geometries and channel openings were measured, large aspect ratios of the geometries were examined and the consistency of the channels investigated. In future, the processed components for a microfluidic print head can be combined variably and further experiments can take place on this basis. KW - 3D-Druck KW - Mikrofluidik KW - Biodruck KW - DLP-SLA KW - Druckbarkeit KW - Auflösung Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-211529 ER - TY - JOUR A1 - Liebscher, Julia A1 - Teßmar, Joerg Karl A1 - Groll, Jürgen T1 - In Situ Polymer Analogue Generation of Azlactone Functions at Poly(oxazoline)s for Peptide Conjugation JF - Macromolecular Chemistry and Physics N2 - The physical and chemical stability of peptides for biomedical applications can be greatly enhanced through the conjugation of polymers. A well‐known but rather underemployed selective coupling functionality is the azlactone group, which readily reacts with a number of different nucleophiles without the need for activation and the formation of any by‐products. For example, azlactone functional polymers are used to react with peptides and proteins, rich in amino and thiol groups, to form polymeric beads for affinity‐based column chromatography. So far, side chain functional azlactone polymers have been mainly synthesized by radical polymerization using 2‐vinyl‐4,4‐dimethyl azlactone together with different acrylate monomers. Here, a new azlactone precursor equipped with a functional thiol is presented, which can be attached to any vinyl functional polymer by thiol–ene chemistry. Subsequently, the formation of the reactive azlactone ring can be performed in situ at high conversion rate without the need for illumination. This approach is tested on an azlactone side functional poly(2‐oxazoline) by coupling amine containing molecules including a model peptide and is proven via \(^1\)H NMR spectroscopy, IR spectroscopy, as well as HPLC measurements. KW - azlactone KW - peptide conjugation KW - polymer-analogue functionalization KW - polyoxazoline Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-208147 VL - 221 IS - 1 ER -