TY - JOUR A1 - Haeusner, Sebastian A1 - Herbst, Laura A1 - Bittorf, Patrick A1 - Schwarz, Thomas A1 - Henze, Chris A1 - Mauermann, Marc A1 - Ochs, Jelena A1 - Schmitt, Robert A1 - Blache, Ulrich A1 - Wixmerten, Anke A1 - Miot, Sylvie A1 - Martin, Ivan A1 - Pullig, Oliver T1 - From Single Batch to Mass Production–Automated Platform Design Concept for a Phase II Clinical Trial Tissue Engineered Cartilage Product JF - Frontiers in Medicine N2 - Advanced Therapy Medicinal Products (ATMP) provide promising treatment options particularly for unmet clinical needs, such as progressive and chronic diseases where currently no satisfying treatment exists. Especially from the ATMP subclass of Tissue Engineered Products (TEPs), only a few have yet been translated from an academic setting to clinic and beyond. A reason for low numbers of TEPs in current clinical trials and one main key hurdle for TEPs is the cost and labor-intensive manufacturing process. Manual production steps require experienced personnel, are challenging to standardize and to scale up. Automated manufacturing has the potential to overcome these challenges, toward an increasing cost-effectiveness. One major obstacle for automation is the control and risk prevention of cross contaminations, especially when handling parallel production lines of different patient material. These critical steps necessitate validated effective and efficient cleaning procedures in an automated system. In this perspective, possible technologies, concepts and solutions to existing ATMP manufacturing hurdles are discussed on the example of a late clinical phase II trial TEP. In compliance to Good Manufacturing Practice (GMP) guidelines, we propose a dual arm robot based isolator approach. Our novel concept enables complete process automation for adherent cell culture, and the translation of all manual process steps with standard laboratory equipment. Moreover, we discuss novel solutions for automated cleaning, without the need for human intervention. Consequently, our automation concept offers the unique chance to scale up production while becoming more cost-effective, which will ultimately increase TEP availability to a broader number of patients. KW - ATMP KW - tissue engineering KW - GMP KW - manufacturing KW - autologous KW - cartilage regeneration KW - automation & robotics KW - automation Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-244631 SN - 2296-858X VL - 8 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 - JOUR A1 - Righesso, L. A. R. A1 - Terekhov, M. A1 - Götz, H. A1 - Ackermann, M. A1 - Emrich, T. A1 - Schreiber, L. M. A1 - Müller, W. E. G. A1 - Jung, J. A1 - Rojas, J. P. A1 - Al-Nawas, B. T1 - Dynamic contrast-enhanced magnetic resonance imaging for monitoring neovascularization during bone regeneration — a randomized in vivo study in rabbits JF - Clinical Oral Investigations N2 - Objectives Micro-computed tomography (μ-CT) and histology, the current gold standard methods for assessing the formation of new bone and blood vessels, are invasive and/or destructive. With that in mind, a more conservative tool, dynamic contrast-enhanced magnetic resonance imaging (DCE-MRI), was tested for its accuracy and reproducibility in monitoring neovascularization during bone regeneration. Additionally, the suitability of blood perfusion as a surrogate of the efficacy of osteoplastic materials was evaluated. Materials and methods Sixteen rabbits were used and equally divided into four groups, according to the time of euthanasia (2, 3, 4, and 6 weeks after surgery). The animals were submitted to two 8-mm craniotomies that were filled with blood or autogenous bone. Neovascularization was assessed in vivo through DCE-MRI, and bone regeneration, ex vivo, through μ-CT and histology. Results The defects could be consistently identified, and their blood perfusion measured through DCE-MRI, there being statistically significant differences within the blood clot group between 3 and 6 weeks (p = 0.029), and between the former and autogenous bone at six weeks (p = 0.017). Nonetheless, no significant correlations between DCE-MRI findings on neovascularization and μ-CT (r =−0.101, 95% CI [−0.445; 0.268]) or histology (r = 0.305, 95% CI [−0.133; 0.644]) findings on bone regeneration were observed. Conclusions These results support the hypothesis that DCE-MRI can be used to monitor neovascularization but contradict the premise that it could predict bone regeneration as well. KW - animal experimentation KW - bone regeneration KW - multiparametric magnetic resonance imaging KW - neovascularization, physiologic KW - tissue engineering KW - translational medical research Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-307614 SN - 1432-6981 SN - 1436-3771 VL - 25 IS - 10 ER - TY - THES A1 - Wagenbrenner, Mike Helmut T1 - In vitro-Charakterisierung mesenchymaler Stromazellen aus dem menschlichen Hüftgelenk T1 - In vitro characterization of mesenchymal stromal cells from the human hip joint N2 - In dieser Arbeit konnte erstmals gezeigt werden, dass plastik-adhärent wachsende, multipotente Vorläuferzellen, die eine für MSCs charakteristische Kombination von Oberflächenantigenen tragen, aus allen vier untersuchten Geweben des arthrotischen Hüftgelenks isoliert werden konnten. MSC-ähnliche Zellen können somit nicht nur in der Spongiosa und im Gelenkknorpel, sondern auch in der anterioren Gelenkkapsel und dem Ligamentum capitis femoris (LCF) des arthrotisch veränderten menschlichen Hüftgelenks nachgewiesen werden. Die FACS Analyse der Oberflächenantigene auf Zellen, die aus den vier unterschiedlichen Geweben eines beispielhaft gewählten Spenders isoliert wurden, zeigte eine deutliche Expression der Antigene CD44, CD73, CD90 und CD105. Unabhängig vom Nativgewebe zeigten somit alle untersuchten Zellen ein für MSCs charakteristisches, aber nicht spezifisches Profil an Antigenen auf ihrer Oberfläche. Eine Übereinstimmung mit den ISCT Kriterien für MSCs war aufgrund der fehlenden Kontrolle hämatopoetischer Marker nicht möglich. Die multipotente Differenzierung der isolierten Zellen erfolgte mithilfe spezifischer Differenzierungsmedien in Monolayer-Kulturen oder für die chondrogene Differenzierung in dreidimensionalen Pellet-Kulturen. Nach 21 Tagen konnten in allen differenzierten Kulturen histologisch und immunhistochemisch klare Zeichen der Osteo- und Adipogenese detektiert werden, während die Auswertung spezifischer Markergene eine klare Steigerung der Expression dieser im Vergleich zu den Negativkontrollen zeigte. Histologische und immunhistochemische Auswertungen bestätigten auch eine erfolgreiche chondrogene Differenzierung der Zell-Pellets aus Spongiosa, Knorpel und Kapsel. Lediglich in den chondrogen differenzierten Zell-Pellets aus dem LCF konnte immunhistochemisch keine Bildung des knorpelspezifischen Matrixproteins Col II nachgewiesen werden. Mikroskopisch zeigten vor allem die differenzierten MSC-Pellets aus Spongiosa und Knorpel morphologisch eine starke Ähnlichkeit zu hyalinem Knorpelgewebe. Trotz dieser Abstufungen zeigten sich für die relative Expression der chondrogenen Markergene AGG, Col II und Sox-9 keine signifikanten Unterschiede zwischen den differenzierten MSC-Kulturen der vier unterschiedlichen Nativgewebe. Ein positiver Nachweis des Markers Col X wies nach 27 Tagen sowohl in differenzierten als auch in undifferenzierten Pellet-Kulturen auf eine leichte chondrogene Hypertrophie hin. Zusammenfassend zeigten sich keine signifikanten Unterschiede im Hinblick auf das osteogene und adipogene Differenzierungspotential aller untersuchten Zellen. Während das chondrogene Differenzierungspotential der Zellen aus Spongiosa, Knorpel und Kapsel sich aus histologischer und immunhistochemischer Sicht ähnelte, zeigten Pellets aus dem LCF ein schwächeres chondrogenes Differenzierungspotential in vitro. Obwohl somit erstmals MSC-ähnliche Zellen aus dem LCF und Gewebsproben, die neben dem Stratum synoviale auch das Stratum fibrosum der Hüftgelenkskapsel beinhalteten, charakterisiert wurden, sind weitere wissenschaftliche Arbeiten notwendig, um das multipotente Differenzierungspotential dieser Zellen zu optimieren. N2 - This study showed for the first time that plastic-adherent growing multipotent progenitor cells carrying a combination of surface antigens characteristic of MSCs could be isolated from four tissues of the arthritic hip joint.MSC-like cells can thus be detected not only in cancellous bone and articular cartilage, but also in the anterior joint capsule and ligamentum capitis femoris (LCF) of the osteoarthritic human hip joint. FACS analysis of surface antigens on cells isolated from the four different tissues of an exemplarily selected donor showed a clear expression of the antigens CD44, CD73, CD90 and CD105. Thus, irrespective of the native tissue, all cells examined showed a profile of antigens on their surface that is characteristic but not specific for MSCs. However, cells did not meet the ISCT criteria since hematopoietic markers were not analyzed. Multipotent differentiation of the isolated cells was performed using specific differentiation media in monolayer cultures or three-dimensional pellet cultures for chondrogenic differentiation. After 21 days, clear signs of osteo- and adipogenesis could be detected histologically and immunohistochemically in all differentiated cultures, while evaluation of specific marker genes showed a clear increase in the expression of these compared with negative controls. Histological and immunohistochemical evaluations also confirmed successful chondrogenic differentiation of cell pellets from cancellous bone, cartilage, and capsule. Chondrogenically differentiated cell pellets from the LCF showed no formation of cartilage-specific matrix protein Col II. Microscopically the differentiated MSC pellets from cancellous bone and cartilage showed strong morphological similarity to hyaline cartilage tissue. Despite these gradations, there were no significant differences between the differentiated MSC cultures of the four different native tissues for the relative expression of the chondrogenic marker genes AGG, Col II, and Sox-9. Positive detection of the marker Col X indicated mild chondrogenic hypertrophy after 27 days in both differentiated and undifferentiated pellet cultures. In conclusion, there were no significant differences in osteogenic and adipogenic differentiation potential of all cells examined. While chondrogenic differentiation potential of progenitor cells isolated from cancellous bone, cartilage, and capsule was similar from a histological and immunohistochemical point of view, pellets from LCF showed a weaker chondrogenic differentiation potential in vitro. Although our current research proved the presence of MSC-like cells in the LCF and full-thickness tissue samples of the hip joint capsule further scientific work is required to evaluate the differentiation of the chondrogenic cells in the LCF. Histological and immunohistochemical evaluations also confirmed successful chondrogenic differentiation of cell pellets from cancellous bone, cartilage, and capsule. Only in the chondrogenically differentiated cell pellets from the LCF could no formation of the cartilage-specific matrix protein Col II be detected by immunohistochemistry. Microscopically, especially the differentiated MSC pellets from cancellous bone and cartilage showed strong morphological similarity to hyaline cartilage tissue. Despite these gradations, there were no significant differences between the differentiated MSC cultures of the four different native tissues for the relative expression of the chondrogenic marker genes AGG, Col II, and Sox-9. Positive detection of the marker Col X indicated mild chondrogenic hypertrophy after 27 days in both differentiated and undifferentiated pellet cultures. In conclusion, there were no significant differences in osteogenic and adipogenic differentiation potential of all cells examined. While the chondrogenic differentiation potential of cells from cancellous bone, cartilage, and capsule were similar from a histological and immunohistochemical point of view, pellets from LCF showed a weaker chondrogenic differentiation potential in vitro. Although our current research proved the presence of MSC-like cells in the LCF and full-thickness tissue samples of the human hip joint capsule further scientific work is required to optimize the multipotent differentiation potential of these cells. KW - Hüftgelenk KW - Arthrose KW - Mesenchymzelle KW - Knorpel KW - MSCs KW - tissue engineering KW - Hüfte KW - Arthrose KW - Regenerative Medizin KW - hip KW - Osteoarthritis Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-237110 ER - TY - JOUR A1 - Wagenbrenner, Mike A1 - Mayer-Wagner, Susanne A1 - Rudert, Maximilian A1 - Holzapfel, Boris Michael A1 - Weissenberger, Manuel T1 - Combinations of hydrogels and mesenchymal stromal cells (MSCs) for cartilage tissue engineering — a review of the literature JF - Gels N2 - Cartilage offers limited regenerative capacity. Cell-based approaches have emerged as a promising alternative in the treatment of cartilage defects and osteoarthritis. Due to their easy accessibility, abundancy, and chondrogenic potential mesenchymal stromal cells (MSCs) offer an attractive cell source. MSCs are often combined with natural or synthetic hydrogels providing tunable biocompatibility, biodegradability, and enhanced cell functionality. In this review, we focused on the different advantages and disadvantages of various natural, synthetic, and modified hydrogels. We examined the different combinations of MSC-subpopulations and hydrogels used for cartilage engineering in preclinical and clinical studies and reviewed the effects of added growth factors or gene transfer on chondrogenesis in MSC-laden hydrogels. The aim of this review is to add to the understanding of the disadvantages and advantages of various combinations of MSC-subpopulations, growth factors, gene transfers, and hydrogels in cartilage engineering. KW - hydrogels KW - osteoarthritis KW - cartilage defects KW - MSCs KW - cartilage regeneration KW - tissue engineering Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-250177 SN - 2310-2861 VL - 7 IS - 4 ER -