@article{WagenbrennerPokerHeinzetal.2022, author = {Wagenbrenner, Mike and Poker, Konrad and Heinz, Tizian and Herrmann, Marietta and Horas, Konstantin and Ebert, Regina and Mayer-Wagner, Susanne and Holzapfel, Boris M. and Rudert, Maximilian and Steinert, Andre F. and Weißenberger, Manuel}, title = {Mesenchymal stromal cells (MSCs) isolated from various tissues of the human arthritic knee joint possess similar multipotent differentiation potential}, series = {Applied Sciences}, volume = {12}, journal = {Applied Sciences}, number = {4}, issn = {2076-3417}, doi = {10.3390/app12042239}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-262334}, year = {2022}, abstract = {(1) Background: The mesenchymal stromal cells (MSCs) of different tissue origins are applied in cell-based chondrogenic regeneration. However, there is a lack of comparability determining the most suitable cell source for the tissue engineering (TE) of cartilage. The purpose of this study was to compare the in vitro chondrogenic potential of MSC-like cells from different tissue sources (bone marrow, meniscus, anterior cruciate ligament, synovial membrane, and the infrapatellar fat pad removed during total knee arthroplasty (TKA)) and define which cell source is best suited for cartilage regeneration. (2) Methods: MSC-like cells were isolated from five donors and expanded using adherent monolayer cultures. Differentiation was induced by culture media containing specific growth factors. Transforming growth factor (TGF)-ß1 was used as the growth factor for chondrogenic differentiation. Osteogenesis and adipogenesis were induced in monolayer cultures for 27 days, while pellet cell cultures were used for chondrogenesis for 21 days. Control cultures were maintained under the same conditions. After, the differentiation period samples were analyzed, using histological and immunohistochemical staining, as well as molecularbiological analysis by RT-PCR, to assess the expression of specific marker genes. (3) Results: Plastic-adherent growth and in vitro trilineage differentiation capacity of all isolated cells were proven. Flow cytometry revealed the clear co-expression of surface markers CD44, CD73, CD90, and CD105 on all isolated cells. Adipogenesis was validated through the formation of lipid droplets, while osteogenesis was proven by the formation of calcium deposits within differentiated cell cultures. The formation of proteoglycans was observed during chondrogenesis in pellet cultures, with immunohistochemical staining revealing an increased relative gene expression of collagen type II. RT-PCR proved an elevated expression of specific marker genes after successful differentiation, with no significant differences regarding different cell source of native tissue. (4) Conclusions: Irrespective of the cell source of native tissue, all MSC-like cells showed multipotent differentiation potential in vitro. The multipotent differentiation capacity did not differ significantly, and chondrogenic differentiation was proven in all pellet cultures. Therefore, cell suitability for cell-based cartilage therapies and tissue engineering is given for various tissue origins that are routinely removed during total knee arthroplasty (TKA). This study might provide essential information for the clinical tool of cell harvesting, leading to more flexibility in cell availability.}, language = {en} } @article{WagenbrennerMayerWagnerRudertetal.2021, author = {Wagenbrenner, Mike and Mayer-Wagner, Susanne and Rudert, Maximilian and Holzapfel, Boris Michael and Weissenberger, Manuel}, title = {Combinations of hydrogels and mesenchymal stromal cells (MSCs) for cartilage tissue engineering — a review of the literature}, series = {Gels}, volume = {7}, journal = {Gels}, number = {4}, issn = {2310-2861}, doi = {10.3390/gels7040217}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-250177}, year = {2021}, abstract = {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.}, language = {en} } @article{HaeusnerHerbstBittorfetal.2021, author = {Haeusner, Sebastian and Herbst, Laura and Bittorf, Patrick and Schwarz, Thomas and Henze, Chris and Mauermann, Marc and Ochs, Jelena and Schmitt, Robert and Blache, Ulrich and Wixmerten, Anke and Miot, Sylvie and Martin, Ivan and Pullig, Oliver}, title = {From Single Batch to Mass Production-Automated Platform Design Concept for a Phase II Clinical Trial Tissue Engineered Cartilage Product}, series = {Frontiers in Medicine}, volume = {8}, journal = {Frontiers in Medicine}, issn = {2296-858X}, doi = {10.3389/fmed.2021.712917}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-244631}, year = {2021}, abstract = {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.}, language = {en} } @phdthesis{Schwab2017, author = {Schwab, Andrea}, title = {Development of an osteochondral cartilage defect model}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-155617}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2017}, abstract = {The limited intrinsic self-healing capability of articular cartilage requires treatment of cartilage defects. Material assisted and cell based therapies are in clinical practice but tend to result in formation of mechanical inferior fibro-cartilage in long term follow up. If a lesion has not been properly restored degenerative diseases are diagnosed as late sequela causing pain and loss in morbidity. Complex three dimensional tissue models mimicking physiological situation allow investigation of cartilage metabolism and mechanisms involved in repair. A standardized and reproducible model cultured under controllable conditions ex vivo to maintain tissue properties is of relevance for comparable studies. Topic of this thesis was the establishment of an cartilage defect model that allows for testing novel biomaterials and investigate the effect of defined defect depths on formation of repair tissue. In part I an ex vivo osteochondral defect model was established based on isolation of porcine osteochondral explants (OCE) from medial condyles, 8 mm in diameter and 5 mm in height. Full thickness cartilage defects with 1 mm to 4 mm in diameter were created to define ex vivo cartilage critical size after 28 days culture with custom developed static culture device. In part II of this thesis hydrogel materials, namely collagen I isolated from rat tail, commercially available fibrin glue, matrix-metalloproteinase clevable poly(ethylene glycol) polymerized with heparin (starPEGh), methacrylated poly(N-(2-hydroxypropyl) methacrylamide mono-dilactate-poly(ethylene glycol) triblock copolymer/methacrylated hyaluronic acid (MP/HA), thiol functionalized HA/allyl functionalized poly(glycidol) (P(AGE/G)-HA-SH), were tested cell free and chondrocyte loaded (20 mio/ml) as implant in 4 mm cartilage defects to investigate cartilage regeneration. Reproducible chondral defects, 8 mm in diameter and 1 mm in height, were generated with an artificial tissue cutter (ARTcut®) to investigate effect of defect depth on defect regeneration in part III. In all approaches OCE were analyzed by Safranin-O staining to visualize proteoglycans in cartilage and/or hydrogels. Immuno-histological and -fluorescent stainings (aggrecan, collagen II, VI and X, proCollagen I, SOX9, RUNX2), gene expression analysis (aggrecan, collagen II and X, SOX9, RUNX2) of chondrocyte loaded hydrogels (part II) and proteoglycan and DNA content (Part I \& II) were performed for detailed analysis of cartilage regeneration. Part I: The development of custom made static culture device, consisting of inserts in which OCE is fixed and deep well plate, allowed tissue specific media supply without supplementation of TGF � . Critical size diameter was defined to be 4 mm. Part II: Biomaterials revealed differences in cartilage regeneration. Collagen I and fibrin glue showed presence of cells migrated from OCE into cell free hydrogels with indication of fibrous tissue formation by presence of proCollagen I. In chondrocyte loaded study cartilage matrix proteins aggrecan, collagen II and VI and transcription factor SOX9 were detected after ex vivo culture throughout the two natural hydrogels collagen I and fibrin glue whereas markers were localized in pericellular matrix in starPEGh. Weak stainings resulted for MP/HA and P(AGE/G)-HA-SH in some cell clusters. Gene expression data and proteoglycan quantification supported histological findings with tendency of hypertrophy indicated by upregulation of collagen X and RunX2 in MP/HA and P(AGE/G)-HA-SH. Part III: In life-dead stainings recruitment of cells from OCE into empty or cell free collagen I treated chondral defects was seen. Separated and tissue specific media supply is critical to maintain ECM composition in cartilage. Presence of OCE stimulates cartilage matrix synthesis in chondrocyte loaded collagen I hydrogel and reduces hypertrophy compared to free swelling conditions and pellet cultures. Differences in cartilage repair tissue formation resulted in preference of natural derived polymers compared to synthetic based materials. The ex vivo cartilage defect model represents a platform for testing novel hydrogels as cartilage materials, but also to investigate the effect of cell seeding densities, cell gradients, cell co-cultures on defect regeneration dependent on defect depth. The separated media compartments allow for systematic analysis of pharmaceutics, media components or inflammatory cytokines on bone and cartilage metabolism and matrix stability.}, subject = {Hyaliner Knorpel}, language = {en} }