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The human arthritic hip joint is a source of mesenchymal stromal cells (MSCs) with extensive multipotent differentiation potential (2020)
Wagenbrenner, Mike ; Heinz, Tizian ; Horas, Konstantin ; Jakuscheit, Axel ; Arnholdt, Jörg ; Hermann, Marietta ; Rudert, Maximilian ; Holzapfel, Boris M. ; Steinert, Andre F. ; Weißenberger, Manuel
Background While multiple in vitro studies examined mesenchymal stromal cells (MSCs) derived from bone marrow or hyaline cartilage, there is little to no data about the presence of MSCs in the joint capsule or the ligamentum capitis femoris (LCF) of the hip joint. Therefore, this in vitro study examined the presence and differentiation potential of MSCs isolated from the bone marrow, arthritic hyaline cartilage, the LCF and full-thickness samples of the anterior joint capsule of the hip joint. Methods MSCs were isolated and multiplied in adherent monolayer cell cultures. Osteogenesis and adipogenesis were induced in monolayer cell cultures for 21 days using a differentiation medium containing specific growth factors, while chondrogenesis in the presence of TGF-ss1 was performed using pellet-culture for 27 days. Control cultures were maintained for comparison over the same duration of time. The differentiation process was analyzed using histological and immunohistochemical stainings as well as semiquantitative RT-PCR for measuring the mean expression levels of tissue-specific genes. Results This in vitro research showed that the isolated cells from all four donor tissues grew plastic-adherent and showed similar adipogenic and osteogenic differentiation capacity as proven by the histological detection of lipid droplets or deposits of extracellular calcium and collagen type I. After 27 days of chondrogenesis proteoglycans accumulated in the differentiated MSC-pellets from all donor tissues. Immunohistochemical staining revealed vast amounts of collagen type II in all differentiated MSC-pellets, except for those from the LCF. Interestingly, all differentiated MSCs still showed a clear increase in mean expression of adipogenic, osteogenic and chondrogenic marker genes. In addition, the examination of an exemplary selected donor sample revealed that cells from all four donor tissues were clearly positive for the surface markers CD44, CD73, CD90 and CD105 by flow cytometric analysis. Conclusions This study proved the presence of MSC-like cells in all four examined donor tissues of the hip joint. No significant differences were observed during osteogenic or adipogenic differentiation depending on the source of MSCs used. Further research is necessary to fully determine the tripotent differentiation potential of cells isolated from the LCF and capsule tissue of the hip joint.
Different types of cartilage neotissue fabricated from collagen hydrogels and mesenchymal stromal cells via SOX9, TGFB1 or BMP2 gene transfer (2020)
Weissenberger, Manuel ; Weissenberger, Manuela H. ; Wagenbrenner, Mike ; Heinz, Tizian ; Reboredo, Jenny ; Holzapfel, Boris M. ; Rudert, Maximilian ; Groll, Jürgen ; Evans, Christopher H. ; Steinert, Andre F.
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.
In vitro-Charakterisierung mesenchymaler Stromazellen aus dem menschlichen Hüftgelenk (2021)
Wagenbrenner, Mike Helmut
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.
Custom Made Monoflange Acetabular Components for the Treatment of Paprosky Type III Defects (2021)
von Hertzberg-Boelch, Sebastian Philipp ; Wagenbrenner, Mike ; Arnholdt, Jörg ; Frenzel, Stephan ; Holzapfel, Boris Michael ; Rudert, Maximilian
Purpose: Patient-specific, flanged acetabular components are used for the treatment of Paprosky type III defects during revision total hip arthroplasty (THA). This monocentric retrospective cohort study analyzes the outcome of patients treated with custom made monoflanged acetabular components (CMACs) with intra- and extramedullary iliac fixation. Methods: 14 patients were included who underwent revision THA with CMACs for the treatment of Paprosky type III defects. Mechanism of THA failure was infection in 4 and aseptic loosening in 10 patients. Seven patients underwent no previous revision, the other seven patients underwent three or more previous revisions. Results: At a mean follow-up of 35.4 months (14–94), the revision rate of the implant was 28.3%. Additionally, one perioperative dislocation and one superficial wound infection occurred. At one year postoperatively, we found a significant improvement of the Western Ontario and McMaster Universities Arthritis Index (WOMAC) score (p = 0.015). Postoperative radiographic analysis revealed good hip joint reconstruction with a mean leg length discrepancy of 3 mm (−8–20), a mean lateralization of the horizontal hip center of rotation of 8 mm (−8–35), and a mean proximalization of the vertical hip center of rotation of 6 mm (13–26). Radiolucency lines were present in 30%. Conclusion: CMACs can be considered an option for the treatment of acetabular bone loss in revision THA. Iliac intra- and extramedullary fixation allows soft tissue-adjusted hip joint reconstruction and improves hip function. However, failure rates are high, with periprosthetic infection being the main threat to successful outcome.
Impact of Tranexamic Acid on Chondrocytes and Osteogenically Differentiated Human Mesenchymal Stromal Cells (hMSCs) In Vitro (2020)
Wagenbrenner, Mike ; Heinz, Tizian ; Horas, Konstantin ; Jakuscheit, Axel ; Arnholdt, Joerg ; Mayer-Wagner, Susanne ; Rudert, Maximilian ; Holzapfel, Boris M. ; Weißenberger, Manuel
The topical application of tranexamic acid (TXA) helps to prevent post-operative blood loss in total joint replacements. Despite these findings, the effects on articular and periarticular tissues remain unclear. Therefore, this in vitro study examined the effects of varying exposure times and concentrations of TXA on proliferation rates, gene expression and differentiation capacity of chondrocytes and human mesenchymal stromal cells (hMSCs), which underwent osteogenic differentiation. Chondrocytes and hMSCs were isolated and multiplied in monolayer cell cultures. Osteogenic differentiation of hMSCs was induced for 21 days using a differentiation medium containing specific growth factors. Cell proliferation was analyzed using ATP assays. Effects of TXA on cell morphology were examined via light microscopy and histological staining, while expression levels of tissue-specific genes were measured using semiquantitative RT-PCR. After treatment with 50 mg/mL of TXA, a decrease in cell proliferation rates was observed. Furthermore, treatment with concentrations of 20 mg/mL of TXA for at least 48 h led to a visible detachment of chondrocytes. TXA treatment with 50 mg/mL for at least 24 h led to a decrease in the expression of specific marker genes in chondrocytes and osteogenically differentiated hMSCs. No significant effects were observed for concentrations beyond 20 mg/mL of TXA combined with exposure times of less than 24 h. This might therefore represent a safe limit for topical application in vivo. Further research regarding in vivo conditions and effects on hMSC functionality are necessary to fully determine the effects of TXA on articular and periarticular tissues.
Combinations of hydrogels and mesenchymal stromal cells (MSCs) for cartilage tissue engineering — a review of the literature (2021)
Wagenbrenner, Mike ; Mayer-Wagner, Susanne ; Rudert, Maximilian ; Holzapfel, Boris Michael ; Weissenberger, Manuel
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.
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