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Dynamic mechanical loading facilitated chondrogenic differentiation of rabbit BMSCs in collagen scaffolds

机译:动态机械负荷促进胶原支架中兔骨髓间充质干细胞的软骨分化

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Mechanical signals have been played close attention to regulate chondrogenic differentiation of bone marrow mesenchymal stem cells (BMSCs). In this study, dynamic mechanical loading simulation with natural frequencies and intensities were applied to the 3D cultured BMSCs–collagen scaffold constructs. We investigated the effects of dynamic mechanical loading on cell adhesion, uniform distribution, proliferation, secretion of extracellular matrix (ECM) and chondrogenic differentiation of BMSCs–collagen scaffold constructs. The results indicated that dynamic mechanical loading facilitated the BMSCs adhesion, uniform distribution, proliferation and secretion of ECM with a slight contraction, which significantly improved the mechanical strength of the BMSCs–collagen scaffold constructs for better mimicking the structure and function of a native cartilage. Gene expression results indicated that dynamic mechanical loading contributed to the chondrogenic differentiation of BMSCs with higher levels of AGG, COL2A1 and SOX9 genes, and prevented of hypertrophic process with lower levels of COL10A1, and reduced the possibility of fibrocartilage formation due to down-regulated COL1A2. In conclusion, this study emphasized the important role of dynamic mechanical loading on promoting BMSCs chondrogenic differentiation and maintaining the cartilage phenotype for in vitro reconstruction of tissue-engineered cartilage, which provided an attractive prospect and a feasibility strategy for cartilage repair.
机译:机械信号已被密切关注以调节骨髓间充质干细胞(BMSCs)的软骨形成分化。在这项研究中,将具有自然频率和强度的动态机械载荷模拟应用于3D培养的BMSCs-胶原支架结构。我们研究了动态机械负荷对BMSCs-胶原支架构建体细胞粘附,均匀分布,增殖,细胞外基质(ECM)分泌和软骨分化的影响。结果表明,动态机械加载促进了BMSCs的粘附,均匀分布,ECM的增殖和分泌,并伴有轻微的收缩,从而显着提高了BMSCs-胶原蛋白支架构建体的机械强度,从而更好地模仿了天然软骨的结构和功能。基因表达结果表明,动态机械负荷有助于AGG,COL2A1和SOX9基因水平较高的BMSC的软骨分化,并通过降低COL10A1水平防止肥大过程,并降低了COL1A2的下调引起软骨形成的可能性。总之,本研究强调了动态机械负荷在促进BMSCs软骨分化和维持软骨表型方面的重要作用,为组织工程软骨的体外重建提供了诱人的前景和可行的软骨修复策略。

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