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首页> 外文期刊>Tissue engineering >Osteogenic differentiation of human mesenchymal stem cells in collagen matrices: effect of uniaxial cyclic tensile strain on bone morphogenetic protein (BMP-2) mRNA expression.
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Osteogenic differentiation of human mesenchymal stem cells in collagen matrices: effect of uniaxial cyclic tensile strain on bone morphogenetic protein (BMP-2) mRNA expression.

机译:人间充质干细胞在胶原蛋白基质中的成骨分化:单轴循环拉伸应变对骨形态发生蛋白(BMP-2)mRNA表达的影响。

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摘要

Human mesenchymal stem cells (hMSCs) differentiate down an osteogenic pathway with appropriate mechanical and/or chemical stimuli. This study describes the successful culture of hMSCs in 3D collagen matrices under mechanical strain. Bone marrow-derived hMSCs were seeded in linear 3D type I collagen matrices and subjected to 0%, 10%, or 12% uniaxial cyclic tensile strain at 1 Hz for 4 h/day for 7 or 14 days. Cell viability studies indicated that hMSCs remained viable throughout the culture period irrespective of the applied strain level. Real-time RT-PCR studies indicated a significant increase in BMP-2 mRNA expression levels in hMSCs strained at 10% compared to the same day unstrained controls after both 7 and 14 days. An increase in BMP-2 was also observed in hMSCs subjected to 12% strain, but the increase was significant only in the 14-day sample. This is the first report of the culture of bone marrow-derived hMSCs in 3D collagen matrices under cyclic strain, and the first demonstration that strain alone can induce osteogenic differentiation without the addition of osteogenic supplements. Induction of bone differentiation in 3D culture is a critical step in the creation of bioengineered bone constructs.
机译:人间充质干细胞(hMSCs)通过适当的机械和/或化学刺激分化为成骨途径。这项研究描述了在机械应变下在3D胶原蛋白基质中成功培养hMSCs。将骨髓来源的hMSC接种在线性3D I型胶原蛋白基质中,以1 Hz的频率对0%,10%或12%的单轴循环拉伸应变进行4h /天的治疗,持续7或14天。细胞活力研究表明,hMSC在整个培养期间均保持活力,而与所施加的菌株水平无关。实时RT-PCR研究表明,与7天和14天后的同一天未过滤的对照相比,过滤了10%的hMSC中BMP-2 mRNA表达水平显着增加。在经受12%应变的hMSC中也观察到BMP-2的增加,但这种增加仅在14天的样品中才显着。这是第一个在循环应变下在3D胶原蛋白基质中培养源自骨髓的hMSCs的报道,也是第一个证明单独使用该菌株即可诱导成骨分化而无需添加成骨补充剂的报道。在3D文化中诱导骨骼分化是创建生物工程骨骼构造的关键步骤。

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