Song Guanbin, Luo Qing, Xu Baiyao, Ju Yang
Key Laboratory of Biorheological Science and Technology, Ministry of Education of the People's Republic of China, College of Bioengineering, Chongqing University, Chongqing 400044, People's Republic of China.
Mol Cell Biomech. 2010 Sep;7(3):165-74.
It has been demonstrated that mechanical stimulation plays a vital role in regulating the proliferation and differentiation of stem cells. However, little is known about the effects of mechanical stress on tendon/ligament development from mesenchymal stem cells (MSCs). Here, using a custom-made cell-stretching device, we studied the effects of mechanical stretching on the cell morphology and mRNA expression of several key genes modulating tendon/ligament genesis. We demonstrate that bone-marrow-derived rat MSCs (rMSCs), when subjected to cyclic uniaxial stretching, express obvious detectable mRNAs for tenascin C and scleraxis, a unique maker of tendon/ligament formation, and significantly increased levels of type I collagen and type III collagen mRNAs. The stretched cells also orient at approximately 65 degrees with respect to the stretching direction and exhibit a more fibroblast-like morphology. Collectively, these results indicate that mechanical stretching facilitates the directed differentiation of rMSCs into tendon/ligament fibroblasts, which has potential implications for the tissue engineering of bioartificial tendons and ligaments.
已经证明,机械刺激在调节干细胞的增殖和分化中起着至关重要的作用。然而,关于机械应力对间充质干细胞(MSCs)向肌腱/韧带发育的影响却知之甚少。在此,我们使用定制的细胞拉伸装置,研究了机械拉伸对调节肌腱/韧带生成的几个关键基因的细胞形态和mRNA表达的影响。我们证明,来自大鼠骨髓的间充质干细胞(rMSCs)在受到循环单轴拉伸时,会表达明显可检测到的肌腱蛋白C和硬骨素的mRNA,硬骨素是肌腱/韧带形成的独特标志物,同时I型胶原蛋白和III型胶原蛋白的mRNA水平显著增加。拉伸后的细胞也相对于拉伸方向以大约65度的角度定向,并呈现出更类似成纤维细胞的形态。总体而言,这些结果表明机械拉伸促进rMSCs向肌腱/韧带成纤维细胞的定向分化,这对生物人工肌腱和韧带的组织工程具有潜在意义。