Zhang Xiaofeng, Nan Yayun, Wang Huan, Chen Jun, Wang Nanding, Xie Juan, Ma Jing, Wang Zongren
Department of Traditional Chinese Medicine, Xijing Hospital, Fourth Military Medical University, Xi'an, Shaanxi, People's Republic of China.
Naturwissenschaften. 2013 Feb;100(2):125-33. doi: 10.1007/s00114-012-1002-5. Epub 2012 Dec 11.
Mesenchymal stem cells (MSCs) are capable of differentiation into multilineage cell types under certain induction conditions. Previous studies have demonstrated that physical environments and mechanical force can influence MSC fate, indicating that these factors may be favorable inducers for clinical treatment. Our previous study found that MSCs are spread with a spindle shape when cultured in normal gravity (NG), and under modeled microgravity (MMG) for 72 h, they become unspread and round and their cytoskeleton fibers are reorganized. These morphological changes affected the function of MSCs through the activity of RhoA. We examined the responses of MSCs under MMG stimulation, followed with VEGF differentiation. We found that MSCs under MMG for 72 h were differentiated into endothelial-like cells by detecting the expression of endothelial-specific molecules (Flk-1 and vWF), which were also able to form a capillary network. Their endothelial differentiation potential was improved under MMG compared with that under NG. We believe that this method is a novel choice of MMG stimulation for neovascularization. This phenomenon may increase the potential of MSC differentiation, which might be a new strategy for the treatment of various vascular diseases and improve vascularization in tissue engineering.
间充质干细胞(MSCs)在特定诱导条件下能够分化为多谱系细胞类型。先前的研究表明,物理环境和机械力可影响间充质干细胞的命运,这表明这些因素可能是临床治疗的有利诱导因素。我们之前的研究发现,间充质干细胞在正常重力(NG)条件下培养时呈纺锤形铺展,而在模拟微重力(MMG)条件下培养72小时后,它们变得不再铺展且呈圆形,其细胞骨架纤维也发生了重组。这些形态变化通过RhoA的活性影响了间充质干细胞的功能。我们研究了模拟微重力刺激下间充质干细胞的反应,随后进行血管内皮生长因子(VEGF)分化。我们发现,通过检测内皮特异性分子(Flk-1和vWF)的表达,在模拟微重力条件下培养72小时的间充质干细胞可分化为内皮样细胞,这些细胞也能够形成毛细血管网络。与正常重力条件下相比,模拟微重力条件下它们的内皮分化潜能得到了提高。我们认为这种模拟微重力刺激方法是用于血管新生的一种新选择。这种现象可能会增加间充质干细胞的分化潜能,这可能是治疗各种血管疾病以及改善组织工程中血管化的一种新策略。