Li Qianqian, Gao Zewen, Chen Ye, Guan Min-Xin
Division of Clinical Genetics and Genomics, The Children's Hospital, Zhejiang University School of Medicine, Hangzhou, 310058, China.
Institute of Genetics, Zhejiang University and Department of Genetics, Zhejiang University School of Medicine, Hangzhou, 310058, China.
Protein Cell. 2017 Jun;8(6):439-445. doi: 10.1007/s13238-017-0385-7. Epub 2017 Mar 7.
Mesenchymal stem cells (MSCs) are progenitors of connective tissues, which have emerged as important tools for tissue engineering due to their differentiation potential along various cell types. In recent years, accumulating evidence has suggested that the regulation of mitochondria dynamics and function is essential for successful differentiation of MSCs. In this paper, we review and provide an integrated view on the role of mitochondria in MSC differentiation. The mitochondria are maintained at a relatively low activity level in MSCs, and upon induction, mtDNA copy number, protein levels of respiratory enzymes, the oxygen consumption rate, mRNA levels of mitochondrial biogenesis-associated genes, and intracellular ATP content are increased. The regulated level of mitochondrial ROS is found not only to influence differentiation but also to contribute to the direction determination of differentiation. Understanding the roles of mitochondrial dynamics during MSC differentiation will facilitate the optimization of differentiation protocols by adjusting biochemical properties, such as energy production or the redox status of stem cells, and ultimately, benefit the development of new pharmacologic strategies in regenerative medicine.
间充质干细胞(MSCs)是结缔组织的祖细胞,由于其沿各种细胞类型的分化潜能,已成为组织工程的重要工具。近年来,越来越多的证据表明,线粒体动力学和功能的调节对于MSCs的成功分化至关重要。在本文中,我们综述并提供了关于线粒体在MSCs分化中作用的综合观点。线粒体在MSCs中维持在相对较低的活性水平,诱导后,线粒体DNA拷贝数、呼吸酶蛋白水平、耗氧率、线粒体生物发生相关基因的mRNA水平和细胞内ATP含量增加。发现线粒体ROS的调节水平不仅影响分化,而且有助于分化方向的确定。了解线粒体动力学在MSCs分化过程中的作用将有助于通过调节生化特性(如能量产生或干细胞的氧化还原状态)来优化分化方案,并最终有益于再生医学中新药理策略的开发。