Bhattacharya Debasmita, Scimè Anthony
Molecular, Cellular and Integrative Physiology, Faculty of Health, York University, Toronto, ON, Canada.
Front Cell Dev Biol. 2020 Jun 16;8:480. doi: 10.3389/fcell.2020.00480. eCollection 2020.
Mitochondria are crucial organelles that control cellular metabolism through an integrated mechanism of energy generation via oxidative phosphorylation. Apart from this canonical role, it is also integral for ROS production, fatty acid metabolism and epigenetic remodeling. Recently, a role for the mitochondria in effecting stem cell fate decisions has gained considerable interest. This is important for skeletal muscle, which exhibits a remarkable property for regeneration following injury, owing to satellite cells (SCs), the adult myogenic stem cells. Mitochondrial function is associated with maintaining and dictating SC fates, linked to metabolic programming during quiescence, activation, self-renewal, proliferation and differentiation. Notably, mitochondrial adaptation might take place to alter SC fates and function in the presence of different environmental cues. This review dissects the contribution of mitochondria to SC operational outcomes, focusing on how their content, function, dynamics and adaptability work to influence SC fate decisions.
线粒体是至关重要的细胞器,通过氧化磷酸化产生能量的综合机制来控制细胞代谢。除了这一经典作用外,它对于活性氧生成、脂肪酸代谢和表观遗传重塑也不可或缺。最近,线粒体在影响干细胞命运决定方面的作用引起了广泛关注。这对于骨骼肌来说很重要,由于卫星细胞(SCs),即成年肌源性干细胞,骨骼肌在损伤后具有显著的再生特性。线粒体功能与维持和决定卫星细胞命运相关,这与静止、激活、自我更新、增殖和分化过程中的代谢编程有关。值得注意的是,在不同环境线索存在的情况下,线粒体可能会发生适应性变化,以改变卫星细胞的命运和功能。本综述剖析了线粒体对卫星细胞运作结果的贡献,重点关注其含量、功能、动态变化和适应性如何影响卫星细胞的命运决定。