The State Key Laboratory of Pharmaceutical Biotechnology and MOE Key Laboratory of Model Animals for Disease Study, Department of Spine Surgery, Nanjing Drum Tower Hospital, The Affiliated Hospital of Nanjing University Medical School, Model Animal Research Center of Nanjing University, 210061, Nanjing, China.
Cardiovascular Institute and Department of Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, 19104, USA.
Cell Res. 2018 Oct;28(10):969-980. doi: 10.1038/s41422-018-0078-7. Epub 2018 Aug 14.
Skeletal muscle fitness and plasticity is an important determinant of human health and disease. Mitochondria are essential for maintaining skeletal muscle energy homeostasis by adaptive re-programming to meet the demands imposed by a myriad of physiologic or pathophysiological stresses. Skeletal muscle mitochondrial dysfunction has been implicated in the pathogenesis of many diseases, including muscular dystrophy, atrophy, type 2 diabetes, and aging-related sarcopenia. Notably, exercise counteracts the effects of many chronic diseases on skeletal muscle mitochondrial function. Recent studies have revealed a finely tuned regulatory network that orchestrates skeletal muscle mitochondrial biogenesis and function in response to exercise and in disease states. In addition, increasing evidence suggests that mitochondria also serve to "communicate" with the nucleus and mediate adaptive genomic re-programming. Here we review the current state of knowledge relevant to the dynamic remodeling of skeletal muscle mitochondria in response to exercise and in disease states.
骨骼肌健康和可塑性是人类健康和疾病的重要决定因素。线粒体通过适应性重编程来维持骨骼肌能量稳态,以满足各种生理或病理应激的需求,这对其至关重要。骨骼肌线粒体功能障碍与许多疾病的发病机制有关,包括肌肉营养不良、萎缩、2 型糖尿病和与衰老相关的肌肉减少症。值得注意的是,运动可以抵消许多慢性疾病对骨骼肌线粒体功能的影响。最近的研究揭示了一个精细调节的调控网络,该网络可以协调骨骼肌线粒体生物发生和功能,以响应运动和疾病状态。此外,越来越多的证据表明,线粒体还可以与核“沟通”并介导适应性基因组重编程。在这里,我们综述了与运动和疾病状态下骨骼肌线粒体动态重塑相关的最新知识。