粒体自噬
骨骼肌
线粒体融合
线粒体生物发生
线粒体
细胞生物学
线粒体分裂
生物
耐力训练
内质网
功能(生物学)
线粒体DNA
生物信息学
神经科学
生物化学
内分泌学
自噬
基因
细胞凋亡
作者
Elya J. Ritenis,Camila S. Padilha,Matthew B. Cooke,Christos G. Stathis,Andrew Philp,Donny M. Camera
出处
期刊:American Journal of Physiology-endocrinology and Metabolism
[American Physiological Society]
日期:2024-10-23
标识
DOI:10.1152/ajpendo.00311.2024
摘要
Exercise and nutritional modulation are potent stimuli for eliciting increases in mitochondrial mass and function. Collectively, these beneficial adaptations are increasingly recognized to coincide with improvements to skeletal muscle health. Mitochondrial dynamics of fission and fusion are increasingly implicated as having a central role in mediating aspects of key organelle adaptions that are seen with exercise. Exercise-induced mitochondrial adaptations that dynamics have been implicated in are: 1) Increases to mitochondrial turnover, resulting from elevated rates of mitochondrial synthesis (biogenesis) and degradative (mitophagy) processes. 2) Morphological changes to the 3D tubular network, known as the mitochondrial reticulum, that mitochondria form in skeletal muscle. Notably, mitochondrial fission has also been implicated in coordinating increases in mitophagy, following acute exercise. Further, increased fusion following exercise training promotes increased connectivity of the mitochondrial reticulum and is associated with improved metabolism and mitochondrial function. However, the molecular basis and fashion in which exercise infers beneficial mitochondrial adaptations through mitochondrial dynamics remains poorly understood. This review attempts to highlight recent developments investigating the effects of exercise on mitochondrial dynamics, while attempting to offer a perspective of the methodological refinements and potential variables, such as substrate/glycogen availability, which should be considered going forward.
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