Mitigating skeletal muscle wasting in unloading and augmenting subsequent recovery

浪费的 肌肉萎缩 去神经支配 萎缩 骨骼肌 物理医学与康复 神经科学 太空飞行 医学 重症监护医学 生物 解剖 病理 内科学 工程类 航空航天工程
作者
J. Max Michel,Zachary R. Hettinger,Fabrisia Ambrosio,Brendan Egan,Michael D. Roberts,Arny A. Ferrando,Zachary Graham,Marcas M. Bamman
出处
期刊:The Journal of Physiology [Wiley]
卷期号:603 (13): 3641-3652 被引量:11
标识
DOI:10.1113/jp284301
摘要

Abstract Skeletal muscle wasting is the hallmark pathophysiological adaptation to unloading or disuse that demonstrates the dependency on frequent mechanical stimulation (e.g. muscle activation and subsequent loading) for homeostasis of normally load‐bearing muscles. In the absence of mitigation strategies, no mammalian organism is resistant to muscle atrophy driven by unloading. Given the profound impact of unloading‐induced muscle wasting on physical capacity, metabolic health and immune function; mitigation strategies during unloading and/or augmentation approaches during recovery have broad healthcare implications in settings of bed‐bound hospitalization, cast immobilization and spaceflight. This topical review aims to: (1) provide a succinct, state‐of‐the‐field summary of seminal and recent findings regarding the mechanisms of unloading‐induced skeletal muscle wasting; (2) discuss unsuccessful vs . promising mitigation and recovery augmentation strategies; and (3) identify knowledge gaps ripe for future research. We focus on the rapid muscle atrophy driven by relatively short‐term mechanical unloading/disuse, which is in many ways mechanistically distinct from both hypermetabolic muscle wasting and denervation‐induced muscle atrophy. By restricting this discussion to mechanical unloading during which all components of the nervous system remain intact (e.g. without denervation models), mechanical loading requiring motor and sensory neural circuits in muscle remain viable targets for both mitigation and recovery augmentation. We emphasize findings in humans with comparative discussions of studies in rodents which enable elaboration of key mechanisms. We also discuss what is currently known about the effects of age and sex as biological factors, and both are highlighted as knowledge gaps and novel future directions due to limited research. image
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