不使用引起的肌肉疲劳:事实和假设
Xenia V Sergeeva1, Irina D Lvova1, Kristina A Sharlo1
1Institute of Biomedical Problems, RAS, Khorosevskoye Shosse, 76a, 123007 Moscow, Russia.
International journal of molecular sciences
|May 11, 2024
概括
在太空飞行或床上休息时看到的肌肉卸载会导致疲劳增加. 这种疲劳源于肌肉纤维变化和信号干扰,而不仅仅是缩.
科学领域:
- 生理学 生理学 生理学
- 运动科学 运动科学
- 太空医学 太空医学
背景情况:
- 骨肌肉卸载在太空飞行和床上休息等条件下很常见.
- 卸载导致有害的功能变化,特别是增加肌肉疲劳.
- 对于疲劳的现有解释不能完全解释单独的肌肉缩.
研究的目的:
- 审查卸载诱导疲劳的机制.
- 探索导致疲劳的神经生物学和肌肉内因素.
- 综合最近关于肌肉卸载和疲劳的实验数据.
主要方法:
- 关于肌肉卸载和疲劳的研究文献综述.
- 从各种肌肉和卸载模型中分析数据.
- 关于细胞和分子变化的实验发现的综合.
主要成果:
- 卸载通过神经生物学和肌肉内过程都会诱导疲劳.
- 肌内疲劳与肌肉纤维从缓慢氧化转变为快速糖解体表型的转变有关.
- 关键的变化包括纤维缓慢转速,线粒体密度降低和信号通路中断.
结论:
- 在卸载过程中肌肉纤维的失活会引发导致疲劳增加的事件.
- 这涉及高能酸盐和的积累,以及氧化 (NO) 的减少.
- 这些分子干扰会导致结构性肌肉变化,导致疲劳增加.
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