- 葡萄糖因子对小鼠骨肌肉的力量和刺激性的相互作用:对疲劳疲劳的影响
Simeon P Cairns1,2, Jean-Marc Renaud3
1SPRINZ, School of Sport and Recreation, Faculty of Health and Environmental Sciences, Auckland University of Technology, New Zealand.
The Journal of physiology
|November 7, 2023
概括
减少的肌肉糖原和增加的细胞外 (K+) 水平在强度运动期间协同损害肌肉力量的产生. 这种相互作用会增加肌肉纤维的不兴奋性,导致疲劳和性能降低.
科学领域:
- 运动生理学 运动生理学
- 肌肉生理学 肌肉生理学
- 生物化学 生物化学
背景情况:
- 在强度运动期间观察到肌肉糖原减少和细胞外 (K+) 度升高.
- 假设这些因素有助于骨肌肉疲劳.
研究的目的:
- 为了研究降低肌肉糖原和提高细胞外K+度 ([K+]o) 之间的协同作用,对骨肌肉的力量产生.
- 确定这些因素对肌肉纤维刺激能力的影响.
主要方法:
- 孤立的小鼠肌底肌肉受到同度收缩.
- 肌肉糖原含量因长时间暴露于无葡萄糖溶液而降低.
- 在不同细胞外K+度 (4至11毫米) 测量力产量.
- 通过电气测量来评估肌肉纤维刺激性.
主要成果:
- 严重的葡萄糖原耗尽显著加剧了在11mM[K+]o.o.的峰值破伤力下降.
- 降低糖原导致不可激发肌肉纤维的百分比更高.
- 在肌肉糖原含量和在[K+]o.o.升高时的力量产生之间发现了指数关系.
- 恢复葡萄糖增加了糖原和力量的生产.
结论:
- 减少肌肉糖原和增加细胞外K+之间存在协同作用,减少肌肉力量.
- 这种相互作用通过增加纤维不可兴奋性,导致骨肌肉疲劳.
- 这些发现凸显了糖原可用性在高强度运动期间维持肌肉功能的重要性.
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