相关实验视频
Updated: Jul 16, 2025

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Ex vivo Mechanical Loading of Tendon
Published on: May 28, 2007
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人类肌单元对连续高应变周期性负荷的机械生物学反应
Gaspar Epro1, Frank Suhr2,3, Kiros Karamanidis1,4
1Sport and Exercise Science Research Centre, School of Applied Sciences, London South Bank University, London SE1 0AA, UK.
The Journal of experimental biology
|September 18, 2023
概括
重复的高应变运动会增加阿基里斯肌的应变,并降低度,特别是在频繁的负荷下. 肌修复可能无法跟上微损伤的步伐,增加受伤风险.
科学领域:
- 运动医学 运动医学
- 生物力学 生物力学
- 肌生理学 肌生理学
背景情况:
- 肌的组织更新速度比肌肉慢,这增加了对重复性高机械应变的脆弱性.
- 在高压运动后恢复时间不足,可能会加剧对肌的机械需求.
研究的目的:
- 为了研究三肌 (TS) 肌单位 (MTU) 对重复的高阿基里斯肌 (AT) 应变的适应性反应.
- 为了分析细胞外矩阵周转生物标志物,以应对循环负荷.
主要方法:
- 11名年轻男性接受了12天的高AT应变 (90% MVC) 的渐进性抵抗运动.
- 一条腿 (LegT1) 每天加载一次;另一个腿 (LegT3) 每天加载三次.
- 测量了TS MTU机械特性和血清生物标志物.
主要成果:
- 两条腿都显示最大的AT力增加了10%左右.
- 在8天后,LegT3的最大AT压力增加了20%左右,AT度降低了8天后,在48小时的休息后仍然存在.
- 在LegT1中,AT机械性能没有显著变化.
结论:
- 频繁的高强度循环负荷使肌易受超出修复能力的微损伤积累的影响.
- 这可能会导致最大肌张力增加和性降低,特别是在更高的负载频率下.
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