Ruggiero Luca, Gruber Markus
Human Performance Research Centre, Department of Sports Science, University of Konstanz, Konstanz, Germany.
J Physiol. 2024 Oct 28. doi: 10.1113/JP285667.
The removal of skeletal muscle tension (unloading or disuse) is followed by many changes in the neuromuscular system, including muscle atrophy and loss of isometric maximal strength (measured by maximal force, F). Explosive strength, i.e. the ability to develop the highest force in the shortest possible time, to maximise rate of force development (RFD), is a fundamental neuromuscular capability, often more functionally relevant than maximal muscle strength. In the present review, we discuss data from studies that looked at the effect of muscle unloading on isometric maximal versus explosive strength. We present evidence that muscle unloading yields a greater decline in explosive relative to maximal strength. The longer the unloading duration, the smaller the difference between the decline in the two measures. Potential mechanisms that may explain the greater decline in measures of RFD relative to F after unloading are higher recruitment thresholds and lower firing rates of motor units, slower twitch kinetics, impaired excitation-contraction coupling, and decreased tendon stiffness. Using a Hill-type force model, we showed that this ensemble of adaptations minimises the loss of force production at submaximal contraction intensities, at the expense of a disproportionately lower RFD. With regard to the high functional relevance of RFD on one hand, and the boosted detrimental effects of inactivity on RFD on the other hand, it seems crucial to implement specific exercises targeting explosive strength in populations that experience muscle disuse over a longer time.
骨骼肌张力消除(卸载或废用)后,神经肌肉系统会发生许多变化,包括肌肉萎缩和等长最大力量(通过最大力F测量)的丧失。爆发力,即在尽可能短的时间内产生最大力量、使力量发展速率(RFD)最大化的能力,是一种基本的神经肌肉能力,其功能相关性通常比最大肌肉力量更高。在本综述中,我们讨论了研究肌肉卸载对等长最大力量与爆发力影响的研究数据。我们提供的证据表明,相对于最大力量,肌肉卸载导致爆发力下降幅度更大。卸载持续时间越长,这两种测量指标下降幅度的差异就越小。卸载后RFD测量值相对于F下降幅度更大的潜在机制可能是运动单位的募集阈值更高、放电频率更低、抽搐动力学更慢、兴奋-收缩偶联受损以及肌腱僵硬度降低。使用希尔型力模型,我们表明,这一系列适应性变化在次最大收缩强度下将力量产生的损失降至最低,但代价是RFD不成比例地降低。鉴于一方面RFD具有高度的功能相关性,另一方面不活动对RFD的有害影响增强,对于长期经历肌肉废用的人群来说,实施针对爆发力的特定锻炼似乎至关重要。