神经调节对短期卸载和积极恢复后肌肉力量产生的贡献

IF 4.1 2区 医学 Q1 SPORT SCIENCES
Giovanni Martino, Giacomo Valli, Fabio Sarto, Martino V Franchi, Marco V Narici, Giuseppe DE Vito
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引用次数: 0

摘要

目的:先前的证据表明,神经因素是骨骼肌废用后肌肉力量损失的原因之一。然而,人们对废用所改变的特定神经机制知之甚少。持续内向电流(PIC)是运动神经元的固有特性,负责延长和放大突触输入,与神经调节水平成比例,从而影响运动神经元的放电率和肌力产生。在此,我们假设短期单侧下肢悬吊(ULLS)会减少与 PIC 相关的神经调节输入,从而导致发力能力下降。此外,我们还测试了体育锻炼是否会通过重建神经调节输入的初始水平来恢复发力能力:方法:我们对 12 名年轻成年人进行了最大自主收缩(MVC)的评估,包括超低负荷训练 10 天前和 10 天后,以及基于阻力运动的 21 天积极恢复(AR)后。PIC是根据等长斜坡收缩时计算的成对运动单位的Δ频率(∆F)从侧阔肌的高密度表面肌电图中估算出来的:经过 10 天的 ULLS 后,ΔF 值降低(-33%,p < 0.001),但在 AR 后完全恢复(+29.4%,p < 0.001)。估计 PIC 值的变化(r = 0.63,p = 0.004)与 ULLS 后 MVC 的降低(-29%,p = 0.002)和 AR 后 MVC 的恢复(+28.5%,p = 0.003)相关:我们的研究结果表明,肌肉废用会降低 PIC 估计值,这可能会导致力量产生的损失以及力量产生在运动后的恢复。总之,这是首次研究表明,除了外周神经肌肉变化外,中枢神经调节也是导致肌肉废用后发力能力丧失的主要因素,并且可以在阻力运动后恢复。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neuromodulatory Contribution to Muscle Force Production after Short-Term Unloading and Active Recovery.

Purpose: Prior evidence has shown that neural factors contribute to the loss of muscle force after skeletal muscle disuse. However, little is known about the specific neural mechanisms altered by disuse. Persistent inward current (PIC) is an intrinsic property of motoneurons responsible for prolonging and amplifying the synaptic input, proportionally to the level of neuromodulation, thus influencing motoneuron discharge rate and force production. Here, we hypothesized that short-term unilateral lower limb suspension (ULLS) would reduce the neuromodulatory input associated with PIC, contributing to the reduction of force generation capacity. In addition, we tested whether physical exercise would restore the force generation capacity by reestablishing the initial level of neuromodulatory input.

Methods: In 12 young adults, we assessed maximal voluntary contraction pre- and post-10 d of ULLS and after 21 d of active recovery (AR) based on resistance exercise. PIC was estimated from high-density surface electromyograms of the vastus lateralis muscle as the delta frequency (Δ F ) of paired motor units calculated during isometric ramped contractions.

Results: The values of Δ F were reduced after 10 d of ULLS (-33%, P < 0.001), but were fully reestablished after the AR (+29.4%, P < 0.001). The changes in estimated PIC values were correlated ( r = 0.63, P = 0.004) with the reduction in maximal voluntary contraction after ULLS (-29%, P = 0.002) and its recovery after the AR (+28.5%, P = 0.003).

Conclusions: Our findings suggest that PIC estimates are reduced by muscle disuse and may contribute to the loss of force production and its recovery with exercise. Overall, this is the first study demonstrating that, in addition to peripheral neuromuscular changes, central neuromodulation is a major contributor to the loss of force generation capacity after disuse, and can be recovered after resistance exercise.

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来源期刊
CiteScore
7.70
自引率
4.90%
发文量
2568
审稿时长
1 months
期刊介绍: Medicine & Science in Sports & Exercise® features original investigations, clinical studies, and comprehensive reviews on current topics in sports medicine and exercise science. With this leading multidisciplinary journal, exercise physiologists, physiatrists, physical therapists, team physicians, and athletic trainers get a vital exchange of information from basic and applied science, medicine, education, and allied health fields.
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