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坐姿和站姿骑行时上肢与躯干肌肉的活动模式

Upper limb and trunk muscle activity patterns during seated and standing cycling.

作者信息

Turpin Nicolas A, Costes Antony, Moretto Pierre, Watier Bruno

机构信息

a Center for Interdisciplinary Research in Rehabilitation (CRIR) , Institut de réadaptation Gingras-Lindsay de Montreal and Jewish Rehabilitation Hospital , Laval , Quebec , Canada.

b Department of Neuroscience , University of Montréal , Quebec , Canada.

出版信息

J Sports Sci. 2017 Mar;35(6):557-564. doi: 10.1080/02640414.2016.1179777. Epub 2016 May 2.

DOI:10.1080/02640414.2016.1179777
PMID:27136397
Abstract

The objective of this study is to clarify the functional roles of upper limb muscles during standing and seated cycling when power output increases. We investigated the activity of seven upper limb and trunk muscles using surface electromyography (EMG). Power outputs ranged from 100-700 W with a pedalling frequency of 90 revolution per minute. Three-dimensional handle and pedal forces were simultaneously recorded. Using non-negative matrix factorisation, we extracted muscle synergies and we analysed the integrated EMG and EMG temporal patterns. Most of the muscles showed tonic activity that became more phasic as power output increased. Three muscle synergies were identified, associated with (i) torso stabilisation, (ii) compensation/generation of trunk accelerations and (iii) upper body weight support. Synergies were similar for seated and standing positions (Pearson's r > 0.7), but synergy #2 (biceps brachii, deltoidus and brachioradialis) was shifted forward during the cycle (7% of cycle). The activity levels of synergy #1 (latissimus dorsi and erector spinae) and synergy #2 increased markedly above ~500 W (i.e., ~+40-70% and +130-190%) and during periods corresponding to ipsi- and contralateral downstrokes, respectively. Our study results suggest that the upper limb and trunk muscles may play important roles in cycling when high power outputs are required.

摘要

本研究的目的是阐明当功率输出增加时,上肢肌肉在站立和坐姿骑行过程中的功能作用。我们使用表面肌电图(EMG)研究了七块上肢和躯干肌肉的活动情况。功率输出范围为100 - 700瓦,踏频为每分钟90转。同时记录了三维手柄和踏板力。使用非负矩阵分解法,我们提取了肌肉协同作用,并分析了肌电图积分和肌电图时间模式。大多数肌肉表现出紧张性活动,随着功率输出的增加,这种活动变得更加相位性。识别出三种肌肉协同作用,分别与(i)躯干稳定、(ii)躯干加速度的补偿/产生以及(iii)上身重量支撑相关。坐姿和站立姿势的协同作用相似(皮尔逊相关系数r > 0.7),但协同作用#2(肱二头肌、三角肌和桡侧腕长伸肌)在骑行周期中向前移动了约7%。协同作用#1(背阔肌和竖脊肌)和协同作用#2的活动水平在功率超过500瓦时显著增加(即分别增加约+40 - 70%和+130 - 190%),且分别在同侧和对侧下冲程对应的时间段内增加。我们的研究结果表明,当需要高功率输出时,上肢和躯干肌肉在骑行中可能发挥重要作用。

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