Torque-angle relationships of human toe flexor muscles highlight their capacity for propulsion in gait.

IF 2.8 2区 生物学 Q2 BIOLOGY Journal of Experimental Biology Pub Date : 2025-01-01 Epub Date: 2025-01-10 DOI:10.1242/jeb.249816
Samuel J Wisdish, Hannah M Rice, Dominic J Farris
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Abstract

Human proficiency for bipedal locomotion relies on the structure and function of our feet, including the interplay between active muscles and passive structures acting on the toes during the propulsive phase of gait. However, our understanding of the relative contributions of these different structures remains incomplete. We aimed to determine the distinct toe-flexion torque-angle relationships of the plantar intrinsic muscles (PIMs), extrinsic muscles and passive structures, therefore offering insight into their force-generating capabilities and importance for walking and running. Torque-angle data were twice collected from nine healthy individuals (6 males, 3 females; 28±5 years) using supramaximal transcutaneous electrical stimuli applied at two tibial nerve sites to distinguish between muscle-driven and passive toe-flexion torque about the metatarsophalangeal (MTP) joint. Innervating extrinsic muscles and PIMs concurrently produced peak torques (hallux=3.05±0.70 N m, MTP angle=48.0±13.6 deg; lesser digits=3.19±0.98 N m, MTP angle=42.6±13.4 deg) exceeding by 208% (hallux) and 150% (lesser digits), respectively, those from PIM stimulation alone. Notably, MTP joint angles pertinent to gait corresponded to the ascending limb of the active torque-angle relationship, with active muscle joint torques being the dominant contributor over passive torques. The latter finding suggests that human toe flexors are well adapted to generate the MTP joint torques that are necessary for walking and running. This further supports the notion that muscles acting within the foot play an important role in the foot's mechanical function and our ability to walk and run in an upright posture.

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人类脚趾屈肌的转矩-角度关系突显了它们在步态中的推进能力。
人类熟练的双足运动依赖于足部的结构和功能,包括步态推进阶段作用于脚趾的主动肌肉和被动结构之间的相互作用。然而,我们对这些不同结构的相对贡献的了解仍不全面。我们的目的是确定足底固有肌(PIMs)、外在肌和被动结构之间不同的趾屈转矩-角度关系,从而深入了解它们的发力能力以及对行走和跑步的重要性。为了区分跖趾关节(MTP)的肌肉驱动扭力和被动趾屈转扭力,研究人员两次从九名健康人(六男三女;28±5 岁)身上收集了扭力-角度数据,并在两个胫神经部位施加了超轴经皮电刺激。同时支配外侧肌肉和腓肠肌产生的峰值扭矩(Hallux=3.05±0.70 Nm,MTP角度=48.0°±13.6°;Lesser Digits=3.19±0.98 Nm,MTP角度=42.6°±13.4°)分别比单独刺激腓肠肌产生的扭矩高出208%(Hallux)和150%(Lesser Digits)。值得注意的是,与步态相关的 MTP 关节角度与主动扭矩-角度关系的上升肢相对应,主动肌肉关节扭矩比被动扭矩更主要。后一项发现表明,人类的趾屈肌非常适合产生行走和跑步所需的 MTP 关节扭矩。这进一步支持了这样一种观点,即作用于足部的肌肉对足部的机械功能以及我们以直立姿势行走和跑步的能力起着重要作用。
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来源期刊
CiteScore
5.50
自引率
10.70%
发文量
494
审稿时长
1 months
期刊介绍: Journal of Experimental Biology is the leading primary research journal in comparative physiology and publishes papers on the form and function of living organisms at all levels of biological organisation, from the molecular and subcellular to the integrated whole animal.
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