How muscle fiber lengths and velocities affect muscle force generation as humans walk and run at different speeds

肌肉结构 脚踝 运动学 步态 纤维 肌肉纤维 比目鱼肌 最佳步行速度 解剖 肌肉收缩 机械 材料科学 模拟 物理 物理医学与康复 骨骼肌 计算机科学 生物 医学 经典力学 复合材料
作者
Edith M. Arnold,Samuel R. Hamner,Ajay Seth,Matthew Millard,Scott L. Delp
出处
期刊:The Journal of Experimental Biology [The Company of Biologists]
被引量:192
标识
DOI:10.1242/jeb.075697
摘要

The lengths and velocities of muscle fibers have a dramatic effect on muscle force generation. It is unknown, however, whether the lengths and velocities of lower limb muscle fibers substantially affect the ability of muscles to generate force during walking and running. We examined this issue by developing simulations of muscle-tendon dynamics to calculate the lengths and velocities of muscle fibers from electromyographic recordings of 11 lower limb muscles and kinematic measurements of the hip, knee and ankle made as five subjects walked at speeds of 1.0-1.75 m s(-1) and ran at speeds of 2.0-5.0 m s(-1). We analyzed the simulated fiber lengths, fiber velocities and forces to evaluate the influence of force-length and force-velocity properties on force generation at different walking and running speeds. The simulations revealed that force generation ability (i.e. the force generated per unit of activation) of eight of the 11 muscles was significantly affected by walking or running speed. Soleus force generation ability decreased with increasing walking speed, but the transition from walking to running increased the force generation ability by reducing fiber velocities. Our results demonstrate the influence of soleus muscle architecture on the walk-to-run transition and the effects of muscle-tendon compliance on the plantarflexors' ability to generate ankle moment and power. The study presents data that permit lower limb muscles to be studied in unprecedented detail by relating muscle fiber dynamics and force generation to the mechanical demands of walking and running.
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