蹲伏步态的肌肉骨骼建模

T. Guess, Swithin S. Razu
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摘要

克劳奇步态影响中风后的老年人,也常见于脑瘫儿童。挛缩,痉挛,和增加的激活的腘绳肌经常涉及儿童蹲伏步态。在以蹲姿行走的老年人中,假体已经测量了胫股接触力,但是在临床上蹲姿步态中所经历的接触力可能要高得多。异常肌肉力量对膝关节运动学和单个膝关节结构负荷的影响,对于理解蹲伏步态对发育中的膝关节和老年假体患者的影响非常重要。该项目使用计算方法,同时考虑膝关节解剖和假体几何、肌肉激活和身体运动,以模拟使用全膝关节假体的人在蹲伏步态时肌肉激活改变对膝关节负荷的影响。测量到的肌电信号被分解成肌肉协同作用,协同作用权重的改变为前向动力学模拟中蹲伏步态的神经指令信号的修改提供了一种手段。开链坐式腿伸展练习用于调整某些肌肉特性,所得肌肉骨骼模型预测了在一个蹲伏步态周期内测量的0.33和0.38体重范围内的内侧和外侧胫股接触力。在站立时增加腿筋的激活增加了膝关节负荷、胫骨后平移和后交叉韧带负荷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Musculoskeletal modeling of crouch gait
Crouch gait affects older adults following stroke and is common in children with cerebral palsy. Contracture, spasticity, and increased activation of the hamstrings are often implicated in pediatric crouch gait. Instrumented prosthetics have measured tibiofemoral contact forces in older adults walking in a crouched posture, but contact forces experienced during clinical crouch gait may be much higher. The effect of abnormal muscle forces on knee arthrokinematics and loading of individual knee structures is important to understanding the consequences of crouch gait on developing knees and in older patients with prosthetic components. This project used computational methods that concurrently consider knee anatomy and prosthetic geometry, muscle activation, and body motion to simulate the effect of altered muscle activations on knee loading during crouch gait for a person with an instrumented total knee prosthetic. Measured EMG signals were decomposed into muscle synergies and alterations to synergy weightings provided a means to modify neural command signals in forward dynamics simulations of crouch gait. Open-chain seated leg extension exercises were used to adjust certain muscle properties from generic values and the resulting musculoskeletal model predicted medial and lateral tibiofemoral contact forces within 0.33 and 0.38 bodyweight of measured over one crouch gait cycle. Increasing hamstring activation during stance increased knee loading, posterior tibia translation, and loading on the posterior cruciate ligament.
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