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神经肌肉骨骼扭矩产生过程对安静站立的控制机制具有很大的破坏稳定作用。

Neuromusculoskeletal torque-generation process has a large destabilizing effect on the control mechanism of quiet standing.

作者信息

Masani Kei, Vette Albert H, Kawashima Noritaka, Popovic Milos R

机构信息

Rehabilitation Engineering Laboratory, Institute of Biomaterials and Biomedical Engineering, University of Toronto, Toronto, Ontario, Canada.

出版信息

J Neurophysiol. 2008 Sep;100(3):1465-75. doi: 10.1152/jn.00801.2007. Epub 2008 Jul 2.

Abstract

The delay of the sensory-motor feedback loop is a destabilizing factor within the neural control mechanism of quiet standing. The purposes of this study were 1) to experimentally identify the neuromusculoskeletal torque-generation process during standing posture and 2) to investigate the effect of the delay induced by this system on the control mechanism of balance during quiet standing. Ten healthy adults participated in this study. The ankle torque, ankle angle, and electromyograms from the right lower leg muscles were measured. A ground-fixed support device was used to support the subject at his/her knees, without changing the natural ankle angle during quiet standing. Each subject was asked to mimic the ankle torque fluctuation by exerting voluntary ankle extension while keeping the supported standing posture. Using the rectified soleus electromyogram as the input and the ankle torque as the output, a critically damped, second-order system (twitch contraction time of 0.152 +/- 0.027 s) successfully described the dynamics of the torque-generation process. According to the performed Bode analysis, the phase delay induced by this torque-generation process in the frequency region of spontaneous body sway during quiet standing was considerably large, corresponding to an effective time delay of about 200 to 380 ms. We compared the stability of the balance control system with and without the torque-generation process and demonstrated that a much smaller number of gain combinations can stabilize the model with the torque-generation process than without it. We concluded that the phase delay induced by the torque-generation process is a more destabilizing factor in the control mechanism of quiet standing than previously assumed, which restricts the control strategies that can stabilize the entire system.

摘要

感觉运动反馈回路的延迟是安静站立神经控制机制中的一个不稳定因素。本研究的目的是:1)通过实验确定站立姿势期间神经肌肉骨骼扭矩产生过程;2)研究该系统引起的延迟对安静站立时平衡控制机制的影响。十名健康成年人参与了本研究。测量了右小腿肌肉的踝关节扭矩、踝关节角度和肌电图。使用地面固定支撑装置在受试者膝盖处支撑其身体,在安静站立时不改变自然踝关节角度。要求每个受试者在保持支撑站立姿势的同时,通过主动踝关节伸展模拟踝关节扭矩波动。以整流后的比目鱼肌肌电图作为输入,踝关节扭矩作为输出,一个临界阻尼的二阶系统(抽搐收缩时间为0.152±0.027秒)成功地描述了扭矩产生过程的动力学。根据进行的波特分析,在安静站立时自发身体摆动的频率区域内,该扭矩产生过程引起的相位延迟相当大,对应于约200至380毫秒的有效时间延迟。我们比较了有和没有扭矩产生过程时平衡控制系统的稳定性,结果表明,与没有扭矩产生过程的模型相比,能使有扭矩产生过程的模型稳定的增益组合数量要少得多。我们得出结论,扭矩产生过程引起的相位延迟在安静站立控制机制中是一个比先前假设更不稳定的因素,这限制了能够稳定整个系统的控制策略。

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