Gribble Paul L, Mullin Lucy I, Cothros Nicholas, Mattar Andrew
Department of Psychology, Graduate Program in Neuroscience, The University of Western Ontario, London, Canada.
J Neurophysiol. 2003 May;89(5):2396-405. doi: 10.1152/jn.01020.2002. Epub 2003 Jan 22.
Cocontraction (the simultaneous activation of antagonist muscles around a joint) provides the nervous system with a way to adapt the mechanical properties of the limb to changing task requirements-both in statics and during movement. However, relatively little is known about the conditions under which the motor system modulates limb impedance through cocontraction. The goal of this study was to test for a possible relationship between cocontraction and movement accuracy in multi-joint limb movements. The electromyographic activity of seven single- and double-joint shoulder and elbow muscles was recorded using surface electrodes while subjects performed a pointing task in a horizontal plane to targets that varied randomly in size. Movement speed was controlled by providing subjects with feedback on a trial-to-trial basis. Measures of cocontraction were estimated both during movement and during a 200-ms window immediately following movement end. We observed an inverse relationship between target size and cocontraction: as target size was reduced, cocontraction activity increased. In addition, trajectory variability decreased and endpoint accuracy improved. This suggests that, although energetically expensive, cocontraction may be a strategy used by the motor system to facilitate multi-joint arm movement accuracy. We also observed a general trend for cocontraction levels to decrease over time, supporting the idea that cocontraction and associated limb stiffness are reduced over the course of practice.
协同收缩(关节周围拮抗肌的同时激活)为神经系统提供了一种方法,可使肢体的机械特性适应不断变化的任务需求——无论是在静态还是运动过程中。然而,关于运动系统通过协同收缩调节肢体阻抗的条件,我们所知相对较少。本研究的目的是测试多关节肢体运动中协同收缩与运动准确性之间可能存在的关系。当受试者在水平面上执行指向任务,指向大小随机变化的目标时,使用表面电极记录七块单关节和双关节肩部及肘部肌肉的肌电活动。通过在每次试验时为受试者提供反馈来控制运动速度。在运动期间以及运动结束后的200毫秒窗口内估计协同收缩的指标。我们观察到目标大小与协同收缩之间存在反比关系:随着目标大小减小,协同收缩活动增加。此外,轨迹变异性降低,端点准确性提高。这表明,尽管代价高昂,但协同收缩可能是运动系统用来促进多关节手臂运动准确性的一种策略。我们还观察到协同收缩水平随时间下降的总体趋势,支持了在练习过程中协同收缩和相关肢体刚度会降低的观点。