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在定向等长力与肢体运动任务中,初级运动皮层活动时间模式的变化。

Changes in the temporal pattern of primary motor cortex activity in a directional isometric force versus limb movement task.

作者信息

Sergio L E, Kalaska J F

机构信息

Departement of Physiologie, Université de Montréal, Québec, Canada.

出版信息

J Neurophysiol. 1998 Sep;80(3):1577-83. doi: 10.1152/jn.1998.80.3.1577.

DOI:10.1152/jn.1998.80.3.1577
PMID:9744964
Abstract

We recorded the activity of 75 proximal-arm-related cells in caudal primary motor cortex (MI) while a monkey generated either isometric forces or limb movements against an inertial load. The forces and movements were in eight directions in a horizontal plane. The isometric force generated at the hand increased monotonically in the direction of the target force level. The force exerted against the load in the movement task was more complex, including a transient decelerative phase during the movement as the hand approached the target. Electromyographic (EMG) activity of proximal-arm muscles reflected the task-dependent changes in dynamics, showing a ramp increase in activity during the isometric task and a reciprocal triphasic burst pattern in the movement task. A sliding 50-ms window analysis showed that the directionality of the EMG, when expressed in hand-centered spatial coordinates, remained stable throughout the isometric ramp but often showed a significant transient shift during the limb movements. Many cells in M1 showed corresponding significant changes in activity pattern and instantaneous directionality between the two tasks. This momentary dissociation of discharge from the directional kinematics of hand displacement is evidence that the activity of many single proximal-arm related M1 cells is not coupled only to the direction and velocity of hand motion.

摘要

我们记录了猴子在产生等长力或对抗惯性负载进行肢体运动时,其尾侧初级运动皮层(MI)中75个与近端手臂相关细胞的活动。力和运动在水平面的八个方向上进行。手部产生的等长力在目标力水平方向上单调增加。在运动任务中对抗负载施加的力更为复杂,包括手部接近目标时运动过程中的短暂减速阶段。近端手臂肌肉的肌电图(EMG)活动反映了动力学中与任务相关的变化,在等长任务期间活动呈斜坡式增加,在运动任务中则呈现出相反的三相爆发模式。一个滑动的50毫秒窗口分析表明,当以手部为中心的空间坐标表示时,EMG的方向性在整个等长斜坡过程中保持稳定,但在肢体运动期间经常出现明显的短暂变化。M1中的许多细胞在这两个任务之间的活动模式和瞬时方向性上表现出相应的显著变化。放电与手部位移方向运动学的这种瞬间分离证明,许多单个与近端手臂相关的M1细胞的活动不仅与手部运动的方向和速度相关联。

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