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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Cerebellar Purkinje cell simple spike discharge encodes movement velocity in primates during visuomotor arm tracking.
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Cerebellar Purkinje cell simple spike discharge encodes movement velocity in primates during visuomotor arm tracking.

机译:小脑浦肯野细胞简单的尖峰放电在跟踪运动手臂过程中编码灵长类动物的运动速度。

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摘要

Pathophysiological, lesion, and electrophysiological studies suggest that the cerebellar cortex is important for controlling the direction and speed of movement. The relationship of cerebellar Purkinje cell discharge to the control of arm movement parameters, however, remains unclear. The goal of this study was to examine how movement direction and speed and their interaction-velocity-modulate Purkinje cell simple spike discharge in an arm movement task in which direction and speed were independently controlled. The simple spike discharge of 154 Purkinje cells was recorded in two monkeys during the performance of two visuomotor tasks that required the animals to track targets that moved in one of eight directions and at one of four speeds. Single-parameter regression analyses revealed that a large proportion of cells had discharge modulation related to movement direction and speed. Most cells with significant directional tuning, however, were modulated at one speed, and most cells with speed-related discharge were modulated along one direction; this suggested that the patterns of simple spike discharge were not adequately described by single-parameter models. Therefore, a regression surface was fitted to the data, which showed that the discharge could be tuned to specific direction-speed combinations (preferred velocities). The overall variability in simple spike discharge was well described by the surface model, and the velocities corresponding to maximal and minimal discharge rates were distributed uniformly throughout the workspace. Simple spike discharge therefore appears to integrate information about both the direction and speed of arm movements, thereby encoding movement velocity.
机译:病理生理学,病变和电生理学研究表明,小脑皮层对于控制运动的方向和速度很重要。小脑浦肯野细胞放电与手臂运动参数控制之间的关系仍然不清楚。这项研究的目的是研究在独立控制方向和速度的手臂运动任务中,运动方向和速度以及它们的相互作用速度如何调制浦肯野细胞的简单尖峰放电。在执行两个视觉运动任务时,两只猴子记录了154个Purkinje细胞的简单峰值放电,这需要动物追踪沿八个方向之一和四个速度之一移动的目标。单参数回归分析表明,很大比例的细胞具有与运动方向和速度有关的放电调节。但是,大多数具有显着方向性调整的单元以一种速度进行调制,而大多数具有速度相关放电的单元则沿一个方向进行调制;这表明单参数模型不能充分描述简单尖峰放电的模式。因此,将回归表面拟合到数据,表明可以将放电调整为特定的方向速度组合(首选速度)。表面模型很好地描述了简单尖峰放电的总体变化,并且对应于最大和最小放电速率的速度在整个工作空间内均匀分布。因此,简单的尖峰放电似乎可以整合有关手臂运动的方向和速度的信息,从而对运动速度进行编码。

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