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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Changes in Purkinje Cell Simple Spike Encoding of Reach Kinematics during Adaption to a Mechanical Perturbation
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Changes in Purkinje Cell Simple Spike Encoding of Reach Kinematics during Adaption to a Mechanical Perturbation

机译:机械运动适应过程中运动学的浦肯野细胞简单穗编码的变化。

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摘要

The cerebellum is essential in motor learning. At the cellular level, changes occur in both the simple spike and complex spike firing of Purkinje cells. Because simple spike discharge reflects the main output of the cerebellar cortex, changes in simple spike firing likely reflect the contribution of the cerebellum to the adapted behavior. Therefore, we investigated in Rhesus monkeys how the representation of arm kinematics in Purkinje cell simple spike discharge changed during adaptation to mechanical perturbations of reach movements. Monkeys rapidly adapted to a novel assistive or resistive perturbation along the direction of the reach. Adaptation consisted of matching the amplitude and timing of the perturbation to minimize its effect on the reach. In a majority of Purkinje cells, simple spike firing recorded before and during adaptation demonstrated significant changes in position, velocity, and acceleration sensitivity. The timing of the simple spike representations change within individual cells, including shifts in predictive versus feedback signals. At the population level, feedback-based encoding of position increases early in learning and velocity decreases. Both timing changes reverse later in learning. The complex spike discharge was only weakly modulated by the perturbations, demonstrating that the changes in simple spike firing can be independent of climbing fiber input. In summary, we observed extensive alterations in individual Purkinje cell encoding of reach kinematics, although the movements were nearly identical in the baseline and adapted states. Therefore, adaption to mechanical perturbation of a reaching movement is accompanied by widespread modifications in the simple spike encoding.
机译:小脑在运动学习中至关重要。在细胞水平上,浦肯野细胞的简单激发和复杂激发都发生变化。因为简单的尖峰放电反映了小脑皮层的主要输出,所以简单的尖峰发射的变化可能反映了小脑对适应行为的贡献。因此,我们在恒河猴中研究了臂运动学在Purkinje细胞简单尖峰放电中的表示如何在适应伸手运动的机械扰动期间发生了变化。猴子沿着触角的方向迅速适应了新的辅助或抵抗性摄动。适应包括匹配扰动的幅度和时间,以最大程度地减小其对到达范围的影响。在大多数浦肯野细胞中,在适应之前和适应过程中记录的简单尖峰发射显示出位置,速度和加速度敏感性的显着变化。简单尖峰表示的时序在单个单元内发生变化,包括预测信号与反馈信号之间的偏移。在总体水平上,基于反馈的位置编码在学习的早期就增加了,而速度则下降了。在学习的后期,这两个时间变化都会逆转。复杂的尖峰放电仅受到扰动的微弱调制,表明简单尖峰发射的变化可能与爬升光纤输入无关。总而言之,尽管在基线和适应状态下运动几乎相同,但我们观察到了各个Purkinje细胞编码的广泛变化。因此,对到达运动的机械扰动的适应伴随着对简单尖峰编码的广泛修改。

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