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Encoding of error and learning to correct that error by the Purkinje cells of the cerebellum

机译:编码错误和学习以纠正小脑的PURKINJE细胞错误

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摘要

The primary output cells of the cerebellar cortex, Purkinje cells, make kinematic predictions about ongoing movements via high-frequency simple spikes, but receive sensory error information about that movement via low-frequency complex spikes (CS). How is the vector space of sensory errors encoded by this low-frequency signal? Here we measured Purkinje cell activity in the oculomotor vermis of animals during saccades, then followed the chain of events from experience of visual error, generation of CS, modulation of simple spikes, and ultimately change in motor output. We found that while error direction affected the probability of CS, error magnitude altered its temporal distribution. Production of CS changed the simple spikes on the next trial, but regardless of the actual visual error, this change biased the movement only along a vector that was parallel to the Purkinje cell's preferred error. From these results, we inferred the anatomy of a sensory-to-motor adaptive controller that transformed visual error vectors into motor-corrections.
机译:小脑皮层的主要输出单元,Purebellar Coltex,PurikinJe细胞,通过高频简单尖峰对运动预测进行了关于持续运动的运动预测,而是通过低频复合尖峰(CS)接收关于该运动的感官误差信息。这种低频信号编码的感觉误差的矢量空间是如何?在这里,我们在扫视期间测量了动物的动血仪中的紫癜细胞活性,然后从视觉误差,cs的经验,CS,简单尖峰的产生,以及最终改变电动机输出的事件链中。我们发现,虽然错误方向影响了CS的概率,但误差幅度改变了其时间分布。 CS的生产在下次试验中改变了简单的尖峰,但无论实际的视觉错误如何,这种变化只沿着与Pulkinje Cell的首选错误平行的向量偏置移动。根据这些结果,我们推断了一种传感到电机自适应控制器的解剖,该控制器将视觉误差向量转化为电动机校正。

著录项

  • 来源
    《Nature neuroscience 》 |2018年第5期| 共10页
  • 作者单位

    Johns Hopkins Univ Sch Med Dept Biomed Engn Lab Computat Motor Control Baltimore MD 21205 USA;

    Univ Washington Dept Physiol &

    Biophys Washington Natl Primate Ctr Seattle WA 98195 USA;

    Univ Washington Dept Physiol &

    Biophys Washington Natl Primate Ctr Seattle WA 98195 USA;

    Johns Hopkins Univ Sch Med Dept Biomed Engn Lab Computat Motor Control Baltimore MD 21205 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 人体生理学 ;
  • 关键词

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