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小脑胡须运动学。

Whisker kinematics in the cerebellum.

机构信息

Department of Neuroscience, Erasmus MC, Rotterdam, Netherlands.

Netherlands Institute for Neuroscience, Royal Dutch Academy of Arts & Sciences, Amsterdam, Netherlands.

出版信息

J Physiol. 2024 Jan;602(1):153-181. doi: 10.1113/JP284064. Epub 2023 Nov 21.

Abstract

The whisker system is widely used as a model system for understanding sensorimotor integration. Purkinje cells in the crus regions of the cerebellum have been reported to linearly encode whisker midpoint, but it is unknown whether the paramedian and simplex lobules as well as their target neurons in the cerebellar nuclei also encode whisker kinematics and if so which ones. Elucidating how these kinematics are represented throughout the cerebellar hemisphere is essential for understanding how the cerebellum coordinates multiple sensorimotor modalities. Exploring the cerebellar hemisphere of mice using optogenetic stimulation, we found that whisker movements can be elicited by stimulation of Purkinje cells in not only crus1 and crus2, but also in the paramedian lobule and lobule simplex; activation of cells in the medial paramedian lobule had on average the shortest latency, whereas that of cells in lobule simplex elicited similar kinematics as those in crus1 and crus2. During spontaneous whisking behaviour, simple spike activity correlated in general better with velocity than position of the whiskers, but it varied between protraction and retraction as well as per lobule. The cerebellar nuclei neurons targeted by the Purkinje cells showed similar activity patterns characterized by a wide variety of kinematic signals, yet with a dominance for velocity. Taken together, our data indicate that whisker movements are much more prominently and diversely represented in the cerebellar cortex and nuclei than assumed, highlighting the rich repertoire of cerebellar control in the kinematics of movements that can be engaged during coordination. KEY POINTS: Excitation of Purkinje cells throughout the cerebellar hemispheres induces whisker movement, with the shortest latency and longest duration within the paramedian lobe. Purkinje cells have differential encoding for the fast and slow components of whisking. Purkinje cells encode not only the position but also the velocity of whiskers. Purkinje cells with high sensitivity for whisker velocity are preferentially located in the medial part of lobule simplex, crus1 and lateral paramedian. In the downstream cerebellar nuclei, neurons with high sensitivity for whisker velocity are located at the intersection between the medial and interposed nucleus.

摘要

胡须系统被广泛用作理解感觉运动整合的模型系统。小脑 crus 区的浦肯野细胞被报道对线形编码胡须中点,但尚不清楚旁median 和 simplex 叶以及它们在小脑核中的靶神经元是否也编码胡须运动学,如果是,是哪些。阐明这些运动学在整个小脑半球中的表现对于理解小脑如何协调多种感觉运动模式至关重要。我们使用光遗传刺激探索小鼠的小脑半球,发现不仅在 crus1 和 crus2 中,而且在旁median 叶和 simplex 叶中刺激浦肯野细胞都可以诱发胡须运动;内侧旁median 叶细胞的激活具有平均最短潜伏期,而 simplex 叶细胞的激活则诱发与 crus1 和 crus2 相似的运动学。在自发的胡须运动行为期间,简单峰活性通常与胡须的速度相关性优于位置,但在伸出和缩回以及每个叶之间存在差异。浦肯野细胞靶向的小脑核神经元表现出相似的活动模式,其特征是多种运动学信号,但以速度为主导。总之,我们的数据表明,胡须运动在小脑皮层和核中比假设的更为突出和多样化,突出了小脑在协调期间可以参与的运动运动学中的丰富控制范围。关键点:兴奋整个小脑半球的浦肯野细胞会引起胡须运动,潜伏期最短,旁median 叶的持续时间最长。浦肯野细胞对快速和慢速的胡须运动成分有不同的编码。浦肯野细胞不仅编码胡须的位置,还编码胡须的速度。对胡须速度敏感的浦肯野细胞优先位于 simplex 叶、 crus1 和外侧旁median 的内侧部分。在下游小脑核中,对胡须速度敏感的神经元位于内侧和中间核的交叉处。

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