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连接小脑回路中的振荡。

Linking oscillations in cerebellar circuits.

机构信息

Department of Exercise Science, Groupe de Recherche en Neurobiologie Comportementale/Center for Studies in Behavioral Neurobiology, Concordia University Montréal, QC, Canada.

出版信息

Front Neural Circuits. 2013 Jul 29;7:125. doi: 10.3389/fncir.2013.00125. eCollection 2013.

Abstract

In many neuroscience fields, the study of local and global rhythmicity has been receiving increasing attention. These network influences could directly impact on how neuronal groups interact together, organizing for different contexts. The cerebellar cortex harbors a variety of such local circuit rhythms, from the rhythms in the cerebellar cortex per se, or those dictated from important afferents. We present here certain cerebellar oscillatory phenomena that have been recorded in rodents and primates. Those take place in a range of frequencies: from the more known oscillations in the 4-25 Hz band, such as the olivocerebellar oscillatory activity and the granule cell layer oscillations, to the more recently reported slow (<1 Hz oscillations), and the fast (>150 Hz) activity in the Purkinje cell layer. Many of these oscillations appear spontaneously in the circuits, and are modulated by behavioral imperatives. We review here how those oscillations are recorded, some of their modulatory mechanisms, and also identify some of the cerebellar nodes where they could interact. A particular emphasis has been placed on how these oscillations could be modulated by movement and certain neuropathological manifestations. Many of those oscillations could have a definite impact on the way information is processed in the cerebellum and how it interacts with other structures in a variety of contexts.

摘要

在许多神经科学领域,局部和全局节律性的研究受到了越来越多的关注。这些网络影响可能直接影响神经元群体如何相互作用,为不同的情境组织在一起。小脑皮层中存在着多种局部回路节律,包括小脑皮层本身的节律,或来自重要传入的节律。我们在这里介绍了在啮齿动物和灵长类动物中记录到的某些小脑振荡现象。这些现象发生在一系列频率中:从更为人所知的 4-25 Hz 频段的振荡,如橄榄小脑振荡活动和颗粒细胞层振荡,到最近报道的较慢(<1 Hz 振荡)和较快(>150 Hz)的浦肯野细胞层活动。这些振荡中的许多在回路中自发出现,并受到行为要求的调制。我们在这里回顾了如何记录这些振荡,它们的一些调制机制,以及确定它们可能相互作用的小脑节点。特别强调了这些振荡如何受到运动和某些神经病理学表现的调制。这些振荡中的许多可能对信息在小脑中的处理方式以及在各种情况下与其他结构的相互作用方式产生一定的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b814/3725427/85fc863181bc/fncir-07-00125-g001.jpg

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