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下橄榄核的微电路与功能

Microcircuitry and function of the inferior olive.

作者信息

De Zeeuw C I, Simpson J I, Hoogenraad C C, Galjart N, Koekkoek S K, Ruigrok T J

机构信息

Dept of Anatomy, Erasmus University Rotterdam, The Netherlands.

出版信息

Trends Neurosci. 1998 Sep;21(9):391-400. doi: 10.1016/s0166-2236(98)01310-1.

Abstract

The inferior olive, which provides the climbing fibers to Purkinje cells in the cerebellar cortex, has been implicated in various functions, such as learning and timing of movements, and comparing intended with achieved movements. For example, climbing-fiber activity could transmit error signals during eye-blink conditioning or adaptation of the vestibulo-ocular reflex, or it could carry motor command signals beating on the rhythm of the oscillating and synchronous firing of ensembles of olivary neurons, or both. In this review, we approach the controversial issue of olivocerebellar function from the perspective of the unique organization of the microcircuitry of the olivary neuropil. The characteristic glomeruli are formed by a core of long dendritic or axonal spines, each of which is innervated by both an inhibitory terminal derived from the hindbrain and an excitatory terminal derived from either an ascending or descending input. The dendritic spines, which originate from dendrites with varicosities carrying dendritic lamellar bodies, are coupled by gap junctions. By drawing a comparison with a computational model by Segev and Rall,which might be applicable to the typical olivary spine with its unique morphological features and combined excitatory and inhibitory input, we propose that the microcircuitry of the inferior olive is capable of functioning both in motor learning and motor timing, but does not directly compare intended with achieved movements.

摘要

下橄榄核为小脑皮质中的浦肯野细胞提供攀缘纤维,它与多种功能有关,如运动的学习与计时,以及将预期动作与实际动作进行比较。例如,在眨眼条件反射或前庭眼反射适应过程中,攀缘纤维活动可能传递误差信号,或者它可能携带基于橄榄核神经元群振荡和同步放电节律的运动命令信号,或者两者皆有。在本综述中,我们从橄榄核神经毡微电路的独特组织角度探讨橄榄小脑功能这一有争议的问题。特征性的小球由长树突棘或轴突棘的核心形成,每个树突棘或轴突棘都由来自后脑的抑制性终末和来自上行或下行输入的兴奋性终末支配。起源于带有树突状层状体的曲张树突的树突棘通过缝隙连接相连。通过与塞gev和拉尔的计算模型进行比较,该模型可能适用于具有独特形态特征以及兴奋性和抑制性输入组合的典型橄榄核棘,我们提出下橄榄核的微电路能够在运动学习和运动计时中发挥作用,但不直接比较预期动作与实际动作。

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