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用高斯函数求和来统一描述小脑的尖峰间隔分布和变异性。

A unified description of cerebellar inter-spike interval distributions and variabilities using summation of Gaussians.

机构信息

The Neurosciences Institute, 10640 John Jay Hopkins Drive, San Diego, CA 92121, USA.

出版信息

Network. 2011;22(1-4):74-96. doi: 10.3109/0954898X.2011.636860.

Abstract

Neuronal inter-spike intervals (ISIs) have previously been described as Poisson, Gamma, inverse Gaussian or other unimodal distributions. We analyzed ISIs of rhythmic and arrhythmic neuronal spike trains in cerebellum recorded from freely behaving rats, and found that their distributions can be described as the summation or integration of multiple Gaussian distributions. The ISIs of rhythmic cerebellar Purkinje cells have a main Gaussian peak at a basic firing interval and exponentially reduced peaks at multiples of this firing period. ISIs of arrhythmic Purkinje cells can be modeled as the integration of multiple Gaussian distributions centered at continuous intervals with exponentially reduced peak amplitudes. The sources of variability are directly related to the relative timing of action potentials between neighboring cells since we show that irregularities of discharge in one cell are associated with the previous history of its discharge in time relative to another cell. Through relative phase analyses, we demonstrate that the shape and the mathematical form of the ISI distributions in cerebellum are direct result of dynamic interactions in the nearby neuronal network, in addition to intrinsic firing properties. The analysis in this paper provides a unified description of cerebellar inter-spike interval distributions which deviate from the usual Poisson assumptions. Our results suggest the existence of an intrinsic rhythmicity in cells exhibiting arrhythmic spike trains in cerebellum, and may identify an important source of variability in neuronal firing patterns that is relevant to the mechanism of neural computation in cerebellum.

摘要

神经元的脉冲间隔(ISIs)以前被描述为泊松分布、伽马分布、逆高斯分布或其他单峰分布。我们分析了从自由活动的大鼠小脑记录的节律性和非节律性神经元尖峰的 ISIs,发现它们的分布可以用多个高斯分布的总和或积分来描述。节律性小脑浦肯野细胞的 ISIs 在基本放电间隔处有一个主要的高斯峰,并且在这个放电周期的倍数处呈指数衰减的峰。非节律性浦肯野细胞的 ISIs 可以模拟为多个高斯分布的积分,这些高斯分布的中心位于连续间隔处,峰幅度呈指数衰减。变异性的来源与相邻细胞之间动作电位的相对定时直接相关,因为我们表明一个细胞的放电不规则性与其在时间上相对于另一个细胞的放电历史有关。通过相对相位分析,我们证明了小脑 ISI 分布的形状和数学形式是附近神经元网络动态相互作用的直接结果,除了内在的放电特性。本文的分析为小脑的 ISI 分布提供了一个统一的描述,该分布偏离了通常的泊松假设。我们的结果表明,在小脑中表现出非节律性尖峰的细胞中存在内在的节律性,并且可能确定了神经元放电模式中变异性的一个重要来源,这与小脑神经计算的机制有关。

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