Understanding Cerebellar Input Stage through Computational and Plasticity Rules

Biology Pub Date : 2024-06-01 DOI:10.3390/biology13060403
Eleonora Pali, Egidio D’Angelo, F. Prestori
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Abstract

A central hypothesis concerning brain functioning is that plasticity regulates the signal transfer function by modifying the efficacy of synaptic transmission. In the cerebellum, the granular layer has been shown to control the gain of signals transmitted through the mossy fiber pathway. Until now, the impact of plasticity on incoming activity patterns has been analyzed by combining electrophysiological recordings in acute cerebellar slices and computational modeling, unraveling a broad spectrum of different forms of synaptic plasticity in the granular layer, often accompanied by forms of intrinsic excitability changes. Here, we attempt to provide a brief overview of the most prominent forms of plasticity at the excitatory synapses formed by mossy fibers onto primary neuronal components (granule cells, Golgi cells and unipolar brush cells) in the granular layer. Specifically, we highlight the current understanding of the mechanisms and their functional implications for synaptic and intrinsic plasticity, providing valuable insights into how inputs are processed and reconfigured at the cerebellar input stage.
通过计算和可塑性规则了解小脑输入阶段
有关大脑功能的一个核心假设是,可塑性通过改变突触传递的效能来调节信号传递功能。在小脑中,颗粒层被证明可以控制通过苔藓纤维通路传输的信号的增益。迄今为止,可塑性对传入活动模式的影响一直是通过结合急性小脑切片的电生理记录和计算建模来分析的,结果揭示了颗粒层不同形式的突触可塑性的广泛范围,这些可塑性往往伴随着内在兴奋性变化的形式。在此,我们试图简要概述苔藓纤维与颗粒层主要神经元成分(颗粒细胞、高尔基细胞和单极刷状细胞)形成的兴奋性突触最突出的可塑性形式。具体而言,我们将重点介绍目前对突触和内在可塑性的机制及其功能影响的理解,从而为了解小脑输入阶段如何处理和重构输入提供宝贵的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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