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通过星形胶质细胞缝隙连接控制细胞外γ-氨基丁酸浓度来改善知觉学习。

Improved Perceptual Learning by Control of Extracellular GABA Concentration by Astrocytic Gap Junctions.

作者信息

Hoshino Osamu, Zheng Meihong, Watanabe Kazuo

机构信息

Department of Intelligent Systems Engineering, Ibaraki University, Hitachi, Ibaraki, 316-8511, Japan, and Southern Tohoku Research Institute for Neuroscience, Southern Tohoku General Hospital, Koriyama, Fukushima, 963-8563, Japan

Department of Psychology, Tsinghua University, Haidian District, Beijing, 100084, China

出版信息

Neural Comput. 2018 Jan;30(1):184-215. doi: 10.1162/neco_a_01027. Epub 2017 Oct 24.

Abstract

Learning of sensory cues is believed to rely on synchronous pre- and postsynaptic neuronal firing. Evidence is mounting that such synchronicity is not merely caused by properties of the underlying neuronal network but could also depend on the integrity of gap junctions that connect neurons and astrocytes in networks too. In this perspective, we set out to investigate the effect of astrocytic gap junctions on perceptual learning, introducing a model for coupled neuron-astrocyte networks. In particular, we focus on the fact that astrocytes are rich of GABA transporters (GATs) which can either uptake or release GABA depending on the astrocyte membrane potential, which is a function of local neural activity. We show that GABAergic signaling is a crucial component of intracolumnar neuronal synchronization, thereby promoting learning by neurons in the same cell assembly that are activated by a shared sensory cue. At the same time, we show that this effect can critically depend on astrocytic gap junctions insofar as these latter could synchronize extracellular GABA levels around many neurons and throughout entire cell assemblies. These results are supported by extensive computational arguments and predict that astrocytic gap junctions could improve perceptual learning by controlling extracellular GABA.

摘要

人们认为,对感觉线索的学习依赖于突触前和突触后神经元的同步放电。越来越多的证据表明,这种同步性不仅是由潜在神经网络的特性引起的,还可能取决于网络中连接神经元和星形胶质细胞的缝隙连接的完整性。从这个角度出发,我们着手研究星形胶质细胞缝隙连接对感知学习的影响,引入了一个耦合神经元-星形胶质细胞网络模型。特别地,我们关注这样一个事实,即星形胶质细胞富含γ-氨基丁酸转运体(GATs),其可根据星形胶质细胞膜电位摄取或释放γ-氨基丁酸,而星形胶质细胞膜电位是局部神经活动的函数。我们表明,γ-氨基丁酸能信号传导是柱状内神经元同步化的关键组成部分,从而促进由共享感觉线索激活的同一细胞集合中的神经元学习。同时,我们表明,这种效应可能严重依赖于星形胶质细胞缝隙连接,因为后者可以使许多神经元周围以及整个细胞集合中的细胞外γ-氨基丁酸水平同步。这些结果得到了大量计算论据的支持,并预测星形胶质细胞缝隙连接可以通过控制细胞外γ-氨基丁酸来改善感知学习。

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