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基于连接蛋白的星形胶质细胞钙(Ca²⁺)通讯的双重面貌:脑生理学中的关键角色与病理学中的主要靶点。

The dual face of connexin-based astroglial Ca(2+) communication: a key player in brain physiology and a prime target in pathology.

作者信息

De Bock Marijke, Decrock Elke, Wang Nan, Bol Mélissa, Vinken Mathieu, Bultynck Geert, Leybaert Luc

机构信息

Department of Basic Medical Sciences, Physiology group, Faculty of Medicine and Health Sciences, Ghent University, B-9000 Ghent, Belgium.

Department of Basic Medical Sciences, Physiology group, Faculty of Medicine and Health Sciences, Ghent University, B-9000 Ghent, Belgium.

出版信息

Biochim Biophys Acta. 2014 Oct;1843(10):2211-32. doi: 10.1016/j.bbamcr.2014.04.016. Epub 2014 Apr 21.

Abstract

For decades, studies have been focusing on the neuronal abnormalities that accompany neurodegenerative disorders. Yet, glial cells are emerging as important players in numerous neurological diseases. Astrocytes, the main type of glia in the central nervous system , form extensive networks that physically and functionally connect neuronal synapses with cerebral blood vessels. Normal brain functioning strictly depends on highly specialized cellular cross-talk between these different partners to which Ca(2+), as a signaling ion, largely contributes. Altered intracellular Ca(2+) levels are associated with neurodegenerative disorders and play a crucial role in the glial responses to injury. Intracellular Ca(2+) increases in single astrocytes can be propagated toward neighboring cells as intercellular Ca(2+) waves, thereby recruiting a larger group of cells. Intercellular Ca(2+) wave propagation depends on two, parallel, connexin (Cx) channel-based mechanisms: i) the diffusion of inositol 1,4,5-trisphosphate through gap junction channels that directly connect the cytoplasm of neighboring cells, and ii) the release of paracrine messengers such as glutamate and ATP through hemichannels ('half of a gap junction channel'). This review gives an overview of the current knowledge on Cx-mediated Ca(2+) communication among astrocytes as well as between astrocytes and other brain cell types in physiology and pathology, with a focus on the processes of neurodegeneration and reactive gliosis. Research on Cx-mediated astroglial Ca(2+) communication may ultimately shed light on the development of targeted therapies for neurodegenerative disorders in which astrocytes participate. This article is part of a Special Issue entitled: Calcium signaling in health and disease. Guest Editors: Geert Bultynck, Jacques Haiech, Claus W. Heizmann, Joachim Krebs, and Marc Moreau.

摘要

几十年来,研究一直聚焦于伴随神经退行性疾病出现的神经元异常。然而,胶质细胞正成为众多神经疾病中的重要角色。星形胶质细胞是中枢神经系统中主要的胶质细胞类型,它们形成广泛的网络,在物理和功能上连接神经元突触与脑血管。正常的脑功能严格依赖于这些不同细胞伙伴之间高度专业化的细胞间相互作用,钙离子(Ca(2+))作为一种信号离子,在很大程度上促进了这种相互作用。细胞内钙离子水平的改变与神经退行性疾病相关,并在胶质细胞对损伤的反应中起关键作用。单个星形胶质细胞内的钙离子增加可作为细胞间钙离子波向邻近细胞传播,从而募集更多细胞。细胞间钙离子波的传播依赖于两种平行的、基于连接蛋白(Cx)通道的机制:i)肌醇1,4,5-三磷酸通过直接连接相邻细胞细胞质的缝隙连接通道扩散;ii)旁分泌信使如谷氨酸和三磷酸腺苷通过半通道(“缝隙连接通道的一半”)释放。本综述概述了目前关于Cx介导的星形胶质细胞之间以及星形胶质细胞与其他脑细胞类型在生理和病理状态下钙离子通讯的知识,重点关注神经退行性变和反应性胶质增生过程。对Cx介导的星形胶质细胞钙离子通讯的研究最终可能为星形胶质细胞参与的神经退行性疾病的靶向治疗开发提供线索。本文是名为:健康与疾病中的钙信号的特刊的一部分。客座编辑:Geert Bultynck、Jacques Haiech、Claus W. Heizmann、Joachim Krebs和Marc Moreau。

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