星形胶质细胞特异性Ca2+活性:作用机制、实验工具和在乙醇诱导的功能障碍中的作用。

IF 2.4 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochemistry and Cell Biology Pub Date : 2023-10-01 Epub Date: 2023-03-29 DOI:10.1139/bcb-2023-0008
Olivia Coulter, Christopher D Walker, Mary-Louise Risher
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引用次数: 1

摘要

星形胶质细胞是存在于中枢神经系统中的非神经元神经胶质细胞的一种亚型。星形细胞有广泛的外周星形细胞突起,这些突起包裹突触形成三方突触。星形胶质细胞可以通过多种途径影响突触发育和结构成熟,对神经元信号作出反应,并调节突触传递。在过去的十年里,有强有力的证据表明星形胶质细胞可以影响各种认知动物模型的行为结果。然而,星形胶质细胞如何影响大脑功能的完整程度仍有待揭示。星形细胞钙(Ca2+)信号传导已成为星形细胞-神经元通信的重要驱动因素,通过尚不完全了解的机制实现复杂的串扰。在这里,我们将回顾该领域目前对星形胶质细胞Ca2+信号传导的理解,并讨论用于继续揭示星形胶质细胞在大脑功能中有趣作用的先进工具和方法。利用酒精使用障碍的临床前乙醇(EtOH)研究领域,我们重点关注这些新方法如何有助于揭示星形胶质细胞Ca2+功能在调节EtOH消耗中的重要作用,以及星形胶质细胞的Ca2+功能障碍如何导致啮齿类动物模型中暴露于EtOH后出现的认知缺陷。
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Astrocyte-specific Ca2+ activity: Mechanisms of action, experimental tools, and roles in ethanol-induced dysfunction.

Astrocytes are a subtype of non-neuronal glial cells that reside in the central nervous system. Astrocytes have extensive peripheral astrocytic processes that ensheathe synapses to form the tripartite synapse. Through a multitude of pathways, astrocytes can influence synaptic development and structural maturation, respond to neuronal signals, and modulate synaptic transmission. Over the last decade, strong evidence has emerged demonstrating that astrocytes can influence behavioral outcomes in various animal models of cognition. However, the full extent of how astrocytes influence brain function is still being revealed. Astrocyte calcium (Ca2+) signaling has emerged as an important driver of astrocyte-neuronal communication allowing intricate crosstalk through mechanisms that are still not fully understood. Here, we will review the field's current understanding of astrocyte Ca2+ signaling and discuss the sophisticated state-of-the-art tools and approaches used to continue unraveling astrocytes' interesting role in brain function. Using the field of pre-clinical ethanol (EtOH) studies in the context of alcohol use disorder, we focus on how these novel approaches have helped to reveal an important role for astrocyte Ca2+ function in regulating EtOH consumption and how astrocyte Ca2+ dysfunction contributes to the cognitive deficits that emerge after EtOH exposure in a rodent model.

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来源期刊
Biochemistry and Cell Biology
Biochemistry and Cell Biology 生物-生化与分子生物学
CiteScore
6.30
自引率
0.00%
发文量
50
审稿时长
6-12 weeks
期刊介绍: Published since 1929, Biochemistry and Cell Biology explores every aspect of general biochemistry and includes up-to-date coverage of experimental research into cellular and molecular biology in eukaryotes, as well as review articles on topics of current interest and notes contributed by recognized international experts. Special issues each year are dedicated to expanding new areas of research in biochemistry and cell biology.
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