Astrocytes regulate inhibitory neurotransmission through GABA uptake, metabolism, and recycling.

IF 5.6 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jens V Andersen, Arne Schousboe, Petrine Wellendorph
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引用次数: 9

Abstract

Synaptic regulation of the primary inhibitory neurotransmitter γ-aminobutyric acid (GABA) is essential for brain function. Cerebral GABA homeostasis is tightly regulated through multiple mechanisms and is directly coupled to the metabolic collaboration between neurons and astrocytes. In this essay, we outline and discuss the fundamental roles of astrocytes in regulating synaptic GABA signaling. A major fraction of synaptic GABA is removed from the synapse by astrocytic uptake. Astrocytes utilize GABA as a metabolic substrate to support glutamine synthesis. The astrocyte-derived glutamine is subsequently transferred to neurons where it serves as the primary precursor of neuronal GABA synthesis. The flow of GABA and glutamine between neurons and astrocytes is collectively termed the GABA-glutamine cycle and is essential to sustain GABA synthesis and inhibitory signaling. In certain brain areas, astrocytes are even capable of synthesizing and releasing GABA to modulate inhibitory transmission. The majority of oxidative GABA metabolism in the brain takes place in astrocytes, which also leads to synthesis of the GABA-related metabolite γ-hydroxybutyric acid (GHB). The physiological roles of endogenous GHB remain unclear, but may be related to regulation of tonic inhibition and synaptic plasticity. Disrupted inhibitory signaling and dysfunctional astrocyte GABA handling are implicated in several diseases including epilepsy and Alzheimer's disease. Synaptic GABA homeostasis is under astrocytic control and astrocyte GABA uptake, metabolism, and recycling may therefore serve as relevant targets to ameliorate pathological inhibitory signaling.

星形胶质细胞通过GABA摄取、代谢和再循环调节抑制性神经传递。
初级抑制性神经递质γ-氨基丁酸(GABA)的突触调节对脑功能至关重要。大脑GABA稳态受到多种机制的严格调控,并与神经元和星形胶质细胞之间的代谢协作直接相关。在本文中,我们概述和讨论星形胶质细胞在调节突触GABA信号传导中的基本作用。突触GABA的主要部分通过星形细胞摄取从突触中移除。星形胶质细胞利用GABA作为代谢底物来支持谷氨酰胺的合成。星形胶质细胞衍生的谷氨酰胺随后被转移到神经元,在那里它作为神经元合成GABA的主要前体。GABA和谷氨酰胺在神经元和星形胶质细胞之间的流动被统称为GABA-谷氨酰胺循环,对维持GABA合成和抑制信号传导至关重要。在某些大脑区域,星形胶质细胞甚至能够合成和释放GABA来调节抑制传递。大脑中GABA的氧化代谢大部分发生在星形胶质细胞中,这也导致GABA相关代谢物γ-羟基丁酸(GHB)的合成。内源性GHB的生理作用尚不清楚,但可能与强直抑制和突触可塑性的调节有关。抑制信号中断和星形胶质细胞GABA处理功能失调与癫痫和阿尔茨海默病等多种疾病有关。突触GABA稳态受星形胶质细胞控制,因此星形胶质细胞对GABA的摄取、代谢和再循环可能是改善病理性抑制信号传导的相关靶点。
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来源期刊
Essays in biochemistry
Essays in biochemistry 生物-生化与分子生物学
CiteScore
10.50
自引率
0.00%
发文量
105
审稿时长
>12 weeks
期刊介绍: Essays in Biochemistry publishes short, digestible reviews from experts highlighting recent key topics in biochemistry and the molecular biosciences. Written to be accessible for those not yet immersed in the subject, each article is an up-to-date, self-contained summary of the topic. Bridging the gap between the latest research and established textbooks, Essays in Biochemistry will tell you what you need to know to begin exploring the field, as each article includes the top take-home messages as summary points. Each issue of the journal is guest edited by a key opinion leader in the area, and whether you are continuing your studies or moving into a new research area, the Journal gives a complete picture in one place. Essays in Biochemistry is proud to publish Understanding Biochemistry, an essential online resource for post-16 students, teachers and undergraduates. Providing up-to-date overviews of key concepts in biochemistry and the molecular biosciences, the Understanding Biochemistry issues of Essays in Biochemistry are published annually in October.
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