The Glutamate/GABA-Glutamine Cycle: Insights, Updates, and Advances

IF 4.2 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Neurochemistry Pub Date : 2025-03-11 DOI:10.1111/jnc.70029
Jens V. Andersen
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Abstract

Synaptic homeostasis of the principal neurotransmitters glutamate and GABA is tightly regulated by an intricate metabolic coupling between neurons and astrocytes known as the glutamate/GABA-glutamine cycle. In this cycle, astrocytes take up glutamate and GABA from the synapse and convert these neurotransmitters into glutamine. Astrocytic glutamine is subsequently transferred to neurons, serving as the principal precursor for neuronal glutamate and GABA synthesis. The glutamate/GABA-glutamine cycle integrates multiple cellular processes, including neurotransmitter release, uptake, synthesis, and metabolism. All of these processes are deeply interdependent and closely coupled to cellular energy metabolism. Astrocytes display highly active mitochondrial oxidative metabolism and several unique metabolic features, including glycogen storage and pyruvate carboxylation, which are essential to sustain continuous glutamine release. However, new roles of oligodendrocytes and microglia in neurotransmitter recycling are emerging. Malfunction of the glutamate/GABA-glutamine cycle can lead to severe synaptic disruptions and may be implicated in several brain diseases. Here, I review central aspects and recent advances of the glutamate/GABA-glutamine cycle to highlight how the cycle is functionally connected to critical brain functions and metabolism. First, an overview of glutamate, GABA, and glutamine transport is provided in relation to neurotransmitter recycling. Then, central metabolic aspects of the glutamate/GABA-glutamine cycle are reviewed, with a special emphasis on the critical metabolic roles of glial cells. Finally, I discuss how aberrant neurotransmitter recycling is linked to neurodegeneration and disease, focusing on astrocyte metabolic dysfunction and brain lipid homeostasis as emerging pathological mechanisms. Instead of viewing the glutamate/GABA-glutamine cycle as individual biochemical processes, a more holistic and integrative approach is needed to advance our understanding of how neurotransmitter recycling modulates brain function in both health and disease.

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主要神经递质谷氨酸和 GABA 的突触平衡受到神经元和星形胶质细胞之间错综复杂的代谢耦合(称为谷氨酸/GABA-谷氨酰胺循环)的严格调节。在这一循环中,星形胶质细胞从突触中吸收谷氨酸和 GABA,并将这些神经递质转化为谷氨酰胺。星形胶质细胞的谷氨酰胺随后被转移到神经元,成为神经元合成谷氨酸和 GABA 的主要前体。谷氨酸/GABA-谷氨酰胺循环整合了多个细胞过程,包括神经递质的释放、摄取、合成和代谢。所有这些过程都相互依存,并与细胞能量代谢密切相关。星形胶质细胞显示出高度活跃的线粒体氧化代谢和一些独特的代谢特征,包括糖原储存和丙酮酸羧化,这对于维持谷氨酰胺的持续释放至关重要。然而,少突胶质细胞和小胶质细胞在神经递质循环中的新作用正在出现。谷氨酸/GABA-谷氨酰胺循环功能失调可导致严重的突触破坏,并可能与多种脑部疾病有关。在此,我回顾了谷氨酸/GABA-谷氨酰胺循环的中心环节和最新进展,以强调该循环在功能上是如何与关键的大脑功能和新陈代谢联系在一起的。首先,概述了谷氨酸、GABA 和谷氨酰胺转运与神经递质循环的关系。然后,回顾谷氨酸/GABA-谷氨酰胺循环的中心代谢方面,特别强调神经胶质细胞的关键代谢作用。最后,我将讨论神经递质循环失常是如何与神经变性和疾病联系在一起的,重点是作为新出现的病理机制的星形胶质细胞代谢功能障碍和脑脂质稳态。我们不应该把谷氨酸/GABA-谷氨酰胺循环看作是单独的生化过程,而是需要一种更全面、更综合的方法来加深我们对神经递质循环如何调节健康和疾病中大脑功能的理解。
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来源期刊
Journal of Neurochemistry
Journal of Neurochemistry 医学-神经科学
CiteScore
9.30
自引率
2.10%
发文量
181
审稿时长
2.2 months
期刊介绍: Journal of Neurochemistry focuses on molecular, cellular and biochemical aspects of the nervous system, the pathogenesis of neurological disorders and the development of disease specific biomarkers. It is devoted to the prompt publication of original findings of the highest scientific priority and value that provide novel mechanistic insights, represent a clear advance over previous studies and have the potential to generate exciting future research.
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