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脑内星形胶质细胞谷氨酸转运体:调节神经递质动态平衡和突触传递。

Astroglial glutamate transporters in the brain: Regulating neurotransmitter homeostasis and synaptic transmission.

机构信息

Neurocentre Magendie, Inserm U1215, Bordeaux, France.

Université de Bordeaux, Bordeaux, France.

出版信息

J Neurosci Res. 2017 Nov;95(11):2140-2151. doi: 10.1002/jnr.24029. Epub 2017 Feb 2.

Abstract

Astrocytes, the major glial cell type in the central nervous system (CNS), are critical for brain function and have been implicated in various disorders of the central nervous system. These cells are involved in a wide range of cerebral processes including brain metabolism, control of central blood flow, ionic homeostasis, fine-tuning synaptic transmission, and neurotransmitter clearance. Such varied roles can be efficiently carried out due to the intimate interactions astrocytes maintain with neurons, the vasculature, as well as with other glial cells. Arguably, one of the most important functions of astrocytes in the brain is their control of neurotransmitter clearance. This is particularly true for glutamate whose timecourse in the synaptic cleft needs to be controlled tightly under physiological conditions to maintain point-to-point excitatory transmission, thereby limiting spillover and activation of more receptors. Most importantly, accumulation of glutamate in the extracellular space can trigger excessive activation of glutamatergic receptors and lead to excitotoxicity, a trademark of many neurodegenerative diseases. It is thus of utmost importance for both physiological and pathophysiological reasons to understand the processes that control glutamate time course within the synaptic cleft and regulate its concentrations in the extracellular space. © 2017 Wiley Periodicals, Inc.

摘要

星形胶质细胞是中枢神经系统(CNS)中的主要神经胶质细胞类型,对大脑功能至关重要,并与中枢神经系统的各种疾病有关。这些细胞参与广泛的大脑过程,包括脑代谢、中央血液流动的控制、离子动态平衡、微调突触传递和神经递质清除。由于星形胶质细胞与神经元、血管以及其他神经胶质细胞之间保持着密切的相互作用,因此能够有效地发挥这些多样化的作用。可以说,星形胶质细胞在大脑中的最重要功能之一是控制神经递质的清除。对于谷氨酸来说尤其如此,其在突触间隙中的时间过程需要在生理条件下严格控制,以维持点对点兴奋传递,从而限制溢出和更多受体的激活。最重要的是,谷氨酸在细胞外空间的积累会引发谷氨酸能受体的过度激活,导致兴奋性毒性,这是许多神经退行性疾病的特征。因此,出于生理和病理生理原因,了解控制突触间隙中谷氨酸时间过程并调节其细胞外空间浓度的过程至关重要。

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