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D-丝氨酸作为一种神经递质及其在大脑发育和疾病中的作用。

D-serine as a gliotransmitter and its roles in brain development and disease.

机构信息

Montreal Neurological Institute, McGill University Montreal, QC, Canada.

出版信息

Front Cell Neurosci. 2013 Apr 23;7:39. doi: 10.3389/fncel.2013.00039. eCollection 2013.

Abstract

The development of new techniques to study glial cells has revealed that they are active participants in the development of functional neuronal circuits. Calcium imaging studies demonstrate that glial cells actively sense and respond to neuronal activity. Glial cells can produce and release neurotransmitter-like molecules, referred to as gliotransmitters, that can in turn influence the activity of neurons and other glia. One putative gliotransmitter, D-serine is believed to be an endogenous co-agonist for synaptic N-methyl-D-aspartate receptors (NMDARs), modulating synaptic transmission and plasticity mediated by this receptor. The observation that D-serine levels in the mammalian brain increase during early development, suggests a possible role for this gliotransmitter in normal brain development and circuit refinement. In this review we will examine the data that D-serine and its associated enzyme serine racemase are developmentally regulated. We will consider the evidence that D-serine is actively released by glial cells and examine the studies that have implicated D-serine as a critical player involved in regulating NMDAR-mediated synaptic transmission and neuronal migration during development. Furthermore, we will consider how dysregulation of D-serine may play an important role in the etiology of neurological and psychiatric diseases.

摘要

研究神经胶质细胞的新技术的发展表明,它们是功能性神经元回路发育的积极参与者。钙成像研究表明,神经胶质细胞主动感知和响应神经元活动。神经胶质细胞可以产生和释放神经递质样分子,称为神经胶质递质,反过来又可以影响神经元和其他神经胶质的活性。一种假定的神经胶质递质 D-丝氨酸被认为是突触 N-甲基-D-天冬氨酸受体 (NMDAR) 的内源性共激动剂,调节该受体介导的突触传递和可塑性。在哺乳动物大脑中 D-丝氨酸水平在早期发育过程中增加的观察结果表明,这种神经胶质递质可能在正常大脑发育和回路细化中发挥作用。在这篇综述中,我们将检查 D-丝氨酸及其相关酶丝氨酸 racemase 发育调节的数据。我们将考虑 D-丝氨酸是否由神经胶质细胞主动释放的证据,并检查研究表明 D-丝氨酸作为一种关键参与者,参与调节 NMDAR 介导的突触传递和神经元迁移在发育过程中。此外,我们将考虑 D-丝氨酸的失调如何在神经和精神疾病的发病机制中发挥重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5cf0/3632749/d8425b1fa197/fncel-07-00039-g001.jpg

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