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本文引用的文献

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Effect of topiramate and dBcAMP on expression of the glutamate transporters GLAST and GLT-1 in astrocytes cultured separately, or together with neurons.托吡酯和二丁酰环磷腺苷对单独培养或与神经元共同培养的星形胶质细胞中谷氨酸转运体GLAST和GLT-1表达的影响。
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Tonic release of glutamate by a DIDS-sensitive mechanism in rat hippocampal slices.大鼠海马切片中通过DIDS敏感机制的谷氨酸强直性释放。
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Structure of a glutamate transporter homologue from Pyrococcus horikoshii.来自嗜热栖热菌的谷氨酸转运体同源物的结构。
Nature. 2004 Oct 14;431(7010):811-8. doi: 10.1038/nature03018.
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Tonic excitation and inhibition of neurons: ambient transmitter sources and computational consequences.神经元的紧张性兴奋与抑制:周围递质来源及计算结果
Prog Biophys Mol Biol. 2005 Jan;87(1):3-16. doi: 10.1016/j.pbiomolbio.2004.06.001.
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Glutamate transport by retinal Muller cells in glutamate/aspartate transporter-knockout mice.谷氨酸/天冬氨酸转运体基因敲除小鼠中视网膜穆勒细胞的谷氨酸转运
Glia. 2005 Jan 15;49(2):184-96. doi: 10.1002/glia.20097.
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A trimeric quaternary structure is conserved in bacterial and human glutamate transporters.三聚体四级结构在细菌和人类谷氨酸转运体中是保守的。
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Heterologous expression of the Na(+),K(+)-ATPase gamma subunit in Xenopus oocytes induces an endogenous, voltage-gated large diameter pore.蛙卵母细胞中钠钾ATP酶γ亚基的异源表达诱导了一种内源性电压门控大直径通道。
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Distribution of the glutamate transporters GLAST and GLT-1 in rat circumventricular organs, meninges, and dorsal root ganglia.谷氨酸转运体GLAST和GLT-1在大鼠室周器官、脑膜和背根神经节中的分布。
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Epidermal growth factor receptor agonists increase expression of glutamate transporter GLT-1 in astrocytes through pathways dependent on phosphatidylinositol 3-kinase and transcription factor NF-kappaB.表皮生长因子受体激动剂通过依赖磷脂酰肌醇3激酶和转录因子NF-κB的途径增加星形胶质细胞中谷氨酸转运体GLT-1的表达。
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10
Changing patterns of spatial buffering of glutamate in developing rat retinae are mediated by the Müller cell glutamate transporter GLAST.发育中大鼠视网膜中谷氨酸空间缓冲模式的变化由米勒细胞谷氨酸转运体GLAST介导。
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蝾螈视网膜神经胶质细胞中GLAST谷氨酸转运体的离子化学计量。

The ionic stoichiometry of the GLAST glutamate transporter in salamander retinal glia.

作者信息

Owe Simen Gylterud, Marcaggi Païkan, Attwell David

机构信息

Department of Physiology, University College London, London, WC1E 6BT, UK.

出版信息

J Physiol. 2006 Dec 1;577(Pt 2):591-9. doi: 10.1113/jphysiol.2006.116830. Epub 2006 Sep 28.

DOI:10.1113/jphysiol.2006.116830
PMID:17008380
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1890427/
Abstract

Maintaining a low extracellular glutamate concentration in the central nervous system is important for terminating synaptic transmission and preventing excitotoxic cell death. The stoichiometry of the most abundant glutamate transporter, GLT-1, predicts that a very low glutamate concentration, approximately 2 nM, should be reached in the absence of glutamate release, yet microdialysis measurements give a value of approximately 1 microM. If other glutamate transporters had a different stoichiometry, the predicted minimum glutamate concentration could be higher, for example if those transporters were driven by the cotransport of 2 Na+ (rather than of 3 Na+ as for GLT-1). Here we investigated the ionic stoichiometry of the glutamate transporter GLAST, which is the major glutamate transporter expressed in the retina and cerebellum, is expressed in other adult brain areas at a lower level than GLT-1, and is present throughout the brain early in development when expression of GLT-1 is low. Glutamate transport by GLAST was found to be driven, as for GLT-1, by the cotransport of 3 Na+ and 1 H+ and the counter-transport of 1 K+, suggesting that the minimum extracellular glutamate concentration should be similar during development and in the adult brain. A less powerful accumulation of glutamate by GLAST than by GLT-1 cannot be used to explain the high glutamate concentration measured by microdialysis.

摘要

在中枢神经系统中维持低细胞外谷氨酸浓度对于终止突触传递和防止兴奋性毒性细胞死亡至关重要。最丰富的谷氨酸转运体GLT-1的化学计量预测,在没有谷氨酸释放的情况下,应该会达到非常低的谷氨酸浓度,约为2 nM,但微透析测量给出的值约为1 μM。如果其他谷氨酸转运体具有不同的化学计量,预测的最低谷氨酸浓度可能会更高,例如,如果这些转运体由2个Na+的共转运驱动(而不是像GLT-1那样由3个Na+驱动)。在这里,我们研究了谷氨酸转运体GLAST的离子化学计量,它是视网膜和小脑中表达的主要谷氨酸转运体,在其他成人大脑区域中的表达水平低于GLT-1,并且在发育早期GLT-1表达较低时在整个大脑中都有表达。结果发现,与GLT-1一样,GLAST介导的谷氨酸转运由3个Na+和1个H+的共转运以及1个K+的反向转运驱动,这表明在发育过程中和成人大脑中,细胞外谷氨酸的最低浓度应该相似。GLAST对谷氨酸的积累能力不如GLT-1,这无法解释微透析测量所得到的高谷氨酸浓度。