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上皮细胞和神经元高亲和力谷氨酸转运体的电生特性。

Electrogenic properties of the epithelial and neuronal high affinity glutamate transporter.

作者信息

Kanai Y, Nussberger S, Romero M F, Boron W F, Hebert S C, Hediger M A

机构信息

Department of Medicine, Brigham and Women's Hospital, Boston, MA 02115, USA.

出版信息

J Biol Chem. 1995 Jul 14;270(28):16561-8. doi: 10.1074/jbc.270.28.16561.

Abstract

Active ion-coupled glutamate transport is of critical importance for excitatory synaptic transmission, normal cellular function, and epithelial amino acid metabolism. We previously reported the cloning of the rabbit intestinal high affinity glutamate transporter EAAC1 (Kanai, Y., and Hediger, M. A. (1992) Nature 360, 467-471), which is expressed in numerous tissues including intestine, kidney, liver, heart, and brain. Here, we report a detailed stoichiometric and kinetic analysis of EAAC1 expressed in Xenopus laevis oocytes. Uptake studies of 22Na+ and [14C]glutamate, in combination with measurements of intracellular pH with pH microelectrodes gave a glutamate to charge ratio of 1:1, a glutamate to Na+ ratio of 1:2, and a OH-/H+ to charge ratio of 1:1. Since transport is K+ dependent it can be concluded that EAAC1-mediated glutamate transport is coupled to the cotransport of 2 Na+ ions, the countertransport of one K+ ion and either the countertransport of one OH- ion or the cotransport of 1 H+ ion. We further demonstrate that under conditions where the electrochemical gradients for these ions are disrupted, EAAC1 runs in reverse, a transport mode which is of pathologic importance. 22Na+ uptake studies revealed that there is a low level of Na+ uptake in the absence of extracellular glutamate which appears to be analogous to the Na+ leak observed for the intestinal Na+/glucose cotransporter SGLT1. In voltage clamp studies, reducing extracellular Na+ from 100 to 10 mM strongly increased K0.5L-glutamate and decreased I(max). The data indicate that Na+ binding at the extracellular transporter surface becomes rate-limiting. Studies addressing the cooperativity of the substrate-binding sites indicate that there are two distinct Na(+)-binding sites with different affinities and that Na+ binding is modulated by extracellular glutamate. A hypothetical ordered kinetic transport model for EAAC1 is discussed.

摘要

活性离子偶联型谷氨酸转运对于兴奋性突触传递、正常细胞功能以及上皮氨基酸代谢至关重要。我们之前报道了兔肠道高亲和力谷氨酸转运体EAAC1的克隆(金井洋和赫迪格·M·A.(1992年)《自然》360卷,467 - 471页),该转运体在包括肠道、肾脏、肝脏、心脏和大脑在内的众多组织中表达。在此,我们报道了对非洲爪蟾卵母细胞中表达的EAAC1进行的详细化学计量和动力学分析。利用22Na+和[14C]谷氨酸的摄取研究,结合用pH微电极测量细胞内pH值,得出谷氨酸与电荷的比例为1:1,谷氨酸与Na+的比例为1:2,以及OH-/H+与电荷的比例为1:1。由于转运依赖于K+,可以得出结论,EAAC1介导的谷氨酸转运与2个Na+离子的协同转运、1个K+离子的反向转运以及1个OH-离子的反向转运或1个H+离子的协同转运相偶联。我们进一步证明,在这些离子的电化学梯度被破坏的条件下,EAAC1会逆向运行,这种转运模式具有病理学重要性。22Na+摄取研究表明,在没有细胞外谷氨酸的情况下存在低水平的Na+摄取,这似乎类似于肠道Na+/葡萄糖协同转运体SGLT1中观察到的Na+泄漏。在电压钳研究中,将细胞外Na+从100 mM降至10 mM会强烈增加K0.5L-谷氨酸并降低I(max)。数据表明,细胞外转运体表面的Na+结合成为限速因素。关于底物结合位点协同性的研究表明,存在两个具有不同亲和力的不同Na(+)结合位点,并且细胞外谷氨酸会调节Na+结合。文中讨论了EAAC1的一个假设性有序动力学转运模型。

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