首页> 美国卫生研究院文献>The Journal of Biological Chemistry >The Hydroxyl Side Chain of a Highly Conserved Serine Residue Is Required for Cation Selectivity and Substrate Transport in the Glial Glutamate Transporter GLT-1/SLC1A2
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The Hydroxyl Side Chain of a Highly Conserved Serine Residue Is Required for Cation Selectivity and Substrate Transport in the Glial Glutamate Transporter GLT-1/SLC1A2

机译:阳离子选择性和胶质谷氨酸转运蛋白GLT-1 / SLC1A2中的底物转运需要高度保守的丝氨酸残基的羟基侧链。

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摘要

Glutamate transporters maintain synaptic concentration of the excitatory neurotransmitter below neurotoxic levels. Their transport cycle consists of cotransport of glutamate with three sodium ions and one proton, followed by countertransport of potassium. Structural studies proposed that a highly conserved serine located in the binding pocket of the homologous GltPh coordinates l-aspartate as well as the sodium ion Na1. To experimentally validate these findings, we generated and characterized several mutants of the corresponding serine residue, Ser-364, of human glutamate transporter SLC1A2 (solute carrier family 1 member 2), also known as glutamate transporter GLT-1 and excitatory amino acid transporter EAAT2. S364T, S364A, S364C, S364N, and S364D were expressed in HEK cells and Xenopus laevis oocytes to measure radioactive substrate transport and transport currents, respectively. All mutants exhibited similar plasma membrane expression when compared with WT SLC1A2, but substitutions of serine by aspartate or asparagine completely abolished substrate transport. On the other hand, the threonine mutant, which is a more conservative mutation, exhibited similar substrate selectivity, substrate and sodium affinities as WT but a lower selectivity for Na+ over Li+. S364A and S364C exhibited drastically reduced affinities for each substrate and enhanced selectivity for l-aspartate over d-aspartate and l-glutamate, and lost their selectivity for Na+ over Li+. Furthermore, we extended the analysis of our experimental observations using molecular dynamics simulations. Altogether, our findings confirm a pivotal role of the serine 364, and more precisely its hydroxyl group, in coupling sodium and substrate fluxes.
机译:谷氨酸转运蛋白使兴奋性神经递质的突触浓度保持在神经毒性水平以下。它们的转运周期包括谷氨酸与三个钠离子和一个质子的共同转运,然后是钾的反向转运。结构研究表明,位于同源GltPh的结合口袋中的高度保守的丝氨酸可与L-天冬氨酸以及钠离子Na1协同作用。为了实验上验证这些发现,我们生成并表征了人类谷氨酸转运蛋白SLC1A2(溶质载体家族1成员2)(也称为谷氨酸转运蛋白GLT-1和兴奋性氨基酸转运蛋白EAAT2)的相应丝氨酸残基Ser-364的几个突变体。在HEK细胞和非洲爪蟾卵母细胞中表达S364T,S364A,S364C,S364N和S364D,分别测量放射性底物的转运和转运电流。与WT SLC1A2相比,所有突变体均表现出相似的质膜表达,但天冬氨酸或天冬酰胺取代丝氨酸可完全消除底物转运。另一方面,苏氨酸突变体是一种较为保守的突变,与野生型WT表现出相似的底物选择性,底物和钠亲和力,但对Na + 的选择性低于Li + 。 S364A和S364C对每种底物的亲和力大大降低,对L-天冬氨酸的选择性高于d-天冬氨酸和L-谷氨酸,并且失去了Na + 对Li + 的选择性。 。此外,我们使用分子动力学模拟扩展了对实验观察的分析。总而言之,我们的发现证实了丝氨酸364(更确切地说是其羟基)在耦合钠和底物通量中的关键作用。

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