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首页> 外文期刊>The Journal of general physiology >Cooperation of the Conserved Aspartate 439 and Bound Amino Acid Substrate Is Important for High-Affinity Na+ Binding to the Glutamate Transporter EAAC1
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Cooperation of the Conserved Aspartate 439 and Bound Amino Acid Substrate Is Important for High-Affinity Na+ Binding to the Glutamate Transporter EAAC1

机译:保守的天冬氨酸439和结合的氨基酸底物的合作对于高亲和性Na +与谷氨酸转运蛋白EAAC1的结合非常重要

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The neuronal glutamate transporter EAAC1 contains several conserved acidic amino acids in its transmembrane domain, which are possibly important in catalyzing transport and/or binding of co/countertransported cations. Here, we have studied the effects of neutralization by site-directed mutagenesis of three of these amino acid side chains, glutamate 373, aspartate 439, and aspartate 454, on the functional properties of the transporter. Transport was analyzed by whole-cell current recording from EAAC1-expressing mammalian cells after applying jumps in voltage, substrate, or cation concentration. Neutralization mutations in positions 373 and 454, although eliminating steady-state glutamate transport, have little effect on the kinetics and thermodynamics of Na+ and glutamate binding, suggesting that these two positions do not constitute the sites of Na+ and glutamate association with EAAC1. In contrast, the D439N mutation resulted in an approximately 10-fold decrease of apparent affinity of the glutamate-bound transporter form for Na+, and an ~2,000-fold reduction in the rate of Na+ binding, whereas the kinetics and thermodynamics of Na+ binding to the glutamate-free transporter were almost unchanged compared to EAAC1WT. Furthermore, the D439N mutation converted l-glutamate, THA, and PDC, which are activating substrates for the wild-type anion conductance, but not l-aspartate, into transient inhibitors of the EAAC1D439 anion conductance. Activation of the anion conductance by l-glutamate was biphasic, allowing us to directly analyze binding of two of the three cotransported Na+ ions as a function of time and [Na+]. The data can be explained with a model in which the D439N mutation results in a dramatic slowing of Na+ binding and a reduced affinity of the substrate-bound EAAC1 for Na+. We propose that the bound substrate controls the rate and the extent of Na+ interaction with the transporter, depending on the amino acid side chain in position 439.
机译:神经元谷氨酸转运蛋白EAAC1在其跨膜结构域中包含几个保守的酸性氨基酸,这可能在催化共/逆转运阳离子的转运和/或结合中很重要。在这里,我们研究了通过对这些氨基酸侧链中的三个谷氨酸373,天冬氨酸439和天冬氨酸454进行定点诱变中和对转运蛋白功能特性的影响。在施加电压,底物或阳离子浓度跃升后,通过记录表达EAAC1的哺乳动物细胞的全细胞电流记录来分析转运情况。位置373和454的中和突变虽然消除了稳态谷氨酸的转运,但对Na +和谷氨酸结合的动力学和热力学影响很小,这表明这两个位置并不构成Na +和谷氨酸与EAAC1缔合的位点。相比之下,D439N突变导致谷氨酸结合的转运蛋白形式对Na +的表观亲和力降低约10倍,Na +结合速率降低约2,000倍,而Na +结合的动力学和热力学与EAAC1WT相比,不含谷氨酸的转运蛋白几乎没有变化。此外,D439N突变将l-谷氨酸,THA和PDC(它们是野生型阴离子电导而不是l-天门冬氨酸的活化底物)转化为EAAC1D439阴离子电导的瞬时抑制剂。 L-谷氨酸对阴离子电导的活化是双相的,这使我们能够直接分析三个共转运的Na +离子中的两个作为时间和[Na +]的函数。可用模型解释数据,其中D439N突变会导致Na +结合急剧减慢,底物结合的EAAC1对Na +的亲和力降低。我们建议结合的底物控制Na +与转运蛋白相互作用的速度和程度,具体取决于位置439上的氨基酸侧链。

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