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影响谷氨酸转运体GLT-1中钾离子偶联的氨基酸残基发生突变会诱导专性交换。

Mutation of an amino acid residue influencing potassium coupling in the glutamate transporter GLT-1 induces obligate exchange.

作者信息

Kavanaugh M P, Bendahan A, Zerangue N, Zhang Y, Kanner B I

机构信息

Vollum Institute, Oregon Health Sciences University, Portland, Oregon 97201, USA.

出版信息

J Biol Chem. 1997 Jan 17;272(3):1703-8. doi: 10.1074/jbc.272.3.1703.

Abstract

Glutamate transporters maintain low synaptic concentrations of neurotransmitter by coupling uptake to flux of other ions. After cotransport of glutamic acid with Na+, the cycle is completed by countertransport of K+. We have identified an amino acid residue (glutamate 404) influencing ion coupling in a domain of the transporter implicated previously in kainate binding. Mutation of this residue to aspartate (E404D) prevents both forward and reverse transport induced by K+. Sodium-dependent transmitter exchange and a transporter-mediated chloride conductance are unaffected by the mutation, indicating that this residue selectively influences potassium flux coupling. The results support a kinetic model in which sodium and potassium are translocated in distinct steps and suggest that this highly conserved region of the transporter is intimately associated with the ion permeation pathway.

摘要

谷氨酸转运体通过将摄取与其他离子的通量耦合来维持神经递质在突触处的低浓度。在谷氨酸与Na+共转运后,K+的反向转运完成循环。我们在转运体的一个先前与 kainate 结合有关的结构域中鉴定出一个影响离子耦合的氨基酸残基(谷氨酸404)。将该残基突变为天冬氨酸(E404D)可阻止由K+诱导的正向和反向转运。钠依赖性递质交换和转运体介导的氯电导不受该突变影响,表明该残基选择性地影响钾通量耦合。结果支持了一种动力学模型,其中钠和钾在不同步骤中转运,并表明转运体的这个高度保守区域与离子渗透途径密切相关。

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