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原核配体门控离子通道脱敏机制。

Desensitization mechanism in prokaryotic ligand-gated ion channel.

机构信息

Department of Physiology and Biophysics, School of Medicine, Case Western Reserve University, Cleveland, Ohio 44106, USA.

出版信息

J Biol Chem. 2012 May 25;287(22):18467-77. doi: 10.1074/jbc.M112.348045. Epub 2012 Apr 3.

Abstract

Crystal structures of Gloeobacter violaceus ligand-gated ion channel (GLIC), a proton-gated prokaryotic homologue of pentameric ligand-gated ion channel (LGIC) from G. violaceus, have provided high-resolution models of the channel architecture and its role in selective ion conduction and drug binding. However, it is still unclear which functional states of the LGIC gating scheme these crystal structures represent. Much of this uncertainty arises from a lack of thorough understanding of the functional properties of these prokaryotic channels. To elucidate the molecular events that constitute gating, we have carried out an extensive characterization of GLIC function and dynamics in reconstituted proteoliposomes by patch clamp measurements and EPR spectroscopy. We find that GLIC channels show rapid activation upon jumps to acidic pH followed by a time-dependent loss of conductance because of desensitization. GLIC desensitization is strongly coupled to activation and is modulated by voltage, permeant ions, pore-blocking drugs, and membrane cholesterol. Many of these properties are parallel to functions observed in members of eukaryotic LGIC. Conformational changes in loop C, measured by site-directed spin labeling and EPR spectroscopy, reveal immobilization during desensitization analogous to changes in LGIC and acetylcholine binding protein. Together, our studies suggest conservation of mechanistic aspects of desensitization among LGICs of prokaryotic and eukaryotic origin.

摘要

紫细菌中的 Gloeobacter violaceus 配体门控离子通道 (GLIC) 的晶体结构,是来自 G. violaceus 的五聚体配体门控离子通道 (LGIC) 的质子门控原核同源物,为通道结构及其在选择性离子传导和药物结合中的作用提供了高分辨率模型。然而,这些晶体结构代表 LGIC 门控方案的哪个功能状态仍不清楚。这种不确定性很大程度上源于对这些原核通道的功能特性缺乏透彻的了解。为了阐明构成门控的分子事件,我们通过膜片钳测量和 EPR 光谱法对重组质体中的 GLIC 功能和动力学进行了广泛的表征。我们发现 GLIC 通道在跳跃到酸性 pH 值后迅速激活,随后由于脱敏而导致电导的时间依赖性丧失。GLIC 脱敏与激活强烈偶联,并受电压、可渗透离子、孔阻塞药物和膜胆固醇的调节。这些特性中的许多与真核 LGIC 成员中观察到的功能平行。通过定点自旋标记和 EPR 光谱测量的环 C 构象变化,揭示了脱敏过程中的固定化,类似于 LGIC 和乙酰胆碱结合蛋白的变化。总之,我们的研究表明,原核和真核 LGIC 之间在脱敏的机制方面存在保守性。

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