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突变分析探索涉及五聚体通道受体预激活和激活的远程变构偶联。

Mutational analysis to explore long-range allosteric couplings involved in a pentameric channel receptor pre-activation and activation.

机构信息

Institut Pasteur, Université de Paris, CNRS UMR 3571,Channel-Receptors Unit, Paris, France.

Sorbonne Université, Collège doctoral, Paris, France.

出版信息

Elife. 2021 Sep 30;10:e60682. doi: 10.7554/eLife.60682.

Abstract

Pentameric ligand-gated ion channels (pLGICs) mediate chemical signaling through a succession of allosteric transitions that are yet not completely understood as intermediate states remain poorly characterized by structural approaches. In a previous study on the prototypic bacterial proton-gated channel GLIC, we generated several fluorescent sensors of the protein conformation that report a fast transition to a pre-active state, which precedes the slower process of activation with pore opening. Here, we explored the phenotype of a series of allosteric mutations, using simultaneous steady-state fluorescence and electrophysiological measurements over a broad pH range. Our data, fitted to a three-state Monod-Wyman-Changeux model, show that mutations at the subunit interface in the extracellular domain (ECD) principally alter pre-activation, while mutations in the lower ECD and in the transmembrane domain principally alter activation. We also show that propofol alters both transitions. Data are discussed in the framework of transition pathways generated by normal mode analysis (iModFit). It further supports that pre-activation involves major quaternary compaction of the ECD, and suggests that activation involves principally a reorganization of a 'central gating region' involving a contraction of the ECD β-sandwich and the tilt of the channel lining M2 helix.

摘要

五聚体配体门控离子通道(pLGICs)通过一系列变构转变介导化学信号转导,这些转变的中间状态尚未完全被理解,因为结构方法仍然难以描述。在以前对原型细菌质子门控通道 GLIC 的研究中,我们生成了几种蛋白质构象的荧光传感器,它们报告了快速向预激活状态的转变,该状态先于具有孔开口的较慢激活过程。在这里,我们使用在宽 pH 范围内的同时稳态荧光和电生理测量来探索一系列变构突变的表型。我们的数据,拟合到三态 Monod-Wyman-Changeux 模型,表明在细胞外域(ECD)的亚基界面处的突变主要改变预激活,而在较低的 ECD 和跨膜域中的突变主要改变激活。我们还表明异丙酚改变这两个转变。数据在由正常模式分析(iModFit)生成的转变途径的框架内进行讨论。它进一步支持预激活涉及 ECD 的主要四级紧缩,并且表明激活主要涉及涉及 ECD β-夹层的收缩和通道衬里 M2 螺旋的倾斜的“中央门控区”的重新组织。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bb97/8504973/503d0d0907dd/elife-60682-fig1.jpg

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