嵌合原核五聚体配体门控通道揭示了不同的激活途径。

Nicolaus Schmandt, Phanindra Velisetty, Sreevatsa V Chalamalasetti, Richard A Stein, Ross Bonner, Lauren Talley, Mark D Parker, Hassane S Mchaourab, Vivien C Yee, David T Lodowski, Sudha Chakrapani
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引用次数: 16

摘要

最近,几种五聚体配体门控离子通道的高分辨率结构提供了其分子结构的前所未有的细节。然而,在门控和变构调制的基础上的构象动力学和结构重排仍然知之甚少。采用电生理学、双电子-电子共振(DEER)光谱和x射线晶体学相结合的方法,研究了由伯胺激活的菊花Erwinia配体门控离子通道的胞外结构域(ECD)和由质子激活的紫罗兰Gloeobacter violaceus配体门控离子通道的跨膜结构域的新型功能嵌合体的激活机制。我们发现嵌合体是由伯胺和质子独立门控的。在pH 7.0和不含伯胺的静息状态下,嵌合体的晶体结构显示出闭孔构象和相对于跨膜区域扭曲的ECD。胺和ph诱导的构象变化表明,嵌合体呈现双重门控模式,保留了母体通道的明显构象变化。总的来说,我们的发现揭示了这类通道中门控机制的保守和发散特征,并将有助于设计更好的变构调制器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A chimeric prokaryotic pentameric ligand-gated channel reveals distinct pathways of activation.

Recent high resolution structures of several pentameric ligand-gated ion channels have provided unprecedented details of their molecular architecture. However, the conformational dynamics and structural rearrangements that underlie gating and allosteric modulation remain poorly understood. We used a combination of electrophysiology, double electron-electron resonance (DEER) spectroscopy, and x-ray crystallography to investigate activation mechanisms in a novel functional chimera with the extracellular domain (ECD) of amine-gated Erwinia chrysanthemi ligand-gated ion channel, which is activated by primary amines, and the transmembrane domain of Gloeobacter violaceus ligand-gated ion channel, which is activated by protons. We found that the chimera was independently gated by primary amines and by protons. The crystal structure of the chimera in its resting state, at pH 7.0 and in the absence of primary amines, revealed a closed-pore conformation and an ECD that is twisted with respect to the transmembrane region. Amine- and pH-induced conformational changes measured by DEER spectroscopy showed that the chimera exhibits a dual mode of gating that preserves the distinct conformational changes of the parent channels. Collectively, our findings shed light on both conserved and divergent features of gating mechanisms in this class of channels, and will facilitate the design of better allosteric modulators.

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