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分析发作性强肌痉挛症突变可识别介导甘氨酸受体激活的跨膜结构域重排。

Analysis of hyperekplexia mutations identifies transmembrane domain rearrangements that mediate glycine receptor activation.

机构信息

Queensland Brain Institute, Brisbane, Queensland 4072, Australia.

Queensland Brain Institute, Brisbane, Queensland 4072, Australia; School of Biomedical Sciences University of Queensland, Brisbane, Queensland 4072, Australia.

出版信息

J Biol Chem. 2013 Nov 22;288(47):33760-33771. doi: 10.1074/jbc.M113.513804. Epub 2013 Oct 4.

Abstract

Pentameric ligand-gated ion channels (pLGICs) mediate numerous physiological processes and are therapeutic targets for a wide range of clinical indications. Elucidating the structural differences between their closed and open states may help in designing improved drugs that bias receptors toward the desired conformational state. We recently showed that two new hyperekplexia mutations, Q226E and V280M, induced spontaneous activity in α1 glycine receptors. Gln-226, located near the top of transmembrane (TM) 1, is closely apposed to Arg-271 at the top of TM2 in the neighboring subunit. Using mutant cycle analysis, we inferred that Q226E induces activation via an enhanced electrostatic attraction to Arg-271. This would tilt the top of TM2 toward TM1 and hence away from the pore axis to open the channel. We also concluded that the increased side chain volume of V280M, in the TM2-TM3 loop, exerts a steric repulsion against Ile-225 at the top of TM1 in the neighboring subunit. We infer that this steric repulsion would tilt the top of TM3 radially outwards against the stationary TM1 and thus provide space for TM2 to relax away from the pore axis to create an open channel. Because the transmembrane domain movements inferred from this functional analysis are consistent with the structural differences evident in the x-ray atomic structures of closed and open state bacterial pLGICs, we propyose that the model of pLGIC activation as outlined here may be broadly applicable across the eukaryotic pLGIC receptor family.

摘要

五聚体配体门控离子通道(pLGICs)介导许多生理过程,是广泛临床适应症的治疗靶点。阐明其关闭和开放状态之间的结构差异可能有助于设计改进的药物,使受体偏向于所需的构象状态。我们最近表明,两个新的发作性睡病突变 Q226E 和 V280M,在α1 甘氨酸受体中诱导自发活性。位于跨膜 (TM) 1 顶部附近的 Gln-226 与相邻亚基 TM2 顶部的 Arg-271 紧密相邻。使用突变循环分析,我们推断 Q226E 通过与 Arg-271 增强静电吸引诱导激活。这将使 TM2 的顶部向 TM1 倾斜,从而远离孔轴以打开通道。我们还得出结论,TM2-TM3 环中 V280M 的增加侧链体积对相邻亚基 TM1 顶部的 Ile-225 产生空间排斥。我们推断,这种空间排斥会使 TM3 的顶部径向向外倾斜,抵抗固定的 TM1,从而为 TM2 提供松弛远离孔轴以形成开放通道的空间。由于从这种功能分析推断出的跨膜结构域运动与封闭和开放状态细菌 pLGICs 的 x 射线原子结构中明显的结构差异一致,我们提出,这里概述的 pLGIC 激活模型可能广泛适用于真核 pLGIC 受体家族。

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