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水在 Orai1 通道的周边 TM 界面触发孔道开放。

Water in peripheral TM-interfaces of Orai1-channels triggers pore opening.

机构信息

Institute of Biophysics, JKU Life Science Center, Johannes Kepler University Linz, Linz, Austria.

Institute for Physiology and Pathophysiology, Johannes Kepler University Linz, Linz, Austria.

出版信息

Commun Biol. 2024 Nov 16;7(1):1522. doi: 10.1038/s42003-024-07174-6.

Abstract

The activation of the Ca-channel Orai1 via the physiological activator stromal interaction molecule 1 (STIM1) requires structural rearrangements within the entire channel complex involving a series of gating checkpoints. Focusing on the gating mechanism operating along the peripheral transmembrane domain (TM) 3/TM4-interface, we report here that some charged substitutions close to the center of TM3 or TM4 lead to constitutively active Orai1 variants triggering nuclear factor of activated T-cell (NFAT) translocation into the nucleus. Molecular dynamics simulations unveil that this gain-of-function correlates with enhanced hydration at peripheral TM-interfaces, leading to increased local structural flexibility of the channel periphery and global conformational changes permitting pore opening. Our findings indicate that efficient dehydration of the peripheral TM-interfaces driven by the hydrophobic effect is critical for maintaining the closed state of Orai1. We conclude that a charge close to the center of TM3 or TM4 facilitates concomitant hydration and widening of peripheral TM interfaces to trigger constitutive Orai1 pore opening to a level comparable to or exceeding that of native activated Orai1.

摘要

钙通道 Orai1 通过生理激活剂基质相互作用分子 1(STIM1)的激活需要整个通道复合物内的结构重排,涉及一系列门控检查点。本文聚焦于沿外周跨膜域(TM)3/TM4-界面起作用的门控机制,报告了一些靠近 TM3 或 TM4 中心的带电取代导致组成型激活的 Orai1 变体触发活化 T 细胞核因子(NFAT)转位入核。分子动力学模拟揭示,这种功能获得与外周 TM 界面处增强的水合作用相关,导致通道外周局部结构灵活性增加和全局构象变化,从而允许孔道开放。我们的研究结果表明,疏水作用驱动的外周 TM 界面的有效去水作用对于维持 Orai1 的关闭状态至关重要。我们得出结论,TM3 或 TM4 中心附近的电荷有利于同时水合和扩大外周 TM 界面,从而触发组成型 Orai1 孔道开放,达到与天然激活的 Orai1 相当或超过的水平。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e17d/11569263/a335cb0a42bc/42003_2024_7174_Fig1_HTML.jpg

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