A flexible GAS belt responds to pore mutations changing the ion selectivity of proton-gated channels.

The Journal of General Physiology Pub Date : 2022-01-03 Epub Date: 2021-11-12 DOI:10.1085/jgp.202112978
Zhuyuan Chen, Sheng Lin, Tianze Xie, Jin-Ming Lin, Cecilia M Canessa
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引用次数: 3

Abstract

Proton-gated ion channels conduct mainly Na+ to induce postsynaptic membrane depolarization. Finding the determinants of ion selectivity requires knowledge of the pore structure in the open conformation, but such information is not yet available. Here, the open conformation of the hASIC1a channel was computationally modeled, and functional effects of pore mutations were analyzed in light of the predicted structures. The open pore structure shows two constrictions of similar diameter formed by the backbone of the GAS belt and, right beneath it, by the side chains of H28 from the reentrant loop. Models of nonselective mutant channels, but not those that maintain ion selectivity, predict enlargement of the GAS belt, suggesting that this motif is quite flexible and that the loss of stabilizing interactions in the central pore leads to changes in size/shape of the belt. Our results are consistent with the "close-fit" mechanism governing selectivity of hASIC1a, wherein the backbone of the GAS substitutes at least part of the hydration shell of a permeant ion to enable crossing the pore constriction.

柔性GAS带响应改变质子门控通道离子选择性的孔隙突变。
质子门控离子通道主要传导Na+,诱导突触后膜去极化。发现离子选择性的决定因素需要了解开放构象中的孔隙结构,但这类信息尚未获得。本文对hASIC1a通道的开放构象进行了计算建模,并根据预测的结构分析了孔隙突变的功能影响。开放孔隙结构显示两个直径相似的收缩,由GAS带的主干和其下的H28侧链形成。非选择性突变通道的模型,而不是那些保持离子选择性的模型,预测了GAS带的扩大,这表明该基序是相当灵活的,并且中心孔中稳定相互作用的丧失导致了带的大小/形状的变化。我们的结果与控制hASIC1a选择性的“紧密配合”机制一致,其中GAS的主干取代了渗透离子的水化壳的至少一部分,以使其能够穿过孔隙收缩。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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