Korkosh Vyacheslav S, Tikhonov Denis B
Sechenov Institute of Evolutionary Physiology and Biochemistry, St. Petersburg, Russia.
Eur Biophys J. 2023 Feb;52(1-2):111-119. doi: 10.1007/s00249-023-01628-1. Epub 2023 Jan 23.
The gating mechanism of acid-sensitive ion channels (ASICs) remains unclear, despite the availability of atomic-scale structures in various functional states. The collapse of the acidic pocket and structural changes in the low-palm region are assumed to trigger activation. For the acidic pocket, protonation of some residues can minimize repulsion in the collapsed conformation. The relationship between low-palm rearrangements and gating is unknown. In this work, we performed a Monte Carlo energy optimization of known ASIC1a structures and determined the residue-residue interactions in different functional states. For rearrangements in the acidic pocket, our results are consistent with previously proposed mechanisms, although significant complexity was revealed for the residue-residue interactions. The data support the proposal of a gating mechanism in the low-palm region, in which residues E80 and E417 share a proton to activate the channel.
尽管已有处于各种功能状态的原子尺度结构,但酸敏感离子通道(ASICs)的门控机制仍不清楚。酸性口袋的塌陷和低掌区域的结构变化被认为会触发激活。对于酸性口袋,一些残基的质子化可以使塌陷构象中的排斥作用最小化。低掌区域重排与门控之间的关系尚不清楚。在这项工作中,我们对已知的ASIC1a结构进行了蒙特卡罗能量优化,并确定了不同功能状态下的残基-残基相互作用。对于酸性口袋中的重排,我们的结果与先前提出的机制一致,尽管残基-残基相互作用显示出显著的复杂性。数据支持低掌区域门控机制的提议,即残基E80和E417共享一个质子来激活通道。