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一种用于研究 GIRK2 在复杂状态下非平衡环境响应的双层膜。

A double bilayer to study the nonequilibrium environmental response of GIRK2 in complex states.

机构信息

State Key Laboratory of Molecular Reaction Dynamics, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, China.

出版信息

Phys Chem Chem Phys. 2021 Jul 28;23(29):15784-15795. doi: 10.1039/d1cp01785c.

DOI:10.1039/d1cp01785c
PMID:34286758
Abstract

G protein-gated inwardly rectifying potassium (GIRK) channels play essential roles in electrical signaling in neurons and muscle cells. Nonequilibrium environments provide crucial driving forces behind many cellular events. Here, we apply the antiparallel alignment double bilayer model to study GIRK2 in response to the time-dependent membrane potential. Using molecular dynamics and umbrella sampling, we examined the time-dependent environmental impact on the ion conduction, energy basis, and primary motions of GIRK2 in different complex states with phosphatidylinositol-4,5-bisphosphate (PIP2) and G-protein βγ subunits (Gβγ). The antiparallel alignment double bilayer model enables us to study the transport performance in inward and outward K+ and mixed K+ and Na+. We obtained the recoverable discharge process of GIRK2 complexed with both PIP2 and Gβγ, compared with occasional conduction under PIP2-only regulation. Calculations of potential of mean force suggest different regulation by the helix bundle crossing (HBC) gate and G-loop gate regarding different complex states and under a membrane potential. In a nonequilibrium environment, distinct functional rocking motions of GIRK2 were identified under strengthened correlations between the transmembrane helices and downstream cytoplasmic domains with binding of PIP2, cations, and Gβγ. The findings suggest the potential domain motions and dynamics associated with a nonequilibrium environment and highlight the application of the antiparallel alignment double bilayer model to investigate factors in an asymmetric environment.

摘要

G 蛋白门控内向整流钾 (GIRK) 通道在神经元和肌肉细胞的电信号中发挥着重要作用。非平衡环境为许多细胞事件提供了关键驱动力。在这里,我们应用反平行排列双层模型来研究 GIRK2 对时变膜电位的响应。通过分子动力学和伞状采样,我们研究了时变环境对不同复杂状态下 GIRK2 的离子传导、能量基础和主要运动的影响,这些复杂状态包括与磷脂酰肌醇-4,5-二磷酸 (PIP2) 和 G 蛋白βγ亚基 (Gβγ) 的相互作用。反平行排列双层模型使我们能够研究内向和外向 K+以及 K+和 Na+混合的传输性能。与仅由 PIP2 调节时的偶尔传导相比,我们获得了 GIRK2 与 PIP2 和 Gβγ 复合物的可恢复放电过程。平均力势的计算表明,对于不同的复杂状态和膜电位,HBC 门和 G 环门的不同调节方式。在非平衡环境中,与 PIP2、阳离子和 Gβγ结合时,跨膜螺旋和下游细胞质域之间的相关性增强,鉴定出 GIRK2 的不同功能摇摆运动。这些发现表明与非平衡环境相关的潜在域运动和动力学,并强调了反平行排列双层模型在研究不对称环境中因素的应用。

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Phys Chem Chem Phys. 2021 Jul 28;23(29):15784-15795. doi: 10.1039/d1cp01785c.
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