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电子极化对阴离子与氯离子泵浦视紫红质结合的影响。

Influence of electronic polarization on the binding of anions to a chloride-pumping rhodopsin.

机构信息

Clarendon Laboratory, Department of Physics, University of Oxford, Oxford, UK; Department of Biochemistry, University of Oxford, Oxford, UK.

Institute of Organic Chemistry and Biochemistry, Czech Academy of Sciences, Prague 6, Czech Republic.

出版信息

Biophys J. 2023 Apr 18;122(8):1548-1556. doi: 10.1016/j.bpj.2023.03.026. Epub 2023 Mar 21.

Abstract

The functional properties of some biological ion channels and membrane transport proteins are proposed to exploit anion-hydrophobic interactions. Here, we investigate a chloride-pumping rhodopsin as an example of a membrane protein known to contain a defined anion binding site composed predominantly of hydrophobic residues. Using molecular dynamics simulations, we explore Cl- binding to this hydrophobic site and compare the dynamics arising when electronic polarization is neglected (CHARMM36 [c36] fixed-charge force field), included implicitly (via the prosECCo force field), or included explicitly (through the polarizable force field, AMOEBA). Free energy landscapes of Cl- moving out of the binding site and into bulk solution demonstrate that the inclusion of polarization results in stronger ion binding and a second metastable binding site in chloride-pumping rhodopsin. Simulations focused on this hydrophobic binding site also indicate longer binding durations and closer ion proximity when polarization is included. Furthermore, simulations reveal that Cl- within this binding site interacts with an adjacent loop to facilitate rebinding events that are not observed when polarization is neglected. These results demonstrate how the inclusion of polarization can influence the behavior of anions within protein binding sites and can yield results comparable with more accurate and computationally demanding methods.

摘要

一些生物离子通道和膜转运蛋白的功能特性被认为是利用阴离子疏水力。在这里,我们以一种已知含有特定阴离子结合位点的氯离子泵浦视紫红质为例,该结合位点主要由疏水性残基组成。我们使用分子动力学模拟研究了 Cl-与该疏水性结合位点的结合情况,并比较了当忽略电子极化(CHARMM36 [c36] 固定电荷力场)、隐式包含(通过 prosECCo 力场)或显式包含(通过可极化力场,AMOEBA)时产生的动力学。Cl-从结合位点移动到本体溶液的自由能景观表明,包含极化会导致更强的离子结合和氯离子泵浦视紫红质中的第二个亚稳定结合位点。聚焦于该疏水性结合位点的模拟还表明,当包含极化时,结合持续时间更长,离子更接近。此外,模拟表明,该结合位点内的 Cl-与相邻环相互作用,促进了重新结合事件,而当忽略极化时则观察不到这些事件。这些结果表明,极化的包含如何影响蛋白质结合位点内阴离子的行为,并能产生与更准确和计算要求更高的方法相当的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1983/10147828/994eb24e3b9f/gr1.jpg

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