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本文引用的文献

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All-atom empirical potential for molecular modeling and dynamics studies of proteins.蛋白质分子建模和动力学研究的全原子经验势。
J Phys Chem B. 1998 Apr 30;102(18):3586-616. doi: 10.1021/jp973084f.
2
Role of attractive methane-water interactions in the potential of mean force between methane molecules in water.有吸引力的甲烷-水相互作用在水中甲烷分子间平均力势中的作用。
J Chem Phys. 2008 Jun 28;128(24):244512. doi: 10.1063/1.2944252.
3
Computation of binding free energy with molecular dynamics and grand canonical Monte Carlo simulations.利用分子动力学和巨正则蒙特卡罗模拟计算结合自由能。
J Chem Phys. 2008 Mar 21;128(11):115103. doi: 10.1063/1.2842080.
4
The predominant role of coordination number in potassium channel selectivity.配位数在钾通道选择性中的主要作用。
Biophys J. 2007 Oct 15;93(8):2635-43. doi: 10.1529/biophysj.107.108167. Epub 2007 Jun 15.
5
Selectivity in K+ channels is due to topological control of the permeant ion's coordinated state.钾离子通道的选择性源于对通透离子配位状态的拓扑控制。
Proc Natl Acad Sci U S A. 2007 May 29;104(22):9260-5. doi: 10.1073/pnas.0700554104. Epub 2007 May 22.
6
Tuning ion coordination architectures to enable selective partitioning.调整离子配位结构以实现选择性分配。
Biophys J. 2007 Aug 15;93(4):1093-9. doi: 10.1529/biophysj.107.107482. Epub 2007 May 18.
7
Importance of hydration and dynamics on the selectivity of the KcsA and NaK channels.水合作用和动力学对KcsA通道和NaK通道选择性的重要性。
J Gen Physiol. 2007 Feb;129(2):135-43. doi: 10.1085/jgp.200609633. Epub 2007 Jan 16.
8
Role of fluctuations in a snug-fit mechanism of KcsA channel selectivity.波动在KcsA通道选择性紧密适配机制中的作用。
J Chem Phys. 2006 Jul 14;125(2):24701. doi: 10.1063/1.2205853.
9
Ion selectivity in potassium channels.钾通道中的离子选择性
Biophys Chem. 2006 Dec 1;124(3):279-91. doi: 10.1016/j.bpc.2006.05.033. Epub 2006 Jun 18.
10
Control of ion selectivity in potassium channels by electrostatic and dynamic properties of carbonyl ligands.通过羰基配体的静电和动态特性控制钾通道中的离子选择性
Nature. 2004 Oct 14;431(7010):830-4. doi: 10.1038/nature02943.

从离子结合位点角度看KcsA钾通道中的离子选择性

Ion selectivity in the KcsA potassium channel from the perspective of the ion binding site.

作者信息

Dixit Purushottam D, Merchant Safir, Asthagiri D

机构信息

Department of Chemical and Biomolecular Engineering, The Johns Hopkins University, Baltimore, Maryland, USA.

出版信息

Biophys J. 2009 Mar 18;96(6):2138-45. doi: 10.1016/j.bpj.2008.12.3917.

DOI:10.1016/j.bpj.2008.12.3917
PMID:19289040
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2717285/
Abstract

To understand the thermodynamic exclusion of Na(+) relative to K(+) from the S(2) site of the selectivity filter, the distribution P(X)(epsilon) (X = K(+) or Na(+)) of the binding energy (epsilon) of the ion with the channel is analyzed using the potential distribution theorem. By expressing the excess chemical potential of the ion as a sum of mean-field epsilon and fluctuation mu(flux,X)(ex) contributions, we find that selectivity arises from a higher value of mu(flux,Na(+))(ex) relative to mu(flux,K(+))(ex). To understand the role of site-site interactions on mu(ex)(flux,X), we decompose P(X)(epsilon) into n-dependent distributions, where n is the number of ion-coordinating ligands within a distance lambda from the ion. For lambda comparable to typical ion-oxygen bond distances, investigations building on this multistate model reveal an inverse correlation between favorable ion-site and site-site interactions: the ion-coordination states that most influence the thermodynamics of the ion are also those for which the binding site is energetically less strained and vice versa. This correlation motivates understanding entropic effects in ion binding to the site and leads to the finding that mu(flux,X)(ex) is directly proportional to the average site-site interaction energy, a quantity that is sensitive to the chemical type of the ligand coordinating the ion. Increasing the coordination number around Na(+) only partially accounts for the observed magnitude of selectivity; acknowledging the chemical type of the ion-coordinating ligand is essential.

摘要

为了理解相对于钾离子,钠离子在选择性过滤器S(2)位点的热力学排斥作用,我们使用势分布定理分析了离子与通道结合能(ε)的分布P(X)(ε)(X = K(+)或Na(+))。通过将离子的过量化学势表示为平均场ε和涨落μ(flux,X)(ex)贡献的总和,我们发现选择性源于μ(flux,Na(+))(ex)相对于μ(flux,K(+))(ex)具有更高的值。为了理解位点间相互作用对μ(ex)(flux,X)的作用,我们将P(X)(ε)分解为与n相关的分布,其中n是距离离子λ范围内离子配位配体的数量。对于与典型离子-氧键距离相当的λ,基于此多态模型的研究揭示了有利的离子-位点和位点-位点相互作用之间的负相关关系:对离子热力学影响最大的离子配位状态也是结合位点能量应变较小的状态,反之亦然。这种相关性促使我们理解离子在位点结合中的熵效应,并得出μ(flux,X)(ex)与平均位点-位点相互作用能成正比的结论,平均位点-位点相互作用能是一个对配位离子的配体化学类型敏感的量。增加钠离子周围的配位数仅部分解释了观察到的选择性大小;认识到离子配位配体的化学类型至关重要。