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整体蛋白在离子结合到蛋白质的局部模型中的作用:KcsA 及其锁定结合位点的半合成类似物与缬氨霉素的比较研究。

The role of bulk protein in local models of ion-binding to proteins: comparative study of KcsA, its semisynthetic analog with a locked-in binding site, and valinomycin.

机构信息

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

出版信息

Biophys J. 2011 Mar 16;100(6):1542-9. doi: 10.1016/j.bpj.2011.01.044.

Abstract

In studying ion-selectivity in biomaterials, it is common to study ion-protein interactions within a local neighborhood around the ion. This local system analysis for the S(2) site of KcsA, its semisynthetic analog, and valinomycin yields the free energy change in exchanging K(+) with Na(+) in quantitative agreement with the value obtained by considering ion-interactions with the entire system. But the energetics of ion binding in the local system and in the entire system differ significantly and lead to different conclusions regarding the physical basis of ion selectivity. For configurations sampled from an all-atom simulation, we show that the selectivity free energy can be decomposed into a contribution arising from interactions of the ion with its local neighborhood, ΔW(local), and a term arising from the field imposed on the ion and the binding site by the rest of the medium, ΔW(ϕ). The local contribution ΔW(local) is numerically close to the actual free energy difference because the field contribution is small. The field contribution is small because of cancellation of inversely related ion-medium and site-medium interactions. Our analysis presents a rigorous foundation for the numerical success of the local system analysis and shows that its implications do not always hold for the entire protein.

摘要

在研究生物材料中的离子选择性时,通常会研究离子在其周围局部环境中的蛋白质相互作用。通过对 KcsA 的 S(2)位点及其半合成类似物以及缬氨霉素的局部系统分析,得出了用整个系统考虑离子相互作用时 K(+)与 Na(+)交换的自由能变化,这与实验值定量一致。但离子在局部系统和整个系统中的结合能差异显著,这导致了对离子选择性物理基础的不同结论。对于来自全原子模拟采样的构型,我们表明,选择自由能可以分解为离子与其局部环境相互作用引起的贡献 ΔW(local),以及由介质其余部分对离子和结合位点施加的场引起的贡献 ΔW(ϕ)。局部贡献 ΔW(local)在数值上非常接近实际的自由能差,因为场贡献很小。场贡献很小是因为相反相关的离子-介质和位点-介质相互作用的抵消。我们的分析为局部系统分析的数值成功提供了严格的基础,并表明其含义并不总是适用于整个蛋白质。

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