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阻断通道:C60 几何位阻钾离子通道。

Blocking the passage: C60 geometrically clogs K(+) channels.

机构信息

†Dipartimento di Chimica "G. Ciamician", Alma Mater Studiorum - Università di Bologna, via F. Selmi 2, 40126 Bologna, Italy.

‡Dipartimento di Biotecnologie Mediche, Università di Siena, viale M. Bracci 12, I-53100 Siena, Italy.

出版信息

ACS Nano. 2015 May 26;9(5):4827-34. doi: 10.1021/nn506164s. Epub 2015 Apr 20.

Abstract

Classical molecular dynamics (MD) simulations combined with docking calculations, potential of mean force estimates with the umbrella sampling method, and molecular mechanic/Poisson-Boltzmann surface area (MM-PBSA) energy calculations reveal that C60 may block K(+) channels with two mechanisms: a low affinity blockage from the extracellular side, and an open-channel block from the intracellular side. The presence of a low affinity binding-site at the extracellular entrance of the channel is in agreement with the experimental results showing a fast and reversible block without use-dependence, from the extracellular compartment. Our simulation protocol suggests the existence of another binding site for C60 located in the channel cavity at the intracellular entrance of the selectivity filter. The escape barrier from this binding site is ∼21 kcal/mol making the corresponding kinetic rate of the order of minutes. The analysis of the change in solvent accessible surface area upon C60 binding shows that binding at this site is governed purely by shape complementarity, and that the molecular determinants of binding are conserved in the entire family of K(+) channels. The presence of this high-affinity binding site conserved among different K(+) channels may have serious implications for the toxicity of carbon nanomaterials.

摘要

经典分子动力学 (MD) 模拟结合对接计算、平均力势估计的伞状采样法以及分子力学/泊松-玻尔兹曼表面积 (MM-PBSA) 能量计算揭示,C60 可能通过两种机制阻断 K(+) 通道:从细胞外侧面的低亲和力阻断,以及从细胞内侧面的开放通道阻断。通道外入口处存在低亲和力结合位点与实验结果一致,表明存在快速且可逆的无使用依赖性阻断,来自细胞外隔室。我们的模拟方案表明,在选择性过滤器的细胞内入口处的通道腔中存在另一个 C60 的结合位点。从该结合位点逃逸的势垒约为 21 kcal/mol,相应的动力学速率约为分钟级。对 C60 结合时溶剂可及表面积变化的分析表明,该位点的结合完全由形状互补性决定,并且结合的分子决定因素在整个 K(+) 通道家族中是保守的。在不同的 K(+) 通道中存在这种高亲和力结合位点可能对碳纳米材料的毒性有严重影响。

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