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首页> 外文期刊>The Journal of Chemical Physics >Electroelastic coupling between membrane surface fluctuations and membrane-embedded charges: Continuum multidielectric treatment
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Electroelastic coupling between membrane surface fluctuations and membrane-embedded charges: Continuum multidielectric treatment

机译:膜表面波动与膜嵌入电荷之间的电弹性耦合:连续多介质处理

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The coupling of electric fields and charges with membrane-water interfacial fluctuations affects membrane electroporation, ionic conductance, and voltage gating. A modified continuum model is introduced to study charge interaction with membrane-water interfacial fluctuations in multidielectric environments. By surrounding a point charge with a low dielectric sphere, the linear Poisson-Boltzmann equation is directly solved by calculating the reaction field potential via a method that eliminates singularity contributions. This allows treatment of charges located at dielectric boundaries. Two complementary mechanisms governing charge-fluctuation interactions are considered: (1) electroelastic deformation (EED), treating the membrane as an elastic slab (smectic bilayer model), and (2) electrohydrophobic solvation (EHS), accounting for water penetration into the membrane's hydrophobic core. EED often leads to large membrane thickness perturbations, far larger than those consistent with elastic model descriptions [M. B. Partenskii, G. V. Miloshevsky, and P. C. Jordan, Isr. J. Chem. 47, 385 (2007)]. We argue that a switch from EED to EHS can be energetically advantageous at intermediate perturbation amplitudes. Both perturbation mechanisms are simulated by introducing adjustable shapes optimized by the kinetic Monte Carlo reaction path following approach [G. V. Miloshevsky and P. C. Jordan, J. Chem. Phys. 122, 214901 (2005)]. The resulting energy profiles agree with those of recent atomistic molecular dynamics studies on translating a charged residue across a lipid bilayer [S. Dorairaj and T. W. Allen, Proc. Natl. Acad. Sci. U.S.A. 104, 4943 (2007)].
机译:电场和电荷与膜-水界面波动的耦合会影响膜电穿孔,离子电导和电压门控。引入了改进的连续模型,以研究多介电环境中电荷与膜-水界面波动的相互作用。通过用低介电球包围点电荷,可以通过消除奇异性贡献的方法计算反应场电势来直接求解线性Poisson-Boltzmann方程。这允许处理位于介电边界处的电荷。考虑了两个控制电荷-波动相互作用的互补机制:(1)电弹性变形(EED),将膜作为弹性平板处理(双分子层模型),以及(2)电疏水性溶剂化(EHS),这说明水渗透到膜的内部疏水核。 EED通常会导致较大的膜厚扰动,远大于与弹性模型描述一致的扰动[M. B.Partenskii,G.V.Miloshevsky和P.C.Jordan,Isr。 J.化学47,385(2007)]。我们认为,从EED切换到EHS可以在中等的扰动幅度上在能源方面具有优势。两种扰动机制都是通过引入可调整的形状来模拟的,该形状是通过遵循方法[G. V. Miloshevsky和P.C. Jordan,J。Chem。物理122,214901(2005)]。产生的能量分布与最近的原子分子动力学研究相一致,这些研究将带电残基转化通过脂质双层[S. Dorairaj和T. W. Allen,Proc。 Natl。学院科学U.S.A. 104,4943(2007)]。

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