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Molecular Dynamics Simulations of Asymmetric NaCl and KCl Solutions Separated by Phosphatidylcholine Bilayers: Potential Drops and Structural Changes Induced by Strong Na+-Lipid Interactions and Finite Size Effects

机译:磷脂酰胆碱双层分离的不对称NaCl和KCl溶液的分子动力学模拟:强Na +-脂质相互作用和有限尺寸效应引起的电位下降和结构变化

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摘要

Differences of ionic concentrations across lipid bilayers are some of the primary energetic driving forces for cellular electrophysiology. While macroscopic models of asymmetric ionic solutions are well-developed, their connection to ion, water, and lipid interactions at the atomic scale are much more poorly understood. In this study, we used molecular dynamics to examine a system of two chambers of equal ionic strength, but differing amounts of NaCl and KCl, separated by a lipid bilayer. Our expectation was that the net electrostatic potential difference between the two chambers should be small or zero. Contrary to our expectation, a large potential difference (−70 mV) slowly evolved across the two water chambers over the course of our 172-ns simulation. This potential primarily originated from strong Na+ binding to the carbonyls of the phosphatidylcholine lipids. This ion adsorption also led to significant structural and mechanical changes in the lipid bilayer. We discuss this surprising result in the context of indirect experimental evidence for Na+ interaction with bilayers as well as potential caveats in current biomembrane simulation methodology, including force-field parameters and finite size effects.
机译:跨脂质双层的离子浓度差异是细胞电生理学的一些主要能量驱动力。尽管不对称离子溶液的宏观模型已经得到很好的发展,但它们与原子级的离子,水和脂质相互作用的联系却知之甚少。在这项研究中,我们使用分子动力学研究了两个具有相同离子强度,但NaCl和KCl量不同,由脂质双层隔开的腔室的系统。我们的期望是两个腔室之间的净静电势差应该很小或为零。与我们的预期相反,在我们的172 ns模拟过程中,两个水室之间逐渐产生了较大的电位差(−70 mV)。这种潜力主要源于Na +与磷脂酰胆碱脂质的羰基的强结合。这种离子吸附还导致脂质双层中的显着结构和机械变化。我们在间接实验证据的背景下讨论了Na +与双层的相互作用以及当前生物膜模拟方法中的潜在警告,包括力场参数和有限尺寸效应,这一令人惊讶的结果。

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