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Peptide nanopores and lipid bilayers: interactions by coarse-grained molecular-dynamics simulations.

机译:肽纳米孔和脂质双层:粗粒分子动力学模拟的相互作用。

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摘要

A set of 49 protein nanopore-lipid bilayer systems was explored by means of coarse-grained molecular-dynamics simulations to study the interactions between nanopores and the lipid bilayers in which they are embedded. The seven nanopore species investigated represent the two main structural classes of membrane proteins (alpha-helical and beta-barrel), and the seven different bilayer systems range in thickness from approximately 28 to approximately 43 A. The study focuses on the local effects of hydrophobic mismatch between the nanopore and the lipid bilayer. The effects of nanopore insertion on lipid bilayer thickness, the dependence between hydrophobic thickness and the observed nanopore tilt angle, and the local distribution of lipid types around a nanopore in mixed-lipid bilayers are all analyzed. Different behavior for nanopores of similar hydrophobic length but different geometry is observed. The local lipid bilayer perturbation caused by the inserted nanopores suggests possible mechanisms for both lipid bilayer-induced protein sorting and protein-induced lipid sorting. A correlation between smaller lipid bilayer thickness (larger hydrophobic mismatch) and larger nanopore tilt angle is observed and, in the case of larger hydrophobic mismatches, the simulated tilt angle distribution seems to broaden. Furthermore, both nanopore size and key residue types (e.g., tryptophan) seem to influence the level of protein tilt, emphasizing the reciprocal nature of nanopore-lipid bilayer interactions.
机译:通过粗粒度分子动力学模拟探索了一组49个蛋白质纳米孔-脂质双层系统,以研究纳米孔与其中嵌入的脂质双层之间的相互作用。研究的七个纳米孔物种代表了膜蛋白的两个主要结构类别(α-螺旋和β-桶形),七个不同的双层系统的厚度范围从大约28到大约43A。该研究集中于疏水性的局部作用纳米孔和脂质双层之间的错配。分析了纳米孔插入对脂质双层厚度,疏水性厚度和观察到的纳米孔倾斜角之间的依赖性以及混合脂质双层中纳米孔周围脂质类型的局部分布的影响。对于疏水长度相似但几何形状不同的纳米孔,观察到了不同的行为。由插入的纳米孔引起的局部脂质双层扰动提示脂质双层诱导的蛋白分选和蛋白质诱导的脂质分选的可能机制。观察到较小的脂质双层厚度(较大的疏水错配)和较大的纳米孔倾斜角之间的相关性,并且在较大的疏水错配的情况下,模拟的倾斜角分布似乎变宽。此外,纳米孔的大小和关键残基类型(例如色氨酸)似乎都影响蛋白质倾斜的水平,强调了纳米孔-脂质双层相互作用的相互性质。

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