Proposed dual membrane contact with full-length Osh4

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Sharmistha Karmakar , Jeffery B. Klauda
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Abstract

Membrane contacts sites (MCSs) play important roles in lipid trafficking across cellular compartments and maintain the widespread structural diversity of organelles. We have utilized microsecond long all-atom (AA) molecular dynamics (MD) simulations and enhanced sampling techniques to unravel the MCS structure targeting by yeast oxysterol binding protein (Osh4) in an environment that mimics the interface of membranes with an increased proportion of anionic lipids using CHARMM36m forcefield with additional CUFIX parameters for lipid-protein electrostatic interactions. In a dual-membrane environment, unbiased MD simulations show that Osh4 briefly interacts with both membranes, before aligning itself with a single membrane, adopting a β-crease-bound conformation similar to observations in a single-membrane scenario. Targeted molecular dynamics simulations followed by microsecond-long AA MD simulations have revealed a distinctive dual-membrane bound state of Osh4 at MCS, wherein the protein interacts with the lower membrane via the β-crease surface, featuring its PHE-239 residue positioned below the phosphate plane of membrane, while concurrently establishing contact with the opposite membrane through the extended α6-α7 region. Osh4 maintains these dual membrane contacts simultaneously over the course of microsecond-long MD simulations. Moreover, binding energy calculations highlighted the essential roles played by the phenylalanine loop and the α6 helix in dynamically stabilizing dual-membrane bound state of Osh4 at MCS. Our computational findings were corroborated through frequency of contact analysis, showcasing excellent agreement with past experimental cross-linking data. Our computational study reveals a dual-membrane bound conformation of Osh4, providing insights into protein-membrane interactions at membrane contact sites and their relevance to lipid transfer processes.

Abstract Image

建议与全长 Osh4 进行双膜接触。
膜接触位点(MCS)在细胞间隙的脂质运输中发挥着重要作用,并维持着细胞器广泛的结构多样性。我们利用微秒级长的全原子(AA)分子动力学(MD)模拟和增强采样技术,在模拟阴离子脂质比例增加的膜界面的环境中,使用CHARMM36m力场和额外的CUFIX参数进行脂质-蛋白质静电相互作用,揭示了酵母氧杂环醇结合蛋白(Osh4)靶向的MCS结构。在双膜环境中,无偏的 MD 模拟显示,Osh4 会短暂地与两层膜相互作用,然后将自身与单层膜对齐,采用与单层膜观察结果相似的 β-嵴结合构象。靶向分子动力学模拟和长达微秒的 AA MD 模拟揭示了 Osh4 在 MCS 上独特的双膜结合态,在这种状态下,蛋白质通过 β-crease 表面与下层膜相互作用,其 PHE-239 残基位于膜磷酸盐平面的下方,同时通过扩展的 α6-α7 区域与对侧膜建立联系。在长达微秒的 MD 模拟过程中,Osh4 同时保持着这两种膜接触。此外,结合能计算强调了苯丙氨酸环和α6螺旋在动态稳定Osh4在MCS的双膜结合态方面所起的重要作用。我们的计算发现通过接触频率分析得到了证实,与以往的交联实验数据非常吻合。我们的计算研究揭示了 Osh4 的双膜结合构象,为了解膜接触位点的蛋白质膜相互作用及其与脂质转移过程的相关性提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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