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两性离子十二烷基磷酸胆碱胶束中螺旋抗菌肽ovisirin-1的分子动力学模拟:对宿主细胞毒性的见解

Molecular dynamics simulations of the helical antimicrobial peptide ovispirin-1 in a zwitterionic dodecylphosphocholine micelle: insights into host-cell toxicity.

作者信息

Khandelia Himanshu, Kaznessis Yiannis N

机构信息

Department of Chemical Engineering and Materials Science and The Digital Technology Center, University of Minnesota, 421 Washington Avenue Southeast, Minneapolis, Minnesota 55455, USA.

出版信息

J Phys Chem B. 2005 Jul 7;109(26):12990-6. doi: 10.1021/jp050162n.

Abstract

We have carried out a 40-ns all-atom molecular dynamics simulation of the helical antimicrobial peptide ovispirin-1 (OVIS) in a zwitterionic diphosphocholine (DPC) micelle. The DPC micelle serves as an economical and effective model for a cellular membrane owing to the presence of a choline headgroup, which resembles those of membrane phospholipids. OVIS, which was initially placed along a micelle diameter, diffuses out to the water-DPC interface, and the simulation stabilizes to an interface-bound steady state in 40 ns. The helical content of the peptide marginally increases in the process. The final conformation, orientation, and the structure of OVIS are in excellent agreement with the experimentally observed properties of the peptide in the presence of lipid bilayers composed of 75% zwitterionic lipids. The amphipathic peptide binds to the micelle with its hydrophobic face buried in the micellar core and the polar side chains protruding into the aqueous phase. There is overwhelming evidence that points to the significant and indispensable participation of hydrophobic residues in binding to the zwitterionic interface. The simulation starts with a conformation that is unbiased toward the final experimentally known binding state of the peptide. The ability of the model to reproduce experimental binding states despite this starting conformation is encouraging.

摘要

我们对两性离子二磷酸胆碱(DPC)胶束中的螺旋抗菌肽ovisirin-1(OVIS)进行了40纳秒的全原子分子动力学模拟。由于存在胆碱头部基团,DPC胶束作为细胞膜的一种经济有效的模型,该胆碱头部基团与膜磷脂的头部基团相似。最初沿胶束直径放置的OVIS扩散到水-DPC界面,模拟在40纳秒内稳定到界面结合稳态。在此过程中,肽的螺旋含量略有增加。OVIS的最终构象、取向和结构与在由75%两性离子脂质组成的脂质双层存在下肽的实验观察性质高度一致。两亲性肽通过其疏水面埋入胶束核心且极性侧链伸入水相的方式与胶束结合。有大量证据表明疏水残基在与两性离子界面结合中起着重要且不可或缺的作用。模拟开始时的构象对肽的最终实验已知结合状态没有偏向性。尽管起始构象如此,该模型仍能重现实验结合状态,这令人鼓舞。

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