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抗菌肽与脂质双层相互作用的模拟研究。

Simulation studies of the interaction of antimicrobial peptides and lipid bilayers.

作者信息

La Rocca P, Biggin P C, Tieleman D P, Sansom M S

机构信息

Laboratory of Molecular Biophysics, The Rex Richards Building, Department of Biochemistry, University of Oxford, South Parks Road, Oxford, UK.

出版信息

Biochim Biophys Acta. 1999 Dec 15;1462(1-2):185-200. doi: 10.1016/s0005-2736(99)00206-0.

Abstract

Experimental studies of a number of antimicrobial peptides are sufficiently detailed to allow computer simulations to make a significant contribution to understanding their mechanisms of action at an atomic level. In this review we focus on simulation studies of alamethicin, melittin, dermaseptin and related antimicrobial, membrane-active peptides. All of these peptides form amphipathic alpha-helices. Simulations allow us to explore the interactions of such peptides with lipid bilayers, and to understand the effects of such interactions on the conformational dynamics of the peptides. Mean field methods employ an empirical energy function, such as a simple hydrophobicity potential, to provide an approximation to the membrane. Mean field approaches allow us to predict the optimal orientation of a peptide helix relative to a bilayer. Molecular dynamics simulations that include an atomistic model of the bilayer and surrounding solvent provide a more detailed insight into peptide-bilayer interactions. In the case of alamethicin, all-atom simulations have allowed us to explore several steps along the route from binding to the membrane surface to formation of transbilayer ion channels. For those antimicrobial peptides such as dermaseptin which prefer to remain at the surface of a bilayer, molecular dynamics simulations allow us to explore the favourable interactions between the peptide helix sidechains and the phospholipid headgroups.

摘要

许多抗菌肽的实验研究已经足够详细,能够让计算机模拟在原子水平上理解其作用机制方面做出重大贡献。在这篇综述中,我们重点关注了丙甲菌素、蜂毒素、皮肤抗菌肽及相关抗菌性膜活性肽的模拟研究。所有这些肽都形成两亲性α螺旋。模拟使我们能够探索此类肽与脂质双层的相互作用,并了解这种相互作用对肽构象动力学的影响。平均场方法采用经验能量函数,如简单的疏水性势,来近似膜的情况。平均场方法使我们能够预测肽螺旋相对于双层的最佳取向。包含双层和周围溶剂原子模型的分子动力学模拟能更详细地洞察肽与双层的相互作用。就丙甲菌素而言,全原子模拟使我们能够探索从结合到膜表面到形成跨膜离子通道这一过程中的几个步骤。对于那些倾向于留在双层表面的抗菌肽,如皮肤抗菌肽,分子动力学模拟使我们能够探索肽螺旋侧链与磷脂头部基团之间的有利相互作用。

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