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β-折叠肽如何既能成为强效抗菌剂又具有有害毒性?在胶束中对防御素-1进行分子动力学模拟。

How can a beta-sheet peptide be both a potent antimicrobial and harmfully toxic? Molecular dynamics simulations of protegrin-1 in micelles.

作者信息

Langham Allison A, Khandelia Himanshu, Kaznessis Yiannis N

机构信息

Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, MN 55455, USA.

出版信息

Biopolymers. 2006;84(2):219-31. doi: 10.1002/bip.20397.

DOI:10.1002/bip.20397
PMID:16235232
Abstract

In this work, the naturally occurring beta-hairpin antimicrobial peptide protegrin-1 (PG-1) is studied by molecular dynamics simulation in all-atom sodium dodecylsulfate and dodecylphosphocholine micelles. These simulations provide a high-resolution picture of the interactions between the peptide and simple models of bacterial and mammalian membranes. Both micelles show significant disruption, as is expected for a peptide that is both active against bacteria and toxic to host cells. There is, however, clear differentiation between the behavior in SDS versus DPC, which suggests different mechanisms of interaction for PG-1 with mammalian and bacterial membranes. Specifically, the equilibrium orientation of the peptide relative to SDS is a mirror image of its position relative to DPC. In both systems, the arginine residues of PG-1 strongly interact with the head groups of the micelles. In DPC, the peptide prefers a location closer to the core of the micelle with Phe12, Val14, and Val16 imbedded in the core and the other side of the hairpin, which includes Leu5 and Tyr7, located closer to the surface of the micelle. In SDS, the peptide prefers a location at the micelle-water interface. The peptide position is reversed, with Leu5 and Cys6 imbedded furthest in the micelle core and Phe12, Val14, and Val16 on the surface of the micelle. We discuss the implications of these results with respect to activity and toxicity.

摘要

在这项工作中,通过全原子十二烷基硫酸钠和十二烷基磷酰胆碱胶束中的分子动力学模拟,对天然存在的β-发夹抗菌肽protegrin-1(PG-1)进行了研究。这些模拟提供了该肽与细菌和哺乳动物膜的简单模型之间相互作用的高分辨率图像。两种胶束均显示出显著的破坏,这对于一种对细菌有活性且对宿主细胞有毒性的肽来说是预期的。然而,SDS与DPC中的行为存在明显差异,这表明PG-1与哺乳动物和细菌膜的相互作用机制不同。具体而言,肽相对于SDS的平衡取向是其相对于DPC位置的镜像。在两个系统中,PG-1的精氨酸残基都与胶束的头部基团强烈相互作用。在DPC中,该肽更喜欢靠近胶束核心的位置,其中Phe12、Val14和Val16嵌入核心,而发夹的另一侧(包括Leu5和Tyr7)更靠近胶束表面。在SDS中,该肽更喜欢位于胶束-水界面处。肽的位置相反,Leu5和Cys6嵌入胶束核心最深,而Phe12、Val14和Val16在胶束表面。我们讨论了这些结果对活性和毒性的影响。

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