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哺乳动物抗菌肽天蚕素P1在磷脂膜中的结构与取向

Structure and orientation of the mammalian antibacterial peptide cecropin P1 within phospholipid membranes.

作者信息

Gazit E, Miller I R, Biggin P C, Sansom M S, Shai Y

机构信息

Department of Membrane Research and Biophysics, Weizmann Institute of Science, Rehovot, Israel.

出版信息

J Mol Biol. 1996 May 24;258(5):860-70. doi: 10.1006/jmbi.1996.0293.

Abstract

Cecropins are positively charged antibacterial peptides that act by permeating the membrane of susceptible bacteria. To gain insight into the mechanism of membrane permeation, the secondary structure and the orientation within phospholipid membranes of the mammalian cecropin P1 (CecP) was studied using attenuated total reflectance Fourier-transform infrared (ATR-FTIR) spectroscopy and molecular dynamics simulations. The shape and frequency of the amide I and II absorption peaks of CecP within acidic PE/PG multibilayers (phosphatidylethanolamine/phosphatidylglycerol) in a 7:3 (w/w) ratio (a phospholipid composition similar to that of many bacterial membranes), indicated that the peptide is predominantly alpha-helical. Polarized ATR-FTIR spectroscopy was used to determine the orientation of the peptide relative to the bilayer normal of phospholipid multibilayers. The ATR dichroic ratio of the amide I band of CecP peptide reconstituted into oriented PE/PG phospholipid membranes indicated that the peptide is preferentially oriented nearly parallel to the surface of the lipid membranes. A similar secondary structure and orientation were found when zwitterionic phosphatidylcholine phospholipids were used. The incorporation of CecP did not significantly change the order parameters of the acyl chains of the multibilayer, further suggesting that CecP does not penetrate the hydrocarbon core of the membranes. Molecular dynamics simulations were used to gain insight into possible effects of transmembrane potential on the orientation of CecP relative to the membrane. The simulations appear to confirm that CecP adopts an orientation parallel to the membrane surface and does not insert into the bilayer in response to a cis positive transmembrane voltage difference. Taken together, the results further support a "carpet-like" mechanism, rather than the formation of transmembrane pores, as the mode of action of CecP. According to this model, formation of a layer of peptide monomers on the membrane surface destablizes the phospholipid packing of the membrane leading to its eventual disintegration.

摘要

天蚕素是带正电荷的抗菌肽,其作用方式是穿透敏感细菌的细胞膜。为深入了解膜渗透机制,利用衰减全反射傅里叶变换红外光谱(ATR - FTIR)和分子动力学模拟研究了哺乳动物天蚕素P1(CecP)在磷脂膜中的二级结构和取向。在7:3(w/w)比例的酸性PE/PG多层膜(磷脂酰乙醇胺/磷脂酰甘油,一种与许多细菌膜磷脂组成相似的磷脂成分)中,CecP的酰胺I和II吸收峰的形状和频率表明该肽主要为α - 螺旋结构。使用偏振ATR - FTIR光谱来确定该肽相对于磷脂多层膜双层法线的取向。重构到取向的PE/PG磷脂膜中的CecP肽的酰胺I带的ATR二向色比表明该肽优先取向为几乎平行于脂质膜表面。当使用两性离子磷脂酰胆碱磷脂时,发现了类似的二级结构和取向。CecP的掺入并没有显著改变多层膜酰基链的序参数,这进一步表明CecP不会穿透膜的烃核。分子动力学模拟用于深入了解跨膜电位对CecP相对于膜取向的可能影响。模拟似乎证实CecP采取平行于膜表面的取向,并且不会因顺式正跨膜电压差而插入双层膜中。综上所述,这些结果进一步支持了“地毯样”机制,而不是跨膜孔的形成,作为CecP的作用方式。根据该模型,在膜表面形成一层肽单体使膜的磷脂堆积不稳定,导致其最终解体。

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