阳离子聚合
肽
还原(数学)
化学
膜流动性
生物物理学
膜
生物
生物化学
高分子化学
几何学
数学
作者
Cheng Xu,Chiyun Ma,Yuhao Zhang,Wanting Zhang,Junsheng Zhang,Guang Li,Menghua Xiong,Yushuang Wei,Kai Yang,Bing Yuan
标识
DOI:10.1021/acs.jpclett.5c00451
摘要
Antimicrobial peptide (AMP)-based treatments have exhibited significant therapeutic potential with anti-inflammatory, anticancer, and immunomodulatory activities. While most AMPs exert effects by permeabilizing bacterial cell membranes through poration and hydrolysis, recent findings have revealed a distinct membrane interaction mechanism employed by L10-MMBen, a cationic amphiphilic helical peptide with potent antimicrobial efficacy and moderate cytotoxicity. Herein, we elucidate the ability of L10-MMBen to remodel bacterial cell membranes into double-layered structures rather than inducing permeabilization. Quantitative real-time giant unilamellar vesicle assays, atomic force microscopy characterizations, and simulations demonstrate that L10-MMBen selectively adsorbs onto phosphatidylglycerol-containing membranes with shallow insertion at approximately 0.6 nm; once reaching a threshold local concentration (peptide-to-lipid ratio of 1:20), it extracts lipids from the bilayer and facilitates the formation of double-layered peptide-membrane composite structures. Single-molecule tracking analysis indicates that peptide-induced molecular reorganization significantly reduces membrane fluidity, impeding lipid lateral diffusion from 2.8 μm2/s to an immobile state. These findings may contribute to the design of innovative membrane-active agents for biomedical applications.
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