膜
阳离子聚合
脂质双层
生物物理学
化学
两亲性
双层
分子
化学物理
生物膜
不对称
生物化学
有机化学
生物
聚合物
共聚物
物理
量子力学
作者
William F. Bennett,Stephen Fox,Delin Sun,C. Mark Maupin
出处
期刊:Membranes
[Multidisciplinary Digital Publishing Institute]
日期:2022-03-22
卷期号:12 (4): 350-350
被引量:4
标识
DOI:10.3390/membranes12040350
摘要
Characterizing the biophysical properties of bacterial membranes is critical for understanding the protective nature of the microbial envelope, interaction of biological membranes with exogenous materials, and designing new antibacterial agents. Presented here are molecular dynamics simulations for two cationic quaternary ammonium compounds, and the anionic and nonionic form of a fatty acid molecule interacting with a Staphylococcus aureus bacterial inner membrane. The effect of the tested materials on the properties of the model membranes are evaluated with respect to various structural properties such as the lateral pressure profile, lipid tail order parameter, and the bilayer's electrostatic potential. Conducting asymmetric loading of molecules in only one leaflet, it was observed that anionic and cationic amphiphiles have a large impact on the Staphylococcus aureus membrane's electrostatic potential and lateral pressure profile as compared to a symmetric distribution. Nonintuitively, we find that the cationic and anionic molecules induce a similar change in the electrostatic potential, which points to the complexity of membrane interfaces, and how asymmetry can induce biophysical consequences. Finally, we link changes in membrane structure to the rate of electroporation for the membranes, and again find a crucial impact of introducing asymmetry to the system. Understanding these physical mechanisms provides critical insights and viable pathways for the rational design of membrane-active molecules, where controlling the localization is key.
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