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模拟革兰氏阴性菌外膜:一种粗粒度模型。

Simulating Gram-Negative Bacterial Outer Membrane: A Coarse Grain Model.

作者信息

Ma Huilin, Irudayanathan Flaviyan Jerome, Jiang Wenjuan, Nangia Shikha

机构信息

Department of Biomedical and Chemical Engineering, Syracuse University , Syracuse, New York 13244, United States.

出版信息

J Phys Chem B. 2015 Nov 19;119(46):14668-82. doi: 10.1021/acs.jpcb.5b07122. Epub 2015 Sep 25.

Abstract

The cell envelope of Gram-negative bacteria contains a lipopolysaccharide (LPS) rich outer membrane that acts as the first line of defense for bacterial cells in adverse physical and chemical environments. The LPS macromolecule has a negatively charged oligosaccharide domain that acts as an ionic brush, limiting the permeability of charged chemical agents through the membrane. Besides the LPS, the outer membrane has radially extending O-antigen polysaccharide chains and β-barrel membrane proteins that make the bacterial membrane physiologically unique compared to phospholipid cell membranes. Elucidating the interplay of these contributing macromolecular components and their role in the integrity of the bacterial outer membrane remains a challenge. To bridge the gap in our current understanding of the Gram-negative bacterial membrane, we have developed a coarse grained force field for outer membrane that is computationally affordable for simulating dynamical process over physiologically relevant time scales. The force field was benchmarked against available experimental and atomistic simulations data for properties such as membrane thickness, density profiles of the residues, area per lipid, gel to liquid-crystalline phase transition temperatures, and order parameters. More than 17 membrane compositions were studied with a combined simulation time of over 100 μs. A comparison of simulated structural and dynamical properties with corresponding experimental data shows that the developed force field reproduces the overall physiology of LPS rich membranes. The affordability of the developed model for long time scale simulations can be instrumental in determining the mechanistic aspects of the antimicrobial action of chemical agents as well as assist in designing antimicrobial peptides with enhanced outer membrane permeation properties.

摘要

革兰氏阴性菌的细胞包膜含有富含脂多糖(LPS)的外膜,该外膜在不利的物理和化学环境中作为细菌细胞的第一道防线。LPS大分子具有带负电荷的寡糖结构域,其作为离子刷,限制带电化学试剂通过膜的渗透性。除了LPS,外膜还有径向延伸的O抗原多糖链和β桶状膜蛋白,这使得细菌膜在生理上与磷脂细胞膜不同。阐明这些起作用的大分子成分之间的相互作用及其在细菌外膜完整性中的作用仍然是一个挑战。为了弥合我们目前对革兰氏阴性菌膜理解上的差距,我们开发了一种用于外膜的粗粒度力场,该力场在计算上能够负担得起,可用于模拟生理相关时间尺度上的动态过程。该力场根据可用的实验和原子模拟数据进行了基准测试,这些数据涉及膜厚度、残基密度分布、每脂质面积、凝胶到液晶相转变温度和序参量等性质。研究了超过17种膜组成,总模拟时间超过100微秒。将模拟的结构和动态性质与相应的实验数据进行比较表明,所开发的力场再现了富含LPS的膜的整体生理学特性。所开发模型在长时间尺度模拟方面的可承受性有助于确定化学试剂抗菌作用的机制方面,以及协助设计具有增强外膜渗透特性的抗菌肽。

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