论文标题
使用全原子分子动力学的局部应力对细菌外膜精确建模的影响
Effect of local stress on accurate modeling of bacterial outer membranes using all-atom molecular dynamics
论文作者
论文摘要
生物膜是生物体的基本组成部分,它们在生存中起着不可否认的作用。分子动力学(MD)是研究分子和原子量表上生物膜的必要计算工具。生物膜的MD模拟的现状研究纳米尺寸的膜贴在周期性边界条件下定期扩展(PBC)。在自然界中,膜通常由两层中的不同脂质组成(称为小叶)。这种组成不对称在周期性约束的膜上施加了两个传单之间脂质数的固定比率,需要适当地设置。定义小叶脂质比的广泛采用的方法缺乏对每个传单的机械张力的控制,这可能会严重影响研究结果。在这项研究中,我们研究了膜建造方案的作用,以及由此产生的初始应力状态对小分子和不对称膜之间相互作用的作用。我们使用两种不同的建筑方案对铜绿假单胞菌细菌的外膜进行建模,并探测它们与假单胞菌喹诺酮信号(PQS)的相互作用。我们的结果表明,差异应力可以在不对称膜的两个传单之间移动PQS分子的自由能最小值。这项工作为初始叶片张力与PQ的自发插入之间的关系提供了关键的见解。
Biological membranes are fundamental components of living organisms that play an undeniable role in their survival. Molecular dynamics (MD) serves as an essential computational tool for studying biomembranes on molecular and atomistic scales. The status quo of MD simulations of biomembranes studies a nanometer-sized membrane patch periodically extended under periodic boundary conditions (PBC). In nature, membranes are usually composed of different lipids in their two layers (referred to as leaflets). This compositional asymmetry imposes a fixed ratio of lipid numbers between the two leaflets in a periodically constrained membrane, which needs to be set appropriately. The widely adopted methods of defining leaflet lipid ratio suffer from the lack of control over the mechanical tension of each leaflet, which could significantly influence research findings. In this study, we investigate the role of membrane-building protocol and the resulting initial stress state on the interaction between small molecules and asymmetric membranes. We model the outer membrane of Pseudomonas aeruginosa bacteria using two different building protocols and probe their interactions with the Pseudomonas Quinolone Signal (PQS). Our results show that differential stress could shift the position of free energy minimum for the PQS molecule between the two leaflets of the asymmetric membrane. This work provides critical insights into the relationship between the initial per-leaflet tension and the spontaneous intercalation of PQS.