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Building Blocks of the Outer Membrane: Calculating a general elastic energy model for β-barrel membrane proteins

机译:外膜的构建基块:计算β-桶形膜蛋白的一般弹性能模型

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摘要

The outer membranes of Gram negative bacteria are the first points of contact these organisms make with their environment. Understanding how composition determines the mechanical properties of this essential barrier is of paramount importance. Therefore, we developed a new computational method to measure the elasticity of transmembrane proteins found in the outer membrane. Using all-atom molecular dynamics simulations of these proteins, we apply a set of external forces to mechanically stress the transmembrane β-barrels. Our results from four representative β-barrels show that outer membrane proteins display elastic properties that are approximately 70 to 190 times stiffer than neat lipid membranes. These findings suggest that outer membrane β-barrels are a significant source of mechanical stability in bacteria. Our all-atom approach further reveals that resistance to radial stress is encoded by a general mechanism that includes stretching of backbone hydrogen bonds and tilting of β-strands with respect to the bilayer normal. This computational framework facilitates an increased theoretical understanding of how varying lipid and protein amounts affect the mechanical properties of the bacterial outer membrane.
机译:革兰氏阴性菌的外膜是这些生物与环境接触的第一要点。了解组成如何确定该基本屏障的机械性能至关重要。因此,我们开发了一种新的计算方法来测量在外膜中发现的跨膜蛋白的弹性。使用这些蛋白质的全原子分子动力学模拟,我们施加了一组外力以机械方式使跨膜β-桶受力。我们从四个有代表性的β-桶中获得的结果表明,外膜蛋白显示出的弹性性质比纯脂质膜的刚性高约70至190倍。这些发现表明,外膜β-桶是细菌机械稳定性的重要来源。我们的全原子方法进一步揭示了对径向应力的抵抗力是由一种通用机制编码的,该机制包括拉伸骨架氢键和相对于双层法线倾斜β链。这种计算框架促进了对脂质和蛋白质含量的变化如何影响细菌外膜机械性能的理论理解。

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