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Nothing to Sneeze At: A Dynamic and Integrative Computational Model of an Influenza A Virion

机译:不容小::甲型流感病毒的动态综合计算模型

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The influenza virus is surrounded by an envelope composed of a lipid bilayer and integral membrane proteins. Understanding the structural dynamics of the membrane envelope provides biophysical insights into aspects of viral function, such as the wide-ranging survival times of the virion in different environments. We have combined experimental data from X-ray crystallography, nuclear magnetic resonance spectroscopy, cryo-electron microscopy, and lipidomics to build a model of the intact influenza A virion. This is the basis of microsecond-scale coarse-grained molecular dynamics simulations of the virion, providing simulations at different temperatures and with varying lipid compositions. The presence of the Forssman glycolipid alters a number of biophysical properties of the virion, resulting in reduced mobility of bilayer lipid and protein species. Reduced mobility in the virion membrane may confer physical robustness to changes in environmental conditions. Our simulations indicate that viral spike proteins do not aggregate and thus are competent for multivalent immunoglobulin G interactions.
机译:流感病毒被由脂质双层和整合膜蛋白组成的包膜包围。了解膜包膜的结构动力学为病毒功能的各个方面提供了生物物理学的见解,例如病毒粒子在不同环境中的广泛生存时间。我们结合了来自X射线晶体学,核磁共振波谱,冷冻电子显微镜和脂质组学的实验数据,以构建完整的甲型流感病毒粒子的模型。这是病毒体的微秒级粗粒度分子动力学模拟的基础,可提供在不同温度和不同脂质成分下的模拟。 Forssman糖脂的存在改变了病毒体的许多生物物理特性,导致双层脂质和蛋白质种类的迁移性降低。病毒体膜中迁移率的降低可能会赋予物理鲁棒性以适应环境条件的变化。我们的模拟表明病毒刺突蛋白不会聚集,因此可以胜任多价免疫球蛋白G的相互作用。

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