Department of Computer Science, Penn State Harrisburg, Middletown, Pennsylvania, United States of America.
Department of Computer Science, Iowa State University, Ames, Iowa, United States of America.
PLoS Comput Biol. 2018 Sep 18;14(9):e1006456. doi: 10.1371/journal.pcbi.1006456. eCollection 2018 Sep.
Dynamics of biomolecular assemblies offer invaluable insights into their functional mechanisms. For extremely large biomolecular systems, such as HIV-1 capsid that has nearly 5 millions atoms, obtaining its normal mode dynamics using even coarse-grained models can be a challenging task. In this work, we have successfully carried out a normal mode analysis of an entire HIV-1 capsid in full all-atom details. This is made possible through our newly developed BOSE (Block of Selected Elasticity) model that is founded on the principle of resonance discovered in our recent work. The resonance principle makes it possible to most efficiently compute the vibrations of a whole capsid at any given frequency by projecting the motions of component capsomeres into a narrow subspace. We have conducted also assessments of the quality of the BOSE modes by comparing them with benchmark modes obtained directly from the original Hessian matrix. Our all-atom normal mode dynamics study of the HIV-1 capsid reveals the dynamic role of the pentamers in stabilizing the capsid structure and is in agreement with experimental findings that suggest capsid disassembly and uncoating start when the pentamers become destabilized. Our results on the dynamics of hexamer pores suggest that nucleotide transport should take place mostly at hexamers near pentamers, especially at the larger hemispherical end.
生物分子组装体的动力学为研究其功能机制提供了宝贵的见解。对于极其庞大的生物分子体系,如 HIV-1 衣壳,其原子数接近 500 万,即使使用粗粒化模型,获得其正常模式动力学也可能是一项具有挑战性的任务。在这项工作中,我们成功地对整个 HIV-1 衣壳进行了全原子细节的正常模式分析。这是通过我们新开发的 BOSE(Selected Elasticity Block,选择弹性体块)模型实现的,该模型基于我们最近的工作中发现的共振原理。共振原理使得以给定频率计算整个衣壳的振动成为可能,只需将衣壳组件帽状体的运动投影到一个狭窄的子空间中。我们还通过将 BOSE 模式与直接从原始 Hessian 矩阵获得的基准模式进行比较,评估了 BOSE 模式的质量。我们对 HIV-1 衣壳的全原子正常模式动力学研究揭示了五聚体在稳定衣壳结构中的动态作用,与实验结果一致,即当五聚体变得不稳定时,衣壳解体和脱壳开始。我们对六聚体孔动力学的研究结果表明,核苷酸转运应该主要发生在靠近五聚体的六聚体中,尤其是在较大的半球形末端。