Department of Engineering Mechanics, School of Aerospace, Tsinghua University, Beijing 100084, China.
J Phys Chem B. 2010 Mar 4;114(8):3060-9. doi: 10.1021/jp1005549.
To understand the underlying mechanisms of the open and closed conformational change of HIV-1 protease (HIV-1 PR) at multiple time scales, we performed serial fully unrestrained, extremely long time molecular dynamics simulations with an explicit solvent model. Spontaneous semiopen to closed conformational transition and inhibitor-collision-induced opening of the flaps were simulated in a real time scale. We found that the rapid, local subnanosecond fluctuations of the flap tips might be the mechanisms triggering the global open and close conformational transitions at the 100-ns time scale. The subnanosecond fluctuation is induced by the Phi-Psi rotations of the residues at the flap tips, mainly Psi of Gly49 and Phi of Ile50, disturbing the interactions between the two tips and then their stability. We further showed that the water molecule W301 is helpful for the stability of the PR-inhibitor complex by acting as a collision buffer for the dynamic interaction between flap tips and the inhibitor. These results might help gain a better insight into the dynamics of HIV-1 PR, especially the local dynamics of the flap tips, which may provide important guidelines for design of novel potent inhibitors.
为了从多个时间尺度理解 HIV-1 蛋白酶(HIV-1 PR)开放和关闭构象变化的潜在机制,我们使用显式溶剂模型进行了一系列连续的、完全无约束的、超长时间的分子动力学模拟。在真实时间尺度上模拟了自发的半开至关闭构象转变和抑制剂碰撞诱导的瓣片打开。我们发现,瓣片尖端的快速、局部亚纳秒级波动可能是触发 100 纳秒时间尺度全局开和关构象转变的机制。这种亚纳秒级别的波动是由瓣片尖端残基的 Phi-Psi 旋转引起的,主要是 Gly49 的 Psi 和 Ile50 的 Phi,干扰了两个尖端之间的相互作用,从而破坏了它们的稳定性。我们进一步表明,水分子 W301 通过充当瓣片尖端和抑制剂之间动态相互作用的碰撞缓冲剂,有助于 PR-抑制剂复合物的稳定性。这些结果可能有助于更好地了解 HIV-1 PR 的动力学,特别是瓣片尖端的局部动力学,这可能为设计新型强效抑制剂提供重要指导。