Niu Ziyuan, Hasegawa Karin, Deng Yuefan, Zhang Ziji, Rafailovich Miriam, Simon Marcia, Zhang Peng
Department of Applied Mathematics and Statistics, Stony Brook University, Stony Brook, NY, United States.
Mathematics, Division of Science, New York University, Abu Dhabi, United Arab Emirates.
Front Mol Biosci. 2022 Sep 27;9:953064. doi: 10.3389/fmolb.2022.953064. eCollection 2022.
We calculate the thermal and conformational states of the spike glycoprotein (S-protein) of SARS-CoV-2 at seven temperatures ranging from 3°C to 95°C by all-atom molecular dynamics (MD) µs-scale simulations with the objectives to understand the structural variations on the temperatures and to determine the potential phase transition while trying to correlate such findings of the S-protein with the observed properties of the SARS-CoV2. Our simulations revealed the following thermal properties of the S-protein: 1) It is structurally stable at 3°C, agreeing with observations that the virus stays active for more than two weeks in the cold supply chain; 2) Its structure varies more significantly at temperature values of 60°C-80°C; 3) The sharpest structural variations occur near 60°C, signaling a plausible critical temperature nearby; 4) The maximum deviation of the receptor-binding domain at 37°C, corroborating the anecdotal observations that the virus is most infective at 37°C; 5) The in silico data agree with reported experiments of the SARS-CoV-2 survival times from weeks to seconds by our clustering approach analysis. Our MD simulations at µs scales demonstrated the S-protein's thermodynamics of the critical states at around 60°C, and the stable and denatured states for temperatures below and above this value, respectively.
我们通过全原子分子动力学(MD)微秒级模拟,计算了严重急性呼吸综合征冠状病毒2(SARS-CoV-2)刺突糖蛋白(S蛋白)在3°C至95°C七个温度下的热态和构象状态,目的是了解温度引起的结构变化,确定潜在的相变,并尝试将S蛋白的这些发现与SARS-CoV-2的观察特性相关联。我们的模拟揭示了S蛋白的以下热特性:1)它在3°C时结构稳定,这与病毒在冷链中可保持活性两周以上的观察结果一致;2)在60°C至80°C的温度值下其结构变化更为显著;3)最剧烈的结构变化发生在60°C附近,表明附近可能存在一个临界温度;4)受体结合域在37°C时的最大偏差,证实了病毒在37°C时最具传染性的传闻观察结果;5)通过我们的聚类方法分析,计算机模拟数据与报道的SARS-CoV-2从数周到数秒的存活时间实验结果一致。我们在微秒尺度上的MD模拟证明了S蛋白在60°C左右的临界状态的热力学,以及低于和高于该值的温度下的稳定和变性状态。