Perez-Lemus Gustavo R, Menéndez Cintia A, Alvarado Walter, Byléhn Fabian, de Pablo Juan J
Pritzker School of Molecular Engineering, University of Chicago, Chicago, IL 60637, USA.
INQUISUR, Departamento de Química, Universidad Nacional del Sur (UNS)-CONICET, Avenida Alem 1253, 8000 Bahía Blanca, Argentina.
Sci Adv. 2022 Jan 7;8(1):eabj4526. doi: 10.1126/sciadv.abj4526.
To date, effective therapeutic treatments that confer strong attenuation against coronaviruses (CoVs) remain elusive. Among potential drug targets, the helicase of CoVs is attractive due to its sequence conservation and indispensability. We rely on atomistic molecular dynamics simulations to explore the structural coordination and dynamics associated with the SARS-CoV-2 Nsp13 apo enzyme, as well as their complexes with natural ligands. A complex communication network is revealed among the five domains of Nsp13, which is differentially activated because of the presence of the ligands, as shown by shear strain analysis, principal components analysis, dynamical cross-correlation matrix analysis, and water transport analysis. The binding free energy and the corresponding mechanism of action are presented for three small molecules that were shown to be efficient inhibitors of the previous SARS-CoV Nsp13 enzyme. Together, our findings provide critical fresh insights for rational design of broad-spectrum antivirals against CoVs.
迄今为止,能有效对抗冠状病毒(CoV)的治疗方法仍未找到。在潜在的药物靶点中,CoV的解旋酶因其序列保守性和不可或缺性而备受关注。我们依靠原子分子动力学模拟来探索与严重急性呼吸综合征冠状病毒2(SARS-CoV-2)Nsp13脱辅基酶相关的结构配位和动力学,以及它们与天然配体的复合物。Nsp13的五个结构域之间存在一个复杂的通信网络,如剪切应变分析、主成分分析、动态互相关矩阵分析和水传输分析所示,由于配体的存在,该网络被不同程度地激活。文中给出了三种小分子的结合自由能及其相应的作用机制,这三种小分子已被证明是之前SARS-CoV Nsp13酶的有效抑制剂。总之,我们的研究结果为合理设计抗CoV的广谱抗病毒药物提供了重要的新见解。