Berta Dénes, Badaoui Magd, Martino Sam Alexander, Buigues Pedro J, Pisliakov Andrei V, Elghobashi-Meinhardt Nadia, Wells Geoff, Harris Sarah A, Frezza Elisa, Rosta Edina
Department of Physics and Astronomy, University College London London WC1E 6BT UK
Department of Chemistry, King's College London London SE1 1DB UK.
Chem Sci. 2021 Sep 6;12(40):13492-13505. doi: 10.1039/d1sc02775a. eCollection 2021 Oct 20.
The RNA helicase (non-structural protein 13, NSP13) of SARS-CoV-2 is essential for viral replication, and it is highly conserved among the family, thus a prominent drug target to treat COVID-19. We present here structural models and dynamics of the helicase in complex with its native substrates based on thorough analysis of homologous sequences and existing experimental structures. We performed and analysed microseconds of molecular dynamics (MD) simulations, and our model provides valuable insights to the binding of the ATP and ssRNA at the atomic level. We identify the principal motions characterising the enzyme and highlight the effect of the natural substrates on this dynamics. Furthermore, allosteric binding sites are suggested by our pocket analysis. Our obtained structural and dynamical insights are important for subsequent studies of the catalytic function and for the development of specific inhibitors at our characterised binding pockets for this promising COVID-19 drug target.
严重急性呼吸综合征冠状病毒2(SARS-CoV-2)的RNA解旋酶(非结构蛋白13,NSP13)对病毒复制至关重要,且在该病毒家族中高度保守,因此是治疗新冠肺炎的一个重要药物靶点。基于对同源序列和现有实验结构的全面分析,我们在此展示了解旋酶与其天然底物结合时的结构模型和动力学。我们进行并分析了微秒级的分子动力学(MD)模拟,我们的模型在原子水平上为ATP和单链RNA的结合提供了有价值的见解。我们确定了表征该酶的主要运动,并强调了天然底物对这种动力学的影响。此外,我们的口袋分析表明了变构结合位点。我们获得的结构和动力学见解对于后续对催化功能的研究以及针对这个有前景的新冠肺炎药物靶点在我们所表征的结合口袋处开发特异性抑制剂具有重要意义。