Department of Biochemistry, Faculty of Medicine, Thailand Excellence Center for Tissue Engineering and Stem Cells, Chiang Mai University, Chiang Mai, 50200, Thailand.
Sci Rep. 2022 Apr 7;12(1):5896. doi: 10.1038/s41598-022-09999-9.
The COVID-19 pandemic has changed the quality of life and economic systems all over the world, as the virus can be transmitted from human to human via air-droplets. Since the SARS-CoV-2 virus was first identified in 2019, the virus has naturally mutated over time. Southeast Asia is one of the areas in the world that has implemented various procedures and measures to slow down the disease outbreaks. The first cluster of COVID-19 was identified from the tourist-travel history, and then the diversity of coronavirus victims has posed a serious issue of human security on a massive scale. To evaluate whether or not naturally occurring mutations have strengthened the infectivity of SARS-CoV-2, we computed in silico the structural dynamics of the RBD-spike protein mutation enhancing ACE2-binding. When considering emerging variations in Southeast Asia, 14 dominant mutations were analyzed by applying the structural and energetic characterization using MD simulations. The ones in the RBD region displayed higher affinity to ACE2 due to the improved interfacial stability of the RBD β-strand surrounding the ACE2 across salt bridge hotspots. The binding hotspots and structurally conserved conformational-epitopes have been identified, which are deleterious for RBD mutation and ACE2 binding. We present an interactive visualization to facilitate the development of effective neutralizing agents for vaccination, prevention and treatment.
新冠疫情改变了全世界的生活质量和经济体系,因为这种病毒可以通过飞沫在人与人之间传播。自 2019 年首次发现 SARS-CoV-2 病毒以来,该病毒随着时间的推移自然发生了突变。东南亚是世界上实施各种程序和措施以减缓疾病爆发的地区之一。第一例新冠病例是从有旅游史的人身上发现的,随后冠状病毒受害者的多样性在大规模上对人类安全构成了严重问题。为了评估自然发生的突变是否增强了 SARS-CoV-2 的感染力,我们通过计算 ACE2 结合增强的 RBD 刺突蛋白突变的结构动力学,从计算的角度进行了研究。在考虑东南亚的新出现的变异时,通过应用 MD 模拟进行结构和能量特征分析,对 14 种主要突变进行了分析。由于 RBD β-链周围环绕 ACE2 的 RBD 区域的界面稳定性提高,因此 ACE2 与 RBD 区域的突变显示出更高的亲和力。确定了结合热点和结构保守的构象表位,这些热点和表位对 RBD 突变和 ACE2 结合是有害的。我们提出了一种交互式可视化,以促进针对疫苗接种、预防和治疗的有效中和剂的开发。