抗体
突变
严重急性呼吸综合征冠状病毒2型(SARS-CoV-2)
2019年冠状病毒病(COVID-19)
化学
盐桥
突变体
病毒学
2019-20冠状病毒爆发
盐湖
冠状病毒
盐(化学)
受体
细胞生物学
分子生物学
生物
遗传学
基因
生物化学
医学
物理化学
病理
古生物学
构造盆地
疾病
传染病(医学专业)
爆发
作者
Binquan Luan,Toan Huynh
标识
DOI:10.1021/acs.jmedchem.1c00311
摘要
The highly infectious SARS-CoV-2 variant B.1.351 that first emerged in South Africa with triple mutations (N501Y, K417N, and E484K) is globally worrisome. It is known that N501Y and E484K can enhance binding between the coronavirus receptor domain (RBD) and human ACE2. However, the K417N mutation appears to be unfavorable as it removes one interfacial salt bridge. Here, we show that despite the decrease in binding affinity (1.48 kcal/mol) between RBD and ACE2, the K417N mutation abolishes a buried interfacial salt bridge between the RBD and neutralizing antibody CB6. This substantially reduces their binding energy by 9.59 kcal/mol, thus facilitating the process by which the variant efficiently eludes CB6 (including many other antibodies). Our theoretical predictions agree with existing experimental findings. Harnessing the revealed molecular mechanisms makes it possible to redesign therapeutic antibodies, thus making them more efficacious.
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