Abstract
The emergence of Omicron (B.1.1.529), a new Variant of Concern in the COVID-19 pandemic, while accompanied by the ongoing Delta variant infection, has once again fueled fears of a new infection wave and global health concern. In the Omicron variant, the receptor-binding domain (RBD) of its spike glycoprotein is heavily mutated, a feature critical for the transmission rate of the virus by interacting with hACE2. In this study, we used a combination of conventional and advanced neural network-based in silico approaches to predict how these mutations would affect the spike protein. The results demonstrated a decrease in the electrostatic potentials of residues corresponding to receptor recognition sites, an increase in the alkalinity of the protein, a change in hydrophobicity, variations in functional residues, and an increase in the percentage of alpha-helix structure. Moreover, several mutations were found to modulate the immunologic properties of the potential epitopes predicted from the spike protein. Our next step was to predict the structural changes of the spike and their effect on its interaction with the hACE2. The results revealed that the RBD of the Omicron variant had a higher affinity than the reference. Moreover, all-atom molecular dynamics simulations concluded that the RBD of the Omicron variant exhibits a more dispersed interaction network since mutations resulted in an increased number of hydrophobic interactions and hydrogen bonds with hACE2.
【초록키워드】 Mutation, COVID-19 pandemic, Variation, variant, spike glycoprotein, Infection, molecular dynamics, omicron, delta variant, virus, Spike protein, hACE2, Molecular dynamics simulation, Protein, Epitopes, Health, Receptor-binding domain, RBD, hydrophobicity, Omicron variant, variations, B.1.1.529, receptor, concern, epitope, change, Critical, predict, Combination, Hydrogen bond, Interaction, hydrogen, new infection, in silico Approach, residue, residues, hydrophobic, hydrogen bonds, hydrophobic interactions, higher affinity, transmission rate, all-atom molecular dynamics simulations, Affect, decrease, alkalinity, predicted, functional, the spike protein, modulate, demonstrated, the RBD, the receptor-binding domain, increase in, mutated, electrostatic, exhibit, accompanied, hydrophobic interaction, 【제목키워드】 SARS-CoV-2, variant, in-silico, Effect, the spike protein,