4.5 Article

Structural effects of spike protein D614G mutation in SARS-CoV-2

Journal

BIOPHYSICAL JOURNAL
Volume 122, Issue 14, Pages 2910-2920

Publisher

CELL PRESS
DOI: 10.1016/j.bpj.2022.11.025

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A single mutation (D614G) in the spike protein of SARS-CoV-2, which causes COVID-19, has become the dominant variant. This mutation enhances the virus's infectivity by inducing structural changes. Molecular dynamics simulations reveal that the mutation orders the structure, weakens local interactions, and alters global interactions, leading to conformational changes. Understanding this mutation is crucial as it is present in all variants of concern.
A single mutation from aspartate to glycine at position 614 has dominated all circulating variants of the severe acute respiratory syndrome coronavirus 2. D614G mutation induces structural changes in the spike (S) protein that strengthen the virus infectivity. Here, we use molecular dynamics simulations to dissect the effects of mutation and 630-loop rigidification on S-protein structure. The introduction of the mutation orders the 630-loop structure and thereby induces global structural changes toward the cryoelectron microscopy structure of the D614G S-protein. The ordered 630-loop weakens local interactions between the 614th residue and others in contrast to disordered structures in the wild-type protein. The mutation allosterically alters global interactions between receptor-binding domains, forming an asymmetric and mobile down conformation and facilitating transi-tions toward up conformation. The loss of salt bridge between D614 and K854 upon the mutation generally stabilizes S-protein protomer, including the fusion peptide proximal region that mediates membrane fusion. Understanding the molecular basis of D614G mutation is crucial as it dominates in all variants of concern, including Delta and Omicron.

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