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Structural Dynamics and Allosteric Communication of a SARS-Like Bat Coronavirus Spike Glycoprotein

Balogun, T.; Kearns, F.; Calvo-Tusell, C.; Tse, A. L.; Acreman, C. M.; Casalino, L.; Lasso, G.; Miller, E. H.; Chandran, K.; McLellan, J. S.; Amaro, R. E.

2025-12-15 biophysics
10.64898/2025.12.12.693972 bioRxiv
Show abstract

SARS-like bat coronaviruses (CoVs) pose ongoing public health risks due to their zoonotic potential, making it important to understand the molecular pathways driving their evolution. We recently showed that SHC014-CoV can infect human cell lines in an ACE2-dependent manner after acquiring two spike ectodomain mutations (F294L and A835D). However, how the wild-type (WT) SHC014 spike differs dynamically from these mutants remains unclear. Here, we built fully glycosylated ectodomain models of WT and three mutants (F294L, A835D, and the double mutant, DM) and performed triplicate 1-s all-atom molecular dynamics (MD) simulations for each variant. The two mutations exhibit epistasis, altering structural rearrangements relative to WT. Notably, the DM receptor binding domain (RBD) begins sampling the open conformation in our conventional MD. At the atomic level, the DM spike mitigates the dense negative packing introduced by A835D through a salt-bridge network, while F294L disrupts {pi}-mediated interactions, together enhancing RBD opening propensity--critical for viral entry. Increased flexibility of the subdomain-2 "620-loop" further modulates DM RBD openness. Dynamical network analysis identified three allosteric communication pathways. In WT and F294L, "Pathway 1" forms the baseline route linking the 620-loop to the RBD, whereas in A835D and DM it extends to the FPPR, reshaping long-range communication. "Pathway 2" is conserved across variants but is most prominent in WT and F294L. "Pathway 3" appears only in A835D and DM, compensating for reduced communication along Pathway 2. Overall, this work provides an atomistic perspective on SHC014 molecular adaptation during host-to-host transmission and highlights mechanistic features that may inform future therapeutic and pandemic-preparedness efforts. Statement of SignificanceBat coronaviruses are an important source of future pandemic threats, but we still know little about how small genetic changes help them infect humans. In this study, we used detailed computer simulations to watch how tiny mutations in a bat coronavirus spike protein change its motion and shape. We found that two specific mutations work together to make the spike more likely to open--a step required for the virus to enter human cells. By revealing how these molecular changes increase infection potential, our work helps improve understanding of coronavirus evolution and may guide strategies to prepare for future outbreaks.

Published in Biophysical Journal (predicted rank #7) · training set

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