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Clustering of SARS-CoV-2 membrane proteins in lipid bilayer membranes
Joseph McTiernan1, Yuanzhong Zhang2, Siyu Li3
1Department of Physics, University of California, Merced, California, United States of America.
Abstract:
The accumulation of viral structural proteins along the endoplasmic reticulum-Golgi intermediate compartment (ERGIC) membrane drives SARS-CoV-2 self-assembly and budding through interactions among proteins, RNA, and the host membrane. The membrane (M) protein, the most abundant structural component, is thought to interact with other proteins and form clusters that induce membrane curvature and initiate virion formation. However, the relative roles of direct and membrane-mediated interactions between M proteins in this clustering process remain unclear. Here, we combine all-atom molecular dynamics (MD) simulations, continuum modeling, and experiments to demonstrate that M-M interactions alone are sufficient to drive clustering in ERGIC-like lipid bilayers, even in the absence of other proteins or RNA. From MD simulations, we quantify the membrane thinning induced by M proteins and the resulting membrane-mediated interaction energy. Integrating these results into a continuum model that describes the evolution of M protein density on a planar membrane, we identify a critical effective interaction energy required for cluster formation at a given protein density. Comparison with atomic force microscopy (AFM) measurements of M protein clusters enables quantitative estimation of the direct and membrane-mediated interaction energies, revealing that direct M-M interactions dominate through an effective oligomerization energy. Together, these findings establish that M protein interactions are sufficient to drive clustering and provide a quantitative framework for understanding the interplay of direct and membrane-mediated forces in coronavirus assembly and budding.
Insights
SARS-CoV-2 membrane (M) protein interactions alone drive viral assembly. Direct M-M interactions dominate, sufficient for clustering and initiating virion formation in host membranes.
Area of Science:
- Virology
- Structural Biology
- Biophysics
Background:
- SARS-CoV-2 assembly involves viral structural proteins interacting with host membranes.
- The abundant membrane (M) protein is crucial for initiating virion formation via clustering.
- The interplay between direct and membrane-mediated M protein interactions is not fully understood.
Purpose of the Study:
- To investigate the sufficiency of M protein interactions in driving SARS-CoV-2 assembly.
- To quantify the roles of direct versus membrane-mediated M protein interactions.
- To establish a framework for understanding coronavirus assembly dynamics.
Main Methods:
- All-atom molecular dynamics (MD) simulations of M proteins in lipid bilayers.
- Continuum modeling of M protein density evolution on membranes.
- Atomic force microscopy (AFM) experiments to measure M protein clusters.
Main Results:
- M-M protein interactions alone are sufficient to drive clustering in ERGIC-like lipid bilayers.
- MD simulations quantified M protein-induced membrane thinning and interaction energies.
- Direct M-M interactions were found to dominate over membrane-mediated forces, driven by oligomerization.
Conclusions:
- M protein interactions are sufficient for driving SARS-CoV-2 clustering and assembly.
- A quantitative framework elucidates the balance of direct and membrane-mediated forces in viral budding.
- Findings provide insights into the fundamental mechanisms of coronavirus replication.
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