bioRxiv · 10.64898/2026.01.19.700281
SARS-CoV-2 membrane protein biogenesis
Abstract
Viral protein biogenesis underpins every viral life cycle stage, and elucidating these processes could reveal fundamental principles of virus-host interaction, and vulnerabilities amenable to therapeutic targeting. Here we apply biophysical, molecular, and cell biology techniques to investigate the insertion, folding, and oligomerization of the SARS-CoV-2 M protein. We describe the sequential co-translational insertion of the hydrophobic core, and demonstrate that the cytosolic C-terminal domain undergoes slower adoption of its tertiary structure. Additionally, we characterize how the transmembrane domain bundle facilitates M-protein oligomerization. Our results reveal a hydrophobic residue cluster that is essential for protein folding and co-translational dimerization. Additionally, we identify the cellular machinery responsible for targeting and inserting the M protein into the ER membrane, and chaperones and cofactors that may contribute to proper folding.
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Ortiz Mateu, J., Pearson, G. J., Rius-Salvador, M., Sedighian, S., Pavlova, A., Alonso-Romero, J., Acosta-Caceres, J. M., Metola, A., Garcia-Murria, M. J., Skehel, J. M., Gumbart, J. C., Carlton, J. C., von Heijne, G., Sanchez-del Pino, M. M., Martinez-Gil, L., Mingarro, I.. 2026-01-20. SARS-CoV-2 membrane protein biogenesis. https://doi.org/10.64898/2026.01.19.700281
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