The nonstructural viral membrane protein nsp4 is the key pore organizer in coronavirus double-membrane vesicles, with steric constraints predicting that modified nucleobases block mRNA transit.
Identification of nsp4 as the key pore organizer in coronavirus double-membrane vesicles suggests that modified nucleobases could block mRNA transit, offering a potential mechanism for broad-spectrum anticoronaviral activity.
Coronavirus-infected cells contain double-membrane vesicles (DMVs) that are key for viral RNA replication and transcription, perforated by hexameric pores connecting the vesicular lumen to the cytoplasm. How pores form and traverse two membranes, and how DMVs organize RNA synthesis, is unknown. Using structure prediction and functional assays, we show that the nonstructural viral membrane protein nsp4 is the key pore organizer, spanning the double membrane and forming most of the pore lining. Nsp4 interacts with nsp3 on the cytoplasmic side and with the viral replicase inside the DMV. Newly synthesized mRNAs exit the DMV into the cytoplasm, passing through a narrow ring of conserved nsp4 residues. Steric constraints imposed by the ring predict that modified nucleobases block mRNA transit, resulting in broad-spectrum anticoronaviral activity.
Lupan et al. (2024) studied Coronavirus infection. The nonstructural viral membrane protein nsp4 is the key pore organizer in coronavirus double-membrane vesicles, with steric constraints predicting that modified nucleobases block mRNA transit.
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