Emergence of SARS-CoV-2 subgenomic RNAs that enhance viral fitness and immune evasion
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Harriet Mears George Young Theodore Sanderson Ruth Harvey Jamie Barrett-Rodger Becky Penn Vanessa Cowton Wilhelm Furnon Giuditta De Lorenzo Marg Crawford Daniel Snell Ashley Fowler Anob Chakrabarti Saira Hussain Ciarán Gilbride Edward Emmott Katja Finsterbusch Jakub Luptak Thomas P Peacock Jerome Nicod Arvind H Patel Massimo Palmarini Emma Wall Bryan Williams Sonia Gandhi Charles Swanton David LV Bauer
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Abstract
Coronaviruses express their structural and accessory genes via a set of subgenomic RNAs, whose synthesis is directed by transcription regulatory sequences (TRSs) in the 5' genomic leader and upstream of each body open reading frame. In SARS-CoV-2, the TRS has the consensus AAACGAAC; upon searching for emergence of this motif in the global SARS-CoV-2 sequences, we find that it evolves frequently, especially in the 3' end of the genome. We show well-supported examples upstream of the Spike gene-within the nsp16 coding region of ORF1b-which is expressed during human infection, and upstream of the canonical Envelope gene TRS, both of which have evolved convergently in multiple lineages. The most frequent neo-TRS is within the coding region of the Nucleocapsid gene, and is present in virtually all viruses from the B.1.1 lineage, including the variants of concern Alpha, Gamma, Omicron and descendants thereof. Here, we demonstrate that this TRS leads to the expression of a novel subgenomic mRNA encoding a truncated C-terminal portion of Nucleocapsid, which is an antagonist of type I interferon production and contributes to viral fitness during infection. We observe distinct phenotypes when the Nucleocapsid coding sequence is mutated compared to when the TRS alone is ablated. Our findings demonstrate that SARS-CoV-2 is undergoing evolutionary changes at the functional RNA level in addition to the amino acid level.
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Journal
PLOS Biology
Volume
23
Issue number
1
Pages
e3002982
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10.1371/journal.pbio.3002982
Europe PubMed Central
39836705
Pubmed
39836705
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