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Meyers, W.

Publications and source records attributed to Meyers, W..

2 recordsLinked to original sources

Antagonism of stress granules key for SARS-CoV-2 infection and pathogenesis.

Viruses must subvert host responses to facilitate successful infection. While most antiviral responses are associated with interferons, stress granules (SG) are another barrier to viral infection by inducing translation arrest. To combat SG activity, viruses have evolved mechanisms to disrupt formation and disassemble these complexes. Our prior studies identified residues in SARS-CoV-2 NSP3 (Y138/F145) and nucleocapsid (F17) that independently antagonize SG activity. Disrupting these key residues in NSP3 or nucleocapsid attenuated viral replication, but only modestly impacted in vivo pathogenesis suggesting overlap in SG antagonism partially compensate for the individual losses. In this study, we evaluated a SARS-CoV-2 mutant (YF/F17A) that combines the NSP3 and N mutations. We find that loss of both SG antagonizing functions attenuates SARS-CoV-2 replication in vitro. While no changes are seen in type I IFN sensitivity, attenuation corresponds to increased induction of SGs. Importantly, the SARS-CoV-2 YF/F17A mutant has significant attenuation in vivo with reduced viral replication, less weight loss, and limited immune pathology. Notably, infection with the YF/F17A mutant stimulated less interferon and inflammation. Despite these muted host responses, the YF/F17A mutant stimulated robust protection against subsequent challenge with WT SARS-CoV-2. Overall, the study highlights the importance of SG control for SARS-CoV-2 infection and offers a novel, interferon independent target for vaccination and therapeutic treatment going forward. ImportanceThis study demonstrates that SARS-CoV-2 uses multiple mechanisms to block host stress granules during infection. Knocking out both N and NSP3 mediated antagonism of stress granules attenuates viral replication and disease caused by SARS-CoV-2. Importantly, while most therapeutics target key viral processes or induce interferon pathways, this study shows stress granule activation as a novel approach to attenuate and treat coronavirus infection.

microbiology↗

The furin cleavage site is required for pathogenesis, but not transmission of SARS-CoV-2

The SARS-CoV-2 spike, key to viral entry, has two features that differentiate it from other sarbecoviruses: the presence of a furin cleavage site (FCS; PRRAR sequence) and an extended S1/S2 loop characterized by an upstream QTQTN amino acid motif. Our prior works show that shortening the S1/S2 loop by deleting either the FCS ({Delta}PRRA) or deleting an upstream sequence ({Delta}QTQTN), ablates spike processing, alters host protease usage, and attenuates infection in vitro and in vivo. With the importance of the loop length established, here we evaluated the impact of disrupting the FCS, but preserving the S1/S2 loop length. Using reverse genetics, we generated a SARS-CoV-2 mutant that disrupts the FCS (PQQAR) but maintains its extended S1/S2 loop. The SARS-CoV-2 PQQAR mutant has reduced replication, decreased spike processing, and attenuated disease in vivo compared to wild-type SARS-CoV-2. These data, similar to the FCS deletion mutant, indicate that loss of the furin cleavage site attenuates SARS-CoV-2 pathogenesis. Importantly, we subsequently found that the PQQAR mutant is transmitted in the direct contact hamster model despite lacking an intact FCS. However, competition transmission showed that the mutant was attenuated compared to WT SARS-CoV-2. Together, the data argue that the FCS is required for SARS-CoV-2 pathogenesis but is not strictly required for viral transmission.

microbiology↗