The SARS-CoV-2 nucleocapsid (N) protein is one of the most highly expressed proteins during infection and plays crucial roles in the protection and packaging of viral RNA, replication, suppression of the immune response and virus assembly. The N gene and the overlapping accessory open reading frame ORF9b have continually evolved throughout the circulation of the virus, likely due to ongoing adaptation to the human host. This genetic variability influences the interplay of the N protein and its interactors. Yet, little is known about how specific mutations within the N/ORF9b locus of Variants of Concern (VOCs) shape the progression and outcome of infection. Here, we use a multi-omics approach to decipher how these genetic alterations reprogram the host cell by creating Wuhan-Hu-1-based recombinant viruses carrying an isogenic backbone with respective N mutations from the VOCs (called rNs) and comparing their effects at the transcriptome and proteome levels. We found that the mutations induce distinct transcriptional and translational alterations: rN-Alpha drives a stealth-like infection characterized by sustained translation efficiency and specific evasion of the 2’-5’-oligoadenylate synthetase (OAS) innate immune sensor, whereas rN-Delta and rN-BA.2 trigger a highly elevated inflammatory response. For rN-Delta, hyperphosphorylation of the N-protein drives cellular stress culminating in necroptotic cell death. Because these viruses differ only within the N/ORF9b locus, N sequence variation emerges as a determinant of infection outcome in its own right, warranting increased surveillance attention.
J. Berger, Jonas Schröder, Timothy K. Soh et al.· bioRxiv· 0 citations
A complete structure-activity relationship of Mac1 of SARS-CoV-2, that was used to design potent nucleotide inhibitors, were reported, which were developed into membrane-permeable, non-toxic prodrugs, which strongly suppress viral replication.
Maximilian Sandmann, Sahra Tajdar, Simon Sander et al.· Nature Communications· 0 citations
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