SARS-CoV-2 genomic surveillance identifies naturally occurring truncation of ORF7a that limits immune suppression
- Nemudryi, Artem [ Montana State University: Microbiology & Cell Biology ]
- Nemudraia, Anna [ Montana State University: Microbiology & Cell Biology ]
- Wiegand, Tanner [ Montana State University: Microbiology & Cell Biology ]
- Nichols, Joseph [ Montana State University: Microbiology & Cell Biology ]
- Snyder, Deann T. [ Montana State University: Microbiology & Cell Biology ]
- Hedges, Jodi F. [ Montana State University: Microbiology & Cell Biology ]
- Cicha, Calvin [ Montana State University: Microbiology & Cell Biology ]
- Lee, Helen [ Montana State University: Microbiology & Cell Biology ]
- Vanderwood, Karl K.
- Bimczok, Diane [ Montana State University: Microbiology & Cell Biology ]
- Jutila, Mark A. [ Montana State University: Microbiology & Cell Biology ]
- Wiedenheft, Blake [ Montana State University: Microbiology & Cell Biology ]
Over 950,000 whole-genome sequences of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) have been determined for viruses isolated from around the world. These sequences are critical for understanding the spread and evolution of SARS-CoV-2. Using global phylogenomics, we show that mutations frequently occur in the C-terminal end of ORF7a. We isolate one of these mutant viruses from a patient sample and use viral challenge experiments to link this isolate (ORF7aΔ115) to a growth defect. ORF7a is implicated in immune modulation, and we show that the C-terminal truncation negates anti-immune activities of the protein, which results in elevated type I interferon response to the viral infection. Collectively, this work indicates that ORF7a mutations occur frequently, and that these changes affect viral mechanisms responsible for suppressing the immune response.