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Targeting CTP Synthetase 1 to Restore Interferon Induction and Impede Nucleotide Synthesis in SARS-CoV-2 Infection
Youliang Rao; Ting-Yu Wang; Chao Qin; Bianca Espinosa; Qizhi Liu; Arunika Ekanayake; Jun Zhao; Ali Can Savas; Shu Zhang; Mehrnaz Zarinfar; Yongzhen Liu; Wenjie Zhu; Nicholas Alexander Graham; Taijiao Jiang; Chao Zhang; Pinghui Feng.
Affiliation
  • Youliang Rao; University of Southern California
  • Ting-Yu Wang; University of Southern California
  • Chao Qin; University of Southern California
  • Bianca Espinosa; University of Southern California
  • Qizhi Liu; University of Southern California
  • Arunika Ekanayake; University of Southern California
  • Jun Zhao; University of Southern California
  • Ali Can Savas; University of Southern California
  • Shu Zhang; University of Southern California
  • Mehrnaz Zarinfar; University of Southern California
  • Yongzhen Liu; University of Southern California
  • Wenjie Zhu; Chinese Academy of Medical Sciences & Peking Union Medical College
  • Nicholas Alexander Graham; University of Southern California
  • Taijiao Jiang; Suzhou Institute of Systems Medicine
  • Chao Zhang; University of Southern California
  • Pinghui Feng; university of Southern California
Preprint in English | bioRxiv | ID: ppbiorxiv-429959
ABSTRACT
The newly emerged SARS-CoV-2 caused a global pandemic with astonishing mortality and morbidity. The mechanisms underpinning its highly infectious nature remain poorly understood. We report here that SARS-CoV-2 exploits cellular CTP synthetase 1 (CTPS1) to promote CTP synthesis and suppress interferon (IFN) induction. Screening a SARS-CoV-2 expression library identified ORF7b and ORF8 that suppressed IFN induction via inducing the deamidation of interferon regulatory factor 3 (IRF3). Deamidated IRF3 fails to bind the promoters of classic IRF3-responsible genes, thus muting IFN induction. Conversely, a shRNA-mediated screen focused on cellular glutamine amidotransferases corroborated that CTPS1 deamidates IRF3 to inhibit IFN induction. Functionally, ORF7b and ORF8 activate CTPS1 to promote de novo CTP synthesis while shutting down IFN induction. De novo synthesis of small-molecule inhibitors of CTPS1 enabled CTP depletion and IFN induction in SARS-CoV-2 infection, thus impeding SARS-CoV-2 replication. Our work uncovers a strategy that a viral pathogen couples immune evasion to metabolic activation to fuel viral replication. Inhibition of the cellular CTPS1 offers an attractive means for developing antiviral therapy that would be resistant to SARS-CoV-2 mutation.
License
cc_by_nc_nd
Full text: Available Collection: Preprints Database: bioRxiv Language: English Year: 2021 Document type: Preprint
Full text: Available Collection: Preprints Database: bioRxiv Language: English Year: 2021 Document type: Preprint
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