4.7 Article

Refolding of lid subdomain of SARS-CoV-2 nsp14 upon nsp10 interaction releases exonuclease activity

期刊

STRUCTURE
卷 30, 期 8, 页码 1050-+

出版社

CELL PRESS
DOI: 10.1016/j.str.2022.04.014

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资金

  1. Polish Ministry of Science and Higher Education
  2. National Science Center [UMO-2017/27/B/NZ6/02488]
  3. Bayerische Forschungsstiftung grant [AZ-1453-20C]
  4. Deutsche Forschungsgemeinschaft [PO 1851/4-1]
  5. Corona Accelerated R&D in Europe (CARE) project - Innovative Medicines Initiative two Joint Undertaking (JU) [101005077]
  6. Bill and Melinda Gates Foundation [LO4CVI]
  7. Foundation for Polish Science [TEAM TECH CORE FACILITY/2017-4/6]

向作者/读者索取更多资源

During RNA replication, Nsp14 plays a crucial role in error correction and protection of viral RNA. The modulatory role of the protein co-factor Nsp10 and the essential control mechanism have been revealed through structural analysis.
During RNA replication, coronaviruses require proofreading to maintain the integrity of their large genomes. Nsp14 associates with viral polymerase complex to excise the mismatched nucleotides. Aside from the exonuclease activity, nsp14 methyltransferase domain mediates cap methylation, facilitating translation initiation and protecting viral RNA from recognition by the innate immune sensors. The nsp14 exonuclease activity is modulated by a protein co-factor nsp10. While the nsp10/nsp14 complex structure is available, the mechanistic basis for nsp10-mediated modulation remains unclear in the absence of the nsp14 structure. Here, we provide a crystal structure of nsp14 in an apo-form. Comparative analysis of the apo- and nsp10-bound structures explain the modulatory role of the co-factor protein and reveal the allosteric nsp14 control mechanism essential for drug discovery. Further, the flexibility of the N-terminal lid of the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) nsp14 structure presented in this study rationalizes the recently proposed idea of nsp14/nsp10/nsp16 ternary complex.

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