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Molnupiravir promotes SARS-CoV-2 mutagenesis via the RNA template

The RNA-dependent RNA polymerase of the severe acute respiratory syndrome coronavirus 2 is an important target in current drug development efforts for the treatment of coronavirus disease 2019. Molnupiravir is a broad-spectrum antiviral that is an orally bioavailable prodrug of the nucleoside analog...

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Autores principales: Gordon, Calvin J., Tchesnokov, Egor P., Schinazi, Raymond F., Götte, Matthias
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8110631/
https://www.ncbi.nlm.nih.gov/pubmed/33989635
http://dx.doi.org/10.1016/j.jbc.2021.100770
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author Gordon, Calvin J.
Tchesnokov, Egor P.
Schinazi, Raymond F.
Götte, Matthias
author_facet Gordon, Calvin J.
Tchesnokov, Egor P.
Schinazi, Raymond F.
Götte, Matthias
author_sort Gordon, Calvin J.
collection PubMed
description The RNA-dependent RNA polymerase of the severe acute respiratory syndrome coronavirus 2 is an important target in current drug development efforts for the treatment of coronavirus disease 2019. Molnupiravir is a broad-spectrum antiviral that is an orally bioavailable prodrug of the nucleoside analogue β-D-N(4)-hydroxycytidine (NHC). Molnupiravir or NHC can increase G to A and C to U transition mutations in replicating coronaviruses. These increases in mutation frequencies can be linked to increases in antiviral effects; however, biochemical data of molnupiravir-induced mutagenesis have not been reported. Here we studied the effects of the active compound NHC 5’-triphosphate (NHC-TP) against the purified severe acute respiratory syndrome coronavirus 2 RNA-dependent RNA polymerase complex. The efficiency of incorporation of natural nucleotides over the efficiency of incorporation of NHC-TP into model RNA substrates followed the order GTP (12,841) > ATP (424) > UTP (171) > CTP (30), indicating that NHC-TP competes predominantly with CTP for incorporation. No significant inhibition of RNA synthesis was noted as a result of the incorporated monophosphate in the RNA primer strand. When embedded in the template strand, NHC-monophosphate supported the formation of both NHC:G and NHC:A base pairs with similar efficiencies. The extension of the NHC:G product was modestly inhibited, but higher nucleotide concentrations could overcome this blockage. In contrast, the NHC:A base pair led to the observed G to A (G:NHC:A) or C to U (C:G:NHC:A:U) mutations. Together, these biochemical data support a mechanism of action of molnupiravir that is primarily based on RNA mutagenesis mediated via the template strand.
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spelling pubmed-81106312021-05-11 Molnupiravir promotes SARS-CoV-2 mutagenesis via the RNA template Gordon, Calvin J. Tchesnokov, Egor P. Schinazi, Raymond F. Götte, Matthias J Biol Chem Accelerated Communication The RNA-dependent RNA polymerase of the severe acute respiratory syndrome coronavirus 2 is an important target in current drug development efforts for the treatment of coronavirus disease 2019. Molnupiravir is a broad-spectrum antiviral that is an orally bioavailable prodrug of the nucleoside analogue β-D-N(4)-hydroxycytidine (NHC). Molnupiravir or NHC can increase G to A and C to U transition mutations in replicating coronaviruses. These increases in mutation frequencies can be linked to increases in antiviral effects; however, biochemical data of molnupiravir-induced mutagenesis have not been reported. Here we studied the effects of the active compound NHC 5’-triphosphate (NHC-TP) against the purified severe acute respiratory syndrome coronavirus 2 RNA-dependent RNA polymerase complex. The efficiency of incorporation of natural nucleotides over the efficiency of incorporation of NHC-TP into model RNA substrates followed the order GTP (12,841) > ATP (424) > UTP (171) > CTP (30), indicating that NHC-TP competes predominantly with CTP for incorporation. No significant inhibition of RNA synthesis was noted as a result of the incorporated monophosphate in the RNA primer strand. When embedded in the template strand, NHC-monophosphate supported the formation of both NHC:G and NHC:A base pairs with similar efficiencies. The extension of the NHC:G product was modestly inhibited, but higher nucleotide concentrations could overcome this blockage. In contrast, the NHC:A base pair led to the observed G to A (G:NHC:A) or C to U (C:G:NHC:A:U) mutations. Together, these biochemical data support a mechanism of action of molnupiravir that is primarily based on RNA mutagenesis mediated via the template strand. American Society for Biochemistry and Molecular Biology 2021-05-11 /pmc/articles/PMC8110631/ /pubmed/33989635 http://dx.doi.org/10.1016/j.jbc.2021.100770 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Accelerated Communication
Gordon, Calvin J.
Tchesnokov, Egor P.
Schinazi, Raymond F.
Götte, Matthias
Molnupiravir promotes SARS-CoV-2 mutagenesis via the RNA template
title Molnupiravir promotes SARS-CoV-2 mutagenesis via the RNA template
title_full Molnupiravir promotes SARS-CoV-2 mutagenesis via the RNA template
title_fullStr Molnupiravir promotes SARS-CoV-2 mutagenesis via the RNA template
title_full_unstemmed Molnupiravir promotes SARS-CoV-2 mutagenesis via the RNA template
title_short Molnupiravir promotes SARS-CoV-2 mutagenesis via the RNA template
title_sort molnupiravir promotes sars-cov-2 mutagenesis via the rna template
topic Accelerated Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8110631/
https://www.ncbi.nlm.nih.gov/pubmed/33989635
http://dx.doi.org/10.1016/j.jbc.2021.100770
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