Genetic conservation of SARS-CoV-2 RNA replication complex in globally circulating isolates and recently emerged variants from humans and minks suggests minimal pre-existing resistance to remdesivir.


Journal

Antiviral research
ISSN: 1872-9096
Titre abrégé: Antiviral Res
Pays: Netherlands
ID NLM: 8109699

Informations de publication

Date de publication:
04 2021
Historique:
received: 19 12 2020
revised: 29 01 2021
accepted: 30 01 2021
pubmed: 8 2 2021
medline: 30 3 2021
entrez: 7 2 2021
Statut: ppublish

Résumé

Remdesivir (RDV) exhibits potent antiviral activity against SARS-CoV-2 and is currently the only drug approved for the treatment of COVID-19. However, little is currently known about the potential for pre-existing resistance to RDV and the possibility of SARS-CoV-2 genetic diversification that might impact RDV efficacy as the virus continue to spread globally. In this study, >90,000 SARS-CoV-2 sequences from globally circulating clinical isolates, including sequences from recently emerged United Kingdom and South Africa variants, and >300 from mink isolates were analyzed for genetic diversity in the RNA replication complex (nsp7, nsp8, nsp10, nsp12, nsp13, and nsp14) with a focus on the RNA-dependent RNA polymerase (nsp12), the molecular target of RDV. Overall, low genetic variation was observed with only 12 amino acid substitutions present in the entire RNA replication complex in ≥0.5% of analyzed sequences with the highest overall frequency (82.2%) observed for nsp12 P323L that consistently increased over time. Low sequence variation in the RNA replication complex was also observed among the mink isolates. Importantly, the coronavirus Nsp12 mutations previously selected in vitro in the presence of RDV were identified in only 2 isolates (0.002%) within all the analyzed sequences. In addition, among the sequence variants observed in ≥0.5% clinical isolates, including P323L, none were located near the established polymerase active site or sites critical for the RDV mechanism of inhibition. In summary, the low diversity and high genetic stability of the RNA replication complex observed over time and in the recently emerged SARS-CoV-2 variants suggests a minimal global risk of pre-existing SARS-CoV-2 resistance to RDV.

Identifiants

pubmed: 33549572
pii: S0166-3542(21)00023-1
doi: 10.1016/j.antiviral.2021.105033
pmc: PMC7862048
pii:
doi:

Substances chimiques

RNA, Viral 0
Viral Nonstructural Proteins 0
remdesivir 3QKI37EEHE
Adenosine Monophosphate 415SHH325A
Alanine OF5P57N2ZX

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

105033

Informations de copyright

Copyright © 2021 Elsevier B.V. All rights reserved.

Références

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Auteurs

Ross Martin (R)

Gilead Sciences, 333 Lakeside Dr, Foster City, CA, USA. Electronic address: ross.martin@gilead.com.

Jiani Li (J)

Gilead Sciences, 333 Lakeside Dr, Foster City, CA, USA.

Aiyappa Parvangada (A)

Gilead Sciences, 333 Lakeside Dr, Foster City, CA, USA.

Jason Perry (J)

Gilead Sciences, 333 Lakeside Dr, Foster City, CA, USA.

Tomas Cihlar (T)

Gilead Sciences, 333 Lakeside Dr, Foster City, CA, USA.

Hongmei Mo (H)

Gilead Sciences, 333 Lakeside Dr, Foster City, CA, USA.

Danielle Porter (D)

Gilead Sciences, 333 Lakeside Dr, Foster City, CA, USA.

Evguenia Svarovskaia (E)

Gilead Sciences, 333 Lakeside Dr, Foster City, CA, USA.

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Classifications MeSH