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[Preprint]. 2023 Jun 1:2023.05.31.543159. [Version 1] doi: 10.1101/2023.05.31.543159

Combinatorial Regimens Augment Drug Monotherapy for SARS-CoV-2 Clearance in Mice

Irfan Ullah, Fanny Escudie, Ivan Scandale, Zoela Gilani, Gabrielle Gendron-Lepage, Fleur Gaudette, Charles Mowbray, Laurent Fraisse, Renée Bazin, Andrés Finzi, Walther Mothes, Priti Kumar, Eric Chatelain, Pradeep D Uchil
PMCID: PMC10312581  PMID: 37398307

Summary

Direct acting antivirals (DAAs) represent critical tools for combating SARS-CoV-2 variants of concern (VOCs) that evolve to escape spike-based immunity and future coronaviruses with pandemic potential. Here, we used bioluminescence imaging to evaluate therapeutic efficacy of DAAs that target SARS-CoV-2 RNA-dependent RNA polymerase (favipiravir, molnupiravir) or Main protease (nirmatrelvir) against Delta or Omicron VOCs in K18-hACE2 mice. Nirmatrelvir displayed the best efficacy followed by molnupiravir and favipiravir in suppressing viral loads in the lung. Unlike neutralizing antibody treatment, DAA monotherapy did not eliminate SARS-CoV-2 in mice. However, targeting two viral enzymes by combining molnupiravir with nirmatrelvir resulted in superior efficacy and virus clearance. Furthermore, combining molnupiravir with Caspase-1/4 inhibitor mitigated inflammation and lung pathology whereas combining molnupiravir with COVID-19 convalescent plasma yielded rapid virus clearance and 100% survival. Thus, our study provides insights into treatment efficacies of DAAs and other effective combinations to bolster COVID-19 therapeutic arsenal.

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