The Combined Effect of Oseltamivir and Favipiravir on Influenza A Virus Evolution
Louise Ormond1,2, Ping Liu3, Sebastian Matuszewski1,2
1École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.
Abstract:
Influenza virus inflicts a heavy death toll annually and resistance to existing antiviral drugs has generated interest in the development of agents with novel mechanisms of action. Favipiravir is an antiviral drug that acts by increasing the genome-wide mutation rate of influenza A virus (IAV). Potential synergistic benefits of combining oseltamivir and favipiravir have been demonstrated in animal models of influenza, but the population-level effects of combining the drugs are unknown. In order to elucidate the underlying evolutionary processes at play, we performed genome-wide sequencing of IAV experimental populations subjected to serial passaging in vitro under a combined protocol of oseltamivir and favipiravir. We describe the interplay between mutation, selection, and genetic drift that ultimately culminates in population extinction. In particular, selective sweeps around oseltamivir resistance mutations reduce genome-wide variation while deleterious mutations hitchhike to fixation given the increased mutational load generated by favipiravir. This latter effect reduces viral fitness and accelerates extinction compared with IAV populations treated with favipiravir alone, but risks spreading both established and newly emerging mutations, including possible drug resistance mutations, if transmission occurs before the viral populations are eradicated.
Insights
Combining oseltamivir and favipiravir for influenza A virus (IAV) treatment accelerates extinction by increasing mutation load. This combination risks spreading resistance mutations before viral eradication.
Area of Science:
- Virology
- Evolutionary Biology
- Pharmacology
Background:
- Influenza A virus (IAV) causes significant annual mortality.
- Antiviral drug resistance necessitates novel therapeutic strategies.
- Favipiravir increases viral mutation rates; oseltamivir targets viral replication.
Purpose of the Study:
- To investigate the population-level evolutionary effects of combining oseltamivir and favipiravir on IAV.
- To understand the interplay of mutation, selection, and genetic drift under combination therapy.
Main Methods:
- Genome-wide sequencing of IAV populations.
- In vitro serial passaging under combined drug treatment.
- Analysis of evolutionary dynamics and mutation accumulation.
Main Results:
- Combination therapy led to accelerated population extinction compared to favipiravir alone.
- Selective sweeps for oseltamivir resistance reduced genetic variation.
- Deleterious mutations fixed due to favipiravir's increased mutational load, reducing viral fitness.
- Risk of spreading drug resistance mutations during incomplete viral eradication.
Conclusions:
- Combined oseltamivir and favipiravir therapy drives rapid IAV extinction through increased mutational burden.
- This combination poses a risk of promoting drug resistance evolution.
- Careful consideration of transmission dynamics is crucial when using combination antiviral therapies.
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