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Biology subjects

Gausson, V.

Publications and source records attributed to Gausson, V..

2 recordsLinked to original sources

Multifaceted contributions of Dicer2 to arbovirus transmission by Aedes aegypti

Arthropod-borne viruses (arboviruses) transmitted by Aedes aegypti mosquitoes are an increasing threat to global health. The small interfering RNA (siRNA) pathway is considered the main antiviral immune pathway of insects, and thus represents a potential key target in the development of novel transmission-blocking strategies against arboviruses. Although the antiviral function of the siRNA pathway in Ae. aegypti is well established, its effective impact on arbovirus transmission is surprisingly poorly understood. Here, we used CRISPR/Cas9-mediated gene editing to create a line of Ae. aegypti in which we mutated Dicer2, a gene encoding the RNA sensor and key component of the siRNA pathway. Our Dicer2 null mutant line is viable and fertile, and only displays minor fitness defects despite being unable to produce siRNAs. The loss of Dicer2 affects early viral replication and systemic viral dissemination of four medically significant arboviruses (chikungunya, Mayaro, dengue, and Zika viruses) representing two viral families. However, measures of virus transmission potential indicate that Dicer2 null mutants and wild-type mosquitoes display an overall similar level of vector competence. Additionally, Dicer2 null mutants undergo significant virus-induced mortality during infection with chikungunya virus, but not dengue virus. Together, our results define a multifaceted role for Dicer2 in the transmission of arboviruses by Ae. aegypti mosquitoes and pave the way for further mechanistic investigations.

microbiology↗

Innate immune pathways act synergistically to constrain RNA virus evolution in Drosophila melanogaster

Host-pathogen interactions impose recurrent selective pressures that lead to constant adaptation and counter-adaptation in both competing species. Here, we sought to study this evolutionary arms-race and assessed the impact of the innate immune system on viral population diversity and evolution, using D. melanogaster as model host and its natural pathogen Drosophila C virus (DCV). We first isogenized eight fly genotypes generating animals defective for RNAi, Imd and Toll innate immune pathways and also pathogen sensing and gut renewal pathways. Wild-type or mutant flies were then orally infected and DCV was serially passaged ten times. Viral population diversity was studied after each viral passage by high-throughput sequencing, and infection phenotypes were assessed at the beginning and at the end of the passaging scheme. We found that the absence of any of the various immune pathways studied increased viral genetic diversity and attenuated the viruses. Strikingly, these effects were observed in both host factors with antiviral properties and host factors with antibacterial properties. Together, our results indicate that the innate immunity system as a whole, and not specific antiviral defense pathways in isolation, generally constrains viral diversity and evolution.

evolutionary biology↗