Search bioRxiv⌕ Search

Biology subjects

Labbe, P.

Publications and source records attributed to Labbe, P..

2 recordsLinked to original sources

Recombination, truncation and horizontal transfer shape the diversity of cytoplasmic incompatibility patterns

Wolbachia are endosymbiotic bacteria inducing various reproductive manipulations of which cytoplasmic incompatibility (CI) is the most common. CI leads to reduced embryo viability in crosses between males carrying Wolbachia and uninfected females or those carrying an incompatible symbiont strain. In the mosquito Culex pipiens, the Wolbachia wPip causes highly complex crossing patterns. This complexity is linked to the amplification and diversification of the CI causal genes, cidA and cidB, with polymorphism located in the CidA-CidB interaction regions. We previously showed correlations between the identity of gene variants and CI patterns. However, these correlations were limited to specific crosses, and it is still unknown whether cid gene polymorphism in males and females Wolbachia can explain and predict the wide range of crossing types observed in C. pipiens. Taking advantage of a new method enabling full-gene acquisition, we sequenced complete cid repertoires from 45 wPip strains collected worldwide. We demonstrated that the extensive diversity of cid genes arises from recombination and horizontal transfers. We uncovered further cidB polymorphism outside the interface regions and strongly correlated with CI patterns. Most importantly, we showed that in every wPip genome, all but one cidB variant are truncated. Truncated cidBs located in palindromes are partially or completely deprived of their deubiquitinase domain, crucial for CI. The identity of the sole full-length cidB variant seems to dictate CI patterns, irrespective of the truncated cidBs present. Truncated CidBs exhibit reduced toxicity and stability in Drosophila cells, which potentially hinders their loading into sperm, essential for CI induction.

evolutionary biology↗

Striking allelic diversity despite structural homogeneity of ace-1 duplications in Anopheles mosquitoes

A. gambiae s.l. has been the target of intense insecticide treatment since the mid-XXth century to try and control malaria, and a substitution in the ace-1 locus allowing resistance to organophosphate and carbamates insecticides has been rapidly selected for. Since then, several duplications of the ace-1 locus have been found in A. gambiae s.l. populations. They associate either several resistance copies (homogeneous duplications) or both resistance and susceptible copies (heterogeneous duplications). Heterogeneous duplications confer an intermediate trade-off between resistance in presence of insecticide and disadvantage in their absence. So far, and in striking contrast with C. pipiens mosquitoes, a single heterogeneous duplication had been describe in A. gambiae populations. We use an innovative approach, combining information from long and short read sequencing with Sanger sequencing to precisely identify and describe at least nine different heterogeneous duplications in A. gambiae. We further show that these alleles share the exact same structure than the previously identified heterogeneous and homogeneous duplications, namely 203-kb tandem amplifications with conserved breakpoints. Our study sheds a new light on the origin and maintenance of these alleles in A. gambiae populations, and pushes one step further the striking evolutionary convergence with C. pipiens mosquitoes.

evolutionary biology↗