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Rouil, J.

Publications and source records attributed to Rouil, J..

2 recordsLinked to original sources

Coevolution and synchronized evolutionary rates in aphid dual endosymbiosis

Many insects rely on obligate bacterial endosymbionts for essential nutrients. However, long-term endosymbiosis drives genome erosion, frequently resulting in the acquisition of additional symbionts that complement or replace ancestral partners. In aphids, the primary nutritional symbiont Buchnera aphidicola can be supplemented by a co-obligate symbiont, most commonly Serratia symbiotica. The long-term evolutionary trajectory of this newly acquired symbiont and its impact on Buchnera remain unknown. Here, we assembled host mitochondrial and endosymbiont genomes from thirteen aphid species belonging to a clade in which Serratia has functioned as a co-obligate symbiont for approximately 25 million years. Phylogenomic analyses reveal that Serratia has undergone extensive genome reduction followed by strict codivergence with aphids and Buchnera. Bayesian molecular dating shows that substitution rates in Serratia and Buchnera are tightly correlated and fall within the range previously reported for Buchnera. Genome-wide analyses indicate pervasive purifying selection in both symbionts. Homologous host-provisioning genes retained in both symbionts did not exhibit elevated evolutionary rates. However, unlike other functional categories, their dN/dS values were not correlated between symbionts, suggesting that they no longer evolve under shared selective regimes, consistent with progressive metabolic specialization. Intraspecific patterns of polymorphism and phylogenies mirror macroevolutionary patterns across the clade. Fluorescence in situ hybridization shows that Serratia and Buchnera occupy distinct bacteriocytes, suggesting that similar demographic processes may contribute to their parallel evolution. Our findings demonstrate that, once integrated into an obligate partnership, newly acquired nutritional symbionts can converge on the long-term evolutionary dynamics of ancient obligate symbionts while undergoing functional specialization.

evolutionary biology↗

Genotypic and phenotypic diversity of Maudiozyma humilis: the multiple evolutionary trajectories of a domesticated yeast

Maudiozyma humilis is the second most frequently encountered yeast species in sourdough bread. Despite its ecological and food relevance, little is known about its evolutionary trajectories and phenotype traits of interest. Here we investigated the genomic and phenotypic diversity of a world-wide collection of 55 M. humilis strains, including 52 from sourdough, by combining genomic analysis, flow cytometry and high-throughput phenotyping of fermentation kinetics and fitness. Population genomic analysis revealed six genetically distinct clades, three diploid and three triploid, with no geographical or substrate-specific structuring. Phylogenetic, loss of heterozygosity (LOH) distribution and allele specific analysis indicated that triploid strains originated from both recent and more ancient hybridization events involving multiple diploid lineages. The absence of the HO gene, and mating-type silent cassettes, revealed that M. humilis is not able to carry mating-type switching. In addition, high linkage disequilibrium (LD) and variable LOH accumulation were observed consistent with a predominantly clonal reproduction. Last, an exceptionally high level of heterozygosity was detected, suggesting that occasional hybridization is the major driver of genetic diversity. Phenotypic characterization in a synthetic sourdough medium revealed variation in fermentation kinetics and fitness statistically associated with the genetic clades. Interestingly, genetic distance between clades and strains better explain the phenotypic variation than difference in ploidy. Altogether, our findings highlight the complex evolutionary history of M. humilis, shaped by hybridization and ploidy variation and reveal that historical contingency, more than ploidy, shapes the phenotypic landscape of this species. Beyond providing the first analysis of M. humilis evolution, our result challenges the hypothesis that increases in ploidy are necessarily beneficial in domesticated species.

genomics↗