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Le Faou, E.

Publications and source records attributed to Le Faou, E..

2 recordsLinked to original sources

Sex-allocation trade-offs and their genetic architecture revealed by experimental evolution

The theory of sex-allocation is hailed as one of evolutionary biologys great successes. But while it has successfully predicted strategies of resource allocation to sons versus daughters under a wide range of conditions in species with separate sexes, it has been difficult to apply to hermaphroditic species because of the repeated failure to verify the fundamental assumption of a direct genetic trade-off between male and female allocations made by hermaphrodites. This assumption supposes that mutations that increase an individuals male allocation reduce its female allocation in equal measure, yet there is almost no evidence for such trade-off loci in hermaphroditic populations. Here, we use experimental evolution to generate wide variation in hermaphroditic sex allocation in an annual plant and demonstrate a clear trade-off between the two sexual functions within populations as well as over time, with populations evolving both increased male and reduced female allocation. Quantitative trait locus (QTL) analysis performed on multiple crosses further reveals the segregation of allelic variation at trade-off loci. Taken together, our results demonstrate a phenotypic trade-off in sex allocation in hermaphrodites and provide compelling evidence for sex-allocation trade-off loci, verifying the fundamental assumption of sex-allocation theory and securing its general applicability to both dioecious and hermaphroditic species.

evolutionary biology↗

Co-segregation of recombinant chromatids maintains genome-wide heterozygosity in an asexual nematode

In asexual animals, female meiosis is modified to produce diploid oocytes. Associated with recombination, this is expected to lead to a rapid loss of heterozygosity, with adverse effects on fitness. Many asexuals, however, have a heterozygous genome, the underlying mechanisms being most often unknown. Cytological and population genomic analyses in the nematode Mesorhabditis belari revealed another case of recombining asexual being highly heterozygous genome-wide. We demonstrated that heterozygosity is maintained because the recombinant chromatids of each chromosome pair co-segregate during the unique meiotic division. A theoretical model confirmed that this segregation bias is necessary to account for the observed pattern and likely to evolve under a wide range of conditions. Our study uncovers a new type of cell division involving Directed Chromatid Assortment. One sentence summaryGenome wide heterozygosity in the asexual nematode Mesorhabditis belari is achieved by directed assortment of recombinant chromatids during female meiosis

evolutionary biology↗