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Mignot, A.

Publications and source records attributed to Mignot, A..

3 recordsLinked to original sources

Physical interactions between pollen and pistil tissues mediate cryptic female choice in Brassica rapa

Cryptic female choice - female-mediated bias in fertilization after mating - is well established in animals and can also occur in plants when multiple pollens compete on the same pistil. However, whether interactions between pollen and pistil tissues after pollen deposition contribute to this process remains unknown. Here, we experimentally test whether such interactions mediate cryptic female choice in the angiosperm Brassica rapa. We quantified fertilization success of pollen donors competing on the same pistil using paternity analyses, and in parallel, made semi-in vivo assays to measure pollen tubes trajectories emerging from the excised styles and growing toward unfertilized ovules for each donor-recipient pair. We show that pollen tube growth towards ovules predicts higher fertilization success under pollen competition. Thus, we document a previously unobserved mechanism of cryptic female choice based on physical interactions between male and female components of reproduction. In addition, different recipient plants favour different pollen donors, consistent with non-directional female choice. Plants with longer styles bias paternities more strongly towards the most successful pollen donor. Overall, our study demonstrates that interactions between pollen tubes and pistil tissues after pollen germination enable plants to bias paternity toward particular donors.

evolutionary biology↗

Genotyping the self-incompatibility locus of wild and cultivated Brassica using NGS technologies: application to the evaluation of mate limitation in the endangered species Brassica insularis

O_LISelf-incompatibility can limit the availability of compatible mates in small and isolated populations, eventually reducing average seed set to the point that the long-term persistence of the populations can be impaired. This phenomenon, named the S-Allee effect, is caused by the loss of alleles (S-alleles) at the self-incompatibility locus (S-locus) due to the intense genetic drift experienced by small populations. Quantifying the diversity of S-alleles is therefore of direct interest for biological conservation, but efficient genotyping methods have been lacking so far because of technical challenges associated with the typically extreme levels of polymorphism and complex genomic structure of the S-locus. C_LIO_LIWe used two alternative approaches to genotype the S-locus using NGS sequencing technologies in four natural populations of the endangered Brassica insularis in Corsica. First, we used an NGS amplicon-sequencing approach using generalist primers for each of the two classes of Brassica S-alleles. Second, we obtained whole genome shotgun short-read resequencing data and analyzed them with a recently developed bioinformatic pipeline dedicated to hypervariable loci, which we successfully validated on a public dataset comprising 119 cultivated accessions of B. oleracea. C_LIO_LIBy combining the two approaches in natural populations of B. insularis we identified 31 distinct S-alleles and obtained fully resolved S-locus genotypes for 319 out of 326 sampled individuals. The number of S-alleles varied from four in the smallest population to 18 in the largest one. As a result, the smallest population exhibited very low proportions of compatible individuals, potentially threatening its persistence. We conclude that introducing individuals carrying S-alleles currently absent from the population could help rescue fertility. C_LI

evolutionary biology↗

Experimental evidence for female choice in an angiosperm

Female choice is a central process of sexual selection that has shaped numerous phenotypes in animals. It may operate broadly across sexually reproducing organisms, including plants, not only because sex differences in sexual selection arise from anisogamy, wich refers to the unequal investment in gametes between sexes, but also because it can emerge from simple variation in female reproductive morphology. Here, we provide the first empirical test of cryptic female choice in an angiosperm by examining whether pollen and pistil traits jointly influence paternal fertilization success. Using experimental pollen competition, paternity analyses, and trait measurements, we show that pistil traits can bias paternity toward pollen donors with specific pollen traits. These results demonstrate that cryptic female choice operates in plants, paralleling mechanisms described in animals.

evolutionary biology↗