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Saidi, S.

Publications and source records attributed to Saidi, S..

2 recordsLinked to original sources

Genomic architecture of the self-incompatibility locus in apple provides insights into the evolution of collaborative non-self recognition

Self-incompatibility (SI) systems prevent self-fertilization, thereby maintaining genetic diversity in flowering plants. Among them, collaborative non-self recognition (CNSR) is the most widespread, yet the genomic organization and evolutionary maintenance of its multigenic recognition system remain poorly understood. Using 27 haplotype-resolved genomes from wild and domesticated apples (Malus spp.), we dissected the structure and evolution of the S-locus. We identified 17 S-RNase alleles and 500 pollen-expressed S-locus F-box brother (SFBB) genes across 18 families. The S-locus shows extensive structural divergence among alleles and transposable element accumulation, consistent with long-term restricted effective recombination. Despite this divergence, haplotypes carrying the same S-RNase allele retain remarkably conserved SFBB repertoires and gene organization, even across species boundaries, indicating that long-term balancing selection preserves highly conserved S-haplotype architectures associated with specific S-RNase lineages. Tandem duplication, positive selection, and signatures consistent with gene conversion contribute to the diversification of pollen-expressed SFBB genes while S-RNase-associated SFBB repertoires remain conserved across haplotypes carrying the same S-RNase allele. Our results reveal how a structurally dynamic yet evolutionarily constrained genomic region can sustain long-term S-allele diversity and preserve complex multigenic haplotype architectures in flowering plants.

genomics↗

The Brachypodium distachyon pangenome highlights Transposable Element dynamics in the species

The role of transposable elements (TEs) in host adaptation has gained lots of interest in the recent past. Individuals of the same species undergo independent TE insertions, causing genetic variability upon which natural selection can fosters adaptation of individuals to their environment. While de novo assembled genomes are becoming increasingly affordable, overcoming bias introduced by a single reference genome, suitable pangenomic approaches are required to explore genomes of a species. We developed a new pipeline called panREPET that identifies TE insertions shared by groups of individuals. Unlike other pangenomic tools, panREPET operates independently of a reference genome and provides the precise sequence and genomic coordinates of each TE copy for each genome. We showcase here the potential of this tool on TE insertions shared among 42 Brachypodium distachyon genomes and compared our results against existing tools to demonstrate its better efficiency. With this tool, we were able to date two major TE bursts corresponding to major climate events: 22 kya during the Last Glacial Maximum and 10 kya during the Holocene, showing a potential link between environmental stress and TE activity.

genomics↗