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Akkouche, A.

Publications and source records attributed to Akkouche, A..

2 recordsLinked to original sources

A dual histone code specifies the binding of heterochromatin protein Rhino to a subset of piRNA source loci

Animal germ cells deploy a specialized small RNA-based silencing system, called the PIWI-interacting RNA (piRNA) pathway, to prevent unwanted expression of transposable elements and maintain genome integrity. In Drosophila germ cells, the majority of piRNA populations originate from dual-strand piRNA clusters, genomic regions highly enriched in transposable element (TE) fragments, via an elaborate protein machinery centred on the heterochromatin protein 1 homolog, Rhino. Although Rhino binds to peptides carrying trimethylated H3K9 in vitro, it is not fully understood why in vivo only a fraction of H3K9me3-decorated heterochromatin is occupied by Rhino. Recent work revealed that Rhino is recruited to a subset of piRNA clusters by the zinc finger protein Kipferl. Here we identify a Kipferl-independent mode of Rhino targeting that, in addition to the previously established role of H3K9me3, also depends on the histone H3 lysine 27 methyltransferase Enhancer of Zeste. At Kipferl-independent sites, we find that Rhino, through its chromodomain, specifically binds to loci marked by both H3K9me3 and H3K27me3. Although the exact mechanism of how Rhino binding is influenced by dual histone modifications remains unclear from a structural and biochemical perspective, our work suggests that combinatorial modifications can play a crucial role in influencing the specificity of chromatin-binding protein interactions. These findings provide an enhanced understanding of the multifaceted mechanisms by which Rhino targets piRNA source loci highlighting the sophisticated epigenetic landscape governing TE silencing in Drosophila germ cells. Our work further reveals a role for dual histone modifications defining the binding specificity of a key chromatin protein.

molecular biology↗

A comprehensive evolutionary scenario for the origin and neofunctionalization of the Drosophila speciation gene Odysseus (OdsH)

Odysseus (OdsH) was the first gene described in Drosophila related to speciation and hybrid sterility. This gene was first described in the melanogaster subgroup and more specifically in the sterile hybrids from crosses between D. mauritiana and D. simulans. Its origin is attributed to the duplication of the gene unc-4, which would have occurred in the ancestor of the subgenus Sophophora. By using a much larger sample of Drosophila species, we showed that contrary to what has been previously proposed, OdsH origin occurred approximately 62 million years ago (Mya). Then, OdsH have experienced rapid neofunctionalization in male reproductive tracts, evidenced by its evolutionary rates, expression and transcription factor binding sites. Furthermore, the analysis of the OdsH peptide sequence allowed the identification of mutations in the DNA- and protein-binding domains of D. mauritiana that could result in incompatibility with genomes from other species. We then explored the expression of OdsH in the spermatocytes of D. arizonae and D. mojavensis, a pair of recently diverged sister species with incomplete reproductive isolation and expected to find the involvement of OdsH in hybrid sterility. Our data indicated that OdsH expression is not atypical in male-sterile hybrids from these species. In conclusion, we have demonstrated that the origin of OdsH occurred earlier than previously proposed and that its neofunctionalization in male sexual functions occurred rapidly after its origin. Our results also suggested that its role as a speciation gene, as in the melanogaster subgroup of species, may be restricted to this specific taxon.

evolutionary biology↗