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Chahine, E.

Publications and source records attributed to Chahine, E..

4 recordsLinked to original sources

Stepwise recombination suppression around the mating-type locus associated with a diploid-like life cycle in Schizothecium fungi

Recombination suppression often evolves around sex-determining loci and extends stepwise, resulting in adjacent regions with different levels of divergence between sex chromosomes, called evolutionary strata. In Ascomycota fungi, evolutionary strata have been found around the mating-type (MAT) locus only in pseudo-homothallic species, i.e., with a diploid-like lifecycle and mycelia carrying nuclei of both mating types. In contrast, no recombination suppression has been observed in fungi with a haploid-like lifecycle, such as heterothallic fungi (with mycelial colonies of a single mating type each). Here, we investigated the evolution of recombination suppression in a clade of dung fungi encompassing 16 pseudo-homothallic and three heterothallic sibling species from the Schizothecium genus (Ascomycota, Sordariales). The analysis of genetic divergence based on genome sequencing indicated recombination suppression around the MAT locus in all investigated 13 pseudo-homothallic species. The non-recombining region ranged from 600 kb to 1.6 Mb and harbored multiple evolutionary strata, varying in size and number among species. The separation of alleles associated with alternative mating types in gene genealogies across strains within species, the high linkage disequilibrium and an inversion in one species supported the lack of recombination in the MAT-proximal region in pseudo-homothallic species. The overall lack of trans-specific polymorphism suggested multiple independent events of recombination suppression or the occurrence of rare events of recombination or genic conversion. Progeny analyses showed the occurrence of recombination close to the MAT locus in heterothallic strains. We thus revealed here multiple and likely independent evolutionary strata, associated with an extended diploid-like stage in Schizothecium fungi, which provides a good model for research on sex-related chromosome evolution.

evolutionary biology↗

Huge genetic diversity of Schizothecium tetrasporum (Wint.). N. Lundq.: delimitation of 18 species distributed into three complexes through genome sequencing

Analyses of the genetic diversity of well-studied fungi of the Sordariales order, such as Neurospora spp. and Podospora anserina (syn. Triangularia anserina), have shown that the species classically defined by morphology are often complexes of cryptic species. Here, we report on the species delimitation among 76 strains producing mycelium and sexual reproductive structures identical to those of the pseudo-homothallic Sordariales species Schizothecium tetrasporum (syn. Neoschizothecium tetrasporum). Their whole genomes were sequenced as well as those of six strains closely related to Schizothecium tetrasporum but producing eight-spored asci instead of four-spored ones. The clustering based on the Average Nucleotide Identity (ANI) between the genomes identified eighteen species grouped into three clades, which were further supported by a phylogenetic tree constructed with whole genome Single Nucleotide Polymorphisms (SNPs). Based on their contrasting breeding systems and their large evolutionary distances, we considered the three clades as distinct species complexes. Indeed, two of them, the Schizothecium tetrasporum and Schizothecium pseudotetrasporum complexes, contains pseudo-homothallic species producing four-spored asci, while the third one, which we named Schizothecium octosporum, contains heterothallic species producing eight-spored asci. Surprisingly it was nestled between the two complexes of pseudo-homothallic species. Our data reveals thus a huge genetic diversity of the Schizothecium tetrasporum morpho-species and a convergent evolution of pseudo-homothallism or reversion to heterothallism within the complexes. An epitype for Schizothecium tetrasporum sensus stricto is defined and the seventeen new Schizothecium species are formally described.

microbiology↗

Sheltered load in fungal mating-type chromosomes revealed by fitness experiments

Sex chromosomes and mating-type chromosomes can carry large regions with suppressed recombination. As a result of a lower efficacy of selection, recessive deleterious mutations are expected to accumulate in these non-recombining regions. Multiple genomic analyses have indirectly inferred the presence of deleterious mutations in sex and mating-type chromosomes, but direct experimental evidence remains scarce. Here, we performed fitness assays in fungi with megabase-large and young non-recombining regions around the mating-type locus, using three Sordariales species, to test whether heterokaryons (diploid-like, heterozygous at the mating-type locus) exhibited a fitness advantage over homokaryons (haploid-like, with a single mating-type allele), in terms of spore germination dynamics or mycelium growth speed, under different conditions of light and temperature. We found a faster growth of heterokaryons compared to one of the homokaryons for Podospora anserina at 18{degrees}C and for Schizothecium tetrasporum and Schizothecium tritetrasporum at 22{degrees}C under light. These findings suggest the presence of a sheltered load, i.e., recessive deleterious mutations at the heterozygous state in or near non-recombining regions, associated to a specific mating-type allele. Genomic analyses indeed suggested that the non-recombining regions around the mating-type locus likely carries heterozygous deleterious mutations, while the rest of the genome was mostly homozygous. We also showed that the difference in growth rates did not result from different numbers or densities of nuclei between homokaryons and heterokaryons. Leveraging the experimental assets of fungi, allowing cultivating separately haploid-like and diploid-like life stages, our experiments provided one of the rare direct experimental evidence of sheltered load around mating-compatibility loci, which is crucial for our understanding of sex-related chromosome evolution. Social Media AbstractExperimental evidence for sheltered load around the mating-type locus in filamentous fungi: slower growth of haploid versus diploid-like mycelia, revealing recessive deleterious mutations, in Podospora anserina and other Sordariales fungi.

evolutionary biology↗

Repeated loss of function at HD mating-type genes and of recombination suppression without mating-type locus linkage in anther-smut fungi

A wide diversity of mating systems occur in nature, with frequent evolutionary transitions in mating-compatibility mechanisms. Basidiomycete fungi typically have two mating-type loci controlling mating compatibility, HD and PR, usually residing on different chromosomes. In Microbotryum anther-smut fungi, there have been repeated events of linkage between the two mating-type loci through chromosome fusions, leading to large non-recombining regions. By generating high-quality genome assemblies, we found that two sister Microbotryum species parasitizing Dianthus plants, M. superbum and M. shykoffianum, as well as the distantly related M. scorzonarae, have their HD and PR mating-type loci on different chromosomes, but with the PR mating-type chromosome fused with part of the ancestral HD chromosome. Furthermore, progressive extensions of recombination suppression have generated evolutionary strata. In all three species, rearrangements suggest the existence of a transient stage of HD-PR linkage by whole chromosome fusion, and, unexpectedly, the HD genes lost their function. In M. superbum, multiple natural diploid strains were homozygous, and the disrupted HD2 gene was hardly expressed. Mating tests confirmed that a single genetic factor controlled mating compatibility (i.e. PR) and that haploid strains with identical HD alleles could mate and produce infectious hyphae. The HD genes have therefore lost their function in the control of mating compatibility in these Microbotryum species. While the loss of function of PR genes in mating compatibility has been reported in a few basidiomycete fungi, these are the first documented cases for the loss of mating-type determination by HD genes in heterothallic fungi. The control of mating compatibility by a single genetic factor is beneficial under selfing and can thus be achieved repeatedly, through evolutionary convergence in distant lineages, involving different genomic or similar pathways.

evolutionary biology↗