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Silar, P.

Publications and source records attributed to Silar, P..

3 recordsLinked to original sources

High-quality genome assemblies of four members of the Podospora anserina species complex

The filamentous fungus Podospora anserina is a model organism used extensively in the study of molecular biology, senescence, prion biology, meiotic drive, mating-type chromosome evolution, and plant biomass degradation. It has recently been established that P. anserina is a member of a complex of seven, closely related species. In addition to P. anserina, high-quality genomic resources are available for two of these taxa. Here we provide chromosome-level annotated assemblies of the four remaining species of the complex, as well as a comprehensive dataset of annotated assemblies from a total of 28 Podospora genomes. We find that all seven species have genomes of around 35 Mbp arranged in seven chromosomes that are mostly collinear and less than 2% divergent from each other at genic regions. We further attempt to resolve their phylogenetic relationships, finding significant levels of phylogenetic conflict as expected from a rapid and recent diversification. SignificanceHere we provide a dataset of 28 annotated genomes from the P. anserina species complex, including chromosome-level assemblies of four species that lacked a reference genome. With this dataset in hand, biologists can take advantage of the molecular tools available for P. anserina to study evolutionary dynamics at the interphase between micro- and macroevolution, with particular emphasis on trait evolution, genome architecture, and speciation.

genomics↗

Stepwise recombination suppression around the mating-type locus in the fungus Schizothecium tetrasporum (Ascomycota, Sordariales)

Recombination is often suppressed at sex-determining loci in plants and animals, and at self-incompatibility or mating-type loci in plants and fungi. In fungal ascomycetes, recombination suppression around the mating-type locus is associated with pseudo-homothallism, i.e., the production of self-fertile dikaryotic sexual spores carrying the two opposite mating types. This has been well studied in two species complexes from different families of Sordariales: Podospora anserina and Neurospora tetrasperma. However, it is unclear whether this intriguing convergent association holds in other species. We show here that Schizothecium tetrasporum, a fungus from a third family in the order Sordariales, also produces mostly self-fertile dikaryotic spores carrying the two opposite mating types. This was due to a high frequency of second meiotic division segregation at the mating-type locus, indicating the occurrence of a single and systematic crossing-over event between the mating-type locus and the centromere, as in P. anserina. The mating-type locus has the typical Sordariales organization, plus a MAT1-1-1 pseudogene in the MAT1-2 haplotype. High-quality genome assemblies of opposite mating types and segregation analyses revealed a suppression of recombination in a region of 1.3 Mb around the mating-type locus. We detected three evolutionary strata, displaying a stepwise extension of recombination suppression, but no rearrangement or transposable element accumulation in the non-recombining region. Our findings indicate a convergent evolution of self-fertile dikaryotic sexual spores across multiple ascomycete fungi. The particular pattern of meiotic segregation at the mating-type locus was associated with recombination suppression around this locus, that had extended stepwise. This association is consistent with a recently proposed mechanism of deleterious allele sheltering through recombination suppression around a permanently heterozygous locus. AUTHOR SUMMARYRecombination allows faster adaptation and the purging of deleterious mutation but is often paradoxically lacking in sex chromosomes. It has been recently recognized that recombination can also be suppressed on fungal mating-type chromosomes, but the evolutionary explanation and the proximal mechanism of this phenomenon remain unclear. By studying here the sexual biology of a poorly studied mold living in rabbit dung, we reveal a striking convergence in three distant fungal lineages of an independently evolved association between the production of self-fertile sexual spores (carrying two nuclei with opposite mating types), a particular segregation of the mating-type locus and the lack of recombination on mating-type chromosomes, having evolved stepwise. Such a convergent association suggests causal relationships and will contribute to unveil the evolutionary causes of recombination suppression. Graphical summary O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=174 SRC="FIGDIR/small/500756v2_ufig1.gif" ALT="Figure 1"> View larger version (40K): org.highwire.dtl.DTLVardef@1cea706org.highwire.dtl.DTLVardef@378c41org.highwire.dtl.DTLVardef@d90297org.highwire.dtl.DTLVardef@1391c74_HPS_FORMAT_FIGEXP M_FIG C_FIG

evolutionary biology↗

The GUN mutants: new weapons to unravel ascospore germination regulation in the model fungus Podospora anserina

In Podospora anserina as in many other ascomycetes, ascospore germination is a regulated process that requires breaking of dormancy. Despite its importance in survival and dispersal, ascospore germination in filamentous fungi has been poorly investigated and little is known about its regulation and genetic control. We have designed a positive genetic screen that led to the isolation of mutants showing uncontrolled germination, the GUN mutants. In this paper, we report on the characterization of GUN1SG. We show that GUN1SG is mutated in Pa_6_1340, the ortholog of Magnaporthe oryzae Pth2, which encodes a Carnitine-acetyltransferase (CAT) involved in the shuttling of acetyl-CoA between peroxisomes and mitochondria and which is required for appressorium-development. Bioinformatic analysis revealed that the mutated residue (I441) is highly conserved among the Fungi, and that the mutation has a deleterious impact on the protein function. We show that GUN1 is essential for ascospore germination and that the protein is localized both in mitochondria and in peroxisomes. Finally, epistasis studies allowed us to place GUN1 upstream of the PaMpk2 MAPK pathway and the PaNox2/PaPls1 complex in the regulation of ascospore germination. The identification of GUN1, the ortholog of Pth2, in ascospore germination, strengthens the idea of a common genetic regulation governing both appressorium development and melanized ascospore germination. In addition, we characterize the second CAT encoded in P. anserina genome, Pa_3_7660/GUP1, and we show that the function of both CATs is conserved in P. anserina.

genetics↗