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Vittorelli, N.

Publications and source records attributed to Vittorelli, N..

2 recordsLinked to original sources

A transient but very intense mutational burst occurs during the normal development of yeast colonies

Characterizing the pace of mutation accumulation is crucial for understanding how populations adapt to their environment and for unraveling the intricate dynamics between gradual processes and more sudden burst-like events occurring during cancer development. We engineered the genome of Saccharomyces cerevisiae to measure the rates of single and double mutations, including point mutations, segmental duplications and reciprocal translocations. We found that during the development of wild-type yeast colonies, double mutations occur at rates that are up to 17-fold higher than those expected on the basis of single mutation rates. We found that this excess of double mutations is partially dependent on the ELG1/ATAD5 clamp unloader. Additionally, the double mutants retain wild-type mutation rates, suggesting that they originated from genetically wild-type cells that transiently expressed a mutator phenotype. Numerical simulations based on the experimentally measured mutation rates, confirmed that the excess of double mutations can be accounted for by subpopulations of transient mutators within the colony. These subpopulations would be limited to less than a few thousand cells and temporarily adopt mutation rates multiplied by hundreds or thousands for less than five generations. We found that the majority of double mutations would accumulate sequentially in different cell cycles. The simultaneous acquisition of both mutations during the same cell cycle would be rare and possibly associated with systemic genomic instability. In conclusion, our results suggest that transient hypermutators play a major role in genomic instability and contribute significantly to the mutational load naturally accumulating during the growth of isogenic cell populations. Significance statementUnderstanding the pace at which mutations accumulate is of paramount importance in the field of genome dynamics and evolution. In our study, we unveiled a surprising burst of mutations within growing yeast colonies, occurring independently of external stressors. This discovery indicates that, during short intervals, a small subset of cells within the colonies undergoes a mutational overdrive. Notably, these mutator cells do not represent genetically stable mutators with mutations in genes associated with genome stability. Instead, they stem from a strong mutator phenotype that was transiently expressed in genetically wild-type cells. This phenomenon, previously underestimated or even overlooked, holds significant importance and may have far-reaching implications, particularly in the context of cancer development.

genetics↗

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↗