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Transitions in sexuality: recapitulation of an ancestral tri- and tetrapolar mating system in Cryptococcus neoformans
Yen-Ping Hsueh1, James A Fraser, Joseph Heitman
1Department of Molecular Genetics and Microbiology, Duke University Medical Center, Durham, North Carolina 27710, USA.
Abstract:
Sex is orchestrated by the mating-type locus (MAT) in fungi and by sex chromosomes in plants and animals. In fungi, two patterns of sexuality occur: bipolar with a single, typically biallelic sex determinant that promotes inbreeding, and tetrapolar with two unlinked, often multiallelic sex determinants that restrict inbreeding. Multiallelism in either bipolar or tetrapolar mating systems promotes outcrossing. Cryptococcus neoformans is a pathogenic bipolar yeast with two unusually large MAT alleles (a/alpha) spanning >100 kb, approximately 100-fold larger than many other fungal MAT loci. Based on comparative genomic analysis, this unusual MAT locus is hypothesized to have evolved from an ancestral tetrapolar system. In this model, the unlinked homeodomain (HD) transcription factor and pheromone/receptor tetrapolar loci acquired additional sex-related genes and then fused via chromosomal translocation, forming an intermediate transitional mating system (which we term tripolar), which then underwent recombination and gene conversion to fashion the extant bipolar MAT alleles. To experimentally validate this model, C. neoformans was engineered to have a tetrapolar mating system by relocating the MAT SXI1alpha and SXI2a HD genes to an unlinked genomic locale. Genetic and molecular analyses revealed that this modified organism could complete a tetrapolar sexual cycle. Analysis of progeny generated from bipolar, tripolar, and tetrapolar crosses provides direct experimental evidence that the tripolar state confers decreased fertility and therefore may represent an unstable evolutionary intermediate. These findings illustrate how transitions between outcrossing and inbreeding preference occur by involving sex determinant linkage and collapse from multiallelic to biallelic sex determination, providing insights into both fungal sex evolution and early steps in sex chromosome evolution.
Insights
Fungal mating systems evolved from tetrapolar to bipolar through gene fusion, with a transitional "tripolar" state showing reduced fertility. This study demonstrates how mating-type locus linkage influences outcrossing and inbreeding preferences in fungal sex evolution.
Area of Science:
- Mycology
- Evolutionary Biology
- Genetics
Background:
- Fungal mating systems are controlled by the mating-type locus (MAT), with bipolar and tetrapolar patterns influencing inbreeding or outcrossing.
- Cryptococcus neoformans, a pathogenic yeast, possesses unusually large MAT alleles, suggesting a unique evolutionary path.
Purpose of the Study:
- To experimentally validate the hypothesis that the large MAT locus in C. neoformans evolved from an ancestral tetrapolar system via gene fusion.
- To investigate the evolutionary stability and fertility of a transitional "tripolar" mating system.
Main Methods:
- Comparative genomic analysis to infer evolutionary history.
- Genetic engineering of C. neoformans to create a tetrapolar mating system by relocating homeodomain genes.
- Analysis of sexual cycle completion and progeny fertility in engineered and natural mating systems.
Main Results:
- Engineered C. neoformans successfully completed a tetrapolar sexual cycle.
- The transitional "tripolar" mating system exhibited significantly decreased fertility compared to bipolar and tetrapolar systems.
- Evidence suggests sex determinant linkage and allelic complexity are key factors in fungal mating system evolution.
Conclusions:
- The study provides experimental support for the evolution of bipolar mating systems from tetrapolar systems through gene fusion and translocation.
- The "tripolar" state represents an unstable intermediate, highlighting the selective pressures favoring either inbreeding or outcrossing.
- Findings offer insights into the evolution of fungal sex determination and early stages of sex chromosome evolution.
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