Fungal genome and mating system transitions facilitated by chromosomal translocations involving intercentromeric

Sheng Sun1, Vikas Yadav2, R Blake Billmyre1

  • 1Department of Molecular Genetics and Microbiology, Duke University Medical Center, Durham, North Carolina, United States of America.

Plos Biology
|August 12, 2017
PubMed

Insights

Cryptococcus amylolentus, a non-pathogenic relative of human fungal pathogens, reveals insights into the evolution of mating systems. Its genome sequencing illuminates the transition from tetrapolar to bipolar mating, potentially linked to pathogenesis evolution.

Area of Science:

  • Mycology
  • Evolutionary Biology
  • Genomics

Background:

  • Human pathogenic Cryptococcus species cause significant global health burdens.
  • Cryptococcus amylolentus, a non-pathogenic relative, possesses a tetrapolar mating system with two mating type (MAT) loci (P/R and HD) on different chromosomes.
  • Pathogenic Cryptococcus species exhibit a derived bipolar mating system with a single MAT locus.

Purpose of the Study:

  • To investigate the genomic basis of mating system differences between C. amylolentus and pathogenic Cryptococcus species.
  • To understand the evolutionary transition from tetrapolar to bipolar mating systems.
  • To explore the potential link between mating system evolution and the origin of pathogenesis.

Main Methods:

  • Genome sequencing, assembly, and annotation of two C. amylolentus isolates (CBS6039 and CBS6273).
  • Comparative genomics to identify MAT locus boundaries and gene content.
  • Bioinformatic and chromatin immunoprecipitation sequencing (ChIP-seq) analyses of centromeres and repetitive elements.
  • Analysis of meiotic genetic linkage and chromosomal rearrangements.

Main Results:

  • The P/R and HD MAT loci boundaries and gene content in C. amylolentus were defined.
  • C. amylolentus possesses regional centromeres enriched with repetitive DNA, similar to pathogenic species.
  • MAT loci are not physically linked to centromeres but show genetic linkage during meiosis, suggesting suppressors or epistatic interactions.
  • Genomic comparisons indicate chromosomal rearrangements mediated by intercentromeric recombination during lineage divergence.

Conclusions:

  • The evolution of the bipolar mating system in pathogenic Cryptococcus species likely originated from an ectopic recombination event between chromosomes facilitated by shared repetitive centromeric DNA elements.
  • This event translocated the P/R and HD loci to the same chromosome, followed by further rearrangements leading to their physical linkage and fusion into a single MAT locus.
  • Studying C. amylolentus provides a model for understanding the evolutionary trajectory from tetrapolar to bipolar mating systems and its potential implications for pathogenesis.

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