The Impact of Recombination Hotspots on Genome Evolution of a Fungal Plant Pathogen

Genetics. 2015 Nov;201(3):1213-28. doi: 10.1534/genetics.115.180968. Epub 2015 Sep 21.

Abstract

Recombination has an impact on genome evolution by maintaining chromosomal integrity, affecting the efficacy of selection, and increasing genetic variability in populations. Recombination rates are a key determinant of the coevolutionary dynamics between hosts and their pathogens. Historic recombination events created devastating new pathogens, but the impact of ongoing recombination in sexual pathogens is poorly understood. Many fungal pathogens of plants undergo regular sexual cycles, and sex is considered to be a major factor contributing to virulence. We generated a recombination map at kilobase-scale resolution for the haploid plant pathogenic fungus Zymoseptoria tritici. To account for intraspecific variation in recombination rates, we constructed genetic maps from two independent crosses. We localized a total of 10,287 crossover events in 441 progeny and found that recombination rates were highly heterogeneous within and among chromosomes. Recombination rates on large chromosomes were inversely correlated with chromosome length. Short accessory chromosomes often lacked evidence for crossovers between parental chromosomes. Recombination was concentrated in narrow hotspots that were preferentially located close to telomeres. Hotspots were only partially conserved between the two crosses, suggesting that hotspots are short-lived and may vary according to genomic background. Genes located in hotspot regions were enriched in genes encoding secreted proteins. Population resequencing showed that chromosomal regions with high recombination rates were strongly correlated with regions of low linkage disequilibrium. Hence, genes in pathogen recombination hotspots are likely to evolve faster in natural populations and may represent a greater threat to the host.

Keywords: linkage disequilibrium; pathogen evolution; population genomics; recombination hotspots; restriction site–associated DNA sequencing.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Ascomycota / genetics*
  • Biological Evolution*
  • Chromosome Mapping
  • Chromosomes, Fungal
  • Crossing Over, Genetic
  • Genetic Heterogeneity
  • Genome, Fungal*
  • Polymorphism, Single Nucleotide
  • Recombination, Genetic*
  • Triticum / microbiology