High variability in a mating type linked region in the dry rot fungus Serpula lacrymans caused by frequency-dependent

Ingeborg Bjorvand Engh1, Inger Skrede, Glenn-Peter Saetre

  • 1Microbial Evolution Research Group, Department of Biology, University of Oslo, PO Box 1066 Blindern, N-0316 Oslo, Norway.

BMC Genetics
|July 14, 2010
PubMed
Abstract

Insights

Negative frequency-dependent selection maintains high genetic variation in mating type loci (MAT A) of the dry rot fungus Serpula lacrymans, even after population bottlenecks. This study reveals insights into fungal mating type evolution and distribution.

Area of Science:

  • Mycology
  • Evolutionary Genetics

Background:

  • Mating type loci in fungi are influenced by negative frequency-dependent selection, favoring rare alleles.
  • The dry rot fungus Serpula lacrymans, a destructive pathogen, has a wide distribution and has recently undergone a genetic bottleneck.

Purpose of the Study:

  • To investigate the allelic richness and geographic distribution of mating types at the MAT A locus in global Serpula lacrymans populations.
  • To use a mating type-linked DNA marker as a proxy for studying mating type diversity.

Main Methods:

  • Utilized a mating type-linked DNA marker to indirectly assess allelic richness and geographic distribution of MAT A mating types.
  • Compared genetic variation in the mating type-linked marker with presumably neutral markers across natural and anthropogenic populations.
  • Analyzed allelic co-occurrence in founder populations and examined trans-species polymorphism with related species.

Main Results:

  • The mating type-linked marker exhibited higher allelic richness and molecular variation than neutral markers.
  • Populations from nature and buildings showed comparable genetic variation in the mating type marker, unlike neutral markers.
  • Geographic structuring was less pronounced for the mating type marker compared to neutral markers.
  • Founder populations displayed more divergent co-occurring alleles than expected, consistent with rare allele advantage.
  • Observed trans-species polymorphism between Serpula lacrymans and Serpula himantoides.

Conclusions:

  • Strong negative frequency-dependent selection effectively maintains high genetic variation in MAT-linked genomic regions.
  • This high variation persists even in populations of Serpula lacrymans that have experienced recent genetic bottlenecks.

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