Genetic basis for high population diversity in Protea-associated Knoxdaviesia

Janneke Aylward1, Emma T Steenkamp2, Léanne L Dreyer1

  • 1Department of Botany and Zoology, Stellenbosch University, Private Bag X1, Matieland, 7602, South Africa.

Insights

Sexual reproduction in Knoxdaviesia fungi relies on a heterothallic mating system. This study describes their mating type (MAT) loci, revealing genetic diversity driven by outcrossing and supporting their evolutionary placement.

Area of Science:

  • Mycology
  • Fungal Genetics
  • Evolutionary Biology

Background:

  • Sexual reproduction in Ascomycete fungi generates genetic diversity via mating type (MAT) loci.
  • Knoxdaviesia capensis and K. proteae exhibit high population diversity, suggesting outcrossing.
  • Understanding their MAT loci is crucial for fungal evolution studies.

Purpose of the Study:

  • To describe the MAT1 loci of Knoxdaviesia capensis and K. proteae.
  • To investigate the mating system of these host-specific fungi.
  • To infer the evolutionary history of the MAT locus in Microascales.

Main Methods:

  • Genome assembly analysis to identify MAT idiomorphs.
  • Long-range PCR and shotgun sequencing to characterize MAT loci.
  • Mating experiments and population analysis to confirm mating strategy.

Main Results:

  • Both K. capensis and K. proteae possess only one MAT idiomorph, indicating heterothallism.
  • MAT1-1 and MAT1-2 idiomorphs showed no sequence similarity, but homologous idiomorphs between species were nearly identical.
  • Gene content of MAT loci was similar to Ceratocystidaceae, with a unique MAT1-2-7 gene in Knoxdaviesia.

Conclusions:

  • Knoxdaviesia species employ a heterothallic mating system, driving genetic diversity.
  • The MAT locus structure in Knoxdaviesia reflects an ancestral Sordariomycete arrangement.
  • This study provides insights into fungal mating systems and evolutionary relationships.

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