Exploring the role of asexual multiplication in poplar rust epidemics: impact on diversity and genetic structure

Benoît Barrès1, Cyril Dutech, Axelle Andrieux

  • 1INRA, UMR1136 IAM, F-54280, Champenoux, France.

Molecular Ecology
|September 13, 2012
PubMed

Insights

Asexual reproduction in poplar rust fungi (Melampsora larici-populina) primarily impacts genetic diversity at local scales (leaf, twig). Over time, clonal structures erode, increasing genetic diversity and highlighting the role of new infections in epidemics.

Area of Science:

  • Plant pathology
  • Population genetics
  • Fungal genetics

Background:

  • Rust fungi (Pucciniales) exhibit complex life cycles with sexual and asexual reproduction phases.
  • Understanding asexual reproduction's impact on pathogen genetic diversity is crucial for disease management.

Purpose of the Study:

  • To investigate the effect of asexual multiplication on the population genetic diversity of Melampsora larici-populina.
  • To determine the spatial and temporal scales of asexual reproduction's genetic signature.

Main Methods:

  • Nested hierarchical sampling across leaf, twig, tree, and site levels.
  • Analysis of 641 fungal isolates using nine microsatellite markers.
  • Sampling of cultivated and wild poplar stands at two epidemic time points.

Main Results:

  • Asexual multiplication's genetic signature was primarily detected at the leaf and twig levels in wild stands.
  • Clonal structure decreased over time, with increased gene and genotypic diversity.
  • New genotypes contributed to infections, indicating significant allo-infection during epidemics.
  • Cultivated stands showed less clonal structure than wild stands, correlating with higher infection levels.

Conclusions:

  • Population genetics approaches effectively quantify asexual reproduction and dispersal in plant pathogens.
  • Asexual reproduction plays a significant role in the epidemic dynamics of poplar rust.
  • Allo-infection is a key factor in the epidemic progression of Melampsora larici-populina.

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