Understanding the recent colonization history of a plant pathogenic fungus using population genetic tools and

B Barrès1, J Carlier, M Seguin

  • 1CIRAD, UR Bioagresseurs: analyse et gestion du risque, Montpellier, France.

Heredity
|July 26, 2012
PubMed

Insights

South American Leaf Blight (SALB), caused by the fungus Microcyclus ulei, likely originated from two independent Amazonian sources. Human activity drove the spread of SALB in Brazil, Ecuador, and Guatemala, while spore dispersal led to its emergence in French Guiana.

Area of Science:

  • Plant pathology
  • Evolutionary biology
  • Population genetics

Background:

  • South American Leaf Blight (SALB), caused by the fungus Microcyclus ulei, significantly impacts rubber tree plantations across Latin America.
  • Understanding pathogen dispersal is crucial for disease management and pathogen diversity dynamics.

Purpose of the Study:

  • To investigate the dispersal processes and evolutionary history of Microcyclus ulei, the causal agent of SALB.
  • To decipher the origins and spread of M. ulei populations in Latin America.

Main Methods:

  • Population genetics analysis using 16 newly developed microsatellite markers.
  • Continental sampling across Brazil, Ecuador, Guatemala, and French Guiana.
  • Approximate Bayesian Computation (ABC) implemented in DIYABC to model colonization scenarios.

Main Results:

  • A very strong genetic structure was observed (Fst = 0.70), indicating limited gene flow between M. ulei populations.
  • Evidence suggests significant population bottlenecks during the establishment of new populations.
  • The study identified two independent colonization sources originating from the Amazonian endemic area.

Conclusions:

  • The Brazilian, Ecuadorian, and Guatemalan populations likely resulted from serial introductions via human-mediated transport of infected plant material.
  • The French Guiana population appears to have originated from an independent colonization event, possibly through natural spore dispersal.

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