Coexistence of Multiple Endemic and Pandemic Lineages of the Rice Blast Pathogen

Pierre Gladieux1, Sébastien Ravel2, Adrien Rieux3

  • 1UMR BGPI, Univ Montpellier, INRA, CIRAD, Montpellier SupAgro, Montpellier, France pierre.gladieux@inra.fr.

Mbio
|April 5, 2018
PubMed

Insights

The rice blast fungus Magnaporthe oryzae diversified about 1,000 years ago into six lineages, including two pandemic strains. Understanding its evolution aids in developing better control strategies for this global food security threat.

Area of Science:

  • Plant Pathology
  • Evolutionary Biology
  • Genomics

Background:

  • Magnaporthe oryzae (Pyricularia oryzae) is a major threat to global food security and a model organism in plant pathology.
  • Accurate understanding of M. oryzae population origins and descent is crucial for identifying pathogen adaptation mechanisms and improving control strategies.

Purpose of the Study:

  • To infer the genetic makeup and evolutionary history of M. oryzae using whole-genome sequence analysis.
  • To identify distinct lineages, their origins, and population dynamics within M. oryzae.
  • To investigate the evolutionary costs associated with the pandemic spread of clonal lineages.

Main Methods:

  • Whole-genome sequence analysis of a global collection of M. oryzae isolates.
  • Population structure analysis to identify distinct lineages.
  • Tip-dating calibration to estimate lineage divergence times.
  • Tests for natural selection to assess evolutionary costs.

Main Results:

  • Six distinct lineages of M. oryzae were identified, including two pandemic lineages affecting japonica and indica rice, and four with restricted distributions.
  • Lineage separation was estimated to have occurred approximately one millennium ago.
  • A lineage endemic to continental Southeast Asia showed evidence of sexual recombination and DNA acquisition from multiple sources.
  • Pandemic clonal lineages incurred an evolutionary cost due to the accumulation of deleterious mutations.

Conclusions:

  • Multiple endemic and pandemic lineages of M. oryzae coexist, exhibiting contrasting population and genetic characteristics.
  • The study provides a population-level genomic framework for developing molecular markers for rice blast control.
  • Findings facilitate investigations into the molecular basis of pathogenicity differences among M. oryzae lineages.

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