Phylogenetic diversity, trichothecene potential, and pathogenicity within Fusarium sambucinum species complex

Imane Laraba1, Susan P McCormick1, Martha M Vaughan1

  • 1USDA, Agricultural Research Service, National Center for Agricultural Utilization Research, Mycotoxin Prevention and Applied Microbiology Research Unit. 1815 N. University, Peoria, IL, United States of America.

Plos One
|January 12, 2021
PubMed

Insights

The Fusarium sambucinum species complex (FSAMSC) contains 74 distinct species, many producing harmful trichothecene toxins. Pathogenicity on wheat is linked to specific toxin types, not just the Graminearum clade.

Area of Science:

  • Mycology
  • Plant Pathology
  • Molecular Phylogenetics

Background:

  • The Fusarium sambucinum species complex (FSAMSC) is taxonomically complex and includes significant mycotoxigenic plant pathogens.
  • Trichothecenes produced by FSAMSC members pose a major public health risk.
  • Understanding FSAMSC diversity and toxin production is crucial for food safety and crop protection.

Purpose of the Study:

  • To resolve the species diversity within the FSAMSC using a global strain collection.
  • To evaluate the trichothecene production potential and pathogenicity of FSAMSC species on wheat.
  • To investigate the relationship between phylogenetic clades, toxin profiles, and pathogenicity.

Main Methods:

  • Phylogenetic analysis of a 3-gene dataset for 171 FSAMSC strains.
  • In vitro assessment of trichothecene production.
  • Pathogenicity assays on wheat heads (susceptible cultivar Apogee).

Main Results:

  • The FSAMSC comprises 74 distinct species across six clades (Brachygibbosum, Graminearum, Longipes, Novel, Sambucinum, Sporotrichioides).
  • Most strains produced trichothecenes, with clade-specific patterns of type A, type B, or both.
  • Two novel species in the Sambucinum Clade produced new type A trichothecenes (15-keto NX-2, 15-keto NX-3).
  • Strains from the Graminearum Clade and two novel Sambucinum species were aggressive on wheat, producing specific trichothecenes (DON, NIV, NX-3, 15-keto NX-3).
  • Other clades showed limited pathogenicity and little to no toxin production.

Conclusions:

  • Phylogenetic resolution revealed significant hidden diversity within the FSAMSC.
  • Wheat pathogenicity is not restricted to the Graminearum Clade and is associated with specific trichothecene toxin types.
  • The discovery of novel species and trichothecenes expands our understanding of FSAMSC biology and risks.

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