Continuing evolution of Burkholderia mallei through genome reduction and large-scale rearrangements

Liliana Losada1, Catherine M Ronning, David DeShazer

  • 1J. Craig Venter Institute, Rockville, Maryland, USA. llosada@jcvi.org

Insights

Burkholderia mallei (Bm) shows reduced genetic diversity compared to Burkholderia pseudomallei (Bp). Insertion sequences likely drive Bm genome evolution and gene loss, contributing to its distinct characteristics.

Area of Science:

  • Genomics
  • Microbiology
  • Evolutionary Biology

Background:

  • Burkholderia mallei (Bm) causes glanders, primarily in horses.
  • Burkholderia pseudomallei (Bp) is a related species causing melioidosis in humans.
  • Bm exhibits significantly less genetic diversity than Bp.

Purpose of the Study:

  • To investigate the genomic basis for the low genetic diversity in Bm.
  • To compare the genomes of Bm and Bp strains.
  • To understand the evolutionary mechanisms shaping the Bm genome.

Main Methods:

  • Whole-genome comparative analysis of seven Bm strains and eight Bp strains.
  • Analysis of core and variable gene sets.
  • Identification of insertion sequence (IS) elements and their role in genome rearrangement.

Main Results:

  • The Bm core genome is smaller than Bp's, but Bm has larger variable gene sets.
  • Bm variable gene sets have more homogeneous biological roles compared to Bp.
  • Bm variable genes are often located in regions flanked by IS elements, suggesting gene elimination.

Conclusions:

  • IS elements appear to mediate gene excision and reduction in the Bm genome.
  • Genome evolution in Bm involves IS-mediated recombination, potentially explaining virulence differences.
  • Bm likely evolved from a single Bp strain, undergoing genome reduction and rearrangement.

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