Evidence for vertical inheritance and loss of the leukotoxin operon in genus Mannheimia

Jesper Larsen1, Anders G Pedersen, Henrik Christensen

  • 1Department of Veterinary Pathobiology, Faculty of Life Sciences, University of Copenhagen, Stigbøjlen, Frederiksberg C, Denmark. jesl@life.ku.dk

Insights

Horizontal gene transfer did not drive pathogenic adaptation in Mannheimia bacteria. Instead, leukotoxin operon loss facilitated commensal adaptation and speciation in M. ruminalis lineages.

Area of Science:

  • Bacteriology
  • Evolutionary Biology
  • Genomics

Background:

  • Mannheimia bacteria exhibit diverse lifestyles, with some species being respiratory pathogens and others commensals in ruminant digestive systems.
  • The leukotoxin operon is a key factor in the pathogenicity of certain Mannheimia species.

Purpose of the Study:

  • To investigate the role of horizontal gene transfer versus vertical inheritance in the evolution of pathogenic Mannheimia species.
  • To determine the evolutionary trajectory of the leukotoxin operon in diverging Mannheimia subclades.

Main Methods:

  • Phylogenetic analysis to trace the evolutionary history of the leukotoxin operon.
  • Compositional methods to analyze gene content and evolutionary patterns.
  • Comparative genomics of Mannheimia subclades with distinct lifestyles.

Main Results:

  • The leukotoxin operon was vertically inherited from the last common ancestor of Mannheimia subclades.
  • Several M. ruminalis strains have lost the leukotoxin operon, with losses occurring early during adaptation to the rumen.
  • Antagonistic pleiotropy is suggested as a driver for leukotoxin operon loss in M. ruminalis.

Conclusions:

  • Horizontal gene transfer is not the primary driver of pathogenic adaptation and speciation in Mannheimia.
  • Loss of the leukotoxin operon in M. ruminalis lineages facilitated adaptation to a commensal lifestyle and reproductive isolation (speciation).

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