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Updated: Jul 15, 2026

Methodology for the Study of Horizontal Gene Transfer in Staphylococcus aureus
Published on: March 10, 2017
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
Abstract:
The Mannheimia subclades belong to the same bacterial genus but have taken divergent paths toward their distinct lifestyles. M. haemolytica + M. glucosida are potential pathogens of the respiratory tract in the mammalian suborder Ruminantia, whereas M. ruminalis, the supposed sister group, lives as a commensal in the ovine rumen. We have tested the hypothesis that horizontal gene transfer of the leukotoxin operon has catalyzed pathogenic adaptation and speciation of M. haemolytica + M. glucosida, or other major subclades, by using a strategy that combines compositional and phylogenetic methods. We show that it has been vertically inherited from the last common ancestor of the diverging Mannheimia subclades, although several strains belonging to M. ruminalis have lost the operon. Our analyses support that divergence within M. ruminalis following colonization of the ovine rumen was very rapid and that functional decay of most of the leukotoxin operons occurred early when the adaptation to the rumen was fastest, suggesting that antagonistic pleiotropy was the main contributor to losses in the radiating lineages of M. ruminalis. To sum up, the scenario derived from these analyses reflects two aspects. On one hand, it opposes the hypothesis of horizontal gene transfer as a catalyst of pathogenic adaptation and speciation. On the other hand, it indicates that losses of the leukotoxin operons in the radiating lineages of M. ruminalis have catalyzed their adaptation to a commensal environment and reproductive isolation (speciation).
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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