MLST analysis reveals a highly conserved core genome among poultry isolates of Clostridium septicum

Anthony P Neumann1, Thomas G Rehberger

  • 1Agtech Products, Inc., W227 N752 Westmound Drive, Waukesha, WI 53186, USA. anthony.neumann@danisco.com

Anaerobe
|April 30, 2009
PubMed

Insights

Clostridium septicum, a cause of poultry disease, shows a mostly clonal population structure. This finding is crucial for understanding and managing gangrenous dermatitis outbreaks in commercial flocks.

Area of Science:

  • Microbiology
  • Veterinary Science
  • Genetics

Background:

  • Clostridium septicum is a virulent anaerobic bacterium causing necrotizing infections and producing toxins.
  • Poultry flocks are experiencing a resurgence of Clostridium septicum-associated gangrenous dermatitis.
  • The epidemiology and population structure of Clostridium septicum in poultry remain poorly understood.

Purpose of the Study:

  • To investigate the evolutionary relationships and population structure of Clostridium septicum isolates from poultry.
  • To utilize multilocus sequence typing (MLST) to analyze genetic diversity within these isolates.

Main Methods:

  • A multilocus sequence typing (MLST) approach was employed.
  • Ten loci, including the csa toxin gene and housekeeping genes (gyrA, groEL, dnaK, recA, tpi, ddl, colA, glpK), were analyzed.
  • 109 Clostridium septicum isolates from turkey and broiler chicken flocks were sequenced and compared to the type strain.

Main Results:

  • High sequence conservation was observed across analyzed loci, with 99.7% of the data being absolutely conserved among isolates.
  • Ten unique sequence types were identified, with only one shared between turkey and broiler isolates, suggesting host preference.
  • Phylogenetic analysis revealed two distinct clonal complexes, indicating a predominantly clonal population structure with some recombination.

Conclusions:

  • Clostridium septicum in poultry exhibits a largely clonal population structure.
  • The identified clonal complexes may have significant epidemiological implications for disease management in poultry.
  • Further research into recombination events could refine our understanding of Clostridium septicum evolution and transmission.

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