Genomic insights into a Proteus mirabilis strain inducing avian cellulitis

Bruno Henrique Dias de Oliva1, Arthur Bossi do Nascimento1, João Paulo de Oliveira2

  • 1Laboratory of Bacteriology, Department of Microbiology, Center of Biological Sciences, State University of Londrina, Rodovia Celso Garcia Cid, PO-BOX 6001, Londrina, 86051-980, Paraná, Brazil.

Insights

Proteus mirabilis causes avian cellulitis in chickens, a skin infection. This study found unique genes in the bacteria but identified no direct role in cellulitis, suggesting a multifactorial disease process.

Area of Science:

  • Veterinary Microbiology
  • Genomics
  • Animal Pathology

Background:

  • Proteus mirabilis is known for urinary tract infections but is increasingly linked to avian cellulitis in broiler chickens.
  • Avian Pathogenic Escherichia coli (APEC) is the primary cause of avian cellulitis, but P. mirabilis involvement is emerging.
  • Understanding the genetic basis of P. mirabilis in avian cellulitis is crucial for animal welfare.

Purpose of the Study:

  • To investigate unique genes in P. mirabilis strains associated with avian cellulitis using a pan-genomic approach.
  • To compare the genome of a P. mirabilis strain causing avian cellulitis (LBUEL-A33) with other strains.
  • To conduct in silico serogroup analysis to identify potential virulence factors.

Main Methods:

  • Pan-genomic analysis of P. mirabilis strains.
  • Genome assembly of the LBUEL-A33 strain.
  • In silico serogroup analysis and virulence potential assessment.

Main Results:

  • Numerous genes unique to the LBUEL-A33 strain were identified.
  • No direct function in cellulitis was determined for the unique genes.
  • In silico analysis of exclusive proteins did not conclusively identify virulence potential.
  • Antigenic gene clusters were identified, but no clear trend or homology with known Proteus serogroups was observed for LBUEL-A33.

Conclusions:

  • The pathogenesis of P. mirabilis in avian cellulitis is multifactorial.
  • P. mirabilis likely utilizes its own unique virulence factors, analogous to E. coli mechanisms.
  • Further research is needed to elucidate the mechanisms of P. mirabilis-induced avian cellulitis for effective control strategies.

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