Virulence and antibiotic resistance characteristics of Pasteurella multocida from sheep: integrated genomic and

Zekai Wang1,2, Longhao Wang1,2, Chengcai Zhu1,2

  • 1Anhui Key Laboratory of Animal Infectious Disease Prevention and Control, Anhui Science and Technology University, Anhui, 233100, Fengyang, China, No. 9, Donghua Road, Fengyang County.

Insights

This study fully characterized a Pasteurella multocida (Pm) sheep isolate, revealing high virulence and multiple antimicrobial resistance genes. These findings offer crucial molecular insights for preventing and controlling Pm infections in livestock.

Area of Science:

  • Veterinary Microbiology
  • Genomics
  • Bacterial Pathogenesis

Background:

  • Pasteurella multocida (Pm) is a Gram-negative bacterium causing significant livestock respiratory diseases.
  • Ovine respiratory infections by Pm pose a substantial threat to the agricultural industry.

Purpose of the Study:

  • To comprehensively characterize a clinical ovine Pm isolate (YPm) using whole genome sequencing and other analyses.
  • To identify virulence factors and antimicrobial resistance genes within the YPm genome.
  • To assess the pathogenicity and antimicrobial resistance profile of the YPm isolate.

Main Methods:

  • Whole genome sequencing of the YPm isolate.
  • Analysis of biological characteristics and comparative genomics.
  • Antimicrobial susceptibility testing and pathogenicity assessment in a mouse model.

Main Results:

  • The YPm genome (2.3 Mbp) contains 2,140 protein-coding genes, including 126 virulence factors and 57 antimicrobial resistance genes.
  • The toxA gene was identified within a genomic island and prophage region, indicating potential horizontal gene transfer.
  • YPm showed intermediate resistance to lincomycin and clindamycin, with significant colonization and tissue damage in infected mice.

Conclusions:

  • The ovine-derived Pm capsular serotype D strain (YPm) exhibits high virulence and multiple predicted antimicrobial resistance genes.
  • Genomic and phenotypic data provide molecular insights into Pm pathogenesis.
  • Findings can inform clinical strategies for the prevention and control of Pm infections in sheep.

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