Interaction between mammalian cells and Pasteurella multocida B:2. Adherence, invasion and intracellular survival

Sarah Othman1, Roger Parton, John Coote

  • 1Institute of Infection, Immunity and Inflammation, College of Medical, Veterinary and Life Sciences, B215, Level 2, Biomedical Research Centre, University of Glasgow, 120 University Place, Glasgow G12 8TA, United Kingdom. s.othman.1@research.gla.ac.uk

Microbial Pathogenesis
|March 27, 2012
PubMed

Insights

Pasteurella multocida B:2 invades bovine lung cells, unlike other strains. This intracellular survival may explain its virulence in bovine haemorrhagic septicaemia (HS).

Area of Science:

  • Bacteriology
  • Cell Biology
  • Veterinary Pathology

Background:

  • Bovine haemorrhagic septicaemia (HS) is a severe disease caused by Pasteurella multocida B:2.
  • Understanding bacterial-host cell interactions is crucial for elucidating virulence mechanisms.

Purpose of the Study:

  • To investigate the interaction of Pasteurella multocida B:2 with embryonic bovine lung (EBL) cells.
  • To compare the invasive capabilities of P. multocida B:2 with other bovine respiratory pathogens.

Main Methods:

  • In vitro culture of EBL cells.
  • Infection assays with P. multocida B:2, P. multocida A:3, and Mannheimia haemolytica A1.
  • Inhibition studies using cytochalasin D.
  • Cell viability assessment using trypan blue staining.
  • Transmission electron microscopy (TEM).

Main Results:

  • P. multocida B:2 adhered to, invaded, and survived intracellularly within EBL cells for up to 7 hours.
  • M. haemolytica A1 and P. multocida A:3 adhered but were not found intracellularly.
  • Bacterial entry was an actin-dependent process.
  • P. multocida B:2 resided in a vacuolar compartment within EBL cells.
  • Only a subset of EBL cells were susceptible to invasion by P. multocida B:2.

Conclusions:

  • P. multocida B:2 possesses the unique ability to invade and survive within bovine lung cells.
  • This intracellular capacity is a potential virulence factor contributing to HS pathogenesis.
  • The findings highlight differences in host cell interaction among bovine respiratory pathogens.

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