Characterization of Yersinia pestis Interactions with Human Neutrophils In vitro

Sophia C Dudte1, B Joseph Hinnebusch1, Jeffrey G Shannon1

  • 1Laboratory of Zoonotic Pathogens, Rocky Mountain Laboratories, National Institute of Allergy and Infectious Diseases, National Institutes of HealthHamilton, MT, United States.

Insights

Yersinia pestis survives within human neutrophils, despite neutrophil defenses like reactive oxygen species. Understanding these bacterial-neutrophil interactions reveals potential new virulence factors for Yersinia pestis.

Area of Science:

  • Microbiology
  • Immunology
  • Bacterial Pathogenesis

Background:

  • Yersinia pestis causes plague and infects humans via flea bites.
  • Neutrophils are recruited to Y. pestis infections but were thought to be non-permissive for bacterial survival.
  • A fraction of Y. pestis survives neutrophil phagocytosis and replicates intracellularly.

Purpose of the Study:

  • To characterize Yersinia pestis interactions with human neutrophils.
  • To investigate Y. pestis virulence factors affecting intracellular survival.
  • To elucidate neutrophil mechanisms for killing Y. pestis and the activation phenotype of infected neutrophils.

Main Methods:

  • In vitro infection of human neutrophils with Y. pestis strains.
  • Assessing bacterial survival, uptake, and phagosome-neutrophil component association.
  • Utilizing gene deletion mutants (caf1, PhoPQ) and reporter constructs (mCherry).

Main Results:

  • Deletion of the caf1 gene increased Y. pestis uptake by neutrophils.
  • The PhoPQ system is crucial for Y. pestis survival within neutrophils.
  • Reactive oxygen species (ROS) and granule-phagosome fusion are key neutrophil killing mechanisms.
  • Inhibition of ROS or Src family kinases enhanced intracellular Y. pestis survival.

Conclusions:

  • Neutrophils employ ROS and granule fusion to kill Y. pestis, but a subset survives.
  • Y. pestis utilizes specific virulence factors, including the PhoPQ system, for intracellular survival.
  • Unknown virulence factors likely contribute to Y. pestis survival within neutrophils, warranting further investigation.