Related Experiment Video
Updated: Aug 9, 2026

'Bioluminescent' Reporter Phage for the Detection of Category A Bacterial Pathogens
Published on: July 8, 2011
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.
Abstract:
Yersinia pestis is a gram-negative, zoonotic, bacterial pathogen, and the causative agent of plague. The bubonic form of plague occurs subsequent to deposition of bacteria in the skin by the bite of an infected flea. Neutrophils are recruited to the site of infection within the first few hours and interactions between neutrophils and Y. pestis have been demonstrated in vivo. In contrast to macrophages, neutrophils have been considered non-permissive to Y. pestis intracellular survival. Several studies have shown killing of the vast majority of Y. pestis ingested by human neutrophils. However, survival of 10-15% of Y. pestis after phagocytosis by neutrophils is consistently observed. Furthermore, these surviving bacteria eventually replicate within and escape from the neutrophils. We set out to further characterize the interactions between Y. pestis and human neutrophils by (1) determining the effects of known Y. pestis virulence factors on bacterial survival after uptake by neutrophils, (2) examining the mechanisms employed by the neutrophil to kill the majority of intracellular Y. pestis, (3) determining the activation phenotype of Y. pestis-infected neutrophils, and (4) characterizing the Y. pestis-containing phagosome in neutrophils. We infected human neutrophils in vitro with Y. pestis and assayed bacterial survival and uptake. Deletion of the caf1 gene responsible for F1 capsule production resulted in significantly increased uptake of Y. pestis. Surprisingly, while the two-component regulator PhoPQ system is important for survival of Y. pestis within neutrophils, pre-induction of this system prior to infection did not increase bacterial survival. We used an IPTG-inducible mCherry construct to distinguish viable from non-viable intracellular bacteria and determined the association of the Y. pestis-containing phagosome with neutrophil NADPH-oxidase and markers of primary, secondary and tertiary granules. Additionally, we show that inhibition of reactive oxygen species (ROS) production or Src family kinases increased survival of intracellular bacteria indicating that both ROS and granule-phagosome fusion contribute to neutrophil killing of Y. pestis. The data presented here further our understanding of the Y. pestis neutrophil interactions and suggest the existence of still unknown virulence factors involved in Y. pestis survival within neutrophils.
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.
More Related Videos
12:27Author Spotlight: Balancing Speed, Cost, and Accuracy in Neutrophil Function Assessment with NeutroFun Screen Protocol
Published on: February 9, 2024
08:36Quantifying Yersinia pseudotuberculosis Type III Secretion System Activity Following Iron Starvation and Anaerobic Growth
Published on: May 31, 2024