Dermal neutrophil, macrophage and dendritic cell responses to Yersinia pestis transmitted by fleas

Jeffrey G Shannon1, Christopher F Bosio1, B Joseph Hinnebusch1

  • 1Plague Section, Laboratory of Zoonotic Pathogens, Rocky Mountain Laboratories, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Hamilton, Montana, United States of America.

Plos Pathogens
|March 18, 2015
PubMed

Insights

Early innate immune responses to flea-transmitted Yersinia pestis (plague bacteria) in mice are variable and differ from needle-introduced bacteria. Macrophages and neutrophils respond to the plague bacteria at the bite site, with rapid bacterial migration to lymph nodes observed.

Area of Science:

  • Infectious diseases
  • Immunology
  • Microbiology

Background:

  • Yersinia pestis causes plague, typically via flea bites.
  • Early innate immune responses to Y. pestis are not well understood.
  • Neutrophils are key early responders to needle-inoculated Y. pestis.

Purpose of the Study:

  • To investigate early innate immune responses to flea-transmitted Y. pestis using intravital microscopy.
  • To compare host responses to flea-transmitted versus needle-inoculated Y. pestis.
  • To understand the initial interactions between Y. pestis, fleas, and the mammalian host.

Main Methods:

  • Developed tools for intravital microscopy of Y. pestis in mouse dermis after flea transmission.
  • Observed neutrophil, macrophage, and dendritic cell recruitment and interaction at flea bite sites.
  • Monitored Y. pestis presence in draining lymph nodes post-flea feeding.

Main Results:

  • Uninfected flea bites caused minimal neutrophil recruitment.
  • Neutrophil response to flea-transmitted Y. pestis varied with bacterial load.
  • Macrophages migrated to bite sites; dendritic cells migrated but showed minimal interaction with bacteria.
  • Viable Y. pestis was detected in draining lymph nodes within 1 hour of flea feeding.
  • Host responses to flea-transmitted Y. pestis were more variable than to needle-inoculated bacteria.

Conclusions:

  • Innate immune responses to flea-transmitted Y. pestis are distinct and more variable than responses to needle inoculation.
  • Bacterial migration from the dermis to draining lymph nodes occurs rapidly after flea transmission.
  • Studying flea-Y. pestis-host interactions is crucial for understanding early plague pathogenesis.

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