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.
Abstract:
Yersinia pestis, the causative agent of plague, is typically transmitted by the bite of an infected flea. Many aspects of mammalian innate immune response early after Y. pestis infection remain poorly understood. A previous study by our lab showed that neutrophils are the most prominent cell type recruited to the injection site after intradermal needle inoculation of Y. pestis, suggesting that neutrophil interactions with Y. pestis may be important in bubonic plague pathogenesis. In the present study, we developed new tools allowing for intravital microscopy of Y. pestis in the dermis of an infected mouse after transmission by its natural route of infection, the bite of an infected flea. We found that uninfected flea bites typically induced minimal neutrophil recruitment. The magnitude of neutrophil response to flea-transmitted Y. pestis varied considerably and appeared to correspond to the number of bacteria deposited at the bite site. Macrophages migrated towards flea bite sites and interacted with small numbers of flea-transmitted bacteria. Consistent with a previous study, we observed minimal interaction between Y. pestis and dendritic cells; however, dendritic cells did consistently migrate towards flea bite sites containing Y. pestis. Interestingly, we often recovered viable Y. pestis from the draining lymph node (dLN) 1 h after flea feeding, indicating that the migration of bacteria from the dermis to the dLN may be more rapid than previously reported. Overall, the innate cellular host responses to flea-transmitted Y. pestis differed from and were more variable than responses to needle-inoculated bacteria. This work highlights the importance of studying the interactions between fleas, Y. pestis and the mammalian host to gain a better understanding of the early events in plague pathogenesis.
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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