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Updated: May 6, 2026

Direct Observation of Phagocytosis and NET-formation by Neutrophils in Infected Lungs using 2-photon Microscopy
Published on: June 2, 2011
Imaging early pathogenesis of bubonic plague: are neutrophils commandeered for lymphatic transport of bacteria?
David M Bland1, Deborah M Anderson
1Department of Veterinary Pathobiology, University of Missouri, Columbia, Missouri, USA.
Abstract:
Vector-borne infections begin in the dermis when a pathogen is introduced by an arthropod during a blood meal. Several barriers separate an invading pathogen from its replicative niche, including phagocytic cells in the dermis that activate immunity by engulfing would-be pathogens and migrating to the lymph node. In addition, neutrophils circulating in the blood are rapidly recruited when the dermal barriers are penetrated. For flea-borne disease, no insect-encoded immune-suppressive molecules have yet been described that might influence the establishment of infection, leaving the bacteria on their own to defend against the mammalian immune system. Shortly after a flea transmits Yersinia pestis to a mammalian host, the bacteria are transported to the lymph node, where they grow logarithmically and later spread systemically. Even a single cell of Y. pestis can initiate a lethal case of plague. In their article, J. G. Shannon et al. [mBio 4(5):e00170-13, 2013, doi:10.1128/mBio.00170-13] used intravital microscopy to visualize trafficking of Y. pestis in transgenic mice in vivo, which allowed them to examine interactions between bacteria and specific immune cells. Bacteria appeared to preferentially interact with neutrophils but had no detectable interactions with dendritic cells. These findings suggest that Y. pestis infection of neutrophils not only prevents their activation but may even result in their return to circulation and migration to distal sites.
Insights
Yersinia pestis, the plague bacterium, preferentially interacts with neutrophils, hindering immune activation and potentially facilitating its spread. This study visualizes bacterial trafficking in vivo, revealing key immune evasion strategies.
Area of Science:
- Microbiology
- Immunology
- Infectious Diseases
Background:
- Vector-borne infections initiate in the dermis upon pathogen introduction by arthropods.
- Mammalian immune cells, including phagocytes and neutrophils, act as barriers against invading pathogens.
- Yersinia pestis, the causative agent of plague, establishes infection in lymph nodes after transmission by fleas.
Purpose of the Study:
- To visualize the in vivo interactions between Yersinia pestis and host immune cells during early infection.
- To investigate how Yersinia pestis evades the mammalian immune system upon introduction by fleas.
Main Methods:
- Intravital microscopy was employed to observe bacterial trafficking in real-time within transgenic mice.
- Interactions between Yersinia pestis and specific immune cell populations, such as neutrophils and dendritic cells, were analyzed.
Main Results:
- Yersinia pestis demonstrated preferential interactions with neutrophils.
- No significant interactions were detected between Yersinia pestis and dendritic cells.
- Neutrophil interaction with Yersinia pestis appeared to inhibit neutrophil activation.
Conclusions:
- Yersinia pestis may evade immune detection by infecting neutrophils, preventing their activation.
- This interaction could lead to neutrophils returning to circulation and migrating to distal sites, aiding systemic spread.
- Understanding these early host-pathogen interactions is crucial for developing strategies against plague.
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