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The Yersinia pestis GTPase BipA Promotes Pathogenesis of Primary Pneumonic Plague
Samantha D Crane1, Srijon K Banerjee1, Kara R Eichelberger2
1Department of Microbiology and Immunology, University of Arkansas for Medical Sciences, Little Rock, Arkansas, USA.
Abstract:
Yersinia pestis is a highly virulent pathogen and the causative agent of bubonic, septicemic, and pneumonic plague. Primary pneumonic plague caused by inhalation of respiratory droplets contaminated with Y. pestis is nearly 100% lethal within 4 to 7 days without antibiotic intervention. Pneumonic plague progresses in two phases, beginning with extensive bacterial replication in the lung with minimal host responsiveness, followed by the abrupt onset of a lethal proinflammatory response. The precise mechanisms by which Y. pestis is able to colonize the lung and survive two very distinct disease phases remain largely unknown. To date, a few bacterial virulence factors, including the Ysc type 3 secretion system, are known to contribute to the pathogenesis of primary pneumonic plague. The bacterial GTPase BipA has been shown to regulate expression of virulence factors in a number of Gram-negative bacteria, including Pseudomonas aeruginosa, Escherichia coli, and Salmonella enterica serovar Typhi. However, the role of BipA in Y. pestis has yet to be investigated. Here, we show that BipA is a Y. pestis virulence factor that promotes defense against early neutrophil-mediated bacterial killing in the lung. This work identifies a novel Y. pestis virulence factor and highlights the importance of early bacterial/neutrophil interactions in the lung during primary pneumonic plague.
Insights
The bacterial GTPase BipA is a novel virulence factor in Yersinia pestis, promoting survival against early neutrophil attacks in the lung during pneumonic plague.
Area of Science:
- Microbiology
- Pathogenesis
- Immunology
Background:
- Yersinia pestis causes plague, a deadly disease with high mortality rates for pneumonic plague without treatment.
- Pneumonic plague involves bacterial lung colonization and distinct disease phases, with mechanisms poorly understood.
- Bacterial GTPase BipA regulates virulence factors in other Gram-negative bacteria, but its role in Y. pestis is unknown.
Purpose of the Study:
- Investigate the role of BipA in Yersinia pestis pathogenesis.
- Determine if BipA contributes to bacterial survival and virulence in primary pneumonic plague.
Main Methods:
- Investigated the function of BipA in Yersinia pestis.
- Assessed BipA's role in bacterial defense against host immune responses, specifically neutrophils, in a lung infection model.
Main Results:
- BipA was identified as a Yersinia pestis virulence factor.
- BipA promotes bacterial defense against early neutrophil-mediated killing in the lung.
Conclusions:
- BipA is a novel virulence factor for Yersinia pestis.
- Early interactions between Y. pestis and neutrophils in the lung are critical during pneumonic plague pathogenesis.
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