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Integrin-mediated localization of Bordetella pertussis within macrophages: role in pulmonary colonization
K Saukkonen1, C Cabellos, M Burroughs
1Laboratory of Microbiology, Rockefeller University, New York, New York 10021.
Abstract:
The adherence of Bordetella pertussis to human respiratory cilia is critical to the pathogenesis of whooping cough but the significance of bacterial attachment to macrophages has not been determined. Adherence to cilia and macrophages is mediated by two large, nonfimbrial bacterial proteins, filamentous hemagglutinin (FHA), and pertussis toxin (PT). PT and FHA both recognize carbohydrates on cilia and macrophages; FHA also contains an Arg-Gly-Asp (RGD) sequence which promotes bacterial association with the macrophage integrin complement receptor 3 (CR3). We determined that virulent B. pertussis enter and survive in mammalian macrophages in vitro and that CR3 is important for this uptake process. We then determined the relative contribution of CR3 versus carbohydrate-dependent interactions to in vivo pulmonary colonization using a rabbit model. B. pertussis colonized the lung as two approximately equal populations, one extracellular population attached to ciliary and macrophage surface glycoconjugates and another population within pulmonary macrophages. Loss of the CR3 interaction, either by mutation of FHA or treatment with antibody to CR3, disrupted accumulation of viable intracellular bacteria but did not prevent lung pathology. In contrast, elimination of carbohydrate-bound bacteria, either by a competitive receptor analogue or an anti-receptor antibody, was sufficient to prevent pulmonary edema. We propose that CR3-dependent localization of B. pertussis within macrophages promotes persistence of bacteria in the lung without pulmonary injury. On the other hand, the presence of extracellular bacteria adherent to cilia and macrophages in carbohydrate-dependent interactions is associated with pulmonary pathology.
Insights
Bordetella pertussis uses two main strategies to infect lungs: intracellular survival via complement receptor 3 (CR3) and extracellular attachment to cilia. CR3 aids bacterial persistence, while carbohydrate interactions cause lung pathology.
Area of Science:
- Microbiology
- Immunology
- Pathogenesis
Background:
- Bordetella pertussis adherence to respiratory cilia is key for whooping cough.
- The role of bacterial attachment to macrophages in B. pertussis pathogenesis is unclear.
- Filamentous hemagglutinin (FHA) and pertussis toxin (PT) mediate bacterial adherence via carbohydrate recognition and CR3 interactions.
Purpose of the Study:
- To investigate the significance of B. pertussis attachment to macrophages.
- To determine the roles of CR3 and carbohydrate-dependent interactions in pulmonary colonization.
- To elucidate the mechanisms underlying B. pertussis-induced lung pathology.
Main Methods:
- In vitro studies of B. pertussis uptake and survival in macrophages.
- In vivo rabbit model to assess pulmonary colonization.
- Genetic manipulation of FHA and use of antibodies to block CR3 and carbohydrate interactions.
Main Results:
- Virulent B. pertussis can enter and survive within macrophages, with CR3 facilitating uptake.
- B. pertussis colonizes lungs in two populations: intracellular (CR3-dependent) and extracellular (carbohydrate-dependent).
- CR3-mediated intracellular localization promotes bacterial persistence without causing lung pathology, while extracellular adherence leads to pulmonary edema.
Conclusions:
- CR3-dependent macrophage localization allows B. pertussis to persist in the lung without causing injury.
- Extracellular bacterial adherence to cilia and macrophages via carbohydrate interactions is associated with pulmonary pathology.
- Distinct bacterial-host interactions mediate B. pertussis persistence and virulence in the respiratory tract.