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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.

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.

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