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Modulation of macrophage function for defence of the lung against Pseudomonas aeruginosa

D P Speert1, S Y Wong, M Macdonald

  • 1Department of Pediatrics, University of British Columbia, Vancouver, Canada.

Behring Institute Mitteilungen
|February 1, 1997
PubMed

Insights

Pseudomonas aeruginosa evades immune clearance by utilizing glucose-dependent phagocytosis. Enhancing glucose transport in lung macrophages could be a novel therapy for respiratory infections.

Area of Science:

  • Immunology
  • Microbiology
  • Cell Biology

Background:

  • Pseudomonas aeruginosa is a significant respiratory pathogen, particularly in cystic fibrosis patients.
  • Its pathogenicity may stem from evading phagocytic clearance by immune cells.
  • Macrophage phagocytosis of P. aeruginosa is uniquely dependent on glucose.

Purpose of the Study:

  • To elucidate the glucose-dependent phagocytosis mechanism of P. aeruginosa.
  • To develop novel therapeutic strategies for clearing P. aeruginosa from the lower respiratory tract.

Main Methods:

  • Investigated glucose transport via GLUT1 isoform in macrophages.
  • Utilized glucose analogs (2-deoxyglucose, 5-thioglucose) to assess glucose metabolism's role.
  • Examined pulmonary alveolar macrophages (PAMs) and their glucose transport/phagocytosis capabilities.
  • Assessed the impact of sodium azide on PAMs' oxidative phosphorylation, glucose transport, and phagocytosis.
  • Employed RT-PCR to identify glucose transporters in lung tissue.

Main Results:

  • P. aeruginosa phagocytosis by macrophages requires facilitated glucose transport via GLUT1 and subsequent metabolism.
  • Freshly isolated PAMs exhibit impaired glucose transport and phagocytosis, unlike other macrophage types.
  • In vitro culture or sodium azide treatment restores PAMs' glucose transport and phagocytic function.
  • Sodium azide treatment enhances glucose transport and phagocytosis in PAMs by inhibiting oxidative respiration.
  • Sodium-dependent glucose transporter (SGLT) family members are expressed in human and murine lungs.

Conclusions:

  • P. aeruginosa's pathogenicity is linked to its ability to exploit glucose availability for immune evasion.
  • PAMs' unique metabolic state contributes to their reduced phagocytic capacity for P. aeruginosa.
  • Targeting glucose metabolism or transport in PAMs presents a promising therapeutic avenue.
  • Further research into lung glucose transporters and targeted delivery methods is warranted for novel therapies.

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