Pneumococcal pneumonia suppresses allergy development but preserves respiratory tolerance in mice

Carolin Hartmann1, Ann-Kathrin Behrendt1, Stefanie Henken2

  • 1Hannover Medical School, Department of Pediatrics and Adolescent Medicine, Pediatric Pneumology, Allergology and Neonatology, Hannover, Germany.

Immunology Letters
|January 11, 2015
PubMed

Insights

Lung infection with Streptococcus pneumoniae (S. pneumoniae) may reduce allergic asthma development in mice, even after allergy onset. Importantly, respiratory tolerance remained unaffected, suggesting a role for mucosal tolerance in preventing human allergies.

Area of Science:

  • Immunology
  • Microbiology
  • Respiratory Medicine

Background:

  • Colonization with Streptococcus pneumoniae (S. pneumoniae) is linked to increased risk of recurrent wheeze and asthma.
  • Previous studies indicated killed S. pneumoniae has immunomodulatory potential in murine asthma models.
  • Symbiotic bacteria can protect against allergic asthma by activating regulatory T cells.

Purpose of the Study:

  • To investigate the impact of live S. pneumoniae lung infection on allergic airway inflammation and respiratory tolerance.
  • To determine if infection timing (before or after allergy/tolerance induction) influences outcomes.
  • To assess the effect of S. pneumoniae infection on the development and maintenance of allergic responses and tolerance.

Main Methods:

  • BALB/c mice were infected intratracheally with S. pneumoniae.
  • Infection occurred either before or after ovalbumin (OVA)-induced tolerance or allergy.
  • Allergic phenotype was assessed by eosinophil counts, IgE levels, and Th2 cytokines; tolerance was evaluated via OVA challenge.

Main Results:

  • S. pneumoniae infection prior to sensitization or after allergy onset suppressed allergic phenotype development (reduced eosinophils, IgE, Th2 cytokines).
  • Infection after allergy onset with late re-challenge did not alter the allergic response.
  • Induction and maintenance of respiratory tolerance to OVA were unaffected by S. pneumoniae infection.

Conclusions:

  • Bacterial infection, like S. pneumoniae pneumonia, can decrease allergic phenotype manifestation in mice, irrespective of infection timing relative to sensitization or allergy onset.
  • Mucosal tolerance induction and maintenance are robust and not impaired by S. pneumoniae infection.
  • These findings highlight the potential role of intact mucosal tolerance in preventing allergic inflammation in humans.