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A Reversible, Non-invasive Method for Airway Resistance Measurements and Bronchoalveolar Lavage Fluid Sampling in Mice
Published on: April 13, 2010
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.
Abstract:
Colonization with Streptococcus pneumoniae (S. pneumoniae) is associated with an increased risk for recurrent wheeze and asthma. Killed S. pneumoniae showed some potential as an effective immunomodulatory therapy in a murine model of asthma. Murine studies demonstrated protection against allergic asthma by symbiotic bacteria via triggering regulatory T cell response: treatment with killed S. pneumoniae resulted in suppressed levels of allergen-specific Th2 cytokines, while early immunization generated a protective Th1 response. We investigated the impact of lung infection with live S. pneumoniae on both the development and maintenance of allergic airway inflammation and respiratory tolerance in mice. BALB/c mice were infected intratracheally with S. pneumoniae either prior to or after tolerance or allergy were induced, using ovalbumin (OVA) as model allergen. Infection of mice with S. pneumoniae prior to sensitization or after manifestation of allergic airway inflammation suppressed the development of an allergic phenotype as judged by reduced eosinophil counts in bronchoalveolar lavage fluid, decreased IgE serum levels and Th2 cytokines, relative to non-infected allergic control mice. In contrast, infection of mice with S. pneumoniae after manifestation of allergic airway inflammation combined with late mucosal re-challenge did not affect the allergic response. Moreover, induction and maintenance of respiratory tolerance to OVA challenge were not altered in S. pneumoniae-infected mice, demonstrating that mice remained tolerant to the model allergen and were protected from the development of allergic airway inflammation regardless of the time point of infection. Our results suggest that a bacterial infection may decrease the manifestation of an allergic phenotype not only prior to sensitization but also after manifestation of allergic airway inflammation in mice, whereas both, induction and maintenance of respiratory tolerance are not affected by pneumococcal pneumonia. These data may point to a role for undisturbed development and maintenance of mucosal tolerance for the prevention of allergic inflammation also in humans.
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.

