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Characterization of Inflammatory Responses During Intranasal Colonization with Streptococcus pneumoniae
Published on: January 17, 2014
Nasal Pneumococcal Density Is Associated with Microaspiration and Heightened Human Alveolar Macrophage Responsiveness
Elena Mitsi1, Beatriz Carniel1, Jesús Reiné1
1Department of Clinical Sciences, Liverpool School of Tropical Medicine, Liverpool, United Kingdom.
Abstract:
Rationale: Pneumococcal pneumonia remains a global health problem. Colonization of the nasopharynx with Streptococcus pneumoniae (Spn), although a prerequisite of infection, is the main source of exposure and immunological boosting in children and adults. However, our knowledge of how nasal colonization impacts on the lung cells, especially on the predominant alveolar macrophage (AM) population, is limited.Objectives: Using a controlled human infection model to achieve nasal colonization with 6B serotype, we investigated the effect of Spn colonization on lung cells.Methods: We collected BAL from healthy pneumococcal-challenged participants aged 18-49 years. Confocal microscopy and molecular and classical microbiology were used to investigate microaspiration and pneumococcal presence in the lower airways. AM opsonophagocytic capacity was assessed by functional assays in vitro, whereas flow cytometry and transcriptomic analysis were used to assess further changes on the lung cellular populations.Measurements and Main Results: AMs from Spn-colonized individuals exhibited increased opsonophagocytosis to pneumococcus (11.4% median increase) for approximately 3 months after experimental pneumococcal colonization. AMs also had increased responses against other bacterial pathogens. Pneumococcal DNA detected in the BAL samples of Spn-colonized individuals were positively correlated with nasal pneumococcal density (r = 0.71; P = 0.029). Similarly, AM-heightened opsonophagocytic capacity was correlated with nasopharyngeal pneumococcal density (r = 0.61, P = 0.025).Conclusions: Our findings demonstrate that nasal colonization with pneumococcus and microaspiration prime AMs, leading to brisker responsiveness to both pneumococcus and unrelated bacterial pathogens. The relative abundance of AMs in the alveolar spaces, alongside their potential for nonspecific protection, render them an attractive target for novel vaccines.
Insights
Nasal pneumococcal colonization primes alveolar macrophages, enhancing their ability to fight off pneumococcus and other bacteria for months. This suggests alveolar macrophages are a promising target for new vaccines.
Area of Science:
- Immunology
- Microbiology
- Respiratory Medicine
Background:
- Pneumococcal pneumonia is a significant global health concern.
- Nasopharyngeal colonization by Streptococcus pneumoniae (Spn) is a precursor to infection and a source of immune stimulation.
- The impact of Spn nasal colonization on lung cells, particularly alveolar macrophages (AMs), is not well understood.
Purpose of the Study:
- To investigate the effects of Spn nasal colonization on lung cells using a controlled human infection model.
- To determine how Spn colonization influences the function and responsiveness of alveolar macrophages.
Main Methods:
- Healthy adults (18-49 years) underwent controlled intranasal challenge with a 6B serotype Spn strain.
- Bronchoalveolar lavage (BAL) fluid was collected to assess microaspiration and pneumococcal presence.
- AM opsonophagocytic capacity was measured via in vitro functional assays.
- Flow cytometry and transcriptomic analysis were employed to evaluate cellular changes.
Main Results:
- AMs from colonized individuals showed enhanced opsonophagocytosis against Spn (median increase of 11.4%) for up to 3 months.
- Increased AM responsiveness was observed against other bacterial pathogens as well.
- Pneumococcal DNA in BAL correlated positively with nasal Spn density (r=0.71, P=0.029).
- Heightened AM opsonophagocytic capacity correlated with nasopharyngeal Spn density (r=0.61, P=0.025).
Conclusions:
- Nasal Spn colonization and microaspiration prime AMs, leading to heightened responses against Spn and other bacteria.
- AMs demonstrate potential for non-specific protection against respiratory pathogens.
- AMs represent a potential target for developing novel vaccines against pneumococcal disease.
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