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Quantity and Quality of Inhaled Dose Predicts Immunopathology in Tuberculosis
Kevin P Fennelly1, Edward C Jones-López2
1Department of Medicine, Emerging Pathogens Institute, University of Florida , Gainesville, FL , USA.
Abstract:
Experimental animal models of tuberculosis (TB) have convincingly demonstrated that inhaled dose predicts immunopathology and survival. In contrast, the importance of inhaled dose has generally not been appreciated in TB epidemiology, clinical science, or the practice of TB control. Infectiousness of TB patients has traditionally been assessed using microscopy for acid-fast bacilli in the sputum, which should be considered only a risk factor. We have recently demonstrated that cough aerosol cultures from index cases with pulmonary TB are the best predictors of new infection among household contacts. We suggest that cough aerosols of M. tuberculosis are the best surrogates of inhaled dose, and we hypothesize that the quantity of cough aerosols is associated with TB infection versus disease. Although several factors affect the quality of infectious aerosols, we propose that the particle size distribution of cough aerosols is an important predictor of primary upper airway disease and cervical lymphadenitis and of immune responses in exposed hosts. We hypothesize that large droplet aerosols (>5 μ) containing M. tuberculosis deposit in the upper airway and can induce immune responses without establishing infection. We suggest that this may partially explain the large proportion of humans who never develop TB disease in spite of having immunological evidence of M. tuberculosis infection (e.g., positive tuberculin skin test or interferon gamma release assay). If these hypotheses are proven true, they would alter the current paradigm of latent TB infection and reactivation, further demonstrating the need for better biomarkers or methods of assessing TB infection and the risk of developing disease.
Insights
Tuberculosis (TB) patient cough aerosols, not sputum microscopy, best predict new infections. Aerosol particle size may explain why some infected individuals don't develop active TB disease.
Area of Science:
- Microbiology
- Immunology
- Epidemiology
Background:
- Inhaled dose is crucial in experimental tuberculosis (TB) models but often overlooked in human TB.
- Traditional infectiousness assessment via sputum microscopy is insufficient.
- Recent findings highlight cough aerosols as key predictors of TB transmission.
Purpose of the Study:
- To investigate the role of inhaled dose and M. tuberculosis (M.tb) cough aerosols in TB transmission and disease.
- To explore the association between cough aerosol quantity and TB infection versus disease.
- To determine if aerosol particle size influences disease manifestation and immune response.
Main Methods:
- Assessing M.tb cough aerosol cultures from TB patients to predict household transmission.
- Analyzing the quantity and particle size distribution of M.tb in cough aerosols.
- Correlating aerosol characteristics with upper airway disease, lymphadenitis, and host immune responses.
Main Results:
- Cough aerosol cultures from TB patients are superior predictors of new household infections compared to sputum microscopy.
- Hypothesized that aerosol particle size influences deposition site and subsequent immune response.
- Large droplet aerosols (>5 μm) may cause immune response without infection, potentially explaining latent TB.
Conclusions:
- Cough aerosols are better surrogates for inhaled M.tb dose than sputum microscopy.
- Aerosol particle size is a critical factor in TB pathogenesis, influencing upper airway disease and immune responses.
- Findings challenge current understanding of latent TB infection and reactivation, emphasizing the need for new biomarkers.
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