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Updated: Nov 13, 2025

Murine Model of Allergen Induced Asthma
Published on: May 14, 2012
Endotype of allergic asthma with airway obstruction in urban children
Matthew C Altman1, Agustin Calatroni2, Sima Ramratnam3
1Immunology Division, Benaroya Research Institute Systems, Seattle, Wash; Department of Medicine, University of Washington, Seattle, Wash.
Insights
High-risk urban children develop distinct asthma phenotypes linked to early life exposures and gene expression. These findings reveal molecular pathways underlying allergic and nonallergic asthma in children.
Area of Science:
- Pediatric Respiratory Medicine
- Environmental Health
- Molecular Biology
Background:
- Disadvantaged urban neighborhoods disproportionately affect Black and Hispanic children with high asthma rates.
- Understanding respiratory phenotypes and their molecular underpinnings in this population is critical.
Purpose of the Study:
- Identify distinct respiratory phenotypes in high-risk urban children.
- Correlate these phenotypes with early life exposures.
- Analyze molecular patterns of gene expression in nasal epithelial cells.
Main Methods:
- Longitudinal study of 442 high-risk urban children through age 10.
- Assessed wheezing, allergen-specific IgE, and lung function.
- Developed temporal trajectories for phenotypes and analyzed nasal gene expression at age 11.
Main Results:
- Six respiratory phenotypes were identified; a high wheeze, high atopy, low lung function group showed greatest morbidity.
- This group had low allergen and high ergosterol exposure.
- Specific gene expression modules (IL-13 response, MUC5AC hypersecretion) were linked to impaired lung function and phenotype.
Conclusions:
- Distinct respiratory phenotypes emerge in early childhood, connecting environmental exposures to allergic sensitization and asthma.
- Airway gene expression patterns elucidate molecular pathways for allergic and nonallergic asthma phenotypes.
Background:
Black and Hispanic children growing up in disadvantaged urban neighborhoods have the highest rates of asthma and related morbidity in the United States.
Objectives:
This study sought to identify specific respiratory phenotypes of health and disease in this population, associations with early life exposures, and molecular patterns of gene expression in nasal epithelial cells that underlie clinical disease.
Methods:
The study population consisted of 442 high-risk urban children who had repeated assessments of wheezing, allergen-specific IgE, and lung function through 10 years of age. Phenotypes were identified by developing temporal trajectories for these data, and then compared to early life exposures and patterns of nasal epithelial gene expression at 11 years of age.
Results:
Of the 6 identified respiratory phenotypes, a high wheeze, high atopy, low lung function group had the greatest respiratory morbidity. In early life, this group had low exposure to common allergens and high exposure to ergosterol in house dust. While all high-atopy groups were associated with increased expression of a type-2 inflammation gene module in nasal epithelial samples, an epithelium IL-13 response module tracked closely with impaired lung function, and a MUC5AC hypersecretion module was uniquely upregulated in the high wheeze, high atopy, low lung function group. In contrast, a medium wheeze, low atopy group showed altered expression of modules of epithelial integrity, epithelial injury, and antioxidant pathways.
Conclusions:
In the first decade of life, high-risk urban children develop distinct phenotypes of respiratory health versus disease that link early life environmental exposures to childhood allergic sensitization and asthma. Moreover, unique patterns of airway gene expression demonstrate how specific molecular pathways underlie distinct respiratory phenotypes, including allergic and nonallergic asthma.
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