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Published on: March 10, 2016
Genetic influences on asthma susceptibility in the developing lung
Nicole Carpe1, Isabel Mandeville, Leslie Ribeiro
1Department of Human Genetics, McGill University, 4060 Saint Catherine West, Montreal, PQ, Canada.
Insights
Early gene expression differences in developing lungs contribute to asthma susceptibility. This study in rat models reveals distinct respiratory phenotypes linked to genetic variations, offering insights into pediatric asthma origins.
Area of Science:
- Pulmonary Medicine
- Genetics
- Developmental Biology
Background:
- Asthma is a leading pediatric chronic illness, with rising prevalence in young children.
- Increased asthma rates are linked to early environmental exposures interacting with genetic susceptibility.
- Understanding the developmental origins of asthma is crucial for prevention and treatment.
Purpose of the Study:
- To investigate the origins of asthma susceptibility in the developing lung.
- To characterize distinct respiratory phenotypes and their genetic underpinnings in susceptible rat models.
- To identify key genes and biological pathways involved in early lung development and asthma pathogenesis.
Main Methods:
- Utilized Fisher and Brown Norway (BN) rat strains, modeling airway hyperresponsiveness and atopy, respectively.
- Analyzed lung tissue from different postnatal ages to assess gene expression and cellular changes.
- Employed transcriptomic analysis, linear regression, quantitative RT-PCR, and protein analysis to identify and validate gene expression patterns.
Main Results:
- BN rat pups exhibited increased epithelial proliferation and goblet cell hyperplasia.
- Fisher rat pups showed increased lung resistance and neutrophil infiltration.
- Identified 1,376 differentially expressed genes related to growth, development, extracellular matrix, cell adhesion, and immune function.
- Validated key genes including Col3a1, Ly6b, glucocorticoid receptor, Importin-13, Serpina1, and Ficolin B.
Conclusions:
- Innate differences in lung gene expression during development contribute to individual variations in respiratory phenotype.
- These early genetic variations are likely involved in the pathogenesis of pediatric asthma.
- The study provides a foundation for understanding how early-life exposures and genetic factors interact to influence asthma development.
Abstract:
Asthma is the leading serious pediatric chronic illness in the United States, affecting 7.1 million children. The prevalence of asthma in children under 4 years of age has increased dramatically in the last 2 decades. Existing evidence suggests that this increase in prevalence derives from early environmental exposures acting on a pre-existing asthma-susceptible genotype. We studied the origins of asthma susceptibility in developing lung in rat strains that model the distinct phenotypes of airway hyperresponsiveness (Fisher rats) and atopy (brown Norway [BN] rats). Postnatal BN rat lungs showed increased epithelial proliferation and tracheal goblet cell hyperplasia. Fisher pups showed increased lung resistance at age 2 weeks, with elevated neutrophils throughout the postnatal period. Diverse transcriptomic signatures characterized the distinct respiratory phenotypes of developing lung in both rat models. Linear regression across age and strain identified developmental variation in expression of 1,376 genes, and confirmed both strain and temporal regulation of lung gene expression. Biological processes that were heavily represented included growth and development (including the T Box 1 transcription factor [Tbx5], the epidermal growth factor receptor [Egfr], the transforming growth factor beta-1-induced transcript 1 [Tgfbr1i1]), extracellular matrix and cell adhesion (including collagen and integrin genes), and immune function (including lymphocyte antigen 6 (Ly6) subunits, IL-17b, Toll-interacting protein, and Ficolin B). Genes validated by quantitative RT-PCR and protein analysis included collagen III alpha 1 Col3a1, Ly6b, glucocorticoid receptor and Importin-13 (specific to the BN rat lung), and Serpina1 and Ficolin B (specific to the Fisher lung). Innate differences in patterns of gene expression in developing lung that contribute to individual variation in respiratory phenotype are likely to contribute to the pathogenesis of asthma.
Related Concept Videos
Asthma I: Introduction
Asthma-I: Introduction
Asthma: Pathogenesis and Management
Asthma is classified as allergic and non-allergic. Allergens such as dust mites, pollen, and pet dander trigger allergic asthma, while factors like cold air, intense emotions, or exercise can induce non-allergic asthma.
Asthma-II: Pathophysiology and Classification
Additionally, environmental and genetic factors play crucial roles in determining an individual's susceptibility to asthma and the severity of their condition.
Critical processes in asthma pathophysiology include:
Chronic Obstructive Pulmonary Disease I: Introduction
Chronic Obstructive Pulmonary Disease III: Chronic Bronchitis Features
