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Published on: April 13, 2010
Obstruction phenotype as a predictor of asthma severity and instability in children
Ronald L Sorkness1, Edward M Zoratti2, Meyer Kattan3
1University of Wisconsin-Madison School of Pharmacy, Madison, Wis; Department of Medicine, University of Wisconsin School of Medicine and Public Health, Madison, Wis; Department of Pediatrics, University of Wisconsin School of Medicine and Public Health, Madison, Wis.
Insights
Air trapping, identified through spirometry, indicates a higher risk for asthma severity and instability in children. This finding helps identify children needing closer asthma management.
Area of Science:
- Pediatric Pulmonology
- Respiratory Medicine
- Asthma Research
Background:
- Small-airways instability and premature airway closure are linked to severe asthma and poor control.
- Spirometry has limitations in detecting small-airways dysfunction, necessitating alternative approaches.
- Focusing on air-trapping may reveal a risk factor for asthma instability.
Purpose of the Study:
- To utilize spirometric measurements to identify airway obstruction patterns in children.
- To define obstruction phenotypes associated with asthma instability.
Main Methods:
- Spirometric data (pre- and post-bronchodilation) from 560 children were analyzed.
- An air-trapping obstruction phenotype (A Trpg) was defined by FVC z-score or bronchodilation response.
- An airflow limitation phenotype (A Limit) was defined by FEV1/FVC z-score, excluding A Trpg.
Main Results:
- The A Trpg phenotype, present in 14% of children, showed significantly more exacerbations.
- Patients with A Trpg had higher asthma severity scores and treatment steps.
- A Trpg was associated with greater variability in FEV1 and increased sensitivity to methacholine challenge.
Conclusions:
- Spirometric patterns, including air-trapping (A Trpg) and airflow limitation (A Limit), can identify obstruction phenotypes.
- These identified phenotypes serve as indicators of risk for asthma severity and instability.
Background:
Small-airways instability resulting in premature airway closure has been recognized as a risk for asthma severity and poor control. Although spirometry has limited sensitivity for detecting small-airways dysfunction, a focus on the air-trapping component of obstruction might identify a risk factor for asthma instability.
Objective:
We sought to use spirometric measurements to identify patterns of airway obstruction in children and define obstruction phenotypes that relate to asthma instability.
Methods:
Prebronchodilation and postbronchodilation spirometric data were obtained from 560 children in the Asthma Phenotypes in the Inner City study. An air-trapping obstruction phenotype (A Trpg) was defined as a forced vital capacity (FVC) z score of less than -1.64 or an increase in FVC of 10% of predicted value or greater with bronchodilation. The airflow limitation phenotype (A Limit) had an FEV1/FVC z score of less than -1.64 but not A Trpg. The no airflow limitation or air-trapping criteria (None) phenotype had neither A Trpg nor A Limit. The 3 obstruction phenotypes were assessed as predictors of number of exacerbations, asthma severity, and airway lability.
Results:
Patients with the A Trpg phenotype (14% of the cohort) had more exacerbations during the 12-month study compared with those with the A Limit (P < .03) and None (P < .001) phenotypes. Patients with the A Trpg phenotype also had the highest Composite Asthma Severity Index score, the highest asthma treatment step, the greatest variability in FEV1 over time, and the greatest sensitivity to methacholine challenge.
Conclusions:
A Trpg and A Limit patterns of obstruction, as defined by using routine spirometric measurements, can identify obstruction phenotypes that are indicators of risk for asthma severity and instability.
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