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Reduced Exhaled Breath Condensate pH and Severity of Allergic Sensitization Predict School Age Asthma
Sylvia Kreißl1, Sarah Hendler1, Manas K Akmatov2
1Division of Pediatric Pulmonology and Allergology, TU Dresden, University Hospital Carl Gustav Carus, Dresden, Germany.
Insights
Deaerated breath condensate pH (dEBC pH) effectively identifies preschoolers at high risk for asthma. Combining dEBC pH with Capacity class (CAP) and clinical data significantly improves asthma prediction accuracy in children.
Area of Science:
- Pediatric Pulmonology
- Biomarkers for Respiratory Diseases
- Asthma Prediction
Background:
- Deaerated breath condensate pH (dEBC pH) previously identified preschool children at high risk for recurrent wheezing and asthma.
- Early identification of asthma risk in young children is crucial for timely intervention.
Purpose of the Study:
- To evaluate the predictive capability of preschool dEBC pH for asthma development by school age.
- To assess the combined utility of dEBC pH with other clinical factors for asthma risk stratification.
Main Methods:
- A cohort of 135 preschool children, categorized by wheezing status and atopy, underwent follow-up for asthma diagnosis.
- Asthma diagnosis at school age was determined using Global Initiative for Asthma (GINA) guidelines.
- dEBC pH and Capacity class (CAP) were measured at baseline; additional clinical data were collected.
Main Results:
- 100% of atopic wheezers developed asthma, compared to 21% of nonatopic wheezers.
- Baseline dEBC pH predicted asthma with an AUC of 0.72.
- Combining dEBC pH with CAP significantly improved sensitivity (0.96) and NPV (0.94).
- Integrating additional clinical information (Asthma Predictive Index, family history, etc.) further enhanced prediction (AUC 0.94, sensitivity 0.98, NPV 0.97).
Conclusions:
- dEBC pH combined with CAP class offers a sensitive, noninvasive method for early asthma risk detection in asymptomatic preschool children.
- Further research is needed to identify specific biomarkers to optimize early asthma risk stratification.
Background:
We previously reported that deaerated breath condensate pH (dEBC pH) can identify preschool children with recurrent wheezing at high asthma risk.
Objective:
To assess the ability of preschool dEBC pH to predict asthma risk at school age.
Methods:
Children of the baseline cohort were recontacted for follow-up. Asthma diagnosis at school age was evaluated according to Global Initiative for Asthma recommendations in 135 children who at baseline had been classified into the following groups: (asymptomatic) atopic wheezers (n = 30), (asymptomatic) nonatopic wheezers (n = 57), allergic rhinitis only (n = 14), and healthy controls (n = 34).
Results:
All (100%) former atopic wheezers, 12 (21%) of nonatopic wheezers, 2 (14%) of allergic rhinitis group, and 1 (3%) of healthy controls had developed asthma at follow-up. Among all children with baseline wheezing, baseline dEBC pH predicted asthma at follow-up with an area under the receiver operating characteristic curve (AUC) of 0.72 (sensitivity, 0.67; specificity, 0.76; at pH 7.83). Combining pH and Capacity class (CAP) led to substantial gain in sensitivity (0.96) and negative predictive value (NPV, 0.94). Additional clinical information (Asthma Predictive Index, family atopy, family asthma, and inhaled corticosteroids) further increased the potential to predict asthma (AUC, 0.94) and raised sensitivity (0.98) and NPV (0.97) to nearly perfect values.
Conclusion:
Our findings suggest (1) that dEBC pH combined with CAP class may serve as highly sensitive, noninvasive marker for the early detection of young asymptomatic preschool children with increased asthma risk, and (2) the need for additional biomarkers with high specificity to optimize early risk stratification in this clinically challenging scenario.
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