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Use of tidal breathing curves for evaluating expiratory airway obstruction in infants
Avigdor Hevroni1, Aliza Goldman1, Miriam Blank-Brachfeld1
1a Department of Pediatrics and Pediatric Pulmonology, Hadassah-Hebrew University Medical Center , The Hebrew University , Jerusalem , Israel.
Insights
Tidal breathing (TB) curves can help identify expiratory airway obstruction in infants. Specific TB parameters effectively rule out severe obstruction, aiding in diagnosis and management of pediatric respiratory conditions.
Area of Science:
- Pediatric Pulmonology
- Respiratory Physiology
- Diagnostic Imaging
Background:
- Infants with persistent respiratory complaints often present diagnostic challenges.
- Accurate identification of expiratory airway obstruction is crucial for timely intervention.
Purpose of the Study:
- To evaluate the utility of tidal breathing (TB) flow-volume and flow-time curves in identifying expiratory airway obstruction in infants.
- To compare parameters derived from TB curves with established measures of expiratory flow.
Main Methods:
- Retrospective analysis of pulmonary function tests in 156 infants (3-24 months).
- Comparison of TB curve parameters (e.g., tPTEF/tE, FEF50/PTEF, FEF25/PTEF) with maximal expiratory flow at functional residual capacity (V̇maxFRC).
- Receiver operating characteristic (ROC) curve analysis to determine discriminatory values.
Main Results:
- TB parameters tPTEF/tE, FEF50/PTEF, and FEF25/PTEF showed significant correlation with V̇maxFRC (r=0.61-0.67, p<0.0001).
- ROC curves demonstrated good discriminatory ability (AUC=0.796-0.813) for these parameters.
- Specific cutoff values yielded an 86% negative predictive value for severe airway obstruction.
Conclusions:
- Tidal breathing curves offer a valuable, non-invasive method for assessing expiratory airway obstruction in infants.
- These findings suggest TB analysis can assist in ruling out severe expiratory airway obstruction, simplifying diagnostic pathways.
Objective:
To evaluate tidal breathing (TB) flow-volume and flow-time curves for identification of expiratory airway obstruction in infants.
Methods:
Pulmonary function tests were analyzed retrospectively in 156 infants aged 3-24 months with persistent or recurrent respiratory complaints. Parameters derived from TB curves were compared to maximal expiratory flow at functional residual capacity ( maxFRC) measured by rapid thoracoabdominal compression technique. Analyzed parameters were: inspiratory time (tI), expiratory time (tE), tidal volume, peak tidal expiratory flow (PTEF), time to peak tidal expiratory flow (tPTEF), expiratory flow when 50% and 25% of tidal volume remains in the lungs (FEF50, FEF25, respectively), and the ratios tPTEF/tE, tI/tE, FEF50/PTEF, and FEF25/PTEF. Statistical comparisons between flow indices and TB parameters were performed using mean squared error and Pearson's sample correlation coefficient. The study population was also divided into two groups based on severity of expiratory obstruction (above or below z-score for maxFRC of -2) to generate receiver operating characteristic (ROC) curves and calculate discriminatory values between the groups.
Results:
TB parameters that were best correlated to maxFRC were: tPTEF/tE, FEF50/PTEF, and FEF25/PTEF, with r = 0.61, 0.67, 0.65, respectively (p < 0.0001 for all). ROC curves for FEF50/PTEF, FEF25/PTEF and tPTEF/tE showed areas under the curve of 0.813, 0.797, and 0.796, respectively. Cutoff value z-scores of -0.35, -0.34, and -0.43 for these three parameters, respectively, showed an 86% negative predictive value for severe airway obstructions.
Conclusion:
TB curves can assist in ruling out severe expiratory airway obstruction in infants.
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