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Updated: Feb 13, 2026

Conducting Respiratory Oscillometry in an Outpatient Setting
Published on: April 8, 2022
Impulse oscillometry at preschool age is a strong predictor of lung function by flow-volume spirometry in adolescence
Eero Lauhkonen1, Riikka Riikonen1, Sari Törmänen1
1Tampere Center for Child Health Research, Tampere University and University Hospital, Tampere, Finland.
Insights
Impulse oscillometry (IOS) in preschoolers can predict later lung function in adolescents. This method helps identify children with persistent small airway issues, aiding in early asthma management.
Area of Science:
- Pediatric Pulmonology
- Respiratory Physiology
- Childhood Asthma Research
Background:
- Childhood wheezing can progress to persistent asthma, leading to long-term lung function impairment.
- Longitudinal correlations between lung function assessment methods at different ages are not well understood.
Purpose of the Study:
- To investigate the longitudinal correlation between impulse oscillometry (IOS) in preschool children and flow-volume spirometry (FVS) measurements in adolescence.
- To determine if preschool IOS can predict adolescent lung function in children with a history of bronchiolitis.
Main Methods:
- Sixty-four children hospitalized for bronchiolitis before six months were prospectively studied.
- Impulse oscillometry (IOS) was performed at a mean age of 6.3 years.
- Results were compared with flow-volume spirometry (FVS) measurements at a mean age of 11.4 years.
Main Results:
- Preschool respiratory system resistance (Rrs5) and reactance (Xrs5) showed modest correlations with adolescent FVS parameters.
- Post-bronchodilator (post-BD) Xrs5 in preschool was a significant independent predictor of adolescent FVS measures.
- A decrease in preschool post-BD Xrs5 Z-score predicted lower adolescent post-BD FEV1, FVC, and MEF50.
Conclusions:
- Preschool impulse oscillometry can predict lung function outcomes in early adolescence.
- Persistent small airway impairment detected by IOS in preschool-aged children with a history of bronchiolitis is indicative of future FVS results.
Background:
The transition from early childhood wheezing to persistent asthma is linked to lung function impairment over time. Little is known how the methods used to study lung function at different ages correlate longitudinally.
Methods:
Sixty-four children with a history of hospitalization for bronchiolitis before 6 months of age were prospectively studied with impulse oscillometry (IOS) at the mean age of 6.3 years and these preschool IOS results were compared with flow-volume spirometry (FVS) measurements at mean age of 11.4 years.
Results:
The baseline respiratory system resistance at 5 Hz (Rrs5) showed a modest statistically significant correlation with all baseline FVS parameters except FVC. The post-bronchodilator (post-BD) Rrs5 showed a modest statistically significant correlation with post-BD FEV1 and FEV1 /FVC. The bronchodilator-induced decrease in Rrs5 showed a modest statistically significant correlation with the percent increase in FEV1 . Baseline and post-BD respiratory reactance at 5 Hz (Xrs5) showed a modest statistically significant correlation with baseline and post-BD FVS parameters except post-BD FEV1 /FVC, respectively, and post-BD Xrs5 showed a strong correlation with post-BD FVC (ρ = 0.61) and post-BD FEV1 (ρ = 0.59). In adjusted linear regression, preschool Xrs5 remained as a statistically significant independent predictor of FVS parameters in adolescence; the one-unit decrease in the Z-score of preschool post-BD Xrs5 predicted 9.6% lower post-BD FEV1 , 9.3% lower post-BD FVC, and 9.7% lower post-BD MEF50 when expressed as %-predicted parameters.
Conclusion:
Persistent post-BD small airway impairment in children with a history of bronchiolitis detected with IOS at preschool age predicted FVS results measured in early adolescence.
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