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Updated: Aug 10, 2026

Systematic Bronchoscopy: the Four Landmarks Approach
Published on: June 23, 2023
Airway sizes and proportions in children quantified by a video-bronchoscopic technique
Ian B Masters1, Robert S Ware, Paul V Zimmerman
1School of Medicine, University of Queensland, Herston 4029, Brisbane, Australia. brent_masters@health.qld.gov.au
Insights
Pediatric airway size increases with age but proportions remain constant and are gender-independent. Body length and weight weakly predict major airway size, with the cricoid serving as a key reference point.
Area of Science:
- Pediatric Pulmonology
- Pediatric Bronchoscopy
- Airway Physiology
Background:
- Accurate pediatric airway measurements are crucial for bronchoscopists.
- Establishing reference points for airway size and proportions is essential for clinical comparisons.
Purpose of the Study:
- To measure large airway cross-sectional areas in children.
- To define airway proportions and identify factors influencing airway size.
Main Methods:
- Utilized a validated videobronchoscope technique on 125 children.
- Measured cross-sectional areas of the cricoid, right main stem (RMS), and left main stem (LMS) bronchi.
- Analyzed airway proportions and employed regression analyses to determine influencing factors.
Main Results:
- Airway size increased with age; proportions remained constant.
- The LMS was 21% smaller than the RMS; gender showed no significant size differences.
- Cricoid area correlated with body length, while RMS and LMS areas correlated with weight.
Conclusions:
- Pediatric large airways grow in size while maintaining proportional relationships to the cricoid.
- Anthropometric factors (body length, weight) show weak predictive influence on major airway size.
- The cricoid is the optimal reference for airway measurements, aiding in quantitative lesion comparisons.
Background:
A quantitative understanding of airway sizes and proportions and a reference point for comparisons are important to a pediatric bronchoscopist. The aims of this study were to measure large airway areas, and define proportions and factors that influence airway size in children.
Methods:
A validated videobronchoscope technique was used to measure in-vivo airway cross-sectional areas (cricoid, right (RMS) and left (LMS) main stem and major lobar bronchi) of 125 children. Airway proportions were calculated as ratios of airways to cricoid areas and to endotracheal tube (ETT) areas. Mann Whitney U, T-tests, and one-way ANOVA were used for comparisons and standard univariate and backwards, stepwise multivariate regression analyses were used to define factors that influence airway size.
Results:
Airways size increased progressively with increasing age but proportions remained constant. The LMS was 21% smaller than the RMS. Gender differences in airways' size were not significant in any age group or airway site. Cricoid area related best to body length (BL): cricoid area (mm2) = 26.782 + 0.254* BL (cm) while the RMS and LMS area related best to weight: RMS area (mm2) = 23.938 + 0.394*Wt (kg) and LMS area (mm2) = 20.055 + 0.263*Wt (kg) respectively. Airways to cricoid ratios were larger than airway to ETT ratios (p = 0.0001).
Conclusion:
The large airways progressively increase in cross sectional area size, maintain constant proportional relationships to the cricoid and are gender independent across childhood. Anthropometric factors (body length and weight) are significantly related to but only have weakly predictive influences on major airway size. The cricoid is the most suitable comparator for other airway site measurements. These data provide for quantitative comparisons of airway lesions.
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