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Updated: Aug 2, 2025

Real-time Breath Analysis by Using Secondary Nanoelectrospray Ionization Coupled to High Resolution Mass Spectrometry
Published on: March 9, 2018
Online breath analysis with SESI/HRMS for metabolic signatures in children with allergic asthma
Ronja Weber1, Bettina Streckenbach2, Lara Welti1
1Department of Respiratory Medicine, University Children's Hospital Zurich, Zurich, Switzerland.
Insights
Researchers identified distinct exhaled metabolic signatures in children with allergic asthma using breath analysis. These volatile organic compounds show potential for non-invasive asthma diagnosis in pediatric patients.
Area of Science:
- Metabolomics
- Analytical Chemistry
- Pediatric Pulmonology
Background:
- Pediatric asthma diagnosis and management require improvement.
- Breath analysis offers a non-invasive method to assess metabolic changes in diseases.
- Identifying specific exhaled metabolic profiles can aid in disease detection.
Purpose of the Study:
- To identify exhaled metabolic signatures differentiating children with allergic asthma from healthy controls.
- To utilize secondary electrospray ionization high-resolution mass spectrometry (SESI/HRMS) for breath analysis.
- To explore the diagnostic potential of breath volatile organic compounds in pediatric allergic asthma.
Main Methods:
- Cross-sectional observational study involving 48 asthmatic children and 56 healthy controls.
- Breath samples analyzed using SESI/HRMS for metabolic profiling.
- Statistical analysis (empirical Bayes moderated t-statistics) and machine learning (10-fold cross-validation) applied to identify and classify metabolic features.
Main Results:
- 375 significant mass-to-charge features identified in breath, with 134 putatively identified.
- Metabolites linked to lysine degradation (elevated) and arginine pathways (downregulated) were characteristic of asthmatic children.
- Supervised machine learning achieved an area under the receiver operating characteristic curve of 0.83 for classifying asthmatic versus healthy individuals.
Conclusions:
- This study identified a substantial number of breath-derived metabolites distinguishing pediatric allergic asthma from healthy controls.
- The identified metabolites are associated with known metabolic pathways implicated in asthma pathophysiology.
- The findings suggest high potential for these volatile organic compounds in clinical diagnostic applications for pediatric asthma.
Abstract:
Introduction: There is a need to improve the diagnosis and management of pediatric asthma. Breath analysis aims to address this by non-invasively assessing altered metabolism and disease-associated processes. Our goal was to identify exhaled metabolic signatures that distinguish children with allergic asthma from healthy controls using secondary electrospray ionization high-resolution mass spectrometry (SESI/HRMS) in a cross-sectional observational study. Methods: Breath analysis was performed with SESI/HRMS. Significant differentially expressed mass-to-charge features in breath were extracted using the empirical Bayes moderated t-statistics test. Corresponding molecules were putatively annotated by tandem mass spectrometry database matching and pathway analysis. Results: 48 allergic asthmatics and 56 healthy controls were included in the study. Among 375 significant mass-to-charge features, 134 were putatively identified. Many of these could be grouped to metabolites of common pathways or chemical families. We found several pathways that are well-represented by the significant metabolites, for example, lysine degradation elevated and two arginine pathways downregulated in the asthmatic group. Assessing the ability of breath profiles to classify samples as asthmatic or healthy with supervised machine learning in a 10 times repeated 10-fold cross-validation revealed an area under the receiver operating characteristic curve of 0.83. Discussion: For the first time, a large number of breath-derived metabolites that discriminate children with allergic asthma from healthy controls were identified by online breath analysis. Many are linked to well-described metabolic pathways and chemical families involved in pathophysiological processes of asthma. Furthermore, a subset of these volatile organic compounds showed high potential for clinical diagnostic applications.
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