4.7 Article

Real-Time Breath Analysis Reveals Specific Metabolic Signatures of COPD Exacerbations

Journal

CHEST
Volume 156, Issue 2, Pages 269-276

Publisher

ELSEVIER
DOI: 10.1016/j.chest.2018.12.023

Keywords

biomarkers; COPD; evidence-based medicine; inflammation

Funding

  1. Swiss National Science Foundation [CR23I2_149617]
  2. Marie-Curie European Reintegration Grant within the 7th European Community Framework Programme [276860]
  3. Swiss National Science Foundation (SNF) [CR23I2_149617] Funding Source: Swiss National Science Foundation (SNF)

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BACKGROUND: Exacerbations of COPD are defined by acute worsening of respiratory symptoms leading to a change in therapy. Identifying altered metabolic processes in patients at risk for future exacerbations is desirable for treatment optimization, the development of new therapeutic strategies, and perhaps diagnostic value. We aimed to identify affected pathways using the profiles of volatile organic compounds in exhaled breath from patients with COPD with and without frequent exacerbations (>= 2 exacerbations within the past 12 months). METHODS: In this matched cohort study, exhaled breath profiles from patients with COPD and frequent exacerbations (frequent exacerbators) and without frequent exacerbations (nonfrequent exacerbators) were analyzed during an exacerbation-free interval using real-time secondary electrospray ionization high-resolution mass spectrometry. We analyzed exhaled breath from 26 frequent exacerbators and 26 nonfrequent exacerbators that were matched in terms of age, sex, and smoking history. To obtain new pathophysiological in-sights, we investigated significantly altered metabolites, which can be assigned to specific pathways. Metabolites were identified by using a Wilcoxon rank-sum test. RESULTS: Metabolite levels from the to-oxidation pathway, namely omega-hydroxy, omega-oxo, and dicarboxylic acids, were consistently decreased in frequent exacerbators. Additionally, several new nitro-aromatic metabolites, which were significantly increased in frequent exacerbators, were identified. CONCLUSIONS: Real-time breath analysis by secondary electrospray high-resolution mass spectrometry allows molecular profiling of exhaled breath, providing insights about ongoing biochemical processes in patients with COPD at risk for exacerbations.

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