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  •   Ιδρυματικό Αποθετήριο Πανεπιστημίου Θεσσαλίας
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Ιδρυματικό Αποθετήριο Πανεπιστημίου Θεσσαλίας
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Target analysis of volatile organic compounds in exhaled breath for lung cancer discrimination from other pulmonary diseases and healthy persons

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Συγγραφέας
Koureas M., Kirgou P., Amoutzias G., Hadjichristodoulou C., Gourgoulianis K., Tsakalof A.
Ημερομηνία
2020
Γλώσσα
en
DOI
10.3390/metabo10080317
Λέξη-κλειδί
2 butanone
2 propanol
acetone
aromatic compound
butanol
butyric acid ethyl ester
cyclohexanone
ethylbenzene
hexanal
isoprene
nonanal
octane
octanol
propanol
styrene
thiophene
toluene
volatile organic compound
ambient air
Article
body mass
breath analysis
bronchoscopy
chemical, physical and mathematical phenomena
computer assisted tomography
controlled study
current smoker
cytology
ex-smoker
expired air
female
gas chromatography
human
Kruskal Wallis test
lung cancer
lung disease
machine learning
major clinical study
male
normal human
smoking habit
solid phase microextraction
transbronchial aspiration
transbronchial biopsy
MDPI AG
Εμφάνιση Μεταδεδομένων
Επιτομή
The aim of the present study was to investigate the ability of breath analysis to distinguish lung cancer (LC) patients from patients with other respiratory diseases and healthy people. The population sample consisted of 51 patients with confirmed LC, 38 patients with pathological computed tomography (CT) findings not diagnosed with LC, and 53 healthy controls. The concentrations of 19 volatile organic compounds (VOCs) were quantified in the exhaled breath of study participants by solid phase microextraction (SPME) of the VOCs and subsequent gas chromatography-mass spectrometry (GC-MS) analysis. Kruskal–Wallis and Mann–Whitney tests were used to identify significant differences between subgroups. Machine learning methods were used to determine the discriminant power of the method. Several compounds were found to differ significantly between LC patients and healthy controls. Strong associations were identified for 2-propanol, 1-propanol, toluene, ethylbenzene, and styrene (p-values < 0.001–0.006). These associations remained significant when ambient air concentrations were subtracted from breath concentrations. VOC levels were found to be affected by ambient air concentrations and a few by smoking status. The random forest machine learning algorithm achieved a correct classification of patients of 88.5% (area under the curve—AUC 0.94). However, none of the methods used achieved adequate discrimination between LC patients and patients with abnormal computed tomography (CT) findings. Biomarker sets, consisting mainly of the exogenous monoaromatic compounds and 1-and 2-propanol, adequately discriminated LC patients from healthy controls. The breath concentrations of these compounds may reflect the alterations in patient’s physiological and biochemical status and perhaps can be used as probes for the investigation of these statuses or normalization of patient-related factors in breath analysis. © 2020 by the authors.
URI
http://hdl.handle.net/11615/75319
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