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Handheld device quantifies breath acetone for real-life metabolic health monitoring

Non-invasive breath analysis with mobile health devices bears tremendous potential to guide therapeutic treatment and personalize lifestyle changes. Of particular interest is the breath volatile acetone, a biomarker for fat burning, that could help in understanding and treating metabolic diseases. H...

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Autores principales: Bastide, Grégoire M. G. B. H., Remund, Anna L., Oosthuizen, Dina N., Derron, Nina, Gerber, Philipp A., Weber, Ines C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10351029/
https://www.ncbi.nlm.nih.gov/pubmed/37465007
http://dx.doi.org/10.1039/d3sd00079f
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author Bastide, Grégoire M. G. B. H.
Remund, Anna L.
Oosthuizen, Dina N.
Derron, Nina
Gerber, Philipp A.
Weber, Ines C.
author_facet Bastide, Grégoire M. G. B. H.
Remund, Anna L.
Oosthuizen, Dina N.
Derron, Nina
Gerber, Philipp A.
Weber, Ines C.
author_sort Bastide, Grégoire M. G. B. H.
collection PubMed
description Non-invasive breath analysis with mobile health devices bears tremendous potential to guide therapeutic treatment and personalize lifestyle changes. Of particular interest is the breath volatile acetone, a biomarker for fat burning, that could help in understanding and treating metabolic diseases. Here, we report a hand-held (6 × 10 × 19.5 cm(3)), light-weight (490 g), and simple device for rapid acetone detection in breath. It comprises a tailor-made end-tidal breath sampling unit, connected to a sensor and a pump for on-demand breath sampling, all operated using a Raspberry Pi microcontroller connected with a HDMI touchscreen. Accurate acetone detection is enabled by introducing a catalytic filter and a separation column, which remove and separate undesired interferents from acetone upstream of the sensor. This way, acetone is detected selectively even in complex gas mixtures containing highly concentrated interferents. This device accurately tracks breath acetone concentrations in the exhaled breath of five volunteers during a ketogenic diet, being as high as 26.3 ppm. Most importantly, it can differentiate small acetone changes during a baseline visit as well as before and after an exercise stimulus, being as low as 0.5 ppm. It is stable for at least four months (122 days), and features excellent bias and precision of 0.03 and 0.6 ppm at concentrations below 5 ppm, as validated by proton-transfer-reaction time-of-flight mass spectrometry (PTR-ToF-MS). Hence, this detector is highly promising for simple-in-use, non-invasive, and routine monitoring of acetone to guide therapeutic treatment and track lifestyle changes.
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spelling pubmed-103510292023-07-18 Handheld device quantifies breath acetone for real-life metabolic health monitoring Bastide, Grégoire M. G. B. H. Remund, Anna L. Oosthuizen, Dina N. Derron, Nina Gerber, Philipp A. Weber, Ines C. Sens Diagn Chemistry Non-invasive breath analysis with mobile health devices bears tremendous potential to guide therapeutic treatment and personalize lifestyle changes. Of particular interest is the breath volatile acetone, a biomarker for fat burning, that could help in understanding and treating metabolic diseases. Here, we report a hand-held (6 × 10 × 19.5 cm(3)), light-weight (490 g), and simple device for rapid acetone detection in breath. It comprises a tailor-made end-tidal breath sampling unit, connected to a sensor and a pump for on-demand breath sampling, all operated using a Raspberry Pi microcontroller connected with a HDMI touchscreen. Accurate acetone detection is enabled by introducing a catalytic filter and a separation column, which remove and separate undesired interferents from acetone upstream of the sensor. This way, acetone is detected selectively even in complex gas mixtures containing highly concentrated interferents. This device accurately tracks breath acetone concentrations in the exhaled breath of five volunteers during a ketogenic diet, being as high as 26.3 ppm. Most importantly, it can differentiate small acetone changes during a baseline visit as well as before and after an exercise stimulus, being as low as 0.5 ppm. It is stable for at least four months (122 days), and features excellent bias and precision of 0.03 and 0.6 ppm at concentrations below 5 ppm, as validated by proton-transfer-reaction time-of-flight mass spectrometry (PTR-ToF-MS). Hence, this detector is highly promising for simple-in-use, non-invasive, and routine monitoring of acetone to guide therapeutic treatment and track lifestyle changes. RSC 2023-06-27 /pmc/articles/PMC10351029/ /pubmed/37465007 http://dx.doi.org/10.1039/d3sd00079f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Bastide, Grégoire M. G. B. H.
Remund, Anna L.
Oosthuizen, Dina N.
Derron, Nina
Gerber, Philipp A.
Weber, Ines C.
Handheld device quantifies breath acetone for real-life metabolic health monitoring
title Handheld device quantifies breath acetone for real-life metabolic health monitoring
title_full Handheld device quantifies breath acetone for real-life metabolic health monitoring
title_fullStr Handheld device quantifies breath acetone for real-life metabolic health monitoring
title_full_unstemmed Handheld device quantifies breath acetone for real-life metabolic health monitoring
title_short Handheld device quantifies breath acetone for real-life metabolic health monitoring
title_sort handheld device quantifies breath acetone for real-life metabolic health monitoring
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10351029/
https://www.ncbi.nlm.nih.gov/pubmed/37465007
http://dx.doi.org/10.1039/d3sd00079f
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