AWARE: A Wearable Awareness with Real-time Exposure, for monitoring alcohol consumption impact through ethyl glucuronide detection
Here we demonstrate for the first time a dynamic monitoring of the ethanol metabolite ethyl glucuronide (EtG) for a more robust evaluation of alcohol consumption, compared to conventional methods. A wearable biosensor device capable of reporting EtG levels in sweat continuously via low power impedan...
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Published in | Alcohol (Fayetteville, N.Y.) Vol. 81; pp. 93 - 99 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
United States
Elsevier Inc
01.12.2019
Elsevier Limited |
Subjects | |
Online Access | Get full text |
ISSN | 0741-8329 1873-6823 1873-6823 |
DOI | 10.1016/j.alcohol.2018.10.006 |
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Abstract | Here we demonstrate for the first time a dynamic monitoring of the ethanol metabolite ethyl glucuronide (EtG) for a more robust evaluation of alcohol consumption, compared to conventional methods. A wearable biosensor device capable of reporting EtG levels in sweat continuously via low power impedance spectroscopy is reported. The custom hardware was compared against a conventional benchtop potentiostat, and demonstrated comparable results in the application of EtG detection in low volume sweat. The device successfully differentiated three distinct EtG concentrations correlating to simulated drinking scenarios estimated to be 1, 2, and 3 standard U.S. drinks consumed over a duration of 60 min, with p < 0.0001. This device has the potential to enable moderate drinkers to engage in guided decision-making, based on objective data, to address the needs of alcohol-sensitive populations. The device also will serve as a tool for researchers to better understand and characterize the relationship between sweat EtG and consumed alcohol.
•A stand-alone wearable biosensor was demonstrated for non-invasive monitoring of sweat EtG.•EtG was detected continuously, toward demonstrating toward real-time alcohol consumption monitoring.•The wearable device has comparable performance with benchtop potentiostat.•The changes in the measured EtG concentrations were estimated to correlate to 1–3 consumed drinks. |
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AbstractList | Here we demonstrate for the first time a dynamic monitoring of the ethanol metabolite ethyl glucuronide (EtG) for a more robust evaluation of alcohol consumption, compared to conventional methods. A wearable biosensor device capable of reporting EtG levels in sweat continuously via low power impedance spectroscopy is reported. The custom hardware was compared against a conventional benchtop potentiostat, and demonstrated comparable results in the application of EtG detection in low volume sweat. The device successfully differentiated three distinct EtG concentrations correlating to simulated drinking scenarios estimated to be 1, 2, and 3 standard U.S. drinks consumed over a duration of 60 min, with p < 0.0001. This device has the potential to enable moderate drinkers to engage in guided decision-making, based on objective data, to address the needs of alcohol-sensitive populations. The device also will serve as a tool for researchers to better understand and characterize the relationship between sweat EtG and consumed alcohol. Here we demonstrate for the first time a dynamic monitoring of the ethanol metabolite ethyl glucuronide (EtG) for a more robust evaluation of alcohol consumption, compared to conventional methods. A wearable biosensor device capable of reporting EtG levels in sweat continuously via low power impedance spectroscopy is reported. The custom hardware was compared against a conventional benchtop potentiostat, and demonstrated comparable results in the application of EtG detection in low volume sweat. The device successfully differentiated three distinct EtG concentrations correlating to simulated drinking scenarios estimated to be 1, 2, and 3 standard U.S. drinks consumed over a duration of 60 min, with p < 0.0001. This device has the potential to enable moderate drinkers to engage in guided decision-making, based on objective data, to address the needs of alcohol-sensitive populations. The device also will serve as a tool for researchers to better understand and characterize the relationship between sweat EtG and consumed alcohol. •A stand-alone wearable biosensor was demonstrated for non-invasive monitoring of sweat EtG.•EtG was detected continuously, toward demonstrating toward real-time alcohol consumption monitoring.•The wearable device has comparable performance with benchtop potentiostat.•The changes in the measured EtG concentrations were estimated to correlate to 1–3 consumed drinks. Here we demonstrate for the first time a dynamic monitoring of the ethanol metabolite ethyl glucuronide (EtG) for a more robust evaluation of alcohol consumption, compared to conventional methods. A wearable biosensor device capable of reporting EtG levels in sweat continuously via low power impedance spectroscopy is reported. The custom hardware was compared against a conventional benchtop potentiostat, and demonstrated comparable results in the application of EtG detection in low volume sweat. The device successfully differentiated three distinct EtG concentrations correlating to simulated drinking scenarios estimated to be 1, 2, and 3 standard U.S. drinks consumed over a duration of 60 min, with p < 0.0001. This device has the potential to enable moderate drinkers to engage in guided decision-making, based on objective data, to address the needs of alcohol-sensitive populations. The device also will serve as a tool for researchers to better understand and characterize the relationship between sweat EtG and consumed alcohol. AbstractHere we demonstrate for the first time a dynamic monitoring of the ethanol metabolite ethyl glucuronide (EtG) for a more robust evaluation of alcohol consumption, compared to conventional methods. A wearable biosensor device capable of reporting EtG levels in sweat continuously via low power impedance spectroscopy is reported. The custom hardware was compared against a conventional benchtop potentiostat, and demonstrated comparable results in the application of EtG detection in low volume sweat. The device successfully differentiated three distinct EtG concentrations correlating to simulated drinking scenarios estimated to be 1, 2, and 3 standard U.S. drinks consumed over a duration of 60 min, with p < 0.0001. This device has the potential to enable moderate drinkers to engage in guided decision-making, based on objective data, to address the needs of alcohol-sensitive populations. The device also will serve as a tool for researchers to better understand and characterize the relationship between sweat EtG and consumed alcohol. Here we demonstrate for the first time a dynamic monitoring of the ethanol metabolite ethyl glucuronide (EtG) for a more robust evaluation of alcohol consumption, compared to conventional methods. A wearable biosensor device capable of reporting EtG levels in sweat continuously via low power impedance spectroscopy is reported. The custom hardware was compared against a conventional benchtop potentiostat, and demonstrated comparable results in the application of EtG detection in low volume sweat. The device successfully differentiated three distinct EtG concentrations correlating to simulated drinking scenarios estimated to be 1, 2, and 3 standard U.S. drinks consumed over a duration of 60 min, with p < 0.0001. This device has the potential to enable moderate drinkers to engage in guided decision-making, based on objective data, to address the needs of alcohol-sensitive populations. The device also will serve as a tool for researchers to better understand and characterize the relationship between sweat EtG and consumed alcohol.Here we demonstrate for the first time a dynamic monitoring of the ethanol metabolite ethyl glucuronide (EtG) for a more robust evaluation of alcohol consumption, compared to conventional methods. A wearable biosensor device capable of reporting EtG levels in sweat continuously via low power impedance spectroscopy is reported. The custom hardware was compared against a conventional benchtop potentiostat, and demonstrated comparable results in the application of EtG detection in low volume sweat. The device successfully differentiated three distinct EtG concentrations correlating to simulated drinking scenarios estimated to be 1, 2, and 3 standard U.S. drinks consumed over a duration of 60 min, with p < 0.0001. This device has the potential to enable moderate drinkers to engage in guided decision-making, based on objective data, to address the needs of alcohol-sensitive populations. The device also will serve as a tool for researchers to better understand and characterize the relationship between sweat EtG and consumed alcohol. Here we demonstrate for the first time a dynamic monitoring of the ethanol metabolite Ethyl Glucuronide (EtG) for a more robust evaluation of alcohol consumption compared to conventional methods. A wearable biosensor device capable of reporting EtG levels in sweat both continuously via low power impedance spectroscopy is reported. The custom hardware was compared against conventional benchtop potentiostat, demonstrating comparable results in the application space of EtG detection in low volume sweat. The device successfully differentiated three distinct EtG concentrations correlating to simulated drinking scenarios estimated to be 1, 2, and 3 standard U.S. drinks consumed over a duration of 60 minutes with p < 0.0001. This device has the potential to enable moderate drinkers to engage in guided decision making, based on objective data, addressing the needs of alcohol sensitive populations. The device also will serve as a tool for researchers to better understand and characterize the relationship between sweat EtG and consumed alcohol. |
Author | Muthukumar, Sriram Kinnamon, David Lin, Kai-Chun Sankhala, Devangsingh Prasad, Shalini |
AuthorAffiliation | 1 Department of Bioengineering, University of Texas at Dallas, 800 West Campbell Rd., Richardson, TX 75080, USA 2 1813 Audubon Pond Way, Allen, TX, 75013 |
AuthorAffiliation_xml | – name: 1 Department of Bioengineering, University of Texas at Dallas, 800 West Campbell Rd., Richardson, TX 75080, USA – name: 2 1813 Audubon Pond Way, Allen, TX, 75013 |
Author_xml | – sequence: 1 givenname: Kai-Chun surname: Lin fullname: Lin, Kai-Chun organization: Department of Bioengineering, University of Texas at Dallas, 800 West Campbell Rd., Richardson, TX 75080, United States – sequence: 2 givenname: David orcidid: 0000-0002-5013-9014 surname: Kinnamon fullname: Kinnamon, David organization: Department of Bioengineering, University of Texas at Dallas, 800 West Campbell Rd., Richardson, TX 75080, United States – sequence: 3 givenname: Devangsingh surname: Sankhala fullname: Sankhala, Devangsingh organization: Department of Bioengineering, University of Texas at Dallas, 800 West Campbell Rd., Richardson, TX 75080, United States – sequence: 4 givenname: Sriram orcidid: 0000-0002-8761-7278 surname: Muthukumar fullname: Muthukumar, Sriram organization: 1813 Audubon Pond Way, Allen, TX 75013, United States – sequence: 5 givenname: Shalini surname: Prasad fullname: Prasad, Shalini email: Shalini.Prasad@utdallas.edu organization: Department of Bioengineering, University of Texas at Dallas, 800 West Campbell Rd., Richardson, TX 75080, United States |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/30366035$$D View this record in MEDLINE/PubMed |
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Keywords | Continuous sensing Wearable Electrochemical impedance spectroscopy (EIS) Sweat Biosensor Ethyl glucuronide (EtG) |
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Snippet | Here we demonstrate for the first time a dynamic monitoring of the ethanol metabolite ethyl glucuronide (EtG) for a more robust evaluation of alcohol... AbstractHere we demonstrate for the first time a dynamic monitoring of the ethanol metabolite ethyl glucuronide (EtG) for a more robust evaluation of alcohol... Here we demonstrate for the first time a dynamic monitoring of the ethanol metabolite Ethyl Glucuronide (EtG) for a more robust evaluation of alcohol... |
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SubjectTerms | Alcohol use Alcoholic beverages Alcoholism Biomarkers Biosensor Biosensors Conflicts of interest Continuous sensing Decision making Design of experiments Disease control Drinking behavior Electrochemical impedance spectroscopy (EIS) Ethanol Ethyl glucuronide (EtG) Laboratories Metabolism Metabolites Personal health Psychiatric/Mental Health Sensors Spectroscopy Spectrum analysis Sweat Urine Wearable Womens health |
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