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Completed

NCT Number: NCT03299543

Comparison Between Breath Acetone and Blood Beta-Hydroxybutyrate

Subjects will provide blood and breath samples to evaluate the relationship between breath acetone and two blood-bound species: beta-hydroxybutyrate and glucose. Subjects will be asked to provide breath and blood samples at a baseline visit and second optional visit. The two visits will be spaced approximately 3 hours apart.

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Key information

Age range

18 year–65 year

Sex eligibility

All sexes

Study type

Observational

Primary location

Medamonitor, LLC

Seattle, Washington, 98119, United States

About this study

The LEVL device (Medamonitor, Seattle, WA) provides users a method for assessing their own rate of fat metabolism. The LEVL device measures the concentration acetone in breath that the scientific literature has shown to correlate to the rate of fat metabolism.

Typically, the body uses glucose to meet its metabolic energy requirements. If needed, the body can shift from using glucose to using fat. Many different scenarios can cause this shift. Exercise can deplete accessible carbohydrate stores causing the body to use fats for energy production. Dietary changes that cause fat intake to increase and carbohydrate intake to decrease will alter metabolism to efficiently utilize the change in nutrients. In all of these scenarios, the body reduces it utilization of carbohydrates and, thus, shifts to using fats for energy production.

When the body uses fats as an energy substrate, some of these fat molecules are converted by the liver into acetoacetate, a ketone body. By enzymatic action, acetoacetate (AcAc) can be converted into beta-hydroxybutyrate (BOHB). The same enzyme can generate AcAc from BOHB. Additionally, acetoacetate can convert spontaneously into acetone which, due to its small size and highly water solubility, can readily appear in the breath.

Currently, measurement of BOHB in blood is the gold standard for assessing ketone body concentration, also known as ketosis. BOHB measurement requires an invasive finger puncture to obtain blood and a costly (~$5 / test) assay. Because acetone (BrAce) is a sister ketone body to BOHB, breath acetone may be used to assess ketosis and replace the measurement of BOHB. Data in the scientific literature has shown BrAce to correlate with BOHB. Inferring BOHB concentrations from measurement of BrAce using LEVL is less invasive and is potentially less costly.

Reports have suggested that breath acetone is inversely correlated to blood sugar. However, others have suggested no relationship between the two species. If a relationship does exist, measurement of breath acetone could be used as a surrogate measure for blood sugar, a common assay used by individuals with diabetes.

In this study, subjects will provide blood and breath samples evaluate the relationship between breath acetone and two blood-bound species: BOHB and glucose. Subjects may be asked to provide breath and blood samples at two different times (i.e., visits) spaced approximately 3 hours apart. The second visit is not required for participation in the study (i.e., optional).

Who can participate

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Subject must complete the consent process

Exclusion criteria

  • Subjects with severe lung disease which would prevent them from providing a breath sample through a large bore tube (e.g., large drinking straw)
  • Subjects with diabetes (Type 1 or Type 2)
  • Subjects who are routinely exposed to paints, paint thinners, gasoline, varnishes, glues, dry cleaning solvents, or industrial cleaning products
  • Daily smoker of cigarettes, e-cigarettes, or marijuana
  • Abstain from alcohol over the prior 24 hours
  • Refrain from consumption of large amounts of garlic

Treatment and study plan

LEVL (Medamonitor)

Device

Subjects will provide duplicate breath samples to the LEVL device for analysis of breath acetone

Primary outcomes

  1. Breath acetone concentration (ppm) will be compared against blood BOHB concentration (mM). The following methods may be used: summary statistics, plotting, and linear regression.

    Time frame: Through study completion, 4 months

    Both individual and average group measurements will be compared

Secondary outcomes

  1. Breath acetone concentration (ppm) will be compared against blood glucose concentration (mg/dL). The following methods may be used: summary statistics, plotting, and linear regression.

    Time frame: Through study completion, 4 months

    Both individual and average group measurements will be compared

  2. Blood glucose concentration (mg/dL) will be compared against blood BOHB concentration (mM). The following methods may be used: summary statistics, plotting, and linear regression.

    Time frame: Through study completion, 4 months

    Both individual and average group measurements will be compared

Sponsors and collaborators

Lead sponsor

Medamonitor

Industry

Registry information

Official study title

Relationship Among Breath Acetone, Blood Beta-Hydroxybutyrate, and Blood Glucose

Important dates

Study start
2017
Primary completion
2018
Study completion
2018
First posted
Oct 3, 2017
Registry last updated
Aug 29, 2018

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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