Javascript must be enabled to continue!
Measurement of exhaled breath temperature in science and clinical practice
View through CrossRef
Educational aimsTo review the link between inflammation and increased vascularity and blood flow of the airways, and exhaled breath temperature.To position exhaled breath temperature (EBT) as a physiological characteristic differing from core temperature measured at other body sites.To review the existing experience about measuring EBT in different disease states of the respiratory system.To emphasise the influence of airway remodeling/destruction in modulating EBT.SummaryEvaluation of the exhaled breath temperature (EBT) has been suggested as a new method to detect and monitor pathological processes in the respiratory system. The putative mechanism of this approach is based upon changes in the blood flow in the conducting airways that are characteristic of different disease states, which influence the temperature of the exhaled gases. The first attempts to prove this concept were made in conjunction with measurement of exhaled nitric oxide fraction (FeNO) about a decade ago. They made use of an open-circuit, single-breath method in a closed indoor environment, and demonstrated associations between EBT on the one hand, and bronchial blood flow,FeNOand sputum cellular content on the other.These findings have been further extended to practical applicability with the introduction of multiple-breath, portable hand-held devices. Measurement of EBT using these is less dependent on the ambient environment and easier to perform. Studies have been conducted to explore the relationship between EBT and different physiological characteristics, and to assess possible confounding influences in the process of measurement. The value of the method has been explored in the diagnosis and monitoring of asthma, chronic obstructive pulmonary disease and other respiratory diseases. While initially, emphasis focused on airway inflammation as the primary process to be captured by this method, it was subsequently realised that destructive and other remodelling processes reducing the integral contact surface of the conducting airways and/or damaging their vasculature would also affect the end result by shifting EBT downwards. As obstructive airway disease is, in most cases, a combination of airway inflammation and remodelling/destruction, EBT should be viewed as an individual characteristic indicating fluctuating changes in the balance of these processes. Hence, an important potential application of the method is in monitoring airway diseases.EBT measurement has emerged as an attractive noninvasive new approach in respiratory and, possibly, other diseases. Systematic research will determine its place in clinical practice.
Title: Measurement of exhaled breath temperature in science and clinical practice
Description:
Educational aimsTo review the link between inflammation and increased vascularity and blood flow of the airways, and exhaled breath temperature.
To position exhaled breath temperature (EBT) as a physiological characteristic differing from core temperature measured at other body sites.
To review the existing experience about measuring EBT in different disease states of the respiratory system.
To emphasise the influence of airway remodeling/destruction in modulating EBT.
SummaryEvaluation of the exhaled breath temperature (EBT) has been suggested as a new method to detect and monitor pathological processes in the respiratory system.
The putative mechanism of this approach is based upon changes in the blood flow in the conducting airways that are characteristic of different disease states, which influence the temperature of the exhaled gases.
The first attempts to prove this concept were made in conjunction with measurement of exhaled nitric oxide fraction (FeNO) about a decade ago.
They made use of an open-circuit, single-breath method in a closed indoor environment, and demonstrated associations between EBT on the one hand, and bronchial blood flow,FeNOand sputum cellular content on the other.
These findings have been further extended to practical applicability with the introduction of multiple-breath, portable hand-held devices.
Measurement of EBT using these is less dependent on the ambient environment and easier to perform.
Studies have been conducted to explore the relationship between EBT and different physiological characteristics, and to assess possible confounding influences in the process of measurement.
The value of the method has been explored in the diagnosis and monitoring of asthma, chronic obstructive pulmonary disease and other respiratory diseases.
While initially, emphasis focused on airway inflammation as the primary process to be captured by this method, it was subsequently realised that destructive and other remodelling processes reducing the integral contact surface of the conducting airways and/or damaging their vasculature would also affect the end result by shifting EBT downwards.
As obstructive airway disease is, in most cases, a combination of airway inflammation and remodelling/destruction, EBT should be viewed as an individual characteristic indicating fluctuating changes in the balance of these processes.
Hence, an important potential application of the method is in monitoring airway diseases.
EBT measurement has emerged as an attractive noninvasive new approach in respiratory and, possibly, other diseases.
Systematic research will determine its place in clinical practice.
Related Results
Correlation of theophylline levels in rat exhaled breath and lung tissue after its intravenous injection
Correlation of theophylline levels in rat exhaled breath and lung tissue after its intravenous injection
Abstract
It is important to know the drug level in the target tissue to determine its dose. Some methods rely on blood levels of a drug to es...
MO928EXHALED HYDROGEN AS A MARKER OF INTESTINAL FERMENTATION IS ASSOCIATED WITH DIARRHEA IN KIDNEY TRANSPLANT RECIPIENTS
MO928EXHALED HYDROGEN AS A MARKER OF INTESTINAL FERMENTATION IS ASSOCIATED WITH DIARRHEA IN KIDNEY TRANSPLANT RECIPIENTS
Abstract
Background and Aims
Diarrhea is a common gastrointestinal (GI) complaint among kidney transplant recipients (KTR). Exha...
Human Breathomics Database
Human Breathomics Database
Abstract
Breathomics is a special branch of metabolomics that quantifies volatile organic compounds (VOCs) from collected exhaled breath samples. Understanding how b...
Role of Fractional Exhaled Nitric Oxide for Monitoring Bronchial Asthma
Role of Fractional Exhaled Nitric Oxide for Monitoring Bronchial Asthma
Background: Monitoring during treatment of asthma is usually done by various clinical tools, spirometry, sputum eosinophils and fractional exhaled nitric oxide. Fractional exhaled ...
Short-Term Effect of Cigarette Smoke on Exhaled Volatile Organic Compounds Profile Analyzed by an Electronic Nose
Short-Term Effect of Cigarette Smoke on Exhaled Volatile Organic Compounds Profile Analyzed by an Electronic Nose
Breath analysis using an electronic nose (e-nose) is an innovative tool for exhaled volatile organic compound (VOC) analysis, which has shown potential in several respiratory and s...
Breathing Rhythm Variations during Wash-In Do Not Influence Exhaled Volatile Organic Compound Profile Analyzed by an Electronic Nose
Breathing Rhythm Variations during Wash-In Do Not Influence Exhaled Volatile Organic Compound Profile Analyzed by an Electronic Nose
E-noses are innovative tools used for exhaled volatile organic compound (VOC) analysis, which have shown their potential in several diseases. Before obtaining a full validation of ...
Modular Breath Analyzer (MBA): Introduction of a Breath Analyzer Platform Based on an Innovative and Unique, Modular eNose Concept for Breath Diagnostics and Utilization of Calibration Transfer Methods in Breath Analysis Studies
Modular Breath Analyzer (MBA): Introduction of a Breath Analyzer Platform Based on an Innovative and Unique, Modular eNose Concept for Breath Diagnostics and Utilization of Calibration Transfer Methods in Breath Analysis Studies
Exhaled breath analysis for early disease detection may provide a convenient method for painless and non-invasive diagnosis. In this work, a novel, compact and easy-to-use breath a...
Breath Metabolites to Diagnose Infection
Breath Metabolites to Diagnose Infection
Abstract
Background
Starkly highlighted by the current COVID-19 pandemic, infectious diseases continue to have an outsized impac...

