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Ammonia is a ubiquitous byproduct of protein metabolism1. Ammonia measurement can therefore help clinicians assess various disease and wellness states2. However, ammonia is difficult to measure accurately, via blood or breath, because it is very reactive. Though commonly used, blood assays have numerous drawbacks, including basic concerns about accuracy3. But the major problem with blood assays is the reality that they only ever collected episodically. This is important because ammonia physiology, much like blood glucose and many other metabolic processes, are fluid and ever changing4. In contrast, breath assays are fully non-invasive and quick, thereby easily enabling repeated measures. Thus, breath ammonia measurement is attractive because it may address a serious unmet need in a unique way.
Breath collection, however, presents unique concerns. Whereas phlebotomy inherently carries the jeopardy of error in several unpredictable ways (e.g., tourniquet time, sweat contamination, blood cell hemolysis, delay in laboratory measurement, etc5), breath measurement researchers must contend with a different group of novel challenges: variability in breathing, contamination with oral mucosal or bacterial ammonia, influence of ambient air and apparatus humidity and temperature, etc6. Indeed, it is unwise to underestimate the task in connecting experimental equipment to humans using experimental procedures to discover unknown biology. In part due to these obstacles, breath ammonia has not yet met its potential.
Herein, we present our breath ammonia measurement protocol for fast and accurate results. Our protocol has strength in three areas: the monitor, the interface sampler, and attention to the human influences. The monitor was built by colleagues at Rice University as previously described7. The basis of the measurement is a quartz enhanced photoacoustic spectroscopy (QEPAS) technique that employs a piezoelectric quartz tuning fork as an acoustic transducer. Photoacoustic effect occurs when acoustic waves are produced by the absorption of modulated laser radiation by target trace gas species. The trace gas is detected using an acoustic cell that is acoustically resonant to the modulated frequency. An absorption wavelength for ammonia was selected that is free from spectral interferences from interfering species in breath. For the purposes of human exhaled breath measurement, the main features of the monitor include a wide measurement range (from ~50 parts per billion, ppb to at least 5,000 ppb) and speed (1 sec measurements). The speed of the monitor enables time resolution throughout the breath cycle.
The monitor is coupled to a specially designed breath sampler. The sampler consists of a pressure sensor and capnograph. It displays and archives real time measurements of mouth pressure and carbon dioxide as well as the ammonia concentrations determined by the sensor. This sampler, therefore, enables the technician to evaluate the quality of the breath effort as the breath is collected. This enables us to exceed the recommendations for analyzing breath nitric oxide (FeNO) proposed by Task Force of the American Thoracic Society/European Respiratory Society (ATS/ERS)8. For all breath sampling, a disposable one-way in-line valve was used on the mouth port of the breath sampler.
Because of the speed of the monitor and the quality controls provided by the sampler, we were able to carefully evaluate human influences9. Most subjects, for example, initially hyperventilate when instructed to breathe. Other important influences, such as oral pH and mouth rinses, temperatures of the sampler, monitor and all associated tubing, and mode of breathing, were then studied, and are the basis for the illustrative experiments below.
Finally, and perhaps most significantly, it must be emphasized that multiple highly experienced groups are measuring breath ammonia using entirely different sensors and measurement procedures. These may have important advantages and validity. A complete comparison is beyond the scope of the present work10,11,12.