A new approach for flow-through respirometry measurements in humans

Author:

Melanson Edward L.12,Ingebrigtsen Jan P.2,Bergouignan Audrey2,Ohkawara Kazunori23,Kohrt Wendy M.24,Lighton John R. B.5

Affiliation:

1. Division of Endocrinology, Metabolism, and Diabetes,

2. Center for Human Nutrition, and

3. Health Promotion and Exercise Program, National Institute of Health and Nutrition, Tokyo, Japan

4. Division of Geriatrics, University of Colorado Denver, School of Medicine, Denver, Colorado;

5. Sable Systems International, Las Vegas, Nevada;

Abstract

Indirect whole room calorimetry is commonly used in studies of human metabolism. These calorimeters can be configured as either push or pull systems. A major obstacle to accurately calculating gas exchange rates in a pull system is that the excurrent flow rate is increased above the incurrent flow rate, because the organism produces water vapor, which also dilutes the concentrations of respiratory gasses in the excurrent sample. A common approach to this problem is to dry the excurrent gasses prior to measurement, but if drying is incomplete, large errors in the calculated oxygen consumption will result. The other major potential source of error is fluctuations in the concentration of O2and CO2in the incurrent airstream. We describe a novel approach to measuring gas exchange using a pull-type whole room indirect calorimeter. Relative humidity and temperature of the incurrent and excurrent airstreams are measured continuously using high-precision, relative humidity and temperature sensors, permitting accurate measurement of water vapor pressure. The excurrent flow rates are then adjusted to eliminate the flow contribution from water vapor, and respiratory gas concentrations are adjusted to eliminate the effect of water vapor dilution. In addition, a novel switching approach is used that permits constant, uninterrupted measurement of the excurrent airstream while allowing frequent measurements of the incurrent airstream. To demonstrate the accuracy of this approach, we present the results of validation trials compared with our existing system and metabolic carts, as well as the results of standard propane combustion tests.

Publisher

American Physiological Society

Subject

Physiology (medical),Physiology

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