This research project deals with the study of regional distribution of pulmonary ventilation in the non-homogeneous lung. It is intended to test the hypothesis that respiratory frequency and tidal volume should affect the regional distribution of alveolar ventilation in different ways depending on the state of parenchyma and airways.
The aim of this research is to study in living dogs, the effects of respiratory frequency and tidal volume, mean lung volume and interegional mixing, on the regional distribution alveolar ventilation under three distinct conditions of non-homogeneous lung mechanisms: 1) Large airway obstruction created with a bronchoscopically inserted, known crossectional area orifice; 2) unilateral bronchoconstriction produced by histamine in aerosol, and 3) unilateral low compliance caused by lung lavage. Alveolar ventilation will be assessed by measuring the local turnover rate, from the lung airspaces, of radio-active Nitrogen- 13 during washout maneuvers using a 2D positron camera, or a stationary positron emission ring tomographic camera. This unique ring camera creates 3 dimensional reconstructions of the lungs with excellent spacial resolution. Regional distribution of gas transport created with several settings of conventional and high frequency small-tidal volume mechanical ventilation will be measured. Simultaneously, regional mechanical characteristics and oscillatory flow rates will be measured or estimated, using a combination of newly developed intra-airway pneumotachographs, novel techniques with the positron cameras and computer model of lung mechanics. Theoretical models that incorporate the mechanical and gas transport characteristics of the lung at a regional level will be developed and tested against the data obtained experimentally. It is expected that the results of these experiments will improve our understanding of the basic physiologic mechanisms of gas transport within the lung and ultimately contribute in developing a rationale for selecting the respiratory parameters in the mechanically ventilated patient. This project will also provide the background knowledge needed to develop improved diagnostic tools of regional pulmonary function.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
1R01HL038267-01A1
Application #
3354413
Study Section
Respiratory and Applied Physiology Study Section (RAP)
Project Start
1988-03-03
Project End
1991-03-02
Budget Start
1988-03-03
Budget End
1989-03-02
Support Year
1
Fiscal Year
1988
Total Cost
Indirect Cost
Name
Massachusetts General Hospital
Department
Type
DUNS #
City
Boston
State
MA
Country
United States
Zip Code
02199
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Simon, B A; Venegas, J G (1994) Analyzing 13NN lung washout curves in the presence of intraregional nonuniformities. J Appl Physiol 76:956-64
Venegas, J G; Tsuzaki, K; Fox, B J et al. (1993) Regional coupling between chest wall and lung expansion during HFV: a positron imaging study. J Appl Physiol 74:2242-52
Tsuzaki, K; Hales, C A; Strieder, D J et al. (1993) Regional lung mechanics and gas transport in lungs with inhomogeneous compliance. J Appl Physiol 75:206-16
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Yamada, Y; Burnham, C; Hales, C A et al. (1989) Regional mapping of gas transport during high-frequency and conventional ventilation. J Appl Physiol 66:1209-18