Airway-parenchymal interdependence after airway contraction in rat lung explants.
- 1 July 1998
- journal article
- research article
- Published by American Physiological Society in Journal of Applied Physiology
- Vol. 85 (1) , 231-237
- https://doi.org/10.1152/jappl.1998.85.1.231
Abstract
The constriction of pulmonary airways is limited by the tethering effect exerted by parenchymal attachments. To characterize this tethering effect at the scale of intraparenchymal airways, we studied the pattern of parenchymal distortion due to bronchoconstriction in a rat lung explant system. First, we measured the elastic modulus under tension for 2% (wt/vol) agarose alone (37.6 +/- 1.5 kPa) and for agarose-filled lung (5.7 +/- 1.3 kPa). The latter is similar to the elastic modulus of air-filled lung at total lung capacity (4.5-6 kPa) (S. J. Lai-Fook, T. A. Wilson, R. E. Hyatt, and J. R. Rodarte. J. Appl. Physiol. 40: 508-513, 1976), suggesting that explants can be used as a model of lung tissue distortion. Subsequently, confocal microscopic images of fluorescently labeled 0.5-mm-thick explants prepared from agarose-filled rat lungs inflated to total lung capacity (48 ml/kg) were acquired. Images were taken before and after airway constriction was induced by direct application of 10 mM methacholine, and the pattern of parenchymal distortion was measured from the displacement of tissue landmarks identified in each image for 14 explants. The magnitude of the radial component of tissue displacement was calculated as a function of distance from the airway wall and characterized by a parameter, b, describing the rate at which tissue movement decreased with radial distance. The parameter b was 0.994 +/- 0.19 (SE), which is close to the prediction of b = 1 of micromechanical modeling (T. A. Wilson. J. Appl. Physiol. 33: 472-478, 1972). There was significant variability in b, however, which was correlated with the fractional reduction in airway diameter (r = 0.496). Additionally, parenchymal distortion showed significant torsion with respect to the radial direction. This torsion was similar in concentric zones around the airway, suggesting that it originates from inhomogeneity in the parenchyma rather than inhomogeneous airway constriction. Our results demonstrate the significance of the nonlinear mechanical properties of alveolar walls and the anisotropy of the parenchyma in determining the nature of airway-parenchymal interdependence.Keywords
This publication has 12 references indexed in Scilit:
- A theoretical analysis of the effect of airway smooth muscle load on airway narrowing.American Journal of Respiratory and Critical Care Medicine, 1996
- Changes in regional lung impedance after intravenous histamine bolus in dogs: effects of lung volumeJournal of Applied Physiology, 1995
- Acute pulmonary response to intravenous histamine using forced oscillations through alveolar capsules in dogsJournal of Applied Physiology, 1994
- Responsiveness of individual airways to methacholine in adult rat lung explantsJournal of Applied Physiology, 1993
- Micromechanical foundations of pulmonary elasticityPhysiological Reviews, 1990
- Effects of lung volume on maximal methacholine-induced bronchoconstriction in normal humansJournal of Applied Physiology, 1987
- Bronchial HyporesponsivenessChest, 1985
- A continuum mechanics analysis of pulmonary vascular interdependence in isolated dog lobesJournal of Applied Physiology, 1979
- Elastic constants of inflated lobes of dog lungsJournal of Applied Physiology, 1976
- Stress distribution in lungs: a model of pulmonary elasticity.Journal of Applied Physiology, 1970