Literature DB >> 9451661

A comprehensive equation for the pulmonary pressure-volume curve.

J G Venegas1, R S Harris, B A Simon.   

Abstract

Quantification of pulmonary pressure-volume (P-V) curves is often limited to calculation of specific compliance at a given pressure or the recoil pressure (P) at a given volume (V). These parameters can be substantially different depending on the arbitrary pressure or volume used in the comparison and may lead to erroneous conclusions. We evaluated a sigmoidal equation of the form, V = a + b[1 - e-(P-c)/d]-1, for its ability to characterize lung and respiratory system P-V curves obtained under a variety of conditions including normal and hypocapnic pneumoconstricted dog lungs (n = 9), oleic acid-induced acute respiratory distress syndrome (n = 2), and mechanically ventilated patients with acute respiratory distress syndrome (n = 10). In this equation, a corresponds to the V of a lower asymptote, b to the V difference between upper and lower asymptotes, c to the P at the true inflection point of the curve, and d to a width parameter proportional to the P range within which most of the V change occurs. The equation fitted equally well inflation and deflation limbs of P-V curves with a mean goodness-of-fit coefficient (R2) of 0.997 +/- 0.02 (SD). When the data from all analyzed P-V curves were normalized by the best-fit parameters and plotted as (V-a)/b vs. (P-c)/d, they collapsed into a single and tight relationship (R2 = 0.997). These results demonstrate that this sigmoidal equation can fit with excellent precision inflation and deflation P-V curves of normal lungs and of lungs with alveolar derecruitment and/or a region of gas trapping while yielding robust and physiologically useful parameters.

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Year:  1998        PMID: 9451661     DOI: 10.1152/jappl.1998.84.1.389

Source DB:  PubMed          Journal:  J Appl Physiol (1985)        ISSN: 0161-7567


  63 in total

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2.  A single computer-controlled mechanical insufflation allows determination of the pressure-volume relationship of the respiratory system.

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3.  Effects of positive end-expiratory pressure on the sigmoid equation in experimental acute lung injury.

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4.  Static pressure-volume curve characteristics are moderate estimators of optimal airway pressures in a mathematical model of (primary/pulmonary) acute respiratory distress syndrome.

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Journal:  Intensive Care Med       Date:  2004-09-15       Impact factor: 17.440

5.  Contribution of serial and parallel microperfusion to spatial variability in pulmonary inter- and intra-acinar blood flow.

Authors:  A R Clark; K S Burrowes; M H Tawhai
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6.  Relating indices of inert gas washout to localised bronchoconstriction.

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7.  Monitoring of intratidal lung mechanics: a Graphical User Interface for a model-based decision support system for PEEP-titration in mechanical ventilation.

Authors:  S Buehler; S Lozano-Zahonero; S Schumann; J Guttmann
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8.  A noninvasive ultrasound elastography technique for measuring surface waves on the lung.

Authors:  Xiaoming Zhang; Thomas Osborn; Sanjay Kalra
Journal:  Ultrasonics       Date:  2016-06-27       Impact factor: 2.890

9.  Elastic pressure-volume curves in acute lung injury and acute respiratory distress syndrome.

Authors:  Björn Jonson
Journal:  Intensive Care Med       Date:  2004-12-17       Impact factor: 17.440

10.  A new automated method versus continuous positive airway pressure method for measuring pressure-volume curves in patients with acute lung injury.

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Journal:  Intensive Care Med       Date:  2008-10-14       Impact factor: 17.440

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