Literature DB >> 8594034

Interaction between airway lining fluid forces and parenchymal tethering during pulmonary airway reopening.

M L Perun1, D P Gaver.   

Abstract

In this study, our goal is to identify the interaction between airway lining fluid viscous and surface forces and parenchymal tethering forces during pulmonary airway reopening. The type of closure we modeled occurs when the airway walls and surrounding parenchyma collapse and are held in apposition by the lining fluid. We mimicked this system with a polyethylene tube coated with a Newtonian lining fluid supported by open-cell foam. Reopening occurs when a finger of air travels through the collapsed region. We measured the airway pressure (Paw) required to open the airway at a constant velocity (U). Increasing the foam stiffness (K), lining fluid viscosity (mu), and surface tension (gamma) results in an increase in Paw. Furthermore, increasing the downstream suction pressure (Pds), through tethering, causes an equivalent reduction in Paw. The upstream radius is the primary length scale, and fluid forces are represented by the capillary number: Ca = microU/gamma. On the basis of these results, we predicted the likelihood that tethering would begin to reopen collapsed airways in various disease states. This analysis showed that the ratio of tethering to fluid forces determines airway patency, which is defined as follows: lambda = PTrans/(gamma/R), where PTrans = Paw-Pds and R is airway radius. Finally, lung volume-dependent surface tension appears to be necessary to stabilize the lung.

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Year:  1995        PMID: 8594034     DOI: 10.1152/jappl.1995.79.5.1717

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


  14 in total

1.  Liquid plug propagation in flexible microchannels: A small airway model.

Authors:  Y Zheng; H Fujioka; S Bian; Y Torisawa; D Huh; S Takayama; J B Grotberg
Journal:  Phys Fluids (1994)       Date:  2009-07-29       Impact factor: 3.521

Review 2.  Biomechanics of liquid-epithelium interactions in pulmonary airways.

Authors:  Samir N Ghadiali; Donald P Gaver
Journal:  Respir Physiol Neurobiol       Date:  2008-04-22       Impact factor: 1.931

3.  Effects of recruitment/derecruitment dynamics on the efficacy of variable ventilation.

Authors:  Baoshun Ma; Béla Suki; Jason H T Bates
Journal:  J Appl Physiol (1985)       Date:  2011-03-03

4.  Functional and morphological assessment of early impairment of airway function in a rat model of emphysema.

Authors:  J Tolnai; M V Szabari; G Albu; B A Maár; H Parameswaran; E Bartolák-Suki; B Suki; Z Hantos
Journal:  J Appl Physiol (1985)       Date:  2012-03-22

5.  Microscale to mesoscale analysis of parenchymal tethering: the effect of heterogeneous alveolar pressures on the pulmonary mechanics of compliant airways.

Authors:  Jason M Ryans; Hideki Fujioka; Donald P Gaver
Journal:  J Appl Physiol (1985)       Date:  2019-01-24

6.  Linking the development of ventilator-induced injury to mechanical function in the lung.

Authors:  Bradford J Smith; Kara A Grant; Jason H T Bates
Journal:  Ann Biomed Eng       Date:  2012-11-16       Impact factor: 3.934

7.  The influence of surfactant on the propagation of a semi-infinite bubble through a liquid-filled compliant channel.

Authors:  David Halpern; Donald P Gaver
Journal:  J Fluid Mech       Date:  2012-03-30       Impact factor: 3.627

8.  Predicting ventilator-induced lung injury using a lung injury cost function.

Authors:  Katharine L Hamlington; Bradford J Smith; Gilman B Allen; Jason H T Bates
Journal:  J Appl Physiol (1985)       Date:  2016-05-12

9.  μ-PIV measurements of the ensemble flow fields surrounding a migrating semi-infinite bubble.

Authors:  Eiichiro Yamaguchi; Bradford J Smith; Donald P Gaver
Journal:  Exp Fluids       Date:  2009-08-01       Impact factor: 2.480

10.  Lung volumes and respiratory mechanics in elastase-induced emphysema in mice.

Authors:  Z Hantos; A Adamicza; T Z Jánosi; M V Szabari; J Tolnai; B Suki
Journal:  J Appl Physiol (1985)       Date:  2008-10-09
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