Literature DB >> 29154907

An integrated mathematical epithelial cell model for airway surface liquid regulation by mechanical forces.

Dan Wu1, Richard C Boucher2, Brian Button3, Timothy Elston4, Ching-Long Lin5.   

Abstract

A robust method based on reverse engineering was utilized to construct the ion-channel conductance functions for airway epithelial sodium channels (ENaC), the cystic fibrosis transmembrane conductance regulator (CFTR), and calcium-activated chloride channels (CaCC). The ion-channel conductance models for both normal (NL) and cystic fibrosis (CF) airway epithelia were developed and then coupled to an adenosine triphosphate (ATP) metabolism model and a fluid transport model (collectively called the integrated cell model) to investigate airway surface liquid (ASL) volume regulation and hence mucus concentration, by mechanical forces in NL and CF human airways. The epithelial cell models for NL and CF required differences in Cl- secretion (decreased in CF) and Na+ absorption (raised in CF) to reproduce behaviors similar to in vitro epithelial cells exposed to mechanical forces (cyclic shear stress, cyclic compressive pressure and cilial strain) and selected modulators of ion channels and ATP release. The epithelial cell models were then used to investigate the effects of mechanical forces and evaporative flux on ASL and mucus homeostasis in both NL and CF airway epithelia. Because of reduced CF ASL volumes, CF mucus concentrations increased and produced a greater dependence of ASL volume regulation on cilia-mucus-ATP release interactions in CF than NL epithelial nodules. Similarly, the CF model was less tolerant to evaporation induced ASL volume reduction at all ATP release rates than the NL model. Consequently, this reverse engineered model appears to provide a robust tool for investigating CF pathophysiology and novel therapies.
Copyright © 2017 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Airway epithelial cell; Airway surface liquid regulation; Cystic fibrosis; Evaporative flux; Mechanosensitive ion channels

Mesh:

Substances:

Year:  2017        PMID: 29154907      PMCID: PMC5764545          DOI: 10.1016/j.jtbi.2017.11.010

Source DB:  PubMed          Journal:  J Theor Biol        ISSN: 0022-5193            Impact factor:   2.691


  24 in total

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4.  Normal and cystic fibrosis airway surface liquid homeostasis. The effects of phasic shear stress and viral infections.

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5.  A mechanochemical model for auto-regulation of lung airway surface layer volume.

Authors:  Gregory Herschlag; Guilherme J M Garcia; Brian Button; Robert Tarran; Brandon Lindley; Benjamin Reinhardt; Timothy C Elston; M Gregory Forest
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6.  Differential effects of cyclic and constant stress on ATP release and mucociliary transport by human airway epithelia.

Authors:  Brian Button; Maryse Picher; Richard C Boucher
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7.  CFTR as a cAMP-dependent regulator of sodium channels.

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8.  Mechanosensitive ATP release maintains proper mucus hydration of airways.

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9.  Airway acidification initiates host defense abnormalities in cystic fibrosis mice.

Authors:  Viral S Shah; David K Meyerholz; Xiao Xiao Tang; Leah Reznikov; Mahmoud Abou Alaiwa; Sarah E Ernst; Philip H Karp; Christine L Wohlford-Lenane; Kristopher P Heilmann; Mariah R Leidinger; Patrick D Allen; Joseph Zabner; Paul B McCray; Lynda S Ostedgaard; David A Stoltz; Christoph O Randak; Michael J Welsh
Journal:  Science       Date:  2016-01-29       Impact factor: 47.728

10.  Soluble mediators, not cilia, determine airway surface liquid volume in normal and cystic fibrosis superficial airway epithelia.

Authors:  Robert Tarran; Laura Trout; Scott H Donaldson; Richard C Boucher
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2.  Thickness of the airway surface liquid layer in the lung is affected in cystic fibrosis by compromised synergistic regulation of the ENaC ion channel.

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