Literature DB >> 7874985

Airway wall liquid. Sources and role as an amplifier of bronchoconstriction.

D Yager1, R D Kamm, J M Drazen.   

Abstract

Airway liquid balance in asthma is largely determined by active plasma exudation from tracheobronchial microvessels into the interstitial spaces of the mucosa, submucosa, and/or adventitia, and from there into the luminal space. This exuded plasma is rich in proteins and cell mediators capable of initiating several events, including activation of sensory neural pathways, plasma protein cleavage, inflammatory cell recruitment, and inhibition of surfactant function. It can act to amplify the bronchoconstrictor response by increasing mucosal and/or submucosal thickness, altering mechanical properties of airway wall compartments, decoupling the airway wall from parenchymal attachments, filling airway interstices, and by creating an additional inward force because of surface tension, resulting in further airway constriction and possibly closure and thereby significantly increasing airways resistance.

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Year:  1995        PMID: 7874985     DOI: 10.1378/chest.107.3_supplement.105s

Source DB:  PubMed          Journal:  Chest        ISSN: 0012-3692            Impact factor:   9.410


  9 in total

Review 1.  Coagulation-dependent mechanisms and asthma.

Authors:  Michael A Matthay; John A Clements
Journal:  J Clin Invest       Date:  2004-07       Impact factor: 14.808

2.  Contribution of rostral fluid shift to intrathoracic airway narrowing in asthma.

Authors:  Swati A Bhatawadekar; Mark D Inman; Jeffrey J Fredberg; Susan M Tarlo; Owen D Lyons; Gabriel Keller; Azadeh Yadollahi
Journal:  J Appl Physiol (1985)       Date:  2017-01-12

3.  A bioinspired microfluidic model of liquid plug-induced mechanical airway injury.

Authors:  Joseph W Song; Jungwook Paek; Kyu-Tae Park; Jeongyun Seo; Dongeun Huh
Journal:  Biomicrofluidics       Date:  2018-05-29       Impact factor: 2.800

4.  Targeted Versus Continuous Delivery of Volatile Anesthetics During Cholinergic Bronchoconstriction.

Authors:  Jarred R Mondoñedo; John S McNeil; Jacob Herrmann; Brett A Simon; David W Kaczka
Journal:  J Eng Sci Med Diagn Ther       Date:  2018-05-09

5.  Airway Exposure to 1,3-Beta-d-Glucan Induces Airway Hyperresponsiveness in Guinea Pigs.

Authors:  You Shuei Lin; Yueh-Yin Chen; Nai-Ju Chan; Jungshan Chang; Shao-Sian Li; Chun-Chun Hsu
Journal:  ACS Pharmacol Transl Sci       Date:  2022-02-23

6.  Extravascular fibrin, plasminogen activator, plasminogen activator inhibitors, and airway hyperresponsiveness.

Authors:  Scott S Wagers; Ryan J Norton; Lisa M Rinaldi; Jason H T Bates; Burton E Sobel; Charles G Irvin
Journal:  J Clin Invest       Date:  2004-07       Impact factor: 14.808

7.  Epithelial NF-κB orchestrates house dust mite-induced airway inflammation, hyperresponsiveness, and fibrotic remodeling.

Authors:  Jane E Tully; Sidra M Hoffman; Karolyn G Lahue; James D Nolin; Vikas Anathy; Lennart K A Lundblad; Nirav Daphtary; Minara Aliyeva; Kendall E Black; Anne E Dixon; Matthew E Poynter; Charles G Irvin; Yvonne M W Janssen-Heininger
Journal:  J Immunol       Date:  2013-11-13       Impact factor: 5.422

8.  Role of aquaporin water channels in airway fluid transport, humidification, and surface liquid hydration.

Authors:  Y Song; S Jayaraman; B Yang; M A Matthay; A S Verkman
Journal:  J Gen Physiol       Date:  2001-06       Impact factor: 4.086

9.  Reduced Baseline Airway Caliber Relates to Larger Airway Sensitivity to Rostral Fluid Shift in Asthma.

Authors:  Swati A Bhatawadekar; Gabriel Keller; Cristina O Francisco; Mark D Inman; Jeffrey J Fredberg; Susan M Tarlo; Mathew Stanbrook; Owen D Lyons; Azadeh Yadollahi
Journal:  Front Physiol       Date:  2017-12-12       Impact factor: 4.566

  9 in total

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