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  3. Alveolar derecruitment and collapse induration as crucial mechanisms in lung injury and fibrosis.

Alveolar derecruitment and collapse induration as crucial mechanisms in lung injury and fibrosis.

Details
Publisher DOI
10.1165/rcmb.2014-0078OC
PubMed ID
25033427
Abstract
Idiopathic pulmonary fibrosis (IPF) and bleomycin-induced pulmonary fibrosis are associated with surfactant system dysfunction, alveolar collapse (derecruitment), and collapse induration (irreversible collapse). These events play undefined roles in the loss of lung function. The purpose of this study was to quantify how surfactant inactivation, alveolar collapse, and collapse induration lead to degradation of lung function. Design-based stereology and invasive pulmonary function tests were performed 1, 3, 7, and 14 days after intratracheal bleomycin-instillation in rats. The number and size of open alveoli was correlated to mechanical properties. Active surfactant subtypes declined by Day 1, associated with a progressive alveolar derecruitment and a decrease in compliance. Alveolar epithelial damage was more pronounced in closed alveoli compared with ventilated alveoli. Collapse induration occurred on Day 7 and Day 14 as indicated by collapsed alveoli overgrown by a hyperplastic alveolar epithelium. This pathophysiology was also observed for the first time in human IPF lung explants. Before the onset of collapse induration, distal airspaces were easily recruited, and lung elastance could be kept low after recruitment by positive end-expiratory pressure (PEEP). At later time points, the recruitable fraction of the lung was reduced by collapse induration, causing elastance to be elevated at high levels of PEEP. Surfactant inactivation leading to alveolar collapse and subsequent collapse induration might be the primary pathway for the loss of alveoli in this animal model. Loss of alveoli is highly correlated with the degradation of lung function. Our ultrastructural observations suggest that collapse induration is important in human IPF.
Date Issued
2015-02
Publication Type
Article
Subject(s)
600 Technology > 610 Medicine & health
Subjects
alveolar epithelial type II cells
•
collapse induration
•
pulmonary fibrosis
•
stereology
•
surfactant
Language(s)
en
Author(s)
Lutz, Dennis
Gazdhar, Amiq  
Departement Klinische Forschung, Forschungsgruppe Pneumologie (Erwachsene)  
Universitätsklinik für Pneumologie  
Lopez-Rodriguez, Elena
Ruppert, Clemens
Mahavadi, Poornima
Günthert, Andreas Reinhold  
Luzerner Kantonsspital, Neue Frauenklinik  
Klepetko, Walter
Bates, Jason H
Smith, Bradford
Geiser, Thomas  
Universitätsklinik für Pneumologie  
Departement Klinische Forschung, Forschungsgruppe Pneumologie (Erwachsene)  
Ochs, Matthias
Knudsen, Lars  
Universitätsklinik für Pneumologie  
Additional Credits
Departement Klinische Forschung, Forschungsgruppe Pneumologie (Erwachsene)  
Universitätsklinik für Pneumologie  
Luzerner Kantonsspital, Neue Frauenklinik  
Journal
American journal of respiratory cell and molecular biology
Publisher
American Lung Association
ISSN
1044-1549
Access(Rights)
metadata.only
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