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Cathepsin S deficiency confers protection from neonatal hyperoxia-induced lung injury

  • Hiroshi Hirakawa
  • , Richard A. Pierce
  • , Gulbin Bingol-Karakoc
  • , Cagatay Karaaslan
  • , Mei Qian Weng
  • , Guo Ping Shi
  • , Ali Saad
  • , Ekkehard Weber
  • , Thomas J. Mariani
  • , Barry Starcher
  • , Steve D. Shapiro
  • , Sule Cataltepe
  • Boston Children's Hospital
  • Washington University St. Louis
  • Brigham and Women’s Hospital
  • Martin Luther University Halle-Wittenberg
  • University of Texas at Tyler
  • University of Pittsburgh

Research output: Contribution to journalArticlepeer-review

40 Citations (Scopus)

Abstract

Rationale: Bronchopulmonary dysplasia (BPD) is a chronic lung disease that adversely affects long-term pulmonary function as well as neurodevelopmental outcomes of preterm infants. Elastolytic proteases have been implicated in the pathogenesis of BPD. Cathepsin S (cat S) is a cysteine protease with potent elastolytic activity. Increased levels and activity of cat S have been detected in a baboon model of BPD. Objectives: To investigate whether deficiency of cat S alters the course of hyperoxia-induced neonatal lung injury in mice. Methods: Newborn wild-type and cat S-deficient mice were exposed to 80% oxygen for 14 days. Histologic and morphometric analysis were performed and bronchoalveolar lavage protein and cells were analyzed. Lung elastin was assessed by real-time polymerase chain reaction, in situ hybridization, desmosine analysis, and Hart's stain. Distribution of myofibroblasts was analyzed by immunofluorescence. Hydroxyproline content of lung tissues was measured. Measurements and Main Results: Hyperoxia-exposed cat S-deficient mice were protected from growth restriction and had improved alveolarization, decreased septal wall thickness, lower number of macrophages, and lower protein concentration in bronchoalveolar lavage fluid. α-Smooth muscle actin-expressing myofibroblasts accounted for at least some of the increased interstitial cellularity in hyperoxia-exposed mouse lungs and were significantly less in cat S-deficient lungs. Lung hydroxyproline content was increased in hyperoxia-exposed wild-type, but not in cat S-deficient lungs. Desmosine content was significantly reduced in both genotypes with hyperoxia. Conclusions: Cathepsin S deficiency improves alveolarization, and attenuates macrophage influx and fibroproliferative changes in hyperoxia-induced neonatal mouse lung injury.

Original languageEnglish
Pages (from-to)778-785
Number of pages8
JournalAmerican Journal of Respiratory and Critical Care Medicine
Volume176
Issue number8
DOIs
Publication statusPublished - 15 Oct 2007
Externally publishedYes

Keywords

  • Bronchopulmonary dysplasia
  • Cathepsin
  • Hyperoxia
  • Myofibroblast

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