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Autor(en) / Beteiligte
Titel
Neonatal periostin knockout mice are protected from hyperoxia-induced alveolar simplication
Ist Teil von
  • PloS one, 2012-02, Vol.7 (2), p.e31336
Ort / Verlag
United States: Public Library of Science
Erscheinungsjahr
2012
Quelle
Elektronische Zeitschriftenbibliothek - Frei zugängliche E-Journals
Beschreibungen/Notizen
  • In bronchopulmonary dysplasia (BPD), alveolar septae are thickened with collagen and α-smooth muscle actin, transforming growth factor (TGF)-β-positive myofibroblasts. Periostin, a secreted extracellular matrix protein, is involved in TGF-β-mediated fibrosis and myofibroblast differentiation. We hypothesized that periostin expression is required for hypoalveolarization and interstitial fibrosis in hyperoxia-exposed neonatal mice, an animal model for this disease. We also examined periostin expression in neonatal lung mesenchymal stromal cells and lung tissue of hyperoxia-exposed neonatal mice and human infants with BPD. Two-to-three day-old wild-type and periostin null mice were exposed to air or 75% oxygen for 14 days. Mesenchymal stromal cells were isolated from tracheal aspirates of premature infants. Hyperoxic exposure of neonatal mice increased alveolar wall periostin expression, particularly in areas of interstitial thickening. Periostin co-localized with α-smooth muscle actin, suggesting synthesis by myofibroblasts. A similar pattern was found in lung sections of infants dying of BPD. Unlike wild-type mice, hyperoxia-exposed periostin null mice did not show larger air spaces or α-smooth muscle-positive myofibroblasts. Compared to hyperoxia-exposed wild-type mice, hyperoxia-exposed periostin null mice also showed reduced lung mRNA expression of α-smooth muscle actin, elastin, CXCL1, CXCL2 and CCL4. TGF-β treatment increased mesenchymal stromal cell periostin expression, and periostin treatment increased TGF-β-mediated DNA synthesis and myofibroblast differentiation. We conclude that periostin expression is increased in the lungs of hyperoxia-exposed neonatal mice and infants with BPD, and is required for hyperoxia-induced hypoalveolarization and interstitial fibrosis.
Sprache
Englisch
Identifikatoren
ISSN: 1932-6203
eISSN: 1932-6203
DOI: 10.1371/journal.pone.0031336
Titel-ID: cdi_plos_journals_1323856895
Format
Schlagworte
Actin, Aged, Aged, 80 and over, Alveoli, Animals, Animals, Newborn, Biology, Bone morphogenetic proteins, Bronchopulmonary Dysplasia - complications, Bronchopulmonary Dysplasia - metabolism, Bronchopulmonary Dysplasia - pathology, Carbon tetrachloride, Cell Adhesion Molecules - deficiency, Cell Adhesion Molecules - genetics, Cell Adhesion Molecules - metabolism, Cell Differentiation - drug effects, Collagen, Deoxyribonucleic acid, Differentiation, DNA, DNA - biosynthesis, DNA synthesis, Dysplasia, Elastin, Esophagus, Exposure, Extracellular matrix, Female, Fibroblasts, Fibrosis, Gene expression, Gene Expression Regulation, Developmental - drug effects, Gene Knockout Techniques, Genetic engineering, Growth factors, Humans, Hyperoxia, Hyperoxia - complications, Hyperoxia - genetics, Hyperoxia - pathology, Hyperoxia - prevention & control, Hypoventilation - complications, Hypoventilation - metabolism, Hypoventilation - pathology, Immunology, Infant, Newborn, Infants, Internal medicine, Ligands, Lungs, Male, Matrix protein, Medical schools, Medicine, Mesenchymal Stem Cells - drug effects, Mesenchymal Stem Cells - metabolism, Mesenchyme, Mice, Mice, Inbred C57BL, Mice, Knockout, Middle Aged, Morphogenesis, Myofibroblasts - drug effects, Myofibroblasts - metabolism, Myofibroblasts - pathology, Neonates, Newborn babies, Newborn infants, Oxygen, Pediatrics, Phenotype, Physiology, Proteins, Pulmonary Alveoli - drug effects, Pulmonary Alveoli - growth & development, Pulmonary Alveoli - metabolism, Pulmonary Alveoli - pathology, Pulmonary arteries, RNA, RNA, Messenger - genetics, RNA, Messenger - metabolism, Rodents, Smooth muscle, Stem cells, Stromal cells, Synthesis, Thickening, Transforming growth factor, Transforming Growth Factor beta - pharmacology, Transforming growth factors

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