Endogenous osteopontin promotes ozone-induced neutrophil recruitment to the lungs and airway hyperresponsiveness to methacholine

Author:

Barreno Ramon X.1,Richards Jeremy B.2,Schneider Daniel J.3,Cromar Kevin R.4,Nadas Arthur J.4,Hernandez Christopher B.5,Hallberg Lance M.6,Price Roger E.7,Hashmi Syed S.8,Blackburn Michael R.3,Haque Ikram U.1,Johnston Richard A.185

Affiliation:

1. Division of Pediatric Critical Care Medicine, Department of Pediatrics,

2. Division of Pulmonary, Critical Care, and Sleep Medicine, Department of Medicine, Beth Israel Deaconess Medical Center, Boston, Massachusetts; and

3. Department of Biochemistry and Molecular Biology, and

4. Department of Environmental Medicine, New York University School of Medicine, Tuxedo, New York

5. Division of Pulmonary, Allergy, and Critical Care Medicine, Department of Internal Medicine, The University of Texas Medical Branch at Galveston School of Medicine, Galveston, Texas;

6. Division of Environmental Toxicology, Department of Preventative Medicine and Community Health, The University of Texas Medical Branch at Galveston School of Medicine, Galveston, Texas;

7. Comparative Pathology Laboratory, Center for Comparative Medicine, Baylor College of Medicine, Houston, Texas;

8. Pediatric Research Center, Department of Pediatrics, The University of Texas Medical School at Houston, Houston, Texas;

Abstract

Inhalation of ozone (O3), a common environmental pollutant, causes pulmonary injury, pulmonary inflammation, and airway hyperresponsiveness (AHR) in healthy individuals and exacerbates many of these same sequelae in individuals with preexisting lung disease. However, the mechanisms underlying these phenomena are poorly understood. Consequently, we sought to determine the contribution of osteopontin (OPN), a hormone and a pleiotropic cytokine, to the development of O3-induced pulmonary injury, pulmonary inflammation, and AHR. To that end, we examined indices of these aforementioned sequelae in mice genetically deficient in OPN and in wild-type, C57BL/6 mice 24 h following the cessation of an acute (3 h) exposure to filtered room air (air) or O3 (2 parts/million). In wild-type mice, O3 exposure increased bronchoalveolar lavage fluid (BALF) OPN, whereas immunohistochemical analysis demonstrated that there were no differences in the number of OPN-positive alveolar macrophages between air- and O3-exposed wild-type mice. O3 exposure also increased BALF epithelial cells, protein, and neutrophils in wild-type and OPN-deficient mice compared with genotype-matched, air-exposed controls. However, following O3 exposure, BALF neutrophils were significantly reduced in OPN-deficient compared with wild-type mice. When airway responsiveness to inhaled acetyl-β-methylcholine chloride (methacholine) was assessed using the forced oscillation technique, O3 exposure caused hyperresponsiveness to methacholine in the airways and lung parenchyma of wild-type mice, but not OPN-deficient mice. These results demonstrate that OPN is increased in the air spaces following acute exposure to O3 and functionally contributes to the development of O3-induced pulmonary inflammation and airway and lung parenchymal hyperresponsiveness to methacholine.

Publisher

American Physiological Society

Subject

Cell Biology,Physiology (medical),Pulmonary and Respiratory Medicine,Physiology

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