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Am J Physiol Lung Cell Mol Physiol 283: L211-L218, 2002. First published March 29, 2002; doi:10.1152/ajplung.00409.2001
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Vol. 283, Issue 1, L211-L218, July 2002

Overexpression of extracellular superoxide dismutase decreases lung injury after exposure to oil fly ash

Andrew J. Ghio1, Hagir B. Suliman2, Jacqueline D. Carter1, Amir M. Abushamaa2, and Rodney J. Folz2

1 National Health and Environmental Effects Research Laboratory, Environmental Protection Agency, Research Triangle Park 27711; and 2 Departments of Medicine and Cell Biology, Division of Pulmonary and Critical Care Medicine, Duke University Medical Center, Durham, North Carolina 27710

The mechanism of tissue injury after exposure to air pollution particles is not known. The biological effect has been postulated to be mediated via an oxidative stress catalyzed by metals present in particulate matter (PM). We utilized a transgenic (Tg) mouse model that overexpresses extracellular superoxide dismutase (EC-SOD) to test the hypothesis that lung injury after exposure to PM results from an oxidative stress in the lower respiratory tract. Wild-type (Wt) and Tg mice were intratracheally instilled with either saline or 50 µg of residual oil fly ash (ROFA). Twenty-four hours later, specimens were obtained and included bronchoalveolar lavage (BAL) and lung for both homogenization and light histopathology. After ROFA exposure, EC-SOD Tg mice showed a significant reduction in BAL total cell counts (composed primarily of neutrophils) and BAL total protein compared with Wt. EC-SOD animals also demonstrated diminished concentrations of inflammatory mediators in BAL. There was no statistically significant difference in BAL lipid peroxidation; however, EC-SOD mice had lower concentrations of oxidized glutathione in the BAL. We conclude that enhanced EC-SOD expression decreased both lung inflammation and damage after exposure to ROFA. This supports a participation of oxidative stress in the inflammatory injury after PM exposure rather than reflecting a response to metals alone.

transgenic mice; particles; free radicals; vanadium


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