γ-Glutamyl transferase deficiency results in lung oxidant stress in normoxia

Author:

Jean Jyh Chang1,Liu Yue1,Brown Lou Ann2,Marc Robert E.3,Klings Elizabeth1,Joyce-Brady Martin1

Affiliation:

1. Pulmonary Center at Boston University School of Medicine, Boston, Massachusetts 02118;

2. Department of Pediatrics, Emory University, Atlanta, Georgia 30322; and

3. Moran Eye Center, University of Utah, Salt Lake City, Utah 84108

Abstract

γ-Glutamyl transferase (GGT) is critical to glutathione homeostasis by providing substrates for glutathione synthesis. We hypothesized that loss of GGT would cause oxidant stress in the lung. We compared the lungs of GGTenu1 mice, a genetic model of GGT deficiency, with normal mice in normoxia to study this hypothesis. We found GGT promoter 3 (P3) alone expressed in normal lung but GGT P3 plus P1, an oxidant-inducible GGT promoter, in GGTenu1 lung. Glutathione content was barely decreased in GGTenu1 lung homogenate and elevated nearly twofold in epithelial lining fluid, but the fraction of oxidized glutathione was increased three- and fourfold, respectively. Glutathione content in GGTenu1 alveolar macrophages was decreased nearly sixfold, and the oxidized glutathione fraction was increased sevenfold. Immunohistochemical studies showed glutathione deficiency together with an intense signal for 3-nitrotyrosine in nonciliated bronchiolar epithelial (Clara) cells and expression of heme oxygenase-1 in the vasculature only in GGTenu1 lung. When GGTenu1mice were exposed to hyperoxia, survival was decreased by 25% from control because of accelerated formation of vascular pulmonary edema, widespread oxidant stress in the epithelium, diffuse depletion of glutathione, and severe bronchiolar cellular injury. These data indicate a critical role for GGT in lung glutathione homeostasis and antioxidant defense in normoxia and hyperoxia.

Publisher

American Physiological Society

Subject

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

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