Irreversible Thiol Oxidation in Carbonic Anhydrase III: Protection by S-Glutathiolation and Detection in Aging Rats
- 12 January 2002
- journal article
- Published by Walter de Gruyter GmbH in Biological Chemistry
- Vol. 383 (3-4), 649-62
- https://doi.org/10.1515/bc.2002.067
Abstract
Proteins with reactive sulfhydryls are central to many important metabolic reactions and also contribute to a variety of signal transduction systems. In this report, we examine the mechanisms of oxidative damage to the two reactive sulfhydryls of carbonic anhydrase III. Hydrogen peroxide (H2O2), peroxy radicals, or hypochlorous acid (HOCl) produced irreversibly oxidized forms, primarily cysteine sulfinic acid or cysteic acid, of carbonic anhydrase III if glutathione (GSH) was not present. When GSH was approximately equimolar to protein thiols, irreversible oxidation was prevented. H202 and peroxyl radicals both generated S-glutathiolated carbonic anhydrase III via partially oxidized protein sulfhydryl intermediates, while HOCl did not cause S-glutathiolation. Thus, oxidative damage from H202 or AAPH was prevented by protein S-glutathiolation, while a direct reaction between GSH and oxidant likely prevents HOCl-mediated protein damage. In cultured rat hepatocytes, carbonic anhydrase III was rapidly S-glutathiolated by menadione. When hepatocyte glutathione was depleted, menadione instead caused irreversible oxidation. We hypothesized that normal depletion of glutathione in aged animals might also lead to an increase in irreversible oxidation. Indeed, both total protein extracts and carbonic anhydrase III contained significantly more cysteine sulfinic acid in older rats compared to young animals. These experiments show that, in the absence of sufficient GSH, oxidation reactions lead to irreversible protein sulfhydryl damage in purified proteins, cellular systems, and whole animals.Keywords
This publication has 45 references indexed in Scilit:
- Roles of Superoxide Radical Anion in Signal Transduction Mediated by Reversible Regulation of Protein-tyrosine Phosphatase 1BPublished by Elsevier ,1999
- Regulation of PTP1B via Glutathionylation of the Active Site Cysteine 215Biochemistry, 1999
- Oxidative Stress Causes Intracellular Reversible S-Thiolation of Chicken Hemoglobin under Diamide and Xanthine Oxidase TreatmentArchives of Biochemistry and Biophysics, 1998
- Enzyme inactivation through sulfhydryl oxidation by physiologic NO-carriersNature Structural & Molecular Biology, 1998
- Recent Trends in Glutathione Biochemistry—Glutathione–Protein Interactions: A Molecular Link between Oxidative Stress and Cell Proliferation?Biochemical and Biophysical Research Communications, 1998
- Protein Oxidation in Aging, Disease, and Oxidative StressJournal of Biological Chemistry, 1997
- Carbonic Anhydrase III. OXIDATIVE MODIFICATION IN VIVO AND LOSS OF PHOSPHATASE ACTIVITY DURING AGINGPublished by Elsevier ,1995
- S-Thiolation of Individual Human Neutrophil Proteins Including Actin by Stimulation of the Respiratory Burst: Evidence against a Role for Glutathione DisulfideArchives of Biochemistry and Biophysics, 1994
- Identification of an abundant S-thiolated rat liver protein as carbonic anhydrase III; characterization of S-thiolation and dethiolation reactionsArchives of Biochemistry and Biophysics, 1991
- Purification and some properties of carbonic anhydrase from bovine skeletal muscleArchives of Biochemistry and Biophysics, 1985