Glutathione Depletion Due to Copper-Induced Phytochelatin Synthesis Causes Oxidative Stress in Silene cucubalus
Open Access
- 1 March 1992
- journal article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 98 (3) , 853-858
- https://doi.org/10.1104/pp.98.3.853
Abstract
The relation between loss of glutathione due to metal-induced phytochelatin synthesis and oxidative stress was studied in the roots of copper-sensitive and tolerant Silene cucubalus (L.) Wib., resistant to 1 and 40 micromolar Cu, respectively. The amount of nonprotein sulfhydryl compounds other than glutathione was taken as a measure of phytochelatins. At a supply of 20 micromolar Cu, which is toxic for sensitive plants only, phytochelatin synthesis and loss of total glutathione were observed only in sensitive plants within 6 h of exposure. When the plants were exposed to a range of copper concentrations for 3 d, a marked production of phytochelatins in sensitive plants was already observed at 0.5 micromolar Cu, whereas the production in tolerant plants was negligible at 40 micromolar or lower. The highest production in tolerant plants was only 40% of that in sensitive plants. In both varieties, the synthesis of phytochelatins was coupled to a loss of glutathione. Copper at toxic concentrations caused oxidative stress, as was evidenced by both the accumulation of lipid peroxidation products and a shift in the glutathione redox couple to a more oxidized state. Depletion of glutathione by pretreatment with buthionine sulfoximine significantly increased the oxidative damage by copper. At a comparably low glutathione level, cadmium had no effect on either lipid peroxidation or the glutathione redox couple in buthionine sulfoximine-treated plants. These results indicate that copper may specifically cause oxidative stress by depletion of the antioxidant glutathione due to phytochelatin synthesis. We conclude that copper tolerance in S. cucubalus does not depend on the production of phytochelatins but is related to the plant's ability to prevent glutathione depletion resulting from copper-induced phytochelatin production, e.g. by restricting its copper uptake.Keywords
This publication has 15 references indexed in Scilit:
- Regulation of Glutathione Synthesis by Cadmium in Pisum sativum L.Plant Physiology, 1990
- Subcellular Localization of Cadmium and Cadmium-Binding Peptides in Tobacco LeavesPlant Physiology, 1990
- Phytochelatins, the heavy-metal-binding peptides of plants, are synthesized from glutathione by a specific γ-glutamylcysteine dipeptidyl transpeptidase (phytochelatin synthase)Proceedings of the National Academy of Sciences, 1989
- Poly(γ-glutamylcysteinyl)glycine Synthesis in Datura innoxia and Binding with CadmiumPlant Physiology, 1989
- Cu(I) binding to the Schizosaccharomyces pombe γ-glutamyl peptides varying in chain lengthsArchives of Biochemistry and Biophysics, 1988
- Studies on the gamma-glutamyl Cu-binding peptide from Schizosaccharomyces pombe.Journal of Biological Chemistry, 1988
- Phytochelatin Synthesis and Glutathione Levels in Response to Heavy Metals in Tomato CellsPlant Physiology, 1987
- Effects of Buthionine Sulfoximine on Cd-Binding Peptide Levels in Suspension-Cultured Tobacco Cells Treated with Cd, Zn, or CuPlant Physiology, 1987
- Accumulation of non-protein metal-binding polypeptides (gamma-glutamyl-cysteinyl)n-glycine in selected cadmium-resistant tomato cells.Journal of Biological Chemistry, 1986
- Phytochelatins: The Principal Heavy-Metal Complexing Peptides of Higher PlantsScience, 1985