Increased Glutathione Biosynthesis Plays a Role in Nickel Tolerance in Thlaspi Nickel Hyperaccumulators[W]
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Open Access
- 1 August 2004
- journal article
- Published by Oxford University Press (OUP) in Plant Cell
- Vol. 16 (8) , 2176-2191
- https://doi.org/10.1105/tpc.104.023036
Abstract
Worldwide more than 400 plant species are now known that hyperaccumulate various trace metals (Cd, Co, Cu, Mn, Ni, and Zn), metalloids (As) and nonmetals (Se) in their shoots. Of these, almost one-quarter are Brassicaceae family members, including numerous Thlaspi species that hyperaccumulate Ni up to 3% of there shoot dry weight. We observed that concentrations of glutathione, Cys, and O-acetyl-l-serine (OAS), in shoot tissue, are strongly correlated with the ability to hyperaccumulate Ni in various Thlaspi hyperaccumulators collected from serpentine soils, including Thlaspi goesingense, T. oxyceras, and T. rosulare, and nonaccumulator relatives, including T. perfoliatum, T. arvense, and Arabidopsis thaliana. Further analysis of the Austrian Ni hyperaccumulator T. goesingense revealed that the high concentrations of OAS, Cys, and GSH observed in this hyperaccumulator coincide with constitutively high activity of both serine acetyltransferase (SAT) and glutathione reductase. SAT catalyzes the acetylation of l-Ser to produce OAS, which acts as both a key positive regulator of sulfur assimilation and forms the carbon skeleton for Cys biosynthesis. These changes in Cys and GSH metabolism also coincide with the ability of T. goesingense to both hyperaccumulate Ni and resist its damaging oxidative effects. Overproduction of T. goesingense SAT in the nonaccumulator Brassicaceae family member Arabidopsis was found to cause accumulation of OAS, Cys, and glutathione, mimicking the biochemical changes observed in the Ni hyperaccumulators. In these transgenic Arabidopsis, glutathione concentrations strongly correlate with increased resistance to both the growth inhibitory and oxidative stress induced effects of Ni. Taken together, such evidence supports our conclusion that elevated GSH concentrations, driven by constitutively elevated SAT activity, are involved in conferring tolerance to Ni-induced oxidative stress in Thlaspi Ni hyperaccumulators.Keywords
This publication has 70 references indexed in Scilit:
- A cosegregation analysis of zinc (Zn) accumulation and Zn tolerance in the Zn hyperaccumulator Thlaspi caerulescensNew Phytologist, 2003
- Increased antioxidative capacity in maize calli during and after oxidative stress induced by a long lead treatmentPlant Physiology and Biochemistry, 2003
- Ni‐induced oxidative stress in roots of the Ni hyperaccumulator, Alyssum bertoloniiNew Phytologist, 2002
- PHYTOCHELATINS AND METALLOTHIONEINS: Roles in Heavy Metal Detoxification and HomeostasisAnnual Review of Plant Biology, 2002
- Role of oxidative stress and thiol antioxidant enzymes in nickel toxicity and resistance in strains of the green alga Scenedesmus acutus f. alternansCanadian Journal of Microbiology, 2001
- Fortified Foods and Phytoremediation. Two Sides of the Same CoinPlant Physiology, 2001
- Overexpression of glutathione reductase in Brassica juncea: Effects on cadmium accumulation and tolerancePhysiologia Plantarum, 2000
- Properties of Enhanced Tonoplast Zinc Transport in Naturally Selected Zinc-Tolerant Silene vulgarisPlant Physiology, 1999
- Chloroplast DNA Restriction Site Variation and Phylogenetic Relationships in the Genus Thlaspi sensu lato (Brassicaceae)Systematic Botany, 1994
- Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4Nature, 1970