Arsenic-induced root growth inhibition in mung bean (Phaseolus aureus Roxb.) is due to oxidative stress resulting from enhanced lipid peroxidation

Harminder Pal Singh1, Daizy R. Batish2, R. K. Kohli1, Kishor Arora2
1Centre for Environment and Vocational Studies, Panjab University, Chandigarh 160 014, India
2Botany Department, Panjab University, Chandigarh 160 014, India

Tóm tắt

Từ khóa


Tài liệu tham khảo

Armstrong W (1967) The oxidizing activity of roots in waterlogged soils. Physiol Plant 20:920–926

Bajji M, Kinet J-M, Lutts S (2002) The use of the electrolyte leakage method for assessing cell membrane stability as a water stress tolerance test in durum wheat. Plant Growth Regul 36:61–70

Batish DR, Lavanya K, Singh HP, Kohli RK (2007) Phenolic allelochemicals released by Chenopodium murale affect the growth, nodulation and macromolecule content in chickpea and pea. Plant Growth Regul 51:119–128

Beauchamp C, Fridovich I (1971) Superoxide dismutase: improved assays and an assay applicable to acrylamide gels. Anal Biochem 44:276–286

Boveris A, Cadenas E, Chance B (1980). Low level chemiluminescence of the lipoxygenase reaction. Photobiochem Photobiophys 1:175–182

Cakmak I, Marschner H (1992) Magnesium deficiency and high light intensity enhance activities of superoxide dismutase, ascorbate peroxidase and glutathione reductase in bean leaves. Plant Physiol 98:1222–1227

Choudhury S, Panda SK (2004) Induction of oxidative stress and ultrastructural changes in moss Taxithelium nepalense (Schwaegr.) Broth. under lead and arsenic phytotoxicity. Curr Sci 87:342–348

Doyle MO, Otte ML (1997) Organism-induced accumulation of iron, zinc and arsenic in wetland soils. Environ Pollut 96:1–11

Egley GH, Paul RN, Vaughn KC, Duke SO (1983) Role of peroxidase in the development of water impermeable seed coats in Sida spinosa L. Planta 157:224–232

Foyer CH, Halliwell B (1976) Presence of glutathione and glutathione reductase in chloroplasts: a proposed role in ascorbic acid metabolism. Planta 133:21–25

Foyer CH, Noctor G (2005) Redox homeostasis and antioxidant signaling: a metabolic interface between stress perception and physiological responses. Plant Cell 17:1866–1875

Gajewska E, Slaba M, Andrzejewska R, Sklodowska M (2006) Nickel-induced inhibition of wheat root growth is related to H2O2 production, but not to lipid peroxidation. Plant Growth Regul 49:95–103

Gonzaga MIS, Santos JAG, Ma LQ (2006) Arsenic phytoextrcation and hyperaccumulation by fern species. Sci Agric 63:90–101

Gratäo PL, Polle A, Lea PJ, Azevedo RA (2005) Making the life of heavy metal-stressed plants a little easier. Funct Plant Biol 32:481–494

Halliwell B, Gutteridge JM (1989) The chemistry of oxygen radicals and other derived species. In: Halliwell B, Gutteridge JM (eds) Free radicals in biology and medicine. Clarendon Press, Oxford, pp 22–85

Hartley-Whitaker J, Ainsworth G, Meharg AA (2001) Copper and arsenate induced oxidative stress in Holcus lanatus L. clones with differential sensitivity. Plant Cell Environ 24:13–22

Heath RL, Packer L (1968) Photoperoxidation in isolated chloroplasts I Kinetics and stoichiometry of fatty acid peroxidation. Arch Biochem Biophys 125:189–198

Kapustka LA, Lipton J, Galbraith H, Cacela D, Lejeune K (1995) Metallic and arsenic impacts to soils, vegetation communities and wildlife habitat in southwest Montana uplands contained by smelter emissions: II. Laboratory phytotoxicity studies. Environ Toxicol Chem 14:1905–1912

Kedrova L, Saveljev J, Sheshegova T, Shirokhih I, Lisitsyn E (2003) Selection of winter rye (Secale cereale L.) for aluminum and acid resistance. Plant Breed Seed Sci 48:163–168

Li W-X, Chen T-B, Huang Z-C, Lei M, Liao X-Y (2006) Effect of arsenic on chloroplast ultrastructure and calcium distribution in arsenic hyperaccumulator Pteris vittata L. Chemosphere 62:803–809

Lowry OH, Rosebrough NT, Farr AL, Randall RJ (1951) Protein measurement with the folin-phenol reagent. J Biol Chem 193:265–275

Ma B, Wan J, Shen Z (2007) H2O2 production and antioxidant responses in seeds and early seedlings of two different rice varieties exposed to aluminum. Plant Growth Regul (in press). DOI 10.1007/s10725-007-9183-1

Ma LQ, Komar KM, Tu C, Zhang W, Cai Y, Kennelly ED (2001) A fern that hyperaccumulate arsenic. Nature 409:579

Mahimairaja S, Bolan NS, Adriano DC, Robinson B (2005) Arsenic contamination and its risk management in complex environmental settings. Adv Agron 86:1–82

Mascher R, Lippmann B, Holzinger S, Bergmann H (2002) Arsenate toxicity: effects on oxidative stress response molecules and enzymes in red clover plants. Plant Sci 163:961–969

Matshullat J (2000) Arsenic in the geosphere—a review. Sci Total Environ 249:297–312

Meharg AA (2003) Variation in arsenic accumulation—hyperaccumulation in ferns and their allies. New Phytol 157:25–31

Meharg AA, Hartley-Whitaker J (2002) Arsenic uptake and metabolism in arsenic-resistant and nonresistant plant species. New Phytol 154:29–43

Montillet J-L, Chamnongpol S, Rustérucci C, Dat J, Van de Cotte B, Agnel J-P, Battesti C, Inzé D, Van Breusegem F, Triantaphylidès C (2005) Fatty acid hydroperoxides and H2O2 in the execution of hypersensitive cell death in tobacco leaves. Plant Physiol 138:1516–1526

Nakano Y, Asada K (1981) Hydrogen peroxide is scavenged by ascorbate-specific peroxidase in spinach chloroplasts. Plant Cell Physiol 22:867–880

Päivöke AEA, Simola LK (2001) Arsenate toxicity to Pisum sativum: Mineral nutrients, chlorophyll content, and phytase activity. Ecotoxicol Environ Safety (Environ Res Section B) 49:111–121

Pearce F (2003) Arsenic’s fatal legacy grows. New Sci 179:4–5

Rodríguez-Serrano M, Romero-Puertas MC, Zabalza A, Corpas FJ, Gómez M, del Río LA, Sandalio LM (2006) Cadmium effect on oxidative metabolism of pea (Pisum sativum L.) roots. Imaging of reactive oxygen species and nitric oxide accumulation in vivo. Plant Cell Environ 29:1532–1544

Shaibur MR, Kitajima N, Sugawara R, Kondo T, Huq SMI, Kawai S (2006) Physiological and mineralogical properties of arsenic-induced chlorosis in rice seedlings grown hydroponically. Soil Sci Plant Nutr 52:691–700

Sheppard SC (1992) Summary of phytotoxic levels of soil arsenic. Water Air Soil Pollut 64:539–550

Singh N, Ma LQ, Srivastava M, Rathinasabapathi B (2006) Metabolic adaptations to arsenic-induced oxidative stress in Pteris vittata L. and Pteris ensiformis L. Plant Sci 170:274–282

Srivastava M, Ma LQ, Singh N, Singh S (2005) Antioxidant responses of hyperaccumulator and sensitive fern species to arsenic. J Exp Bot 56:1335–1342

Stoeva N, Berova M, Zlatev Z (2005) Effect of arsenic on some physiological parameters in bean plants. Biol Plant 49:293–296

Stone JR, Yang S (2006) Hydrogen peroxide: a signaling messenger. Antioxidant Redox Signal 8:243–270

Tiwari BS, Belenghi B, Levine A (2002) Oxidative stress increased respiration and generation of reactive oxygen species, resulting in ATP depletion, opening of mitochondrial permeability transition, and programmed cell death. Plant Physiol 128:1271–1281

Vandenabeele S, Van Der Kelen K, Dat J, Gadjev I, Boonefaes T, Morsa S, Rottiers P, Slooten L, Van Montagu M, Zabeau M, Inzé D, Breusegem FV (2003) A comprehensive analysis of H2O2-induced gene expression in tobacco. Proc Natl Acad Sci USA 100:16113–16118

Van den Broeck K, Vendecasteele C, Geuns JMC (1998) Speciation by liquid chromatography-inductively coupled plasma-mass spectrometry of arsenic in mung bean seedlings used as a bio-indicator for the arsenic contamination. Anal Chim Acta 361:101–111

Velikova V, Yordanov I, Edreva A (2000) Oxidative stress and some antioxidant systems in acid rain-treated bean plants. Plant Sci 151:59–66

Vitória AP, Da Cunha M, Azevedo RA (2006) Ultrastructural changes of radish leaf exposed to cadmium. Environ Exp Bot 58:47–52