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Original Articles

The Influence of Cadmium Toxicity on Some Physiological Parameters as Affected by Iron in Rice (Oryza Sativa L.) Plant

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Pages 1202-1213 | Received 06 Sep 2011, Accepted 03 Jan 2012, Published online: 28 May 2014

REFERENCES

  • Aina, R., M. Labra, P. Fumagalli, C. Vannini, M. Marsoni, U. Cucchi, M. Bracale, S. Sgorbati, and S. Citterio. 2007. Thiol-peptide level and proteomic changes in response to cadmium toxicity in Oryza sativa L. roots. Environmental and Experimental Botany 59: 381–392.
  • Bates, L.S., R.P. Waldren, and I.D. Teare. 1973. Rapid determination of free proline of water stress studies. Plant and Soil 39: 205–207.
  • Bradford, M.M. 1976. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical Biochemistry 72: 248–254.
  • Cataldo, D.A., T.R. Garland, and R.E. Wildung. 1983. Cadmium uptake kinetics in intact soybean plants. Plant Physiology 73: 844–848.
  • Chen, L.M., C.C. Lin, and C.H. Kao. 2000. Copper toxicity in rice seedling: Changes in antioxidative enzyme activities, H2O2 level, and cell wall peroxidase activity in roots. Botanical Bulletin of Academia Sinica 41: 99–103.
  • Clijster, H., and F. Van Assche. 1985. Inhibition of photosynthesis by heavy metals. Photosynthesis Research 7: 31–40.
  • Cohen, C.K., T.C. Fox, D.F. Garevin, and L.V. Kochian. 1998. The role of iron deficiency stress responses in stimulating heavy-metal transport in plants. Plant Physiology 116: 1063–1072.
  • Evans, G.C., and A.P. Hughes. 1962. Plant growth and the aerial environment III on the computation of unit leaf rate. New Phytologist 61: 322–327.
  • Fang, C.H., W.J. Wu, C.C. Lin, and C.H. Kao. 2001. Cadmium toxicity of rice leaves is mediated through lipid peroxidation. Plant Growth Regulation 33: 205–213.
  • Fielding, J.L., and J.L. Hall. 1978. A biochemical and cytochemical study of peroxidase activity in roots of Pisum sativum Π. Distribution of enzymes in relation to root development. Journal of Experimental Botany 29: 983–991.
  • Guo, B., Y.C. Liang, Y.G. Zhu, and F.J. Zhao. 2007. Role of salicylic acid in alleviating oxidative damage in rice roots (Oryza sativa) subjected to cadmium stress. Environmental Pollution 147: 743–749.
  • Guoping, Z., F. Motohiro, and S. Hitoshi. 2002. Influence of cadmium on mineral concentrations and yield components in wheat genotypes differing in Cd tolerance at seedling stage. Field Crops Research 77: 93–98.
  • Heath, R.L., and L. Packer. 1968. Photoperoxidation in isolated chloroplast. I. Kinetics and stoichiometry of fatty acid peroxidation. Archives of Biochemistry and Biophysics 125: 189–198.
  • Hellubust, J.A., and J.S. Craigie. 1978. Handbook of Physiological and Biochemical Methods. Cambridge, UK: Cambridge University Press.
  • Hensel, G., G. Kunze, and I. Kunze. 1999. Expression of the tobacco gene CBP20 in response to developmental stage, wounding, salicylic acid and heavy metals. Plant Science 148: 165–174.
  • Hill, K.A., L.W. Lion, and B.A. Ahner. 2002. Reduced Cd accumulation in Zea mays: A protective role for phytosiderophores? Environmental Science and Technology 36: 5363–5368.
  • Hsu, Y.T., and C.H. Kao. 2003. Changes in protein and amino acid contents in two cultivars of rice seedlings with different apparent tolerance to cadmium. Plant Growth Regulation 40: 147–155.
  • Liu, J., K. Li, J. Xu, J. Liang, X. Lu, J. Yang, and Q. Zhu. 2003. Interaction of Cd and five mineral nutrients for uptake and accumulation in different rice cultivars and genotypes. Field Crops Research 83: 271–281.
  • MacRae, E.A., and I.B. Ferguson. 1985. Changes in catalase activity and hydrogen peroxide concentration in plants in response to low temperature. Physiologia Plantarum 65: 51–56.
  • Meda, A.R., E.B. Scheuermann, U.E. Prechsl, B. Erenoglu, G. Schaaf, H. Hayen, G. Weber, and N. Wiren. 2007. Iron acquisition by phytosiderophores contributes to cadmium tolerance. Plant Physiology 143: 1761–1773.
  • Pereira, G.J. G., S.M. G. Molina, P.J. Lea, and R.A. Azevedo. 2002. Activity of antioxidant enzymes in response to cadmium in Crotalaria juncea. Plant and Soil 239: 123–132.
  • Prasad, K.V. S. K., S.P. Paradha, and P. Sharmila. 1999. Concerted action of antioxidant enzymes and curtailed growth under zinc toxicity in Brassica juncea. Environmental and Experimental Botany 42: 1–10.
  • Rolland, F., B. Moore, and J. Sheen. 2002. Sugar sensing and signaling in plants. The Plant Cell 14: 185–205.
  • Sanita di Toppi, L., and R. Gabbrielli. 1999. Response to cadmium in higher plants. Environmental and Experimental Botany 41: 105–130.
  • Schutzendubel, A., and A. Polle. 2002. Plant responses to abiotic stresses: heavy metal-induced oxidative stress and protection by mycorrhization. Journal of Experimental Botany 53: 1351–1365.
  • Shah, K., R.G. Kumar, S. Verma, and R.S. Dubey. 2001. Effect of cadmium on lipid peroxidation, superoxide anion generation and activities of antioxidant enzymes in growing rice seedlings. Plant Science 161: 1135–1144.
  • Sharma, S.S., S. Kaul, A. Metwally, K.C. Goyal, I. Finkemeier, and K.J. Dietz. 2004. Cadmium toxicity to barley (Hordeum vulgare) as affected by varying Fe nutritional status. Plant Science 166: 1287–1295.
  • Sinha, S., and R. Saxena. 2006. Effect of iron on lipid peroxidation, and enzymatic and non-enzymatic antioxidants and bacoside-A content in medicinal plant Bacopa monnieri L. Chemosphere 62: 1340–1350.
  • Siripornadulsil, S., S. Traina, D.P. Verma, and R.T. Sayre. 2002. Molecular mechanisms of proline-mediated tolerance to toxic heavy metals in transgenic microalgae. The Plant Cell 14: 2837–2847.
  • Smeets, K., J. Ruytinx, B. Semane, F.V. Belleghem, T. Remans, S.V. Sanden, J. Vangronsveld, and A. Cuypers. 2007. Cadmium-induced transcriptional and enzymatic alterations related to oxidative stress. Environmental and Experimental Botany 63: 1–8.
  • Smith, G.C., and E.G. Brennan. 1983. Cadmium–zinc interaction in tomato plants. Phytopathology 73: 879–882.
  • Watson, D.J. 1952. The physiological basis of variation in yield. Advances in Agronomy 4: 101–145.
  • Zhang, J., and M.B. Kirkham. 1994. Drought-stress-induced changes in activities of superoxide dismutase, catalase and peroxidase in wheat species. Plant and Cell Physiology 35: 785–791.

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