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Original Articles

Effects of Nitric Oxide on Iron-Deficiency Stress Alleviation of Peanut

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Pages 2108-2127 | Received 06 Jan 2012, Accepted 17 Oct 2012, Published online: 28 Aug 2014

REFERENCES

  • Arnon, D.I. 1949. Copper enzymes in isolated chloroplasts: Polyphenoloxidase in Beta vulgaris. Plant Physiology 24: 1–15.
  • Ballesteros, E., J.P. Donaire, and A. Belver. 1996. Effects of salt stress on H+-ATPase and H+-PPase activities of tonoplast-enriched vesicles isolated from sunflower roots as affected by salt-stress, Physiologia Plantarum 97: 259–268.
  • Cakmak, I., and H. Marschner. 1992. Magnesium deficiency and high light intensity enhance activities of superoxide dismutase, ascorbate peroxidase, and glutathione reductase in bean leaves. Plant Physiology 98: 1222–1227.
  • Correa-Aragunde, N., M. Graziano, and L. Lamattina. 2004. Nitric oxide plays a central role in determining lateral root development in tomato. Planta 218: 900–905.
  • Danielle, P.R. O. M., T.R. Flávia, N.A. Marina, and R.M. Jose. 2010. Nitric oxide reduces the stress effects of aluminum on the process of germination and early root growth of rice. Journal of Plant Nutrition and Soil Science 173: 885–891.
  • Elstner, E.F., and A. Heupel. 1976. Inhibition of nitrite formation from hydroxylammonium-chloride: A simple assay for superoxide dismutase. Analytical Biochemistry 70: 616–620.
  • Gao, L., and Y.X. Shi. 2007. Genetic differences in resistance to iron deficiency chlorosis in peanut. Journal of Plant Nutrition 30: 37–52.
  • Gévaudant, F., G. Duby, E. Stedingk, R. Zhao, P. Morsomme, and M. Boutry. 2007. Expression of a constitutively activated plasma membrane H+-ATPase alters plant development and increases salt tolerance. Plant Physiology 144: 1763–1776.
  • González-Vallejo, E.B., F. Morales, L. Cistué, A. Abadía, and J. Abadía. 2000. Iron deficiency decreases the Fe(III)-chelate reducing activity of leaf protoplasts. Plant Physiology 122: 337–344.
  • Graziano, M., M.V. Beligni, and L. Lamattina. 2002. Nitric oxide improves internal iron availability in plants. Plant Physiology. 12: 1852–1859.
  • Graziano, M., and L. Lamattina. 2005. Nitric oxide and iron in plants: An emerging and converging story. Trends in Plant Science 10: 4–8.
  • Graziano, M., and L. Lamattina. 2007. Nitric oxide accumulation is required for molecular and physiological responses to iron deficiency in tomato roots. The Plant Journal 52: 949–960.
  • Guerinot, M.L., and Y. Yi. 1994. Iron: nutritious, noxious, and not readily available. Plant Physiology 104: 815–820.
  • Heath, R.L., and L. Packer. 1968. Photoperoxidation in isolated chloroplasts. I. Kinetics and stoichiometry of fatty acid peroxidation. Archives of Biochemistry and Biophysics 125: 189–198.
  • Hu, K.D., L.Y. Hu, Y.H. Li, F.Q. Zhang, and H. Zhang. 2007. Protective roles of nitric oxide on germination and antioxidant metabolism in wheat seeds under copper stress. Plant Growth Regulation 53: 173–183.
  • Jin, C.W., G.Y. You, Y.F. He, C.X. Tang, P. Wu, and S.J. Zheng. 2007. Iron deficiency-Induced secretion of phenolics facilitates the reutilization of root apoplastic iron in red clover. Plant Physiology 144: 278–285.
  • Jones, D.L., P.R. Darah, and L.V. Kochian. 1998. Critical evaluation of organic acid mediated iron dissolution in the rhizosphere and its potential role in root iron uptake. Plant and Soil 180: 57–64.
  • Kosegarten, H.U., B. Hoffmann, and K. Mengel. 1999. Apoplastic pH and Fe3+ reduction in intact sunflower leaves. Plant Physiology 121: 1069–1079.
  • Larbi, A., F. Morales, A.F. López-Millán, Y. Gogorcena, A. Abadía, P.R. Moog, and J. Abadía. 2001. Technical advance: reduction of Fe(III)-chelates by mesophyll leaf disks of sugar beet. Multi-component origin and effects of Fe deficiency. Plant and Cell Physiology 42: 94–105.
  • Lombardo, M.C., M. Graziano, J. Polacco, and L. Lamattina. 2006. Nitric oxide functions as a positive regulator of root hair development. Plant Signaling and Behavior 1: 28–33.
  • Marschner, H. 1995. Mineral Nutrition of Higher Plants. London: Academic Press.
  • Morales, F., R. Grasa, A. Abadía, and J. Abadía. 1998. Iron chlorosis paradox in fruit trees. Journal of Plant Nutrition 21: 815–825.
  • Mori, S. 1999. Iron acquisition by plants. Current Opinion in Plant Biology 2: 250–253.
  • Neumann, G., and V. Römheld. 2000. The release of root exudates as affected by the plant physiological status. In: The Rhizosphere: Biochemistry and Organic Substances at the Soil-Plant Interface eds., R. Pinton, Z. Varanini, and P. Nannipieri, pp. 21–22. New York: Marcel Dekker.
  • Nickel, R.S., and B.A. Cunningham. 1969. Improved peroxidase assay method using Leuco 2,3,6-trichloro indophenol and application to comparative measurements of peroxidase catalysis. Annals of Biochemistry 27: 292–299.
  • Ohinishi, T., R.S. Gall, and M.L. Mayer. 1975. An improved assay of inorganic phosphate in the presence of extralabile phosphate compounds: application to the ATPase assay in the presence of phosphocreatine. Annals of Biochemistry 69: 261–267.
  • Oserkowsky, J. 1933. Quantitative relation between chlorophyll and iron in green and chlorotic pear leaves. Plant Physiology 8: 449–468.
  • Ranieri, A., A. Castagna, B. Baldan, and G.F. Soldatini. 2001. Iron deficiency differently affects peroxidase isoforms in sunflower. The Journal of Experimental Botany 52: 25–35.
  • Rao, K.V. M., and T.V. S. Sresty. 2000. Antioxidative parameters in the seedlings of pigeon pea (Cajanus cajan L. Millspaugh) in response to Zn and Ni stresses. Plant Science 157: 113–128.
  • Ruan, H.H., W.B. Shen, and L.L. Xu. 2004. Nitric oxide modulates the activities of plasma membrane H+-ATPase and PPase in wheat seedling roots and promotes the salt tolerance against salt stress. Acta Botanica Sinica 46: 415–422.
  • Schmidt, W. 1999. Mechanisms and regulation of reduction-based iron uptake in plants. New Phytologist 141: 1–26.
  • Song, J., G.W. Shi, S. Xing, M. Chen, and B.S. Wang. 2009. Effects of nitric oxide and nitrogen on seedling emergence, ion accumulation, and seedling growth under salinity in the euhalophyte Suaeda salsa. Journal of Plant Nutrition and Soil Science 172: 544–549.
  • Spiller, S.C., L.S. Kaufman, W.F. Thompson, and W.R. Briggs. 1987. Specific mRNA and rRNA levels in greening pea leaves during recovery from iron stress. Plant Physiology 84: 409–414.
  • Stamler, J.S., D.J. Singel, and J. Loscalzo. 1992. Biochemistry of nitric oxide and its redox-activated forms. Science 258: 1898–1902.
  • Sun, B.T., Y. Jing, K.M. Chen, L.L. Song, F.J. Chen, and L.X. Zhang. 2007. Protective effect of nitric oxide on iron deficiency-induced oxidative stress in maize (Zea mays). Journal of Plant Physiology 164: 536–543.
  • Tewari, R.K., S.Y. Kim, E.J. Hahn, and K.Y. Paek. 2008. Involvement of nitric oxide-induced NADPH oxidase in adventitious root growth and antioxidant defense in Panax ginseng. Plant Biotechnology Reports 2: 113–122.
  • Wang P.G., T.B. Cai, and N. Taniguchi. 2005. Nitric Oxide Donors for Pharmaceutical and Biological Applications. Weinheim: Wiley-VCH.
  • Wissal, M.S., Y. Sabah, D. Silvia, D.O. Marta, D.N. Patricia, Z. Graziano, A. Chedly, and G. Mohamed. 2008. Root exudation and rhizosphere acidification by two lines of Medicago ciliaris in response to lime-induced iron deficiency. Plant and Soil 312: 151–162.
  • Wissal, M., J. Nahida, D.O. Marta, A. Chedly, Z. Graziano, and G. Mohamed. 2011. Responses of two lines of Medicago ciliaris to Fe deficiency under saline conditions. Plant Growth Regulation 64: 221–230.
  • Xu, J., W.Y. Wang, H.X. Yin, X.J. Liu, H. Sun, and Q. Mi. 2010. Exogenous nitric oxide improves antioxidative capacity and reduces auxin degradation in roots of Medicago truncatula seedlings under cadmium stress. Plant and Soil 326: 321–330.
  • Yu, B.J., H.M. Gong, M.W. Li, and Y.L. Liu. 1997. Comparison of dextran T70 and sucrose density gradients centrifugation for preparing membrane vesicles. Journal of Nanjing Agriculture University 20: 14–18.
  • Zhao, L.Q., F. Zhang, J.Q. Guo, Y.L. Yang, B.B. Li, and L.X. Zhang. 2004. Nitric oxide functions as a signal in salt resistance in the calluses from two ecotypes of reed. Plant Physiology 134: 849–857.
  • Zhang, X.W., M. Zhang, Q.H. Wang, X.K. Qiu, G.Q. Hu, and Y.J. Dong. 2011. Effect of exogenous nitric oxide on physiological characteristic of peanut under iron-deficient stress. Plant Nutrition and Fertilizer Science 17: 665–673.
  • Zou, Q. 2000. The Experiment Instruction of Plant Physiology. Beijing: The China Agriculture Press.

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