107
Views
6
CrossRef citations to date
0
Altmetric
Original Articles

Exogenous Nitric Oxide Effects on Physiological Characteristics of a Peanut Cultivar Growing on Calcareous Soil

, , &
Pages 1011-1024 | Received 13 Oct 2012, Accepted 10 Apr 2013, Published online: 01 Apr 2014

References

  • Abat, J. K., and R. Deswal. 2013. Nitric oxide modulates the expression of proteins and promotes epiphyllous bud differentiation in Kalanchoe pinnata. Journal of Plant Growth Regulation 32 (1): 92–101.
  • Ali, R., and M. N. Khan. 1988. Modified butyrometric method for rapid determination of fat in seeds. Journal of the American Oil Chemists Society 65:1951–1952.
  • Arnon, D. I. 1949. Copper enzymes in isolated chloroplasts: Phenol oxidase in Beta vulgaris. Plant Physiology 24:1–15.
  • Beligni, M. V., and L. Lamattina. 2002. Nitric oxide interferes with plant photo-oxidative stress by detoxifying reactive oxygen species. Plant Cell and Environment 25:737–748.
  • Bradford, M. M. 1976. A rapid and sensitive method for the quantification of microgram quantities of protein utilizing the principle of protein-dye binding. Annual Review of Biochemistry 72:248–254.
  • 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.
  • Chen, W. W., J. L. Yang, C. Qin, C. W. Jin, J. H. Mo, T. Ye, and S. J. Zheng. 2010. Nitric oxide acts downstream of auxin to trigger root ferric–chelate reductase activity in response to iron deficiency in Arabidopsis. Plant Physiology 154:810–819.
  • Chris, E. C. 1999. Nitric oxide and iron proteins. Biochimica et Biophysica Acta 1411:290–309.
  • Curie, C., and J. F. Briat. 2003. Iron transport and signaling in plants. Annual Review of Plant Biology 54:183–206.
  • Eide, D., M. Broderius, J. Fett, and M. L. Guerinot. 1996. A novel iron-regulated metal transporter from plants identified by functional expression in yeast. Proceedings of the National Academy of Sciences USA 93:5624–5628.
  • Farooq, M., S. M. A. Basra, A. Wahid, and H. Rehman. 2009. Exogenously applied nitric oxide enhances the drought tolerance in fine grain aromatic rice (Oryza sativa L.). Journal of Agronomy and Crop Science 195:254–261.
  • Farooq, M., A. Wahid, D. J. Lee, S. A. Cheema, and T. Aziz. 2010. Comparative time course action of the foliar applied glycinebetaine, salicylic acid, nitrous oxide, brassinosteroids, and spermine in improving drought resistance of rice. Agronomy and Crop Science 196:336–345.
  • Gerhard, S., and M. Richard. 1983. Iron–sulfur centers and activities of the photosynthetic electron transport chain in iron-deficient cultures of the blue-green alga Aphanocapsa. Plant Physiology 73:724–728.
  • 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.
  • Hakan, Ç., and A. V. Katkat. 2007. Some parameters in relation to iron nutrition status of peach orchards. Journal of Biology and Environmental Sciences 1 (3): 111–115.
  • 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.
  • Imsande, J. 1998. Iron, sulfur, and chlorophyll deficiencies: A need for an integrative approach in plant physiology. Plant Physiology 103:139–144.
  • Jin, C. W., X. Y. He, P. Wu, and S. J. Zheng. 2006. Mechanisms of microbially enhanced Fe acquisition in red clover (Trifolium pratense L.). Plant Cell and Environment 29:888–897.
  • 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.
  • Jin, C. W., W. W. Chen, Z. B. Meng, and S. J. Zheng. 2008. Iron-deficiency-induced increase of root branching contributes to the enhanced root ferric chelate reductase activity. Journal of Integrative Plant Biology 50:1557–1562.
  • Jin, C. W., S. T. Du, I. H. Shamsi, B. F. Luo, and X. Y. Lin. 2011. NO synthase-generated NO acts downstream of auxin in regulating Fe-deficiency-induced root branching that enhances Fe-deficiency tolerance in tomato plants. Journal of Experimental Botany 62:1–10.
  • Leonor, R., J. Z. Eduardo, and L. Lorenzo. 2010. Nitric oxide and frataxin: Two players contributing to maintain cellular iron homeostasis. Annals of Botany 105:801–810.
  • Leonor, R., S. Marcela, M. Irene, Z. Eduardo, and L. Lorenzo. 2011. Nitric oxide, nitrosyl iron complexes, ferritin, and frataxin: A well-equipped team to preserve plant iron homeostasis. Plant Science 181:582–592.
  • Lindsay, W. L., and W. A. Norvell. 1978. Development of a DTPA soil test for Zn, Fe, Mn, and Cd. Soil Science Society of America Proceedings 42:421–428.
  • Lindsay, W. L., and A. P. Schwab. 1982. The chemistry of iron in soils and its availability to plants. Journal of Plant Nutrition 5:821–840.
  • Lingenfelser, J. E., W. T. SchapaughJr., J. P. Schmidt, and J. J. Higgins. 2005. Comparison of genotype and cultural practices to control iron deficiency chlorosis in soybean. Communications in Soil Science and Plant Analysis 36:1047–1062.
  • Lu, R. K. 2001. Soil agricultural chemical analysis method M. Beijing: China Agriculture Press.
  • Mengel, K., and G. Geurtzen. 1986. Iron chlorosis on calcareous soil: Alkaline nutritional condition as the cause for the chlorosis. Journal of Plant Nutrition 9:161–173.
  • Mohamed, A. A., and A. A. Aly. 2004. Iron deficiency stimulated some enzymes activity, lipid peroxidation, and free radicals production in Borage officinalis induced in vitro. International Journal of Agriculture and Biology 6:179–184.
  • Molassiotis, A. N., G. C. Diamantidis, I. N. Therios, V. Tsirakoglou, and K. N. Dimassi. 2005. Oxidative stress, antioxidant activity, and Fe(III)-chelate reductase activity of five Prunus rootstocks explants in response to Fe deficiency. Plant Growth Regulation 46:69–78.
  • Monge, E., C. Pérez, A. Pequerul, P. Madero, and J. Val. 1993. Effect of iron chlorosis on mineral nutrition and lipid composition of thylakoid biomembrane in Prunus persica (L.) Bastch. Plant and Soil 154:97–102.
  • Nagarathnamma, R. 2006. Evaluation of groundnut genotypes for lime-induced chlorosis tolerance. PhD dissertation.
  • Murgia, I., M. Delledonne, and C. Soave. 2002. Nitric oxide mediates iron-induced ferritin accumulation in Arabidopsis. Plant Journal 30:521–528.
  • Neill, S., R. Barros, J. Bright, R. Desikan, J. Hancock, J. Harrison, P. Morris, D. Ribeiro, and I. Wilson. 2008. Nitric oxide, stomatal closure, and abiotic stress. Journal of Experimental Botany 59:165–176.
  • Neumann, G., and V. Römheld. 2007. The release of root exudates as affected by the plant physiological status. In The rhizosphere: Biochemistry and organic substances at the soil–plant Interface, 21–22. Boca Raton, Fl.: CRC Press.
  • 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. Annual Review of Biochemistry 27:292–299.
  • 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.
  • Robinson, N. J., C. M. Procter, E. L. Connolly, and M. L. Guerinot. 1999. A ferric-chelate reductase for iron uptake from soils. Nature 397:694–697.
  • Römheld, V., and H. Marschner. 1981. Iron-deficiency stress induced morphological and physiological changes in root tips of sunflower. Plant Physiology 53:354–360.
  • Römheld, V., and H. Marschner. 1986. Mobilization of iron in the rhizosphere of different plant species. In Advances in plant nutrition, ed. B. Tinker and A. Lauchli, vol. 2, pp. 155–204. New York: Praeger.
  • Römheld, V. 1987. Different strategies for iron acquisition in higher plants. Physiologia Plantarum 70:231–234.
  • 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.
  • Santi, S., and W. Schmidt. 2008. Laser-microdissection-assisted analysis of the functional fate of iron-deficiency-induced root hairs in cucumber. Journal of Experimental Botany 59:697–704.
  • Schmidt, W. 1999. Mechanisms and regulation of reduction-based iron uptake in plants. New Phytologist 141:1–26.
  • 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.
  • 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.
  • Takker, P. N., and N. P. Kaur. 1984. HCl method for Fe2+ estimation to resolve iron chlorosis in plants. Journal of Plant Nutrition 7:81–90.
  • Vert, G., N. Grotz, F. Dedaldechamp, F. Gaymard, M. L. Guerinot, J. F. Briat, and C. Curie. 2002. IRT1, an Arabidopsis transporter essential for iron uptake from the soil and for plant growth. Plant Cell 14:1223–1233.
  • Xu, L. Z., F. S. Zhang, and C. J. Li. 1998. 2,2’-Bipyridyl-colorimetric method for measurement of Fe(III) reductase activity in roots of dicotyls. Plant Nutrition and Fertilizer Science 4:63–66.
  • Xu, Y. F., J. W. Jin, T. Y. Liu, H. Zhou, T. M. Hu, Q. Z. Wang, and M. X. Long. 2011. Regulation function of nitric oxide (NO) in leaves of plant under environmental stress. African Journal of Biotechnology 10:15673–15677.
  • 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.
  • Zhang, L. G., S. Zhou, Y. Xuan, M. Sun, and L. Q. Zhao. 2009. Protective effect of nitric oxide against oxidative damage in Arabidopsis leaves under ultraviolet-B irradiation. Journal of Plant Biology 52:135–140.
  • Zhang, X. W., Y. J. Dong, X. K. Qiu, G. Q. Hu, Y. H. Wang, and Q. H. Wang. 2012. Exogenous nitric oxide alleviates iron-deficiency chlorosis in peanut growing on calcareous soil. Plant Soil and Environment 58:111–120.
  • 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 characteristics of peanut under iron-deficiency stress. Plant Nutrition and Fertilizer Science 17:665–673.
  • Zhang, Z. Q. 1985. Assay of soluble sugar of plant material. In Plant physiological experiment manual, 134–138. Shanghai: Shanghai Scientific and Technical Publishers
  • 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.
  • Zhao, S. J., A. G. Shi, and X. C. Dong. 2002. The experimental guide for plant physiology. Beijing: China Agriculture Science and Technology Press.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.