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Original Articles

Comparative Effect of Nitrogen Forms on Nitrogen Uptake and Cotton Growth Under Salinity Stress

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Pages 1530-1543 | Received 28 Sep 2012, Accepted 20 May 2013, Published online: 24 Jul 2015

REFERENCES

  • Andrews, M. 1986. The partitioning of nitrate assimilation between root and shoot of higher plants. Plant Cell and Environment 9: 511–519.
  • Aslam, M., R.C. Huffaker, and D.W. Rains. 1984. Early effects of salinity on nitrate assimilation in barley seedlings. Plant Physiology 76: 321–325.
  • Botella, M.A., A. Cerdá, and S.H. Lips. 1994. Kinetics of NO3− and NH4+uptake by wheat seedlings. Effect of salinity and nitrogen source. Journal of Plant Physiology 144: 53–57.
  • Brugnoli, E., and O. Bjōrkman. 1992. Growth of cotton under continuous salinity stress: Influence on allocation pattern, stomatal and non-stomatal components of photosynthesis and dissipation of excess light energy. Planta 187: 335–347.
  • Cerda, A., and Matinez V.. 1988. Nitrogen fertilization under saline conditions in tomato and cucumber plants. Journal of Horticultural Science 63: 451–458.
  • Chen, W.P., Z.N. Hou, L.S. Wu, Y.C. Liang, and C.Z. Wei. 2010. Effect of salinity and nitrogen on cotton growth in arid environment. Plant and Soil 326: 61–73.
  • Chinnusamy, V., A. Jagendorf, and J.K. Zhu. 2005. Understanding and improving salt tolerance in plants. Crop Science 45: 437–448.
  • Cramer, G.R., E. Epstein, and A. Läuchli. 1988. Kinetics of root elongation of maize in response to short-term exposure to NaCl and elevated calcium concentration. Journal of Experimental Botany 39: 1513–1522.
  • Dai, J. L., L. S. Duan, and H.Z. Dong. 2014. Improved nutrient uptake enhances cotton growth and salinity tolerance in saline media. Journal of Plant Nutrition 37: 1269–1286.
  • Debouba, M., H. Maāroufi-Dghimi, A. Suzuki, M.H. Ghorbel, and H. Gouia. 2007. Changes in growth and activity of enzymes involved in nitrate reduction and ammonium assimilation in tomato seedlings in responses to NaCl stress. Annals of Botany 99: 1143–1151.
  • Dong, H.Z., W.J. Li, A.E. Eneji, and D.M. Zhang. 2012. Nitrogen rate and plant density effects on yield and late-season leaf senescence of cotton raised on a saline field. Field Crops Research 126: 137–144.
  • Dong, H.Z., W.J. Li, W. Tang, and D.M. Zhang. 2009. Early plastic mulching increases stand establishment and lint yield of cotton in saline fields. Field Crops Research 111: 269–275.
  • Eichelmann, H., V. Oja, B. Rasulov, E. Padu, I. Bichele, H. Pettai, P. Mand, O. Kull, and A. Laisk. 2005. Adjustment of leaf photosynthesis to shade in natural canopy: Reallocation of nitrogen. Plant Cell and Environment 28: 389–401.
  • Elgharably, A., P. Marschner, and P. Rengasamy. 2010. Wheat growth in a saline sandy loam soil as affected by N form and application rate. Plant and Soil 328: 303–312.
  • Fang, Y.Y., O. Babourina, Z. Rengel, X.E. Yang, and P.M. Pu. 2007. Ammonium and nitrate uptake by the floating plant Landoltia punctata. Annals of Botany 99: 365–370.
  • Flores, P., M. Carvajal, A. Cerdá, and V. Martinez. 2001. Salinity and ammonium/nitrate interactions on tomato plant development, nutrition, and metabolites. Journal of Plant Nutrition 24: 1561–1573.
  • Forde, B., and H. Lorenzo. 2001. The nutritional control of root development. Plant and Soil 232: 51–68.
  • Garnica, M., F. Houdusse, J.C. Yvin, and J.M. Garcia-Mina. 2009. Nitrate supply induces changes in polyamine content and ethylene production in wheat plants grown with ammonium. Journal of Plant Physiology 166: 363–374.
  • Gerendás, J., Z.J. Zhu, R. Bendixen, R.G. Ratcliffe, and B. Sattelmacher. 1997. Physiological and biochemical processes related to ammonium toxicity in higher plants. Journal of Plant Nutrition and Soil Science 160: 239–251.
  • Grattan, S.R., and C.M. Grieve. 1994. Mineral nutrient acquisition and response by plants grown in saline environments. In: Handbook of Plant and Crop Stress, ed. M. Pessarakli, pp. 203–226. New York: Marcel Dekker.
  • Hawkins, B.J., H. Boukcim, and C. Plassard. 2008. A comparison of ammonium, nitrate and proton net fluxes along seedling roots of Douglas-fir and lodgepole pine grown and measured with different inorganic nitrogen sources. Plant Cell and Environment 31: 278–287.
  • He, Y.H., H. Fukushige, D.F. Hildebrand, and S.S. Gan. 2002. Evidence supporting a role of jasmonic acid in Arabidopsis leaf senescence. Plant Physiology 128: 876–884.
  • Hou, Z.N., P.F. Li, B.G. Li, J. Gong, and Y.N. Wang. 2007. Effects of fertigation scheme on N uptake and N use efficiency in cotton. Plant and Soil 290: 115–126.
  • Irshad, M., A.E. Eneji, and H. Yasuda. 2008. Comparative effect of nitrogen sources on maize under saline and non-saline conditions. Journal of Agronomy and Crop Science 194: 256–261.
  • Kafkafi, U., N. Valoras, and J. Letey. 1982. Chloride interaction with nitrate and phosphate nutrition in tomato (Lycopersicon esculentum L.). Journal of Plant Nutrition 5: 1369–1385.
  • Kant, S., P. Kant, H. Lips, and S. Barak. 2007. Partial substitution of NO3− by NH4+ fertilization increases ammonium assimilating enzyme activities and reduces the deleterious effects of salinity on the growth of barley. Journal of Plant Physiology 164: 303–311.
  • Kühtreiber, W.M., and L.F. Jaffe. 1990. Detection of extracellular calcium gradients with a calcium-specific vibrating electrode. Journal of Cell Biology 110: 1565–1573.
  • Lu, Y.L., Y.C. Xu, Q.R. Shen, and C.X. Dong. 2009. Effects of different nitrogen forms on the growth and cytokinin content in xylem sap of tomato (Lycopersicon esculentum Mill) seedlings. Plant and Soil 315: 67–77.
  • Luo, Z.,Kong, X.Q. , Dai, J.L. , and H. Z.Dong.2015. Soil plus foliar nitrogen application increases cotton growth and salinity tolerance. Journal of Plant Nutrition 38: 443–455.
  • Mahmood, T., and W.M. Kaiser. 2003. Growth and solute composition of the salt-tolerant kallar grass [Leptochloa fusca (L.) Kunth] as affected by nitrogen source. Plant and Soil 252: 359–366.
  • Meloni, D.A., M.A. Oliva, C.A. Martinez, and J. Cambraia. 2003. Photosynthesis and activity of superoxide dismutase, peroxidase and glutathione reductase in cotton under salt stress. Environmental and Experimental Botany 49: 69–76.
  • Munns, R., and M. Tester. 2008. Mechanisms of salinity tolerance. Annual Review of Plant Biology 59: 651–681.
  • Murphy, A.T., and O.A. M. Lewisf. 1987. Effects of nitrogen feeding source on the supply of nitrogen from root to shoot and the site of nitrogen assimilation in maize (Zea mays L. cv. R201). New Phytologist 107: 327–333.
  • Pessarakli, M., and T.C. Tucker. 1985. Ammonium (15N) metabolism in cotton under salt stress. Journal of Plant Nutrition 8(11): 1025–1045.
  • Rathert, G. 1983. Effects of high salinity stress on mineral and carbohydrate metabolism of two cotton varieties. Plant and Soil 73(2): 247–256.
  • Rodriguez-Uribe, L., S.M. Higbie, J.M. Stewart, T. Wilkins, W. Lindemann, C. Sengupta-Gopalan, and J.F. Zhang. 2011. Identification of salt responsive genes using comparative microarray analysis in upland cotton (Gossypium hirsutum L.). Plant Science 180: 461–469.
  • Sairam, R.K., and A. Tyagi. 2004. Physiology and molecular biology of salinity stress tolerance in plants. Current Science 86: 407–421.
  • Sattelmacher, B., J. Gerendas, K. Thoms, H. Brück, and N.H. Bagdady. 1993. Interaction between root growth and mineral nutrition. Environment and Experimental Botany 33: 63–73.
  • Schortemeyer, M., and B. Feil. 1996. Root morphology of maize under homogeneous or spatially separated supply of ammonium and nitrate at three concentration ratios. Journal of Plant Nutrition 19: 1089–1097.
  • Shalhevet, J., M.G. Huck, and B.P. Schroeder. 1995. Root and shoot growth responses to salinity in maize and soybean. Agronomy Journal 87: 512–516.
  • Siddiqi, M.Y., B. Malhotra, X.J. Min, and A.D. M. Glass. 2002. Effects of ammonium and inorganic carbon enrichment on growth and yield of a hydroponic tomato crop. Journal of Plant Nutrition and Soil Science 165: 191–197.
  • Slabu, C., C. Zōrb, D. Steffens, and S. Schubert. 2009. Is salt stress of faba bean (vicia faba) caused by Na+ or Cl− toxicity? Journal of Plant Nutrition and Soil Science 172: 644–651.
  • Sorgonà, A., and G. Cacco. 2002. Linking the physiological parameters of nitrate uptake with root morphology and topology in wheat (Triticum durum) and citrus (Citrus volkameriana) rootstock. Canadian Journal of Botany 80: 494–503.
  • Storey, R., and R.R. Walker. 1998. Citrus and salinity. Scientia Horticulturae 78: 39–81.
  • Sun, J., S.L. Chen, S.X. Dai, R.G. Wang, N.Y. Li, X. Shen, X.Y. Zhou, C.F. Lu, X.J. Zheng, Z.M. Hu, Z.K. Zhang, J. Song, and Y. Xu. 2009. NaCl-induced alternations of cellular and tissue ion fluxes in roots of salt-resistant and salt-sensitive poplar species. Plant Physiology 149: 1141–1153.
  • Tang, Q.Y., and M.G. Feng. 1997. Practical Statistics and DPS Data Processing System. Beijing: China Agriculture Press.
  • Xu, Y., T. Sun, and L.P. Yin. 2006. Application of non-invasive microsensing system to simultaneously measure both H+ and O2 fluxes around the pollen tube. Journal of Integrative Plant Biology 48: 823–831.
  • Zheng, C.F., D. Jiang, F.L. Liu, T.B. Dai, Q. Jing, and W.X. Cao. 2009. Effects of salt and waterlogging stresses and their combination on leaf photosynthesis, chloroplast ATP synthesis, and antioxidant capacity in wheat. Plant Science 176: 575–582.

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