211
Views
6
CrossRef citations to date
0
Altmetric
Original Articles

The role of organic acids on the uptake and relationship of phosphorus and zinc in corn (Zea mays L.) by application of 32P and 65Zn radioisotopes

, , &
Pages 846-855 | Received 08 Feb 2016, Accepted 28 Nov 2017, Published online: 20 Feb 2018

References

  • Bissani, C. A. 2000. Effects of root-derived organic acids on metal speciation in soil solution and bioavailability. Ph.D desertation of soil science. University of Wisconsin-Madison.
  • Black, C. A., D. D. Evans, J. I. White, L. E. Ensminger, and F. E. Clark. 1965. Methods of soil analysis: Part 2. Madison, WI: ASA.
  • Bouain, N., M. Kisko, A. Rouached, M. Dauzat, B. Lacombe, N. Belgaroui, T. Ghnaya, J. C. Davidian, P. Berthomieu, C. Abdelly, and H. Rouached. 2014. Phosphate/zinc interaction in two lettuce varieties reveals contrasting effects on biomass, photosynthesis, and dynamic of Pi transport. Biomed Research International 2014:9. doi.org/10.1155/2014/548254.
  • Chapman, H. D., and P. F. Pratt. 1961. Methods of analysis for soils, plants, and water. Riverside, CA: University of California.
  • Dessureault- Rompre, J., B. Nowack, R. Schulin, M. L. Tercier- Weber, and J. Luster. 2008. Metal solubility and speciation in the rhizosphere of lupinus albus cluster roots. Environmental Science & Technology 42:7146–7151. doi.org/10.1021/es800167g.
  • Dwivedi, R. S., N. S. Randhawa, and R. L. Bansal. 1975. Phosphorus–Zinc interaction. I. Sites of immobilization of zinc in maize at a high level of phosphorus. Plant and Soil 43:639–648.
  • Elen Siane, B. A. 2012. Citrate root exudation under Zn and P deficiency. Journal of Tropical Soils 3:219–225.
  • Elsokkary, H. A., H. A. El-Attar, and M. A. Amer. 1981. Influence of phosphorus and zinc fertilizers on the uptake of P and Zn by corn plants grown in highly calcareous soils. Plant and Soil 59:227–236. doi.org/10.1007/BF02184196.
  • Evans, Jr. A. 1991. Influence of low molecular weight organic acids on zinc distribution within micronutrients pools and zinc uptake by wheat. Journal of Plant Nutrition 14:1307–1318. doi.org/10.1080/01904169109364287.
  • Feng, K., H. M. Lu, H. J. Sheng, X. L. Wang, and J. Mao. 2004. Effect of organic ligands on biological availability of inorganic phosphorus in soils. Pedosphere 14:85–92.
  • Follett, R. H., L. S. Murpy, and R. L. Donahue. 1981. Fertilizers and soil amendments. New Jersey: Prentice Hall, Inc.
  • Fujii, K., M. Aoki, and K. Kitayama. 2012. Biodegradation of low molecular weight organic acids in rhizosphere from a tropical montane rain forest. Soil Biology & Biochemistry 47:142–148. doi.org/10.1016/j.soilbio.2011.12.018.
  • Gahoonia, T. S., F. Asmar, H. Giese, G. Gissel-Nielsen, and N. E. Nielsen. 2000. Root organic acids and phosphorus uptake of two barely cultivars in laboratory and field experiments. European Journal of Agronomy 12:281–289. doi.org/10.1016/S1161-0301(00)00052-6.
  • Gang, X., S. Hongbo, X. Rongfu, Y. Nie, Y. Pei, Z. Sun, and M. S. A. Blackwell. 2012. The role of root-released organic acids and anions in phosphorus transformations in a sandy loam soil from Yantai, China. African Journal of Microbiology Research 6 (3):674–679.
  • Gee, G. W., and J. W. Bauder. 1986. Particle-size analysis. In Methods of soil analysis, ed. A. Klute, 383–409. Madison, WI: ASA, SSSA.
  • Gianquinto, G., A. Abu-Rayyan, L. Di Tola, D. Piccotino, and B. Pezzarossa. 2000. Interaction effects of phosphorus and zinc on photosynthesis, growth and yield of dwarf grown in two environments. Plant and Soil 220:219–228. doi.org/10.1023/A:1004705008101.
  • Hoffland, E., C. Wei, and M.Wissuwa. 2006. Organic anion exudation by lowland rice (Oryza sativa L.) at zinc and phosphorus deficiency. Plant and Soil 283:155–162. doi.org/10.1007/s11104-005-3937-1.
  • Hussain, S., M. A. Maqsood, and Rahmatullah. 2011. Zinc release characteristics from calcareous soils using Diethylenetriaminepentaacetic acid and other organic acids. Communications in Soil Science and Plant Analysis 42:1870–1881. doi.org/10.1080/00103624.2011.587571.
  • Jones, D. L. 1998. Organic acids in the rhizosphere. A critical review. Plant and Soil 205:25–44. doi.org/10.1023/A:1004356007312.
  • Khademi, Z. 2006. Organic acids behaviour in calcareous soils. Dissertation, University of Wales.
  • Khademi, Z., D. L. Jones, M. J. Malakouti, and F. Asadi. 2010. Organic acid differ in enhancing phosphorus uptake by Triticum aestivum L. effects of rhizosphere concentration and counterion. Plant and Soil 334:151–159. doi.org/10.1007/s11104-009-0215-7.
  • Khademi, Z., D. L. Jones, M. J. Malakouti, F. Asadi, and M. Ardebili. 2009. Organic acid mediated nutrient extraction efficiency in three calcareous soils. Australian Journal of Soil Research 47:213–220. doi.org/10.1071/SR07179.
  • Khan, A. A., and G. K. Zende. 1977. The site for Zn-P interaction in plants. Plant and Soil 43:259–262. doi.org/10.1007/BF00693132.
  • Loneragan, J. F., T. S. Grove, A. D. Robson, and K. Snowball. 1979. Phosphorus toxicity as a factor in Zn–P interaction in plants. Soil Science Society of America Journal 43:966–972. doi.org/10.2136/sssaj1979.03615995004300050031x.
  • Long, M. H., K.J McGlathery, C. Zieman, and P. J. Berg. 2008. The role of organic acid exudates in liberating phosphorus from seagrass-vegetated carbonate sediments. Journal of Limnology 53 (6):2616–2626.
  • Mai, W. X., X. H. Tian, W. J. Gale, X. Yang, and X. Lu. 2011. Tolerance to Zn deficiency and P-Zn interaction in wheat seedling cultured in chelator- buffered solutions. Journal of Arid Land 3 (3):206–213. doi.org/10.3724/SP.J.1227.2011.00206.
  • Malakouti, M. J., P. Keshavarz, and N. A. Karimian. 2008. A comprehensive approach towards identification of nutrients deficiencies & optimal fertilization for sustainable agriculture. Tehran, Iran: Tarbiat Modares University Press. (in Farsi).
  • Maqsood, M. A., S. Hussain, T. Aziz, and M. Ashraf. 2011. Wheat-exuded organic acids influence zinc release from calcareous soils. Pedosphere 21 (5):657–665. doi.org/10.1016/S1002-0160(11)60168-9.
  • Mawardi, A. H., A. Serry, S. G. Awad, and R. M. Kamal. 1975. Wheat and corn production on calcareous soils as affected by P and Zn application. Egyptian Journal of Soil Science Spec Issue 361–365.
  • Mehravaran, H., A. Mozafar, and E. Frossard. 2000. Uptake and partitioning of 32P and 65Zn by White Clover as affected by elewen isolates of mycorrhizal fungi. Journal of Plant Nutrition 23 (10): 1385–1395. doi.org/10.1080/01904160009382109.
  • Modaihsh, A. S., A. E. Abdallah, and A. A. El-Shall. 1996. Assessment of P-Zn interaction in corn on calcareous soil. Journal of King Saud University 2:299–314.
  • Mousavi shelmani, M. A., B. Naserian kheabani, H. Ahari Mostafavi, M. Heidarieh, and A. Majd Abadi. 2009. Nuclear Agriculture, 518. Tehran, Iran: Nuclear Sciences and Technology Research Institute Press, (in Farsi)
  • Olsen, S. R., and L. E. Sommers. 1982. Phosphorus. In Methods of soil analysis, Part 2, eds. A. L. Page, R. H. Miller, and D. R. Keeney, 403–429. Madison, WI: ASA, SSSA.
  • Orabi, A. A., A. Abdallah, H. Mashhadi, and A. H. Barakat. 1981. Zinc-phosphorus relationship in the nutrition of corn plants (Zea mays L.) grown on some calcareous soils. Plant and Soil 59:51–59https://doi.org/10.1007/BF02183591.
  • Orabi, A. A., and I. M. Abdel-Aziz. 1982. Zinc-phosphorus relationship and effect on some biocomponents of corn (Zea mays L.) grown on a calcareous soil. Plant and Soil 69:437–444. doi.org/10.1007/BF02372464.
  • Orabi, A. A., and M. Abuleenane. 1980. Zinc-phosphorus relationship in rice nutrition. Agricultural Research Review 58 (5):153–163.
  • Orabi, A. A., T. EL-Kobbia, and A. I. Fathi. 1985. Zinc-phosphorus relationship in the nutrition of corn plants (Zea mays L.) as affected by the total carbonate content of the soil. Plant and Soil 83:317–321. doi.org/10.1007/BF02184302.
  • Orabi, A. A., A. S. Ismail, and H. Mashadi. 1982. Zinc-phosphorus relationship in the nutrition of tomato plants as affected both by the soil and by the rate of applied zinc. Plant and Soil 69:67–72. doi.org/10.1007/BF02185704.
  • Palomo, L., N. Classen, and D. L. Jones. 2006. Differential mobilization of P in the maize rhizosphere by citric acid and potassium citrate. Soil Biology & Biochemistry 38:683–692. doi.org/10.1016/j.soilbio.2005.06.019.
  • Radersma, S., and P. F. Grierson. 2004. Phosphorus mobilization in agroforestry: Organic anions, phosphatise activity and phosphorus fractions in the rhizosphere. Plant and Soil 259:209–219. doi.org/10.1023/B:PLSO.0000020970.40167.40.
  • Rhoades, J. D. 1996. Salinity: Electrical conductivity and total dissolved solids. In Methods of soil analysis, Part 2, eds. A. L. Page, R. H. Miller, and D. R. Keeney, 417–435. Madison, WI: ASA, SSSA.
  • Rose, M. T., T. J. Rose, J. Pariaska-Tanaka, Widodo, and M. Wissuwa. 2011. Revisiting the role of root organic acids in the bicarbonate tolerance of zinc-efficient rice genotypes. Functional Plant Biology 38 (6):493–504.
  • Soltangheisi, A., Z. Abdul- Rahman, C. F. Ishak, H. M. Musa, and H. Zakikhani. 2014. Interaction effects of phosphorus and zinc on their uptake and 32P absorption and translocation in Sweet Corn (Zea mays var. Saccharata) grown in a tropical soil. Asian Journal of Plant Science 13 (3):129–135. doi.org/10.3923/ajps.2014.129.135.
  • Soltangheisi, A., C. F. Ishak, H. M. Musa, H. Zakikhani, and Z. A. Rahman. 2013. Phosphorus and zinc uptake and their intraction on dry matter and chlorophyll content of sweet corn (Zea mays var. Saccharata). Journal of Agronomy 12 (4):187–192. doi.org/10.3923/ja.2013.187.192.
  • Srivastava, P. C., M. Bhatt, S. P. Pachauri, and A. K. Tyagi. 2013. Effects of zinc application methods on apparent utilization efficiency of zinc and phosphorus fertilizers under basmati rice-wheat rotation. Archives of Agronomy and Soil Science 60 (1):33–48. doi.org/10.1080/03650340.2013.770145.
  • Strom, L., A. G. Owen, D. L. Godbold, and D. L. Jones. 2001. Organic acid behavior in a calcareous soil: sorption and biodegradation rates. Soil Biology & Biochemistry 33:2125–2133. doi.org/10.1016/S0038-0717(01)00146-8.
  • Strom, L., A. G. Owen, D. L. Godbold, and D. L. Jones. 2002. Organic acids mediated P mobilization in the rhizosphere and uptake by maize roots. Soil Biology & Biochemistry 34:703–710. doi.org/10.1016/S0038-0717(01)00235-8.
  • Strom, L., A. G. Owen, D. L. Godbold, and D. L. Jones. 2005. Organic acid behaviour in a calcareous soil implications for rhizosphere nutrient cycling. Soil Biology & Biochemistry 37:2046–2054. doi.org/10.1016/j.soilbio.2005.03.009.
  • Thomas, G. W. 1996. Soil pH and soil acidity. In Methods of soil Analysis: Part 2, ed. J. M. Bigham, 457–490. Madison. WI: SSSA.
  • Verma, T. S., and R. S. Minhas. 1987. Zinc and phosphorus interaction in a wheat-maize cropping system. Fertilizer Research 13:77–86. doi.org/10.1007/BF01049804.
  • Wei-Hong, X., L. Huai, M. Qi-Fu, and X. Zhi-ting. 2007. Root exudates, Rhizosphere Zn Fractions, and Zn accumulation of ryegrass at different soil Zn levels. Pedosphere 17 (3):389–396. doi.org/10.1016/S1002-0160(07)60047-2.
  • Widodo, M. R. Broadley, T. Rose, M. Frei, J. Pariasca-Tanaka, T. Yoshihashi, M. Thomson, J. P. Hammond, A. Aprile, T. J. Close, A. M. Ismail, and M. Wissuwa. 2010. Response to zinc deficiency of two rice lines with contrasting tolerance is determined by root growth maintenance and organic acid exudation rates, and not by zinc- transporter activity. New Phytologist 186:400–414. doi.org/10.1111/j.1469-8137.2009.03177.x.
  • Zhang, F. S., J. Ma, and Y. P. Cao. 1997. Phosphorus deficiency enhances root exudation of low molecular weight organic acids and utilization of sparingly soluble inorganic phosphates by radish (Raghanus satiuvs L.) and rape (Brassica napus L.) plants. Plant and Soil 196:261–264. doi.org/10.1023/A:1004214410785.
  • Zhu, Y. G., S. E. Smith, and F. A. Smith. 2001. Zinc (Zn)-Phosphorus (P) in two cultivars of spring wheat (Triticum aestivum L.) differing in P uptake efficiency. Annals of Botany 88:941–945. doi.org/10.1006/anbo.2001.1522.

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.