African Journal of
Agricultural Research

  • Abbreviation: Afr. J. Agric. Res.
  • Language: English
  • ISSN: 1991-637X
  • DOI: 10.5897/AJAR
  • Start Year: 2006
  • Published Articles: 6941

Full Length Research Paper

The rhizosphere effect of some wheat cultivars on inorganic phosphorus fractions in a phosphorus-deficient calcareous soil

Razieh Khalili-Rad
  • Razieh Khalili-Rad
  • Soil Science Department, Faculty of Agricultural and Environmental Sciences, University of Tehran, Karaj, Iran.
  • Google Scholar
Hossein Mirseyed Hosseini
  • Hossein Mirseyed Hosseini
  • Soil Science Department, Faculty of Agricultural and Environmental Sciences, University of Tehran, Karaj, Iran.
  • Google Scholar


  •  Received: 24 July 2015
  •  Accepted: 10 September 2015
  •  Published: 24 September 2015

References

Abekoe MK (1996). Phosphorus fractions and rock phosphate transformations in soil from different landscape positions in northern Canada. A thesis submitted to the college of graduate studies and research. Department of Soil Science, University of Saskatchewan. Canada.
 
Bagayoko M, Alvey S, Neuman G, Buerkert A (2000). Root induced increase in soil pH and nutrient availability to field-grown cereals and legumes on acid sandy soils of Sudano-Sahelian West Africa. Plant Soil. 225:117-127.
Crossref
 
Barančíková G, Liptaj T, Prónayová N (2007). Phosphorus fractions in arable and mountain soils and their humic acids. Soil Water Res. 4:141-148.
 
Bohm W (1979). Methods of studying root system. Ecological studies, Springer – verlag, Berlin. 33:188.
Crossref
 
Brezonik PL, Fang AF, Hatch LK, Pilgrim K (2000). Phosphorus speciation in soil-water-sediment ecosystems: Implications for phosphorus reactivity and bioavailability. A symposium in honor of James J. Morgan, Washington, DC. 40(2):493-495.
 
Caldecott MA (2009). The forms and fate of phosphorus under various fertilization and tillage practices. A thesis presented to the faculty of graduate studies of the University of Guelph. Canada.
 
Cappy JJ, Brown DA (1980). A method for obtaining soil-free soil-solution grown plant root systems. Soil Sci. Soc. Am. J. 44:1321-1323.
Crossref
 
Corti GAA, Cuniglio R, Sanjurjo MF, Cocco S (2005). Characteristics of rhizosphere soil from natural and agricultural environments. In: Biogeochemistry of trace elements in the rhizosphere, eds. Huang M, and Gobran, GR. New York: Elsevier. pp. 57-128.
Crossref
 
Gahoonia TS, Nielsen NE (1991). A method to study rhizosphere processes in thin soil layers of different proximity to roots. Plant Soil.135:143-146.
Crossref
 
Gahoonia TS, Nielsen NE, Lyshede OB (1999). Phosphorus (P) acquisition of cereal cultivars in the field at three levels of P fertilization. Plant Soil. 211:269-281.
Crossref
 
Hanafi MM, Ng CHL (1996). Dissolution of phosphate rock in the rhizosphere of upland rice soils. Commun. Soil Sci. Plant Anal. 27:1459-1477.
Crossref
 
Hesse PR (1971). A Text Book of Soil Chemical Analysis. John Murray, London.
 
Hinsinger P (2001). Bioavailability of soil inorganic P in the rhizosphere as affected by root-induced chemical changes: a review. Plant Soil. 237:173-195.
Crossref
 
Hylander LD (2002). Improvements of rhizoboxes used for studies of soil-root interactions. Commun. Soil Sci. Plant Anal. 33(1&2):155-161.
Crossref
 
Jackson ML (1958). Soil chemical analysis. Englewood Cliffs, NJ, USA: Prentice Hall.
 
Jaillard B, Schneider A, Mollier A, Pellerin S (2000). Modelling the mineral uptake by plants based on the bio-physical-chemical functioning of the rhizosphere. In: Fonctionnement des Peuplements Végétaux Sous Contraintes Environnementales, eds. Maillard P and Bonhomme R. pp. 253-287. Paris, France: INRA.
 
Jiang B, Gu Y (1989). A suggested fractionation scheme of inorganic phosphorus in calcareous soils. Fertil. Res. 20:159-165.
Crossref
 
Jiang H, Yang J, Zhang J, Hou Y (2010). Screening of tolerant maize genotypes in the low phosphorus field soil. 19th world congress of soil science, Soil solutions for a changing world. Brisbane, Australia.
 
Jianguo H, Shuman LM (1991). Phosphorus status and utilization in the rhizosphere of rice. Soil Sci. 152:360-364.
Crossref
 
Kuchenbuch R, Jungk A (1982). A method for determining concentration profiles at the soil–root interface by thin slicing rhizosphere soil. Plant Soil. 68:391-394.
Crossref
 
Kuo S (1996). Phosphorus. In: D.L. Sparks (ed.) Methods of Soil Analysis. Part 3 chemical methods. SSSA, Madison, WI.
 
Lambers H, Shane MW, Cramer MD, Pearse SJ, Veneklaas EJ (2006). Root structure and functioning for efficient acquisition of phosphorus: matching morphological and physiological traits. Ann. Bot. 98:693-713.
Crossref
 
Lindsay WL, Vlek PLG, Chien SH (1989). Phosphate minerals. In: Minerals in Soil Environment, 2nd. Edn. eds, Dixon JB and Weed SB, pp. 1089-1130. Soil science society of America, Madison: WI.
 
Ma B, Zhou ZY, Zhang CP, Zhang G, Hu YJ (2009). Inorganic phosphorus fractions in the rhizosphere of xerophytic shrubs in the Alxa Desert. J. Arid Environ. 73:55-61.
Crossref
 
Marschner H (1995). Mineral Nutrition of Higher Plants. 2nd edn., Academic Press, London, P. 889.
 
McGrath SP, Shen ZG, Zhao FJ (1997). Heavy metals uptake and chemical changes in the rhizosphere of Thlaspi caerulescens and Thlaspi ochroleucum grown in contaminated soils. Plant Soil. 188:153-159.
Crossref
 
Morgan MA (1997). The behavior of soil and fertilizer phosphorus. In: Phosphorus loss from soil to water. USA: Cab International NY. pp. 137-150.
 
Mostashari M, Muazardalan M, Karimian N, Mirseyed Hosseini H, Rezai H (2008). Phosphorus fractions of selected calcareous soils of Qazvin province and their relationships with soil characteristics. American-Eurasian J. Agric. Environ. Sci. 3(4):547-553.
 
Najafi N, Towfighi H (2006). Effects of rhizosphere of rice plant on the inorganic phosphorus fractions in the paddy soils of north of Iran: 1-Native soil phosphorus fractions. Iran. J. Agric. Sci. (In Farsi) 37:919-933.
 
Negassa W, Leinweber P (2009). How does the Hedley sequential P fractionation reflect impacts of land use and management on soil phosphorus—a review. J. Plant Nutr. Soil Sci. 172:305-325.
Crossref
 
Neumann G, Rِmheld V (1999). Root excretion of carboxylic acids and protons in phosphorus-deficient plants. Plant Soil. 211:121-130.
Crossref
 
Newman EI (1966). A method of estimating the total length of root in a sample. J. Appl. Ecol. 3:139-145.
Crossref
 
Nisar A (1985). Phosphorus requirement of wheat crops in different cropping systems. Fertil. News. 30(7):38-42.
 
Parfitt RL (1989). Phosphate reactions with natural allophone, ferrihydrite and goethite. J. Soil Sci. 40:359-369.
Crossref
 
Qiao SMY (2012). Distribution of inorganic and organic phosphorus fractions in two phosphorus-deficient soils as affected by crop species and nitrogen applications. Comm. Soil Sci. Plant Anal. 43(4):631-644.
Crossref
 
Raghothama KG (1999). Phosphate acquisition. Annul. Rev. Plant Physiol. Plant Mol. Biol. 50:665-693.
Crossref
 
Rengel Z (1993). Mechanistic simulation models of nutrient uptake: a review. Plant Soil.152:161-173.
Crossref
 
Richardson AE, Hocking PJ, Simpson RJ, George TS (2009). Plant mechanisms to optimise access to soil phosphorus. Crop and Pasture Sci. 60(2):124-143.
Crossref
 
Riley D, Barber SA (1969). Bicarbonate accumulation and pH changes at the soybean (Glycine max (L.) Merr) root-soil interface. Soil Sci. Soc. Am. J. 33:905-908.
Crossref
 
Safari Sinegani AA, Rashidi T (2011). Changes in phosphorus fractions in the rhizosphere of some crop species under glasshouse conditions. J. Plant Nutr. Soil Sci. 174:899-907.
Crossref
 
Shen J, Li R, Zhang F, Fan J, Tang C, Rengel Z (2004). Crop yield, soil fertility and phosphorus fractions in response to long-term fertilization under the rice monoculture system on a calcareous soil. Field Crops Res. 86:225-238.
Crossref
 
Shen J, Yuan L, Zhang J, Li H, Bai Z, Chen X, Zhang W, Zhang F (2011). Phosphorus dynamics: From soil to plant. Plant Physiol. 156:997-1005.
Crossref
 
Silva Gonzaga MI, Santos JAG, Ma LQ (2006). Arsenic chemistry in the rhizosphere of Pteris vittataL. and Nephrolepis exaltata L. Environ. Pollut. 143:254-260.
Crossref
 
Sparks DL (1996). Methods of soil analysis, Part 3, Chemical methods. Madison: WI. SSSA.
 
Sylvia DM, Hartel PG, Fuhrmann JJ, Zuberer DA (2005). Principles and applications of soil microbiology. Pearson Education Inc, NJ.
 
Vance CP, Uhde-Stone C, Allan DL (2003). Phosphorus acquisition and use: critical adaptations by plants for securing a nonrenewable resource. New Phytol. 157:423-447.
Crossref
 
Wang Z, Shen J, Zhang F (2006). Cluster-root formation, carboxylate exudation and proton release of Lupinus pilosusMurr as affected by medium pH and P deficiency. Plant Soil. 287:247-256.
Crossref
 
Wenzel WW, Wieshammer G, Fitz WJ, Puschenreiter M (2001). Novel rhizobox design to assess rhizosphere characteristics at high spatial resolution. Plant Soil. 237:37-45.
Crossref
 
Westerman RL (1990). Soil Testing and Plant Analysis. 3rd. edition. American Society of Agronomy and Soil Science Society of America, Madison, Wisconsin.
 
Youssef RA, Chino M (1988). Development of a new rhizobox system to study the nutrient status in the rhizosphere. J. Soil Sci. Plant Nutr. 34:461-465.
Crossref
 
Zhang F, Kang S, Zhang J, Zhang R, Li F (2004). Nitrogen fertilization on uptake of soil inorganic phosphorus fractions in the wheat root zone. Soil Sci. Soc. Am. J. 68:1890-1895.
Crossref
 
Zhang F, She J, Zhang J, Zuo Y, Li L, Chen X (2010). Rhizosphere processes and management for improving nutrient use efficiency and crop productivity: implications for China. Adv. Agron. 107:1-32.
 
Zhao Q, Zeng DH, Lee DK, He XY, Fan ZP, Jin YH (2007). Effects of Pinus sylvestris var. mongolica afforestation on soil phosphorus status of Keerqin Sandy Lands in China. J. Arid Environ. 69:569-582.
Crossref
 
Zoysa AKN, Loganathan P, Hedley MJ (1999). Phosphorus utilization efficiency and depletion of phosphate fractions in the rhizosphere of three tea (Camellia sinesis L.) clones. Nutri. Cycl. Agroecosyst. 53:189-201.
Crossref