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Articles

Mycorrhizal (Rhizophagus Intraradices) Symbiosis and Fe and Zn Availability in Calcareous Soil

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Pages 1357-1371 | Received 16 Dec 2014, Accepted 27 Dec 2015, Published online: 04 May 2016

References

  • Abadia, J., F. Morales, and A. Abadia. 1999. Photosystem II efficiency in low chlorophyll, iron-deficient leaves. Plant and Soil 215:183–92. doi:10.1023/A:1004451728237.
  • Abbott, L. K., and A. D. Robson. 1985. Formation of external hyphae in soil by four species of vesicular–arbuscular mycorrhizal fungi. New Phytologist 99:245–55. doi:10.1111/nph.1985.99.issue-2.
  • Abdou, F. M., and M. EL-Nennah. 1975. A tracer technique formeasuring the reaction of phosphate with calciumcarbonate. Paper presented at the First Conference on“Nuclear Science and Application”, Cairo, 22–26
  • Ahmad, H. R., A. Tariq, S. Hussain, M. Akraam, M. Sabir, S. Kashif, and M. Mohamed. 2012. Zinc-enriched farm yard manure improves grain yield and grain zinc concentration in rice grown on a saline-sodic soil. International Journal of Agriculture and Biology 14 (5):787–92.
  • Bremner, J. M., and M. A. Tabatabai. 1969. Use of ρ-nitrophenyl phosphate for assay of soil phosphatase activity. Soil Biology and Biochemistry 1:301–07. doi:10.1016/0038-0717(69)90012-1.
  • Bürkert, B., and A. D. Robson. 1994. 65Zn uptake in subterranean clover (Trifolium subterraneum L.) by three vesicular-arbuscular mycorrhizal fungi in a root-free sandy soil. Soil Biology and Biochemistry 26:1117–24. doi:10.1016/0038-0717(94)90133-3.
  • Caris, C., W. H. Hawkins, V. Römheld, and E. George. 1998. Studies of iron transport by arbuscular mycorrhizal hyphae from soil to peanut and sorghum plants. Mycorrhiza 8:35–39. doi:10.1007/s005720050208.
  • Chatterjee, J., B. Mandal, G. C. Hazra, and L. N. Mandal. 1992. Transformation of nativeand applied zinc in laterite soils under submergence. Journal of Indian Society of Soil Science 40:66–70.
  • Clark, R. B., and S. K. Zeto. 1996. Growth and root colonization of mycorrhizal maize grown on acid and alkaline soil. Soil Biology and Biochemistry 28:1505–11. doi:10.1016/S0038-0717(96)00164-2.
  • Dalpé, Y. 1993. Vesicular-arbuscularmycorrhiza. In Soil sampling and methods of analysis, Eds. M. R. Carter, 287. Boca Raton, FL: Lewis Publishers.
  • Dubey, K. K., and M. H. Fulekar. 2011. Mycorrhizosphere development and management: The role of nutrients, micro-organisms and bio-chemical activities. Agriculture and Biology Journal of North America 2 (2):315–24. doi:10.5251/abjna.2011.2.2.315.324.
  • Fomina, M., I. J. Alexander, J. V. Colpaert, and G. M. Gadd. 2005. Solubilization of toxic metal minerals and metal tolerance of mycorrhizal fungi. Soil Biology and Biochemistry 37:851–66. doi:10.1016/j.soilbio.2004.10.013.
  • Fomina, M., I. J. Alexander, S. Hillier, and G. M. Gadd. 2004. Zinc phosphate and pyromorphite solubilization by soil-plant symbiotic fungi. Geomicrobiology Journal 21:351–66. doi:10.1080/01490450490462066.
  • Frankenberger, J. W. T., and W. A. Dick. 1883. Relationship between enzyme activities and microbial growth and activity indices in soil. Soil Science Society of America Journal 47:945–51. doi:10.2136/sssaj1983.03615995004700050021x.
  • Habashy, N. R., and M. M. A. Abo-Zied. 2005. Impact of Cd-Pb polutted water on growth and elemental composition of onion plants growth on a calcareous soil inoculated with mycorrhiza. Egyptian Journal of Applied Science 20:586.
  • Hamel, C., A. Liu, R. I. Hamilton, B. L. Ma, and D. L. Smith. 2000. Acquisition of Cu, Zn, Mn and Fe by mycorrhizal maize (Zea mays L.) grew in soil at different P and micronutrient levels. Mycorrhiza 9:331–36. doi:10.1007/s005720050277.
  • Jakobsen, I., L. K. Abbott, and A. D. Robson. 1992. External hyphae of vesicular-arbuscular mycorrhizal fungi associated with Trifolium subterraneum L. 1. Spread of hyphae and phosphorus inflow into roots. New Phytologist 120:371–80. doi:10.1111/nph.1992.120.issue-3.
  • Jayachandran, K., A. P. Schwab, and B. A. D. Hetrick. 1992. Mineralization of organic phosphorus by vesicular-arbuscular mycorrhizal fungi. Soil Biology and Biochemistry 24:897–903. doi:10.1016/0038-0717(92)90012-M.
  • Jenkinson, D. S. 1988. Determination of microbial biomass carbon and nitrogen in soil. In Advances in nitrogen cycling in agricultural ecosystems, Ed. J. R. Wilson, 368–86. Wallingford, UK: CAB.
  • Johnson, C. E., and R. J. Petras. 1998. Distribution of zinc and lead fractions within a forest Spodosol. Soil Science Society of America Journal 62:782–89. doi:10.2136/sssaj1998.03615995006200030035x.
  • Joner, E. J., and A. Johansen. 2000. Phosphatase activity of external hyphae of two arbuscular mycorrhizal fungi. Mycological Research 104:81–86. doi:10.1017/S0953756299001240.
  • Kabata-Pendias, A., and A. B. Mukherjee. 2007. Trace elements from soil to human. Berlin/Heidelberg, Germany/New York: Springer.
  • Kaplan, M., and S. Orman. 1998. Effect of elemental sulfur and sulfur containing waste in a calcareous soil in turkey. Journal of Plant Nutrition 21 (8):1655–65. doi:10.1080/01904169809365511.
  • Koide, R. T., and Z. Kabir. 2000. Extraradical hyphae of the mycorrhizal fungus Glomus intraradices can hydrolyse organic phosphate. New Phytology 148:511–17. doi:10.1046/j.1469-8137.2000.00776.x.
  • Lambert, D. H., D. E. Baker, and H. Cole. 1979. The role of Mycorrhizae in the interactions of phosphorus with zinc, copper, and other elements1. Soil Science Society of America Journal 43:976–80. doi:10.2136/sssaj1979.03615995004300050033x.
  • Li, X. L., H. Marschner, and V. Romheld. 1991. Acquisition of phosphorus and copper by VA-mycorrhizal hyphae and root-to-shoot transport in white clover. Plant and Soil 136:49–57. doi:10.1007/BF02465219.
  • Linderman, R. G., and T. C. Paulitz. 1990. Mycorrhizal-rhizobacterial interactions. In Biological control of soil-borne plant pathogens, Eds. D. Hornby, R. J. Cook, Y. Henis, W. H. Ko, A. D. Rovira, B. Schippers, and P. R. Scott, 261–83. Wallingford, UK: CAB International.
  • Lindsay, W. L., and W. A. Norvell. 1978. Development of DTPA soil test for zinc, iron, manganese and copper. Soil Science Society of America Journal 42:421–28. doi:10.2136/sssaj1978.03615995004200030009x.
  • Malakouti, M. J., and M. Aghalotfolahi. 1999. Effects of Zinc in crop production and health enhancement. Tehran, Iran: Soil and water research institute.
  • Mandal, L. N., and B. Mandal. 1986. Zinc fractions in soils in relation to zinc nutrition of low land rice. Soil Science 142:141–48. doi:10.1097/00010694-198609000-00003.
  • Martino, E., S. Perotto, R. Parsons, and G. M. Gadd. 2003. Solubilization of insoluble zinc compounds by ericoid mycorrhizal fungi derived from heavy metal polluted soils. Soil Biology and Biochemistry 35:133–41. doi:10.1016/S0038-0717(02)00247-X.
  • Ness, R. L. L., and P. L. G. Vlek. 2000. Mechanism of calciumphosphate release from hydroxy-apatite bymycorrhizalhyphae. Soil Science Society of America Journal 64 (3):949–55. doi:10.2136/sssaj2000.643949x.
  • Olsen, S. R., C. V. Cole, F. S. Watenabe, and L. A. Dean. 1954. Estimation of available phosphorus in soils by extraction with sodium bicarbonate. Washington, DC: USDA Circ 939, US Govt Printing Office.
  • Pacovsky, R. S., and G. Fuller. 1988. Mineral and lipid composition of Glycine-Glomus-Bradyrhizobium symbioses. Physiologia Plantarum 72:733–46. doi:10.1111/j.1399-3054.1988.tb06373.x.
  • Pepper, I. L., C. P. Gerba, and J. W. Brendecke. 1995. Environmental microbiology: A laboratory manual, 51–56. New York: Academic Press.
  • Roemheld, V. 1991. The role of phytosiderophores in acquisition of iron and other micronutrients in graminaceous species: An ecological approach. Plant and Soil 130:127–34. doi:10.1007/BF00011867.
  • Saravanan, V. S., M. Madhaiyan, and M. Thangaraju. 2007. Solubilization of zinc compounds by the diazotrophic, plant growth promoting bacterium Gluconacetobacter diazotrophicus. Chemosphere 66:1794–98. doi:10.1016/j.chemosphere.2006.07.067.
  • Sharif, M., and A. M. Moawad. 2006. Arbuscular mycorrhizal incidence and infectivity of crops in north west frontier province of Pakistan. World Journal of Agricultural Sciences 2 (2):123–32.
  • Singh, B., S. K. A. Natesan, B. K. Singh, and K. Usha. 2005. Improving zinc efficiency of cereals under zinc deficiency. Current Science 88:36–44.
  • Smith, F. A. 2000. Measuring the influence of mycorrhizas. New Phytology 148:4–6. doi:10.1111/j.1469-8137.2000.00751_148_1.x.
  • Smith, S. E., and D. J. Read. 1997. Mycorrhizal symbiosis, 2nd ed., 605. London: Academic Press.
  • Subramanian, K. S., N. Balakrishnan, and N. Senthil. 2013. Mycorrhizal symbiosis to increase the grain micronutrient content in maize. Australian Journal of Crop Science 7 (7):900–10.
  • Subramanian, K. S., C. Bharathi, and A. Jegan. 2008. Response of maize to mycorrhizal colonization at varying levels of zinc and phosphorus. Biology and Fertility of Soils 45:133–44. doi:10.1007/s00374-008-0317-z.
  • Subramanian, K. S., V. Tenshia, K. Jayalakshmi, and V. Ramachandran. 2009. Biochemical changes and zinc fractions in arbuscular mycorrhizal fungus (Glomus intraradices) inoculated and uninoculated soils under differential zinc fertilization. Applied Soil Ecology 43:32–39. doi:10.1016/j.apsoil.2009.05.009.
  • Sylvia, D. M., L. C. Hammond, J. M. Bennet, J. H. Hass, and S. B. Linda. 1993. Field response of maize to a VAM fungus and water management. Agronomy Journal 85:193–98. doi:10.2134/agronj1993.00021962008500020006x.
  • Tarafdar, J. C., and H. Marschner. 1994. Phosphatase activity in the rhizosphere and hyphosphere of VA-mycorrhizal wheat supplied with inorganic and organic phosphorus. Soil Biology and Biochemistry 26:387–95. doi:10.1016/0038-0717(94)90288-7.
  • Tessier, A., P. G. C. Campbell, and M. Bisson. 1979. Sequential extraction procedure for the speciation of particulate tracemetals. Analytical Chemistry 51:844–51. doi:10.1021/ac50043a017.
  • Tisdale, S. L., W. L. Nelson, J. D. Beaton, and J. L. Havlin. 1993. Soil fertility and fertilizers, 5th ed. New York: Mcmillon Publishing Co.
  • Verma, N., J. C. Tarafadar, and K. K. Shrivastava. 2010. Periodic changes in Prosopis cineraria associated AM population at different soil depth and its relationship with organic carbon and soil moisture. African Journal of Microbiology 4:115–21.
  • Vogel-Mikus, K., and M. Regvar. 2006. Arbuscular mycorrhiza as a tolerance strategy in metal contaminated soils - prospects in phytoremediation. In New topics in environmental research, Ed. D. Rhodes, 37–56. Hauppauge, NY: Nova Science.
  • VonWiren, N., V. Roemheld, J. L. Morel, A. Guckert, and H. Marschner. 1993. Influence of microorganisms on iron acquisition in maize. Soil Biology and Biochemistry 25:371–76. doi:10.1016/0038-0717(93)90136-Y.
  • Walkley, A., and C. A. Black. 1934. An examination of the Deglgareff method for determining soil organic matter and proposed modification of chromic acid titration method. Soil Science 37:29–38. doi:10.1097/00010694-193401000-00003.
  • Wright, S. F., and A. Upadhyaya. 1998. A survey of soils for aggregate stability and glomalin, a glycoprotein produced by hyphae of arbuscular mycorrhizal fungi. Plant and Soil 198:97–107. doi:10.1023/A:1004347701584.
  • Zekri, S., S. A. Al-Rawahy, and A. Naifer. 2010. Socio-economic considerations of salinity: Descriptive statistics of the Batinah sampled farms. In Published in the monograph on management of salt-affected and water for sustainable agriculture, Eds. A. Mustaque, S. A. Al-Rawahi, and N. Hussain, 99–113. Oman: Sultan Qaboos University.

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