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Articles

Mycorrhizal inoculation enhances growth and nutrition of cotton plant

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Pages 2043-2056 | Received 29 Jan 2018, Accepted 23 Jan 2019, Published online: 20 Aug 2019

References

  • Arsenault, J. L., S. Poulcur, C. Messier, and R. Guay. 1995. WinRHlZO™ A root-measuring system with a unique overlap correction method. Horticulture Science 30:906.
  • Badda, N., K. Yadav, A. Aggarwal, and N. Kadian. 2015. Consortium effect of arbuscular mycorrhizal fungi and pseudomonas fluorescens with various levels of superphosphate on growth improvement of cotton (G. arboreum L.). Journal of Natural Fibers 12(1):12–25. doi:10.1080/15440478.2013.879085.
  • Cerligione, L. J., A. E. Liberta, and R. C. Anderson. 1988. Effects of soil moisture and soil sterilization on vesicular–arbuscular mycorrhizal colonization and growth of little bluestem (Schizachyrium scoparium). Canadian Journal of Botany 66(4):757–761. doi:10.1139/b88-112.
  • Chen, B. D., X. L. Li, H. Q. Tao, P. Christie, and M. H. Wong. 2003. The role of arbuscular mycorrhiza in zinc uptake by red clover growing in a calcareous soil spiked with various quantities of zinc. Chemosphere 50(6):839–846. doi:10.1016/S0045-6535(02)00228-X.
  • Damodaran, P. N., K. Udaiyan, and K. S. Roh. 2012. Mycorrhizal Dependency in Certain Indian Cotton Cultivars. Research in Plant Biology 2(4):55–66.
  • Eskandari, S., C. N. Guppy, O. G. G. Knox, D. Backhouse, and R. E. Haling. 2016. Improving mycorrhizal colonisation of cotton in sodic soils. Rhizosphere 2:48–50. doi:10.1016/j.rhisph.2016.08.003.
  • Eskandari, S., C. N. Guppy, O. G. G. Knox, R. J. Flavel, D. Backhouse, and R. E. Haling. 2017. Mycorrhizal contribution to phosphorus nutrition of cotton in low and highly sodic soils using dual isotope labelling (32 P and 33 P). Soil Biology and Biochemistry 105:37–44. doi:10.1016/j.soilbio.2016.11.004.
  • Farzaneh, M., H. Vierheilig, A. Lössl, and H. P. Kaul. 2011. Arbuscular mycorrhiza enhances nutrient uptake in chickpea. Plant, Soil and Environment 57(10):465–470. doi:10.17221/133/2011-PSE.
  • Gioannetti, M., and B. Mosse. 1980. An evaluation of techniques for measuring vesicular-arbuscular mycorrhiza in roots. New Phytologist 84:489–500. doi:10.1111/j.1469-8137.1980.tb04556.x.
  • Hazarika, D. K., K. K. Das, and L. N. Dubey. 1999. Effect of vesicular arbuscular mycorrhizal fungi inoculation on growth and nutrient uptake of black gram. Journal of Mycology and Plant Pathology 29(2):201–204.
  • Hetrick, B., G. Wilson, D. Kitt, and A. Schwab. 1988. Effects of soil microorganisms on mycorrhizal contribution to growth of big bluestem grass in non-sterile soil. Soil Biology and Biochemistry 20(4):501–507. doi:10.1016/0038-0717(88)90065-X.
  • Kaur, R., A. Singh, and J. S. Kang. 2014. Influence of different types mycorrhizal fungi on crop productivity. Current Agriculture Research Journal 2(1):51–54. doi:10.12944/CARJ.2.1.07.
  • Konieczny, A., and I. Kowalska. 2017. Effect of arbuscular mycorrhizal fungi on the content of zinc in lettuce grown at two phosphorus levels and an elevated zinc level in a nutrient solution. Journal of Elementology 22(2):761–772. doi:10.5601/jelem.2016.21.4.1335.
  • Korejo, A. A., Pir A. Naqi Shah, T. Ali Sial, S. Ali, A. H. Lahori, A. M. Narej, and Z. A. Channo. 2015. Growth yield and yield components of cotton as influenced by NPK ratios in combination of foliar application of zinc levels under Tandojam Conditions. Pure and Applied Biology 4(2):268. doi:10.19045/bspab.2015.42017.
  • Koske, R. E., and J. N. Gemma. 1989. A modified procedure for staining roots to detect VA-mycorrhizas. Mycological Research 92(4):486–488. doi:10.1016/S0953-7562(89)80195-9.
  • Kothari, S. K., H. Marschner, and V. Römheld. 1991. Contribution of the VA mycorrhizal hyphae in acquisition of phosphorus and zinc by maize grown in a calcareous soil. Plant and Soil 131(2):177–185. doi:10.1007/BF00009447.
  • Lehmann, A., S. D. Veresoglou, E. F. Leifheit, and M. C. Rillig. 2014. Arbuscular mycorrhizal influence on zinc nutrition in crop plants–A meta-analysis. Soil Biology and Biochemistry 69:123–131. doi:10.1016/j.soilbio.2013.11.001.
  • Xiao‐Lin, L. I.,. E. George, and H. Marschner. 1991. Phosphorus depletion and pH decrease at the root–soil and hyphae–soil interfaces of VA mycorrhizal white clover fertilized with ammonium. New Phytologist 119(3):397–404. doi:10.1111/j.1469-8137.1991.tb00039.x.
  • Martin, S. L., S. J. Mooney, M. J. Dickinson, and H. M. West. 2012. The effects of simultaneous root colonisation by three Glomus species on soil pore characteristics. Soil Biology and Biochemistry 49:167–173. doi:10.1016/j.soilbio.2012.02.036.
  • McGee, P. A., G. S. Pattinson, R. A. Heath, C. A. Newman, and S. J. Allen. 1997. Survival of propagules of arbuscular mycorrhizal fungi in soils in eastern Australia used to grow cotton. The New Phytologist 135(4):773–780. doi:10.1046/j.1469-8137.1997.00709.x.
  • Mousavi, S. R. 2011. Zinc in crop production and interaction with phosphorus. Australian Journal of Basic and Applied Sciences 5(9):1503–1509.
  • Murph, J., and J. P. Riley. 1962. A modified single solution method for determination of phosphate in natural waters. Analytica Chimica Acta 27:31–36. doi:10.1016/S0003-2670(00)88444-5.
  • Ortas, I. 2003. Effect of selected mycorrhizal inoculation on phosphorus sustainability in sterile and non-sterile soils in the Harran Plain in South Anatolia. Journal of Plant Nutrition 26(1):1–17. doi:10.1081/PLN-120016494.
  • Ortas, I. 2012. Do maize and pepper plants depend on mycorrhizae in terms of phosphorus and zinc uptake? Journal of Plant Nutrition 35(11):1639–1656.
  • Ortas, I. 2012. The effect of mycorrhizal fungal inoculation on plant yield, nutrient uptake and inoculation effectiveness under long-term field conditions. Field Crops Research 125:35–48.
  • Ortas, I. 2015. Comparative analyses of Turkey agricultural soils: Potential communities of indigenous and exotic mycorrhiza species' effect on maize (Zea mays L.) growth and nutrient uptakes. European Journal of Soil Biology 69:79–87.
  • Ortas, I., C. Akpinar, and A. Demirbas. 2016. Sour Orange (Citrus Aurantium L.) growth is strongly mycorrhizal dependent in terms of phosphorus (P) nutrition rather than zinc (Zn). Communications in Soil Science and Plant Analysis 47(22):2514–2527. doi:10.1080/00103624.2016.1254792.
  • Ortas, I., D. Ortakçi, Z. Kaya, A. Çinar, and N. Önelge. 2002. Mycorrhizal dependency of sour orange in relation to phosphorus and zinc nutrition. Journal of Plant Nutrition 25(6):1263–1279. doi:10.1081/PLN-120004387.
  • Pattinson, G. S., and P. A. McGee. 1997. High densities of arbuscular mycorrhizal fungi maintained during long fallows in soils used to grow cotton except when soil is wetted periodically. New Phytologist 136(4):571–580. doi:10.1046/j.1469-8137.1997.00783.x.
  • Plenchette, C., J. A. Fortin, and V. Furlan. 1983. Growth-responses of several plant-species to mycorrhizae in a soil of moderate P-fertility 1. Mycorrhizal dependency under field conditions. Plant and Soil 70(2):199–209. doi:10.1007/BF02374780.
  • Sadeghzadeh, B. 2013. A review of zinc nutrition and plant breeding. Journal of Soil Science and Plant Nutrition 13(4):905–927. doi:10.4067/S0718-95162013005000072.
  • Schüßler, A., and C. Walker. 2010. The Glomeromycota: A species list with new families. Arthur Schüßler & Christopher Walker, Gloucester, ed. A. S. C. Walker. Germany and UK: The Royal Botanic Garden Edinburgh, The Royal Botanic Garden Kew, Botanische Staatssammlung Munich, and Oregon State University. Available at http://www.amf-phylogeny.com.
  • Šmídová, K., S. Kim, and J. Hofman. 2017. Bioavailability of five hydrophobic organic compounds to earthworms from sterile and non-sterile artificial soils. Chemosphere 179:222–231. doi:10.1016/j.chemosphere.2017.03.117.
  • Smith, G. S., and R. W. Roncadori. 1986. Responses of 3 vesicular-arbuscular mycorrhizal fungi at 4 soil temperatures and their effects on cotton growth. New Phytologist 104(1):89–95. doi:10.1111/j.1469-8137.1986.tb00636.x.
  • Smith, S. E., I. Jakobsen, M. Grønlund, and F. A. Smith. 2011. Roles of arbuscular mycorrhizas in plant phosphorus nutrition: Interactions between pathways of phosphorus uptake in arbuscular mycorrhizal roots have important implications for understanding and manipulating plant phosphorus acquisition. Plant Physiology 156(3):1050–1057. doi:10.1104/pp.111.174581.
  • Soltangheisi, A., C. F. Ishak, H. Mohamed Musa, H. Zakikhani, and Z. A. Rahman. 2013. Phosphorus and zinc uptake and their interaction effect on dry matter and chlorophyll content of sweet corn (Zea mays var. saccharata). Journal of Agronomy 12(4):187–192. doi:10.3923/ja.2013.187.192.
  • SSS. 1996. Keys to Soil Taxonomy.Natural Resources Conservation Service. In Soil Survey Staff, Wahington, DC: USDA.
  • 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(2):133–144. doi:10.1007/s00374-008-0317-z.
  • Tawaraya, K. 2003. Arbuscular mycorrhizal dependency of different plant species and cultivars. Soil Science and Plant Nutrition 49(5):655–668. doi:10.1080/00380768.2003.10410323.
  • Thompson, J. P., N. P. Seymour, and T. G. Clewett. 2012. Stunted cotton (Gossypium hirsutum L.) fully recovers biomass and yield of seed cotton after delayed root inoculation with spores of an arbuscular mycorrhizal fungus (Glomus mosseae). Australasian Plant Pathology 41(4):431–437. doi:10.1007/s13313-012-0137-3.
  • Treseder, K. K. 2013. The extent of mycorrhizal colonization of roots and its influence on plant growth and phosphorus content. Plant and Soil 371(1–2):1–13. doi:10.1007/s11104-013-1681-5.
  • Van der Heijden, M. G. A., T. Boller, A. Wiemken, and I. R. Sanders. 1998. Different arbuscular mycorrhizal fungal species are potential determinants of plant community structure. Ecology 79(6):2082–2091. doi:10.1890/0012-9658(1998)079[2082:DAMFSA.2.0.CO;2]
  • Zhang, G.-Y., L.-P. Zhang, M.-F. Wei, Z. Liu, Q.-L. Fan, Q.-R. Shen, and G.-H. Xu. 2011. Effect of arbuscular mycorrhizal fungi, organic fertilizer and soil sterilization on maize growth. Acta Ecologica Sinica 31(4):192–196. doi:10.1016/j.chnaes.2011.04.005.

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