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Research Article

Phosphorus fractions in Andisol and Ultisol inoculated with Bacillus thuringiensis and phosphorus uptake by wheat

ORCID Icon, ORCID Icon &
Pages 2728-2739 | Received 30 Dec 2019, Accepted 02 Jun 2020, Published online: 14 Jul 2020

References

  • Adesemoye, A. O., H. A. Torbert, and J. W. Kloepper. 2009. Plant growth-promoting rhizobacteria allow reduced application rates of chemical fertilizers. Microbial Ecology 58 (4):921–8. doi: 10.1007/s00248-009-9531-y.
  • Azizoglu, U. 2019. Bacillus thuringiensis as a biofertilizer and biostimulator: A mini-review of the little-known plant growth-promoting properties of Bt. Current Microbiology 76 (11):1379–85. doi: 10.1007/s00284-019-01705-9.
  • Borie, F., and H. Zunino. 1983. Organic matter-phosphorus association as a sink in P-fixation processes on allophonic soils of Chile. Soil Biology and Biochemistry 15 (5):599–603. doi: 10.1016/0038-0717(83)90056-1.
  • Cabeza, R. A., K. Myint, B. Steingrobe, C. Stritsis, J. Schulze, and N. Claassen. 2017. Phosphorus fractions depletion in the rhizosphere of young and adult maize and oilseed rape plants. Journal of Soil Science and Plant Nutrition 17 (3):824–38. doi: 10.4067/S0718-95162017000300020.
  • Chang, S. C., and M. L. Jackson. 1957. Fractionation of soil phosphorus. Soil Science 84:133–44.
  • Chen, Y. P., P. D. Rekha, A. B. Arun, F. T. Shen, W. A. Lai, and C. C. Young. 2006. Phosphate solubilizing bacteria from subtropical soil and their tricalcium phosphate solubilizing abilities. Applied Soil Ecology 34 (1):33–41. doi: 10.1016/j.apsoil.2005.12.002.
  • CIREN. 2002. Soils descriptions, materials and symbols. Agrological study IX region. Santiago, Chile: Centro de Información de Recursos Naturales (CIREN).
  • Delfim, J., M. Schoebitz, P. Leandro, J. Hirzel, and E. Zagal. 2018. Phosphorus availability in wheat, in volcanic soils inoculated with phosphate-solubilizing Bacillus thuringiensis. Sustainability 10 (2):144. doi: 10.3390/su10010144.
  • Delgado, M., A. Zúñiga-Feest, and F. Borie. 2015. Ecophysiological role of Embothrium coccineum, a Proteaceae species bearing cluster roots, at increasing phosphorus availability in its rhizosphere. Journal of Soil Science and Plant Nutrition 15 (2):307–20. doi: 10.4067/S0718-95162015005000028.
  • Dinesh, R., M. Anandaraj, A. Kumar, V. Srinivasan, Y. K. Bini, K. P. Subila, R. Aravind, and S. Hamza. 2013. Effects of plant growth-promoting rhizobacteria and NPK fertilizers on biochemical and microbial properties of soils under ginger (Zingiber officinale) cultivation. Agricultural Research 2 (4):346–53. doi: 10.1007/s40003-013-0080-8.
  • Frossard, E., L. M. Condron, A. Oberson, S. Sinaj, and J. C. Fardeau. 2000. Processes governing phosphorus availability in temperate soils. Journal of Environmental Quality 29 (1):15–23. doi: 10.2134/jeq2000.00472425002900010003x.
  • Gong, S., X. Wang, T. Zhang, Q. Li, and J. Zhou. 2010. Release of inorganic phosphorus from red soils induced by low molecular weight organic acids. Acta Pedologica Sinica 47:692–7.
  • Hassan, H. M., H. Hasbullah, and P. Marschner. 2013. Growth and rhizosphere P pools of legume-wheat rotations at low P supply. Biology and Fertility of Soils 49 (1):41–9. doi: 10.1007/s00374-012-0695-0.
  • Hedley, M. J., J. W. B. Stewart, and B. S. Chauhan. 1982. Changes in inorganic and organic soil phosphorus fractions induced by cultivation practices and by laboratory incubations. Soil Science Society of America Journal 46 (5):970–6. doi: 10.2136/sssaj1982.03615995004600050017x.
  • IBM Corp. 2015. Released. IBM SPSS Statistics for macOS, Version 23.0. Armonk, NY: IBM.
  • Jorquera, M. A., M. T. Hernández, Z. Rengel, P. Marschner, and M. L. Mora. 2008. Isolation of culturable phosphobacteria with both phytate-mineralization and phosphate-solubilization activity from the rhizosphere of plants grown in a volcanic soil. Biology and Fertility of Soils 44:10–25. doi: 10.1007/s00374-008-0288-0.
  • Khan, M. S., A. Zaidi, M. Ahemad, M. Oves, and P. A. Wani. 2010. Plant growth promotion by phosphate solubilizing fungi-current perspective. Archives of Agronomy and Soil Science 56 (1):73–98. doi: 10.1080/03650340902806469.
  • Leite, J. N. F., M. C. P. Cruz, M. E. F. Ferreira, I. Andriol, and L. B. Braos. 2016. Organic and inorganic fractions of phosphorus in the soil influenced by cover crops and nitrogen fertilization. Pesquisa Agropecuária Brasileira 51 (11):1880–9. doi: 10.1590/s0100-204x2016001100010.
  • Murphy, J., and J. P. Riley. 1962. A modified single solution method for the determination of phosphate in natural waters. Analytica Chimica Acta 27:31–6. doi: 10.1016/S0003-2670(00)88444-5.
  • Ogut, M., and F. Er. 2016. Mineral composition of field grown winter wheat inoculated with phosphorus solubilizing bacteria at different plant growth stages. Journal of Plant Nutrition 39 (4):479–90. doi: 10.1080/01904167.2015.1047518.
  • Patel, K. J., A. K. Singh, G. Naresh Kumar, and G. Archana. 2010. Organic-acid-producing, phytate-mineralizing rhizobacteria and their effect on growth of pigeon pea (Cajanus cajan). Applied Soil Ecology 44 (3):252–61. doi: 10.1016/j.apsoil.2010.01.002.
  • Ramesh, A., S. K. Sharma, N. N. Yadav, and O. P. Joshi. 2014. Phosphorus mobilization from native soil P-pool upon inoculation with phytate-mineralizing and phosphate-solubilizing Bacillus aryabhattai isolates for improved P-acquisition and growth of soybean and wheat crops in microcosm conditions. Agricultural Research 3 (2):118–27. doi: 10.1007/s40003-014-0105-y.
  • Richardson, A. E., and R. J. Simpson. 2011. Soil microorganisms mediating phosphorus availability update on microbial phosphorus. Plant Physiology 156 (3):989–96. doi: 10.1104/pp.111.175448.
  • Rodriguez, H., R. Fraga, T. Gonzalez, and Y. Bashan. 2006. Genetic of phosphate solubilization and its potencial applications for improving plant growth-promoting bacteria. Plant and Soil 287 (1–2):15–21. doi: 10.1007/s11104-006-9056-9.
  • Sadzawka, M. A. R., A. M. R. Carrasco, F. R. Demanet, P. H. Flores, Z. R. Grez, G. M. L. Mora, and A. Neaman. 2006. Recommended analysis methods for Chilean soils. Revisión 2006; INIA Serie Actas No. 34. Santiago, Chile: Imprenta Salesianos S.A.
  • Sadzawka, M. A. R., A. M. R. Carrasco, F. R. Demanet, P. H. Flores, Z. R. Grez, G. M. L. Mora, and A. Neaman. 2007. Plant tissue analysis methods. 2nd ed. INIA Serie Actas No. 40. Santiago, Chile: Salesianos Impresores S.A.
  • Sandoval, E. M., J. F. Dorner, O. S. Seguel, J. B. Cuevas, and D. S. Rivas. 2012. Physical soil analysis methods. Chillán, Chile: Universidad de Concepción, Facultad de Agronomía.
  • Schoebitz, M., C. Ceballos, and L. Ciamp. 2013. Effect of immobilized phosphate solubilizing bacteria on wheat growth and phosphate uptake. Journal of Soil Science and Plant Nutrition 13 (1):1–10. doi: 10.4067/S0718-95162013005000001.
  • Sepúlveda, C. 2017. Inoculation of industrial chicory (Chichorium intybus) with growth promoting rhizobacteria. Tesis Ingeniero Agrónomo. Universidad de Concepción, Facultad de Agronomía, Chillán, Chile. 21p.
  • Singh, H., and M. S. Reddy. 2011. Effect of inoculation with phosphate solubilizing fungus on growth and nutriente uptake of wheat and maize plants fertilized with rock phosphate in alkaline soils. European Journal of Soil Biology 47 (1):30–4. doi: 10.1016/j.ejsobi.2010.10.005.
  • Slack, M., and D. B. Wheldon. 1978. A simple and safe volumetric alternative to the method of Miles, Misra and Irwin for counting viable bacteria. Journal of Medical Microbiology 11 (4):541–5. doi: 10.1099/00222615-11-4-541.
  • Stewart, J. W. B., and H. Tiessen. 1987. Dynamics of soil organic phosphorus. Biogeochemistry 4 (1):41–60. doi: 10.1007/BF02187361.
  • Stolpe, N. B. 2006. Description of the main soils of the VIII region of Chile. Chillán, Chile: Universidad de Concepción, Facultad de Agronomía.
  • Tiessen, H., and J. O. Moir. 2008. Characterization of available P by sequential extraction. In Soil sampling and methods of analysis, ed. M. R. Carter and E. G. Gregorich, 296–306. Boca Raton, FL: Taylor & Francis Group.
  • Turner, B. L., N. Mahieu, and L. M. Condron. 2003. Quantification of myoinositol hexakisphosphate in alkaline soil extracts by solution 31P NMR spectroscopy and spectral deconvolution. Soil Science 168:469–78. doi: 10.1097/01.ss.0000080332.10341.ed.
  • Velásquez, G., M. Calabi-Floody, P. Poblete-Grant, C. Rumpel, R. Demanet, L. Condron, and M. L. Mora. 2016. Fertilizer effects on phosphorus fractions and organic matter in Andisols. Journal of Soil Science and Plant Nutrition 16 (2):294–304. doi: 10.4067/S0718-95162016005000024.
  • Vistoso, E., B. K. G. Theng, N. S. Bolan, R. L. Parfitt, and M. L. Mora. 2012. Competitive sorption of molybdate and phosphate in Andisols. Journal of Soil Science and Plant Nutrition 12 (1):59–72. doi: 10.4067/S0718-95162012000100006.
  • Walbridge, M. R. 1991. Phosphorus availability in acid organic soils of the lower North Carolina coastal plain. Ecology 72 (6):2083–100. doi: 10.2307/1941561.
  • Wang, T., M. Liu, and H. Li. 2014. Inoculation of phosphate-solubilizing bacteria Bacillus thuringiensis B1 increases available phosphorus and growth of peanut in acidic soil. Acta Agriculturae Scandinavica, Section B - Soil & Plant Science 64 (3):252–9. doi: 10.1080/09064710.2014.905624.
  • Wolf, D. C., and H. D. Skipper. 1994. Soil sterilization. In Methods of soil analysis. Part 2. Microbiological and biochemical properties, ed. R. W. Weaver, J. S. Angle, and P. S. Bottonley, 41–51. Madison, WI: SSSA Book Ser. 5. SSSA.
  • Zadoks, J. C., T. T. Chang, and C. F. Konzak. 1974. A decimal code for the growth stages of cereals. Weed Research 14 (6):415–21. doi: 10.1111/j.1365-3180.1974.tb01084.x.

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