604
Views
28
CrossRef citations to date
0
Altmetric
Articles

Inoculation with Elite Strains of Phosphate-Solubilizing Bacteria Enhances the Effectiveness of Fertilization with Rock Phosphates

ORCID Icon, ORCID Icon, , , & ORCID Icon
Pages 22-30 | Received 02 Mar 2019, Accepted 19 Aug 2019, Published online: 29 Aug 2019

References

  • Antoun H. 2012. Beneficial microorganisms for the sustainable use of phosphates in agriculture. Procedia Eng 46:62–67.
  • Arfaoui A, Adam LR, Bezzahou A, Daayf F. 2018. Isolation and identification of cultivated bacteria associated with soybeans and their biocontrol activity against Phytophthora sojae. BioControl 63(4):607–617.
  • Arnon D, Hoagland D. 1940. Crop production in artificial solutions and in soil with special reference to factors affecting yields and absorption of inorganic nutrients. Soil Sci 50:463–484.
  • Bashan Y, Kamnev AA, de-Bashan LE. 2013. Tricalcium phosphate is inappropriate as a universal selection factor for isolating and testing phosphate-solubilizing bacteria that enhance plant growth: a proposal for an alternative procedure. Biol Fertil Soils 49(4):465–479.
  • Behera BC, Yadav H, Singh SK, Mishra RR, Sethi BK, Dutta SK, Thatoi HN. 2017. Phosphate solubilization and acid phosphatase activity of Serratia sp. isolated from mangrove soil of Mahanadi river delta, Odisha, India. J Genet Eng Biotechnol 15(1):169–178.
  • Bergersen FJ. 1961. Nitrate reductase in soybean root nodules. Biochim Biophys Acta 52:206–207.
  • Buragohain S, Sarma B, Nath DJ, Gogoi N, Meena RS, Lal R. 2018. Effect of 10 years of biofertiliser use on soil quality and rice yield on an Inceptisol in Assam, India. Soil Res. 56(1):49–58.
  • Castellani-Hinojosa A, Bedmar E. 2017. Methods for evaluating plant growth promoting rhizobacteria traits. In: Singh Harikesh B, Sarma Birinchi K, Keswani C, editors. Advances in PGPR Research.CABI, UK, Vol. 448.
  • Castellano-Hinojosa A, Correa-Galeote D, Palau J, Bedmar EJ. 2016. Isolation of N2-fixing rhizobacteria from Lolium perenne and evaluating their plant growth promoting traits. J Basic Microbiol 56(1):85–91.
  • Collavino MM, Sansberro P. A, Mroginski L. A, Aguilar OM. 2010. Comparison of in vitro solubilization activity of diverse phosphate-solubilizing bacteria native to acid soil and their ability to promote Phaseolus vulgaris growth. Biol Fertil Soils 46(7):727–738.
  • Cordell D, Rosemarin A, Schroder JJ, Smit AL. 2011. Towards global phosphorus security: a systems framework for phosphorus recovery and reuse options. Chemosphere 84(6):747–758.
  • Dhakal Y, Meena RS, Kumar S. 2016. Effect of INM on nodulation, yield, quality and available nutrient status in soil after harvest of greengram. Legum Res 39:590–594.
  • Feigl F, Anger V. 1966. Replacement of benzidine by copper ethylacetoacetate and tetra base as stop-test reagent for hydrogene cyanide and cyanogen. Analyst 91(1081):282–284.
  • Gordon SA, Weber RP. 1951. Colorimetric estimation of indoleacetic acid. Plant Physiol 26(1):192–195.
  • Jalali K, Nouairi I, Kallala N, M’Sehli W, Zribi K, Mhadhbi H. 2018. Germination, seedling growth, and antioxidant activity in four legume (Fabaceae) species under copper sulphate fungicide treatment. Pakistan J Bot. 50:1599–1606.
  • Jorquera MA, Gabler S, Inostroza NG, Acuña JJ, Campos MA, Menezes-Blackburn D, Greiner R. 2017. Screening and characterization of phytases from bacteria isolated from Chilean hydrothermal environments. Microb Ecol 75(2):387–399.
  • Kaleem Abbasi M, Manzoor M. 2018. Biosolubilization of phosphorus from rock phosphate and other P fertilizers in response to phosphate solubilizing bacteria and poultry manure in a silt loam calcareous soil. J Plant Nutr Soil Sci 181(3):345–356.
  • Khan MS, Zaidi A, Musarrat J. 2014. Phosphate Solubilizing Microorganisms: Principles and Applications of Microphos Technology. New York: Springer International Publishing.
  • Khan MS, Zaidi A, Wani PA. 2007. Role of phosphate-solubilizing microorganisms in sustainable agriculture – a review. Agron Sustain Dev. 27(1):29–43.
  • Kuhad RC, SinghSurender L, Singh A. 2011. Phosphate solubilizing microorganisms. In: Singh A, Parmar N, Kuhad Ramesh C., editors. Bioaugmentation, Biostimulation, Biocontrol, Soil Biology, Vol. 108, Berlin, Heidelberg: Springer, p65–84.
  • Kumar V, Singh P, Jorquera MA, Sangwan P, Kumar P, Verma AK, Agrawal S. 2013. Isolation of phytase-producing bacteria from Himalayan soils and their effect on growth and phosphorus uptake of Indian mustard (Brassica juncea). World J Microbiol Biotechnol 29(8):1361–1369.
  • Liu L, Li A, Chen J, Su Y, Li Y, Ma S. 2018. Isolation of a phytase-producing bacterial strain from agricultural soil and its characterization and application as an effective eco-friendly phosphate solubilizing bioinoculant. Commun Soil Sci Plant Anal 49(8):984–994.
  • Meena RS, Das A, Singh G, Lal R. 2018. Legumes for Soil Health and Sustainable Management. Singapore: Springer Nature.
  • Mhamdi R, Laguerre G, Aouani ME, Mars M, Amarger N. 2002. Different species and symbiotic genotypes of field rhizobia can nodulate Phaseolus vulgaris in Tunisian soils. FEMS Microbiol Ecol 41(1):77–84.
  • Mrabet M, Zribi K, Mhadhbi H, Djébali N, Mhamdi R, Aouani ME, Nakamura K. 2011. Salt tolerance of a Sinorhizobium meliloti strain isolated from dry lands: growth capacity and protein profile changes. Ann Microbiol 61(2):361–369.
  • Murphy J, Riley J. 1962. A modified single solution method for the determination of phosphate in natural waters. Anal Chim Acta 27:31–36.
  • Nautiyal CS. 1999. An efficient microbiological growth medium for screening phosphate solubilizing microorganisms. FEMS Microbiol Lett 170(1):265–270.
  • Oresnik IJ, Twelker S, Hynes MF. 1999. Cloning and characterization of a Rhizobium leguminosarum gene encoding a bacteriocin with similarities to RTX toxins. Appl Environ Microbiol. 65(7):2833–2840.
  • Oves M, Khan MS, Zaidi A. 2013. Chromium reducing and plant growth promoting novel strain Pseudomonas aeruginosa OSG41 enhance chickpea growth in chromium amended soils. Eur J Soil Biol 56:72–83.
  • Premono ME, Moawad AM, Vlek P. 1996. Effect of phosphate-solubilizing Pseudomonas putida on the growth of maize and its survival in the rhizosphere. Indones J Crop Sci 11:13–23.
  • Raghothama KG, Karthikeyan AS. 1999. Phosphate acquisition. Annu Rev Plant Physiol Plant Mol Biol 50:665–693.
  • Rijavec T, Lapanje A. 2016. Hydrogen cyanide in the rhizosphere: not suppressing plant pathogens, but rather regulating availability of phosphate. Front Microbiol 7:1–14.
  • Schwyn B, Neilands JB. 1987. Universal chemical assay for the detection and determination of siderophores. Anal Biochem 160(1):47–56.
  • Shameer S, Prasad TV. 2018. Plant growth promoting rhizobacteria for sustainable agricultural practices with special reference to biotic and abiotic stresses. Plant Growth Regul 84(3):603–615.
  • Simoes Nunes C, Kumar V. 2018. Enzymes in Human and Animal Nutrition: Principles and Perspectives. United Kingdom: Elsevier Inc.
  • Singh NK, Joshi DK, Gupta RK. 2013. Isolation of phytase producing bacteria and optimization of phytase production parameters. Jundishapur J Microbiol 6(5):1–6.
  • Singh P, Kumar V, Agrawal S. 2014. Evaluation of phytase producing bacteria for their plant growth promoting activities. Int J Microbiol 2014:1–7.
  • Tagore GS, Namdeo SL, Sharma SK, Kumar N. 2013. Effect of rhizobium and phosphate solubilizing bacterial inoculants on symbiotic traits, nodule leghemoglobin, and yield of chickpea genotypes. Int J Agron 2013:1–8.
  • Takos A, Lai D, Mikkelsen L, Abou Hachem M, Shelton D, Motawia MS, Olsen CE, Wang TL, Martin C, Rook F. 2010. Genetic screening identifies cyanogenesis-deficient mutants of Lotus japonicus and reveals enzymatic specificity in hydroxynitrile glucoside metabolism. Plant Cell 22(5):1605–1619.
  • Taurian T, Anzuay MS, Angelini JG, Tonelli ML, Ludueña L, Pena D, Ibáñez F, Fabra A. 2010. Phosphate-solubilizing peanut associated bacteria: Screening for plant growth-promoting activities. Plant Soil 329(1–2):421–431.
  • Trabelsi D, Cherni A, Ben ZA, Dhane SF, Mhamdi R. 2017. Fertilization of Phaseolus vulgaris with the Tunisian rock phosphate affects richness and structure of rhizosphere bacterial communities. Appl Soil Ecol 114:1–8.
  • Walpola BC, Yoon M. 2013. Isolation and characterization of phosphate solubilizing bacteria and their co-inoculation efficiency on tomato plant growth and phosphorous uptake. African J Microbiol Res 7:266–275.
  • Weisburg WG, Barns SM, Pelletier D. A, Lane DJ. 1991. 16S ribosomal DNA amplification for phylogenetic study. J Bacteriol 173(2):697–703.
  • Zasoski RJ, Burau RG. 1977. A rapid nitric/perchloric acid digestion method for multi‐element tissue analysis. Commun Soil Sci Plant Anal 8(5):425–436.
  • Zhao K, Penttinen P, Zhang X, Ao X, Liu M, Yu X, Chen Q. 2013. Maize rhizosphere in Sichuan, China, hosts plant growth promoting Burkholderia cepacia with phosphate solubilizing and antifungal abilities. Microbiol Res 169(1):76–82.

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.