122
Views
4
CrossRef citations to date
0
Altmetric
Articles

Biosolubilization of Low-Grade Rock Phosphate by Native Microbial Consortia from Phosphate Mines: Effect of Sampling Sources and Culture Media

ORCID Icon, , , , & ORCID Icon
Pages 859-866 | Received 13 Nov 2019, Accepted 01 Jul 2020, Published online: 27 Jul 2020

References

  • Avdalović J, Beškoski V, Gojgić-Cvijović G, Mattinen M, Stojanović M, Zildžović S, Vrvić MM. 2015. Microbial solubilization of phosphorus from phosphate rock by iron-oxidizing Acidithiobacillus sp B2. Miner Eng 72:17–22.
  • Borodina EV, Tirranen LS. 2003. High temperature effect on microflora of radish root-inhabited zone and nutrient solutions for radish growth. Adv Space Res 31(1):235–240.
  • Chakdar H, Dastager SG, Khire JM, Rane D, Dharne MS. 2018. Characterization of mineral phosphate solubilizing and plant growth promoting bacteria from termite soil of arid region. 3 Biotech 8(11):463.
  • Das SK, Guha AK. 2007. Biosorption of chromium by Termitomyces clypeatus. Colloids Surf B Biointerfaces 60(1):46–54.
  • Delvasto P, Ballester A, Muñoz JA, González F, Blázquez ML, Igual JM, Valverde A, García-Balboa C. 2009. Mobilization of phosphorus from iron ore by the bacterium Burkholderia caribensis FeGL03. Miner Eng 22(1):1–9.
  • Delvasto P, Valverde A, Ballester A, Igual JM, Muñoz JA, González F, Blázquez ML, García C. 2006. Characterization of brushite as a re-crystallization product formed during bacterial solubilization of hydroxyapatite in batch cultures. Soil Biol Biochem 38(9):2645–2654.
  • Doshi H, Ray A, Kothari IL. 2007. Biosorption of cadmium by live and dead Spirulina: IR spectroscopic, kinetics, and SEM studies. Curr Microbiol 54(3):213–218.
  • Duponnois R, Colombet A, Hien V, Thioulouse J. 2005. The mycorrhizal fungus Glomus intraradices and rock phosphate amendment influence plant growth and microbial activity in the rhizosphere of Acacia holosericea. Soil Biol Biochem 37(8):1460–1468.
  • Eaton AD, Clesceri LS, Rice EW, Greenberg AE. 2005. Standard Methods for the Examination of Water and Wastewater. 21st ed. Washington, DC: American Public Health Association, p146–157.
  • Fayiga AO, Nwoke OC. 2016. Phosphate rock: origin, importance, environmental impacts, and future roles. Environ Rev 24(4):403–415.
  • Gulati A, Rahi P, Vyas P. 2008. Characterization of phosphate-solubilizing fluorescent Pseudomonas from the rhizosphere of sea buckthorn growing in the cold deserts of Himalayas. Curr Microbiol 56(1):73–79.
  • Hong C, Si YX, Xing Y, Li Y. 2015. Illumina MiSeq sequencing investigation on the contrasting soil bacterial community structures in different iron mining areas. Environ Sci Pollut R 22:0788–10799.
  • Kim KY, McDonald GA, Jordan D. 1997. Solubilization of hydroxyapatite by Enterobacter agglomerans and cloned Escherichia coli in culture medium. Biol Fertil Soils 24(4):347–352.
  • Klaic R, Giroto AS, Guimarães G, Plotegher F, Ribeiro C, Zangirolami TC, Farinas CS. 2018. Nanocomposite of starch-phosphate rock bioactivated for environmentally friendly Fertilization. Miner Eng 28:30–237.
  • Klaic R, Plotegher F, Ribeiro C, Zangirolami TC, Farinas CS. 2017. A novel combined mechanical-biological approach to improve rock phosphate solubilization. Int J Miner Process 161:0–58.
  • Kolawole GO, Tian G. 2007. Phosphorus fractionation and crop performance on an alfisol amended with phosphate rock combined with or without plant residues. Afr J Biotechnol 6(16):1972–1978.
  • Lazo DE, Dyer LG, Alorro RD. 2017. Silicate, phosphate and carbonate mineral dissolution behaviour in the presence of organic acids: a review. Miner Eng 100:115–123.
  • Lessl JT, Ma LQ. 2013. Sparingly-soluble phosphate rock induced significant plant growth and arsenic uptake by Pteris vittata from three contaminated soils. Environ Sci Technol 47(10):5311–5318.
  • Ling N, Song Y, Raza W, Huang QW, Guo SW, Shen QR. 2015. The response of root-associated bacterial community to the grafting of watermelon. Plant Soil 391(1–2):253–264.
  • Ma J, Wang Z, Yang Y, Mei X, Wu Z. 2013. Correlating microbial community structure and composition with aeration intensity in submerged membrane bioreactors by 454 high-throughput pyrosequencing. Water Res 47(2):859–869.
  • Nautiyal CS. 1999. An efficient microbiological growth medium for screening phosphate solubilizing microorganisms. FEMS Microbiol Lett 170(1):265–270.
  • Oteino N, Lally RD, Kiwanuka S, Lloyd A, Ryan D, Germaine KJ, Dowling DN. 2015. Plant growth promotion induced by phosphate solubilizing endophytic Pseudomonas isolates. Front Microbiol 6:745.
  • Pavinato PS, Rodrigues M, Soltangheisi A, Sartor LR, Withers PJA. 2017. Effects of cover crops and phosphorus sources on maize yield, phosphorus uptake, and phosphorus use efficiency. Agron J 109(3):1039–1047.
  • Perez E, Sulbaran M, Ball MM, Yarzabal LA. 2007. Isolation and characterization of mineral phosphate-solubilizing bacteria naturally colonizing a limonitic crust in the south-eastern Venezuelan region. Soil Biol Biochem 39(11):2905–2914.
  • Pikovskaya RI. 1948. Mobilization of phosphorus in soil in connection with vital activity of some microbial species. Microbiologia 17:362–370.
  • Qin YC, Fu YM, Dong C, Jia NN, Liu H. 2016. Shifts of microbial communities of wheat (Triticum aestivum L.) cultivation in a closed artificial ecosystem. Appl Microbiol Biotechnol 100(9):4085–4095.
  • Raghothama KG, Karthikeyan AS. 2005. Phosphate acquisition. Plant Soil 274(1–2):37–49.
  • Rodríguez H, Fraga R. 1999. Phosphate solubilizing bacteria and their role in plant growth promotion. Biotechnol Adv 17(4–5):319–339.
  • Selvakumar G, Joshi P, Suyal P, Mishra PK, Joshi GK, Venugopalan R, Bisht JK, Bhatt JC, Gupta HS. 2013. Rock phosphate solubilization by psychrotolerant Pseudomonas spp. and their effect on lentil growth and nutrient uptake under polyhouse conditions. Ann Microbiol 63(4):1353–1362.
  • Teng ZD, Shao W, Zhang KY, Huo YQ, Li M. 2019. Characterization of phosphate solubilizing bacteria isolated from heavy metal contaminated soils and their potential for lead immobilization. J Environ Manage 231:189–197.
  • Vassilev N, Vassileva M, Lopez A, Martos V, Reyes A, Maksimovic I, Eichler-Löbermann B, Malusà E. 2015. Unexploited potential of some biotechnological techniques for biofertilizer production and formulation. Appl Microbiol Biotechnol 99(12):4983–4996.
  • Vyas P, Rahi P, Chauhan A, Gulati A. 2007. Phosphate solubilization potential and stress tolerance of Eupenicillium parvum from tea soil. Mycol Res 111(Pt 8):931–938.
  • Xiao CQ, Feng B, Wang Q, Xu G, Wu XY, Zhu L, Yu T, Chi RA. 2019a. Microbial community of biofilm inoculated from activated sludge on solubilization of phosphate rock. Biologia 74(8):1021–1029.
  • Xiao CQ, Wang Q, Feng B, Xu G, Chi RA. 2018. Biosolubilization of rock phosphates in a bioreactor using a microbial consortium from rhizospheric soils: an analysis of the microbial community and technical feasibility. Miner Metall Proc 35(4):184–191.
  • Xiao CQ, Wu XY, Chi RA. 2015. Dephosphorization of high-phosphorus iron ore using different sources of Aspergillus niger strains. Appl Biochem Biotechnol 176(2):518–528.
  • Xiao CQ, Wu XY, Liu TT, Xu G, Chi RA. 2017a. Microbial community structure of activated sludge for biosolubilization of two different rock phosphates. Appl Biochem Biotechnol 182(2):742–754.
  • Xiao CQ, Wu XY, Liu TT, Xu G, Chi RA. 2017b. Optimizations of particle size and pulp density for solubilization of rock phosphate by a microbial consortium from activated sludge. Prep Biochem Biotechnol 47(6):562–569.
  • Xiao CQ, Wu XY, Zhu L, Yu T, Xu ZH, Chi RA. 2019b. Enhanced biosolubilization of mid-low grade phosphate rock by formation of microbial consortium biofilm from activated sludge. Physicochem Probl Miner Process 55:217–224.
  • Xiao CQ, Zhang HX, Fang YJ, Chi RA. 2013. Evaluation for rock phosphate solubilization in fermentation and soil-plant system using a stress-tolerant phosphate-solubilizing Aspergillus niger WHAK1. Appl Biochem Biotechnol 169(1):123–133.
  • Xu XH, Zhang Z, Hu SL, Ruan ZP, Jiang JD, Chen C, Shen ZG. 2016. Response of soil bacterial communities to lead and zinc pollution revealed by Illumina MiSeq sequencing investigation. Environ Sci Pollut R 24:1–10.
  • Yadav H, Gothwal RK, Mathur S, Ghosh P. 2015a. Bioactivation of Jhamarkotra rock phosphate by a thermotolerant phosphate-solubilizing bacterium Bacillus sp. BISR-HY63 isolated from phosphate mines. Arch Agron Soil Sci 61(8):1125–1135.
  • Yadav H, Gothwal RK, Solanki PS, Nehra S, Sinha-Roy S, Ghosh P. 2015b. Isolation and characterization of thermo-tolerant phosphate-solubilizing bacteria from a phosphate mine and their rock phosphate solubilizing abilities. Geomicrobiol J 32(6):475–481.
  • Zou X, Binkley D, Doxtader KG. 1992. A new method for estimating gross phosphorus mineralization and immobilization rates in soils. Plant Soil 147(2):243–250.

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.