106
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

Isolation of Inorganic Phosphorus-Solubilizing Bacteria from the Rhizosphere of Festuca arundinacea Schreb.

, , , , &
Pages 538-546 | Received 27 Jun 2022, Accepted 21 Apr 2023, Published online: 19 May 2023

References

  • Adnan M, Shah Z, Fahad S, Arif M, Alam M, Khan IA, Mian IA, Basir A, Ullah H, Arshad M, et al. 2017. Phosphate-solubilizing bacteria nullify the antagonistic effect of soil calcification on bioavailability of phosphorus in alkaline soils. Sci Rep 7(1):16131.
  • Ai-Jassani MJ, Mohammad NS, Ai-Jelawi RO, Ai-Khalidy AA. 2015. New selective media for the isolation and acid production screening of concrete fouling microbes. Iraqi J Biotechnol 14(2):42–51.
  • Bibi F. 2017. Diversity of antagonistic bacteria isolated from medicinal plant Peganum harmala L. Saudi J Biol Sci 24(6):1288–1293.
  • Cox JA, Lundquist GL. 1972. An Electrochemical method for the determination of phosphate in natural water. Urbana (IL): University of Illinois at Urbana-Champaign. Water Resources Center. Report No.: 61.
  • Cozzolino V, Monda H, Savy D, Di Meo V, Vinci G, Smalla K. 2021. Cooperation among phosphate-solubilizing bacteria, humic acids and arbuscular mycorrhizal fungi induces soil microbiome shifts and enhances plant nutrient uptake. Chem Biol Technol Agric 8(1):31.
  • de Sousa SM, de Oliveira CA, Andrade DL, de Carvalho CG, Ribeiro VP, Pastina MM, Marriel IE, de Paula Lana UG, Gomes EA. 2021. Tropical Bacillus strains inoculation enhances maize root surface area, dry weight, nutrient uptake and grain yield. J Plant Growth Regul 40(2):867–877.
  • Dipta B, Bhardwaj S, Kaushal M, Kirti S, Sharma R. 2019. Obliteration of phosphorus deficiency in plants by microbial interceded approach. Symbiosis 78(2):163–176.
  • Goldstein AH, Liu ST. 1987. Molecular cloning and regulation of a mineral phosphate solubilizing gene from Erwinia herbicola. Nat Biotechnol 5(1):72–74.
  • Gupta R, Kumari A, Sharma S, Alzahrani OM, Noureldeen A, Darwish H. 2022. Identification, characterization and optimization of phosphate solubilizing rhizobacteria (PSRB) from rice rhizosphere. Saudi J Biol Sci 29(1):35–42.
  • Gupta R, Singal R, Shankar A, Kuhad RC, Saxena RK. 1994. A modified plate assay for screening phosphate solubilizing microorganisms. J Gen Appl Microbiol 40(3):255–260.
  • Kalyanasundaram GT, Syed N, Subburamu K. 2021. Recent developments in applied microbiology and biochemistry. Cambridge (MA): Academic Press. Chapter 17, Recent developments in plant growth-promoting rhizobacteria (PGPR) for sustainable agriculture; p181–192.
  • Khan N, Bano A. 2016. Role of plant growth promoting rhizobacteria and Ag-nano particle in the bioremediation of heavy metals and maize growth under municipal wastewater irrigation. Int J Phytorem 18(3):211–221.
  • Kramer J, Özkaya Ö, Kümmerli R. 2019. Bacterial siderophores in community and host interactions. Nat Rev Microbiol 18(3):1–12.
  • Li X, Guo R, Zhao Y, Liu D, Chen J, Miao N, Gao S, Guo J, Zhang T, Shi L. 2022. Wild soybean resists the stress of low phosphorus by increasing nutrient reuse between the young and old leaves. Plant Growth Regul 97(1):21–31.
  • Li Y, Xiaomeng L, Tianyi H, Sanfeng C. 2017. Colonization and maize growth promotion induced by phosphate solubilizing bacterial isolates. Int J Mol Sci 18:1253.
  • Li Y, Zhang J, Zhang J, Xu W, Mou Z. 2019. Characteristics of inorganic phosphate-solubilizing bacteria from the sediments of a eutrophic lake. IJERPH 16(12):2141.
  • Liu ST, Lee LY, Tai CY, Hung CH, Chang YS, Wolfram JH, Rogers R, Goldstein AH. 1992. Cloning of an Erwinia herbicola gene necessary for gluconic acid production and enhanced mineral phosphate solubilization in Escherichia coli HB101: nucleotide sequence and probable involvement in biosynthesis of the coenzyme pyrroloquinoline quinone. J Bacteriol 174(18):5814–5819.
  • Marpaung AE, Susilowati DN. 2021. Isolation and identification of phosphate solubilising bacteria from potato rhizosphere on andisol. IOP Conf Ser Earth Environ Sci 810(1):012041.
  • Min KJ, Kim D, Lee J, Lee K, Park KY. 2019. Characteristics of vegetable crop cultivation and nutrient releasing with struvite as a slow-release fertilizer. Environ Sci Pollut Res Int 26(33):34332–34344.
  • Nautiyal CS. 1999. An efficient microbiological growth medium for screening phosphate solubilizing microorganisms. FEMS Microbiol Lett 170(1):265–270.
  • Pei L, Liu J, Zhou Y, Jiang Y, Li H. 2021. Transcriptomic and metabolomic profiling reveals the protective role of anthocyanins in alleviating low phosphate stress in maize. Physiol Mol Biol Plants 27(5):889–905.
  • Pikovskaya RI. 1948. Mobilization of phosphorus in soil in connection with the vital activity of some microbial species. Mikrobiologya 7:362–370.
  • Pranaya K, Bhat BN, Uma G, Pranaya K, Triveni S. 2020. Colony, morphological and biochemical characteristics of cotton phyllosphere bacteria and its antagonistic activity against the Alternaria leaf spot of cotton. Int J Chem Stud 8(6):1103–1107.
  • Rawat P, Das S, Shankhdhar D, Shankhdhar SC. 2021. Phosphate-solubilizing microorganisms: mechanism and their role in phosphate solubilization and uptake. J Soil Sci Plant Nutr 21(1):49–68.
  • Reyes-Castillo A, Gerding M, Oyarzúa P, Zagal E, Gerding J, Fischer S. 2019. Plant growth-promoting rhizobacteria able to improve NPK availability: selection, identification and effects on tomato growth. Chil J Agric Res 79(3):473–485.
  • Rezakhani L, Motesharezadeh B, Tehrani M, Etesami H, Mirseyed H. 2022. The effect of silicon fertilization and phosphate-solubilizing bacteria on chemical forms of silicon and phosphorus uptake by wheat plant in a calcareous soil. Plant Soil 477(1–2):259–280.
  • Rezakhani L, Motesharezadeh B, Tehrani MM, Etesami H, Mirseyed Hosseini H. 2020. Effect of silicon and phosphate-solubilizing bacteria on improved phosphorus (P) uptake is not specific to insoluble P-fertilized sorghum (Sorghum bicolor L.) plants. J Plant Growth Regul 39(1):239–253.
  • Rodríguez H, Fraga R. 1999. Phosphate solubilizing bacteria and their role in plant growth promotion. Biotechnol Adv 17(4–5):319–339.
  • Rodríguez H, Gonzalez T, Selman G. 2001. Expression of a mineral phosphate solubilizing gene from Erwinia herbicola in two rhizobacterial strains. J Biotechnol 84(2):155–161.
  • Ruangsanka. 2014. Identification of phosphate-solubilizing bacteria from the bamboo rhizosphere. Scienceasia 40(3):204–211.
  • Schwyn B, Neilands J. 1987. Universal chemical assay for the detection and determination of siderophores. Anal Biochem 160(1):47–56.
  • Sharma SB, Sayyed RZ, Trivedi MH, Gobi TA. 2013. Phosphate solubilizing microbes: sustainable approach for managing phosphorus deficiency in agricultural soils. SpringerPlus 2:587–587.
  • Shen W, Guo R, Zhao Y, Liu D, Chen J, Miao N, Gao S, Zhang T, Shi L. 2022. Nutrient reabsorption mechanism adapted to low phosphorus in wild and cultivated soybean varieties. J Plant Growth Regul 41(7):3046–3060.
  • Sun T, Zhang J, Zhang Q, Li X, Li M, Yang Y, Zhou J, Wei Q, Zhou B. 2021. Transcriptome and metabolome analyses revealed the response mechanism of apple to different phosphorus stresses. Plant Physiol Biochem 167:639–650.
  • Tomer S, Suyal DC, Goel R. 2016. Biofertilizers: a timely approach for sustainable agriculture. In: Choudhary DK, Varma A, Tuteja N, editors. Plant-Microbe Interaction: An Approach to Sustainable Agriculture. Singapore: Springer Singapore, p375–395.
  • Tran PHT. 2011. Metabolic adaptations of phosphate-starved plants. Plant Physiol 156(3):1006–1015.
  • Wagh J, Shah S, Bhandari P, Archana G, Kumar GN. 2014. Heterologous expression of pyrroloquinoline quinone (pqq) gene cluster confers mineral phosphate solubilization ability to Herbaspirillum seropedicae Z67. Appl Microbiol Biotechnol 98(11):5117–5129.
  • Walpola BC, Hettiarachchi R. 2020. Plant growth promoting traits of phosphate solubilizing bacteria isolated from agricultural lands in southern Sri Lanka. J Food Agric 13(1):2–18.
  • Wang M, Sun H, Xu Z. 2022. Analysis of blueberry plant rhizosphere bacterial diversity and selection of plant growth promoting rhizobacteria. Curr Microbiol 79(11):331.
  • Wei Y, Zhao Y, Shi M, Cao Z, Lu Q, Yang T, Fan Y, Wei Z. 2018. Effect of organic acids production and bacterial community on the possible mechanism of phosphorus solubilization during composting with enriched phosphate-solubilizing bacteria inoculation. Bioresour Technol 247:190–199.
  • Yang G, Nabi F, Sajid S, Kaleri AR, Jakhar AM, Cheng L, Raspor M, Muhammad N, Ma J, Hu Y. 2021. Response of root development and nutrient uptake of two Chinese cultivars of hybrid rice to nitrogen and phosphorus fertilization in Sichuan Province, China. Mol Biol Rep 48(12):8009–8021.
  • Zhang H, Han L, Jiang B, Long C. 2021. Identification of a phosphorus-solubilizing Tsukamurella tyrosinosolvens strain and its effect on the bacterial diversity of the rhizosphere soil of peanuts growth-promoting. World J Microbiol Biotechnol 37(7):109.
  • Zheng B-X, Ibrahim M, Zhang D-P, Bi Q-F, Li H-Z, Zhou G-W, Ding K, Peñuelas J, Zhu Y-G, Yang X-R. 2018. Identification and characterization of inorganic-phosphate-solubilizing bacteria from agricultural fields with a rapid isolation method. AMB Express 8(1):47.

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.