Physicochemical properties of four phosphate solubilizing bacteria isolated from the semi-arid regions of North Gujarat, India
Physicochemical properties of phosphate solubilizing bacteria
DOI:
https://doi.org/10.21921/jas.v9i03.11008Keywords:
Physicochemical properties, phosphate solubilizing bacteria, North GujaratAbstract
The rhizosphere of several plants was screened for phosphate solubilizing bacteria (PSB)
from eight locations of North Gujrat. Thirty-three PSB were isolated in the study. Four PSB
isolates with the highest phosphate solubilization index between 1.55–2 were characterized
morphologically and biochemically and identified through 16S rRNA sequencing as
Klebsiella aerogenes, Klebsiella pneumoniae, Kocuria flava and Enterobacter hormaechei.
The growth of isolates was measured by plotting an optical density-based semi-logarithmic
growth curve. The isolates were measured for P solubilization in Pikovskaya broth. The
isolate K. flava LC515414 solubilized maximum Ca 3 PO 4 (7.63 µm P mL -1 ). The acid and
alkaline phosphatase activity of the isolates was also measured for 96 h in the growth
medium. After 96 h of growth, the isolate K. flava LC515414 had the highest final acid and
alkaline phosphatase activity of 4.68 U L -1 and 5.67 U L -1 .
References
Achal V, Savant V and Reddy MS. 2007. Phosphate solubilization by a wild type strain and
UV-induced mutants of Aspergillus tubingensis. Soil Biology and Biochemistry
(2): 695-699.
Alia AA, Shahida N, Bushra J and Saeed A. 2013. Phosphate solubilizing bacteria
associated with vegetables roots in different ecologies. Pakistan Journal of Botany
: 535-544.
Babu SV, Triveni S, Reddy RS and Sathyanarayana J. 2017. Isolation and characterization
of phosphate solubilizing microorganisms from maize rhizosperic soils. Bulletin of
Environment, Pharmacology and Life Sciences 6(1): 194-200.
Baliah NT and Begum PJ. 2015. Isolation, identification and characterization of phosphate
solubilizing bacteria (PSB) isolated from economically important crop plants.
International Journal of Current Microbiology and Applied Sciences 4(3): 915-924.
Baliah NT, Pandiarajan G and Kumar BM. 2016. Isolation, identification and characterization
of phosphate solubilizing bacteria from different crop soils of Srivilliputtur Taluk,
Virudhunagar District, Tamil Nadu. Tropical Ecology 57(3): 465-474.
Barrett G and Marsh S. 2002. 11. An economic analysis of inoculant biofertiliser production
and use in Vietnam. Simon Hearn: 102.
Behera BC, Yadav H, Singh SK, Mishra RR, Sethi BK, Dutta SK and Thatoi HN. 2017.
Phosphate solubilization and acid phosphatase activity of Serratia sp. isolated from
mangrove soil of Mahanadi river delta, Odisha, India. Journal of Genetic
Engineering and Biotechnology 15(1): 169-178.
Bergmeyer HU and Bernt E. 1974. UV-Assay with Pyruvate and NADH. Bergmeyer HU
(Ed.), Methods of Enzymatic Analysis (Second Edition). Academic Press, pp. 574-
Bernt E. 1974. Alkaline Phosphatase in Milk. Bergmeyer HU (Ed.), Methods of Enzymatic
Analysis (Second Edition). Academic Press, pp. 868-870.
Dawwam GE, Elbeltagy A, Emara HM, Abbas IH and Hassan MM. 2013. Beneficial effect of
plant growth promoting bacteria isolated from the roots of potato plant. Annals of
Agricultural Sciences 58(2): 195-201.
Deepa C, Dastager SG and Pandey A. 2010. Isolation and characterization of plant growth
promoting bacteria from non-rhizospheric soil and their effect on cowpea (Vigna
unguiculata (L.) Walp.) seedling growth. World Journal of Microbiology and
Biotechnology 26(7): 1233-1240.
Dick WA, Cheng L and Wang P. 2000. Soil acid and alkaline phosphatase activity as pH
adjustment indicators. Soil Biology and Biochemistry 32(13): 1915-1919.
Gaur AC. 1990. Physiological functions of phosphate solubilizing micro-organisms.
Phosphate solubilizing micro-organisms as biofertilizer. Omega scientific publishers,
New Delhi, pp. 16-72.
Gomes J, Steiner W and Biotechnology. 2004. The biocatalytic potential of extremophiles
and extremozymes. Food Technology and Biotechnology 42(4): 223-225.
Itelima JU, Bang WJ, Onyimba IA and Egbere OJ. 2018. A review: biofertilizer; a key player
in enhancing soil fertility and crop productivity. Journal of Microbiology and
Biotechnology Reports 2: 22-28.
Jha CK and Saraf M. 2015. Plant growth promoting rhizobacteria (PGPR): A review. Journal
of Agricultural Research and Development 5(2): 108-119.
Kumar V and Narula N. 1999. Solubilization of inorganic phosphates and growth emergence
of wheat as affected by Azotobacter chroococcum mutants. Biology and Fertility of
Soils 28(3): 301-305.
Liu Z, Li YC, Zhang S, Fu Y, Fan X, Patel JS and Zhang M. 2015. Characterization of
phosphate-solubilizing bacteria isolated from calcareous soils. Applied Soil Ecology
: 217-224.
Margalef O, Sardans J, Fernández-Martínez M, Molowny-Horas R, Janssens IA, Ciais P,
Goll D, Richter A, Obersteiner M, Asensio D and Peñuelas J. 2017. Global patterns
of phosphatase activity in natural soils. Scientific Reports 7(1): 1337.
Midekssa MJ, Löscher CR, Schmitz RA and Assefa F. 2016. Phosphate solubilization and
multiple plant growth promoting properties of rhizobacteria isolated from chickpea
(Cicer aeritinum L.) producing areas of Ethiopia. African Journal of Biotechnology
(35): 1899-1912.
Mihara Y, Utagawa T, Yamada H and Asano Y. 2001. Acid phosphatase/phosphotransferases from enteric bacteria. Journal of Bioscience and Bioengineering 92(1): 50-54.
Muleta D, Assefa F, Börjesson E and Granhall U. 2013. Phosphate-solubilising rhizobacteria
associated with Coffea arabica L. in natural coffee forests of southwestern Ethiopia.
Journal of the Saudi Society of Agricultural Sciences 12(1): 73-84.
Mulongoy K, Gianinazzi S, Roger P-A and Dommergues Y. 1992. Biofertilizers: agronomic
and environmental impacts and economics. Biotechnology: Economic and Social
Aspects. Issues for Developing Countries Eds. EJ Da Silva, C Ratledge and A Sasson: 55-69.
Pikovskaya RI. 1948. Mobilization of phosphorus in soil in connection with the vital activity of
some microbial species. Mikrobiologiya 17: 362-370.
Ponmurugan P and Gopi C. 2006. Distribution pattern and screening of phosphate
solubilizing bacteria isolated from different food and forage crops. J. Agron 5(4): 600-604.
Prasanna R, Joshi M, Rana A, Shivay YS and Nain L. 2012. Influence of co-inoculation of
bacteria-cyanobacteria on crop yield and C–N sequestration in soil under rice crop.
World Journal of Microbiology and Biotechnology 28(3): 1223-1235.
Rafi MM, Krishnaveni M and Charyulu P. 2019. Phosphate-solubilizing microorganisms and
their emerging role in sustainable agriculture. Recent Developments in Applied
Microbiology and Biochemistry: 223-233.
Ranjan A, Mahalakshmi MR and Sridevi M. 2013. Isolation and characterization of
phosphate-solubilizing bacterial species from different crop fields of Salem, Tamil
Nadu, India. International Journal of Nutrition, Pharmacology, Neurological
Diseases 3(1): 29.
Singh AK, Hembrom R and Pal A. 2016. Use of Microbes: A Sustainable Approach in
Management of Horticultural Crops. Microbes and Environmental Management.
Studium Press (India) Pvt. Ltd., New Delhi, pp. 45-77.
Son TTN, Man LH, Diep CN, Thu TTA and Nam NN. 2008. Bioconversion of paddy straw
and biofertilizer for sustainable rice based cropping systems. Omonrice 16: 57-70.
Stephen J and Jisha M. 2011. Gluconic acid production as the principal mechanism of
mineral phosphate solubilization by Burkholderia sp.(MTCC 8369). Journal of Tropical agriculture 49: 99-103.
Tallapragada P and Seshagiri S. 2017. Application of bioinoculants for sustainable
agriculture. Probiotics and Plant Health. Springer, pp. 473-495.
Taurian T, Anzuay MS, Angelini JG, Tonelli ML, Ludueña L, Pena D, Ibáñez F, Fabra AJP
and Soil. 2010. Phosphate-solubilizing peanut associated bacteria: screening for
plant growth-promoting activities. Plant and Soil 329(1-2): 421-431.
Torriani A. 1960. Influence of inorganic phosphate in the formation of phosphatases by
Escherichia coli. Biochimica et Biophysica Acta 38: 460-469.
Vincent JB, Crowder MW and Averill B. 1992. Hydrolysis of phosphate monoesters: a
biological problem with multiple chemical solutions. Trends in Biochemical Sciences
(3): 105-110.
Walpola BC and Yoon M-H. 2013a. In vitro solubilization of inorganic phosphates by
phosphate solubilizing microorganisms. African Journal of Microbiology Research
(27): 3534-3541.
Walpola BC and Yoon M-H. 2013b. Isolation and characterization of phosphate solubilizing
bacteria and their co-inoculation efficiency on tomato plant growth and phosphorous
uptake. African Journal of Microbiology Research 7(3): 266-275.
Xiao C, Chi R, He H, Qiu G, Wang D and Zhang W. 2009. Isolation of phosphate-solubilizing
fungi from phosphate mines and their effect on wheat seedling growth. Applied
Biochemistry and Biotechnology 159(2): 330-342.