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Inositol Phosphate Phosphatases of Microbiological Origin. The Isolation of Soil Bacteria Having Inositol Phosphate Phosphatase Activity

DJ Cosgrove, GCJ Irving and SM Bromfield
23(2) pp.339 - 344


29 articles found in Crossref database.

Purification and properties of a thermostable phytase from Bacillus sp. DS11
Kim Young-Ok, Kim Hyung-Kwoun, Bae Kyung-Sook, Yu Ju-Hyun, Oh Tae-Kwang
Enzyme and Microbial Technology. 1998 22(1). p.2
Phosphorus fractions of a climosequence of soils in New zealand tussock grassland
Tate K.R., Newman R.H.
Soil Biology and Biochemistry. 1982 14(3). p.191
Characterisation of a soil MINPP phytase with remarkable long-term stability and activity from Acinetobacter sp.
Rix Gregory D., Sprigg Colleen, Whitfield Hayley, Hemmings Andrew M., Todd Jonathan D., Brearley Charles A., Silman Israel
PLOS ONE. 2022 17(8). p.e0272015
Purification and properties of phytate-specific phosphatase from Bacillus subtilis
Powar V K, Jagannathan V
Journal of Bacteriology. 1982 151(3). p.1102
Dehydrogenase and phosphatase activities in soil as influenced by the growth of arid-land crops
Rao A. V., Bala K., Tarafdar J. C.
The Journal of Agricultural Science. 1990 115(2). p.221
Development of a biologically based fertilizer, incorporating Bacillus megaterium A6, for improved phosphorus nutrition of oilseed rape
Hu Xiaojia, Roberts Daniel P., Xie Lihua, Maul Jude E., Yu Changbing, Li Yinshui, Zhang Shujie, Liao Xing
Canadian Journal of Microbiology. 2013 59(4). p.231
Improved sensitivity, accuracy and prediction provided by a high‐performance liquid chromatography screen for the isolation of phytase‐harbouring organisms from environmental samples
Rix Gregory D., Todd Jonathan D., Neal Andrew L., Brearley Charles A.
Microbial Biotechnology. 2021 14(4). p.1409
Isolation and assessment of phytate‐hydrolysing bacteria from the DelMarVa Peninsula
Hill Jane E., Kysela David, Elimelech Menachem
Environmental Microbiology. 2007 9(12). p.3100
Phosphatase production by microorganisms isolated from diverse types of soils
Tarafdar J.C., Chhonkar P.K.
Zentralblatt für Bakteriologie, Parasitenkunde, Infektionskrankheiten und Hygiene. Zweite Naturwissenschaftliche Abteilung: Mikrobiologie der Landwirtschaft, der Technologie und des Umweltschutzes. 1979 134(2). p.119
The Influence of Sewage Sludge Application on Physical and Biological Properties of Soils (1983)
Tomati U., Grappelli A., Galli E.
Microbial phytase activity and their role in organic P mineralization
Azeem Muhammad, Riaz Adnan, Chaudhary Arshad Nawaz, Hayat Rifat, Hussain Qaiser, Tahir Muhammad Ibrahim, Imran Muhammad
Archives of Agronomy and Soil Science. 2015 61(6). p.751
Phosphatase activity and distribution of phosphorus in arid soil profiles under different land use patterns
Tarafdar J.C., Kiran B., Rao A.V.
Journal of Arid Environments. 1989 16(1). p.29
Phosphate solubilizing bacteria and their role in plant growth promotion
Rodrı́guez Hilda, Fraga Reynaldo
Biotechnology Advances. 1999 17(4-5). p.319
Microbial phytases in phosphorus acquisition and plant growth promotion
Singh Bijender, Satyanarayana T.
Physiology and Molecular Biology of Plants. 2011 17(2). p.93
Simple synthesis of 32P-labelled inositol hexakisphosphates for study of phosphate transformations
Whitfield Hayley, Riley Andrew M., Diogenous Soulla, Godage Himali Y., Potter Barry V. L., Brearley Charles A.
Plant and Soil. 2018 427(1-2). p.149
Soil Components (1975)
Anderson G.
Microrganismos do solo produtores de fosfatases em diferentes sistemas agrícolas
Nahas Ely
Bragantia. 2002 61(3). p.267
Synergistic action of both Aspergillus niger and Burkholderia cepacea in co-culture increases phosphate solubilization in growth medium
Braz Rosângela Rodrigues, Nahas Ely
FEMS Microbiology Letters. 2012 332(1). p.84
Soil isolates of Pseudomonas spp. that utilize inositol phosphates
Richardson A. E., Hadobas P. A.
Canadian Journal of Microbiology. 1997 43(6). p.509
Use of polyethylene glycol and high-performance liquid chromatography for preparative separation of Aspergillus ficuum acid phosphatases
Hamada Jamel S.
Journal of Chromatography A. 1994 658(2). p.371
Subcellular Biochemistry (1984)
Biswas B. B., Ghosh B., Majumder Arun Lahiri
The comparative plant availability of 32P myo‐inositol hexaphospha.te and KH2 32PO4 added to soils
Martin J.K., Cartwright B.
Communications in Soil Science and Plant Analysis. 1971 2(5). p.375
Siderophore activity of myo-inositol hexakisphosphate in Pseudomonas aeruginosa
Smith A W, Poyner D R, Hughes H K, Lambert P A
Journal of Bacteriology. 1994 176(12). p.3455
The influence of rhizosphere microflora on the availability of 32P-myoinositol hexaphosphate phosphorus to wheat
Martin J.K.
Soil Biology and Biochemistry. 1973 5(4). p.473
The structure of myo-inositol hexaphosphate dodecasodium salt octatriacontahydrate: A single crystal X-ray analysis
Blank G.E., Pletcher J., Sax M.
Biochemical and Biophysical Research Communications. 1971 44(2). p.319
Relationship among Phosphorus Circulation Activity, Bacterial Biomass, pH, and Mineral Concentration in Agricultural Soil
Adhikari Dinesh, Jiang Tianyi, Kawagoe Taiki, Kai Takamitsu, Kubota Kenzo, Araki Kiwako, Kubo Motoki
Microorganisms. 2017 5(4). p.79
Microorganisms in Sustainable Agriculture and Biotechnology (2012)
Singh Bijender, Satyanarayana T.
Sustainable Crop Production Systems and Human Nutrition
Roberts Daniel P., Mattoo Autar K.
Frontiers in Sustainable Food Systems. 2019 3
Phosphatase production byAspergillus ficuum
Han Youn W., Gallagher Daniel J.
Journal of Industrial Microbiology. 1987 1(5). p.295
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