Cite

1. Ehrlich, H. L. (1990). Geomicrobial processes. A physical and biochemical overview. In Geomicrobiology, 2nd Ed.Marcel Dekker. pp: 45-60. https://doi.org/10.4319/lo.1982.27.5.0984 Search in Google Scholar

2. Goldstein, A. H. (1994). Involvement of the quinoprotein glucose dehydrogenase in the solubilization of exogenous mineral phosphates by gram negative bacteria. In: Torriani-Gorni, A., E. Yagil, S. Silver, eds. Phosphate in Microorganisms: Cellular and Molecular Biology. American Society for Microbiology, Washington, DC. pp: 197–203. ISBN 1555810802. Search in Google Scholar

3. Sudhakara, R. M., Kumar, S., Babita, K. & Reddy, M. S. (2002). Biosolubilization of poorly soluble rock phosphates by Aspergillus tubingensis and Aspergillus niger. Bioresource Technology, 84(2): 187–189. https://doi.org/10.1016/s0960-8524(02)00040-8 Search in Google Scholar

4. Kobierski, M., Kondratowicz-Maciejewska, K., Banach-Szott, M. (2018). Humic substances and aggregate stability in rhizospheric and non-rhizospheric soil. J Soils Sediments 18, 2777–2789. https://doi.org/10.1007/s11368-018-1935-1 Search in Google Scholar

5. Richardson, A. E., Barea, J. M., Mcneill, C. & Prigent, C. (2009). Acquisition of phosphorus and nitrogen in the rhizosphere and plant growth promotion by microorganisms. Plant and Soil, 321: 305–339. https://doi.org/10.1007/s11104-009-9895-2 Search in Google Scholar

6. Alghazali, R., S. Kmuhammad, H. M. & Algzawl, J. (1996). Some observations on P solubilization by aerobic microorganisms isolated d from sediments of Al Khair River Baghdad (Iraq). Journal of Biology Science, Research, 47:157-72. Search in Google Scholar

7. George, T. S., Gregory, P. J., Wood, M., Read, D. & Buresh, R. J. (2002). Phosphatase activity and organic acids in the rhizosphere of potential agroforestry species and maize. Soil. Biology and Biochemistry, 34: 1487-1494. https://doi.org/10.1016/S0038-0717(02)00093-7 Search in Google Scholar

8. Fawole, M. O. & Oso, B. A. (2007). Laboratory manual on microbiology, Spectrum books limited, Ibadan, Nigeria, pp: 127. Search in Google Scholar

9. Elias, F., Woyessa, D. & Muleta, D. (2016). Phosphate solubilisation of rhizosphere fungi isolated from plants in Jimma zone, Southwest Ethiopia. International Journal of Microbiology, pp: 1-11. https://doi.org/10.1155/2016/5472601 Search in Google Scholar

10. Betty, N. F., Dedeh, H., Arief, T. S., Dwi, A. S. & Benny, J. (2011). Phosphatase-producing bacteria isolated from Sanggabuana forest and their capability to hydrolyze organic phosphate. Journal of Soil Science and Environmental Management, 2(10): 299-303. Search in Google Scholar

11. Viga, K., Singh, D. K., Agarwal, H. C., Dhawanb, A. C. & Durejac, P. (2008). Soil microorganisms in cotton fields sequentially treated with insecticides. Journal Ecotoxicology and Environmental Safety, 69(2): 263-276. https://doi.org/10.1016/j.ecoenv.2006.12.008 Search in Google Scholar

12. Srinivasulu, M. and Darwin, Rueda, Ortiz, (2017). Effect of Pesticides on Bacterial and Fungal Populations in Ecuadorian Tomato Cultivated Soils. Environmental Processes 4(1). https://doi.org/1007/s40710-017-0212-4 Search in Google Scholar

13. Miles, J.R.W., Tu, C.M., and Harris, C.R. (1979) Persistence of eight organophosphorus insecticides in sterile and non-sterile mineral and organic soils. Bulletin of Environmental Contamination Toxicology, 22:312–318. Search in Google Scholar

14. Pozo C, Martinez-Toledo MV, Salmeron V, Rodelas B, Gonzalez-Lopez J (1995) Effect of chlorpyrifos on soilmicrobial activity. Environmental Toxicology and Chemistry, 14:187–192. https://doi.org/10.1002/etc.5620140201 Search in Google Scholar

15. Hussain, S., Siddique, T., Saleem, M. and Arshad, M.G. (2009). Impact of pesticides on Soil Microbial Diversity, Enzymes and Biochemical Reactions. Advances in Agronomy, 102(1): 159-200. https://doi.org/10.1016/S0065-2113(09)01005-0 Search in Google Scholar

16. Virag, D., Naar, Z. and Kiss, A. (2007) Microbial toxicity of pesticide derivatives produced with UV-photodegradation. Bulletin of Environmental Contamination Toxicological, 79:356–359. https://doi.org/10.1007/s00128-007-9230-7 Search in Google Scholar

17. Raghu, K. and Mac Rae, I. C. (1967), “The effect of gamma isomer of BHC upon the microflora of submerged rice soils. II. Effect on nitrogen mineralization and fixation of selected bacteria.” Canadian Journal of Microbiology, 13: 621. https://doi.org/10.1139/m67-082 Search in Google Scholar

18. Puente, M. E., Bashan, Y., Li, C. Y. & Lebsky, V. K. (2004). Microbial populations and activities in the rhizoplane of rock weathering desert plants root colonization and weathering of igneous rocks. Plant Biology, 6:629-642. https://doi.org/10.1055/s-2004-821100 Search in Google Scholar

19. Peacock, T. J., Mikell, A. T., & Smith, J. R. S. (2014). Application of a redox gradostat reactor for assessing rhizosphere microorganism activity on lambdacyhalothrin. Bulletin of Environmental Contamination Toxicology, 92: 347-351. https://doi.org/10.1007/s00128-014-1202-0 Search in Google Scholar

20. Fitriatin, B.N., Joy, B., & Subroto, T. (2008). The Influence of organic phosphorous substrate on phosphatase activity of soil microbes. International Seminar of Chemistry, pp: 30-31. Search in Google Scholar

21. Abdel-Ghany, T. M., Al-Rajhi, A. M. H., Al Abboud, M. A., Alawlaqi, M. M., Magdah, A. G., Helmy, E. A. M., and Mabrouk, A. S. (2018). “Recent advances in green synthesis of silver nanoparticles and their applications: About future directions. A review,” BioNanoScience 8(1), 5-16. https://doi.org/10.1007/s12668-017-0413-3 Search in Google Scholar

22. Behera, B. C., Yadav, S. K., Singh, R. R., Mishra, B. K., Dutta, H. N. & Thatoi, H. N. (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: 169-178. https://doi.org/10.1016/j.jgeb.2017.01.003 Search in Google Scholar

23. Paul, D., and Sinha, S. N. (2017). “Isolation and characterization of phosphate solubilizing bacterium Pseudomonas aeruginosa KUPSB12 with antibacterial potential from river Ganga, India,” Annals of Agrarian Science 15(1), 130-136. https://doi.org/10.1016/j.aasci.2016.10.001 Search in Google Scholar

24. Tarek M. Abdel-Ghany, Zeinhom H. Mohamed, Mohamed A. Al Abboud, Eman A. Helmy, Aisha M. H. Al-Rajhi, and Abdel Rhaman M. Shater, (2019). Solubilization of Inorganic Phosphate by Rhizospheric Fungi Isolated from Soil Cultivated with Sorghum bicolor L. “Soluble P & soil fungi,” BioResources 14(3), 5521-5532. https://doi.org/10.15376/biores.14.3.5521-5532 Search in Google Scholar

25. Dragye, R., Handini, P. and Shweta, A. (2011). Effect of pesticides on the phosphate solubilization capacity of microbial isolate. Indian Journal of Applied Research 4(1): 448-450. https://doi.org/10.15373/2249555XJAN2014/137 Search in Google Scholar

26. Agboola, A.A., Ekundayo, F.O., Ekundayo, E.A., Fasoro, A.A., Ayantola, H.J. and Kayode, A.J. (2018). Influence of glyphosate on rhizosphere microorganisms and their ability to solubilise phosphate. Journal of Micribiology and Antimicrobial Agent, 4(2): 15-21. ISSN 2396-880X. http://eprints.abuad.edu.ng/id/eprint/642 Search in Google Scholar

27. Sakurai, M., Wasaki, J., Tomizawa, Y., Shinano, T. & Osaki, M. (2008). Analysis of bacterial communities on alkaline phosphatase genes in soil supplied with organic matter. Soil Science and Plant Nutrition, 54(1): 62-71. https://doi.org/10.1111/j174765.2007.00210.x Search in Google Scholar

28. Dick, R. P. (1997). Soil enzyme activities as integrative indicators of soil health. In : Pankhurst BM, Doube, Gupta VVSR (Ed.). Biological Indicators of soil health. Centre for Agriculture and Bioscience International, pp: 121-156. Search in Google Scholar

29. Azeem, M., Riaz, A., Chaudhary,A.N., Hayat, R., Hussain, Q., Tahir M.I. & Imran, M. (2014): Microbial phytase activity and their role in organic P mineralization. Archives of Agronomy and Soil Science, 61(6): 751-766. https://doi.org/10.1080/03650340.2014.96379 Search in Google Scholar

30. Tarafdar, J. C., Rao, A. V. & Kiran, B. (1988). Production of phosphatase by fungi isolated from desert soils. Folia Microbiologica, 33: 453-457. https://doi.org/10.1007/BF02925770. Search in Google Scholar

eISSN:
2543-8050
Language:
English