Bioscience and Bioengineering
Articles Information
Bioscience and Bioengineering, Vol.6, No.3, Sep. 2021, Pub. Date: Nov. 8, 2021
Microbial Determination of Hydrocarbon Polluted Soil in Some Parts of Niger State, Nigeria
Pages: 20-27 Views: 1006 Downloads: 170
Authors
[01] Innocent Ojeba Musa, Department of Microbiology, Federal University of Technology, Minna, Nigeria.
[02] Udeme Joshua Josiah Ijah, Department of Microbiology, Federal University of Technology, Minna, Nigeria.
[03] Olabisi Peter Abioye, Department of Microbiology, Federal University of Technology, Minna, Nigeria.
[04] Adebola Matthew Omoniyi, Department of Plant Biology, Federal University of Technology, Minna, Nigeria.
Abstract
Spent engine oil management in Nigeria is not well supervised and the indiscriminate discharges into the soil drains and water of the pollutants. This has attendant implications on soil and water quality, contamination on soil ecosystem alters soil biochemistry, immobilizes nutrients. The study was designed to determine the microbial load and identify some of the microorganisms present in the hydrocarbon polluted soil were Bacillus subtilis, Staphylococcus aureus, Staphylococcus epidermidis, Bacillus megaterium, Pseudomona aeroginosa, Aspergilus flavus, Aspergilus fumigatus, Aspergilus niger, Fusarium oxysporium and Penicillium notatun. Minna, had more bacteria counts within the rhizosphere of the plants found within the vicinity of the automobile workshop with the Mean count of 1.42×107±2.41×107 cfu/g, while Bida had the lowest bacterial count in the Automobile workshop 1.56×105±2.13×105 cfu/g when compared to Minna and Suleja. For fungi, Bida had the highest count with a mean of 7.10×106±1.20×107 cfu/g while Minna had the lowest count with a mean count of 1.02×106±1.72×106 cfu/g in relative terms to Suleja, Bida and Tegina. Bacillus subtilis had the highest frequency of occurrence of (37.50%) while Staphylococcus epidermidis had the lowest occurrence (9.38%), in soil remediated with M. officinalis alone Bacillus subtilis had the highest frequency of occurrence (42.85%) and Staphylococcus epidermidis had the lowest frequency of occurrence (4.54%). That of fungi, A. niger had the highest frequency of occurrence (47.61%) while the fungi with the least occurrence was P. notatum (4.76%) with F. oxysporium with occurrence of 9.52% (Table 4), in soil remediated with M. officinalis alone (SP1), A. niger had the highest frequency of occurrence (52.17%) while P. notatum had the lowest frequency of occurrence (4.34%), in soil remediation. A. niger had the highest frequency of occurrence (45.83%) while P. notatum had the lowest frequency of occurrence (4.16%), soil polluted with 50cl of spent engine oil. A. niger had the highest frequency of occurrence (50.00%) while P. notatum and A. flavus and F. oxysporium had the lowest frequency of occurrence (11.11%). This Bacillus subtilis, Bacillus megaterium, Pseudomona aeroginosa, Aspergilus niger and Aspergilus flavus, showed great potential to withstand, tolerate and degrade spent engine oil (SEO), hence can used for biodegradation of hydrocarbon.
Keywords
Microorganism, Soil, Contamination
References
[01] Otobong B. I. and Victoria F. E., (2017). Effect of Spent Engine Oil Discharge on Soil Properties in Selected Automobile Workshop in Calabar, Cross River State, Nigeria. International Journal of Innovative Science, Engineering and Technology, 4 (2348-7968).
[02] Akpabio, G. T, Udoinyang, I. E, and Basil, T. S. (2017) Effect of Used Motor Oil Contamination on Geotechnical properties of clay soil in Uyo-Akwa Ibom. International Journal of Natural Sciences Research. 5, (2), 22-30.
[03] Nwachukwu, M. A., Feng, H. and Alinor, J. (2010). Assessment of heavy metals pollution in soils and their implication with and around mechanic village‖. International Journal of Environmental Science Technology 7 (2), 347-358.
[04] Adu, A. A., Aderinola, O. J and Kusemiju, V. (2015). Comparative Effects Of Spent Engine Oil And Unused Engine Oil On The Growth And Yield Of Vigna Unguiculata (Cowpea). International Journal of Science and Technology 3 (4) 3-6.
[05] Musa O. I., Ijah U. J. J & Abioye O. P (2019). Phytoremediation of Kerosene Polluted Soil with Cyanodon dactylon and Gomphrena celosioides, Book of Abstract, Nigeria Society for Microbiology (42nd NSM Conference). Crawford University, Igbesa, Ogun State, Pp 137.
[06] Niger State Bureau of Statistics, (2012). Niger State Agricultural Statistics. Minna: Niger State, NGA, Niger state Bureau of Statistics.
[07] Ijah, U. J. J., Safiyan, U. H., and Abioye, O. P. (2008). Comparative study of biodegradation of crude oil in soil amended with chicken droppings and NPK fertilizer. Science World Journal, 3 (2), 63-67.
[08] Holt, J. G., Krieg, N. R., Sneath, P. H. A and Williams, S. T. (1994). Beygey’s Manual of Determinative Bacteriology, 9th Edition Lippincott, Williams and Wilkins: Baltimore.
[09] Cheesbrough, M. (2006). Biochemical tests to identify bacteria. District Laboratory Practice in Tropical Countries. 2nd Edition., Cambridge University Press, Cambridge, UK. 62-70.
[10] Chukwura, E. I., Ojiegbu, N. M. and Nwankwegu, A. S. (2016). Hydrocarbon Degradation Potential of Fungi Associated with Oil-Contaminated Soil from Selected Mechanic Workshop in Awka, Anambra State, Nigeria. Frontiers in Environmental Microbiology, 2 (6), 38-44.
[11] Cowan, S. T., and Steel, K. J. (1974). Manual for the Identification of Medical Bacteria, 2nd Edition. Cambridge University Press, Cambridge, 5-10.
[12] Nagamani, A., Kunwar, I. K., & Manohharacharcy, C. (2006). Handbook of soil Fungi, IK International, New Delhi.
[13] Zajic, E. and Supplisson, B. (1972). Emulsification Degradation of “Bunker C” Fuel oil by Microoganisms. Biotechnology Bioengineering, 14: 331-343.
[14] Ijah, U. J. J. and Antai, S. P. (2003). The potential use of chicken-drop micro-organisms for oil spill remediation. Environmentalist, 23 (1), 89-95.
[15] Adesodun, J. K. and Mbagwu, J. S. C. (2008). “Biodegradation of waste-lubricating petroleum oil in a tropical alfisol as mediated by animal droppings,” Bioresource Technology, 99 (13), 5659–5665.
[16] Yeung A. T. (2010). Remediation Technologies for Contaminated Sites. In: Advances in Environmental Geotechnics. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-04460-1_25.
[17] Abioye, O. P. (2010). Biological remediation of hydrocarbon and heavy metals contaminated soil. Soil Contamination, 8, 142.
[18] Ijah, U. J. J. & Olarinoye, R. (2012). Biosurfactant production by Bacillus strains RO7 and R28 grown on diesel. Malaysian Journal of Science, 31 (2), 83-90.
[19] Ismail, H. Y., Ijah, U. J. J., Riskuwa, M. L. and Allamin, I. (2014). Biodegradation Of Spent Engine Oil By Bacteria Isolated From The Rhizosphere Of Legumes Grown In Contaminated Soil. International Journal Of Environment, 3 (2), 63-75.
[20] Abioye O. P., Ijah U. J. J., Aransiola S. A., Auta S. H., & Ojeba M. I. (2021). Bioremediation of toxic pesticides in soil usung microbial products. In: Prasad R., Nayak S. C., Kharwar R. N., Dubey N. K, (eds) Mycoremediation and Environmental Sustainability. Fungal Biology. Springer, Cham. http://doi.org/10.1007/978-3-030-54422-5_1. Pp 1-34.
[21] Oluwafemi A. O., Ramat O. Raji, Suzan K. Okeke, Innocent O. M., Gift N. C. & Japhet G. Yakubu (2021). Potential of fungi isolated from diesel contaminated soil to degrade diesel. Tanzania Journal of Science 47 (1): 47-56.
[22] Chikere, C. B., Okpokwasili G. C. & Chikere (2009). Bacterial diversity in tropical crude oil polluted soil undergoing bioremediation. African Journal of Biotechnology, 8 (11), 2535-2540.
[23] Aransiola, S. A., Ijah, U. J. J., Abioye, O. P., and VictorEkwebelem, M. O. (2021). ANAMMOX in Wastewater Treatment. In: Maddela N. R., García Cruzatty L. C., Chakraborty S. (eds) Advances in the Domain of Environmental Biotechnology. Environmental and Microbial Biotechnology. Springer, Singapore. https://doi.org/10.1007/978-981-15-8999-7_15
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