Comparative Studies on Biodegradative Abilities of Pleurotus ostreatus and P. pulmonarius in Soils Contaminated with Crude and Used Engine Oils

Abstract

Crude and used engine oil degrading ability of two white rot fungi Pleurotus ostreatus and P. pulmonarius were investigated for six months. One hundred grams of sterilized soil moistened with 75% distilled water (w/v) were weighed into 9 × 9 × 4 cm (350 cm3) jam bottles and mixed thoroughly with bonny light crude oil and used engine oil at different concentrations (0%, 5%, 10%, 15%, 25% and 30%), separately. Each bottle was then inoculated with two agar plugs of a vigorously grown mycelium of P. ostreatus and P. pulmonarius using a sterile cork borer. The bottles were incubated at room temperature for 6 months. The mycelia-ramified waste was separated from soils and analysed for physicochemical parameters such as organic matter, carbon, nitrogen, phosphorus, potassium, pH and total hydrocarbon content, (THC) after drying. The organic carbon, nitrogen and phosphorus contents in contaminated and inoculated soils were increased after six months. However, decrease in potassium, pH and THC occurred in these soils after the period of investigation. P. ostreatus reduced the initial THC to 8% and 9% in soils contaminated with 20% of crude and engine oils, respectively, which was lower than that of P. pulmonarius. The two white rot fungi could be exploited in bioremediation of soils contaminated with bonny light crude and used engine oils.

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Ekundayo, F. (2014) Comparative Studies on Biodegradative Abilities of Pleurotus ostreatus and P. pulmonarius in Soils Contaminated with Crude and Used Engine Oils. Advances in Microbiology, 4, 849-855. doi: 10.4236/aim.2014.412094.

Conflicts of Interest

The authors declare no conflicts of interest.

References

[1] Adenipekun, C.O. and Lawal, Y. (2011). Mycoremediation of Crude Oil and Palm Kernel Contaminated Soils by Pleurotus pulmonarius Fries (Quelet). Nature and Science, 9, 125-131.
[2] Minai-Tehrani, D. and Herfatmanesh, A. (2007) Biodegradation of Aliphatic and Aromatic Fractions of Heavy Crude Oil-Contaminated Soil: A Pilot Study. Bioremediation Journal, 11, 71-76.
http://dx.doi.org/10.1080/10889860701351589
[3] Isikhuemhen, O.S., Anoliefo, G. and Oghale, O. (2003) Bioremediation of Crude Oil Polluted Soil by the White Rot Fungus, Pleurotus tuber-regium (fr) Sing. Environmental Science and Pollution Research, 10, 108-112. http://dx.doi.org/10.1065/espr2002.04.114
[4] Hadibarata, T. and Tachibana, S. (2009) Microbial Degradation of Crude Oil by Fungi Pre-Grown on Wood Meal. In: Obayashi, Y., Isobe, T., Subramanian, A., Suzuki, S. and Tanabe, S., Eds., Interdisciplinary Studies on Environmental Chemistry—Environmental Research in Asia, Terrapub, Tokyo, 317-322.
[5] Adenipekun, C.O. and Ishikhuemhen, O.S. (2008) Bioremediation of Engine Oil Polluted Soil by the Tropical White Rot Fungus, Lentinus squaorrosulus Mont (Singer). Pakistan Journal of Biological Science, 11, 1634-1637. http://dx.doi.org/10.3923/pjbs.2008.1634.1637
[6] Bijofp, G. (2003) Fungal Bioremediation. Bioremediation Journal, 7, 117-128.
[7] Baldrian, P.C., der Viesche, C., Gabriel, S., Nerud, F. and Zadrazil, F. (2000) Influence of Cadmium and Mercury on Activities of Lignolytic Enzymes and Degradation of Polycyclic Aromatic Hydrocarbons by Pleurotus ostreatus in Soil. Applied and Environmental Microbiology, 66, 2471-2478.
http://dx.doi.org/10.1128/AEM.66.6.2471-2478.2000
[8] AOAC (2005) Association of Official Analytical Chemists: Methods of Analysis. Washington D.C.
[9] Bates, R.A. (1954) Electrometric Determination. John Wiley Sons, Inc., New York.
[10] Aislabie, J., Mcleod, N. and Fraser, R. (1998) Potential for Biodegradation of Hydrocarbons in Soil from the Ross Dependency; Antartica. Applied Microbiology and Biotechnology, 49, 210-214.
http://dx.doi.org/10.1007/s002530051160
[11] Leahy, J.G. and Colwell, R.R. (1990) Microbial Degradation of Hydrocarbons in the Environment. Microbiological Reviews, 54, 305-315.
[12] Adenipekun, C.O. and Fasidi, I.O. (2005) Bioremediation of Oil-Polluted Soil by Lentinus subnudus, a Nigerian White-Rot Fungus. African Journal of Biotechnology, 4, 796-798.
[13] Adenipekun, C.O. and Omoruyi, O.M. (2008) Bioremediation of Polluted Soil by Pleurotus Ostreatus. Nigerian Journal of Botany, 21, 274-279.
[14] Bennet, J.W., Wunch, K.G. and Faison, B.D. (2002) Use of Fungi in Biodegradation. In: Hurst, C.J., Ed., Manual of Environmental Microbiology, ASM Press, Washington, DC, 960-971.
[15] Ogbo, E.M. and Okhuoya, J.A. (2009) Effect of Crude Oil Contamination on the Yield and Chemical Composition of Pleutotus tuber-regium (fr.) Singer. African Journal of Food Science, 3, 323-327.
[16] Pointing, S.B. (2001) Feasibility of Bioremediation by White-Rot Fungi. Applied Microbiology and Biotechnology, 57, 20-33.
[17] Sorkoh, N.A., Radwan, S.S., EI-Nems, I.N. and EI-Desouky, A.F. (1997) A Feasibility Study on Seeding as a Bioremediation Practice for the Oily kuwaiitii Desert. Journal of Applied Microbiology, 83, 352-358.
[18] George-Okafor, U., Tasie, F. and Muotoe-Okafor, F. (2009) Hydrocarbon Degradation Potentials of Indigenous Fungal Isolates from Petroleum Contaminated Soils. Journal of Physical and Natural Sciences, 3, 1-6.
[19] Bogan, B.W. and Lamar, R. (1996) Polycyclic Aromatic Hydrocarbon Degrading of Phanerochaete Chrysosporium HHB-1625 and Its Extra Cellular Ligninolytic Enzymes. Applied and Environmental Microbiology, 62, 1597-1603.

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