146
Views
1
CrossRef citations to date
0
Altmetric
Research Article

Bioprospecting of potential petroleum hydrocarbon degraders using bacterial strains isolated from soils around transformer installation areas

, ORCID Icon & ORCID Icon
Received 03 May 2020, Accepted 21 Aug 2020, Published online: 10 Sep 2020

References

  • Abdulla, K. J., S. A. Ali, I. H. Gatea, N. A. Hameed, and S. K. Maied. 2019. Bio-degradation of crude oil using local bacterial isolates. IOP Conference Series: Earth and Environmental Science 388 (1):012081. doi:10.1088/1755-1315/388/1/012081.
  • Adebiyi, F. M., and M. O. Afedia. 2011. The ecological impact of used petrochemical oils on soil properties with special reference to physicochemical and total petroleum hydrocarbon contents of soils around automobile repair workshops. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 33 (16):1556–65. doi:10.1080/15567030903397883.
  • Adebusoye, S. A., M. O. Ilori, O. O. Amund, O. D. Teniola, and S. O. Olatope. 2007. Microbial degradation of petroleum hydrocarbons in a polluted tropical stream. World Journal of Microbiology & Biotechnology 23 (8):1149–59. doi:10.1007/s11274-007-9345-3.
  • Adebusoye, S. A., F. W. Picardal, M. O. Ilori, O. O. Amund, and C. Fuqua. 2008. Characterization of multiple novel aerobic polychlorinated biphenyl (PCB) -utilizing bacterial strains indigenous to contaminated tropical African soils. Biodegradation 19:145–59. doi:10.1007/s10532-007-9122-x.
  • Akhigbe, G. E., F. M. Adebiyi, and N. Torimiro. 2019. Analysis and hazard assessment of potentially toxic metals in petroleum hydrocarbon-contaminated soils around transformer installation areas. Journal of Health and Pollution 9 (24):1–18.
  • Ashikodi, A. O., and G. O. Abu. 2019. Hydrocarbon degradation potential of some hydrocarbon - utilizing bacterial species associated with Kenaf (Hibiscus cannabinus L.) plant. International Research Journal of Biological Sciences 8 (1):10–19.
  • Ashraf, M. A., M. J. Maah, and I. Yusoff. 2012. Chemical speciation and potential mobility of heavy metals in the soil of former tin mining catchment. Scientific World Journal 2012 (125608):1–11.
  • Awotoye, O. O., O. Ekanade, and O. O. Airouhudion. 2009. Degradation of the soil physicochemical properties resulting from continuous logging of Gmelina arborea and Tectona grandis plantations. African Journal of Agricultural Research 4 (11):1317–24.
  • Ayangbenro, A. S. 2017. Biodegradation of natural bitumen by Providencia stuartii isolated from heavy oil contaminated soil. Global NEST Journal 19 (2):353–58.
  • Bailey, S. 1986. The analysis of agricultural materials. In A manual of the analytical methods used by agricultural development and advisory services, 66–241, 3rd ed. London, UK: Her Majesty's Stationary Office.
  • Cheesbrough, M. 2006. District laboratory practice in tropical countries, part 2. 2nd ed. New York: Cambridge University Press.
  • Cipullo, S., G. Prpich, P. Campo, and F. Coulon. 2018. Assessing bioavailability of complex chemical mixtures in contaminated soils : Progress made and research needs. Science of the Total Environment Elsevier B.V., 615:708–23. doi:10.1016/j.scitotenv.2017.09.321.
  • Darma, U., N. Abd Aziz, S. Zulkefli, and M. Mustafa. 2016. Identification of phenanthrene and pyrene degrading bacteria from used engine oil contaminated soil. International Journal of Scientific & Engineering Research 7 (3):680–86.
  • Divya, U. K., A. Saranya, and R. Suganthi. 2018. Diesel hydrocarbons biodegradation by Myroide odoratimimus. World News of Natural Sciences 20:182–95.
  • Fuentes, S., V. Méndez, P. Aguila, and M. Seeger. 2014. Bioremediation of petroleum hydrocarbons : Catabolic genes, microbial communities, and applications. Applied Microbiology and Biotechnology 98 (11). doi: 10.1007/s00253-014-5684-9.
  • Gadd, G. M. 2010. Metals, minerals and microbes: Geomicrobiology and bioremediation. Microbiology 156:609–643.
  • Ghosal, D., S. Ghosh, T. K. Dutta, and Y. Ahn. 2016. Current state of knowledge in microbial degradation of Polycyclic Aromatic Hydrocarbons (PAHs): A review. Frontiers in Microbiology 7:1369.
  • Ghosh, P., M. T. Das, and I. S. Thakur. 2014. Mammalian cell line-based bioassays for toxicological evaluation of landfill leachate treated by Pseudomonas sp. ISTDF1. Environmental Science and Pollution Research 21:8084–94. doi:10.1007/s11356-014-2802-2.
  • Holt, J. G., N. R. Krieg, P. H. A. Sneath, J. T. Staley, and S. T. Williams. 1994. Bergey’s manual of determinative bacteriology. 9th ed. Baltimore: William and Wilkins.
  • Ibrahim, H. M. M. 2016. Biodegradation of used engine oil by novel strains of Ochrobactrum anthropi HM-1 and Citrobacter freundii HM-2 isolated from oil-contaminated soil. 3 Biotech 6 (2):226. doi:10.1007/s13205-016-0540-5.
  • Ismaeel, N., J. R. Furr, W. J. Pugh, and A. D. Russell. 1987. Hydrophobic properties of Providencia stuartii and other Gram‐negative bacteria measured by hydrophobic interaction chromatography. Letters in Applied Microbiology 5 (5):91–95. doi:10.1111/j.1472-765X.1987.tb01622.x.
  • Karthika, R., L. R. Gopinath, S. Archaya, and R. Bhuvaneswari. 2014. Isolation of diesel degrading bacteria, identification of Catechol gene and its biogas production. Journal of Environmental Science, Toxicology and Food Technology 8 (10):76–82. doi:10.9790/2402-081017682.
  • Khot, P. D., M. R. Couturier, A. Wilson, A. Croft, and M. A. Fisher. 2012. Optimization of matrix-assisted laser desorption ionization – Time of flight mass spectrometry analysis for bacterial identification. Journal of Clinical Microbiology 50 (12):3845–52. doi:10.1128/JCM.00626-12.
  • Krishnan, M., H. Subramanian, H. Dahms, P. Seeni, S. Gopalan, A. Mahalingam, and A. J. Rathinam. 2018. Biogenic corrosion inhibitor on mild steel protection in concentrated HCl medium. Scientific Reports 8 (2609):1–16. Springer US. doi:10.1038/s41598-018-20718-1.
  • Lee, S. S., J. E. Lim, S. A. M. A. El-azeem, B. Choi, S.-E. Oh, and Y. S. Ok. 2013. Waste and rapeseed residue heavy metal immobilization in soil near abandoned mines using eggshell waste and rapeseed residue. Environmental Science and Pollution Research 20:1719–26. doi:10.1007/s11356-012-1104-9.
  • Loretta, O., O. Samuel, G. Johnson, and S. Emmanuel. 2017. Comparative studies on the biodegradation of crude oil-polluted soil by pseudomonas aeruginosa and alternaria species isolated from unpolluted soil. Microbiology Research Journal International 19 (1):1–10. doi:10.9734/MRJI/2017/31918.
  • Meenakshisundaram, M., and C. Bharathiraja. 2014. Isolation and molecular identification of hydrocarbon degrading bacteria from oil contaminated soils from Tamilnadu. Indian Journal of Applied Research 4 (7):39–42. doi:10.15373/2249555X/July2014/10.
  • Nelson, D. W., and L. E. Sommers. 1996. Total carbon, organic carbon, and organic matter. In Methods of soil analysis. Part 3. Chemical methods, ed. C. A. Black, 961–1010. Madison, WI: Soil Science of America and American Society of Agronomy.
  • Nwinyi, O. C., A. Alade, I. R. Leo Akpan, and B. O. Oladele. 2011. Isolation and characterization of bacterial diversity from soils supplemented with electrical transformer fluids. South Asian Journal of Experimental Biology 1 (2):107–13.
  • Nwinyi, O. C., I. A. Kanu, A. Tunde, and K. A. Oluseyi. 2014. Characterization of diesel degrading bacterial species from contaminated tropical ecosystem. Brazilian Archives of Biology and Technology 57 (5):789–96. doi:10.1590/S1516-8913201402250.
  • Nwinyi, O. C., and V. F. Olutubo. 2014. Biodegradation of kerosene by soil bacterial species from contaminated site. Covenant Journal of Physical and Life Sciences 2 (1):14–23.
  • O’Hara, C. M., F. W. Brenner, and J. M. Miller. 2000. Classification, Identification and clinical significance of Proteus, Providencia and Morganella. Clinical Microbiology Reviews 13 (4):534–36. doi:10.1128/CMR.13.4.534.
  • Obuotor, T. M., A. O. Sakariyau, and B. S. Bada. 2016. Enhanced biodegradation of spent engine oil contaminated soil using organic wastes. Applied Environmental Research 38 (3):27–38. doi:10.35762/AER.2016.38.3.3.
  • Ojuederie, O. B., and O. O. Babalola. 2017. Microbial and plant-assisted bioremediation of heavy metal polluted environments: A review. International Journal of Environmental Research and Public Health 14 (12):1504. doi:10.3390/ijerph14121504.
  • Okoh, M. P., and C. U. Daniels. 2016. Exploration, mining and energy generation in Nigeria : Exposure to organo-chlorinated compound and other chemicals — Environmental and public health implications. Modern Environmental Science and Engineering 2 (2):100–10. doi:10.15341/mese(2333-2581)/02.02.2016/006.
  • Onuorah, S., M. Orji, and I. Obika. 2016. Microbial contamination of electrical power transformer oil obtained from Onitsha, Nigeria. Bioengineering and Bioscience 4 (2):24–28.
  • Panda, S. K., R. N. Kar, and C. R. Panda. 2013. Isolation and identification of petroleum hydrocarbon degrading microorganisms from oil contaminated environment. International Journal of Environmental Sciences 3 (5):1314–21.
  • Parthipan, P., E. Preetham, L. L. Machuca, P. K. S. M. Rahman, K. Murugan, and A. Rajasekar. 2017. Biosurfactant and degradative enzymes mediated crude oil degradation by bacterium bacillus subtilis A1. Frontiers in Microbiology 8:193. doi:10.3389/fmicb.2017.00193.
  • Pathak, H., and K. Bhatnagar. 2011. Alcaligenes-The 4T engine oil degrader bioremediation & biodegradation. Journal of Bioremediation & Biodegradation 2 (4):2–5. doi:10.4172/2155-6199.1000124.
  • Rani, M. S., K. V. Lakshmi, P. S. Devi, R. J. Madhuri, S. Aruna, G. Narasimha, and K. Venkateswarlu. 2008. Isolation and characterization of a chlorpyrifos-degrading bacterium from agricultural soil and its growth response. African Journal of Microbiology Research 2 (2):26–31.
  • Sawadogo, A., O. C. Harmonie, J. B. Sawadogo, A. Kaboré, A. S. Traoré, and D. Dianou. 2014. Isolation and characterization of hydrocarbon-degrading bacteria from wastewaters in Ouagadougou, Burkina Faso. Journal of Environmental Protection 5:1183–96. doi:10.4236/jep.2014.512115.
  • Thomas, G. W. 1996. Soil pH and soil acidity. In Methods of soil analysis: Part 3 chemical methods, book series, ed. D. L. Sparks, 475–89. Madison, WI: No. 5., SSSA and ASA.
  • Tiku, D., B. Asikong, and S. Idire. 2016. A study of bacteriological and physicochemical characteristics in soils of auto-mechanic and none auto-mechanic workshop soils from selected areas in calabar metropolis. British Microbiology Research Journal 16 (2):1–14. doi:10.9734/BMRJ/2016/23596.
  • Vieira, G. A. L., M. J. Magrini, R. C. Bonugli-Santos, M. V. N. Rodrigues, and L. D. Sette. 2018. Polycyclic aromatic hydrocarbons degradation by marine-derived basidiomycetes : Optimization of the degradation process. Brazilian Journal of Microbiology 49 (4):749–56. Sociedade Brasileira de Microbiologia. doi:10.1016/j.bjm.2018.04.007.
  • Vignesh, R., A. Arularasan, V. Gandhiraj, and C. R. Deepika. 2016. Isolation, identification and characterization of potential oil degrading bacteria from oil contaminated sites. International Research Journal of Engineering and Technology 3 (4):2503–08.
  • Walkley, A., and I. A. Black. 1947. Determination of organic matter in the soil by chromic acid digestion. Soil Science 63:251–64. doi:10.1097/00010694-194704000-00001.
  • Wanjohi, L., L. Mwamburi, E. Too, B. Aloo, and J. Kosgei. 2015. Isolation and identification of bacteria with bioremediation potential of oil spills in Lake Nakuru, Kenya. Asian Journal of Microbiology, Biotechnology and Environmental Sciences 17 (4):831–38.
  • Warren, J. W. 1986. Providencia stuartii: A common cause of antibiotic - resistant bacteriuria in patients with long-term indwelling catheters. Reviews of Infectious Diseases 8 (1):61–67. doi:10.1093/clinids/8.1.61.
  • Zdarta, A., W. Smulek, E. Pietraszak, E. Kaczorek, and A. Olszanowski. 2016. Hydrocarbons biodegradation by activated sludge bacteria in the presence of natural and synthetic surfactants. Journal of Environmental Science and Health, Part A 51 (14):1261–68. doi:10.1080/10934529.2016.1215194.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.