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Comparative chemical analysis, mutagenicity, and genotoxicity of Petroleum refinery wastewater and its contaminated river using prokaryotic and eukaryotic assays

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Abstract

Concern on the toxicity of final wastewater generated by the petroleum refining industry has increased in recent years due to the potential health threats associated with their release into the waterways. This study determined the mutagenic and genotoxic potential of petroleum refinery wastewater and a receiving river using the Ames fluctuation test on Salmonella typhimurium strains TA100 and TA98, SOS chromotest on Escherichia coli PQ37, and piscine peripheral micronucleus (MN) assay. Analyses of the physicochemical parameters, heavy metal, and organic contents of the samples were also performed. Ames test result showed that the two tested samples were mutagenic with TA100 strain as the more responsive strain for both the refinery wastewater and the river sample in terms of the calculated mutagenic index. A similar result was obtained in the SOS chromotest; however, the E. coli PQ37 system recorded a slightly higher sensitivity for detecting genotoxins than the Salmonella assay in the two samples. MN data showed induction of a concentration-dependent significant (p < 0.05) increase in the frequency of MN by both samples when compared with the negative control. Generally, the refinery wastewater induced the highest mutagenicity and genotoxicity compared to the river sample in the three assays used. Haemoglobin, platelets, red blood cells, mean corpuscular volume, total white blood cells, heterophils, haematocrit, and eosinophils reduced significantly with increased lymphocytes, basophils, mean corpuscular haemoglobin, and mean corpuscular haemoglobin concentration in fishes exposed to both samples. Total petroleum hydrocarbon, benzene, toluene, phenol index, polycyclic aromatic hydrocarbons, cadmium, mercury, nickel, lead, and vanadium contents analysed in the samples were believed to be responsible for the observed genotoxicity and mutagenicity. The findings of this study revealed that petroleum refinery wastewater is a potential mutagenic and genotoxic risk to the environment.

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References

  • Abdel-Massih RM, Melki PN, Afif C, Daoud Z (2013) Detection of genotoxicity in hospital wastewater of a developing country using SOS chromotest and Ames fluctuation test. J Environ Engineer Ecol Sci 1323:2–4

    Google Scholar 

  • Abdel-Shafy HI, Mansour MSM (2016) A review on polycyclic hydrocarbons: Source, environmental impact, effect on human health and remediation. Egyptian J Petrol 25(1):107–123

    Article  Google Scholar 

  • Alabi AO, Esan EB, Duru C, Oyedele P, Salihu GR (2014) Mutagenicity of automobile workshop soil leachate and tobacco industry wastewater using the Ames Salmonella fluctuation and the SOS chromotests. Toxicol Ind Hlth 1177:074–082

    Google Scholar 

  • Alabi OA, Bakare AA (2017) Genetic damage induced by electronic waste leachates and contaminated underground water in two prokaryotic systems. Toxicol Mechan Mthds 27(9):657–665

    Article  Google Scholar 

  • Alabi OA, Adeoluwa YM (2021) Mutagenicity and genotoxicity of water boiled in aluminum pots of different duration of use using SOS chromotest and Ames fluctuation test. Toxicol Res 10(4):771–776

    Article  Google Scholar 

  • Alabi OA, Unuigboje MA, Olagoke DO, Adeoluwa YM (2021) Toxicity associated with long term use of aluminum cookware in mice: A systemic, genetic and reproductive perspective. Mutat Res – Genetic Toxicol Environ Mutagen 861–862: 503296.

  • Alabi OA (2021) Immediate and Residual Haematotoxicity in Mice Exposed to Wastewater from a Cocoa Processing Industry. Ann Sci Technol - A 6(2):14–21

    Article  Google Scholar 

  • Alghamdi MA, Alam MS, Stark C (2015) Urinary metabolites of polycyclic aromatic hydrocarbons in Saudi Arabian schoolchildren in relation to sources of exposure. Environ Res 140:495–501

    Article  Google Scholar 

  • American Fisheries Society (2004) Guidelines for the use of fishes in research. Copyright by the American Fisheries Society, Bethesda, MD. 1–57. Available on the internet: www.fisheries.org/afs/publicpolicy/guidelines 2004.

  • APHA, AWWA, WPCF (2005) Standard Methods for Examination of Water and Wastewater. New York. 21th ed.

  • Aremu D, Olawuyi F, Metshitsuka S, Sridhar K (2002) Heavy metal analysis of groundwater from Warri. Nigeria Int J Environ Health Res 12:61–72

    Google Scholar 

  • Ayoola SO, Adejumobi KO, Adamson OH (2014) Haematological indices and enzymatic biomarker of black jaw tilapia Sarotherodonmelanotheron from Lagos Lagoon. Agrosearch 141:62–75

    Article  Google Scholar 

  • Balabani D, Filipi M, Klemen AK (2017) Raw and biologically treated paper mill wastewater effluents and the recipient surface waters: cytotoxic and genotoxic activity and the presence of endocrine disrupting compounds. Sci Total Environ 574:78–89

    Article  Google Scholar 

  • Bay S, Jones BH, Schiff K, Washburn L (2003) Mar Environ Res 56:205–223

    Article  Google Scholar 

  • Blaxhall PC, Daisley KW (1973) Routine haematological methods for use with fish blood. J Fish Biol 5:771–781

    Article  Google Scholar 

  • Cavas T, Ergene-Gozukara S (2003) Evaluation of the genotoxic potential of lambda-cyhalothrin using nuclear and nucleolar biomarkers on fish cells. Mutat Res 534(1–2):93–99

    Article  Google Scholar 

  • Cheesbrough M (2006) District Laboratory Practice in Tropical Countries. Part 2. Cambridge University Press. 143–157.

  • Concawe (1999) Best available techniques to reduce emissions from refineries. Report No. 99/01. Brussels: Concawe.

  • Daflon SDA, Guerra IL, Reynier MV, Cerqueira AC, Botta CR, Campos JC (2017) Toxicity identification and evaluation (TIE) of a petroleum refinery wastewater. J Environ Sci Hlth Part A 52:842–848. https://doi.org/10.1080/10934529.2017.1312186

    Article  Google Scholar 

  • Doudoroff P (1956) Some experiments on the toxicity of complex cyanides to fish. Sew Indus Wastes 28:1020–1040

    Google Scholar 

  • Dutta SK (1999) Study of the physico-chemical properties of effluent of the paper mill that affected the paddy plants. J Environ Pollut 6(2):181–188

    Google Scholar 

  • Egborge ABM (1995) Water Pollution in Nigeria. Ben Miller Books. Nig. ltd Warri, Biodiversity and Chemistry of Warri River

    Google Scholar 

  • Emory E, Pattole R, Archiobold E, Bayorn M, Sung F (2001) Neurobehavioral effects of low level exposure in human neonates. Am J Obstet Gynecol 181:5–11

    Google Scholar 

  • Frölich A, Würgler FE (1990) Drosophila wing-spot test: improved detectability of genotoxicity of polycyclic aromatic hydrocarbons. Mutat Res 234:71–80

    Article  Google Scholar 

  • Gamboa RT, Gamboa AR, Bravo AH, Ostrosky WP (2008) Genotoxicity in child populations exposed to Polycyclic Aromatic Hydrocarbons (PAHs) in the air from Tabasco, Mexico. Int J Environ Res Public Health 5:349–355

    Article  Google Scholar 

  • Ghosh P, Thakur IS, Kaushik A (2017) Bioassays for toxicological risk assessment of landfill leachate: a review. Ecotoxicol Environ Saf 141:259–270

    Article  Google Scholar 

  • Heddle JA, Cimino MC, Hayashi M, Romagna F, Shelby MD, Tucker JD, Vanparys P, MacGregor JJ (1991) Micronuclei as an index of cytogenic damage: past, present and future. Environ Mol Mutagen 18:277–291. https://doi.org/10.1002/em.2850180414

    Article  Google Scholar 

  • Hemachandra CK, Pathiratne A (2017) Combination of physico-chemical analysis, Allium cepa test system and Oreochromis niloticus erythrocyte based comet assay/nuclear abnormalities tests for cyto-genotoxicity assessments of treated effluents discharged from textile industries. Ecotoxicol Environ Saf 131:54–64

    Article  Google Scholar 

  • Hoshina MM, Marin-Morales MA (2010) Evaluation OF the Genotoxicity of Petroleum Refinery Effluents Using the Comet Assay in Oreochromisniloticus (Nile Tilapia). J Brazil Soc Ecotoxicol 5(1):75–79. https://doi.org/10.5132/jbse.2010.01.012

    Article  Google Scholar 

  • Hoshina MM, Angelis D, Marin-Morales MA (2008) Induction of micronucleus and nuclear alterations in fish (Oreochromisniloticus) by a petroleum refinery effluent. Mutat Res 656(1–2):44–48. https://doi.org/10.1016/j.mrgentox.2008.07.004

    Article  Google Scholar 

  • Kahlon SK, Sharma G, Julka JM, Kumar A, Sharma S, Stadler FJ (2018) Impact of heavy metals and nanoparticles on aquatic biota. Environ Chem Lett 16:919–946

    Article  Google Scholar 

  • K Khatoon A Malik 2021 Cyto-Genotoxic Potential of Petroleum Refinery Wastewater Mixed with Domestic Sewage Used for Irrigation of Food Crops in the Vicinity of an Oil Refinery Heliyon 7 e08116

  • Legault R, Blaise C, Trottier S, White PA (1996) Detecting genotoxic activity in industrial effluents using the SOS Chromotest microplate assay. Environ Toxicol Wat Qual 11:151–165

    Article  Google Scholar 

  • Magdolenova Z, Collins A, Kumar A, Dhawan A, Stone V, Dusinska M (2014) Mechanisms of genotoxicity; a review of in vitro and in vivo studies with engineered nanoparticles. Nanotoxicol 8(3):233–278

    Article  Google Scholar 

  • Maron DM, Ames BN (1983) Revised methods for the Salmonella mutagenicity test. Mutat Res 113:173–215

    Article  Google Scholar 

  • Maskaoui K, Hu Z (2009) Contamination and ecotoxicology risks of polycyclic aromatic hydrocarbons in Shantou coastal waters, China. Bull Environ Contam Toxicol 82:172–178

    Article  Google Scholar 

  • Maslowska KH, Makiela-Dzbenska K, Fijalkowska IJ (2015) Suppression of the E. coli SOS response by dNTP pool changes. Nucleic Acids Res 43(8): 4109–4120.

  • Mekkawy IA, Mahmoud UM, Hana MN, Sayed AE (2019) Cytotoxic and hemotoxic effects of silver nanoparticles on the African Catfish, Clariasgariepinus (Burchell, 1822). Ecotoxicol Environ Saf 171:638–646

    Article  Google Scholar 

  • Mersch-Sundermann V, Rosenkranz HS, Klopman G (1992) Structural basis of the genotoxicity of polycyclic aromatic hydrocarbons. Mutagenesis 7:211–218

    Article  Google Scholar 

  • Metcalf X, Eddy X (2003) Wastewater engineering: Treatment and reuse. In: Wastewater engineering, treatment, disposal and reuse. Techobanoglous G, Burton FL and Stensel HD (Editors), 4th edition. New Delhi, India: Tata McGraw - Hill Publishing Company Limited.

  • Monarca S, Pasquini R, Arcaleni P (1985) Detection of mutagens in unconcentrated and concentrated drinking water supplies before and after treatment using microscale fluctuation test. Chemosphere 14:1069–1080

    Article  Google Scholar 

  • National Environmental Standards and Regulation Enforcement Agency (NESREA) (2009) (Federal Republic of Nigeria Official Gazette), National Environmental (Sanitation and Waste Control). Federal Government of Nigeria Printer, Abuja, Nigeria, 2009; FGP 112/102009/L000 (OL54). No.60 (96); pp. 1057–1102.

  • Nduka JK, Orisakwe EO (2009) Effect of Effluents from Warri Refinery & PetrochemicalCompany (WPRC) on water and soil qualities of “Contigious Host” and impact on communities of Delta State, Nigeria. Open Environ Pollut Toxico J 1:11–17

    Article  Google Scholar 

  • Neri M, Ugolini D, Bonassi S, Fucic A, Holland N, Knudsen LE (2006) Children’s exposure to environmental pollutants and biomarkers of genetic damage II. Results of a comprehensive literature search and meta-analysis. Mutat Res 612:14–18

    Article  Google Scholar 

  • Okereke JN, Ogidi OI, Obasi KO (2016) Environmental and health impact of industrial waste water effluents in Nigeria. Internat J Adv Res Biol Sci 3(6):55–67

    Google Scholar 

  • Quillardet P, Hofnung M (1985) The SOS Chromotest, a colorimetric bacterial assay for genotoxins: procedures. Mutat Res 147:65–78

    Article  Google Scholar 

  • Radelyuk I, Tussupova K, Klemeš JJ, Persson KM (2021) Oil refinery and water pollution in the context of sustainable development: Developing and development countries. J Clean Prod 302:126987. https://doi.org/10.1016/j.jclepro.2021.126987

    Article  Google Scholar 

  • Rasheed RO, Saleh LIF (2016) Evaluation of Some Heavy Metals from Water and Soil of Bazian Oil Refinery within Sulaimani Governorate. IKR.

  • Rehulka J, Adamec V (2004) Red blood cell Indices for rainbow trout (Oncorhynchus mykiss Walbaum) reared in cage and raceway culture. ACTA Vet Brno 73:105–114

    Article  Google Scholar 

  • Tisler T, Zagorc-Koncan J, Ros M, Cotman M (1999) Biodegradation and toxicity of wastewater from industry producing mineral fibres for thermal insulation. Chemosphere 38:1347–1352

    Article  Google Scholar 

  • Tuntawiroon J, Mahidol CH, Navasumrit P, Autrup PH, Ruchirawat M (2007) Increased health risk in Bangkok children exposed to polycyclic aromatic hydrocarbons from traffic related sources. Carcinogenesis 28:816–822

    Article  Google Scholar 

  • U.S. Environmental Protection Agency. (1999) Compendium of Methods for the Determination of Toxic Organic Compounds in Ambient Air. Compendium Method TO-13A, Determination of Polycyclic Aromatic Hydrocarbons (PAHs) in Ambient Air Using Gas Chromatography/Mass Spectrometry (GC/MS). Center for Environmental Research. Information Office of Research and Development. Second Edition. Cincinnati, OH: U.S. Environmental Protection Agency. p. 45268.. EPA/625/ R96/010b.

  • Udroiu I (2006) The micronucleus test in piscine erythrocytes. Aquatic Toxicol 79:201–204. https://doi.org/10.1016/j.aquatox.2006.06.013

    Article  Google Scholar 

  • United State Environmental Protection Agency (USEPA) (2009) Drinking water contaminants. Washington, DC, USA, 2009. Available online: http://water.epa.gov/drink/contaminants/ index.cfm#List (accessed on 5 February 2021).

  • Varjani SJ, Gnansounou E, Pandey A (2017) Comprehensive review on toxicity of persistent organic pollutants from petroleum refinery waste and their degradation by microorganisms. Chemosphere 188:280–291. https://doi.org/10.1016/j.chemosphere.2017.09.005

    Article  Google Scholar 

  • Walker GC (1987) The SOS response of Escherichia coli. In: Neidhardt FC, Ingraham JL, Magasanik B, Low KB, Schaechter M, Umbarger HE (eds) Escherichia coli and Salmonella typhimurium, Cellular and Molecular Biology. American Society for Microbiology, Washington, pp 1346–1357

    Google Scholar 

  • Whale GF, Hjort M, Di Paolo C, Redman AD, Postma JF, Legradi J, Leonards PEG (2022) Assessment of oil refinery wastewater and effluent integrating bioassays, mechanistic modelling and bioavailability evaluation. Chemosphere 287:132146

    Article  Google Scholar 

  • Wieczerzak M, Namieśnik J, Kudłak B (2016) Bioassays as one of the Green Chemistry tools for assessing environmental quality: A review. Environ Inter 94:341–361. https://doi.org/10.1016/j.envint.2016.05.017

    Article  Google Scholar 

  • Wokoma OAF, Edori OS (2017) Heavy metals content of an oily wastewater effluent from an oil firm at the point of discharge. Int J Chem Pharma Tech 2(4):154–161

    Google Scholar 

  • Woryi JT, Ebere N, Ekweozor IKE, Moslen M (2017) Acute toxic effects of petroleum refinery effluents on fingerlings of Tilapia Oreochromisniloticus and Clariasgariepinus Catfish. J Toxic Dig 1(2):148–159

    Google Scholar 

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The author was responsible for the study conception, design, material preparation, data collection, and analysis. The author read and approved the final manuscript.

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Correspondence to Okunola Adenrele Alabi.

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Alabi, O.A. Comparative chemical analysis, mutagenicity, and genotoxicity of Petroleum refinery wastewater and its contaminated river using prokaryotic and eukaryotic assays. Protoplasma 260, 89–101 (2023). https://doi.org/10.1007/s00709-022-01763-0

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