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The Toxicity of Organophosphates Insecticide in Cyprinus carpio and Effect on Antioxidant and Liver Function

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EN
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EN
This study’s gaol is to ascertain the impact of diazinon about the condition of common carp, a significant fish species used for food in aquaculture (Cyprinus carpio). The LC50 of diazinon after 96 h was 9.5 mg/L in C. carpio (78.8 ± 5 g in weight). The fish were divided into six tanks as two treatments in order to ascertain the long-term effects of diazinon (three tanks per treatment). They were subjected to diazinon (2.37 mg/L; 25% LC50-96 h concentration) and 0 (control) for 4 days, 14 days, and 28 days before blood biochemical assays were performed on samples taken. Dry-chemistry analyzer was used to determination the Liver Function enzyme, also SOD and CAT was estimated by use spectrophotometer. At day four and day fourteen, the plasma SOD activity of the diazinonexposed fish did not significantly decrease in comparison to the control group; however, after day twenty-eight, the plasma SOD activity of the diazinon-exposed fish significantly increased in comparison to the control group. Diazinon exposure and control report a significant increase in serum CAT activity. Diazinon exposure increased significantly in serum ALT, AST and ALP activity compared to the control group.
Twórcy
  • Faculty of Medical Sciences, Jabir Ibn Hayyan University for Medical and Pharmaceutical Sciences, 54001 Najaf, Iraq
  • College of Pharmacy, Jabir Ibn Hayyan University for Medical and Pharmaceutical Sciences, 54001 Najaf, Iraq
  • Department of Biology, College of Science, University of Babylon, 51015 Hillah, Iraq
  • Department of Medical Laboratory Techniques, Altoosi University College, 54001 Najaf, Iraq
Bibliografia
  • 1. Ahmad Z. 2011. Acute toxicity and haematological changes in common carp (Cyprinus carpio) caused by diazinon exposure. African Journal of Biotechnology, 10(63), 13852–13859. https://doi.org/10.5897/ajb11.1247
  • 2. Al-Ghanim K.A. 2012. Acute toxicity and effects of sub-lethal malathion exposure on biochemical and haematological parameters of Oreochromis niloticus. Scientific Research and Essays, 7(16), 1674–1680.
  • 3. Ali M., Mirvaghefi A., Asadi F. 2015. Effects of vitamin E, selenium and vitamin C on various biomarkers following oxidative stress caused by diazinon exposure in rainbow trout. Ege Journal of Fisheries and Aquatic Sciences, 32(3), 151–158.‏
  • 4. Al-Otaibi A.M., Al-Balawi H.F. A., Ahmad Z., Suliman E.M. 2018. Toxicity bioassay and sub-lethal effects of diazinon on blood profile and histology of liver, gills and kidney of catfish, Clarias gariepinus. Brazilian Journal of Biology, 79(2), 326–336. https://doi.org/10.1590/1519-6984.185408
  • 5. Algburi J.B., AL-Amari M.J.Y. 2023. The LC50 of Diazinon and sub-lethal concentration effect of it on hematological properties in Cyprinus Carpio fish. AIP Conference Proceedings, 2830(1), 278–291. https://doi.org/10.1063/5.0158014
  • 6. Banaee M., Sureda A., Mirvaghefi A.R. Ahmadi K. 2013. Biochemical and histological changes in the liver tissue of rainbow trout (Oncorhynchus mykiss) exposed to sub-lethal concentrations of diazinon. Fish Physiology and Biochemistry, 39(3), 489–501.
  • 7. Banaei M., Mir V.A.R., Rafei G.R., Majazi A.B. 2008. Effect of sub-lethal diazinon concentrations on blood plasma biochemistry. International Journal of Enviromental Research, 2(2), 189–198.
  • 8. Barkallah M., Ben Atitallah A., Hentati F., Dammak M., Hadrich B., Fendri I., Ayadi M.A., Michaud P., Abdelkafi S. 2019. Effect of Spirulina platensis biomass with high polysaccharides content on quality attributes of common Carp (Cyprinus carpio) and Common Barbel (Barbus barbus) fish burgers. Applied Sciences, 9(11), 2197–2208.
  • 9. Brontowiyono W., Jasim S.A., Mahmoud M.Z., Thangavelu L., Izzat S.E., Yasin G., Mohammad H.J., Mustafa Y.F., Balvardi M. 2022. Dietary (Macro-Algae, Sargassaceae) extract improved antioxidant defense system in diazionon-exposed common carp. Annals of Animal Science, 22(4), 1323–1331.
  • 10. Goth L. 1991. A simple method for determination of serum catalase activity and revision of reference range. Clinica Chimica Acta, 196(2–3), 143–151.
  • 11. Haider M.J., Rauf A. 2014. Sub-lethal effects of diazinon on hematological indices and blood biochemical parameters in Indian carp, Cirrhinus mrigala (Hamilton). Brazilian Archives of Biology and Technology, 57(6), 947–953. https://doi.org/10.1590/S1516-8913201402086
  • 12. Hassan M.A., Hozien S.T., Abdel Wahab M.M., Hassan A.M. 2022. Ameliorative effect of selenium yeast supplementation on the physio-pathological impacts ofchronic exposure to glyphosate and or malathion in Oreochromis niloticus. BMC Veterinary Research, 18(1), 1–19. https://doi.org/10.1186/s12917-022-03261-0
  • 13. Javed M., Ahmad I., Ahmad A., Usmani N., Ahmad M. 2016. Studies on the alterations in haematological indices, micronuclei induction and pathological marker enzyme activities in Channa punctatus (spotted snakehead) perciformes, channidae exposed to thermal power plant effluent. SpringerPlus, 5(1), 1–9.
  • 14. Kaur M., Jindal R. 2017. Oxidative stress response in liver, kidney and gills of Ctenopharyngodon idellus (Cuvier, Valenciennes) exposed to chlorpyrifos. MOJ Biology and Medicine, 1(4), 103–112.
  • 15. Kumar N., Krishnani K.K., Singh N.P. 2018. Comparative study of selenium and selenium nanoparticles with reference to acute toxicity, biochemical attributes, and histopathological response in fish. Environmental Science and Pollution Research, 25(9), 8914–8927.
  • 16. Kumar V., Sharma N., Sharma P., Pasrija R., Kaur K., Umesh M., Thazeem B. 2023. Toxicity analysis of endocrine disrupting pesticides on nontarget organisms: A critical analysis on toxicity mechanisms. Toxicology and Applied Pharmacology, 474(3), 16623–16635.‏
  • 17. Kreuz S., Fischle W. 2016. Oxidative stress signaling to chromatin in health and disease. Epigenomics, 8(6), 843–862.‏
  • 18. Korkmaz C., Dönmez A.E. 2017. Effects of diazinon on 17β-estradiol, plaAsma vitellogenin and liver and gonad tissues of common carp (Cyprinus carpio). Turkish Journal of Fisheries and Aquatic Sciences, 17(3), 629–640.
  • 19. Marklund S., Marklund G. 1974. Involvement of the Superoxide Anion Radical in the Autoxidation of Pyrogallol and a Convenient Assay for Superoxide Dismutase. European Journal of Biochemistry, 47(3), 469–474. https://doi.org/10.1111/j.1432-1033.1974.tb03714.x
  • 20. Mitchell D.G., Chapman P.M., Long T.J. 1987. Acute toxicity of Roundup and Rodeo herbicides to rainbow trout, chinook, and coho salmon. Bulletin of Environmental Contamination and Toxicology, 39(6), 1028–1035.
  • 21. Monteiro D.A., De Almeida J.A., Rantin F.T., Kalinin A.L. 2006. Oxidative stress biomarkers in the freshwater characid fish, Brycon cephalus, exposed to organophosphorus insecticide Folisuper 600 (methyl parathion). Comparative Biochemistry and Physiology Part C: Toxicology & Pharmacology, 143(2), 141–149.
  • 22. Murty A.S. 2018. Toxicity of pesticides to fish.CRC Press Taylor & Francis group, 1st Edition, 155.
  • 23. Narra M.R., Rajender K., Reddy R.R., Murty U.S., Begum G. 2017. Insecticides induced stress response and recuperation in fish: biomarkers in blood and tissues related to oxidative damage. Chemosphere, 168(2), 350–357.‏
  • 24. Nwani C.D., Nwamba H.O., Ejere V.C., Onyishi G.C., Oluah S.N., Ikwuagwu O.E., Odo G.E. 2015. Oxidative stress and biochemical responses in the tissues of African catfish Clarias gariepinus juvenile following exposure to primextra herbicide. Drug and Chemical Toxicology, 38(3), 278–285.
  • 25. Saha S., Saha N.C., Mukherjee D. 2018. Acute toxicity and behavioral alterations of Oligochaete Worm, Branchiura sowerbyi exposed to Diazinon. Journal Life Sciences Research, 8(2), 1–5.
  • ‏ 26. Sharma R., Jindal R. 2020. Assessment of cypermethrin induced hepatic toxicity in Catla catla: A multiple biomarker approach. Environmental Research, 184, 109359.‏
  • 27. Svoboda M., Luskova V., Drastichova J., Žlabek V. 2001. The effect of diazinon on haematological indices of common carp (Cyprinus carpio). Acta Veterinaria Brno, 70(4), 457–465.
  • 28. Vanderzwalmen M., Sánchez Lacalle D., Tamilselvan P., McNeill J., Delieuvin D., Behlouli K., Sloman K.A. 2022. The Effect of Substrate on Water Quality in Ornamental Fish Tanks.Animals, 12(19), 2665-2679.‏
  • 29. Winterbourn C.C. 2020. Biological chemistry of superoxide radicals. ChemTexts, 6(1), 1–13.
  • 30. Yonar S.M. 2019. Growth performance, haematological changes, immune response, antioxidant activity and disease resistance in rainbow trout (Oncorhynchus mykiss) fed diet supplemented with ellagic acid. Fish & Shellfish Immunology, 95(3), 391–398.
  • 31. Yancheva V., Georgieva E., Velcheva I., Iliev I., Stoyanova S., Vasileva T., Nyeste K. 2022. Assessment of the exposure of two pesticides on common carp (Cyprinus carpio Linnaeus) Are the prolonged biomarker responses adaptive or destructive? Comparative Biochemistry and Physiology Part C: Toxicology & Pharmacology, 261(2), 9446–9458.‏
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a3965b2b-ec8f-4c8d-bcd1-f36b5fa1afb6
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