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Effect of heavy metals on toxicogenetic damage of European eels Anguilla anguilla

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Abstract

Aquatic organisms are exposed to a variety of contaminants such as heavy metals introduced into the environment as a consequence of anthropogenic activities that usually cause genotoxic damage in aquatic organisms. DNA damage biomarkers for fish species detect genotoxic parameters for ecological risk assessment. In the present study, the effect of heavy metals (Cd, Cr, Cu, Fe, Ni, Pb, Zn, Co, and Mn) on DNA damage of Anguilla anguilla was examined by comet assay at reference site and three different sampling sites of the Orontes River. The relative mean heavy metal concentrations in water column were in the order of Fe>Cr>Pb>Zn>Ni>Cu>Mn>Cd>Co in all the sampling sites. Cr, Cd, and Pb concentrations at all sampling sites were above the values allowed by the EPA (1999, 2016). With these results, negative effects of Cr, Cd, and Pb appeared on ecosystem health. The comet assay showed a higher level of DNA damage in the gill cells in comparison with the liver cells of A. anguilla. The highest level of DNA damage as %T-DNA, tail moment, and tail migration in gill cells were 20.007 ± 1.744 %; 2.899 ± 0.341 μm, and 12.383 ± 01.040 TMi and 20.172 ± 1.944 %, 2.559 ± 0.265 μm, and 10.763 ± 0.910 TMi at Site 2 and Site 3, respectively. The correlations between heavy metals and DNA damage parameters revealed that both Cu and Co in water showed significant negative correlations (p < 0.05) with DNA damage levels. Consequently, this study revealed the genotoxic damage of A. anguilla due to pollution in Orontes River and lead to the better understanding of genotoxicity and heavy metal relationships.

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References

  • Anderson MR, Scruton DA, Williams UP, Payne JF (1995) Mercury in fish in the Smallwood Reservoir, Labrador, twenty one years after impoundment. Water Air Soil Pollut 80(1–4):927–930

  • APHA (2005) Standard methods for the examination of water and wastewater analysis 21st edition. American Public Health Association WEF, Washington

    Google Scholar 

  • Bo L, Wang D, Li T, Li Y, Zhang G, Wang C, Zhang S (2015) Accumulation and risk assessment of heavy metals in water sediments and aquatic organisms in rural rivers in the Taihu Lake region China. ESPR 22(9):6721–6731

    CAS  Google Scholar 

  • Bonanno G, Giudice RL (2010) Heavy metal bioaccumulation by the organs of Phragmites australis (common reed) and their potential use as contamination indicators. Ecol Indic 10(3):639–645

    Article  CAS  Google Scholar 

  • Boyd CE (1990) Water quality in ponds for aquaculture. Birmingham Publishing Co, Birmingham

    Google Scholar 

  • Butrimavičienė L et al. (2018) Environmental genotoxicity and risk assessment in the Gulf of Riga (Baltic Sea) using fish bivalves and crustaceans, Environment Sci Pol 1-11

  • Çalıskan E (2005) Asi Nehri’nde su sediment ve Karabalık’ta Ağır Metal Birikiminin Araştırılması Mustafa Kemal University Aquaculture Master Thesis Hatay, Turkey

  • Cavalcante DGSM, Martinez CBR, Sofia SH (2008) Genotoxic effects of roundup on the fish Prochilodus lineatus. Mutat Res 655:41–46

    Article  CAS  Google Scholar 

  • Chang LW, Magos L, Suzuki T (1996) Toxicology of metals. CRC Press Boca, Raton

    Google Scholar 

  • Colin N, Porte C, Fernandes D, Barata C, Padrós F, Carrassón M, Monroy M, Cano-Rocabayera O, de Sostoa A, Piña B, Maceda-Veiga A (2016) Ecological relevance of biomarkers in monitoring studies of macro-invertebrates and fish in Mediterranean rivers. Sci Total Environ 540:307–323

    Article  CAS  Google Scholar 

  • Comair FG, Scoullos M (2015) Orontes hydro-diplomacy: historical overview and Lebanon’s transboundary water treaties, Science diplomacy and transboundary water management The Orontes River case. UNESCO Publishing

  • Dekker W (2000) The fractal geometry of the European eel stock. ICES J Mar Sci J Conseil 57:109–121

    Article  Google Scholar 

  • EPA (1999) Environmental Protection Agency, National Recommended Water Quality Criteria-Aquatic Life Criteria.

  • EPA (2016) Environmental Protection Agency, National Recommended Water Quality Criteria

  • Faria M, Huertas D, Soto DX, Grimalt JO, Catalan J, Riva MC, Barata C (2010) Contaminant accumulation and multi-biomarker responses in field collected zebra mussels (Dreissena polymorpha) and crayfish (Procambarus clarkii) to evaluate toxicological effects of industrial hazardous dumps in the. Ebro River (NE Spain) Chemos 78(3):232–240

    CAS  Google Scholar 

  • Genc E et al (2008) Element concentrations in the swimbladder parasite Anguillicola crassus (nematoda) and its host the European eel Anguilla anguilla from Asi River (Hatay-Turkey). Environ Monit Assess 141:59–65

    Article  CAS  Google Scholar 

  • Götze H, Brähler E, Gansera L, Polze N, Köhler N (2014) Psychological distress and quality of life of palliative cancer patients and their caring relatives during home care. Support Care Cancer 22(10):2775–2782

    Article  Google Scholar 

  • Herranz-Jusdado V et al (2019) Comparison of European eel sperm cryopreservation protocols with standardization as a target. Aquacult. 498:539–544

    Article  CAS  Google Scholar 

  • Hong F, Wu C, Liu C, Wang L, Gao F, Yang F, Xu J, Liu T, Xie Y, Li X (2007) Direct evidence for interaction between lead ions and kidney DNA from silver crucian carp. Chemosphere 68:1442–1446

    Article  CAS  Google Scholar 

  • Hussain K et al. (2018) Monitoring and risk analysis of PAHs in the environment. Handb Environ Mater Manag 1-35

  • Jacoby D, Gollock M (2014) Anguilla anguilla, The IUCN red list of threatened species, Version 2014, 2

  • Jannuzzi AT, Alpertunga B (2016) Evaluation of DNA damage and DNA repair capacity in occupationally lead-exposed workers. Toxicol Ind Health 32(11):1859–1865

    Article  CAS  Google Scholar 

  • Jezierska B, Witeska M (2001) Accumulation of metals in fish, Metal toxicity to fish, Wydawnictwo Akademii Podlaskiej Siedlce Poland 51-82

  • Jomova K, Valko M (2011) Advances in metal-induced oxidative stress and human disease. Toxicology 283(2-3):65–87

    Article  CAS  Google Scholar 

  • Karakılçık Y, Erkul H (2002) Management of Asi River. Detay Publications, Ankara, p 356

    Google Scholar 

  • Kılıç E, Can MF (2017) Determination of spatiotemporal variations in heavy metal concentration through Orontes River. TURJAF 5(9):1086–1093

    Google Scholar 

  • Kim BJ et al (2002) New measurement of DNA repairs in the single-cell gel electrophoresis (comet) assay. Environ Mol Mutagen 40:50–56

    Article  CAS  Google Scholar 

  • Kurelec B (1993) The genotoxic disease syndrome. Mar Environ Res 35(4):341–348

    Article  Google Scholar 

  • Lenhardt M et al (2015) Integrated use of different fish related parameters to assess the status of water bodies, Sloven. Vet Res 52(1)

  • Lin AJ et al (2007) Oxidative stress and DNA damages induced by cadmium accumulation. J Environ Sci 19(5):596–602

    Article  CAS  Google Scholar 

  • Matos LA, Cunha ACS, Sousa AA, Maranhão JPR, Santos NRS, Gonçalves MMC, Dantas SMMM, Sousa JMC, Peron AP, Silva FCC, Alencar MVOB, Islam MT, Aguiar RPS, Melo-Cavalcante AAC, Bonecker CC, Junior HFJ (2017) The influence of heavy metals on toxicogenetic damage in a Brazilian tropical river. Chemosphere. 185:852–859

    Article  CAS  Google Scholar 

  • Mitchelmore CL, Chipman JK (1998) DNA strand breakage in aquatic organisms and the potential value of the comet assay in environmental monitoring. Mutat Res Fund Mol M 399(2):135–147

    Article  CAS  Google Scholar 

  • Monteiro V et al (2011) In vivo and in vitro exposures for the evaluation of the genotoxic effects of lead on the Neotropical freshwater fish Prochilodus lineatus. Aquat Toxicol 104(3-4):291–298

    Article  CAS  Google Scholar 

  • Nagarani N, Devi VJ, Kumaraguru AK (2012) Identification of DNA damage in marine fish Therapon jarbua by comet assay technique. J Environ Biol 33(4):699–703

    CAS  Google Scholar 

  • Nahlik AM, Blocksom KA, Herlihy AT, Kentula ME, Magee TK, Paulsen SG (2019) Use of national-scale data to examine human-mediated additions of heavy metals to wetland soils of the US. Environ Monit Assess 191(1):336–341

    Article  CAS  Google Scholar 

  • Nigro M, Frenzilli G, Scarcelli V, Gorbi S, Regoli F (2002) Induction of DNA strand breakage and apoptosis in the eel Anguilla anguilla. Mar Environ Res 54(3-5):517–520

    Article  CAS  Google Scholar 

  • Nigro M, Bernardeschi M, Costagliola D, Della Torre C, Frenzilli G, Guidi P, Lucchesi P, Mottola F, Santonastaso M, Scarcelli V, Monaci F, Corsi I, Stingo V, Rocco L (2015) n-TiO2 and CdCl2 co-exposure to titanium dioxide nanoparticles and cadmium: Genomic DNA and chromosomal damage evaluation in the marine fish European sea bass (Dicentrarchus labrax). Aquat Toxicol 168:72–77

    Article  CAS  Google Scholar 

  • Odemiş B, Sangün MK, Büyüktaş D (2007) Temporal variations in water quantity and quality of Orontes River Turkey. Asian J Chem 19(1):711–1723

    Google Scholar 

  • Oyagbemi AA et al (2015) Lack of reversal of oxidative damage in renal tissues of lead acetate-treated rats. Environ Toxicol 30(11):1235–1243

    Article  Google Scholar 

  • Pacheco M, Santos MA (2002) Biotransformation genotoxic and histopathological effects of environmental contaminants in European eel (Anguilla anguilla L.). Ecotoxicol Environ Saf 53(3):331–347

    Article  CAS  Google Scholar 

  • Picco SJ, Abba MC, Mattioli GA, Fazzio LE, Rosa D, de Luca JC, Dulout FN (2004) Association between Cu deficiency and DNA damage in cattle. Mutagenesis. 19(6):453–456

    Article  CAS  Google Scholar 

  • Ploetz DM, Fitts BE, Rice TM (2007) Differential accumulation of heavy metals in muscle and liver of a marine fsh (King Mackerel Scomberomorus cavalla Cuvier) from the Northern Gulf of Mexico USA. Bull Environ Contam Toxicol 78:124–127

    Article  Google Scholar 

  • Singh NP, McCoy MT, Tice RR, Schneider EL (1988) A simple technique for quantitation of low levels of DNA damage in individual cells. Exp Cell Res 175 (1):184–191

  • Taşdemir M, Göksu ZL (2001) Some water quality criteria of Asi River (Hatay), E.U. JFAS 18(1–2):55–64

    Google Scholar 

  • TEG (2015) Turkish Environmental Guidelines 2015 Publications of Turkish Foundation of Environment

  • Türkmen M, Çalışkan E (2011) Seasonal and Spatial Distributions of the Metals in the Water from the River Asi in Southern East Mediterranean Area of Turkey. Karadeniz Fen Bilimleri Dergisi 2(1):35–42

    Google Scholar 

  • US-EPA (2011) Environmental Protection Agency-US, Integrated risk information system.

  • Webster SM, del Camino D, Dekker JP, Yellen G (2004) Intracellular gate opening in Shaker K+ channels defined by high-affinity metal bridges. Nature 428(6985):864–868

    Article  CAS  Google Scholar 

  • Yılmaz AB, Doğan M (2008) Heavy metals in water and in tissues of himri (Carasobarbus luteus) from Orontes (Asi) River Turkey. Environ Monit Assess 144:437–444

    Article  Google Scholar 

  • Zhang Y et al (2007) Long-term toxicity effects of cadmium and lead on Bufo raddei tadpoles. Bull Environ Contam Toxicol 79:178–183.

  • Zhang B, Zheng X, Voznyy O, Comin R, Bajdich M, Garcia-Melchor M, Han L, Xu J, Liu M, Zheng L, Garcia de Arquer FP, Dinh CT, Fan F, Yuan M, Yassitepe E, Chen N, Regier T, Liu P, Li Y, de Luna P, Janmohamed A, Xin HL, Yang H, Vojvodic A, Sargent EH (2016) Homogeneously dispersed multimetal oxygen-evolving catalysts. Sci. 352(6283):333–337

    Article  CAS  Google Scholar 

Download references

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Correspondence to Funda Turan.

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Turan, F., Karan, S. & Ergenler, A. Effect of heavy metals on toxicogenetic damage of European eels Anguilla anguilla. Environ Sci Pollut Res 27, 38047–38055 (2020). https://doi.org/10.1007/s11356-020-09749-2

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