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Distribution and accumulation of elements (As, Cu, Fe, Hg, Mn, and Zn) in tissues of fish species from different trophic levels in the Danube River at the confluence with the Sava River (Serbia)

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Abstract

Pikeperch (Sander lucioperca), European catfish (Silurus glanis), common carp (Cyprinus carpio), and gobies (Neogobius gymnotrachelus, Neogobius melanostomus) were collected from the Danube River (Belgrade section), and samples of liver, muscle, or whole-body composites (in the case of gobies) were analyzed for As, Cu, Fe, Hg, Mn, and Zn with inductively coupled plasma optical spectrometry to find out if there was a correlation between accumulation of these elements in predatory and prey species, as well as in pairs of species with overlapping diets. Concentrations of all analyzed elements were either higher (Cu, Fe, Mn, Zn) in liver than in muscle, or equal (As, Hg), except for Hg in carp, which was higher in muscle. Mercury concentration in liver and muscle of predators (catfish, pikeperch) was significantly (<10−4) higher than in prey fishes (carp and gobies). The results indicate that Hg concentration was biomagnified through the food chain. Concentrations of As, Fe, and Hg in carp liver and gobies whole-body composite were similar, but carp had significantly (<10−4) higher values of Zn and Cu in liver. The regression analysis and trendline equations indicate that the concentrations of all tested elements, except for As in liver, and Mn and Fe in muscle, were similar in predatory fish (pikeperch and catfish), on one hand, and in prey fish (carp and gobies), on the other hand. Distinctly high Zn concentration in carp is very common in this species due to its physiology. Concentrations of Hg and Zn were higher than the maximum acceptable concentration due to the high pollution level in this section of the Danube River, accordingly posing a risk for the human consumption of these fish species.

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References

  • Abbasi K, Valipour AR (2006) Studying the Silurus glanis Linnaeus, 1758 food items in Anzali Lagoon. Pajouhesh va Sazandegi 66:14–24

    Google Scholar 

  • Al Sayegh Petkovšek S, Mazej Grudnik Z, Pokorny B (2012) Heavy metals and arsenic concentrations in ten fish species from the Šalek lakes (Slovenia): assessment of potential human health risk due to fish consumption. Environ Monit Assess 184:2647–2662

    Article  Google Scholar 

  • Al-Yousuf MH, El-Shahawi MS, Al-Ghais SM (2000) Trace metals in liver, skin and muscle of Lethrinus lentjan fish species in relation to body length and sex. Sci Total Environ 256:87–94

    Article  CAS  Google Scholar 

  • Andreji J, Stranai I, Massayi P, Valent M (2006) Accumulations of some metals in muscles in five fish species from lower Nitra River. J of Environ Sc and Health (Part A) 41:2607–2622

    Article  CAS  Google Scholar 

  • Babić-Mladenović M, Spasojević M, Damjanović M (2003) Sedimentation upstream from the Iron Gate dam: research needs expanding to the Danube Basin. ICCORES-UNESCO Workshop, December 03–05, Venice, Italy

  • Barlas N (1999) A pilot study of heavy metal concentration in various environments and fishes in the Upper Sakarya River Basin, Turkey. Environ Toxicol 14:367–373

    Article  CAS  Google Scholar 

  • Bruyenko VP (1971) Age and seasonal variation in the feeding of Silurus glanis in the lower reaches of the Danube. Zoologicheskij zhurnal [In Russian] 50:1214–1219

    Google Scholar 

  • Cacador I, Costa JL, Duarte B, Silva G, Medeiros JP, Azeda C, Castro N, Freitas J, Pedro S, Almeida PR, Cabral H, Costa MJ (2012) Macroinvertebrates and fishes as biomonitors of heavy metal concentration in the Seixal Bay (Tagus estuary): which species perform better? Ecol Indic 19:184–190

    Article  CAS  Google Scholar 

  • Carpene E, Vasak M (1989) Hepatic metallothionein from goldfish (Carassius auratus). Comp Biochem Physiol 92B:463–468

    CAS  Google Scholar 

  • Chen YC, Chen MH (2001) Heavy metal concentrations in nine species of fishes caught in coastal waters off Ann-Ping, S.W. Taiwan. J Food Drug Anal 9(2):107–114

    CAS  Google Scholar 

  • Crnković DM, Crnković NS, Filipović AJ, LjV R, Perić-Grujić AA, Ristić MĐ (2008) Danube and Sava river sediment monitoring in Belgrade and its surroundings. J of Environ Sci and Health 43(12):1353–1360

    Article  Google Scholar 

  • Czarnecki M, Andrzejewski W, Mastyński J (2003) The feeding selectivity of Wels (Silurus glanis L.) in Lake Góreckie. Arch Pol Fish 11(1):141–147

    Google Scholar 

  • de Carvalho Costa S, Hartz SM (2009) Evaluation of trace metals (cadmium, chromium, copper and zinc) in tissues of commercially important fish (Leporinus obtusidens) from Guaíba Lake, Southern Brazil. Braz Arch Biol Technol 52(1):241–250

    Article  Google Scholar 

  • FAO (Food and Agriculture Organization) (1983) Compilation of legal limits for hazardous substances in fish and fishery products. FAO Fishery Circular 464:5–100

    Google Scholar 

  • Farkas A, Salánki J, Varanka I (2000) Heavy metal concentration in fish of Lake Balaton. Lakes and reservoirs. Res and Manag 2000(5):271–279

    Google Scholar 

  • García-Berthou E (2001) Size- and depth-dependent variations in habitat and diet of the common carp (Cyprinus carpio). Aquat Sci 63:466–476

    Article  Google Scholar 

  • Has-Schön E, Bogut I, Strelec I (2006) Heavy metal profile in five fish species included in human diet, domiciled in the end flow of River Neretva (Croatia). Arch Environ Contam Toxicol 50:545–551

    Article  Google Scholar 

  • Has-Shön E, Bogut I, Rajkovič I, Bogut S, Čačič M, Horvatič J (2007) Heavy metal distribution in tissues of six fish species included in human diet, inhabiting freshwaters of the Nature Park “Hutovo Blato” (Bosnia and Herzegovina). Arch Environ Contam Toxicol 54:75–83

    Article  Google Scholar 

  • Hogstrand C, Haux C (1991) Binding and detoxification of heavy metals in lower vertebrates with reference to metallothionein. Comp Biochem Physiol 100C(1/2):137–141

    CAS  Google Scholar 

  • Jarić I, Lenhardt M, Pallon J, Elfman M, Kalauzi A, Suciu R, Cvijanović G, Ebenhard T (2011) Insight into Danube sturgeon life history: trace element assessment in pectoral fin rays. Environ Biol Fish 90:171–181

    Article  Google Scholar 

  • Jeng SS, Sun LT (1981) Effects of dietary zinc levels on zinc concentrations in tissues of common carp. J Nutr 111:134–140

    CAS  Google Scholar 

  • Jezierska B, Witeska M (2006) The metal uptake and accumulation in fish living in polluted waters. In: Twardowska I, Allen HE, Haggblom MM, Stefaniak S (eds) Viable methods of soil and water pollution monitoring, protection and remediation. Springer, New York, pp 3–23

    Google Scholar 

  • Kakareko T, Żbikowski J, Żytkowicz J (2005) Diet partitioning in summer of two syntopic neogobiids from two different habitats of the lower Vistula River, Poland. J Appl Ichthyol 21:292–295

    Article  Google Scholar 

  • Karadede H, Ünlü E (2000) Concentrations of some heavy metals in water, sediment and fish species from the Ataturk Dam Lake (Euphrates), Turkey. Chemosphere 41:1371–1376

    Article  CAS  Google Scholar 

  • Karadede-Akin H, Ünlü E (2007) Heavy metal concentration in water, sediment, fish and some benthic organisms from Tigris River, Turkey. Environ Monit Assess 131:323–337

    Article  CAS  Google Scholar 

  • Kargin F (1996) Seasonal changes in levels of heavy metals in tissues of Mullus barbatus and Sparus aurata collected from Iskenderun Gulf (Turkey). Water Air Soil Pollut 90:557–562

    Article  CAS  Google Scholar 

  • Kargin F, Erdem C (1991) Accumulation of copper in liver, spleen, stomach, intestine, gill and muscle of Cyprinus carpio, Doga. Tr J Zool 15:306–314

    Google Scholar 

  • Kenšová R, Čelechovská O, Doubravová J, Svobodová Z (2010) Concentrations of metals in tissues of fish from the Vĕstonice Reservoir. Acta Vet Brno 79:335–345

    Article  Google Scholar 

  • Kidwell JM, Phillips LJ, Birchard GF (1995) Comparative analyses of contaminant levels in bottom feeding and predatory fish using the national contaminant biomonitoring program data. Bull Environ Contam Toxicol 54:919–923

    Article  CAS  Google Scholar 

  • Kristoforović-Ilić M, Bjelanović J, Ilić M, Vidović M (2009) Arsenic contamination in environment in the region of Vojvodina. Cent Eur J Public Health 17(3):152–157

    Google Scholar 

  • Lavado R, Urena R, Martin-Skilton R, Torreblanca A, del Ramo J, Raldua D, Porte C (2006) The combined use of chemical and biochemical markers to assess water quality along the Ebro River. Environ Pollut 139:330–339

    Article  CAS  Google Scholar 

  • Lenhardt M, Marković G, Hegediš A, Maletin S, Ćirković M, Marković Z (2011) Non-native and translocated fish species in Serbia and their impact on the native ichthyofauna. Rev Fish Biol Fisheries 21:407–421

    Article  Google Scholar 

  • Liao H-J, Chen Y-H, Jeng S-S (2006) Association of zinc with connective tissue in the digestive tract of common carp. Fish Sci 72:893–902

    Article  CAS  Google Scholar 

  • Liu Y (2007) Mercury, arsenic and selenium in channel catfish caught in southwestern Pennsylvania; implications for coal-fired power plant emission source identification and fish consumption safety. Master's thesis, University of Pittsburgh

  • López Alonso M, Prieto Montaña F, Miranda M, Castillo C, Hernández J, Luis Benedito J (2004) Interactions between toxic (As, Cd, Hg and Pb) and nutritional essential (Ca, Co, Cr, Cu, Fe, Mn, Mo, Ni, Se, Zn) elements in the tissues of cattle from NW Spain. Bio Metals 17:389–397

    Google Scholar 

  • Mamedov AL, Abbasov GS (1990) Feeding of catfish in the pre-Kura region of the southern Caspian Sea. Izvestiya Akademii Nauk Azerbaidzhanskoi SSR, Seriya Biologischeskikh Nauk 1990:65–67

    Google Scholar 

  • Mathieson S, George SG, McLusky DS (1996) Temporal variation of total mercury concentrations and burdens in the liver of eelpout Zoarces viviparus from the Forth Estuary, Scotland: implications for mercury biomonitoring. Mar Ecol Prog Ser 138:41–49

    Article  CAS  Google Scholar 

  • Mazej Z, Sayegh-Petkovšek S, Pokorny B (2010) Heavy metal concentrations in food chain of Lake Velenjsko jezero, Slovenia: an artificial lake from mining. Arch Environ Contam Toxicol 58:998–1007

    Article  CAS  Google Scholar 

  • Nabavi SF, Nabavi SM, Latifi AM, Eslami S, Ebrahimzadeh MA (2012) Determination of trace elements level of pikeperch collected from the Caspian Sea. Bull Environ Contam Toxicol 88:401–405

    Article  CAS  Google Scholar 

  • Ney JJ, Van Hassel JH (1983) Sources of variability in accumulation of heavy metals by fishes in a roadside stream. Arch Environ Contam Toxicol 12:701–706

    Article  CAS  Google Scholar 

  • Official Gazzette of FRY, Nos. 5/92, 11/92, 32 (2002) Regulation on quantity of pesticides, metals, metalloids, and other toxic substances, chemotherapeutics, anabolics, and other substances which can be found in food

  • Orlova EL, Popova OA (1987) Age related changes in feeding of catfish, Silurus glanis, and pike, Esox lucius, in the outer delta of the Volga. J Ichthyol 27:54–63

    Google Scholar 

  • Papagiannis I, Kagalou I, Leonardos J, Petridis D, Kalfakakou V (2004) Copper and zinc in four freshwater fish species from Lake Pamvotis (Greece). Environ Int 30:357–362

    Article  CAS  Google Scholar 

  • Pawellek F, Frauenstein F, Veizer J (2002) Hydrochemistry and isotope geochemistry of the upper Danube River. Geochim et Cosmochim Acta 66(21):3839–3854

    Article  CAS  Google Scholar 

  • Peterson SA, Ralston NVC, Peck DV, Van Sickle J, Robertson JD, Spate VL, Morris JS (2009) How might selenium moderate the toxic effects of mercury in stream fish of the western U.S.? Environ Sci Technol 43:3919–3925

    Article  CAS  Google Scholar 

  • Popova OA, Sytina LA (1977) Food and feeding relations of Eurasian perch (Perca fluviatilis) and pikeperch (Stizostedion lucioperca) in various waters of the USSR. J of the Fish Res Board of Can 34:1559–1570

    Article  Google Scholar 

  • Pourang N (1995) Heavy metal bioaccumulation in different tissues of two fish species with regards to their feeding habits and trophic levels. Environ Monit and Asses 35:207–219

    Article  CAS  Google Scholar 

  • Rakauskas V, Bacevičius E, Pūtys Z, Ložys L, Arbačiauskas K (2008) Expansion, feeding and parasites of the round goby, Neogobius melanostomus (Pallas, 1811), a recent invader in the Curonian lagoon, Lithuania. Acta Zool Lituanica 18(3):180–190

    Article  Google Scholar 

  • Rowland H, Omoregie E, Millot R, Jimenez C, Mertens J, Baciu C, Hug S, Berg M (2011) Geochemistry and arsenic behaviour in groundwater resources of the Pannonian Basin (Hungary and Romania). Appl Geochem 26:1–17

    Article  CAS  Google Scholar 

  • Southward L, Marschall EA, Stein RA (2003) Trophic transfer of heavy metals to top predators: quantifying the role of none-native species. Final report, Lake Erie Protection Fund, Project number: SG 181-02

  • Specziár A (2005) First year ontogenetic diet patterns in two coexisting Sander species. S. lucioperca and S. volgensis in Lake Balaton. Hydrobiologia 549:115–130

    Article  Google Scholar 

  • Stolyarov IA (1985) Dietary features of catfish, Silurus glanis, and pike-perch, Stizostedion lucioperca in Kizlyarsk Bay, northern Caspian Sea. J Ichthyol 25:140–145

    Google Scholar 

  • Tekin-Özan S, Kir I (2008) Seasonal variations of heavy metals in some organs of carp (Cyprinus carpio L., 1758) from Beyşehir Lake (Turkey). Environ Monit Assess 138:201–206

    Article  Google Scholar 

  • Teodorović I (2009) Ecotoxicological research and related legislation in Serbia. Environ Sci Pollut Res 16(1):123–129

    Article  Google Scholar 

  • Teodorović I, Đukić N, Maletin S, Miljanović B, Jugovac N (2000) Metal pollution index: proposal for freshwater monitoring based on trace metal accumulation in fish. Tiscia 32:55–60

    Google Scholar 

  • Triebskorn R, Telcean I, Casper H, Farkas A, Sandu C, Stan G, Colărescu O, Dori T, Köhler HR (2008) Monitoring pollution in River Mureş, Romania, part II: metal accumulation and histopathology in fish. Environ Monit Assess 141:177–188

    Article  CAS  Google Scholar 

  • UNEP (2002) Global Mercury Assessment Report. Inter-Organization Programme for the Sound Management of Chemicals. http://www.chem.unep.ch/mercury/Report/GMA-report-TOC.htm

  • UNEP/OCHA (2000) Cyanide spill at Baia Mare, Romania. UNEP/OCHA Assessment Mission Report, United Nations Environment Programme (UNEP)/Office for the Co-ordination of Humanitarian Affairs (OCHA), Geneva

    Google Scholar 

  • Usero J, Gonzales-Regalado E, Gracia I (1996) Trace metals in bivalve molluscs Chameleo gallina from the Atlantic Coast of southern Spain. Mar Pollut Bull 32:305–310

    Article  CAS  Google Scholar 

  • Usero J, Gonzales-Regalado E, Gracia I (1997) Trace metals in bivalve molluscs Ruditapes decussatus and Ruditapes philippinarum from the Atlantic Coast of southern Spain. Environ Int 23:291–298

    Article  CAS  Google Scholar 

  • Višnjic-Jeftić Ž, Jarić I, Lj J, Skorić S, Smederevac-Lalić M, Nikčević M, Lenhardt M (2010) Heavy metal and trace element accumulation in muscle, liver and gills of the Pontic shad (Alosa immaculata Bennet 1835) from the Danube River (Serbia). Microchem J 95:341–344

    Article  Google Scholar 

  • Voigt HR (2004) Concentrations of mercury (Hg) and cadmium (Cd), and the condition of some coastal Baltic fishes. Environ Fenn 21:26

    Google Scholar 

  • Zrnčić S, Oraić D, Ćaleta M, Mihaljević Ž, Zanella D, Bilandžić N (2012) Biomonitoring of heavy metals in fish from the Danube River. Environ Monit Assess. doi:10.1007/s10661-012-2625-x

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Acknowledgments

We acknowledge the support by the Project No. 173045, funded by the Ministry of Education, Science and Technological Development of the Republic of Serbia.

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Correspondence to S. Subotić.

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Responsible editor: Vera Slaveykova

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Subotić, S., Višnjić Jeftić, Ž., Spasić, S. et al. Distribution and accumulation of elements (As, Cu, Fe, Hg, Mn, and Zn) in tissues of fish species from different trophic levels in the Danube River at the confluence with the Sava River (Serbia). Environ Sci Pollut Res 20, 5309–5317 (2013). https://doi.org/10.1007/s11356-013-1522-3

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