Object structure
Title:

Heavy metals toxicity assessment in water and bottom sediments of two tourist lakes of different origin near Gorzów Wielkopolski (western Poland)

Subtitle:

Przegląd Geograficzny T. 98 z. 2 (2026)

Creator:

Śniady, Igor : Autor Affiliation ORCID ; Smardz, Emilia : Autor Affiliation ORCID ; Salwowska, Anna : Autor Affiliation ; Siepak, Marcin : Autor Affiliation ORCID

Publisher:

IGiPZ PAN

Place of publishing:

Warszawa

Date issued/created:

2026

Description:

24 cm

Subject and Keywords:

gravel pit lake ; cancer health risk ; limnotourism ; toxicity indices ; suburban lakes

Abstract:

Lake tourism includes activities both within the lake itself and in its immediate surroundings. These activities may lead to a range of changes in lake ecosystems, including an increased input of pollutants. Among the most important and still widely studied pollutants are heavy metals (HMs), whose concentrations and potential toxicity were investigated in the waters and bottom sediments of two lakes of different origin near Gorzów Wielkopolski: the natural Kłodawskie Lake and the gravel pit lake Karnin Reservoir. HM concentrations were determined using inductively coupled plasma triple quadrupole mass spectrometry (ICP-QQQ-MS). The results obtained for HMs in water were analyzed in terms of potential toxic effects on humans, whereas HMs in bottom sediments were assessed in terms of their potential toxicity to aquatic biota. The results indicate comparable HM concentrations in the waters of both lakes and show no potential non-carcinogenic and carcinogenic health risk for humans, both in terms of chronic dermal exposure and quantitative assessment. In contrast, HM concentrations in bottom sediments differed significantly between the lakes, with notably higher values recorded in Kłodawskie Lake. The assessment of individual HMs using the modified hazard quotient (mHQ) indicated very low toxicity for Pb and Zn, and to a lesser extent for Cd, Cu, and Ni. Integrated indices indicated no potential combined toxicity of HMs. The presented study provides a basis for conducting similar analyses in lakes used for recreational purposes and highlights the potential of gravel pit lakes for tourism, particularly in regions characterized by a low number of natural lakes

References:

Algül, F., & Beyhan, M. (2020). Concentrations and sources of heavy metals in shallow sediments in Lake Bafa, Turkey. Scientific Reports, 10, 11782. https://doi.org/10.1038/s41598-020-68833-2 DOI
ATSDR (Agency for Toxic Substances and Disease Registry) (2022). Substance Priority List. Retrieved from: https://www.atsdr.cdc.gov/programs/substance-priority-list.html (16.03.2026)
Benson, N.U., Adedapo, A.E., Fred-Ahmadu, O.H., Williams, A.B., Udosen, E.D., Ayejuyo, O.O., & Olajire, A.A. (2018). New ecological risk indices for evaluating heavy metals contamination in aquatic sediment: A case study of the Gulf of Guinea. Regional Studies in Marine Science, 18, 44-56. https://doi.org/10.1016/j.rsma.2018.01.004 DOI
Borkowski, G., & Tritt, R. (2023). Wprowadzenie do zagadnień związanych z rekreacją jeziorną. In: G. Borkowski, R. Tritt (eds.), Uwarunkowania rozwoju rekreacji jeziornej. Tom I (pp. 9-12). Poznań: Bogucki Wydawnictwo Naukowe. DOI
Bowler, D.E., Buyung-Ali, L., Knight, T.M., & Pullin, A.S. (2010). Urban greening to cool towns and cities: A systematic review of the empirical evidence. Landscape and Urban Planning, 97(3), 147-155. https://doi.org/10.1016/j.landurbplan.2010.05.006 DOI
Budi, H., Catalan Opulencia, M., Afra, A., Abdelbasset, W., Abdullaev, D., Majdi, A., Taherian, M., Ekrami, H. & Mohammadi, M. (2024). Source, toxicity and carcinogenic health risk assessment of heavy metals. Reviews on Environmental Health, 39(1), 77-90. https://doi.org/10.1515/reveh-2022-0096 DOI
Cichocki, P. (2025). Wpływ hałasu emitowanego przez jednostki motorowodne na stan środowiska akustycznego obszaru Jeziora Bnińskiego. In: G. Borkowski, R. Tritt (eds.), Uwarunkowania rozwoju rekreacji jeziornej. Tom III (pp. 171-182). Poznań: Bogucki Wydawnictwo Naukowe. https://doi.org/10.12657/978-83-7986-579-6 DOI
Cichoń, M., & Koczura, R. (2025). Bakterie grupy coli typu kałowego w strefach brzegowych jezior wykorzystywanych rekreacyjnie - przypadek północno-zachodniej Polski. In: G. Borkowski, R. Tritt (eds.), Uwarunkowania rozwoju rekreacji jeziornej. Tom III (pp. 153-170). Poznań: Bogucki Wydawnictwo Naukowe. https://doi.org/10.12657/978-83-7986-579-6 DOI
Cvijanovic, I., Mistry, M.N., Begg, J.D., Gasparrini, A., & Rodó, X. (2023). Importance of humidity for characterization and communication of dangerous heatwave conditions. npj Climate and Atmospheric Science, 6, 33. https://doi.org/10.1038/s41612-023-00346-x DOI
Dokulil, M.T. (2014). Environmental Impacts of Tourism on Lakes. In: A. Ansari, S. Gill, (eds.), Eutrophication: Causes, Consequences and Control. Dordrecht: Springer. https://doi.org/10.1007/978-94-007-7814-6_7 DOI
Duda-Gromada, K. (2009). Turystyka jeziorna - nowa forma turystyki? Prace i Studia Geograficzne, 42, 89-101.
Fagiewicz, K. (2013). Shaping the water conditions in the post-mining areas (a case-study of brown coal mine "Adamów"). Civil and Environmental Engineering Reports, 11, 35-48.
Gaziński, R. (2003). Z dziejów rybołówstwa w Gorzowie i jego okolicach w XVI-XVIII wieku. Nadwarciański Rocznik Historyczno-Archiwalny, 10, 31-40.
Gierszewski, P., Miler, K., & Kaszubski, M. (2015). Features of the thermal and chemical stratification of the Ostrowite Lake water in the year 2015. Journal of Education, Health and Sport, 5(12), 217-229. https://doi.org/10.5281/zenodo.35354 DOI
Godlewski, G., Piotrowski, K., Potocka, I., & Tritt, R. (2023). Formy rekreacji jeziornej. In: G. Borkowski, R. Tritt (eds.), Uwarunkowania rozwoju rekreacji jeziornej. Tom I (pp. 9-12). Poznań: Bogucki Wydawnictwo Naukowe. DOI
Gołdyn, R.J., Szeląg-Wasielewska, E., Kowalczewska-Madura, K., Dondajewska-Pielka, R., Szyper, H., Joniak, T., Piechowiak, M., & Domek, P.T. (2006). Functioning of the gravel pit lake in Owińska (West Poland) in years 2001-2005. Teka Komisji Ochrony i Kształtowania Środowiska Przyrodniczego, 3, 45-54.
Gössling, S. (2002). Global environmental consequences of tourism. Global Environmental Change, 12(4), 283-302. https://doi.org/10.1016/S0959-3780(02)00044-4 DOI
Hetmański, T., Jarosiewicz, A., & Jankowiak, Ł. (2023). The gravel pit lakes' water quality, their aquatic ecosystem function, and the effects of environmental changes in northern Poland. Studia Quaternaria, 40(2), 57-66. https://doi.org/10.24425/sq.2023.148032 DOI
Jaskuła, J., Dysarz, T., Wicher-Dysarz, J., Sojka, M., Agaj, T., Sanz-Ramos, M., & Siepak, M. (2026). Role of hydraulic parameters in the concentration and spatial distribution of heavy metals in sediments in a two-stage reservoir. Scientific Reports, 16, 6958. https://doi.org/10.1038/s41598-026-38103-8 DOI
Kostka, A., & Leśniak, A. (2020). Spatial and geochemical aspects of heavy metal distribution in lacustrine sediments, using the example of Lake Wigry (Poland). Chemosphere, 240, 124879. https://doi.org/10.1016/j.chemosphere.2019.124879 DOI
Krüger, E., Gobo, J., Tejas, G., & Souza, R. (2023). The impact of urbanisation on local climate: a case study from Palmas, Brazil. Przegląd Geograficzny, 95(3), 237-254. https://doi.org/10.7163/PrzG.2023.3.2 DOI
Kuriata-Potasznik, A., Szymczyk, S., & Pilejczyk, D. (2018). Effect of bottom sediments on the nutrient and metal concentration in macrophytes of river-lake systems. Annales de Limnologie - International Journal of Limnology, 54, 1. https://doi.org/10.1051/limn/2017028 DOI
Kuriata-Potasznik, A., Szymczyk, S., Skwierawski, A., Glińska-Lewczuk, K., & Cymes, I. (2016). Heavy Metal Contamination in the Surface Layer of Bottom Sediments in a Flow-Through Lake: A Case Study of Lake Symsar in Northern Poland. Water, 8(8), 358. https://doi.org/10.3390/w8080358 DOI
Liao, J., Cui, X., Feng, H., & Yan, S. (2022). Environmental Background Values and Ecological Risk Assessment of Heavy Metals in Watershed Sediments: A Comparison of Assessment Methods. Water, 14(1), 51. https://doi.org/10.3390/w14010051 DOI
Linnik, P., Zhezherya, V., & Linnik, R. (2023). Bioavailability and migration features of metals in "bottom sediments - water" system under the action of different environmental factors. Chemistry Journal of Moldova. General, Industrial and Ecological Chemistry, 18(1), 9-27. https://doi.org/10.19261/cjm.2023.1049 DOI
Liu, Y., Wang, J., Wang, W., Zhang, T., & Yan, F. (2025). Evaluation of the Heavy Metal Pollution Induced by Sand Mining in Poyang Lake Based on the Fuzzy PERI Model. Water, 17(1), 124. https://doi.org/10.3390/w17010124 DOI
MacDonald, D.D., Ingersoll, C.G., & Berger, T.A. (2000). Development and Evaluation of Consensus-Based Sediment Quality Guidelines for Freshwater Ecosystems. Archives of Environmental Contamination and Toxicology, 39, 20-31. https://doi.org/10.1007/s002440010075 DOI
Marciniak, M. (2024). Walory rekreacyjne miejskich zbiorników wodnych w Polsce. In: G. Borkowski, R. Tritt (eds.), Uwarunkowania rozwoju rekreacji jeziornej. Tom II (pp. 87-105). Poznań: Bogucki Wydawnictwo Naukowe. https://doi.org/10.12657/978-83-7986-531-4-6 DOI
Marszelewski, W. (2023). Nowo powstające zbiorniki pokopalniane w centralnej Polsce oraz uwarunkowania ich funkcjonowania w okresie ocieplenia klimatu. Studia BAS, 2(74), 217-231. https://doi.org/10.31268/StudiaBAS.2023.19 DOI
Marszelewski, W., Dembowska, E.A., Napiórkowski, P., & Solarczyk, A. (2017). Understanding Abiotic and Biotic Conditions in Post-Mining Pit Lakes for Efficient Management: A Case Study (Poland). Mine Water and the Environment, 36, 418-428. https://doi.org/10.1007/s10230-017-0434-8 DOI
Młynarczyk, Z., & Borkowski, G. (2015). Limnoturystyka w Polsce Zachodniej na przykładzie Jeziora Zbąszyńskiego. Europa Regionum, 23, 35-54. https://doi.org/10.18276/er.2015.23-03 DOI
Mohammadi, A.A., Zarei, A., Majidi, S., Ghaderpoury, A., Hashempour, Y., Saghi, M.H., Alinejad, A., Yousefi, M., Hosseingholizadeh, N., & Ghaderpoori, M. (2019). Carcinogenic and non-carcinogenic health risk assessment of heavy metals in drinking water of Khorramabad, Iran. MethodsX, 6, 1642-1651. https://doi.org/10.1016/j.mex.2019.07.017 DOI
Mollema, P.N., & Antonellini, M. (2016). Water and (bio)chemical cycling in gravel pit lakes: A review and outlook. Earth-Science Reviews, 159, 247-270. https://doi.org/10.1016/j.earscirev.2016.05.006 DOI
Mosisch, T.D., & Arthington, A.H. (1998). The impacts of power boating and water skiing on lakes and reservoirs. Lakes & Reservoirs, 3, 1-17. https://doi.org/10.1111/j.1440-1770.1998.tb00028.x DOI
mine ponds of the Otamiri River in Owerri, Nigeria. Ambiente & Água - An Interdisciplinary Journal of Applied Science, 9(1), 46-54. https://doi.org/10.4136/ambi-agua.1226 DOI
Pasieczna, A. (ed.) (2012). Atlas geochemiczny Polski, 1:2 500 000 (digital version). Warszawa: Państwowy Instytut Geologiczny - Państwowy Instytut Badawczy.
Pásková, M., Štekerová, K., Zanker, M., Lasisi, T.T., & Zelenka, J. (2024). Water pollution generated by tourism: Review of system dynamics models. Heliyon, 10(1), e23824. https://doi.org/10.1016/j.heliyon.2023.e23824 DOI
Pietrzykowski, M, & Krzaklewski, W. (2018). Reclamation of Mine Lands in Poland. In: M.N.V. Prasad, P.J.C. Favas, S.K. Maiti (eds.), Bio-Geotechnologies for Mine Site Rehabilitation (pp. 493-513). Amsterdam, Oxford, Cambridge, MA: Elsevier. https://doi.org/10.1016/C2016-0-04139-6
Rzętała, M., & Jaguś, A. (2012). New lake district in Europe: origin and hydrochemical characteristics. Water and Environment Journal, 26(1), 108-117. https://doi.org/10.1111/j.1747-6593.2011.00269.x DOI
Saha, P., & Paul, B. (2019). Assessment of heavy metal toxicity related with human health risk in the surface water of an industrialized area by a novel technique. Human and Ecological Risk Assessment: An International Journal, 25(4), 966-987. https://doi.org/10.1080/10807039.2018.145859 DOI
Sharma, M., Kant, R., Sharma, A.K., Sharma, A.K. (2025). Exploring the impact of heavy metals toxicity in the aquatic ecosystem. International Journal of Energy and Water Resources, 9, 267-280. https://doi.org/10.1007/s42108-024-00284-1 DOI
Siepak, M., Lewandowska, A., & Sojka, M. (2023). Variability in the Chemical Composition of Spring Waters in the Postomia River Catchment (Northwest Poland). Water, 15(1), 157. https://doi.org/10.3390/w15010157 DOI
Skowron, R. (2023). Natural conditions for the development of lake tourism in Poland. Bulletin of Geography. Physical Geography Series, 24, 25-38. http://doi.org/10.12775/bgeo-2023-0002 DOI
Snape, I., Scouller, R.C., Stark, S.C., Stark, J., Riddle, M.J., & Gore, D.B. (2004). Characterisation of the dilute HCl extraction method for the identification of metal contamination in Antarctic marine sediments. Chemosphere, 57(6), 491-504. https://doi.org/10.1016/j.chemosphere.2004.05.042 DOI
Sojka, M., Choiński, A., & Siepak, M. (2024). Spatial distribution of trace and rare earth elements of bottom sediments in Lake Ostrowite, Bory Tucholskie National Park, Poland. Land Degradation & Development, 35(10), 1-15. https://doi.org/10.1002/ldr.5140 DOI
Sojka, M., Jaskuła, J., & Siepak, M. (2019a). Heavy Metals in Bottom Sediments of Reservoirs in the Lowland Area of Western Poland: Concentrations, Distribution, Sources and Ecological Risk. Water, 11(1), 56. https://doi.org/10.3390/w11010056 DOI
Sojka, M., Kałuża, T., Siepak, M., & Strzeliński, P. (2019b). Zawartość metali ciężkich w osadach dennych śródleśnych zbiorników wodnych. Sylwan, 163(8), 694-704. https://doi.org/10.26202/sylwan.2019038 DOI
Sojka, M., Siepak, M., Jaskuła, J., & Wicher-Dysarz, J. (2018). Heavy Metal Transport in a River-Reservoir System: a Case Study from Central Poland. Polish Journal of Environmental Studies, 27(4), 1725-1734. https://doi.org/10.15244/pjoes/76916 DOI
Solon, J., Borzyszkowski, J., Bidłasik, M., Richling, A., Badora, K., Balon, J., Brzezińska-Wójcik, T., Chabudziński, Ł., Dobrowolski, R., Grzegorczyk, I., Jodłowski, M., Kistowski, M., Kot, R., Krąż, P., Lechnio, J.R., Macias, A., Majchrowska, A., Malinowska, E., Migoń, P., Myga-Piątek, U., Nita, J., Papińska, E., Rodzik, J., Strzyż, M., Terpiłowski, S., & Ziaja, W. (2018). Physico-geographical mesoregions of Poland: Verification and adjustment of boundaries on the basis of contemporary spatial data. Geographia Polonica, 91(2), 143-170. https://doi.org/10.7163/GPol.0115 DOI
Søndergaard, M., Lauridsen, T.L., Johansson, L.S., & Jeppesen, E. (2018). Gravel pit lakes in Denmark: Chemical and biological state. Science of The Total Environment, 612, 9-17. https://doi.org/10.1016/j.scitotenv.2017.08.163 DOI
Stępniewska, M., & Abramowicz, D. (2016). Social Perception and the Use of Ecosystem Services on Municipal Post-Mining Lands: An Example of Szachty in Poznan. Ekonomia i Środowisko, 4(59), 252-262. Retrieved from: https://ekonomiaisrodowisko.pl/journal/article/view/216 (data)
Sun, Y., Jia, G., & Xu, X. (2025). Extreme high temperatures and heatwave events across Europe in 2023. Environmental Research Communications, 7, 021001. https://doi.org/10.1088/2515-7620/adae60 DOI
Sun, Q., & Liu, Z. (2020). Impact of tourism activities on water pollution in the West Lake Basin (Hangzhou, China). Open Geosciences, 12(1), 1302-1308. https://doi.org/10.1515/geo-2020-0119 DOI
Szewczyk, M., Tomczyk, P., Wiatkowski, M., & Gała, B.A. (2026). Integrated assessment of heavy metal contamination and ecological risk in bottom sediments of the Dobromierz drinking water reservoir, Poland. Archives of Environmental Protection, 52(1), 147-159. https://doi.org/10.24425/aep.2026.158390 DOI
Śniady, I., Machowska, A., Dysierowicz, M., & Siepak., M. (2025). Trace elements and rare earth elements in post-mining pit lakes of the Muskau Arch (Poland): AMD-related enrichment and toxicity assessment. Geology, Geophysics and Environment, 51(4), 389-411. https://doi.org/10.7494/geol.2025.51.4.389 DOI
Śniady, I., Orzechowska, W., Smardz, E., & Siepak, M. (2024a). Trace elements in Turkusowe Lake waters and bottom sediments (Wolin National Park, Poland). Przegląd Geograficzny, 96(4), 459-471. https://doi.org/10.7163/PrzG.2024.4.3 DOI
Śniady, I., Stryniak, I., Szponar, J., & Siepak, M. (2026). Heavy metal pollution and toxicity assessment in a small urban river: analysis of the Bogdanka river catchment (Poznań, Poland). Geographia Polonica, 99(1), 121-142. https://doi.org/10.7163/GPol.0320 DOI
Śniady, I., Zięba, M., Wojciechowska, J., Majewski, M., & Siepak, M. (2024b). Condition of the post-reclamation Przykona reservoir (Turek, Poland): water and sediment chemistry. Acta Geographica Lodziensia, 114, 19-34. https://doi.org/10.26485/AGL/2024/114/2 DOI
Tepanosyan, G., Maghakyan, N., Sahakyan, L., & Saghatelyan, A. (2017). Heavy metals pollution levels and children health risk assessment of Yerevan kindergartens soils. Ecotoxicology and Environmental Safety, 142, 257-265. https://doi.org/10.1016/j.ecoenv.2017.04.013 DOI
Twardosz, R. (2023). Obciążenia cieplne człowieka podczas niezwykle ciepłych miesięcy letnich w Krakowie. Przegląd Geograficzny, 95(3), 255-269. https://doi.org/10.7163/PrzG.2023.3.3 DOI
USEPA (2004). Risk assessment guidance for superfund. Volume 1: Human health evaluation manual (Part E, Supplemental guidance for dermal risk assessment). EPA/540/R/99/005. Washington: Office of Superfund Remediation and Technology Innovation. Retrieved from: https://www.epa. gov/sites/default/files/2015-09/documents/part_e_final_revision_10-03-07.pdf (01.04.2026)
Vucic, J.M., Cohen, R.S., Gray, D.K., Murdoch, A.D., Shuvo, A., & Sharma, S. (2019). Young gravel-pit lakes along Canada's Dempster Highway: How do they compare with natural lakes? Arctic, Antarctic, and Alpine Research, 51(1), 25-39. https://doi.org/10.1080/15230430.2019.1565854 DOI
Wang, C., Zou, Y., Yu L., & Lv, Y. (2020). Potential source contributions and risk assessment of PAHs in sediments from the tail-reaches of the Yellow River Estuary, China: PCA model, PMF model, and mean ERM quotient analysis. Environmental Science and Pollution Research, 27, 9780-9789. https://doi.org/10.1007/s11356-019-07530-8 DOI
World Health Organization (2021). Guidelines on Recreational Water Quality. Volume 1: Coastal and Fresh Waters. Retrieved from: https://iris.who.int/server/api/core/bitstreams/a7571658-db94-4cc7-b6da-71ea654f927d/content (24.03.2026)
Wrona, K. (2024). Thermal extremes in February and March 2024 in Poland and their synoptical background. Przegląd Geograficzny, 96(3), 395-416. https://doi.org/10.7163/PrzG.2024.3.5 DOI
Yadav, N., Rajendra, K., Awasthi, A., Singh, C., & Bhushan, B. (2023). Systematic exploration of heat wave impact on mortality and urban heat island: A review from 2000 to 2022. Urban Climate, 51, 101622. https://doi.org/10.1016/j.uclim.2023.101622 DOI
Yakovlev, E., Druzhinina, A., Druzhinin, S., Zykov, S., & Ivanchenko, N. (2022). Assessment of physical and chemical properties, health risk of trace metals and quality indices of surface waters of the rivers and lakes of the Kola Peninsula (Murmansk Region, North-West Russia). Environmental Geochemistry and Health, 44, 2465-2494. https://doi.org/10.1007/s10653-021-01027-5 DOI
Zakir, H.M., Sharmin, S., Akter., A., Rahman, Md.S. (2020). Assessment of health risk of heavy metals and water quality indices for irrigation and drinking suitability of waters: a case study of Jamalpur Sadar area, Bangladesh. Environmental Advances, 2, 100005. https://doi.org/10.1016/j.envadv.2020.100005 DOI
Zhang, G., Bai, J., Zhao, Q., Lu, Q., Jia, J., & Wen, X. (2016). Heavy metals in wetland soils along a wetland−forming chronosequence in the Yellow River Delta of China: Levels, sources and toxic risks. Ecological Indicators, 69, 331-339. https://doi.org/10.1016/j.ecolind.2016.04.042 DOI

Relation:

Przegląd Geograficzny

Volume:

98

Issue:

2

Start page:

205

End page:

225

Resource type:

Text

Detailed Resource Type:

Article

Format:

application/octet-stream

Resource Identifier:

0033-2143 (print) ; 2300-8466 (on-line) ; 10.7163/PrzG.2026.2.4

Source:

CBGiOS. IGiPZ PAN, sygn.: Cz.181, Cz.3136, Cz.4187 ; click here to follow the link

Language:

eng

Language of abstract:

eng

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Creative Commons Attribution BY 4.0 license

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Copyright-protected material. [CC BY 4.0] May be used within the scope specified in Creative Commons Attribution BY 4.0 license, full text available at: ; -

Digitizing institution:

Institute of Geography and Spatial Organization of the Polish Academy of Sciences

Original in:

Central Library of Geography and Environmental Protection. Institute of Geography and Spatial Organization PAS

Projects co-financed by:

Programme Innovative Economy, 2010-2014, Priority Axis 2. R&D infrastructure ; European Union. European Regional Development Fund

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