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Geochemical Ecology of Small Mammals at Industrially Polluted Areas: Is There any Effect of Reduction in the Emissions?

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Abstract

The paper presents data on the involvement of local populations of bank vole (Clethrionomys glareolus) in the biogeochemical cycles of Cu, Zn, Cd, and Pb at territories strongly chemically polluted by large nonferrous metallurgical plant in the Middle Urals (in 1990–1992) and after a significant decrease in its emissions (in 2015–2017). At maximally polluted areas (impact zone), the animal-controlled transit Cu, Cd, and Pb flows approached their background values by the end of the study period, and the Zn flow simultaneously twofold decreased compared to the background areas. At moderately polluted areas (buffer zone), no significant changes in the metal fluxed were detected for any of the elements. The specifics of the transit flows of the elements at variably polluted areas are controlled by the concentrations of these elements in the diet of the animals and by the abundance of voles. Thereby the manyfold (fifty-fold) decrease in the emissions did no result in an equivalent decrease in the concentrations of the metals in the animal rations at the polluted areas. The main reason for the changes was a structural transformation in the community of the small mammals, which led to a drastic decrease in the bank vole population in the impact zone. The simultaneous effects of the analyzed factors over the study period of time (25 years) resulted in intensification (in the background zone), retardation (impact zone), and stabilization (buffer zone) of the biogeochemical exchange of the elements.

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REFERENCES

  1. J. Beernaert, J. Scheirs, G. Van Den Brande, H. Leirs, R. Blust, R. De Meulenaer, J. Van Camp, and R. Verhagen, “Do wood mice (Apodemus sylvaticus L.) use food selection as a means to reduce heavy metal intake?” Environ. Pollut. 151, 599–607 (2008).

    Article  Google Scholar 

  2. Å. M. Berglund and N. Nyholm, “Slow improvements of metal exposure, health- and breeding conditions of pied flycatchers after decreased industrial heavy metal emissions,” Sci. Tot. Environ. 409(20), 4326–4334 (2011).

  3. Å. M. Berglund, M. J. Rainio, and T. Eeva, “Decreased metal accumulation in passerines as a result of reduced emissions,” Environ. Toxicol. Chem. 31, 1–7 (2012).

  4. A. D. Bernshtein T. V. Mikhailova, and N. S. Apekina, “Efficiency of trap lines for assessment of population and structure of red-backed mouse,” Zool. Zh. 74 (7), 217–282 (1995).

    Google Scholar 

  5. V. S. Bezel, K. P. Kjoutsenogii, S. V. Mukhacheva, T. I. Savchenko, and O. V. Chankina, “Element composition of the diets and tissues of small mammals from different trophic levels as a bioindicator of chemical pollution of the environment,” Chem. Sustain. Develop., 15, 33–42 (2007).

  6. E. Camizuli, R. Scheifer, S. Garnier, F. Monna, R. Lonso, C. Gourault, G. Hamm, C. Lachiche, G. Delivet, C. Chateau, and P. Alibert, “Trace metals from historical mining sites and past metallurgical activity remain bioavailable to wildlife today,” Sci. Rep. 8, 3436 (2018).

    Article  Google Scholar 

  7. T. V. Chernen’kova and Yu. N. Bochkarev, “Dynamics of the spruce plantations of the Kola North under natural–anthropogenc impact,” Zh. Obshch. Biol. 74 (4), 283–303 (2013).

    Google Scholar 

  8. F. Douay, C. Pruvot, C. Waterlot, C. Fritsch, H. Fourrier, A. Loriette, G. Bidar, C. Grand, A. Vaufleury, and R. Scheifler, “Contamination of woody habitat soils around a former lead smelter in the North of France,” Sci. Tot. Environ. 407 (21), 5564–5577 (2009).

    Article  Google Scholar 

  9. V. V. Ermakov. and S. F. Tyutikov, Geochemical Ecology of Animals (Nauka, Moscow, 2008) [in Russian].

  10. V. V. Ermakov, S. F. Tyutikov, and V. A. Safonov, Biogeochemical Indication of Trace Elements (RAN, Moscow, 2018) [in Russian].

    Google Scholar 

  11. European Bank Vole (Nauka, Moscow, 1981) [in Russian].

  12. J. E. Gall, R. S. Boyd, and N. Rajakaruna, “Transfer of heavy metals through terrestrial food webs: a review,” Environ. Monit. Asses. 187(4), 1–21 (2015).

    Article  Google Scholar 

  13. L. Hansson, “Clethrionomys food: generic, specific and regional characteristics,” Ann. Zool. Fenn. 22 (3), 315–318 (1985).

    Google Scholar 

  14. R. Juknys, J. Vencloviene, V. Stravinskiene, A. Augustaitis, and E. Bartkevicius, “Scots pine (Pinus sylvestris L.) growth and condition in a polluted environment: from decline to recovery,” Environ. Pollut. 125 (2), 205–212 (2003).

    Article  Google Scholar 

  15. C. Kabala, T. Chodak, and L. Szerszen, “Influence of land use pattern on changes in copper content in soils around a copper smelter, based on a 34-year monitoring cycle,” Zemes Ukio Mokslai 15(3), 8–12 (2008).

    Google Scholar 

  16. D. V. Kalabin and T. I. Moiseenko, “Ecodynamics of anthropogenic mining provinces: from degradation to rehabilitation,” Dokl. Earth Sci. 437 (1), 432–436 (2011).

    Article  Google Scholar 

  17. G. N. Koptsik, S. V.Koptsik, N. E. Smirnova, A. D. Kudryavtseva, and K. A. Turbarina, “The response of forest ecosystems to reduction in industrial atmospheric emission in the Kola Subarctic,” Zh. Obshch. Biol. 77 (2), 145–163 (2016).

    Google Scholar 

  18. M. V. Kozlov and E. L. Zvereva, “A second life for old data: Global patterns in pollution ecology revealed from published observational studies,” Environ. Pollut. 159, 1067–1075 (2011).

    Article  Google Scholar 

  19. G. V. Kuznetsov and A. P. Mikhailik, “Feedings and dynamics of population of bank vole under condtions of Broad-Leaved forest, Mammals in Land Ecosystems (Nauka, Moscow, 1985), pp. 127–156.

    Google Scholar 

  20. I. V. Lyanguzova and E. A. Maznaya, “Dynamic trends of populations Vaccinium myrtillus L. in the impact zone of the copper–nickel plant: results of 20-year monitoring,” Ekologiya, No. 4, 261–269 (2012).

    Google Scholar 

  21. T. I. Moiseenko, “Stability of aqueous ecosystems and their variability under toxic pollution conditions,” Ekologiya, No. 6, 441–448 (2011).

    Google Scholar 

  22. S. V. Mukhacheva, “Specific features of bank vole feeding under conditions of technogenic environmental pollution,” Sibirsk. Ekol. Zh., No. 3, 523–533 (2005).

  23. S. V. Mukhacheva, “Spatiotemporal population structure of the bank vole in a gradient of technogenic environmental pollution,” Russ. J. Ecol., 38 (3), 161–167 (2007).

    Article  Google Scholar 

  24. S. V. Mukhacheva, “Population of small mammals in the influence zone of large copper smelter under conditions of significantly decreased industrial emissions,” Theriofauna of Russia and Adjacent Territories (TNI KMK, Moscow, 2016) [in Russian].

    Google Scholar 

  25. S. V. Mukhacheva, “Long-term dynamics of heavy metal concentrations in the food and liver of bank voles in the period of reduction of emissions from a copper smelter,” Rus. J. Ecol. 48 (6), 559–568 (2017).

    Article  Google Scholar 

  26. S. V. Mukhacheva and V. S. Bezel, “Heavy metals in the mother–placenta–fetus system in bank voles under conditions of environmental pollution from copper plant emissions,” Rus. J. Ecol. 46 (6), 564–572 (2015).

    Article  Google Scholar 

  27. S. V. Mukhacheva and V. S. Bezel, “Participation of small mammals in the biogeochemical cycles on chemically polluted territories,” Heavy Metals, Radionuclides, and Biophilic Elements in the Environment, (SGU. Semipalatinsk, 2004), pp. 75–78.

  28. S. Ozaki, C. Fritsch, B. Valot, F. Mora, T. Cornier, and R. Scheifler, “Does pollution influence small mammal diet in the field? A metabarcoding approach in a generalist consumer,” Molecular Ecology 27 (18), 3700–3713 (2018).

    Article  Google Scholar 

  29. A. D. Pokarzhevskii, Geochemical Ecology of Terrestrial Animals (Nauka, Moscow, 1985) [in Russian].

    Google Scholar 

  30. E. L. Vorobeichik and D. V. Nesterkova, “Technogenic boundary of the mole distribution in the region of copper smelter impacts: Shift after reduction of emissions,” Russ. J. Ecol. 46 (4), 377–380 (2015).

    Article  Google Scholar 

  31. E. L. Vorobeichik and S. Yu. Kaigorodova, “Long-term dynamics of heavy metals in the upper horizons of soils in the region of a copper smelter impacts during the period of reduced emission,” Euras. Soil Sci. 50 (8), 977–990 (2017).

    Google Scholar 

  32. E. L. Vorobeichik, M. P. Zolotarev, and T. K.Tuneva, “Change of diversity of soil mesofauna in gradient of industrial pollution,” Rus. Entomol. J. 21(2), 203–218 (2012).

    Article  Google Scholar 

  33. E. L. Vorobeichik M. R. Trubina, E. V. Khantemirova, and I. E. Bergman, “Long-term dynamic of forest vegetation after reduction of copper smelter emissions,” Rus. J. Ecol. 45 (6), 498–507 (2014).

    Article  Google Scholar 

  34. A. G. Voronov, “Om methods of field study of feed ration of small rodents,” Byul. Mosk. O-va Isp. Prir., Otd. Biol. 60 (5), 21–30 (1955).

    Google Scholar 

  35. O. A. Zaichenko, “Small mammals as indicagtor of anthropogenic loads,” Environmental Aspects of Exploration of Resources of the Miniusinsk Basin, (Shushenskoe, Irkutskm, 1982), pp. 51–60.

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Funding

This study was carried out under government-financed research project for the Institute of Plant and Animal Ecology, Ural Branch, Russian Academy of Sciences, and was partly supported by Program 18-4-4-9 of the Ural Branch, Russian Academy of Sciences.

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Correspondence to V. S. Bezel’ or S. V. Mukhacheva.

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Translated by E. Kurdyukov

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Bezel’, V.S., Mukhacheva, S.V. Geochemical Ecology of Small Mammals at Industrially Polluted Areas: Is There any Effect of Reduction in the Emissions?. Geochem. Int. 58, 959–967 (2020). https://doi.org/10.1134/S0016702920070046

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  • DOI: https://doi.org/10.1134/S0016702920070046

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