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Original Articles

Phytomass change in natural phytocenosis as an indicator of technogenic pollution of soils with heavy metals

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References

  • Agenda 21. United Nations Conference on Environment & Development. Rio de Janeiro. Brasil. 1992. 351 p.
  • Alkorta I, Hernández-Allica J, Becerril JM, Amezaga I, Albizu I, Onaindia M, Garbisu C. 2004. Chelate-enhanced phytoremediation of soils polluted with heavy metals. Rev Environ Sci BioTechnol 3: 55–70.
  • Baker AJM, McGrath SP, Reeves RD, Smith JA. 2000. Metal hyperaccumulator plants: A review of the ecology and physiology of a biological resource for phytoremediation of metal-polluted soils. Boca Raton: Lewis Publishers. p. 85–197.
  • Bezel VS, Zhuikova TV. 2007. Chemical contamination of the environment: Carryover of chemical elements by the elevated grass phytomass. Ecology 4: 259–267.
  • Bhargava A, Carmona FF, Bhargava M, Srivastava S. 2012. Approaches for enhanced phytoextraction of heavy metals. J Environ Manag 105: 103–120.
  • Bormann FH. 1982. The effects of air pollution on the New England landscape. Ambio (Sweden) 11: 338–346.
  • Chaney RL, Broadhurst CL, Centofanti T. 2010. Trace Elements in Soils. In: Hooda PS, editor. Trace Elements in Soils, pp. 311–352. Ed. by. Chichester, UK: John Wiley & Sons, Ltd.
  • Chernykh NA, Ladonin VF. 1995. Standardization of soil contamination with heavy metals (in Russian). Agrochemistry 6: 71–80.
  • Conesa HM, Schulin R, Nowack B. 2007. A laboratory study on revegetation and metal uptake in native plant species from neutral mine tailings. Water Air Soil Pollut 183: 201–212.
  • Cortellini L, Toderi G, Baldoni G, Nassisi A. 1996. Effects on the Content of organic Matter, Nitrogen, Phosphorus and Heavy metals in Soil and Plants After Application of Compost and Sewage Sludge. In: de Bertoldi M, Sequi P, Lemmes B, Papi T, editors. The Science of Composting, pp. 457–468. Dordrecht: Springer Netherlands.
  • Doncheva AV, Kazakov LK, Kalutskov VN. 1992. Landscape indication of the environmental pollution (in Russian). Moscow: Ecologia.
  • Eränen JK. 2008. Rapid evolution towards heavy metal resistance by mountain birch around two subarctic copper-nickel smelters. J Evol Biol 21: 492–501.
  • Freedman B, Hutchinson TC. 1980. Long-term effects of smelter pollution at Sudbury, Ontario, on forest community composition. Canadian J Bot 58: 2123–2140.
  • Gomes MP, Marques TCLL de SM, Nogueira M, de OG, Castro EM, Soares ÂM. 2011. Ecophysiological and anatomical changes due to uptake and accumulation of heavy metal in Brachiaria decumbens. Sci. agric 68: 566–573.
  • Grodzinskiy DM. 1983. The reliability of plant systems (in Russian). Kyiv: Naukova Dumka.
  • Ilyin VB. 1995. Testing soil pollution with heavy metals (in Russian). Agrochemistry 10: 109–113.
  • Innes JL, Oleksyn J. 2000. Forest dynamics in heavily polluted regions. Report No. 1 of the IUFRO Task Force on Environmental Change. CABI Publishing.
  • Ipatova VI, Dmitriev AG. 2009. Evaluation of heavy metal toxicity by using higher aquatic plants (in Russian). Ecol Syst Instrum 1: 59–62.
  • Jaffre T, Brooks RR, Lee J, Reeves RD. 1976. Sebertia acumip A nickel-accumulating plant from New Caledonia. Science 193: 579–580.
  • Kazeev KS, Kolesnikov SI, Valkov VF. 2003. Biological diagnostics and indication of soil: methodology and research methods (in Russian). Rostov-on-Don: Publishing house of Rostov University.
  • Keeling SM, Stewart RB, Anderson CW, Robinson BH. 2003. Nickel and cobalt phytoextraction by the hyperaccumulator Berkheya coddii: implications for polymetallic phytomining and phytoremediation. Int J Phytoremed 5: 235–244.
  • Kozlov MV. 2005. Pollution resistance of mountain birch, Betula pubescens subsp. czerepanovii, near the copper-nickel smelter: natural selection or phenotypic acclimation? Chemosphere 59: 189–197.
  • Kucharski R, Sas-Nowosielska A, Małkowski E, Japenga J, Kuperberg JM, Pogrzeba M, Krzyżak J. 2005. The use of indigenous plant species and calcium phosphate for the stabilization of highly metal-polluted sites in southern Poland. Plant Soil 273: 291–305.
  • Lestan D, Luo C, Li X. 2008. The use of chelating agents in the remediation of metal-contaminated soils: a review. Environ Pollut 153: 3–13.
  • Malik N, Bisvas AK. 2012. Role of higer plants in remediation of metal contaminated sites. Sci Rev Chem Commun 2: 141–146.
  • Malizia D, Giuliano A, Ortaggi G, Masotti A. 2012. Common plants as alternative analytical tools to monitor heavy metals in soil. Chem Central J 6 Suppl 2: S6.
  • Melekhova OP, Yegorova EI. 2007. Biological control over the environment (in Russian). Moscow: Academa.
  • Mendez MO, Maier RM. 2007. Phytoremediation of mine tailings in temperate and arid environments. Rev Environ Sci BioTechnol 7: 47–59.
  • Motuzova GV, Bezuglova OS. 2007. Ecological monitoring of soils (in Russian). Moscow: Gaudeamus.
  • Musikhina TA. 2007. Regional standards of chemical elements in surface waters (in Russian). Ecol Ind Russia 5: 26–28.
  • Nicholayevskiy VS. 2002. Ecological assessment of environmental pollution and terrestrial ecosystems by phyto-indication methods (in Russian). Pushchino: VNIILM.
  • Nikanorov AM, Sukhorukov BL. 2008. Ecological hysteresis (in Russian). Doklady Earth Sci 423: 1282–1285.
  • Novitsky PV, Zograf IA. 1991. Evaluation of measurement errors (in Russian). Leningrad: Energoatomizdat.
  • Podol'skaya ZV, Buzaeva MV, Klimov ES. 2011. Adsorption of heavy metal ions on galvanic sludges and disposal of the sludges in soil (in Russian). Russian J Appl Chem 84: 40–43.
  • Puzachenko G. 1989. Ecosystems under critical conditions (in Russian). Moscow: Nauka.
  • Robinson BH, Leblanc M, Petit D, Brooks RR, Kirkman JH, Gregg PEH. 1970. The potential of Thlaspi caerulescens for phytoremediation of contaminated soils. Plant Soil 203: 47–56.
  • Saet Y, Revich B, Yakhnin E, Smirnova R, Basharkevitch I, Onischenko T, Pavlova L.1990. Geochemistry of the environment (in Russian). Moscow: Nedra
  • Sandalio LM, Dalurzo HC, Gomez M, Romero-Puertas MC, del Rio LA. 2001. Cadmium-induced changes in the growth and oxidative metabolism of pea plants. J Exp Bot 52: 2115–2126.
  • Scheffer M, Carpenter S, Foley JA, Folke C, Walker B. 2001. Catastrophic shifts in ecosystems. Nature 413: 591–6.
  • Schubert R. 1988. Bioindication of terrestrial ecosystems pollution (in Russian). Moscow: Mir.
  • Shannon CE. 2001. A mathematical theory of communication. ACM SIGMOBILE Mobile Comput Commun Rev 5: 3–55.
  • Smith RAH, Bradshaw AD. 1970. Reclamation of toxic metalliferous wastes using tolerant populations of grass. Nature 227: 376–377.
  • Trifonova TA, Alhutova EY, Shirkina LA. 2012. The model of ecotoxicity formation in soil under meadow vegetation given man-made contamination by heavy metals (in Russian). Ecol Syst Instrum 9: 35–42.
  • Trifonova TA, Senatov AS. 2008. Assessment of the maximum permissible man-made impact on the river basin of small streams (in Russian). Geoecology 4: 322–330.
  • Trifonova TA, Shirkin LA, Selivanov NV. 2007. Ecological and geochemical analysis of landscape contamination (in Russian). Vladimir: Vladimir Polygraph.
  • Trifonova TA, Alkhutova EY. 2012. Peculiarities of heavy metals accumulation by the plants of meadow phytocenosis. Open J Soil Sci 2: 275–281.
  • Vangronsveld J, Herzig R, Weyens N, Boulet J, Adriaensen K, Ruttens A, Thewys T. 2009. Phytoremediation of contaminated soils and groundwater: lessons from the field. Environ Sci Pollut Res Int 16: 765–794.
  • Vorobeichik EL. 2002. The change of the spatial structure of the destruction process in the height and toxic gradients: Natural and man-made analogies (in Russian). In: Ecological Problems of Mountain Areas 224–232. Proceedings of the International Scientific Conference. Yekaterinburg. p. 224–232.
  • Vorobeichik EL. 2004. Environmental regulation of toxic loads on terrestrial ecosystems (in Russian). Ekaterinburg: Mir.
  • Vorobeichik EL, Hantemirova EV. 1994. The reaction of forest phytocenoses on the industrial pollution: dose-response (in Russian). Ecology 3: 31–43.
  • Voronov AG. 1973. Geobotany (in Russian). Moscow: High School.
  • Wieshammer G, Unterbrunner R, García TB, Zivkovic MF, Puschenreiter M, Wenzel WW. 2007. Phytoextraction of Cd and Zn from agricultural soils by Salix ssp. and intercropping of Salix caprea and Arabidopsis halleri. Plant Soil 298: 255–264.
  • Zhirov VK, Golubeva EI, Govorov AF, Haitbaev AH. 2007. Structural and functional changes of vegetation under man-made pollution in the Far North (in Russian). Moscow: Science.

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