Cite

[1] Aleksander-Kwaterczak U., Helios-Rybicka E., 2009, Contaminated sediments as a potential source of Zn, Pb, and Cd for a river system in the historical metalliferous ore mining and smelting industry area of South Poland, J. Soils & Sediments, 9:13–22 http://dx.doi.org/10.1007/s11368-008-0051-z10.1007/s11368-008-0051-z Search in Google Scholar

[2] Aleksander-Kwaterczak U., Ciszewski D., Szarek-Gwiazda E., Waloszek A., Kwandrans J., Wilk-Woźniak E., 2010, Wpływ historycznej działalności kopalni rud Zn-Pb w Chrzanowie na stan środowiska wodnego doliny Matyldy, Górnictwo i Geologia, 5:21–30, (in Polish) Search in Google Scholar

[3] Balistrieri L.S., Seal II R.R., Piatak N.N., Paul B., 2007, Assessing the concentration, speciation, and toxicity of dissolved metals during mixing of acid-mine drainage and ambient river water downstream of the Elizabeth Copper Mine, Appl. Geochem., 22: 930–952 http://dx.doi.org/10.1016/j.apgeochem.2007.02.00510.1016/j.apgeochem.2007.02.005 Search in Google Scholar

[4] Besser J.M., Brumbaugh W.G., May T.W., Schmitt C.J., 2007, Biomonitoring of lead, zinc, and cadmium in streams draining leadmining and non-mining areas, Southeast Missouri, USA, Environ. Monit. Assess., 129, 227–241 http://dx.doi.org/10.1007/s10661-006-9356-910.1007/s10661-006-9356-9 Search in Google Scholar

[5] Bielańska-Grajner I., Gładysz A., 2010, Plankotnic rotifers in mining lakes in the Silesian Upland: relationships to environmental parameters, Limnologica, 40: 67–72 http://dx.doi.org/10.1016/j.limno.2009.05.00310.1016/j.limno.2009.05.003 Search in Google Scholar

[6] Burchardt L., Pawlik-Skowrońska B., 2005, Zakwity sinic — konkurencja międzygatunkowa i środowiskowe zagrożenie, Wiad. Bot., 49: 39–49 (in Polish) Search in Google Scholar

[7] Celewicz-Gołdyn S., 2005, —Abundance of Dinobryon divergens Imhoff in the eutrophic lake Rosnowskie Duże in 2002–2003, Rocz. Akad. Rol. w Poznaniu, CCCLXXIII, Bot.-Stec. 9: 23–30 Search in Google Scholar

[8] Chapman P.M., 2007, Determining when contamination is pollution — weight of evidence determinations for sediments and effluents, Environ. Int., 33: 492–501 http://dx.doi.org/10.1016/j.envint.2006.09.00110.1016/j.envint.2006.09.001 Search in Google Scholar

[9] Ciszewski D., 1998, Channel processes as a factor controlling accumulation of heavy metals in river bottom sediments: consequences for pollution monitoring (Upper Silesia, Poland), Environ. Geol., 36, 45–54 http://dx.doi.org/10.1007/s00254005031910.1007/s002540050319 Search in Google Scholar

[10] Ciszewski D., 2004, Pollution of the Mała Panew River sediments by heavy metals: effect of changes in river bed morphology, Pol. J Environ. Stud., 13: 589–595 Search in Google Scholar

[11] Ciszewski D., Czajka A., Błażej S., 2008, Rapid migration of heavy metals and 137Cs in alluvial sediments of the Upper Odra River valley, Poland, Environ. Geol., 55: 1577–1586 http://dx.doi.org/10.1007/s00254-007-1108-910.1007/s00254-007-1108-9 Search in Google Scholar

[12] Ciszewski D., Aleksander-Kwaterczak U., Kubsik U., Kwandrans J., Pociecha A. et al., 2010, —Interdyscyplinarne badania skutków zanieczyszczenia wód i osadów stawów i cieków doliny Matyldy — próba klasyfikacji, In: Ludwikowska-Kędzia M., Zieliński A., (Ed.) Badania interdyscyplinarne — przeszłośĆ, teraźniejszośĆ, przyszłośĆ nauk przyrodniczych. Inst. Geog. UJK Kielce, 40–43 (in Polish) Search in Google Scholar

[13] Clement B., Devaux A., Perrodin Y., Danjean M., Ghidini-Fatus M., 2004, Assessment of sediment ecotoxicity and genotoxicity in freshwater laboratory microcosms, Ecotoxicology, 13: 323–333 http://dx.doi.org/10.1023/B:ECTX.0000033090.54897.9410.1023/B:ECTX.0000033090.54897.94 Search in Google Scholar

[14] Dziengo-Czaja M., Koss J., Matuszak A., 2008, Teratological forms of diatoms (Bacillariophyceae) as indicators of water pollution in the western part of Puck Bay (southern Balitic Sea), Ocean. Hydrob. Stud., 37: 119–132 http://dx.doi.org/10.2478/v10009-007-0042-110.2478/v10009-007-0042-1 Search in Google Scholar

[15] Förstner U., Wittman G.T., 1983, Metal Pollution in the Aquatic Environment, Springer, Berlin, Heidelberg, pp. 486 Search in Google Scholar

[16] Jak R.G., Maas J.I., Scholten M.C.T., 1996, Evaluation of laboratory derived toxic effect concentrations of a mixture of metals by testing freshwater plankton communities in enclosures, Water Res., 30: 1215–1227 http://dx.doi.org/10.1016/0043-1354(95)00272-310.1016/0043-1354(95)00272-3 Search in Google Scholar

[17] Krupa D., 1981, Ceratium hirundinella (O.F. Muller) Bergh in two trophically different lakes. II. Development and morphological variation of active forms and cysts, Ekol. Pol.-Pol. J Ecol., 29: 571–583 Search in Google Scholar

[18] Ligęza S., Wilk-Woźniak E., 2011, The occurrence of Euglena pascheri and Lepocinclic ovum bloom in an oxbow Lake in southern Poland under extreme environmental conditions. Ecological indicators, 11: 925–929 http://dx.doi.org/10.1016/j.ecolind.2010.10.00810.1016/j.ecolind.2010.10.008 Search in Google Scholar

[19] Linnik P.M., 2000, Zinc, lead and cadmium speciation in Dniepr waterbodies. Lake reservoir management, 5: 261–270 http://dx.doi.org/10.1046/j.1440-1770.2000.00126.x10.1046/j.1440-1770.2000.00126.x Search in Google Scholar

[20] Lund J.W.G., Kipling G., Le Cren E.D., 1958, The inverted microscope method of estimating algae numbers and the statistical basis of estimation by counting. Hydrobiologia, 11: 143–170 http://dx.doi.org/10.1007/BF0000786510.1007/BF00007865 Search in Google Scholar

[21] Morin S., Dong T.T., Drabin A., Coynel A., Herlory O. et al., 2008, Long-term survey of heavy metal pollution, biofilm contamination and diatom community structure in the Riou Mort watershed, southwest France, Environ. Pollut., 151: 532–542 http://dx.doi.org/10.1016/j.envpol.2007.04.02310.1016/j.envpol.2007.04.023 Search in Google Scholar

[22] Pasternak K., 1971, The content of copper, zinc and manganese in the water of the dam reservoir at Goczałkowice and of several other reservoirs, Acta Hydrobiol., 13: 159–177. Search in Google Scholar

[23] Paulsson M., Nystrom B., Blanck, H., 2000, Long-term toxicity of zinc to bacteria and algae in periphyton communities from the river Gota Alv, based on a microcosm study, Aquatic Toxic., 47: 243–257 http://dx.doi.org/10.1016/S0166-445X(99)00013-210.1016/S0166-445X(99)00013-2 Search in Google Scholar

[24] Pawlik-Skowrońska B., 2001, Phytochelatin productions in freshwater alga Stigeoclonium in response to heavy metals contained in mining water; effects of some environmental factors, Aquatic Toxic., 52: 241–249 http://dx.doi.org/10.1016/S0166-445X(00)00144-210.1016/S0166-445X(00)00144-2 Search in Google Scholar

[25] Pawlik-Skowrońska B., 2002, Tajemnice odporności glonów i sinic na toksyczne metale ciężkie, Kosmos, 51:175–184 Search in Google Scholar

[26] Pawlik-Skowrońska B., 2002b, Correlations between toxic Pb effects and production of Pb-induced thiol peptides in the microalga Stichococcus bacillaris, Environ. Pollut., 119: 119–127 http://dx.doi.org/10.1016/S0269-7491(01)00280-910.1016/S0269-7491(01)00280-9 Search in Google Scholar

[27] PN-EN ISO 17294-1, 2007, Water quality — Application of mass spectrometry with inductively coupled plasma (ICP-MS), 40 pp Search in Google Scholar

[28] Pociecha A., Higgins T., McCarthy T.K., 2010, A preliminary study on the plankton assemblages of Lough Derg (Ireland) during a winter-spring season. Ocean. Hydrob. Stud., 39: 145–154 http://dx.doi.org/10.2478/v10009-010-0032-610.2478/v10009-010-0032-6 Search in Google Scholar

[29] Sarma S.S.S., Azuara-Garcia R., Nandini S., 2007a, Combined effects of zinc and algal food on the competition between planktonie rotifers, Anuraeopsis fissa and Brachionus Rubens (Rotifera), Aquatic ecology, 41: 631–638 http://dx.doi.org/10.1007/s10452-007-9120-410.1007/s10452-007-9120-4 Search in Google Scholar

[30] Sarma S. S. S., Peredo-Alvarez V. M., Nandini S., 2007b, Comparative study of the sensitivities of neonates and adults of selected cladoceran (Cladocera: Crustacea) species to acute toxicity stress, J Environ. Sci. Heal. A, 42: 1449–1452 http://dx.doi.org/10.1080/1093452070148083910.1080/1093452070148083917680484 Search in Google Scholar

[31] Shubert E., Rusu A-M., Bartok K., Moncrieff C.B., 2001, Distribution and abundance of edaphic algae adapted to highly acidic, metal rich soils, Nova Hedwigia, 123: 411–425 Search in Google Scholar

[32] Smolyakov B.S., Ryzhikh S.B., Bortnikova S.B., Saeva O.P., Chernova N.Yu., 2010, Behavior of metals (Cu, Zn, and Cd) in the initial stage of water system contamination: Effect of pH and suspended particles, Appl. Geochem., 25: 1153–1161 http://dx.doi.org/10.1016/j.apgeochem.2010.05.00110.1016/j.apgeochem.2010.05.001 Search in Google Scholar

[33] Smolyakov B.S., Ryzhikh A.P., Romanov R.E., 2010b, The fate of Cu, Zn, and Cd in the initial stage of water system contamination: the effect of phytoplankton activity, J Hazard. Mater., 184: 819–825 http://dx.doi.org/10.1016/j.jhazmat.2010.08.11510.1016/j.jhazmat.2010.08.11520875928 Search in Google Scholar

[34] Szuwarzyński M., 2000, Zakłady Górnicze “Trzebionka” S.A. 1950–2000, Przedsiębiorstwo Doradztwa Technicznego „Kadra”, Trzebinia (in Polish). Search in Google Scholar

[35] Vymazal J., 1995, Algae and element cycling in wetlands. CRC Press/Lewis Publisher, Boca Raton, Florida, pp. 689 Search in Google Scholar

[36] Wilk-Woźniak E., 2009, Zmiany populacyjne w zbiorowiskach glonów planktonowych oraz ich strategie życiowe w warunkach ekosystemów wodnych sztucznie zmienionych (Changes in phytoplankton communities and the life strategies of planktonic algae in artificially changed aquatic ecosystems). Studia Naturae 55, IOP PAN, Kraków, pp. 132 (in Polish with English summ.) Search in Google Scholar

[37] Wilk-Woźniak E., Marshall H.G., 2009, Diel changes in phytoplankton composition and abundance in the surface and subsurface strata from a shallow eutrophic pond, Int. Rev. Hydrobiol., 94: 29–39 http://dx.doi.org/10.1002/iroh.20081111210.1002/iroh.200811112 Search in Google Scholar

[38] Wołowski K., Grabowska M., 2007, Trachelomonas species as the main component of the euglenophyte community in the Siemianówka Reservoir (Narew River, Poland), Ann. Limnol. — Int. J. Lim., 43: 207–218. http://dx.doi.org/10.1051/limn:200701510.1051/limn:2007015 Search in Google Scholar

[39] Wołowski K., Turnau K., Henriques F. S., 2008, The algal flora of an extremely acidic, metal-rich drainage pond of Săo Domingos pyrite mine (Portugal), Cryptogamie Algol., 29: 313–324. Search in Google Scholar

eISSN:
1897-3191
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Chemistry, other, Geosciences, Life Sciences