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Determination of Heavy Metal Accumulation in Plant Samples by Spectrometric Techniques in Turkey

References

  • Gadzala-Kopciuch, R., Berecka, B., Bartoszewicz, J., and Buszewski, B. (2004) Some considerations about bioindicators in environmental monitoring. Polish Journal of Environmental Studies, 13 (5): 453–462.
  • Ugulu, I., Dogan, Y., Baslar, S., and Varol, O. (2012) Biomonitoring of trace element accumulation in plants growing at Murat Mountain. International Journal of Environmental Science and Technology, 9: 527–534.
  • Brandys, J., Gawlik, M., Moniczewski, A., Rutkowska, A., and Starek, A. (1999) Toxicology, Selected Aspects. Jagiellonian University Press: Cracow, Poland.
  • Nriagu, J.O. (1979) Global metal pollution, poisoning the biosphere. Environment, 32 (7): 7–33.
  • Yasar, U., Ozyiğit, I.I., and Serin, M. (2010) Judas tree (Cercis siliquastrum L. subsp. siliquastrum) as a possible biomonitor for Cr, Fe and Ni in Istanbul (Turkey). Roumanian Biotechnology Letters, 15 (1): 4979–4989.
  • Osma, E., Serin, M., Leblebici, Z., and Aksoy, A. (2012) Heavy metals accumulation in some vegetables and soils in Istanbul. Ekoloji, 21 (82): 1–8.
  • Nagajyoti, P.C., Lee, K.D., and Sreekanth, A.V.M. (2010) Heavy metals, occurrence and toxicity for plants: A review. Environmental Chemistry Letters, 8: 199–216.
  • Lenntech Water Treatment and Air Purification. (2004) Water Treatment. Lenntech, Rotterdamseweg, The Netherlands. Available at: http://www. excelwater.com/thp/filters/Water-Purification.htm (accessed October 20, 2012).
  • Hawkes, J.S. (1997) Heavy metals. Journal of Chemical Education, 74: 1369–1374.
  • Szyczewski, P., Siepak, J., Niedzielski, P., and Sobczyński, T. (2009) Research on heavy metals in Poland. Polish Journal of Environmental Studies, 18 (5): 755–768.
  • Schwitzguebel, J.-P. (2001) Hype or hope: The potential of phytoremediation as an emerging green technology. Remediation, 11: 63–78.
  • Kim, I.S., Kang, K.H., Johnson-Green, P., and Lee, E.J. (2003) Investigation of heavy metal accumulation in Polygonum thunbergii for phytoextraction. Environmental Pollution, 126: 235–243.
  • Freitas, H., Prasad, M.N.V., and Pratas, J. (2004) Analysis of serpentinophytes from north-east of Portugal for trace metal accumulation-relevance to the management of mine environment. Chemosphere, 54: 1625–1642.
  • Swaileh, K.M., Hussein, R.M., and Abu-Elhaj, S. (2004) Assessment of heavy metal contamination in roadside surface soil and vegetation from the West Bank. Archives of Environmental Contamination and Toxicology, 47: 23–30.
  • Sardans, J. and Penuelas, J. (2005) Trace element accumulation in the moss Hypnum cupressiforme Hedw. and the trees Quercus ilex L. and Pinus halepensis Mill. in Catalonia. Chemosphere, 60: 1293–1307.
  • Zeidler, M. (2005) Heavy metals in two herb species (river Morava, Czech Republic). Polish Journal of Ecology, 53: 185–195.
  • González, R.C. and González-Chávez, M.C.A. (2006) Metal accumulation in wild plants surrounding mining wastes. Environmental Pollution, 144: 84–92.
  • Arslan, H., Guleryuz, G., Leblebici, Z., Kirmizi, S., and Aksoy, A. (2010) Verbascum bombyciferum Boiss. (Scrophulariaceae) as possible bio-indicator for the assessment of heavy metals in the environment of Bursa, Turkey. Environmental Monitoring and Assessment, 163: 105–113.
  • Bargagli, R. (1998) Trace Elements in Terrestrial Plants: An Ecophysiological Approach to Biomonitoring and Biorecovery. Springer: New York.
  • Calzoni, G.L., Antognoni, F., Pari, E., Fonti, P., Gnes, A., and Speranza, A. (2007) Active biomonitoring of heavy metal pollution using Rosa rugosa plants. Environmental Pollution, 149 (2): 239–245.
  • Szczepaniak, K. and Biziuk, M. (2003) Aspects of the biomonitoring studies using mosses and lichens as indicators of metal pollution. Environmental Research, 93 (3): 221–230.
  • Ng, O.-H., Tan, B.C., and Obbard, J.P. (2005) Lichens as bioindicators of atmospheric heavy metal pollution in Singapore. Environmental Monitoring and Assessment, 123: 63–74.
  • Akguc, N., Ozyigit, I.I., and Yarci, C. (2008) Pyracantha coccinea Roem. (Rosaceae) as a biomonitor for Cd, Pb and Zn in Mugla province (Turkey). Pakistan Journal of Botany, 40 (4): 1767–1776.
  • Malakootian, M., Nouri, J., and Hossaini, H. (2009) Removal of heavy metals from paint industries wastewater using Leca as an available adsorbent. International Journal of Environmental Science and Technology, 6 (2): 183–190.
  • Wolterbeek, B. (2002) Biomonitoring of trace element air pollution: Principles, possibilities and perspectives. Environmental Pollution, 120 (1): 11–21.
  • Wittig, R. (1993) General aspects of biomonitoring heavy metals by plants. In Plants as Biomonitors Indicators for Heavy Metals in the Terrestrial Environment, Markert, B., Ed. VCH Publisher: Weinheim, Germany, pp. 3–28.
  • Augusto, S., Catarino, F., and Branquinho, C. (2007) Interpreting the dioxin and furan profiles in the lichen Ramalina canariensis Steiner for monitoring air pollution. Science of the Total Environment, 377: 114–123.
  • Lovett, A.A., Foxall, C.D., and Chewe, D. (1997) PCB and PCDD/F congeners in locally grown fruit and vegetable samples in Wales and England. Chemosphere, 34: 1421–1436.
  • Aksoy, A. and Ozturk, M.A. (1997) Nerium oleander as a biomonitor of lead and other heavy metal pollution in Mediterranean environments. Science of the Total Environment, 205: 145–150.
  • Sakurai, T., Kim, J., Suzuki, N., Matsuo, T., Li, D., and Yao, Y. (2000) Polychlorinated dibenzo-p dioxins and dibenzofurans in sediment, soil, fish, shellfish and crab samples from Tokyo Bay area, Japan. Chemosphere, 40: 627–640.
  • Aksoy, A. (2008) Chicory (Cichorium intybus L.): A possible biomonitor of metal pollution. Pakistan Journal of Botany, 40 (2): 791–797.
  • Atiq-Ur-Rehman, S. and Iqbal, M. (2008) Level of heavy metals in the foliage of naturally growing plants collected from Korangi and Landhi industrial areas of Karachi city, Pakistan. Pakistan Journal of Botany, 40 (2): 785–789.
  • Baker, A.J.M. (1981) Accumulators and excluders strategies in the response of plants to heavy metals. Journal of Plant Nutrition, 3: 643–654.
  • Pugh, R.E., Dick, D.G., and Fredeen, A.L. (2002) Heavy metal (Pb, Zn, Cd, Fe and Cu) contents of plant foliage near the Anvil range leaf/zinc mine, Faro, Yukon territory. Ecotoxicology and Environmental Safety, 52: 273–279.
  • McIntyre, T. (2003) Phytoremediation of heavy metals from soils. In Advances in Biochemical Engineering/Biotechnology, Scheper, T., Ed. Springer: Berlin, pp. 97–123.
  • Guleryuz, G., Arslan, H., Celik, C., Gucer, S., and Kendall, M. (2008) Heavy metal content of plant species along Nilüfer Stream in industrialized Bursa City, Turkey. Water, Air, and Soil Pollution, 195: 275–284.
  • Lake, D.L., Kirk, P.W.W., and Lester, J.N. (1984) The fractionation, characterization and speciation of heavy metals in sewage sludge and sewage sludge amended soils: A review. Journal of Environmental Quality, 13: 175–183.
  • Maisto, G., Alfani, A., Baldantoni, D., Marco, A., and Santo, A.V. (2004) Trace metals in the soil and in Quercus ilex L. leaves at anthropic and remote sites of the Campania region of Italy. Geoderma, 122: 269–279.
  • Saglam, C. (2013) Heavy metal accumulation in edible parts of some cultivated plants and media samples from a volcanic region in southern Turkey. Ekoloji, 22 (86): 1–8.
  • Demirayak, A., Kutbay, H.G., Kilic, D., Bilgin, A., and Huseyinova, R. (2011) Heavy metal accumulation in some natural and exotic plants in Samsun City. Ekoloji, 20 (79): 1–11.
  • Choi, J.M., Pak, C.H., and Lee, C.W. (1996) Micronutrient toxicity in French marigold. Journal of Plant Nutrition, 19: 901–916.
  • Ebbs, S.D. and Kochian, L.V. (1997) Toxicity of zinc and copper to Brassica species: implications for phytoremediation. Journal of Environmental Quality, 26: 776–781.
  • Fontes, R.L.S. and Cox, F.R. (1998) Zinc toxicity in soybean grown at high iron concentration in nutrient solution. Journal of Plant Nutrition, 21: 1723–1730.
  • Das, P., Samantaray, S., and Rout, G.R. (1997) Studies on cadmium toxicity in plants: a review. Environmental Pollution, 98: 29–36.
  • Sanita di Toppi, L. and Gabbrielli, R. (1999) Response to cadmium in higher plants. Environmental and Experimental Botany, 41: 105–130.
  • Wojcik, M. and Tukiendorf, A. (2004) Phytochelatin synthesis and cadmium localization in wild type of Arabidopsis thaliana. Plant Growth Regulation, 44: 71–80.
  • Mohanpuria, P., Rana, N.K., and Yadav, S.K. (2007) Cadmium induced oxidative stress influence on glutathione metabolic genes of Camella sinensis (L.). O Kuntze. Environmental Toxicology, 22: 368–374.
  • Guo, J., Dai, X., Xu, W., and Ma, M. (2008) Over expressing GSHI and AsPCSI simultaneously increases the tolerance and accumulation of cadmium and arsenic in Arabidopsis thaliana. Chemosphere, 72: 1020–1026.
  • Wilkinson, R.E. (1994) Plant–Environment Interaction. Marcel Dekker: New York.
  • Thomas, F., Malick, C., Endreszl, E.C., and Davies, K.S. (1998) Distinct responses to copper stress in the halophyte, Mesembryanthemum crystallium. Physiologia Plantarum, 102: 360–368.
  • Demirevska-Kepova, K., Simova-Stoilova, L., Stoyanova, Z., Holzer, R., and Feller, U. (2004) Biochemical changes in barley plants after excessive supply of copper and manganese. Environmental and Experimental Botany, 52: 253–266.
  • Lewis, S., Donkin, M.E., and Depledge, M.H. (2001) Hsp 70 expression in Enteromorpha intestinalis (Chlorophyta) exposed to environmental stressors. Aquatic Toxicology, 51: 277–291.
  • Han, F.X., Su, Y., Monts, D.L., Waggoner, A.C., and Plodinec, J.M. (2006) Binding distribution, and plant uptake of mercury in a soil from Oak Ridge, Tennesse, USA. Science of the Total Environment, 368: 753–768.
  • Zhou, Z.S., Huang, S.Q., Guo, K., Mehta, S.K., Zhang, P.C., and Yang, Z.M. (2007) Metabolic adaptations to mercury-induced oxidative stress in roots of Medicago sativa L. Journal of Inorganic Biochemistry, 101: 1–9.
  • Messer, R.L., Lockwood, P.E., Tseng, W.Y., Edwards, K., Shaw, M., Caughman, G.B., Lewis, J.B., and Wataha, J.C. (2005) Mercury (II) alters mitochondrial activity of monocytes at sublethal doses via oxidative stress mechanisms. Journal of Biomedical Materials Research Part B: Applied Biomaterial, 75: 257–263.
  • Cargnelutti, D., Tabaldi, L.A., Spanevello, R.M., Jucoski, G.O., Battisti, V., Redin, M., Linares, C.E.B., Dressler, V.L., Flores, M.M., Nicoloso, F.T., Morsch, V.M., and Schetinger, M.R.C. (2006) Mercury toxicity induces oxidative stress in growing cucumber seedlings. Chemosphere, 65: 999–1106.
  • Clijsters, H. and Van Assche, F. (1985) Inhibition of photosynthesis by heavy metals. Photosynthesis Research, 7: 31–40.
  • Kaji, T., Suzuki, M., Yamamoto, C., Mishima, A., Sakamoto, M., and Kozuka, H. (1995) Severe damage of cultured vascular endothelial cell monolayer after simultaneous exposure to cadmium and lead. Archives of Environmental Contamination and Toxicology, 28: 168–172.
  • Sinha, S.K., Srinivastava, H.S., and Mishra, S.N. (1988) Nitrate assimilation in intact and excised maize leaves in the presence of lead. Bulletin of Environmental Contamination and Toxicology, 41: 419–422.
  • Sinha, S.K., Srinivastava, H.S., and Mishra, S.N. (1988) Effect of lead on nitrate reductase activity and nitrate assimilation in pea leaves. Acta Societatis Botanicorum Poloniae, 57: 457–463.
  • Sharma, P. and Dubey, R.S. (2005) Lead toxicity in plants. Brazilian Journal of Plant Physiology, 17: 35–52.
  • Li, H.F., Gray, C., Mico, C., Zhao, F.J., and McGrath, S.P. (2009) Phytotoxicity and bioavailability of cobalt to plants in a range of soils. Chemosphere, 75: 979–986.
  • Zornoza, P., Robles, S., and Martin, N. (1999) Alleviation of nickel toxicity by ammonium supply to sunflower plants. Plant and Soil, 208: 221–226.
  • Pandey, N. and Sharma, C.P. (2002) Effect of heavy metals Co, Ni, and Cd on growth and metabolism of cabbage. Plant Science, 163: 753–758.
  • Rahman, H., Sabreen, S., Alam, S., and Kawai, S. (2005) Effects of nickel on growth and composition of metal micronutrients in barley plants grown in nutrient solution. Journal of Plant Nutrition, 28: 393–404.
  • Gajewska, E., Sklodowska, M., Slaba, M., and Mazur, J. (2006) Effect of nickel on antioxidative enzymes activities, proline and chlorophyll contents in wheat shoots. Biologia Plantarum, 50: 653–659.
  • Kitao, M., Lei, T.T., and Koike, T. (1997) Effects of manganese toxicity on photosynthesis of white birch (Betula platyphylla var. japonica) seedlings. Physiologia Plantarum, 101: 249–256.
  • Wu, S. (1994) Effect of manganese excess on the soybean plant cultivated under various growth conditions. Journal of Plant Nutrition, 17: 993–1003.
  • Bachman, G.R. and Miller, W.B. (1995) Iron chelate inducible iron/ manganese toxicity in zonal geranium. Journal of Plant Nutrition, 18: 1917–1929.
  • Arora, A., Sairam, R.K., and Srivastava, G.C. (2002) Oxidative stress and antioxidative system in plants. Current Science, 82: 1227–1338.
  • de Dorlodot, S., Lutts, S., and Bertin, P. (2005) Effects of ferrous iron toxicity on the growth and mineral composition of an inter specific rice. Journal of Plant Nutrition, 28: 1–20.
  • Sardans, J., Montes, F., and Penuelas, J. (2011) Electrothermal atomic absorption spectrometry to determine As, Cd, Cr, Cu, Hg, and Pb in soils and sediments: A review and perspectives. Soil and Sediment Contamination, 20: 447–491.
  • Amorim, F.A.C., Lobo, I.P., Santos, V.L.C.S., and Ferreira, S.L.C. (2008) Atomic absorption spectrometry: The way for multielement determinations. Química Nova, 31 (7): 1784–1790.
  • Duran, A., Tuzen, M., and Soylak, M. (2009) Trace metal contents in chewing gums and candies marketed in Turkey. Environmental Monitoring and Assessment, 149: 283–289.
  • Dessuy, M.B., Vale, M.G.R., Souza, A.S., Ferreira, S.L.C., Welz, B., and Katskov, D.A. (2008) Method development for the determination of lead in wine using electrothermal atomic absorption spectrometry comparing platform and filter furnace atomizers and different chemical modifiers. Talanta, 74 (5): 1321–1329.
  • Lemos, V.A. and Carvalho, L.A. (2010) Determination of cadmium and lead in human biological samples by spectrometric techniques: A review. Environmental Monitoring and Assessment, 171: 255–265.
  • Narin, I. and Soylak, M. (2003) Enrichment and determinations of nickel(II), cadmium(II), copper(II), cobalt(II) and lead(II) ions in natural waters, table salts, tea and urine samples as pyrrolydine dithiocarbamate chelates by membrane filtration–flame atomic absorption spectrometry combination. Analytica Chimica Acta, 493 (2): 205–212.
  • Gama, E.M., Lima, A.D., and Lemos, V.A. (2006) Preconcentration system for cadmium and lead determination in environmental samples using polyurethane foam/Me-BTANC. Journal of Hazardous Materials, 136 (3): 757–762.
  • Souza, A.S., Dos Santos, W.N.L., and Ferreira, S.L.C. (2005) Application of Box–Behnken design in the optimisation of an on-line pre-concentration system using knotted reactor for cadmium determination by flame atomic absorption spectrometry. Spectrochimica Acta B: Atomic Spectroscopy, 60 (5): 737–742.
  • Lemos, V.A., Da Silva, D.G., De Carvalho, A.L., Santana, D.A., Novaes, G.D., and Passos, A.S. (2006) Synthesis of amberlite XAD-2-PC resin for preconcentration and determination of trace elements in food samples by flame atomic absorption spectrometry. Microchemical Journal, 84 (1–2): 14–21.
  • Bakirdere, S., Aydin, F., Bakirdere, E.G., Titretir, S., Akdeniz, I., Aydin, I., Yildirim, E., and Arslan, Y. (2011) From mg/kg to pg/kg levels: A story of trace element determination: A review. Applied Spectroscopy Reviews, 46 (1): 38–66.
  • Nolte, J. (2003) ICP Emission Spectrometry, A Practical Guide. Wiley-VCH: Weinheim, Germany.
  • Anthemidis, A.N., Arvanitidis, V., and Stratis, J.A. (2005) On-line emulsion formation and multi-element analysis of edible oils by inductively coupled plasma atomic emission spectrometry. Analytica Chimica Acta, 537 (1–2): 271–278.
  • Alhas, E., Oymak, S.A., and Akin, H.K. (2009) Heavy metal concentrations in two barb, Barbus xanthopterus and Barbus rajanorum mystaceus from Ataturk Dam Lake, Turkey. Environmental Monitoring and Assessment, 148 (1–4): 11–18.
  • Saint Pierre, T.D., Dias, L.F., Maia, S.M., and Curtius, A.J. (2004) Determination of Cd, Cu, Fe, Pb in gasoline as emulsion by electrothermal vaporization ICP-MS with analyte addition and isotope dilution calibration techniques. Spectrochimica Acta B: Atomic Spectroscopy, 59 (4): 551–558.
  • Kahen, K., Strubinger, A., Chirinos, J.R., and Montaser, A. (2003) Direct injection high efficiency nebulizer inductively coupled plasma mass spectrometry for analysis of petroleum samples. Spectrochimica Acta B: Atomic Spectroscopy, 58 (3): 397–413.
  • Baba, A., Eris, F.S., Hicsonmez, U., Cam, S., and Ozdilek, H.G. (2008) An assessment of the quality of various bottled mineral water marketed in Turkey. Environmental Monitoring and Assessment, 139 (1–3): 277–285.
  • Frankel, J. and Wallen, N. (2000) How to Design and Evaluate Research in Education. McGraw-Hill Higher Education: Boston.
  • Elo, S. and Kyngs, H. (2007) The qualitative content analysis process. Journal of Advanced Nursing, 62 (1): 107–115.
  • Akguc, N., Ozyigit, I.I., Yasar, U., Leblebici, Z., and Yarci, C. (2010) Use of Pyracantha coccinea Roem. as a possible biomonitor for the selected heavy metals. International Journal of Environmental Science and Technology, 7 (3): 427–434.
  • Celik, S., Yucel, E., Celik, S., Gucel, S., and Ozturk, M. (2010) Carolina poplar (Populus × canadensis Moench) as a biomonitor of trace elements in Black Sea region of Turkey. Journal of Environmental Biology, 31: 225–232.
  • Dogan, Y., Ugulu, I., and Baslar, S. (2010) Turkish Red Pine as a biomonitor: A comperative study of the accumulation of trace elements in needles and barks. Ekoloji, 19 (75): 88–96.
  • Turan, D., Kocahakimoglu, C., Kavcar, P., Gaygisiz, H., Atatanir, L., Turgut, C., and Sofuoglu, S.C. (2011) The use of olive tree (Olea europaea L.) leaves as a bioindicator for environmental pollution in the Province of Aydin, Turkey. Environmental Science & Pollution Research, 18: 355–364.
  • Ozmen, H. and Aksu, Y. (2012) Determination of heavy metals in grape (white and black) and grape products grown in the Elazig. NWSA-Physical Sciences, 7 (1): 37–42.
  • Ozmen, H. and Aksu, Y. (2012) Determination of Fe and Zn in black grapes grown in the Elazig. NWSA-Physical Sciences, 7 (1): 43–48.
  • Bakirdere, S. and Yaman, M. (2008) Determination of lead, cadmium and copper in roadside soil and plants in Elazig, Turkey. Environmental Monitoring and Assessment, 136: 401–410.
  • Kaya, G. and Yaman, M. (2008) Trace metal concentrations in cupressaceae leaves as biomonitors of environmental pollution. Trace Elements and Electrolytes, 25 (3): 156–164.
  • Huseyinova, R., Kutbay, H.G., Bilgin, A., Kilic, D., Horuz, A., and Kirmanoglu, C. (2009) Sulphur and some heavy metal contents in foliage of Corylus avellana and some roadside native plants in Ordu Province, Turkey. Ekoloji, 18 (70): 10–16.
  • Sasmaz, A. (2009) The Distribution and accumulation of selenium in roots and shoots of plants naturally grown in the soils of Keban's Pb-Zn-F mining area, Turkey. International Journal of Phytoremediation, 11: 385–395.
  • Hamurcu, M., Ozcan, M.M., Dursun, N., and Gezgin, S. (2010) Mineral and heavy metal levels of some fruits grown at the roadsides. Food and Chemical Toxicology, 48: 1767–1770.
  • Kaya, G. and Yaman, M. (2012) Determination of trace metals in plant leaves as biomonitor of pollution extent by a sensitive STAT-AAS method. Instrumentation Science & Technology, 40: 61–74.
  • Karaaslan, N.M. and Yaman, M. (2013) Determination of nickel and chromium in Pinus nigra L., Cedrus libani, and Cupressus arizonica leaves to monitor the effects of pollution in Elazig (Turkey). Instrumentation Science & Technology, 41: 335–348.
  • Osma, E., Serin, M., Leblebici, Z., and Aksoy, A. (2013) Assessment of heavy metal accumulations (Cd, Cr, Cu, Ni, Pb, and Zn) in vegetables and soils. Polish Journal of Environmental Studies, 22 (5): 1449–1455.
  • Baslar, S., Dogan, Y., Durkan, N., and Bag, H. (2009) Biomonitoring of zinc and manganese in bark of Turkish red pine of Western Anatolia. Journal of Environmental Biology, 30 (5): 831–834.
  • Yildiz, D., Kula, I., Ay, G., Baslar, S., and Dogan, Y. (2010) Determination of trace elements in the plants of Mt. Bozdag, Izmir, Turkey. Archives of Biological Science, 62 (3): 731–738.
  • Avci, H. (2012) Trace metals in vegetables grown with municipal and industrial wastewaters. Toxicology and Environmental Chemistry, 94 (6): 1125–1143.
  • Demirezen, D. and Aksoy, A. (2004) Accumulation of heavy metals in Typha angustifolia (L.) and Potamogeton pectinatus (L.) living in Sultan Marsh (Kayseri, Turkey). Chemosphere, 56: 685–696.
  • Divrikli, U., Horzum, N., Soylak, M., and Elci, L. (2006) Trace heavy metal contents of some spices and herbal plants from western Anatolia, Turkey. International Journal of Food Science and Technology, 41: 712–716.
  • Tokalioglu, S. and Kartal, S. (2005) Determination of Cu, Pb, Cd, Ni, Cr, Co, Mn, Fe and Zn in algae and vegetable samples using wet and dry ashing procedures. Trace Elements and Electrolytes, 22 (3): 169–173.
  • Demirezen, D. and Aksoy, A. (2006) Heavy metal levels in vegetables in Turkey are within safe limits for Cu, Zn, Ni and exceeded for Cd and Pb. Journal of Food Quality, 29: 252–265.
  • Yilmaz, R., Sakcali, S., Yarci, C., Aksoy, A., and Ozturk, M. (2006) Use of Aesculus hippocastanum L. as a biomonitor of heavy metal pollution. Pakistan Journal of Botany, 38 (5): 1519–1527.
  • Coskun, M. (2006) Toxic metals in the Austrian Pine (Pinus nigra) bark in the Thrace Region, Turkey. Environmental Monitoring and Assessment, 121: 173–179.
  • Baslar, S., Dogan, Y., Bag, H., and Elci, A. (2003) Trace Element Biomonitoring by Needles of Pinus brutia TEN. from Western Anatolia, Turkey. Fresenius Environmental Bulletin, 12 (5): 450–453.
  • Yilmaz, S. and Zengin, M. (2004) Monitoring environmental pollution in Erzurum by chemical analysis of Scots pine (Pinus sylvestris L.) needles. Environment International, 29: 1041–1047.
  • Baslar, S., Dogan, Y., Yenil, N., Karagoz, S., and Bag, H. (2005) Trace element biomonitoring by leaves of Populus nigra L. from Western Anatolia, Turkey. Journal of Environmental Biology, 26: 665–668.
  • Celik, A., Kartal, A.A., Akdogan, A., and Kaska, Y. (2005) Determining the heavy metal pollution in Denizli (Turkey) by using Robinio pseudo-acacia L. Environment International, 31: 105–112.
  • Aksoy, A. and Demirezen, D. (2006) Fraxinus excelsior as a biomonitor of heavy metal pollution. Polish Journal of Environmental Studies, 15 (1): 27–33.
  • Dogan, Y., Durkan, N., and Baslar, S. (2007) Trace element pollution biomonitoring using the bark of Pinus brutia in the Western Anatolian part of Turkey. Trace Elements and Electrolytes, 24 (5): 146–150.
  • Yakupoglu, D., Guray, T., Sarica, D.Y., and Kaya, Z. (2008) Determination of airborne lead contamination in Cichorium intybus L. in an urban environment. Turkish Journal of Botany, 32: 319–324.
  • Simsek, A., Korkmaz, D., Velioglu, Y.S., and Ataman, O.Y. (2003) Determination of boron in hazelnut (Corylus avellana L.) varieties by inductively coupled plasma optical emission spectrometry and spectrophotometry. Food Chemistry, 83: 293–296.
  • Saracoglu, S., Tuzen, M., and Soylak, M. (2009) Evaluation of trace element contents of dried apricot samples from Turkey. Journal of Hazardous Materials, 167: 647–652.
  • Yaylali-Abanuz, G. and Tuysuz, N. (2009) Heavy metal contamination of soils and tea plants in the eastern Black Sea region, NE Turkey. Environmental and Earth Sciences, 59: 131–144.
  • Beckett, P.H.T. and Davis, R.D. (1977) Upper critical levels of toxic elements in plants. New Phytology, 79: 95–106.
  • Kabata-Pendias, A. and Pendias, H. (1992) Trace Elements in Soils and Plants. CRC Press: Boca Raton, FL.
  • Marschner, H. (1995) Mineral Nutrition of Higher Plants. Academic: London.
  • Kabata-Pendias, A. and Mukherjee, A.B. (2007) Trace Elements from Soil to Human. Springer: New York.
  • Hong, C.L., Jia, Y.B., Yang, X.E., He, Z.L., and Stoffella, P.J. (2008) Assessing lead thresholds for phytotoxicity and potential dietary toxicity in selected vegetable crops. Bulletin of Environmental Contamination and Toxicology, 80: 356–361.
  • Kuriakose, S.V. and Prasad, M.N.V. (2008) Cadmium as an environmental contaminant: Consequences to plant and human health. In Trace Elements as Contaminants and Nutrients: Consequences in Ecosystems and Human Health, Prasad, M.N.V., Ed. John Wiley & Sons: New York, pp. 373–412.
  • Wei, S. and Zhou, Q. (2008) Trace elements in agro-ecosystems. In Trace Elements as Contaminants and Nutrients: Consequences in Ecosystems and Human Health, Prasad, M.N.V., Eds. John Wiley & Sons, Inc: New York, pp. 55–80.
  • The Ministry of Science, Industry and Technology—The Republic of Turkey. (2013) Industrial Status Report of the Provinces of Turkey. General Directorate of Industry: Ankara, Turkey.
  • Reilly, C. (2004) The Nutritional Trace Metals. Blackwell Publishing: Oxford, UK.
  • Avino, R.B., Lopez-Moya, J.R., and Navarro-Avino, J.P. (2008) Health ımplications: Trace elements in cancer. In Trace Elements as Contaminants and Nutrients: Consequences in Ecosystems and Human Health, Prasad, M.N.V., Ed. John Wiley & Sons: New York, pp. 495–522.
  • Kabata-Pendias, A. and Pendias, H. (2001) Trace Elements in Soils & Plants. CRC Press LLC: Boca Raton, FL.
  • Shanker, A.K. (2008) Mode of action and toxicity of trace elements. In Trace Elements as Contaminants and Nutrients: Consequences in Ecosystems and Human Health, Prasad, M.N.V., Ed. John Wiley & Sons: New York, pp. 525–553.
  • Kanoun-Boule, M., De Albuquerque, M.B., Nabais, C., and Fretias, H. (2008) Copper as an environmental contaminant: Phytotoxicity and human health implications. In Trace Elements as Contaminants and Nutrients: Consequences in Ecosystems and Human Health, Prasad, M.N.V., Ed. John Wiley & Sons: New York, pp. 653–678.
  • Georgopoulos, P.G. and Roy, A. (2001) Environmental copper: Its dynamics and human exposure issues. Journal of Toxicology and Environmental Health Part B: Critical Reviews, 4: 341–394.
  • Ruhling, A. and Steinnes, E. (1988) Atmospheric heavy metal deposition in Europe 1995–1996. Nord, 15: 1–67.
  • Kasprzak, K.S., Sunderman, F.W., and Salnikowa, K. (2003) Nickel carcinogenesis. Mutation Research, 533: 67–97.
  • Otvos, E., Pazmandi, T., and Tuba, Z. (2003) First national survey of atmospheric heavy metal deposition in Hungary by the analysis of mosses. Science of the Total Environment, 309: 151–160.
  • Gune, A., Alpaslan, M., and Inal, A. (2004) Plant Growth and Fertilizer. Ankara Univ. Agriculture Pub. No. 1539. Ankara University Press: Ankara, Turkey.
  • Cicek, A. and Koparal, A.S. (2004) Accumulation of sulfur and heavy metals in soil and tree leaves sampled from the surroundings of Tuncbilek thermal power plant. Chemosphere, 57: 1031–1036.
  • Ozcan, M. (2005) Determination of mineral contents of Turkish Herbal Tea (Salvia aucheri var. canescens) at different infusion periods. Journal of Medicinal Food, 8 (1): 110–112.
  • Onder, S., Dursun, S., Gezgin, S., and Demirbas, A. (2007) Determination of heavy metal pollution in grass and soil of city centre green areas (Konya, Turkey). Polish Journal of Environmental Studies, 16 (1): 145–154.
  • Baslar, S., Kula, I., Dogan, Y., Yildiz, D., and Ay, G. (2009) A study of trace element contents in plants growing at Honaz Dagi-Denizli, Turkey. Ekoloji, 18: 1–7.
  • Kaya, G., Okumus, N., and Yaman, M. (2010) Lead, cadmium and copper concentrations in leaves of Nerium oleander L. and Robinia pseudoacacia L. as biomonitors of atmospheric pollution. Fresenius EnvironmentalBulletin, 19 (4): 669–675.
  • Kaya, G., Ozcan, C., and Yaman, M. (2010) Flame atomic absorption spectrometric determination of Pb, Cd, and Cu in Pinus nigra L. and Eriobotrya japonica leaves used as biomonitors in environmental pollution. Bulletin of Environmental Contamination and Toxicology, 84: 191–196.

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