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2019 | 18 | 2 |

Tytuł artykułu

Growth characteristics of ornamental Judas tree (Cercis siliquastrum L.) seedlings under different concentrations of lead and cadmium in irrigation water

Treść / Zawartość

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Landscape plantations are significantly water demanding in many parts of the world, particularly in dry regions. Adequate water supply is the main limiting factor behind landscape development, maintenance and beauty in such environments. On the other hand, monitoring the growth response of ornamental and landscape plants to irrigation water containing heavy metals can be useful in management and application of municipal wastewaters to these plantations instead of application in edible vegetable crops production, which is common in many urban areas. In the present study, one year old seedlings of Judas tree (Cercis siliquastrum) were irrigated for two years with water containing 0, 15 or 30 mg L–1 of lead (Pb) in absence or presence of cadmium (0 or 5 mg L–1) in a factorial design, and under greenhouse conditions. Heavy metal treatments had no significant effect on leaf SPAD value; however, plants treated with Pb15Cd0 combination had significantly higher SPAD value than Pb30Cd5 combination that showed the lowest leaf SPAD value. Increasing the lead and cadmium levels of irrigation water increased the number of chlorotic and necrotic leaves of plant than control, whereas it reduced the average leaf area and new shoot growth. The control plants or plants treated with lower level of heavy metals showed the highest leaf area and new shoot growth. Leaf photosynthesis rate was significantly reduced in all heavy metal treated plants than control plants, as the lowest amount was in Pb30Cd5 combination treatment. All heavy metal treatments showed higher leaf soluble carbohydrates and proline content than in control plants. Leaf soluble carbohydrates were highest in Pb30Cd0 and Pb30Cd5 treatments, and leaf proline was highest in Pb30Cd5 and Pb15Cd5 treatments. The results indicate that Judas tree is a relatively tolerant species to high concentrations of Pb and Cd in root medium added through the irrigation water, and long term dual application of these heavy metals can have additive harmful effects on plant growth.

Wydawca

-

Rocznik

Tom

18

Numer

2

Opis fizyczny

p.87-96,fig.,ref.

Twórcy

autor
  • Department of Horticulture, Faculty of Agriculture, Lorestan University, Khorramabad, Iran
autor
  • Department of Horticulture, Faculty of Agriculture, Lorestan University, Khorramabad, Iran
autor
  • Department of Horticultural Sciences, Faculty of Agriculture, University of Tehran, Karaj, Iran
autor
  • Department of Horticultural Sciences, Faculty of Agriculture, Tarbiat Modares University, Tehran, Iran
autor
  • Soil and Water Research Institute, Karaj, Iran

Bibliografia

  • An, Y.J., Kim, Y.M., Kwon, T.I., Jeong, S.W. (2004). Combined effect of copper, cadmium, and lead upon Cucumis sativus growth and bioaccumulation. Sci. Total Environ., 326(1–3), 85–93.
  • Benavides, M.P., Gallego, S.M., Tomaro, M.L. (2005). Cadmium toxicity in plants. Braz. J. Plant Physiol., 17, 21–34.
  • Bosiacki, M. (2008). Accumulation of cadmium in selected species of ornamental plants. Acta Sci. Pol. Hortorum Cultus, 7(2), 21–31.
  • Bosiacki, M., Zieleziński, Ł. (2011). Phytoextraction of nickel by selected species of lawn grasses from substrates contaminated with heavy metals. Acta Sci. Pol. Hortorum Cultus, 10(3), 155–173.
  • Brown, G., Brinkmann, K. (1992). Heavy metal tolerance in Festuca ovina L. from contaminated sites in the Eifel Mountains, Germany. Plant Soil, 143(2), 239–247.
  • Clemens, S. (2006). Toxic metal accumulation, responses to exposure and mechanisms of tolerance in plants. Biochimie, 88, 1707–1719.
  • Ewais, E.A. (1997). Effects of cadmium, nickel and lead on growth, chlorophyll content and proteins of weeds. Biol. Plantar., 39(3), 403–410.
  • Frick, C.M., Germida, J.J., Farrell, R.E. (1999). Assessment of phytoremediation as an in-situ technique for cleaning oil-contaminated sites. In technical seminar on chemical spills. Environment Canada, 105–124.
  • Islam, E., Liu, D., Li, T., Yang, X., Jin, X., Mahmood, Q., Tian, S., Li, J. (2008). Effect of Pb toxicity on leaf growth, physiology and ultrastructure in the two ecotypes of Elsholtzia argyi. J. Hazard. Mater., 172, 479–484.
  • John, R., Ahmad, P., Gadgil, K., Sharma, S. (2008). Effect of cadmium and lead on growth, biochemical parameters and uptake in Lemna polyrrhiza L. Plant Soil Environ., 54(6), 262.
  • Krämer, U. (2005). Phytoremediation: novel approaches to cleaning up polluted soils. Curr. Opin. Biotechnol., 16(2), 133–141.
  • Lux A., Martinka M., Vaculík M., White P.J. (2010). Root responses to cadmium in the rhizosphere: A review. J. Exp. Bot., 62, 21–37.
  • Małecka, A., Piechalak, A., Morkunas, I., Tomaszewska, B. (2008). Accumulation of lead in root cells of Pisum sativum. Acta Physiol. Plant., 30, 629–637.
  • Mangkoedihardjo, S. (2008). Jatropha curcas L. for phytoremediation of lead and cadmium polluted soil. World Appl. Sci. J., 4(4), 519–522.
  • Marschner H. (2011). Marschner’s mineral nutrition of higher plants. Academic Press, London.
  • Paquin R., Lechasseur P. (1979). Observations sur une method de dosage de la proline libre dans les extraits de plantes. Can. J. Bot., 57, 1851–1854.
  • Pulford, I.D., Watson, C. (2002). Phytoremediation of heavy metal-contaminated land by trees – A review. Environ. Intern., 29, 529–540.
  • Raskin, I., Smith, R.D., Salt, D.E. (1997). Phytoremediation of metals: using plants to remove pollutants from the environment. Curr. Opin. Biotechnol., 8(2), 221–226.
  • Rattan, R.K., Datta, S.P., Chhonkar, P.K., Suribabu, K., Singh, A.K. (2005). Long-term impact of irrigation with sewage effluents on heavy metals content in soils, crops and groundwater – a case study. Agr. Ecosys. Environ., 109, 310–322.
  • Seregin, I.V., Ivanov, V.B. (2001). Physiological aspects of cadmium and lead toxic effects on higher plants. Russian J. Plant Physiol., 48(4), 523–544.
  • Shafiq, M., Iqbal, M.Z., Mohammad, A. (2008). Effect of lead and cadmium on germination and seedling growth of Leucaena leucocephala. J. Applied Sci. Environ. Manag., 12(3).
  • Singh, A., Sharma R.K., Agrawal M., Marshall, F.M. (2010). Risk assessment of heavy metal toxicity through contaminated vegetables from waste water irrigated area of Varanasi, India. Tropical Ecol., 51, 375–387
  • Souri, M.K., Alipanahi, N., Hatamian, M., Ahmadi, M., Tesfamariam, T. (2018). Elemental profile of heavy metals in garden cress, coriander, lettuce and spinach, commonly cltivated in Kahrizak, South of Tehran – Iran. Open Agric., 3(1), 32–37.
  • Száková, J., Tlustos, P., Vyslouzilová, M., Pavlíková, D. (2003). Fluctuation of mobile portions of soil As, Cd, Cu, Pb, and Zn during vegetation of willows. Chem. Inż. Ekol., 10, 975–982.
  • Vandecasteele, B., Meers, E., Vervaeke, P., De Vos, B., Quataert P., Tack, F.M.G. (2005). Growth and trace metal accumulation of two Salix clones on sedimentderived soils with increasing contamination levels. Chemosphere, 58, 995–1002.
  • Yan, Z.Z., Ke, L., Tam, N.F.Y. (2010). Lead stress in seedlings of Avicennia marina, a common mangrove species in South China, with and without cotyledons. Aquat. Bot., 92, 112–118.
  • Yusuf, M., Fariduddin, Q., Hayat, S., Ahmad, A. (2011). Nickel: an overview of uptake, essentiality and toxicity in plants. Bull. Environ. Contam. Toxicol., 86, 1–17.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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