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Accumulation of Trace Elements by Pistia stratiotes: Implications for phytoremediation

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Abstract

The toxicity of eight potentially toxic trace elements (Ag, Cd, Cr, Cu, Hg, Ni, Pb and Zn) to Pistia stratiotes was examined to determine if this plant showed sufficient tolerance and metal accumulation to be used to phytoremediate waste water and/or natural water bodies polluted with these heavy metals. Young plants of equal size were grown hydroponically and amended with 0, 0.1, 0.3, 0.5, 1.0, 3.0 and 5.0 mM of each heavy metal individually for 21 days. Root elongation as well as emergence of new roots decreased significantly with increase in metal concentrations. The plant had the lowest and the highest tolerance indices for Hg and Zn respectively. The study indicated reduction in the rate of leaf expansion relative to metal type, their concentrations and the duration of exposure. A significant reduction in biomass production was observed in metal treated plants compared with the control plants. The relative growth rate of P. stratiotes was retarded by heavy metals under study. All trace elements accumulated to higher concentrations in root tissue rather than in shoot. Trace element accumulation in tissues and the bioconcentration factors were proportional to the initial concentration of individual metals in the growth medium and the duration of exposure. In terms of trace element removal, P. stratiotes presented differential accumulation and tolerance levels for different metals at similar treatment conditions. The implications of these results for phytoremediation are discussed.

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References

  • D.R. Causton (1994) ArticleTitlePlant growth analysis: a note on the variability of unit leaf rate (Net Assimilation Rate) within a sample Ann. of Bot. 74 513–518

    Google Scholar 

  • D.W. Connell G.J. Miller (1984) Chemistry and Ecotoxicology of Pollution John Wiley and Sons New York 498

    Google Scholar 

  • H. Clijsters A. Cuypers J. Vangronsveld (1999) ArticleTitlePhysiological response to heavy metals in higher plants; defence against oxidative stress Z. Natur. 54c 730–734

    Google Scholar 

  • A.A. Issa R. Abdel-Basset M.S. Adam (1995) ArticleTitleAbolition of heavy metal toxicity on Kirchneriella lunaris (chlorophyta) by calcium Ann. of Bot. 75 189–192 Occurrence Handle1:CAS:528:DyaK2MXlt1ekurk%3D

    CAS  Google Scholar 

  • M.J. Kennish (1992) Ecology of estuaries: anthropogenic effects. press Inc. CRC Boca Raton, Florida 416

    Google Scholar 

  • B. Kulli M. Balmer R. Krebs B. Lothenbach G. Geiger R. Schulin (1999) ArticleTitleThe influence of nitrillotriacetate on heavy metal uptake of lettuce and ryegrass J. Environ. Qual. 28 1699–1705 Occurrence Handle1:CAS:528:DC%2BD3cXhtFWgsg%3D%3D

    CAS  Google Scholar 

  • M.M. Lasat (2002) ArticleTitlePhytoextraction of toxic metals: a review of biological mechanisms J. Environ. Qual. 31 109–120 Occurrence Handle1:CAS:528:DC%2BD38XlvVCgurs%3D Occurrence Handle11837415

    CAS  PubMed  Google Scholar 

  • M.M. Lasat N.S. Pence D.F. Garvin S.D. Ebbs L.V. Kochian (2000) ArticleTitleMolecular physiology of zinc transport in the Zn hyperaccumulator Thlaspi caerulescens J. Exp. Bot. 51 71–79 Occurrence Handle1:CAS:528:DC%2BD3cXpslKjtA%3D%3D Occurrence Handle10938797

    CAS  PubMed  Google Scholar 

  • M. Lenka K.K. Panda B.B. Panda (1992) ArticleTitleMonitoring and assessment of mercury pollution in the vicinity of a chloralkali plant IV. Bioconcentration of mercury in in situ aquatic and terrestrial plants at Ganjam India. Arch. Environ. Contam. Toxicol. 22 195–202 Occurrence Handle1536599

    PubMed  Google Scholar 

  • Y. Luo D. L. Rimmer (1995) ArticleTitleZinc–copper interaction affecting plant growth on a metal-contaminated soil Environ. Pollut. 88 IssueID1 79–93 Occurrence Handle15091571

    PubMed  Google Scholar 

  • G.R. Noggle G.J. Fritz (1976) Introductory Plant Physiology Prentice-Hall Inc. Great Britain 688

    Google Scholar 

  • J.H. Qian A. Zayed Y.L. Zhu M. Yu N. Terry (1999) ArticleTitlePhytoaccumulation of trace elements by wetland plants: III. Uptake and accumulation of ten trace elements by twelve plant species J. Environ. Qual. 28 1448–1455 Occurrence Handle1:CAS:528:DyaK1MXlvV2ltbs%3D

    CAS  Google Scholar 

  • SAS Institute (1989) SAS Procedures Guide. SAS Institute NC, USA

    Google Scholar 

  • D.C. Schmitz J.D. Schardt A.G. Leslie F.A. Dray J.A. Osborne B.V. Nelson (1993) The ecological impact and management history of three invasive alien aquatic plants in Florida B.N. McKnight (Eds) Biological Pollution–the Control and Impact of Invasive Exotic Species. Indiana Acad. Sci. Indianapolis 261

    Google Scholar 

  • G.S. Smith (1994) ArticleTitleEffect of soil pH on availability to crop of metals in sewage sludge-treated soils. Nickel Copper and Zinc uptake and toxicity to ryegrass Environ. Pollut. 85 321–327 Occurrence Handle1:CAS:528:DyaK2cXkt1yrtrw%3D Occurrence Handle15091663

    CAS  PubMed  Google Scholar 

  • G.J. Taylor A.A. Crowder (1983) ArticleTitleUptake and accumulation of copper, nickel and iron by Typha latifolia grown in solution culture Can. Jour. Bot. 61 1825–1830 Occurrence Handle1:CAS:528:DyaL3sXltVanurg%3D

    CAS  Google Scholar 

  • D.A. Wilkins (1978) ArticleTitleThe measurement of tolerance to edaphic factors by means of root growth New Phytol. 80 623–633 Occurrence Handle1:CAS:528:DyaE1cXkvVGgtrY%3D

    CAS  Google Scholar 

  • Z.H. Ye A.J.M. Baker M.H. Wong A.J. Willis (1997) ArticleTitleCopper and nickel uptake, accumulation and tolerance in Typha latifolia with and without iron plaque on the root surface New Phytol. 136 481–488 Occurrence Handle1:CAS:528:DyaK2sXls1ent7k%3D

    CAS  Google Scholar 

  • A. Zayed S. Gowthaman N. Terry (1998) ArticleTitlePhytoaccumulation of trace elements by wetland plants: I Duckweed. J. Environ. Qual. 27 715–721 Occurrence Handle10.2134/jeq1998.273715x Occurrence Handle1:CAS:528:DyaK1cXjtlWiurw%3D

    Article  CAS  Google Scholar 

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Correspondence to V. J. Odjegba.

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Odjegba, V.J., Fasidi, I.O. Accumulation of Trace Elements by Pistia stratiotes: Implications for phytoremediation. Ecotoxicology 13, 637–646 (2004). https://doi.org/10.1007/s10646-003-4424-1

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