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Original Articles

Hydroponic Screening of Willows (Salix L.) for Lead Tolerance and Accumulation

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Pages 75-94 | Published online: 08 Sep 2010

REFERENCES

  • Ali , M B , Vajpayee , P , Tripathi , R D , Rai , U N , Singh , S N and Singh , S P . 2003 . Phytoremediation of lead, nickel, and copper by Salix acmophylla Boiss.: Role of antioxidant enzymes and antioxidant substances . Bull Environ Contam Toxicol , 70 : 462 – 469 .
  • Angelova , V , Ivanova , R , Todorov , G and Ivanov , K . 2008 . Heavy metal uptake by Rape . Commun Soil Sci Plant Anal , 39 : 344 – 357 .
  • Asher , C J. 1981 . Limiting external concentrations of trace elements for plant growth: Use of flowing solution culture techniques . J Plant Nutri , 3 : 163 – 180 .
  • Baker , AJM. Metal hyperaccumulation by plants: Our present knowledge of the ecophysiological phenomenon . Proceedings/Abstracts of the 14th Annual Symposium on Current Topics in Plant Biochemistry, Physiology and Molecular Biology . pp. 7 – 8 . Columbia, MO : Interdisciplinary Plant Group, University of Missouri . Will Plants have a Role in Bioremediation
  • Baker , A JM and Brooks , R R . 1989 . Terrestrial higher plants which hyperaccumulate metallic elements—a review of their distribution, ecology and phytochemistry . Biorecovery , 1 : 81 – 126 .
  • Baker , A JM , Reeves , R D and McGrath , S P . 1991 . “ In situ decontamination of heavy metal polluted soils using crops of metal-accumulating plants-a feasibility study ” . In In situ bioreclamation , Edited by: Hinchee , R L and Olfenbuttel , R F . 600 – 605 . Boston, MA : Butterworth-Heinemann .
  • Briat , J F and Lebrun , M . 1999 . Plant responses to metal toxicity . Comptes Rendus Acad Sci Ser III Sci , 322 : 43 – 54 .
  • Burton , K W , Morgan , E and Roig , A . 1984 . The influence of heavy metals upon the growth of Sitka-spruce in South Wales forests. II. Greenhouse experiments . Plant Soil , 78 : 271 – 282 .
  • Ebbs , S D and Kochian , L V . 1997 . Toxicity of zinc and copper to Brassica species: Implications for phytoremediation . J Environ Qual , 26 : 776 – 781 .
  • Fischerova , Z , Tlustos , P , Szakova , J and Sichorova , K . 2006 . A comparison of phytoremediation capability of selected plant species for given trace elements . Environ Pollut , 144 : 93 – 100 .
  • Friedland , A J , Johnson , J and Siccama , T G . 1984 . Trace metal content of the forest floor in the Green Mountains of Vermont: Spatial and temporal patterns . Water Air Soil Pollut , 21 : 161 – 166 .
  • Glimmerveen , I. 1996 . “ Heavy metals and trees ” . Edited by: Petty , J A and Brown , I R . 206 Edinburgh, , UK : Institute of Chartered Foresters .
  • Greger , M and Landberg , T . 1999 . Use of willows in phytoextraction . Int J Phytorem , 1 : 115 – 123 .
  • Gustafson , JP. 2004 . “ Visual MINTEQ 2.32, EPA ” . www.epa.gov/ceampubl/mmedia/minteq. Accessed October 27, 2010
  • Huang , J W and Cunningham , S D . 1996 . Lead phytoextraction: species variation in lead uptake and translocation . New Phytologist , 134 : 75 – 84 .
  • Jarvis , SC. 1977 . Uptake and transport of cadmium by perennial ryegrass from flowing solution culture with a constant concentration of cadmium . Plant Soil , 49 : 333 – 342 .
  • Jensen , J K , Holm , P E , Nejrup , J , Larsen , M B and Borggaard , O K . 2009 . The potential of willow for remediation of heavy metal polluted calcareous urban soils . Environ Pollut , 157 : 931 – 937 .
  • Kabata-Pendias , A. 2000 . Trace elements in soils and plants , 1 – 365 . Boca Raton, FL : CRC Press LLC .
  • Köhl , K I and Lösch , R . 1999 . “ Experimental characterization of heavy metal tolerance in plants ” . In Heavy metal stress in plants , Edited by: Prasad , M NV and Hagemeyer , J . 371 – 389 . Berlin, , Germany : Springer .
  • Kumar , NPBA , Dushenkov , V , Motto , H and Raskin , I . 1995 . Phytoextration: The use of plants to remove heavy metals from soils . Environ Sci Technol , 29 : 1232 – 1238 .
  • Kutner , M H , Nachtsheim , C J , Neter , J and Li , W . 2005 . Applied linear statistical models , 5th ed , 1 – 1424 . Chicago, IL : McGraw Hill/Irwin .
  • Kuzovkina , Y A , Knee , M and Quigley , M F . 2004 . Cadmium and copper uptake and translocation of five Salix L. species . Int J Phytorem , 6 : 269 – 287 .
  • Kuzovkina , Y A and Volk , T A . 2009 . The characterization of willow (Salix L.) varieties for use in ecological engineering applications: Co-ordination of structure, function and autecology . Ecological Engineering , 35 : 1178 – 1189 .
  • Kuzovkina , Y A , Zhivotovsky , O P , Schulthess , C P and Pettinelli , D . 2010 . Plant selection for a pilot phytoremediation study at a former skeet range . Remediation Journal , 20 : 93 – 105 .
  • Laidlaw , M AS and Filippelli , G M . 2008 . Resuspension of urban soils as a persistent source of lead poisoning in children: A review and new directions . Applied Geochemistry , 23 : 2021 – 2039 .
  • Landberg , T and Greger , M . 1994 . “ Can heavy metal tolerant clones of Salix be used as vegetation filters on heavy metal contaminated land? ” . In Proceedings, Willow Vegetation Filters for Municipal Waste waters and Sludges, a Biological Purification System , Edited by: Aronsson , P and Perttu , K . 133 – 144 . Uppsala, , Sweden : Sweden University .
  • Landberg , T and Greger , M . 2002 . Interclonal variation of heavy metal interactions in Salix viminalis . Environ Toxicol Chemistry , 21 : 2669 – 2674 .
  • Landberg , T and Greger , M . 2004 . No phytochelatins found in Salix viminalis . J Plant Physiol , 121 : 481 – 487 .
  • Larsson , S. 1994 . “ New willow clones for short rotation coppice from Svalöv Weibull AB. Willow vegetation filters for municipal wastewaters and sludges: A biological purification system ” . In Proceedings of a study tour, conference and workshop. Report 50 , Edited by: Aronsson , P and Pertuu , K . 193 – 194 . Uppsala, , Sweden : Swedish University of Agricultural Sciences .
  • Lane , S D and Martin , E S . 1977 . A histochemical investigation of lead uptake in Raphanus sativus . New Phytologist , 79 : 281 – 286 .
  • Licht , L A and Isebrands , J G . 2005 . Linking phytoremediation pollutant removal to biomass economic opportunities . Biomass and Bioenergy , 28 : 203 – 218 .
  • Lindegaard , K N and Barker , J HA . 1997 . Breeding willows for biomass . Aspects of Applied Biology , 49 : 155 – 162 .
  • Littell , R C , Milliken , G A , Stroup , W W , Wolfinger , R D and Schabenberger , O . 2006 . SAS for mixed models , 2nd ed , 1 – 814 . Cary, NC : SAS Institute Inc .
  • Lux , A , Sottnikova , A , Opatrna , J and Greger , M . 2004 . Differences in structure of adventitious roots in Salix clones with contrasting characteristics of cadmium accumulation and sensitivity . Physiologia Plantarum , 120 : 537 – 545 .
  • Mehra , R K , Kodati , V R and Abdullah , R . 1995 . Chain length-dependent Pb(II)- coordination in phytochelatins . Biochem Biophys Res Commun , 215 : 730 – 736 .
  • Minocha , R , Thangavel , P , Dhankher , O P and Long , S . 2008 . Separation and quantification of monothiols and phytochelatins from a wide variety of cell cultures and tissues of trees and other plants using high performance liquid chromatography . Journal of Chromatography A , 1207 : 72 – 83 .
  • Pahlsson , AMB. 1989 . Toxicity of heavy metals (Zn, Cu, Cd, Pb) to vascular plants: A literature review . Water Air Soil Pollut , 47 : 287 – 319 .
  • Pais , I and Jones , J B . 2000 . The Handbook of Trace Elements , 1 – 223 . Delray Beach, FL : St. Lucie Press .
  • Piechalak , A , Tomaszewska , B , Baralkiewicz , D and Malecka , A . 2002 . Accumulation and detoxification of lead ions in legumes . Phytochemistry , 60 : 153 – 162 .
  • Przemeck , E and Haase , N U . 1991 . On the bonding of manganese, copper and cadmium to peptides of the xylem sap of plant roots . Water Air Soil Pollut , 57 : 569 – 577 .
  • Pulford , I D and Watson , C . 2003 . Phytoremediation of heavy metal-contaminated land by trees—A review . Environ Int , 1032 : 1 – 12 .
  • Punshon , T and Dickinson , N M . 1999 . Heavy metal resistance and accumulation characteristics in willows . Int Journal of Phytorem , 4 : 361 – 385 .
  • Punshon , T , Lepp , N W and Dickinson , N M . 1995 . Resistance to copper toxicity in some British willows . J Geochem Exploration , 52 : 259 – 266 .
  • Purdy , J J and Smart , L B . 2008 . Hydroponic screening of shrub willow (Salix spp.)for arsenic tolerance and uptake . Int J Phytorem , 6 : 515 – 528 .
  • Rudakova , E V , Karakis , K D and Sidorshina , E T . 1988 . The role of plant cell walls in the uptake and accumulation of metal ions . Fiziol-Biokhim-Kult-Rast , 20 : 3 – 12 .
  • Salt , D E , Blaylock , M , Kumar , PBAN , Dushenkov , V , Ensley , B D , Chet , I and Raskin , I . 1995 . Phytoremediation: A novel strategy for the removal of toxic metals from the environment using plants . Biotechnology , 13 : 468 – 474 .
  • Schabenberger , O , Tharp , B E , Kells , J J and Penner , D . 1999 . Statistical tests for hormesis and effective dosages in herbicide dose response . Agronomy Journal , 91 : 713 – 721 .
  • Sharma , P and Dubey , R S . 2005 . Lead toxicity in plants . J Plant Physiol , 17 : 35 – 52 .
  • Shanahan , J O , Brummer , J E , Leininger , W C and Paschke , M W . 2007 . Manganese and zinc toxicity thresholds for mountain and Geyer willow . Int J Phytorem , 9 : 437 – 452 .
  • Senden , MHMN , Van Paassen , F JM , VanDerMeer , AJGM and Wolterbeek , H TH . 1999 . Cadmium–citric acid–xylem cell wall interactions in tomato plants . Plant Cell Environ , 15 : 71 – 79 .
  • Seregin , I V and Ivanov , V B . 1997 . Histochemical investigation of cadmium and lead distribution in plants . Russian J Plant Physiol , 44 : 791 – 796 .
  • Stephan , U W and Scholz , G . 1993 . Nicotianamine: Mediator of transport of iron and heavy metals in the phloem? . Plant Physiol , 88 : 522 – 529 .
  • Stoltz , E and Greger , M . 2002 . Accumulation properties of As, Cd, Cu, Pb and Zn byfour wetland plant species growing on submerged mine tailings . Environmental and Experimental Botany , 47 : 271 – 280 .
  • Tlustos , P , Szakova , J , Vyslouzilova , M , Pavlikova , D , Weger , J and Javorska , H . 2007 . Variation in the uptake of arsenic, cadmium, lead, and zinc by different species of willows (Salix spp.) grown in contaminated soils . Cent Europ J Biology , 2 : 254 – 275 .
  • Utmazian , MNDS , Wieshammer , G , Vega , R and Wenzel , W W . 2007 . Hydroponic screening for metal resistance and accumulation of cadmium and zinc in twenty clones of willows and poplars . Environ Pollut , 148 : 155 – 165 .
  • Vandecasteele , B , Quataert , P , De Vos , B , Tack , F G and Muys , B . 2004 . Foliar concentrations of volunteer willows growing on polluted sediment-derived sites versus sites with baseline contamination levels . J Environ Monitoring , 6 : 313 – 32 .
  • Verwijst , T. 2001 . Willows: An underestimated resource for environment and society . Forestry Chron , 77 : 281 – 85 .
  • Vyslouzilova , M , Tlustos , P , Szakova , J and Pavlikova , D . 2003 . As, Cd, Pb and Zn uptake by Salix spp. clones grown in soils enriched by high loads of these elements . Plant Soil Environ , 49 : 191 – 196 .
  • Watson , C , Pulford , I D and Riddell-Black , D . 1999 . Heavy metal toxicity responses of two willow (Salix) clones grown hydroponically; development of a resistance screening test . Environ Geochem Health , 21 : 359 – 364 .
  • Wilkins , DA. 1978 . The measurement of tolerence to edaphic factors by means of root growth . New Phytology , 80 : 623 – 633 .
  • Wierzbicka , M. 1995 . How lead loses its toxicity to plants . Acta Societatis Botanicorum Poloniae , 41 : 81 – 90 .
  • Wozny , A , Schneider , J and Gwozdz , E A . 1995 . The effects of lead and kinetin on greening of barley leaves . Plant Biology , 37 : 541 – 552 .
  • Zacchini , M , Rea , E , Tullio , M and Agazio , M . 2008 . Increased antioxidative capacity in maize calli during and after oxidative stress induced by a long lead treatment . Plant Physiol Biochem , 41 : 49 – 54 .

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