biologia plantarum

International journal on Plant Life established by Bohumil Němec in 1959

Biologia plantarum 55:133-140, 2011 | DOI: 10.1007/s10535-011-0018-6

Strategies of cadmium and zinc resistance in willow by regulation of net accumulation

T. Landberg1,*, P. Jensén2, M. Greger1
1 Department of Botany, Stockholm University, Stockholm, Sweden
2 Department of Horticulture, Division of Root and Substrate Research, Swedish University of Agricultural Sciences, Alnarp, Sweden

This work was performed to find out if metal resistant clones of Salix viminalis L. are capable to achieve high resistance to the metals by regulating their net accumulation. Salix clones with low or high resistance in combination with low or high accumulation capacity of either Zn or Cd were cultivated from cuttings in nutrient solution. The investigation included leakage and uptake experiments using 65Zn or 109Cd and analysis of root cation exchange capacity (CEC). Some plants were pre-treated with unlabeled 0.5 μM Cd or 2.5 μM Zn 24 h prior to the experiments to induce possible tolerance mechanisms. To find out if the regulation was a metabolic process, experiments were also performed with 2,4-dinitrophenol (DNP). Clones with high resistance and low Cd accumulation had higher efflux of Cd compared to the other clones, in both untreated and Cd pre-treated plants. This indicates a constitutive property to lower Cd accumulation by high Cd leakage. Pre-treatment with 0.5 μM Cd diminished the Cd net uptake to a level near zero in all clones, likely to be due to decreased the Cd uptake. In contrast, resistant clones with high Cd accumulation had the highest root CEC, which may be used to bind up Cd in the free space. No clear regulation of Zn net uptake was found in Zn-resistant clones. Pre-treatment with Zn decreased the uptake of Zn into the free space in Zn-resistant clones. The resistant high-accumulating clones, however, showed the highest leakage of Zn in both untreated and pre-treated plants, a constitutive process not related to high accumulation. Neither the influx nor the efflux of Cd or Zn was affected by DNP indicating passive transport across the plasma membrane.

Keywords: cation exchange capacity; cell wall; efflux; heavy metals; influx; tolerance

Received: January 16, 2004; Accepted: September 22, 2010; Published: March 1, 2011  Show citation

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Landberg, T., Jensén, P., & Greger, M. (2011). Strategies of cadmium and zinc resistance in willow by regulation of net accumulation. Biologia plantarum55(1), 133-140. doi: 10.1007/s10535-011-0018-6
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References

  1. Baker, A.J.M.: Accumulators and excluders - strategies in the response of plants to heavy metals. - J. Plant Nutr. 3: 643-654, 1981. Go to original source...
  2. Baker, A.J.M.: Terrestial higher plants which hyperaccumulate metalic elements - a review of their distribution, ecology and phytochemistry. - Biorecovery 1: 81-126, 1989. Go to original source...
  3. Baker, A.J.M., Grant, C.J., Martin, M.H., Shaw, S.C., Whitebrook, J.: Induction and loss of cadmium tolerance in Holcus lanatus L. and other grasses. - New Phytol. 102: 575-587, 1986. Go to original source...
  4. Blamey, F.P.C., Robinson, N.J., Asher, C.J.: Interspecific differences in aluminium tolerance in relation to root cationexchange capacity. - Plant Soil 146: 77-82, 1992. Go to original source...
  5. Bowen, J.E.: Physiology of genotyping differences in zinc and copper uptake in rice and tomato. - Plant Soil 99: 115-125, 1987. Go to original source...
  6. Cataldo, D.A., Garland, T.R., Wildung, R.E.: Cadmium uptake kinetics in intact soyabean plants. - Plant Physiol. 73: 844-848, 1983. Go to original source...
  7. Clarkson, D.T., Lüttge, U.: Inducible and repressible nutrient uptake systems. - Progress Bot. 51: 93-112, 1991. Go to original source...
  8. Crooke, W.M.: The measurement of the cation-exchange capacity of plant roots. - Plant Soil 21: 43-49, 1964. Go to original source...
  9. Cutler, J.M., Rains, D.W.: Characterisation of cadmium uptake by plant tissue. - Plant Physiol. 54: 67-71, 1974. Go to original source...
  10. Di Baccio, D., Minocci, A., Sebastiani, L.: leaf structural modifications in Populus × euramericana subjected to Zn excess. - Biol. Plant. 50: 502-508, 2010. Go to original source...
  11. Durand, T.C., Hausman, J.F., Carpin, S., Alberic, P., Baillif, P., Label, P., Morabito, D.: Zinc and cadmium effects on growth and ion distribution in Populus tremula × Populus alba. - Biol. Plant. 50: 191-194, 2010. Go to original source...
  12. Ernst, W.H.O., Verkleij, J.A.C., Schat, H.: Metal tolerance in plants. - Acta bot. neerl. 41: 229-248, 1992. Go to original source...
  13. Fry, S.C.: The Growing Plant Cell Wall: Chemical and Metabolic Analysis. - Longman Scientific & Technical, Essex 1988.
  14. Greger, M., Landberg, T.: Use of willow in phytoextraction. - Int. J. Phytoremed. 1: 115-123, 1999. Go to original source...
  15. Greger, M., Landberg, T., Berg, B.: Salix with Different Properties to Accumulate Heavy Metals for Production of Biomass. - Akademitryck AB, Edsbruk 2001.
  16. Guillermo, E.S.M., Daniel, H.C.: Bidirectional Zn-fluxes and compartmentation in wheat seedling roots. - J. Plant Physiol. 132: 312-315, 1988. Go to original source...
  17. Gussarson, M., Jensén, P.: Effects of copper and cadmium on uptake and leakage of K+ in birch (Betula pendula) roots. - Tree Physiol. 11: 305-313, 1992. Go to original source...
  18. Hooda, P.S., Alloway, B.J.: Effects of time and temperature on the bioavailibility of Cd and Pb from sludge-amended soils. - J. Soil Sci. 44: 97-110, 1993. Go to original source...
  19. Jensén, P., Kylin, A.: Effect of ionic strength and relative humidity on the efflux of K+ (86Rb) and Ca2+ (45Ca) from roots of intact seedlings of cucumber, oat and wheat. - Physiol. Plant. 50: 199-207, 1980. Go to original source...
  20. Landberg, T., Greger, M.: Can heavy metal tolerant clones of Salix be used as vegetation filters on heavy metal contaminated land. - In: Aronsson, P., Perttu, K. (ed.): Willow Vegetation Filters for Municipal Wastewaters and Sludges - a Biological Purification System. Pp. 133-144. SLU Info/Repro, Uppsala 1994.
  21. Landberg, T., Greger, M.: Differences in uptake and tolerance to heavy metals in Salix from unpolluted and polluted areas. - Appl. Geochem. 11: 175-180, 1996. Go to original source...
  22. Marschner, H.: Mineral Nutrition of Higher Plants. - Academic Press, London 1995.
  23. Meharg, A.A.: The role of plasmalemma in metal tolerance in angiosperms. - Physiol. Plant. 88: 191-198, 1993. Go to original source...
  24. Perfus-Barbeoch, L., Leonhardt, N., Vavasseur, A., Forestier, C.: Heavy metal toxicity: cadmium permeates through calcium channels and disturbs the plant water status. - Plant J. 32: 539-548, 2002. Go to original source...
  25. Silver, S., Misra, T.K.: Plasmid-mediated heavy metal resistance. - Annu. Rev. Microbiol. 42: 717-743, 1988. Go to original source...
  26. Strange, J., MacNair, M.R.: Evidence for a role for the cell membrane in copper tolerance of Mimulus guttatus Fisher ex DC. - New Phytol. 119: 383-388, 1991. Go to original source...
  27. Wagatsuma, T., Akiba, R.: Low surface negativity of root protoplasts from aluminium-tolerant plant species. - Soil Sci. Plant Nutr. 35: 443-452, 1989. Go to original source...
  28. Wang, J., Evangelou, B.P., Nielsen, M.T.: Surface chemical properties of purified root cell walls from two tobacco genotypes exhibiting different tolerance to manganese toxicity. - Plant Physiol. 100: 496-501, 1992. Go to original source...
  29. Wells, J.M., Brown, D.H., Beckett, R.P.: Kinetic analysis of Cd uptake in Cd-tolerant and intolerant populations of the moss Rhytidiadephus squarrosus (Hedw.) Warnst and the lichen Peltigera membrnacea (Ach.) Nyl. - New Phytol. 129: 477-486, 1995. Go to original source...