Environmental Engineering Reference
In-Depth Information
Page V, Feller U (2005) Selective transport of zinc, manganese, nickel, cobalt and cadmium in the
root system and transfer to the leaves in young wheat plants. Ann Bot 96:425-434
Plekhanova IO (2007) Transformation of Fe, Mn, Co, and Ni compounds in humic podzols at
different moisture. Biol Bull 34:67-75
Parker DR, Chaney RL, Norvell WA (1995) Chemical equilibrium models: applications to plant
nutrition research. In: Loeppert RH et al. (eds) Chemical equilibrium and reaction mod-
els. Soil science society of America special publication no. 42, SSSA, Madison, WI, USA,
pp 163-200
Peijnenburg W, Baerselman R, de Groot A, Jager T, Leenders D, Posthuma L, Van Veen R (2000)
Quantification of metal bioavailability for lettuce ( Lactuca sativa L.)infieldsoils.Archiv
Environ Contamin Toxicol 39:420-430
Plette ACC, Nederlof MM, Temminghoff EJM, van Riemsdijk WH (1999) Bioavailabilty of
heavy metals in terrestrial and aquatic systems: a quantative approach. Environ Toxicol Chem
18:1882-1890
Popelka JC, Schubert S, Schulz R, Hansen AP (1996) Cadmium uptake and translocation during
reproductive development of peanut. Angewandte Botanik 70:140-143
Preer JR, Abdi AN, Sekhon HS, Murchison GB (1995) Metals in urban gardens - effect of lime
and sludge. J Environ Sci Health Part A 30:2041-2056
Preer JR, Sekhon HS, Stephens BR, Collins MS (1980) Factors affecting heavy-metal content of
garden vegetables. Environ Pollut Series B-Chem Phys 1:95-104
Quaghebeur M, Rengel Z (2003) The distribution of arsenate and arsenite in shoots and roots of
Holcus lanatus is influenced by arsenic tolerance and arsenate and phosphate supply. Plant
Physiol 132:1600-1609
Reese RN, White CA, Winge DR (1992) Cadmium sulphide crystallites in Cd-(
γ
-EC) n G peptide
complexes from tomato. Plant Physiol 98:225-229
Reid RJ, Dunbar KR, McLaughlin MJ (2003) Cadmium loading into potato tubers: the roles of the
periderm, xylem and phloem. Plant Cell Environ 26:201-206
Rellan-Alvarez R, Ortega-Villasante C, Alvarez-Fernandez A, Del Campo FF, Hernandez LE
(2006) Stress responses of Zea mays to cadmium and mercury. Plant Soil 279:41-50
Römkens PFAM, Guo HY, Chu CL, Liu TS, Chian CF, Koopmans GF (2009) Prediction of
Cadmium uptake by brown rice and derivation of soil-plant transfer models to improve soil
protection guidelines. Environ Poll 157:2435-2444
Römkens PFAM, Schuur GW, Lijzen JPA, Rietra RPJJ, Dirven-van Breemen EM (2005)
Risico's van cadmium en lood in de Kempen. Alterra report nr 1129, Wageningen.
www.alterra.wur.nl/UK/publications/Alterra+Reports/
Salt DE, Rauser WE (1995) MgATP-dependent transport of phytochelatins across the tonoplast of
oat roots. Plant Physiol 107:1293-1301
Salt DE, Prince RC, Pickering IJ, Raskin I (1995) Mechanisms of cadmium mobility and
accumulation in Indian mustard. Plant Physiol 109:1427-1433
Sauerbeck D, Styperek P (1985) Evaluation of chemical methods for assessing the Cd and Zn
availability from different soils and sources. In: Leschber R et al. (eds) Chemical methods for
assessing bioavailable metals in sludges and soils. ISBN 0853343594, Elsevier, London, pp
49-66
Sauvé S, Cook N, Hendershot WH, McBride MB (1996) Linking plant tissue concentrations and
soil copper pools in urban contaminated soils. Environ Pollut 94(2):153-157
Sauvé S, Hendershot W, Allen HE (2000) Solid-solution partitioning of metals in contami-
nated soils: dependence on pH, total metal burden, and organic matter. Environ Sci Technnol
34:1125-1131
Shane BS, Littman CB, Essick LA, Gutenmann WH, Doss GJ, Lisk DJ (1988) Uptake of selenium
and mutagens by vegetables grown in fly-ash containing greenhouse media. J Agric Food Chem
36:328-333
Sipter E, Rózsa E, Gruiz K, Tátrai E, Morvai V (2008) Site-specific risk assessment in contamined
vegetable gardens. Chemosphere 71:1301-1307
Search WWH ::




Custom Search