Validation of Cu toxicity to barley root elongation in soil with a Terrestrial Biotic Ligand Model developed from sand culture
Tài liệu tham khảo
Allen, 2002, Terrestrial ecosystems: an overview, 1
Antunes, 2006, The biotic ligand model for plants and metals: technical challenges for field application, Environ. Toxicol. Chem., 25, 875, 10.1897/04-586R.1
Antunes, 2007, Toxicity versus accumulation for barley plants exposed to copper in the presence of metal buffers: progress towards development of a terrestrial biotic ligand model, Environ. Toxicol. Chem., 26, 2282, 10.1897/06-641R.1
Antunes, 2012, Copper toxicity to Lemna minor modelled using humic acid as a surrogate for the plant root, Chemosphere, 88, 389, 10.1016/j.chemosphere.2012.02.052
Ben-Gal, 2009, Is osmotic potential a more appropriate property than electrical conductivity for evaluating whole-plant response to salinity?, Environ. Exp. Bot., 65, 232, 10.1016/j.envexpbot.2008.09.006
De Levie, 2004
De Schamphelaere, 2003, Refinement and field validation of a biotic ligand model predicting acute copper toxicity to Daphnia magna (vol 133, pg 243, 2002), Comp. Biochem. Physiol. C.-Toxicol. Pharmacol., 134, 10.1016/S1532-0456(02)00275-2
De Schamphelaere, 2002, A biotic ligand model predicting acute copper toxicity for Daphnia magna: the effects of calcium, magnesium, sodium, potassium, and pH, Environ. Sci. Technol., 36, 48, 10.1021/es000253s
De Schamphelaere, 2004, Development and field validation of a biotic ligand model predicting chronic copper toxicity to Daphnia magna, Environ. Toxicol. Chem., 23, 1365, 10.1897/02-626
Di Toro, 2001, Biotic ligand model of the acute toxicity of metals. 1. Technical basis, Environ. Toxicol. Chem., 20, 2383, 10.1002/etc.5620201034
EPA, 2002. U.S. Toxicity Relationship Analysis Program (TRAP), version1.0. Washington, DC.
Ferguson, 2005, How salinity damages citrus: osmotic effects and specific ion toxicities, Horttechnology, 15, 95, 10.21273/HORTTECH.15.1.0095
Guo, 2010, Re-evaluating the effects of organic ligands on copper toxicity to barley root elongation in culture solution, Chem. Speciat. Bioavailab., 22, 51, 10.3184/095422910X12632121425090
ISO, 1993. Soil Quality – Determination of the Effects of Pollutants on Soil Flora - Part 1: Method for the measurement of inhibition of root growth. ISO 11269 - 1.
Kinraide, 1998, Three mechanisms for the calcium alleviation of mineral toxicities, Plant Physiol., 118, 513, 10.1104/pp.118.2.513
Kinraide, 2006, Plasma membrane surface potential (psi(PM)) as a determinant of ion bioavailability: a critical analysis of new and published toxicological studies and a simplified method for the computation of plant psi(PM), Environ. Toxicol. Chem., 25, 3188, 10.1897/06-103R.1
Kinraide, 2004, Relative effectiveness of calcium and magnesium in the alleviation of rhizotoxicity in wheat induced by copper, zinc, aluminum, sodium, and low pH, Plant Soil, 259, 201, 10.1023/B:PLSO.0000020972.18777.99
Lexmond, 1980, The effect of soil-pH on copper toxicity to forage maize grown under field conditions, Neth. J. Agric. Sci., 28, 164
Lin, 2016, Barley root hair growth and morphology in soil, sand, and water solution media and relationship with nickel toxicity, Environ. Toxicol. Chem., 35, 2125, 10.1002/etc.3389
Lin, 2015, Development and validation of a terrestrial biotic ligand model for Ni toxicity to barley root elongation for non-calcareous soils, Environ. Pollut., 202, 41, 10.1016/j.envpol.2015.03.015
Lock, 2007, Influence of calcium, magnesium, sodium, potassium and pH on copper toxicity to barley (Hordeum vulgare), Ecotoxicol. Environ. Saf., 68, 299, 10.1016/j.ecoenv.2006.11.014
Lofts, 2013, Modelling the effects of copper on soil organisms and processes using the free ion approach: towards a multi-species toxicity model, Environ. Pollut., 178, 244, 10.1016/j.envpol.2013.03.015
Luo, 2008, Effect of cations on copper toxicity to wheat root: implications for the biotic ligand model, Chemosphere, 73, 401, 10.1016/j.chemosphere.2008.05.031
Markich, 2003, The effects of pH and dissolved organic carbon on the toxicity of cadmium and copper to a freshwater bivalve: further support for the extended free ion activity model, Arch. Environ. Contam. Toxicol., 45, 479, 10.1007/s00244-003-2175-x
Martell, A.E., Smith, R.M., Motekaitis, R.J., 2004. NIST Standard ReferenceDatabase 46 Version 8.0: NIST Critical Selected Stability Constants of Metal Complexes.
Nybroe, 2008, Differential bioavailability of copper complexes to bioluminescent Pseudomonas fluorescens reporter strains, Environ. Toxicol. Chem., 27, 2246, 10.1897/08-025.1
Owojori, 2009, The combined stress effects of salinity and copper on the earthworm Eisenia fetida, Appl. Soil Ecol., 41, 277, 10.1016/j.apsoil.2008.11.006
Parker, 2001, Reevaluating the free-ion activity model of trace metal toxicity toward higher plants: experimental evidence with copper and zinc, Environ. Toxicol. Chem., 20, 899, 10.1002/etc.5620200426
Plette, 1999, Bioavailability of heavy metals in terrestrial and aquatic systems: a quantitative approach, Environ. Toxicol. Chem., 18, 1882, 10.1002/etc.5620180903
Ponizovsky, 2006, Effect of soil properties on copper release in soil solutions at low moisture content, Environ. Toxicol. Chem., 25, 671, 10.1897/04-621R.1
Rooney, 2006, Soil factors controlling the expression of copper toxicity to plants in a wide range of European soils, Environ. Toxicol. Chem., 25, 726, 10.1897/04-602R.1
Schecher, 1992, MINEQL+ – a software environment for chemical-equilibrium modeling, Comput. Environ. Urban Syst., 16, 65, 10.1016/0198-9715(92)90053-T
Smith, 1994, Effect of soil-pH on availability to crops of metals in sewage sludge-treated soils. 2. Cadmium uptake by crops and implications for human dietary-intake, Environ. Pollut., 86, 5, 10.1016/0269-7491(94)90003-5
Sparks, 2003
Steenbergen, 2005, Development of a biotic ligand model and a regression model predicting acute copper toxicity to the earthworm Aporrectodea caliginosa, Environ. Sci. Technol., 39, 5694, 10.1021/es0501971
Tao, 2002, Uptake of copper complexed to EDTA, diaminoethane, oxalic acid, or tartaric acid by neon tetras (Paracheirodon innesi), Ecotoxicol. Environ. Saf., 53, 317, 10.1006/eesa.2002.2224
Thakali, 2006, A terrestrial biotic ligand model. 1. development and application to Cu and Ni toxicities to barley root elongation in soils, Environ. Sci. Technol., 40, 7085, 10.1021/es061171s
Tipping, 1994, Wham – a chemical-equilibrium model and computer code for waters, sediments, and soils incorporating a discrete site electrostatic model of ion-binding by humic substances, Comput. Geosci., 20, 973, 10.1016/0098-3004(94)90038-8
Tipping, 1998, Humic ion-binding model VI: an improved description of the interactions of protons and metal ions with humic substances, Aquat. Geochem., 4, 3, 10.1023/A:1009627214459
Tipping, 2003, The solid-solution partitioning of heavy metals (Cu, Zn, Cd, Pb) in upland soils of England and Wales, Environ. Pollut., 125, 213, 10.1016/S0269-7491(03)00058-7
Verslycke, 2003, The toxicity of metal mixtures to the estuarine mysid Neomysis integer (Crustacea: mysidacea) under changing salinity, Aquat. Toxicol., 64, 307, 10.1016/S0166-445X(03)00061-4
Wang, 2011, Plasma membrane surface potential: dual effects upon ion uptake and toxicity, Plant Physiol., 155, 808, 10.1104/pp.110.165985
Wang, 2010, Evaluating the biotic ligand model for toxicity and the alleviation of toxicity in terms of cell membrane surface potential, Environ. Toxicol. Chem., 29, 1503, 10.1002/etc.186
Wang, 2012, A biotic ligand model predicting acute copper toxicity for barley (Hordeum vulgare): influence of calcium, magnesium, sodium, potassium and pH, Chemosphere, 89, 89, 10.1016/j.chemosphere.2012.04.022
Wang, 2009, Identification of hydroxyl copper toxicity to barley (Hordeum vulgare) root elongation in solution culture, Environ. Toxicol. Chem., 28, 662, 10.1897/07-641.1
Weng, 2003, Phytotoxicity and bioavailability of nickel: chemical speciation and bioaccumulation, Environ. Toxicol. Chem., 22, 2180, 10.1897/02-116
Weng, 2004, Understanding the effects of soil characteristics on phytotoxicity and bioavailability of nickel using speciation models, Environ. Sci. Technol., 38, 156, 10.1021/es030053r
Wilson, 1999, Differentiation between osmotic injury and chloride toxicity of rice seedlings grown under saline conditions, Commun. Soil Sci. Plant Anal., 30, 2101, 10.1080/00103629909370357
Yermiyahu, 1997, Root elongation in saline solution related to calcium binding to root cell plasma membranes, Plant Soil, 191, 67, 10.1023/A:1004241506347
