The biotic ligand model can successfully predict the uptake of a trivalent ion by a unicellular alga below pH 6.50 but not above: possible role of hydroxo-species.
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[1] P. Campbell,et al. Extending the biotic ligand model to account for positive and negative feedback interactions between cadmium and zinc in a freshwater alga. , 2012, Environmental science & technology.
[2] M. Maguire,et al. Cation selectivity by the CorA Mg2+ channel requires a fully hydrated cation. , 2010, Biochemistry.
[3] C. Mccrohan,et al. The suitability of gallium as a substitute for aluminum in tracing experiments , 2010, BioMetals.
[4] K. Wilkinson,et al. Chemodynamics and bioavailability in natural waters. , 2009, Environmental science & technology.
[5] J. Puy,et al. Metal flux in ligand mixtures. 2. Flux enhancement due to kinetic interplay: comparison of the reaction layer approximation with a rigorous approach. , 2009, The journal of physical chemistry. A.
[6] J. Buffle,et al. FLUXY: a simple code for computing steady-state metal fluxes at consuming (bio)interfaces, in natural waters , 2008 .
[7] P. Campbell,et al. pH modulates transport rates of manganese and cadmium in the green alga Chlamydomonas reinhardtii through non-competitive interactions: implications for an algal BLM. , 2007, Aquatic toxicology.
[8] K. Wilkinson,et al. Ni uptake by a green alga. 2. Validation of equilibrium models for competition effects. , 2007, Environmental science & technology.
[9] J. Galceran,et al. Computing steady-state metal flux at microorganism and bioanalogical sensor interfaces in multiligand systems. A reaction layer approximation and its comparison with the rigorous solution. , 2007, Physical chemistry chemical physics : PCCP.
[10] T. Kinraide. Plasma membrane surface potential (ψpm) as a determinant of ion bioavailability: A critical analysis of new and published toxicological studies and a simplified method for the computation of plant ψpm , 2006, Environmental toxicology and chemistry.
[11] K. Wilkinson,et al. Cadmium uptake by a green alga can be predicted by equilibrium modelling. , 2005, Environmental science & technology.
[12] Vera I. Slaveykova,et al. Predicting the bioavailability of metals and metal complexes: Critical review of the biotic ligand model , 2005 .
[13] C. Hassler,et al. Discriminating between intra‐ and extracellular metals using chemical extractions , 2004 .
[14] R. Koschel,et al. Analysis of Toxic Aluminium Species in Natural Waters , 2004 .
[15] C. Fortin,et al. Uranium complexation and uptake by a green alga in relation to chemical speciation: The importance of the free uranyl ion , 2004, Environmental toxicology and chemistry.
[16] K. Wilkinson,et al. Critical Evaluation of Physicochemical Parameters and Processes for Modelling the Biological Uptake of Trace Metals in Environmental (Aquatic) Systems , 2004 .
[17] C. Hassler,et al. Some fundamental (and often overlooked) considerations underlying the free ion activity and biotic ligand models , 2004, Environmental toxicology and chemistry.
[18] K. Wilkinson,et al. Effect of pH on Pb biouptake by the freshwater alga Chlorella kesslerii , 2003 .
[19] Claude Fortin,et al. Metal bioavailability to phytoplankton--applicability of the biotic ligand model. , 2002, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[20] Josep Galceran,et al. Evaluation of the Koutecký-Koryta approximation for voltammetric currents generated by metal complex systems with various labilities , 2002 .
[21] K. Wilkinson,et al. Physicochemical aspects of lead bioaccumulation by Chlorella vulgaris. , 2002, Environmental science & technology.
[22] P. Paquin,et al. Biotic ligand model of the acute toxicity of metals. 1. Technical Basis , 2001, Environmental toxicology and chemistry.
[23] P. Campbell,et al. Silver uptake by the green alga Chlamydomonas reinhardtii in relation to chemical speciation: Influence of chloride , 2000 .
[24] Z. Rengel,et al. Direct measurement of aluminum uptake and distribution in single cells of Chara corallina. , 2000, Plant physiology.
[25] R. Playle,et al. The Bioavailability and Toxicity of Aluminum in Aquatic Environments , 1999 .
[26] R. Hudson. Which aqueous species control the rates of trace metal uptake by aquatic biota? Observations and predictions of non-equilibrium effects , 1998 .
[27] T. Buckhout,et al. Iron assimilation in Chlamydomonas reinhardtii involves ferric reduction and is similar to Strategy I higher plants , 1998 .
[28] U. Yermiyahu,et al. Binding and Electrostatic Attraction of Lanthanum (La3+) and Aluminum (Al3+) to Wheat Root Plasma Membranes , 1997, The Journal of Membrane Biology.
[29] R. Reid,et al. Uptake of Al across the plasma membrane of plant cells , 1997, Plant and Soil.
[30] Z. Rengel. Uptake of aluminium by plant cells , 1996 .
[31] M. Benedetti,et al. pH dependent charging behavior of isolated cell walls of a gram-positive soil bacterium. , 1995 .
[32] L. Lee,et al. Effects of cobalt and pH on the growth of Chlamydomonas reinhardtii , 1995, Bulletin of environmental contamination and toxicology.
[33] J. Wit,et al. Determination of proton affinity distributions for humic substances. , 1993 .
[34] M. Vaara,et al. Agents that increase the permeability of the outer membrane. , 1992, Microbiological reviews.
[35] H. Allen,et al. Metal speciation. Effects on aquatic toxicity. , 1980, Environmental science & technology.
[36] D. Turner,et al. Critical Assessment of the Relationship between Biological Thermodynamic and Electrochemical Availability , 1979 .
[37] R. Guillard,et al. Growth limitation of a coastal diatom by low zinc ion activity , 1978, Nature.
[38] Li Yuan-hui,et al. Diffusion of ions in sea water and in deep-sea sediments , 1974 .
[39] S. Wood,et al. The aqueous geochemistry of gallium, germanium, indium and scandium , 2006 .
[40] D. Sparling,et al. Environmental hazards of aluminum to plants, invertebrates, fish, and wildlife. , 1996, Reviews of environmental contamination and toxicology.
[41] P. Campbel. Interactions between trace metals and aquatic organisms : A critique of the Free-ion Activity Model , 1995 .
[42] W. Sunda,et al. Regulation of cellular manganese and manganese transport rates in the unicellular alga Chlamydomonas , 1985 .