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URANIUM COMPLEXATION AND UPTAKE BY A GREEN ALGA IN RELATION TO CHEMICAL SPECIATION: THE IMPORTANCE OF THE FREE URANYL ION

机译:铀络合和绿藻摄取与化学形态的关系:游离铀离子的重要性

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The bioavailability and toxicity of dissolved metals are closely linked to the metals' chemical speciation in solution. Normally the complexation of a metal by a ligand would be expected to decrease its bioavailability. The aqueous speciation of uranium (U) undergoes tremendous changes in the presence of ligands commonly found in natural waters (carbonate, phosphate, hydroxide, and natural organic matter). In the present project, links between speciation, medium composition, and bioavailability of uranium toward Chlamydomonas reinhardtii, a unicellular green alga, were investigated. Short-term metal uptake rates were determined in simple inorganic media at constant low pH (5.0) and hardness with particular emphasis on the differentiation between adsorbed and intracellular metal. While intracellular uptake was fairly linear over 1 h, partly reversible adsorption reached steady-state within minutes. Both adsorption and absorption were saturable processes (with a half-saturation constant Km of 0.51 μM). Addition of phosphate, citrate, or ethylenediaminetetraacetic acid (EDTA) as ligands decreased uranium bioavailability. No evidence indicating the transport of intact uranyl complexes was found (i.e., facilitated diffusion of metal bound to an assimilable ligand such as uranium-phosphate complexes). Within these experimental conditions, uranium uptake was correlated with the free uranyl ion concentration as predicted by the free-ion activity model (FIAM) and biotic ligand model (BLM).
机译:溶解金属的生物利用度和毒性与溶液中金属的化学形态密切相关。通常,金属与配体的络合会降低其生物利用度。在天然水(碳酸盐,磷酸盐,氢氧化物和天然有机物)中常见的配体存在下,铀(U)的水形态发生了巨大变化。在本项目中,研究了铀的形态,培养基组成和对莱茵衣藻(一种单细胞绿藻)的生物利用度之间的联系。在简单的无机介质中,在恒定的低pH(5.0)和硬度下,特别是在吸附的金属和胞内金属之间的区别上,确定了短期金属吸收率。虽然细胞内摄取在1小时内呈线性,但几分钟内部分可逆的吸附达到稳态。吸附和吸收都是饱和过程(半饱和常数Km为0.51μM)。加入磷酸根,柠檬酸根或乙二胺四乙酸(EDTA)作为配体会降低铀的生物利用度。没有发现表明完整的铀酰复合物转运的证据(即,促进了与可同化配体如铀-磷酸盐复合物结合的金属的扩散)。在这些实验条件下,铀的吸收与游离离子活性模型(FIAM)和生物配体模型(BLM)预测的游离铀酰离子浓度相关。

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