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Re-evaluation of metal bioaccumulation and chronic toxicity in Hyalella azteca using saturation curves and the biotic ligand model

机译:利用饱和度曲线和生物配体模型重新评估透明质酸中金属的生物累积和慢性毒性

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Bioaccumulation by Hyalella of all metals studied so far in our laboratory was re-evaluated to determine if the data could be explained satisfactorily using saturation models. Saturation kinetics are predicted by the biotic ligand model (BLM), now widely used in modelling acute toxicity, and are a pre-requisite if the BLM is to be applied to chronic toxicity. Saturation models provided a good fit to all the data. Since these are mechanistically based, they provide additional insights into metal accumulation mechanisms not immediately apparent when using allometric models. For example, maximum Cd accumulation is dependent on the hardness of the water to which Hyalella are acclimated. The BLM may need to be modified when applied to chronic toxicity. Use of saturation models for bioaccumulation, however, also necessitates the need for using saturation models for dose-response relationships in order to produce unambiguous estimates of LC50 values based on water and body concentrations. This affects predictions of toxicity at very low metal concentrations and results in lower predicted toxicity of mixtures when many metals are present at low concentrations.
机译:Hyalella对迄今为止在我们实验室中研究的所有金属的生物富集进行了重新评估,以确定是否可以使用饱和度模型令人满意地解释数据。饱和动力学是由生物配体模型(BLM)预测的,目前已广泛用于对急性毒性进行建模,并且如果将BLM应用于慢性毒性,则这是先决条件。饱和度模型非常适合所有数据。由于这些是基于机械的,因此它们提供了有关使用异速测量模型时尚未立即发现的金属累积机制的更多见解。例如,最大的Cd积累量取决于Hyalella所适应的水的硬度。当应用于慢性毒性时,可能需要修改BLM。但是,使用饱和度模型进行生物蓄积还需要将饱和度模型用于剂量反应关系,以便根据水和人体浓度得出LC50值的明确估计值。这会影响非常低的金属浓度下的毒性预测,并且当许多金属以低浓度存在时,导致混合物的较低的预测毒性。

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