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Fate of PBDEs in Juvenile Lake Trout Estimated Using a Dynamic Multichemical Fish Model

机译:动态多化学鱼类模型估算少年鳟鱼中多溴二苯醚的命运

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Biotransformation half-lives (HL) and gut absorption efficiencies (GAE) of PBDE congeners in fish are poorly known and challenging to quantify experimentally. These values are needed in order to accurately assess their food web dynamics, and in turn, for policy development. We recently developed a multichemical aquatic food web model, which was used to estimate HL of four PBDE congeners in a simple Arctic food web. However, an application of this model to more complex food webs would dramatically increase the uncertainties in the results due to the large number of unknowns that would need to be considered simultaneously. As such, an in-depth analysis of possible HL and GAE of additional PBDE congeners at the scale of individual fish species would facilitate model application to more complex food webs. For this purpose, we developed a fugacity-based dynamic multichemical fish model and applied it to previously published experimental laboratory data. The model was calibrated by maximizing correspondence between the modeled and observed concentrations for each of the thirteen congeners at two dietary concentrations in juvenile lake trout (Salvelinus namaycush) during uptake and depuration phases mainly by varying HL and GAE. A robust parametrization and calibration procedure gave us confidence in our back-calculated congener-specific HL of 42-420 days and GAE of 20-45%. These values can be used as a starting point for model applications to natural fish populations. The fate/transport results suggest that not only loss of PBDE congeners via degradation, but also input through biotransformation of higher brominated congeners, should be accounted for in order to accurately portray dynamics of PBDEs in fish.
机译:PBDE同系物在鱼类中的生物转化半衰期(HL)和肠道吸收效率(GAE)鲜为人知,并且难以通过实验进行量化。需要这些值才能准确评估其食物网动态,进而用于政策制定。我们最近开发了一种多化学水生食物网模型,该模型用于估算简单北极食物网中四个PBDE同系物的HL。但是,由于需要同时考虑大量未知因素,因此将该模型应用于更复杂的食物网会大大增加结果的不确定性。因此,对个别鱼类物种规模的其他多溴二苯醚同系物可能的HL和GAE进行深入分析将有助于将模型应用于更复杂的食物网。为此,我们开发了一种基于逸度的动态多化学鱼类模型,并将其应用于先前发布的实验实验室数据。通过在摄取和净化阶段主要通过改变HL和GAE来最大化幼湖鳟鱼(Salvelinus namaycush)中两种饮食浓度下的13种同源物的建模浓度和观测浓度之间的对应关系,对模型进行校准。强大的参数化和校准程序使我们对42-420天的反向同源族特定HL和GAE 20-45%充满信心。这些值可以用作模型应用于天然鱼类种群的起点。命运/运输结果表明,不仅应考虑通过降解损失多溴二苯醚同系物,还应考虑通过更高溴化同系物的生物转化进行输入,以便准确描绘鱼类中多溴二苯醚的动态。

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