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将被动采样与水生环境中污染物复杂混合物的毒理学表征相结合。

Combining Passive Sampling with Toxicological Characterization of Complex Mixtures of Pollutants from the Aquatic Environment.

作者信息

Jahnke Annika, Witt Gesine, Schäfer Sabine, Haase Nora, Escher Beate I

机构信息

Department of Cell Toxicology, Helmholtz Centre for Environmental Research - UFZ, Leipzig, 04318, Germany.

Department of Environmental Engineering, Hamburg University of Applied Sciences, Hamburg, 20099, Germany.

出版信息

Adv Biochem Eng Biotechnol. 2017;157:225-261. doi: 10.1007/10_2015_5014.

Abstract

The combination of polymer-based passive sampling to collect complex environmental mixtures of pollutants, the transfer of these mixtures into bioassays, and their related toxicological characterization is still in its infancy. However, this approach has considerable potential to improve environmental hazard and risk assessment for two reasons. First, the passive sampler collects a broad range of chemicals representing the fraction of compounds available for diffusion and (bio)uptake, excluding a large part of the matrix; thus, extensive sample cleanup which could discriminate certain compounds can be avoided. Second, the toxicological characterization of samples using bioassays is complementary to chemical (target) analysis within environmental monitoring because it captures all chemicals exerting the same mode of toxic action and acting jointly in mixtures, thus providing a comprehensive picture of their overall combined effects. The scientific literature describes a range of examples from the water phase where passive sampling is usually carried out in the kinetic uptake regime for most chemicals although some may already have reached equilibrium. The composition of the chemical mixture changes from the water phase to the passive sampling material because of kinetic effects and polymer/water partition coefficients which depend on the chemicals' hydrophobicity. In contrast, only a few applications in sediment and biota have been described, but amongst these some pioneering studies have demonstrated the feasibility and potential of this combined approach. This chapter gives an overview of what has been carried out in this research area, focusing on opportunities and challenges, and points out desirable future developments with a focus on the importance of choosing a suitable combination of sampling and dosing to transfer (or re-establish) the environmental mixture into the bioassay.

摘要

基于聚合物的被动采样用于收集复杂的环境污染物混合物、将这些混合物转移至生物测定中以及对其进行相关毒理学表征的结合,目前仍处于起步阶段。然而,由于两个原因,这种方法在改善环境危害和风险评估方面具有相当大的潜力。首先,被动采样器收集了广泛的化学物质,这些化学物质代表了可用于扩散和(生物)摄取的化合物部分,排除了大部分基质;因此,可以避免可能会区分某些化合物的广泛样品净化过程。其次,使用生物测定对样品进行毒理学表征是环境监测中化学(目标)分析的补充,因为它捕获了所有发挥相同毒作用模式并在混合物中共同作用的化学物质,从而全面呈现它们的总体联合效应。科学文献描述了一系列来自水相的例子,在水相中,对于大多数化学物质,被动采样通常在动力学摄取阶段进行,尽管有些可能已经达到平衡。由于动力学效应以及取决于化学物质疏水性的聚合物/水分配系数,化学混合物的组成从水相到被动采样材料会发生变化。相比之下,沉积物和生物群中的应用描述较少,但其中一些开创性研究已经证明了这种联合方法的可行性和潜力。本章概述了该研究领域已开展的工作,重点关注机遇和挑战,并指出了理想的未来发展方向,重点是选择合适的采样和给药组合以将环境混合物转移(或重新建立)到生物测定中的重要性。

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