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利用被动采样技术解析不同营养级淡水鱼体内疏水性有机污染物浓度与水之间的关系。

Unraveling the Relationship between the Concentrations of Hydrophobic Organic Contaminants in Freshwater Fish of Different Trophic Levels and Water Using Passive Sampling.

机构信息

Faculty of Science, Centre RECETOX, Masaryk University, Kamenice 753/5, 625 00 Brno, Czech Republic.

Fram Centre, Norwegian Institute for Water Research (NIVA), Hjalmar Johansen Gate 14, 9007 Tromsø, Norway.

出版信息

Environ Sci Technol. 2020 Jul 7;54(13):7942-7951. doi: 10.1021/acs.est.9b07821. Epub 2020 Jun 18.

DOI:10.1021/acs.est.9b07821
PMID:32551598
Abstract

The concentrations of hydrophobic organic compounds (HOCs) in aquatic biota are used for compliance, as well as time and spatial trend monitoring in the aqueous environment (European Union water framework directive, OSPAR). Because of trophic magnification in the food chain, the thermodynamic levels of HOCs, for example, polychlorinated biphenyl congeners, dichlorodiphenyltrichloroethane, and brominated diphenyl ether congeners, in higher trophic level (TL) organisms are expected to be strongly elevated above those in water. This work compares lipid-based concentrations at equilibrium with the water phase derived from aqueous passive sampling () with the lipid-based concentrations in fillet and liver of fish () at different TLs for three water bodies in the Czech Republic and Slovakia. The values of HOCs in fish were near , only after trophic magnification up to TL = 4. For fish at lower TL, progressively decreased relative to as of HOCs increased above 10. The value decreasing toward the bottom of the food chain suggests nonequilibrium for primary producers (algae), which is in agreement with modeling passive HOC uptake by algae. Because trophic magnification and the resulting in fish exhibit large natural variability, is a viable alternative for monitoring HOCs using fish, showing a twofold lower confidence range and requiring less samples.

摘要

水生生物中疏水性有机化合物 (HOCs) 的浓度可用于合规性以及水生态环境中的时间和空间趋势监测(欧盟水框架指令、OSPAR)。由于食物链中的营养级放大作用,例如多氯联苯同系物、滴滴涕和溴化二苯醚同系物等 HOCs 的热力学水平,预计在较高营养级 (TL) 的生物体中会强烈高于水中的水平。这项工作比较了来自水相的基于脂质的平衡浓度(通过水相被动采样 () 获得)与捷克共和国和斯洛伐克三个水体中不同 TL 鱼类的鱼片和肝脏中的基于脂质的浓度 ()。在营养级放大到 TL = 4 之前,鱼类中 HOCs 的 值接近 。对于营养级较低的鱼类,随着 HOCs 值超过 10, 值相对于 逐渐降低。值朝着食物链的底部降低表明初级生产者(藻类)处于非平衡状态,这与藻类对 HOCs 的被动吸收建模结果一致。由于营养级放大和由此导致的鱼类中的 值表现出很大的自然变异性,因此 是使用鱼类监测 HOCs 的可行替代方法,其置信区间低两倍,所需样本更少。

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