Aquatic macroinvertebrates under stress: Bioaccumulation of emerging contaminants and metabolomics implications

生物累积 无脊椎动物 环境化学 流出物 生物监测 生物浓缩 水生植物 水生植物 生物 污染 污染 生态学 环境科学 化学 环境工程
作者
Ana Previšić,Marko Rožman,Jordi‐René Mor,Vicenç Acuña,Albert Serra-Compte,Mira Petrović,Sergi Sabater
出处
期刊:Science of The Total Environment [Elsevier]
卷期号:704: 135333-135333 被引量:20
标识
DOI:10.1016/j.scitotenv.2019.135333
摘要

The current knowledge on bioaccumulation of emerging contaminants (ECs) in aquatic invertebrates exposed to the realistic environmental concentrations is limited. Even less is known about the effects of chemical pollution exposure on the metabolome of aquatic invertebrates. We conducted an in situ translocation experiment with passive filter-feeding caddisfly larvae (Hydropsyche sp.) in an effluent-influenced river in order to i) unravel the bioaccumulation (and recovery) dynamics of ECs in aquatic invertebrates, and ii) test whether exposure to environmentally realistic concentrations of ECs will translate into metabolic profile changes in the insects. The experiment was carried out at two sites, upstream and downstream of the discharge of an urban wastewater treatment plant effluent. The translocated animals were collected at 2-week intervals for 46 days. Both pharmaceuticals and endocrine disrupting compounds (EDCs) were detected in water (62 and 7 compounds, respectively), whereas in Hydropsyche tissues 5 EDCs accumulated. Overall, specimens from the upstream site translocated to the impacted site reached higher ECs concentrations in their tissues, as a reflection of the contaminants' water concentrations. However, bioaccumulation was a temporary process susceptible to change under lower contaminant concentrations. Non-targeted metabolite profiling detected fine metabolic changes in translocated Hydropsyche larvae. Both translocations equally induced stress, but it was higher in animals translocated to the impacted site.
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