废弃电子垃圾拆解地野生鱼类卤系阻燃剂残留

吴江平, 冯文露, 吴思康, 胡钰, 麦碧娴

中国环境科学 ›› 2021, Vol. 41 ›› Issue (4) : 1886-1892.

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中国环境科学 ›› 2021, Vol. 41 ›› Issue (4) : 1886-1892.
环境毒理与健康

废弃电子垃圾拆解地野生鱼类卤系阻燃剂残留

  • 吴江平1, 冯文露1, 吴思康1, 胡钰1, 麦碧娴2
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Residues of halogenated flame retardants in wild fish from an abandoned e-waste site in South China

  • WU Jiang-ping1, FENG Wen-lu1, WU Si-kang1, HU Yu1, MAI Bi-xian2
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摘要

为了解废弃拆解地环境中电子垃圾相关污染物的含量水平及其生态风险,本文测试了华南某废弃电子垃圾拆解地野生鲮鱼和鲫鱼体内多溴联苯醚(PBDEs)、多溴联苯(PBBs)、得克隆(DP)和替代型溴系阻燃剂(ABFRs)等卤系阻燃剂(HFRs)的含量和组成,评估了这些污染物对于野生鱼类及食鱼野生动物的生态风险.电子垃圾拆解地鲮鱼和鲫鱼体内∑HFRs的含量范围分别为1230~1680和141~650ng/g,高于对照区1~2个数量级,表明虽然粗犷的电子垃圾回收活动已禁止多年,当地野生鱼类仍然受到HFRs严重污染.PBDEs是鱼体内最主要的HFRs,鲮鱼和鲫鱼体内其分别占∑HFRs的96%和89%.鲮鱼和鲫鱼体内HFRs含量和组成均存在显著差异,可能与其生活习性、营养级和脂肪含量不同有关.风险评估结果显示,PBDEs对野生鱼类及食鱼野生动物均具有较大的生态风险.

Abstract

Due to its serious environmental pollution, crude e-waste dismantling has been banned in China, leaving many abandoned e-waste sites. However, the levels and the ecological risks of e-waste derived contaminants in these sites were not fully understood. In the present study, the concentrations of several halogenated flame retardants (HFRs), including polybrominated diphenyl ethers (PBDEs), polybrominated biphenyls (PBBs), Dechlorane Plus (DP) and alternative brominated flame retardants (ABFRs), were examined in wild mud carps and crucian carps collected from an abandoned e-waste site in South China. The concentrations of ∑HFRs in mud carps and crucian carps ranged from 1230 to 1680ng/g and from 141 to 650ng/g, respectively. These concentrations were 1~2 orders of magnitude higher than those detected in the same species from a reference site, suggesting heavy contamination of HFRs, despite of the fact that primitive e-waste recycling has been regulated for several years. Among the HFRs measured, PBDEs were detected at the highest concentrations contributing 96% and 89% to ∑HFRs in mud carp and crucian carp, respectively. There were significant differences in both the concentrations, and compositions of HFRs between mud carp and crucian carp, possibly resulting from the differences in the feeding habits, trophic level and lipid content between the two fish species. The result of risk assessment showed that PBDEs posed an important risk both for the fish and for piscivorous wildlife.

关键词

电子垃圾 / 多溴联苯醚 / 卤系阻燃剂 / 生态风险 / 野生鱼类

Key words

ecological risk / e-waste / halogenated flame retardants / PBDEs / wild fish

引用本文

导出引用
吴江平, 冯文露, 吴思康, 胡钰, 麦碧娴. 废弃电子垃圾拆解地野生鱼类卤系阻燃剂残留[J]. 中国环境科学. 2021, 41(4): 1886-1892
WU Jiang-ping, FENG Wen-lu, WU Si-kang, HU Yu, MAI Bi-xian. Residues of halogenated flame retardants in wild fish from an abandoned e-waste site in South China[J]. China Environmental Science. 2021, 41(4): 1886-1892
中图分类号: X503.225   

参考文献

[1] Alaee M, Arias P, Sjödin A, et al. An overview of commercially used brominated flame retardants, their applications, their use patterns in different countries/regions and possible modes of release[J]. Environment International, 2003,29:683-689.
[2] POPs Review Committee. Proposal to list Dechlorane Plus (CAS No. 13560-89-9) and its syn-isomer (CAS No. 135821-03-3) and anti-isomer (CAS No. 135821-74-8) in Annexes A, B and/or C to the Stockholm Convention on Persistent Organic Pollutants[R]. POPs Review Committee, 2019.
[3] Covaci A, Harrad S, Abdallah M A E, et al. Novel brominated flame retardants:A review of their analysis, environmental fate and behaviour[J]. Environment International, 2011,37:532-556.
[4] Xiong P, Yan X, Zhu Q, et al. A review of environmental occurrence, fate, and toxicity of novel brominated flame retardants[J]. Environmental Science & Technology, 2019,53:13551-13569.
[5] 王涛,陶林,曾源,等.工业园及电子垃圾区大气中的溴代阻燃剂(BFRs)[J]. 中国环境科学, 2019,39(9):3691-3700. Wang T, Tao L, Zeng Y, et al. Brominated flame retardants (BFRs) in the atmosphere of urban and e-waste recycling regions in South China:concentrations, distributions, compositions, and emission[J]. China Environmental Science, 2019,39(9):3691-3700.
[6] Wu Q, Leung J Y S, Du Y, et al. Trace metals in e-waste lead to serious health risk through consumption of rice growing near an abandoned e-waste recycling site:Comparisons with PBDEs and AHFRs[J]. Environmental Pollution, 2019,247:46-54.
[7] Horri K, Alfonso S, Cousin X, et al. Fish life-history traits are affected after chronic dietary exposure to an environmentally realistic marine mixture of PCBs and PBDEs[J]. Science of the Total Environment, 2018,610:531-545.
[8] Hamilton P B, Cowx I G, Oleksiak M F, et al. Population-level consequences for wild fish exposed to sublethal concentrations of chemicals-a critical review[J]. Fish Fishery, 2015,17:545-566.
[9] Lynch A J, Cooke S J, Deines A M, et al. The social, economic, and environmental importance of inland fish and fisheries[J]. Environmental Reviews, 2006,24:1-7.
[10] Tao L, Zhang Y, Wu J P, et al. Biomagnification of PBDEs and alternative brominated flame retardants in a predatory fish:Using fatty acid signature as a primer[J]. Environment International, 2019,127:226-232.
[11] Sun R X, Luo X J, Tang B, et al. Persistent halogenated compounds in fish from rivers in the Pearl River Delta, South China:Geographical pattern and implications for anthropogenic effects on the environment[J]. Environmental Research, 2016,146:371-378.
[12] Wu J P, Luo X J, Zhang Y, et al. Bioaccumulation of polybrominated diphenyl ethers (PBDEs) and polychlorinated biphenyls (PCBs) in wild aquatic species from an electronic waste (e-waste) recycling site in South China[J]. Environment International, 2008,34:1109-1113.
[13] Zeng Y H, Luo X J, Yu L H, et al. Using compound-specific stable carbon isotope analysis to trace metabolism and trophic transfer of PCBs and PBDEs in fish from an e-waste site, South China[J]. Environmental Science & Technology, 2013,47:4062-4068.
[14] Wu J P, Zhang Y, Luo X J, et al. Isomer-specific bioaccumulation and trophic transfer of Dechlorane Plus in the freshwater food web from a highly contaminated site, South China[J]. Environmental Science & Technology, 2010,44:606-611.
[15] Wu J P, Luo X J, Zhang Y, et al. Biomagnification of polybrominated diphenyl ethers (PBDEs) and polychlorinated biphenyls in a highly contaminated freshwater food web from South China[J]. Environmental Pollution, 2009,157:904-909.
[16] Zhu B, Lai N L S, Wai T C, et al. Changes of accumulation profiles from PBDEs to brominated and chlorinated alternatives in marine mammals from the South China Sea[J]. Environment International, 2014,66:65-70.
[17] Lee H K, Lee S, Lim J E, et al. Legacy and novel flame retardants in water and sediment from highly industrialized bays of Korea:Occurrence, source tracking, decadal time trend, and ecological risks[J]. Marine Pollution Bulletin, 2020,16:111639.
[18] Peng C, Tian H, Guo Y, et al. Emerging and legacy flame retardants in indoor dust from East China[J]. Chemosphere, 2017,186:635-643.
[19] Chen Y, Cao Z, Covaci A, et al. Novel and legacy flame retardants in paired human fingernails and indoor dust samples[J]. Environment International, 2019,133:105227.
[20] Dodson R, Rodgers K M, Carey G, et al. Flame Retardant Chemicals in College Dormitories:Flammability Standards Influence Dust Concentrations[J]. Environmental Science & Technology, 2017,51:4860-4869.
[21] Zhang Y, Wu J P, Luo X J, et al. Biota-sediment accumulation factors for Dechlorane Plus in bottom fish from an electronic waste recycling site, South China[J]. Environment International, 2011,37:1357-1361.
[22] Wu J P, She Y Z, Zhang Y, et al. Sex-dependent accumulation and maternal transfer of Dechlorane Plus flame retardant in fish from an electronic waste recycling site in South China[J]. Environmental Pollution, 2013,177:150-155.
[23] Mo L, Wu J P, Luo X J, et al. Dechlorane Plus flame retardant in kingfishers (Alcedo atthis) from an electronic waste recycling site and a reference site in South China:Influence of residue levels on the isomeric compositions[J]. Environmental Pollution, 2013,174:57-62.
[24] Peng Y, Wu J P, Tao L, et al. Accumulation of Dechlorane Plus flame retardant in terrestrial passerines from a nature reserve in South China:The influences of biological and chemical variables[J]. Science of the Total Environment, 2015,514:77-82.
[25] Liu Y, Luo X J, Huang L Q, et al. Halogenated organic pollutants in aquatic, amphibious, and terrestrial organisms from an e-waste site:habitat-dependent accumulation and maternal transfer in watersnake[J]. Environmental Pollution, 2018,241:1063-1070.
[26] Wu J P, Wu S K, Tao L, et al. Bioaccumulation characteristics of PBDEs and alternative brominated flame retardants in a wild frog-eating snake[J]. Environmental Pollution, 2020,258:113661.
[27] Wu J P, Guan Y T, Zhang Y, et al. Several current-use, non-PBDE brominated flame retardants are highly bioaccumulative:Evidence from field determined bioaccumulation factors[J]. Environment International, 2011,37:210-215.
[28] Environment Canada. Canadian Environmental Protection Act, 1999. Federal Environmental Quality Guidelines. Polybrominated Diphenyl Ethers (PBDEs):En84-91/2013E-PDF[R]. 2013.

基金

国家自然科学基金资助项目(22076002);安徽省自然科学基金资助项目(2008085MD123)

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