8:2氟调聚羧酸在虾夷扇贝体内的蓄积、分布与转化

郭萌萌, 国佼, 李风铃, 王智, 刘晓玉, 翟毓秀, 谭志军

中国环境科学 ›› 2020, Vol. 40 ›› Issue (10) : 4607-4616.

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中国环境科学 ›› 2020, Vol. 40 ›› Issue (10) : 4607-4616.
环境毒理

8:2氟调聚羧酸在虾夷扇贝体内的蓄积、分布与转化

  • 郭萌萌1, 国佼2, 李风铃1, 王智3, 刘晓玉1, 翟毓秀1, 谭志军1
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Uptake, distribution and biotransformation of 8:2 fluorotelomer carboxylic acid (8: 2FTCA) in scallops (Patinopecten yessoensis)

  • GUO Meng-meng1, GUO Jiao2, LI Feng-ling1, WANG Zhi3, LIU Xiao-yu1, ZHAI Yu-xiu1, TAN Zhi-jun1
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摘要

以虾夷扇贝(Patinopecten yessoensis)为受试生物,研究了8:2氟调聚羧酸(8:2FTCA)在虾夷扇贝不同组织(肝脏、鳃、性腺、外套膜、闭壳肌)中的蓄积、分布和生物转化特征.结果显示,8:2FTCA蓄积浓度最高的组织为肝脏,达峰值最快的组织为鳃.在8:2FTCA代谢过程中,检测到8:2氟调聚不饱和酸(8:2FTUCA)、7:3氟调聚羧酸(7:3FTCA)、全氟辛酸(PFOA)、全氟壬酸(PFNA)和全氟庚酸(PFHpA)5种代谢产物,其中7:3FTCA和PFOA为含量最丰富的2种代谢产物.它们主要分布在鳃和肝脏组织中,鳃和肝脏是8:2FTCA进行生物转化的主要器官,并且鳃组织中代谢产物的浓度最高.推测出虾夷扇贝体内8:2FTCA的生物转化路径,与虹鳟的生物转化行为相比,虾夷扇贝在代谢产物产量和半衰期上均有差异,说明水生生物的生物转化行为具有物种差异性.8:2FTCA在虾夷扇贝体内可转化为PFOA、PFNA和PFHpA等全氟烷基羧酸(PFCAs),是虾夷扇贝体内PFCAs的一个间接来源.

Abstract

The uptake, tissue distribution and biotransformation of 8:2fluorotelomer carboxylic acid (8:2FTCA) in liver, gills, sexual gland, mantle and adductor muscle tissues of the scallop Patinopecten yessoensis were investigated. The highest concentration of 8:2 FTCA was detected in the liver, and the maximum uptake rate of 8:2 FTCA in the gills. Five metabolic products, including 8:2 fluorotelomer unsaturated carboxylic acid (8:2 FTUCA), 7:3 fluorotelomer carboxylic acid (7:3 FTCA), perfluorooctanoic acid (PFOA), perfluorononanoic acid (PFNA) and perfluoroheptanoic acid (PFHpA) were identified in scallops. 7:3 FTCA and PFOA were major metabolites, which tended to accumulate in gills and liver. The biotransformation of parent compound 8:2 FTCA was dominantly occurred in gills, where the metabolites were present at the highest concentrations. The biotransformation pathway of 8:2 FTCA in P. yessoensis was proposed for the first time. Compared with the biotransformation behavior of 8:2 FTCA in rainbow trout, the distinct species differences were observed in the yield and half-life of metabolites in P. yessoensis. These results indicated that 8:2 FTCA can be easily transformed in P. yessoensis, and the detection of PFOA, PFNA and PFHpA indicates that exposure to 8:2 FTCA may be an indirect route of exposure to PFCAs in scallops.

关键词

氟调聚羧酸 / 全氟烷基羧酸 / 生物转化 / 虾夷扇贝 / 组织分布

Key words

Patinopecten yessoensis / biotransformation / fluorotelomer carboxylic acid / perfluocarboxylic acids / tissue distribution

引用本文

导出引用
郭萌萌, 国佼, 李风铃, 王智, 刘晓玉, 翟毓秀, 谭志军. 8:2氟调聚羧酸在虾夷扇贝体内的蓄积、分布与转化[J]. 中国环境科学. 2020, 40(10): 4607-4616
GUO Meng-meng, GUO Jiao, LI Feng-ling, WANG Zhi, LIU Xiao-yu, ZHAI Yu-xiu, TAN Zhi-jun. Uptake, distribution and biotransformation of 8:2 fluorotelomer carboxylic acid (8: 2FTCA) in scallops (Patinopecten yessoensis)[J]. China Environmental Science. 2020, 40(10): 4607-4616
中图分类号: X174   

参考文献

[1] Lee H, Deon J, Mabury S A, et al. Fate of polyluoroalkyl phosphate diesters and their metabolites in biodegradation and plant uptake in greenhouse and field experiments[J]. Environmental Science & Technology, 2013,48(1):340-349.
[2] Fang S, Zhao S, Zhang Y, et al. Distribution of perfluoroalkyl substances (PFASs) with isomer analysis among the tissues of aquatic organisms in Taihu Lake, China[J]. Environmental Pollution, 2014, 193:224-232.
[3] Veronika S, Darina L, Jan P, et al. Perfluoroalkyl substances (PFASs) and other halogenated compounds in fish from the upper Labe River basin[J]. Chemosphere, 2015,129:170-178.
[4] Rand A A, Rooney J P, Butt C M, et al. Cellular toxicity associated with exposure to perfluorinated carboxylates (PFCAs) and their metabolic precursors[J]. Chemical Research in Toxicology, 2014, 27(1):42-50.
[5] Andersen M E, Butenhoff J L, Chang S C, et al. Perfluoroalkyl acids and related chemistries-toxicokinetics and modes of action[J]. Toxicological Sciences, 2008,102(1):3-14.
[6] Biegel L B, Hurtt M E, Frame S R, et al. Mechanisms of extrahepatic tumor induction by peroxisome proliferators in male CD rats[J]. Toxicological Sciences, 2001,60(1):44-55.
[7] 高艳飞,那广水,高会,等.全氟烷基磺酸和全氟烷基羧酸在水生动物体内富集及毒性研究进展[J]. 环境与健康杂志, 2015,32(10):930-934. Gao Y F, Na G S, Gao H, et al. Research progress on enrichment and toxicity of PFOS and PFOA in aquatic animals[J]. Journal of Environment and Health, 2015,32(10):930-934.
[8] Young C J, Mabury S A. Atmospheric perfluorinated acid precursors:chemistry, occurrence, and impacts[J]. Reviews of Environmental Contamination and Toxicology, 2010,208:1-109.
[9] Hagen D F, Belisle J, Johnson J D, et al. Characterization of fluorinated metabolites by a gas chromatographic-helium microwave plasma detector——The biotransformation of 1H, 1H, 2H, 2H-perfluorodecanol to perfluorooctanoate[J]. Analytical Biochemistry, 1981,118(2):336-343.
[10] Zabaleta I, Bizkarguenaga E, Izagirre U, et al. Biotransformation of 8:2polyfluoroalkyl phosphate diester in gilthead bream (Sparus aurata)[J]. Science of the Total Environment, 2017,609:1085-1092.
[11] Gebbink W, Glynn A, Darnerud P O, et al. Perfluoroalkyl acids and their precursors in Swedish food:The relative importance of direct and indirect dietary exposure[J]. Science of the Total Environment, 2015,198:108-115.
[12] Fromme H, Dreyer A, Dietrich S, et al. Neutral polyfluorinated compounds in indoor air in Germany-The LUPE 4study[J]. Chemosphere, 2015,139:572-578.
[13] Coggan T L, Anumol T, Pyke J, et al. A single analytical method for the determination of 53legacy and emerging per-and polyfluoroalkyl substances (PFAS) in aqueous matrices[J]. Analytical and Bioanalytical Chemistry, 2019,411:3507-3520.
[14] Zhang H, Wen B, Hu X, et al. Determination of fluorotelomer alcohols and their degradationproducts in biosolids-amended soils and plants using ultra-highperformance liquid chromatography tandem mass spectrometry[J]. Journal of Chromatography A, 2015,1404:72-80.
[15] 李琦路,程相会,赵祯,等.黄河中游(渭南-郑州段)全/多氟烷基化合物的分布及通量[J]. 环境科学, 2019,40(1):228-238. Li Q L, Cheng X H, Zhao Z, et al. Distribution and fluxes of perfluoroalkyl and polyfluoroalkyl substances in the middle reaches of the Yellow River (Weinan-Zhengzhou Section)[J]. Environmental Science, 2019,40(1):228-238.
[16] 崔文杰,彭吉星,谭志军,等.全氟烷基物质在胶州湾海水、沉积物及生物中污染特征[J]. 环境科学, 2019,40(9):3990-3999. Cui W J, Peng J X, Tan Z J, et al. Pollution characteristics of perfluorinated alkyl substances (PFASs) in seawater, sediments, and biological samples from Jiaozhou Bay, China[J]. Environmental Science, 2019,40(9):3990-3999.
[17] Fasano W J, Carpenter S C, Gannon S A, et al. Absorption, distribution, metabolism, and elimination of 8:2fluorotelomer alcohol in the rat[J]. Toxicological Sciences, 2006,91(2):341-355.
[18] Butt C M, Muir D C G, Mabury S A. Elucidating thepathways of poly-and perfluorinated acid formation rainbow trout[J]. Environmental Science & Technology, 2010,44(13):4973-4980.
[19] Nabb D L, Szostek B, Himmelstein M W, et al. In vitro metabolism of 8:2fluorotelomer alcohol:interspecies comparisons and metabolic pathway refinement[J]. Toxicological Sciences, 2007,100(2):333-344.
[20] Kim M H, Wang N, Chu K H. 6:2Fluorotelomer alcohol (6:2FT0H) biodegradation by multiple microbial species under different physiological conditions[J]. Applied Microbiology and Biotechnology, 2014,98(4):1831-1840.
[21] Kim M H, Wang N, McDonald T, et al. Biodefluorination and biotransformation of fluorotelomer alcohols by two alka-degrading Pseudomonas strains[J]. Biotechnology and Bioengineering, 2012,109(12):3041-3048.
[22] Martin J W, Mabury S A, O' Brien P J. Metabolic products and pathways of fluorotelomer alcohols in isolated rat hepatocytes[J]. Chemico-Biological Interactions, 2005,155(3):165-180.
[23] Wang N, Szostek B, Buck R C, et al. 8-2fluorotelomer alcohol aerobic soil biodegradation:pathways, metabolites, and metabolite yields[J]. Chemosphere, 2009,75:1089-1096.
[24] Dinglasan M J, Ye Y, Edwards E A, et al. Fluorotelomer alcohol biodegradation yields poly-and perfluorinated acids[J]. Environmental Science & Technology, 2004,38(10):2857-2864.
[25] 国佼,郭萌萌,吴海燕,等.双固相萃取柱净化-超快速液相色谱-串联质谱法同时测定贝类组织中全氟羧酸及其前体物质[J]. 食品科学, 2017,38(20):248-255. Guo J, Guo M M, Wu H Y, et al. Simultaneous determination of perfluorinated acids and their precursors in bivalve shellfish by double SPE columns purification and ultra fast liquid chromatography-tandem mass spectrometry[J]. China Environmental Science, 2017, 38(20):248-255.
[26] Himmelstein M W, Serex T L, Buck R C, et al. 8:2fluorotelomer alcohol:A one-day nose-only inhalation toxicokinetic study in the Sprague-Dawley rat with application to risk assessment[J]. Toxicology, 2012,291(1-3):122-132.
[27] Butt C M, Muir D C, Mabury S A. Biotransformation of the 8:2fluorotelomer acrylate in rainbow trout. 1. In vivo dietary exposure[J]. Environmental Toxicology & Chemistry, 2010,29(12):2726-2735.
[28] Myers A L, Mabury S A. Fate of fluorotelomer acids in a soil-water microcosm[J]. Environmental Toxicology & Chemistry, 2010,29(8):1689-1695.
[29] Liu J X, Lee L S, Nies L F, et al. Biotransformation of 8:2fluorotelomer alcohol in soil and by soil bacteria isolates microcosm[J]. Environmental Science & Technology, 2007,41(23):8024-8030.
[30] Kudo N, Iwase Y, Okayachi H, et al. Induction of hepatic peroxisome proliferation by 8:2telomer alcohol feeding in mice:formation of perfluorooctanoic acid in the liver[J]. Toxicological Sciences, 2005, 86(2):231-238.
[31] Fasano W J, Sweeney L M, Mawn M P, et al. Kinetics of 8:2fluorotelomer alcohol and its metabolites, and liver glutathione status following daily oral dosing for 45days in male and female rats[J]. Chemico-Biological Interactions, 2009,180(2):281.
[32] Liu J, Wang N, Buck R C, et al. Aerobic biodegradation of[14C] 6:2fluorotelomer alcohol in a flow-through soil incubation system[J]. Chemosphere, 2010,80(80):716-723.
[33] Martin J W, Mabury S A, O'Brien P J. Metabolic products and pathways of fluorotelomer alcohols in isolated rat hepatocytes[J]. Chemico-Biological Interactions, 2005,155(3):165-180.
[34] Zhang S, Szostek B, Mccausland P K, et al. 6:2and 8:2fluorotelomer alcohol anaerobic biotransformation in digester sludge from a WWTP under methanogenic conditions[J]. Environmental Science & Technology, 2013,47(9):4227-4235.
[35] Wang N, Szostek B, Folsom P W, et al. Aerobic biotransformation of 14C-labeled 8-2telomer B alcohol by activated sludge from a domestic sewage treatment plant[J]. Environmental Science & Technology, 2005,39(2):531-538.
[36] Henderson W M, Smith M A. Perfluorooctanoic acid and perfluorononanoic acid in fetal and neonatal mice following in utero exposure to 8-2fluorotelomer alcohol[J]. Toxicological Sciences, 2007,95(2):452-461.
[37] Henderson W M. Comparative metabolism and distribution of 8-2fluorotelomer alcohol (FTOH) in male, female and pregnant mice.[D]. Athens, Georgia:The University of Georgia, 2006.
[38] Nilsson H, Kärrman A, Rotander A, et al. Biotransformation of fluorotelomer compound to perfluorocarboxylates in humans[J]. Environment International, 2013,51:8-12.
[39] Nilsson H, Kärrman A, Westberg H, et al. A time trend study of significantly elevated perfluorocarboxylate levels in humans after using fluorinated ski wax[J]. Environmental Science & Technology, 2010,44(6):2150-2155.

基金

国家重点研发计划项目(2017YFC1600705);国家自然科学基金资助项目(41906130);国家市场监督管理总局技术保障项目(2020YJ027);中国水产科学研究院基本科研业务费项目(2020TD71)

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