Jantzen C E, Annunziato K M, Cooper K R. Behavioral, morphometric, and gene expression effects in adult zebrafish (Danio rerio) embryonically exposed to PFOA, PFOS, and PFNA[J]. Aquatic Toxicology, 2016, 180:123-130
Hoover G M, Chislock M F, Tornabene B J, et al. Uptake and depuration of four per/polyfluoroalkyl substances (PFASS) in northern leopard frog Rana pipiens tadpoles[J]. Environmental Science & Technology Letters, 2017, 4(10):399-403
Zhang S H, Chen K, Li W M, et al. Varied thyroid disrupting effects of perfluorooctanoic acid (PFOA) and its novel alternatives hexafluoropropylene-oxide-dimer-acid (GenX) and ammonium 4,8-dioxa-3H-perfluorononanoate (ADONA) in vitro[J]. Environment International, 2021, 156:106745
Duan Y S, Sun H W, Yao Y M, et al. Serum concentrations of per-/polyfluoroalkyl substances and risk of type 2 diabetes:A case-control study[J]. The Science of the Total Environment, 2021, 787:147476
Dong G Z, Zhang R, Huang H Y, et al. Exploration of the developmental toxicity of TCS and PFOS to zebrafish embryos by whole-genome gene expression analyses[J]. Environmental Science and Pollution Research International, 2021, 28(40):56032-56042
Ojo A F, Xia Q, Peng C, et al. Evaluation of the individual and combined toxicity of perfluoroalkyl substances to human liver cells using biomarkers of oxidative stress[J]. Chemosphere, 2021, 281:130808
Jo A, Ji K, Choi K. Endocrine disruption effects of long-term exposure to perfluorodecanoic acid (PFDA) and perfluorotridecanoic acid (PFTrDA) in zebrafish (Danio rerio) and related mechanisms[J]. Chemosphere, 2014, 108:360-366
Khan E A, Zhang X K, Hanna E M, et al. Application of quantitative transcriptomics in evaluating the ex vivo effects of per- and polyfluoroalkyl substances on Atlantic cod (Gadus morhua) ovarian physiology[J]. The Science of the Total Environment, 2021, 755(Pt 1):142904
Schröter-Kermani C, Müller J, Jürling H, et al. Retrospective monitoring of perfluorocarboxylates and perfluorosulfonates in human plasma archived by the German Environmental Specimen Bank[J]. International Journal of Hygiene and Environmental Health, 2013, 216(6):633-640
Coperchini F, Croce L, Denegri M, et al. Adverse effects of in vitro GenX exposure on rat thyroid cell viability, DNA integrity and thyroid-related genes expression[J]. Environmental Pollution, 2020, 264:114778
Chappell G A, Thompson C M, Wolf J C, et al. Assessment of the mode of action underlying the effects of GenX in mouse liver and implications for assessing human health risks[J]. Toxicologic Pathology, 2020, 48(3):494-508
周秀鹃, 盛南, 王建设, 等. 全氟和多氟化合物替代品的研究进展[J]. 生态毒理学报, 2017, 12(3):3-12 Zhou X J, Sheng N, Wang J S, et al. The Current research status of several kinds of fluorinated alternatives[J]. Asian Journal of Ecotoxicology, 2017, 12(3):3-12(in Chinese)
Xu C, Song X, Liu Z Y, et al. Occurrence, source apportionment, plant bioaccumulation and human exposure of legacy and emerging per- and polyfluoroalkyl substances in soil and plant leaves near a landfill in China[J]. The Science of the Total Environment, 2021, 776:145731
Pasecnaja E, Bartkevics V, Zacs D. Occurrence of selected per- and polyfluorinated alkyl substances (PFASs) in food available on the European market-A review on levels and human exposure assessment[J]. Chemosphere, 2022, 287(Pt 4):132378
Thompson C M, Fitch S E, Ring C, et al. Development of an oral reference dose for the perfluorinated compoundGenX[J]. Journal of Applied Toxicology, 2019, 39(9):1267-1282
Sheng N, Zhou X J, Zheng F, et al. Comparative hepatotoxicity of 6:2 fluorotelomer carboxylic acid and 6:2 fluorotelomer sulfonic acid, two fluorinated alternatives to long-chain perfluoroalkyl acids, on adult male mice[J]. Archives of Toxicology, 2017, 91(8):2909-2919
Zhou X J, Wang J S, Sheng N, et al.Subchronic reproductive effects of 6:2 chlorinated polyfluorinated ether sulfonate (6:2 Cl-PFAES), an alternative to PFOS, on adult male mice[J]. Journal of Hazardous Materials, 2018, 358:256-264
Cai Y P, Wang Q Y, Zhou B H, et al. A review of responses of terrestrial organisms to perfluorinated compounds[J]. The Science of the Total Environment, 2021, 793:148565
Brase R A, Mullin E J, Spink D C. Legacy and emerging per- and polyfluoroalkyl substances:Analytical techniques, environmental fate, and health effects[J]. International Journal of Molecular Sciences, 2021, 22(3):995
Gebreab K Y, Eeza M N H, Bai T Y, et al. Comparative toxicometabolomics of perfluorooctanoic acid (PFOA) and next-generation perfluoroalkyl substances[J]. Environmental Pollution, 2020, 265:114928
陈家苗, 王建设. 新型全氟和多氟烷醚类化合物的环境分布与毒性研究进展[J]. 生态毒理学报, 2020, 15(5):28-34 Chen J M, Wang J S. Research progress in environmental distribution and toxicity of per-and polyfluoroalkyl ether substances[J]. Asian Journal of Ecotoxicology, 2020, 15(5):28-34(in Chinese)
Lalonde B, Garron C. Perfluoroalkyl substances (PFASs) in the Canadian freshwater environment[J]. Archives of Environmental Contamination and Toxicology, 2022, 82(4):581-591
Cao X H, Wang C C, Lu Y L, et al. Occurrence, sources and health risk of polyfluoroalkyl substances (PFASs) in soil, water and sediment from a drinking water source area[J]. Ecotoxicology and Environmental Safety, 2019, 174:208-217
Sun Q P, Bi R, Wang T Y, et al. Are there risks induced by novel and legacy poly- and perfluoroalkyl substances in coastal aquaculture base in South China?[J]. The Science of the Total Environment, 2021, 779:146539
Wang Q, Song X, Wei C L, et al. Distribution, source identification and health risk assessment of PFASs in groundwater from Jiangxi Province, China[J]. Chemosphere, 2022, 291(Pt 2):132946
Chen S Q, Yan M, Chen Y, et al. Perfluoroalkyl substances in the surface water and fishes in Chaohu Lake, China[J]. Environmental Science and Pollution Research International, 2022, 29(50):75907-75920
Ren J, Yu M J, Chen F, et al. Occurrence, spatial heterogeneity, and risk assessment of perfluoroalkyl acids (PFAAs) in the major rivers of the Tibetan Plateau[J]. The Science of the Total Environment, 2023, 856(Pt 1):159026
Meng Y, Yao Y M, Chen H, et al. Legacy and emerging per- and polyfluoroalkyl substances (PFASs) in Dagang Oilfield:Multimedia distribution and contributions of unknown precursors[J]. Journal of Hazardous Materials, 2021, 412:125177
Zhang F S, Wang Y L, Wei Z, et al. Perfluorinated compounds in a river basin from QingHai-Tibet Plateau:Occurrence, sources and key factors[J]. Ecotoxicology and Environmental Safety, 2021, 228:113043
Tang J X, Zhu Y L, Xiang B, et al. Multiple pollutants in groundwater near an abandoned Chinese fluorine chemical park:Concentrations, correlations and health risk assessments[J]. Scientific Reports, 2022, 12:3370
Ali A M, Higgins C P, Alarif W M, et al. Per- and polyfluoroalkyl substances (PFASs) in contaminated coastal marine waters of the Saudi Arabian Red Sea:A baseline study[J]. Environmental Science and Pollution Research International, 2021, 28(3):2791-2803
Khan K, Younas M, Zhou Y Q, et al. First report of perfluoroalkyl acids (PFAAs) in the Indus Drainage System:Occurrence, source and environmental risk[J]. Environmental Research, 2022, 211:113113
Gao Y, Liang Y, Gao K, et al. Levels, spatial distribution and isomer profiles of perfluoroalkyl acids in soil, groundwater and tap water around a manufactory in China[J]. Chemosphere, 2019, 227:305-314
Bai X L, Son Y. Perfluoroalkyl substances (PFAS) in surface water and sediments from two urban watersheds in Nevada, USA[J]. The Science of the Total Environment, 2021, 751:141622
Selvaraj K K, Murugasamy M, Nikhil N P, et al. Investigation of distribution, sources and flux of perfluorinated compounds in major southern Indian Rivers and their risk assessment[J]. Chemosphere, 2021, 277:130228
Schmidt N, Fauvelle V, Castro-Jiménez J, et al. Occurrence of perfluoroalkyl substances in the Bay of Marseille (NW Mediterranean Sea) and the Rhône River[J]. Marine Pollution Bulletin, 2019, 149:110491
Gebbink W A, van Asseldonk L, van Leeuwen S P J. Presence of emerging per- and polyfluoroalkyl substances (PFASs) in river and drinking water near a fluorochemical production plant in the Netherlands[J]. Environmental Science & Technology, 2017, 51(19):11057-11065
Xu B T, Liu S, Zhou J L, et al. PFAS and their substitutes in groundwater:Occurrence, transformation and remediation[J]. Journal of Hazardous Materials, 2021, 412:125159
Liu Z Y, Xu C, Johnson A C, et al. Exploring the source, migration and environmental risk of perfluoroalkyl acids and novel alternatives in groundwater beneath fluorochemical industries along the Yangtze River, China[J]. Science of the Total Environment, 2022, 827:154413
Brandsma S H, Koekkoek J C, van Velzen M J M, et al. The PFOA substitute GenX detected in the environment near a fluoropolymer manufacturing plant in the Netherlands[J]. Chemosphere, 2019, 220:493-500
Gebbink W A, van Leeuwen S P J. Environmental contamination and human exposure to PFASs near a fluorochemical production plant:Review of historic and current PFOA and GenX contamination in the Netherlands[J]. Environment International, 2020, 137:105583
Pétré M A, Genereux D P, Koropeckyj-Cox L, et al. Per- and polyfluoroalkyl substance (PFAS) transport from groundwater to streams near a PFAS manufacturing facility in North Carolina, USA[J]. Environmental Science & Technology, 2021, 55(9):5848-5856
Pan Y T, Zhang H X, Cui Q Q, et al. Worldwide distribution of novel perfluoroether carboxylic and sulfonic acids in surface water[J]. Environmental Science & Technology, 2018, 52(14):7621-7629
Zhou J, Li S J, Liang X X, et al. First report on the sources, vertical distribution and human health risks of legacy and novel per- and polyfluoroalkyl substances in groundwater from the Loess Plateau, China[J]. Journal of Hazardous Materials, 2021, 404(Pt A):124134
Zhou J, Li Z, Guo X T, et al. Evidences for replacing legacy per- and polyfluoroalkyl substances with emerging ones in Fen and Wei River Basins in Central and Western China[J]. Journal of Hazardous Materials, 2019, 377:78-87
Feng X M, Ye M Q, Li Y, et al. Potential sources and sediment-pore water partitioning behaviors of emerging per/polyfluoroalkyl substances in the South Yellow Sea[J]. Journal of Hazardous Materials, 2020, 389:122124
Zhao Z, Cheng X H, Hua X, et al. Emerging and legacy per- and polyfluoroalkyl substances in water, sediment, and air of the Bohai Sea and its surrounding rivers[J]. Environmental Pollution, 2020, 263:114391
Du D, Lu Y L, Zhou Y Q, et al. Perfluoroalkyl acids (PFAAs) in water along the entire coastal line of China:Spatial distribution, mass loadings, and worldwide comparisons[J]. Environment International, 2022, 169:107506
Li X T, Wang Y, Qian C J, et al. Perfluoroalkyl acids (PFAAs) in urban surface water of Shijiazhuang, China:Occurrence, distribution, sources and ecological risks[J]. Journal of Environmental Sciences (China), 2023, 125:185-193
Tang A P, Zhang X H, Li R F, et al. Spatiotemporal distribution, partitioning behavior and flux of per- and polyfluoroalkyl substances in surface water and sediment from Poyang Lake, China[J]. Chemosphere, 2022, 295:133855
Chen H T, Reinhard M, Nguyen T V, et al. Characterization of occurrence, sources and sinks of perfluoroalkyl and polyfluoroalkyl substances (PFASs) in a tropical urban catchment[J]. Environmental Pollution, 2017, 227:397-405
Gao L J, Liu J L, Bao K, et al. Multicompartment occurrence and partitioning of alternative and legacy per- and polyfluoroalkyl substances in an impacted river in China[J]. The Science of the Total Environment, 2020, 729:138753
Wu J, Junaid M, Wang Z F, et al. Spatiotemporal distribution, sources and ecological risks of perfluorinated compounds (PFCs) in the Guanlan River from the rapidly urbanizing areas of Shenzhen, China[J]. Chemosphere, 2020, 245:125637
Tang J X, Zhu Y L, Li Y, et al. Occurrence characteristics and health risk assessment of per- and polyfluoroalkyl substances from water in residential areas around fluorine chemical industrial areas, China[J]. Environmental Science and Pollution Research International, 2022, 29(40):60733-60743
Guo R, Liu X L, Liu J, et al. Occurrence, partition and environmental risk assessment of per- and polyfluoroalkyl substances in water and sediment from the Baiyangdian Lake, China[J]. Scientific Reports, 2020, 10(1):4691
Pan X, Ye J, Zhang H, et al. Occurrence, removal and bioaccumulation of perfluoroalkyl substances in Lake Chaohu, China[J]. International Journal of Environmental Research and Public Health, 2019, 16(10):1692
Wang T, Vestergren R,Herzke D, et al. Levels, isomer profiles, and estimated riverine mass discharges of perfluoroalkyl acids and fluorinated alternatives at the mouths of Chinese Rivers[J]. Environmental Science & Technology, 2016, 50(21):11584-11592
Wei C L, Wang Q, Song X, et al. Distribution, source identification and health risk assessment of PFASs and two PFOS alternatives in groundwater from non-industrial areas[J]. Ecotoxicology and Environmental Safety, 2018, 152:141-150
Wang S Q, Ding G H, Liu Y H, et al. Legacy and emerging persistent organic pollutants in the marginal seas of China:Occurrence and phase partitioning[J]. Science of the Total Environment, 2022, 827:154274
Munoz G, Fechner L C, Geneste E, et al. Spatio-temporal dynamics of per and polyfluoroalkyl substances (PFASs) and transfer to periphytic biofilm in an urban river:Case-study on the River Seine[J]. Environmental Science and Pollution Research, 2018, 25(24):23574-23582
Marchiandi J, Szabo D, Dagnino S, et al. Occurrence and fate of legacy and novel per- and polyfluoroalkyl substances (PFASs) in freshwater after an industrial fire of unknown chemical stockpiles[J]. Environmental Pollution, 2021, 278:116839
Xu L, Shi Y L, Li C X, et al. Discovery of a novel polyfluoroalkyl benzenesulfonic acid around oilfields in Northern China[J]. Environmental Science & Technology, 2017, 51(24):14173-14181
Hou M M, Jin Q, Na G S, et al. Emissions, isomer-specific environmental behavior, and transformation of OBS from one major fluorochemical manufacturing facility in China[J]. Environmental Science & Technology, 2022, 56(12):8103-8113
Vongphachan V, Cassone C G, Wu D M, et al. Effects of perfluoroalkyl compounds on mRNA expression levels of thyroid hormone-responsive genes in primary cultures of avian neuronal cells[J]. Toxicological Sciences:An Official Journal of the Society of Toxicology, 2011, 120(2):392-402
Arinaitwe K, Koch A, Taabu-Munyaho A, et al. Spatial profiles of perfluoroalkyl substances and mercury in fish from northern Lake Victoria, East Africa[J]. Chemosphere, 2020, 260:127536
Penland T N, Cope W G, Kwak T J, et al. Trophodynamics of per- and polyfluoroalkyl substances in the food web of a large Atlantic slope river[J]. Environmental Science & Technology, 2020, 54(11):6800-6811
Diao J Y, Chen Z W, Wang T Y, et al. Perfluoroalkyl substances in marine food webs from South China Sea:Trophic transfer and human exposure implication[J]. Journal of Hazardous Materials, 2022, 431:128602
Abafe O A, Macheka L R, Abafe O T, et al. Concentrations and human exposure assessment of per and polyfluoroalkyl substances in farmed marine shellfish in South Africa[J]. Chemosphere, 2021, 281:130985
Vogs C, Johanson G, Näslund M, et al. Toxicokinetics of perfluorinated alkyl acids influences their toxic potency in the zebrafish embryo (Danio rerio)[J]. Environmental Science & Technology, 2019, 53(7):3898-3907
Zhang B, He Y, Yang G, et al. Legacy and emerging poly- and perfluoroalkyl substances in finless porpoises from East China Sea:Temporal trends and tissue-specific accumulation[J]. Environmental Science & Technology, 2022, 56(10):6113-6122
Meng J, Liu S F, Zhou Y Q, et al. Are perfluoroalkyl substances in water and fish from drinking water source the major pathways towards human health risk?[J]. Ecotoxicology and Environmental Safety, 2019, 181:194-201
Chiesa L M, Nobile M, Pasquale E, et al. Detection of perfluoroalkyl acids and sulphonates in Italian eel samples by HPLC-HRMS Orbitrap[J]. Chemosphere, 2018, 193:358-364
Zhang A Q, Wang P, Lu Y L, et al. Occurrence and health risk of perfluoroalkyl acids (PFAAs) in seafood from Yellow Sea, China[J]. The Science of the Total Environment, 2019, 665:1026-1034
Wu J Y, Liu W X, He W, et al. Comparisons of tissue distributions and health risks of perfluoroalkyl acids (PFAAs) in two fish species with different trophic levels from Lake Chaohu, China[J]. Ecotoxicology and Environmental Safety, 2019, 185:109666
Wang Q, Ruan Y F, Jin L J, et al. Oysters for legacy and emerging per- and polyfluoroalkyl substances (PFASs) monitoring in estuarine and coastal waters:Phase distribution and bioconcentration profile[J]. The Science of the Total Environment, 2022, 846:157453
Xu L J, Chen H, Han X, et al. First report on per- and polyfluoroalkyl substances (PFASs) in coral communities from the Northern South China Sea:Occurrence, seasonal variation, and interspecies differences[J]. Environmental Pollution, 2022, 314:120214
Shi Y L, Vestergren R, Zhou Z, et al. Tissue distribution and whole body burden of the chlorinated polyfluoroalkyl ether sulfonic acid F-53B in crucian carp (Carassius carassius):Evidence for a highly bioaccumulative contaminant of emerging concern[J]. Environmental Science & Technology, 2015, 49(24):14156-14165
Wu Y M, Deng M, Jin Y X, et al. Uptake and elimination of emerging polyfluoroalkyl substance F-53B in zebrafish larvae:Response of oxidative stress biomarkers[J]. Chemosphere, 2019, 215:182-188
Spaan K M, van Noordenburg C, Plassmann M M, et al. Fluorine mass balance and suspect screening in marine mammals from the Northern Hemisphere[J]. Environmental Science & Technology, 2020, 54(7):4046-4058
He Y X, Lv D, Li C H, et al. Human exposure to F-53B in China and the evaluation of its potential toxicity:An overview[J]. Environment International, 2022, 161:107108
Gebbink W A, Bossi R, Rigét F F, et al. Observation of emerging per- and polyfluoroalkyl substances (PFASs) in Greenland marine mammals[J]. Chemosphere, 2016, 144:2384-2391
Munoz G, Desrosiers M, Duy S V, et al. Environmental occurrence of perfluoroalkyl acids and novel fluorotelomer surfactants in the freshwater fish Catostomus commersonii and sediments following firefighting foam deployment at the lac-mégantic railway accident[J]. Environmental Science & Technology, 2017, 51(3):1231-1240
Kaboré H A, Goeury K, Desrosiers M, et al. Novel and legacy per- and polyfluoroalkyl substances (PFAS) in freshwater sporting fish from background and firefighting foam impacted ecosystems in Eastern Canada[J]. The Science of the Total Environment, 2022, 816:151563
Shi Y L, Song X W, Jin Q, et al. Tissue distribution and bioaccumulation of a novel polyfluoroalkyl benzenesulfonate in crucian carp[J]. Environment International, 2020, 135:105418
Godfrey A, Abdel-moneim A, Sepúlveda M S. Acute mixture toxicity of halogenated chemicals and their next generation counterparts on zebrafish embryos[J]. Chemosphere, 2017, 181:710-712
Barmentlo S H, Stel J M, van Doorn M, et al. Acute and chronic toxicity of short chained perfluoroalkyl substances to Daphnia magna[J]. Environmental Pollution, 2015, 198:47-53
Kim M, Park M S, Son J, et al. Perfluoroheptanoic acid affects amphibian embryogenesis by inducing the phosphorylation of ERK and JNK[J]. International Journal of Molecular Medicine, 2015, 36(6):1693-1700
Shi G H, Cui Q Q, Pan Y T, et al. 6:2 fluorotelomer carboxylic acid (6:2 FTCA) exposure induces developmental toxicity and inhibits the formation of erythrocytes during zebrafish embryogenesis[J]. Aquatic Toxicology, 2017, 190:53-61
Tornabene B J, Chislock M F, Gannon M E, et al. Relative acute toxicity of three per- and polyfluoroalkyl substances on nine species of larval amphibians[J]. Integrated Environmental Assessment and Management, 2021, 17(4):684-690
Wang S W, Huang J, Yang Y, et al. First report of a Chinese PFOS alternative overlooked for 30 years:Its toxicity, persistence, and presence in the environment[J]. Environmental Science & Technology, 2013, 47(18):10163-10170
Horie Y, Nomura M, Okamoto K, et al. Effect of thyroid hormone-disrupting chemicals on swim bladder inflation and thyroid hormone-related gene expression in Japanese medaka and zebrafish[J]. Journal of Applied Toxicology, 2022, 42(8):1385-1395
Godfrey A, Hooser B, Abdelmoneim A, et al. Thyroid disrupting effects of halogenated and next generation chemicals on the swim bladder development of zebrafish[J]. Aquatic Toxicology, 2017, 193:228-235
Annunziato K M, Jantzen C E, Gronske M C, et al. Subtle morphometric, behavioral and gene expression effects in larval zebrafish exposed to PFHxA, PFHxS and 6:2 FTOH[J]. Aquatic Toxicology, 2019, 208:126-137
Guo X C, Zhang S N, Liu X H, et al. Evaluation of the acute toxicity and neurodevelopmental inhibition of perfluorohexanoic acid (PFHxA) in zebrafish embryos[J]. Ecotoxicology and Environmental Safety, 2021, 225:112733
Zhang S N, Guo X C, Lu S Y, et al. Perfluorohexanoic acid caused disruption of the hypothalamus-pituitary-thyroid axis in zebrafish larvae[J]. Ecotoxicology and Environmental Safety, 2022, 232:113283
Blanc M, Kärrman A, Kukucka P, et al. Mixture-specific gene expression in zebrafish (Danio rerio) embryos exposed to perfluorooctane sulfonic acid (PFOS), perfluorohexanoic acid (PFHxA) and 3,3',4,4',5-pentachlorobiphenyl (PCB126)[J]. The Science of the Total Environment, 2017, 590-591:249-257
Tang L Z, Liu M Y, Song S W, et al. Interaction between hypoxia and perfluorobutane sulfonate on developmental toxicity and endocrine disruption in marine medaka embryos[J]. Aquatic Toxicology, 2020, 222:105466
Sant K E, Venezia O L, Sinno P P, et al. Perfluorobutanesulfonic acid disrupts pancreatic organogenesis and regulation of lipid metabolism in the zebrafish, Danio rerio[J]. Toxicological Sciences:An Official Journal of the Society of Toxicology, 2019, 167(1):258-268
Sun B L, Liu M Y, Tang L Z, et al. Probiotic supplementation mitigates the developmental toxicity of perfluorobutanesulfonate in zebrafish larvae[J]. The Science of the Total Environment, 2021, 799:149458
Sun B L, Liu M Y, Tang L Z, et al. Probiotics inhibit the stunted growth defect of perfluorobutanesulfonate via stress and thyroid axes in zebrafish larvae[J]. Environmental Pollution, 2021, 290:118013
Flynn R W, Hoover G, Iacchetta M, et al. Comparative toxicity of aquatic per- and polyfluoroalkyl substance exposure in three species of amphibians[J]. Environmental Toxicology and Chemistry, 2022, 41(6):1407-1415
Deng M, Wu Y M, Xu C, et al. Multiple approaches to assess the effects of F-53B, a Chinese PFOS alternative, on thyroid endocrine disruption at environmentally relevant concentrations[J]. The Science of the Total Environment, 2018, 624:215-224
Shi G H, Cui Q Q, Pan Y T, et al. 6:2 chlorinated polyfluorinated ether sulfonate, a PFOS alternative, induces embryotoxicity and disrupts cardiac development in zebrafish embryos[J]. Aquatic Toxicology, 2017, 185:67-75
Liu S, Lai H, Wang Q Y, et al. Immunotoxicity of F53B, an alternative to PFOS, on zebrafish (Danio rerio) at different early life stages[J]. Science of the Total Environment, 2021, 790:148165
Huang J, Sun L W, Mennigen J A, et al. Developmental toxicity of the novel PFOS alternative OBS in developing zebrafish:An emphasis on cilia disruption[J]. Journal of Hazardous Materials, 2021, 409:124491
Ishibashi H, Kim E Y, Iwata H. Transactivation potencies of the Baikal seal (Pusa sibirica) peroxisome proliferator-activated receptor α by perfluoroalkyl carboxylates and sulfonates:Estimation of PFOA induction equivalency factors[J]. Environmental Science & Technology, 2011, 45(7):3123-3130
Søderstrøm S, Lille-Langøy R, Yadetie F, et al. Agonistic and potentiating effects of perfluoroalkyl substances (PFAS) on the Atlantic cod (Gadus morhua) peroxisome proliferator-activated receptors (PPARs)[J]. Environment International, 2022, 163:107203
Wu Y M, Deng M, Jin Y X, et al. Toxicokinetics and toxic effects of a Chinese PFOS alternative F-53B in adult zebrafish[J]. Ecotoxicology and Environmental Safety, 2019, 171:460-466
Dasgupta S, Choyke S, Ferguson P L, et al. Antioxidant responses and oxidative stress in sheepshead minnow larvae exposed to Corexit 9500® or its component surfactant, DOSS[J]. Aquatic Toxicology, 2018, 194:10-17
Liu X L, Li Y Y, Zheng X W, et al. Anti-oxidant mechanisms of Chlorella pyrenoidosa under acute GenX exposure[J]. The Science of the Total Environment, 2021, 797:149005
Hoseinifar S H, Shakouri M, Yousefi S, et al. Humoral and skin mucosal immune parameters, intestinal immune related genes expression and antioxidant defense in rainbow trout (Oncorhynchus mykiss) fed olive (Olea europea L.) waste[J]. Fish & Shellfish Immunology, 2020, 100:171-178
Hu C Y, Huang Z L, Liu M Y, et al. Shift in skin microbiota and immune functions of zebrafish after combined exposure to perfluorobutanesulfonate and probiotic Lactobacillus rhamnosus[J]. Ecotoxicology and Environmental Safety, 2021, 218:112310
Xu M M, Legradi J, Leonards P. Using comprehensive lipid profiling to study effects of PFHxS during different stages of early zebrafish development[J]. The Science of the Total Environment, 2022, 808:151739
Wu Y M, Huang J, Deng M, et al. Acute exposure to environmentally relevant concentrations of Chinese PFOS alternative F-53B induces oxidative stress in early developing zebrafish[J]. Chemosphere, 2019, 235:945-951
Yang H L, Lai H, Huang J, et al. Polystyrene microplastics decrease F-53B bioaccumulation but induce inflammatory stress in larval zebrafish[J]. Chemosphere, 2020, 255:127040
Zhang W L, Liang Y N. Interactions between Lemna minor (common duckweed) and PFAS intermediates:Perfluorooctane sulfonamide (PFOSA) and 6:2 fluorotelomer sulfonate (6:2 FTSA)[J]. Chemosphere, 2021, 276:130165
Huang J, Wang Q Y, Liu S, et al. Crosstalk between histological alterations, oxidative stress and immune aberrations of the emerging PFOS alternative OBS in developing zebrafish[J]. Science of the Total Environment, 2021, 774:145443
Zou Y L, Wu Y M, Wang Q Y, et al. Comparison of toxicokinetics and toxic effects of PFOS and its novel alternative OBS in zebrafish larvae[J]. Chemosphere, 2021, 265:129116
Park S, Moon N R, Kang S N, et al. Ferulic acid and vinpocetine intake improves memory function by enhancing insulin sensitivity and reducing neuroinflammation and oxidative stress in type 2 diabetic animals with induced Alzheimer's disease[J]. Journal of Functional Foods, 2022, 95:105180
Huang J, Wang Q Y, Liu S, et al. Comparative chronic toxicities of PFOS and its novel alternatives on the immune system associated with intestinal microbiota dysbiosis in adult zebrafish[J]. Journal of Hazardous Materials, 2022, 425:127950
Bonato M, Corrà F, Bellio M, et al. PFAS environmental pollution and antioxidant responses:An overview of the impact on human field[J]. International Journal of Environmental Research and Public Health, 2020, 17(21):8020
Shi Y L, Wang J M, Pan Y Y, et al. Tissue distribution of perfluorinated compounds in farmed freshwater fish and human exposure by consumption[J]. Environmental Toxicology and Chemistry, 2012, 31(4):717-723
Wasel O, Thompson K M, Freeman J L. Assessment of unique behavioral, morphological, and molecular alterations in the comparative developmental toxicity profiles of PFOA, PFHxA, and PFBA using the zebrafish model system[J]. Environment International, 2022, 170:107642
Rericha Y, Truong L, Leong C, et al. Dietary perfluorohexanoic acid (PFHxA) exposures in juvenile zebrafish produce subtle behavioral effects across generations[J]. Toxics, 2022, 10(7):372
Gaballah S, Swank A, Sobus J R, et al. Evaluation of developmental toxicity, developmental neurotoxicity, and tissue dose in zebrafish exposed to GenX and other PFAS[J]. Environmental Health Perspectives, 2020, 128(4):47005
Chen L G, Tsui M M P, Shi Q P, et al. Accumulation of perfluorobutane sulfonate (PFBS) and impairment of visual function in the eyes of marine medaka after a life-cycle exposure[J]. Aquatic Toxicology, 2018, 201:1-10
Tang L Z, Liu M Y, Hu C Y, et al. Binary exposure to hypoxia and perfluorobutane sulfonate disturbs sensory perception and chromatin topography in marine medaka embryos[J]. Environmental Pollution, 2020, 266(Pt 3):115284
Liu M Y, Song S W, Hu C Y, et al. Dietary administration of probiotic Lactobacillus rhamnosus modulates the neurological toxicities of perfluorobutane sulfonate in zebrafish[J]. Environmental Pollution, 2020, 265(Pt B):114832
Slotkin T A, MacKillop E A, Melnick R L, et al. Developmental neurotoxicity of perfluorinated chemicals modeled in vitro[J]. Environmental Health Perspectives, 2008, 116(6):716-722
Hu C Y, Tang L Z, Liu M Y, et al. Probiotic modulation of perfluorobutane sulfonate toxicity in zebrafish:Disturbances in retinoid metabolism and visual physiology[J]. Chemosphere, 2020, 258:127409
Wu L Y, Zeeshan M, Dang Y, et al. Environmentally relevant concentrations of F-53B induce eye development disorders-mediated locomotor behavior in zebrafish larvae[J]. Chemosphere, 2022, 308(Pt 1):136130
Menger F, Pohl J, Ahrens L, et al. Behavioural effects and bioconcentration of per-and polyfluoroalkyl substances (PFASs) in zebrafish (Danio rerio) embryos[J]. Chemosphere, 2020, 245:125573
Lou Q Q, Zhang Y F, Zhou Z, et al. Effects of perfluorooctane sulfonate and perfluorobutane sulfonate on the growth and sexual development of Xenopus laevis[J]. Ecotoxicology, 2013, 22(7):1133-1144
Chen L G, Lam J C W, Hu C Y, et al. Perfluorobutane sulfonate exposure skews sex ratio in fish and transgenerationally impairs reproduction[J]. Environmental Science & Technology, 2019, 53(14):8389-8397
Chen L G, Hu C Y, Tsui M M P, et al. Multigenerational disruption of the thyroid endocrine system in marine medaka after a life-cycle exposure to perfluorobutane sulfonate[J]. Environmental Science & Technology, 2018, 52(7):4432-4439
Chen L G, Tsui M M P, Hu C Y, et al. Parental exposure to perfluorobutane sulfonate impairs offspring development through inheritance of paternal methylome[J]. Environmental Science & Technology, 2019, 53(20):12018-12025
Hu C Y, Liu M Y, Tang L Z, et al. Probiotic Lactobacillus rhamnosus modulates the impacts of perfluorobutane sulfonate on oocyte developmental rhythm of zebrafish[J]. The Science of the Total Environment, 2021, 776:145975
Tang L Z, Song S W, Hu C Y, et al. Parental exposure to perfluorobutane sulfonate disturbs the transfer of maternal transcripts and offspring embryonic development in zebrafish[J]. Chemosphere, 2020, 256:127169
Shi G H, Guo H, Sheng N, et al. Two-generational reproductive toxicity assessment of 6:2 chlorinated polyfluorinated ether sulfonate (F-53B, a novel alternative to perfluorooctane sulfonate) in zebrafish[J]. Environmental Pollution, 2018, 243(Pt B):1517-1527
Shi G H, Cui Q Q, Wang J X, et al. Chronic exposure to 6:2 chlorinated polyfluorinated ether sulfonate acid (F-53B) induced hepatotoxic effects in adult zebrafish and disrupted the PPAR signaling pathway in their offspring[J]. Environmental Pollution, 2019, 249:550-559
Shi G H, Wang J X, Guo H, et al. Parental exposure to 6:2 chlorinated polyfluorinated ether sulfonate (F-53B) induced transgenerational thyroid hormone disruption in zebrafish[J]. The Science of the Total Environment, 2019, 665:855-863
Mahapatra C T, Damayanti N P, Guffey S C, et al. Comparative in vitro toxicity assessment of perfluorinated carboxylic acids[J]. Journal of Applied Toxicology, 2017, 37(6):699-708
Liu M Y, Tang L Z, Hu C Y, et al. Antagonistic interaction between perfluorobutane sulfonate and probiotic on lipid and glucose metabolisms in the liver of zebrafish[J]. Aquatic Toxicology, 2021, 237:105897
Cao H M, Zhou Z, Wang L, et al. Screening of potential PFOS alternatives to decrease liver bioaccumulation:Experimental and computational approaches[J]. Environmental Science & Technology, 2019, 53(5):2811-2819
Wang Q Y, Huang J, Liu S, et al. Aberrant hepatic lipid metabolism associated with gut microbiota dysbiosis triggers hepatotoxicity of novel PFOS alternatives in adult zebrafish[J]. Environment International, 2022, 166:107351
Wang C Y, Zhao Y, Jin Y X. The emerging PFOS alternative OBS exposure induced gut microbiota dysbiosis and hepatic metabolism disorder in adult zebrafish[J]. Comparative Biochemistry and Physiology Part C:Toxicology & Pharmacology, 2020, 230:108703
Gong H J, Du J, Xu J, et al. Perfluorononanoate and perfluorobutane sulfonate induce cardiotoxic effects in zebrafish[J]. Environmental Toxicology and Chemistry, 2022, 41(10):2527-2536
Li Y Y, Liu X L, Zheng X W, et al. Toxic effects and mechanisms of PFOA and its substitute GenX on the photosynthesis of Chlorella pyrenoidosa[J]. The Science of the Total Environment, 2021, 765:144431
Labine L M, Oliveira Pereira E A,Kleywegt S, et al. Comparison of sub-lethal metabolic perturbations of select legacy and novel perfluorinated alkyl substances (PFAS) in Daphnia magna[J]. Environmental Research, 2022, 212(Pt D):113582
Liu W, Yang J, Li J W, et al. Toxicokinetics and persistent thyroid hormone disrupting effects of chronic developmental exposure to chlorinated polyfluorinated ether sulfonate in Chinese rare minnow[J]. Environmental Pollution, 2020, 263(Pt B):114491