| [1] |
Ahrens L. 2011. Polyfluoroalkyl compounds in the aquatic environment: a review of their occurrence and fate. |
| [2] |
Glüge J, Scheringer M, Cousins IT, DeWitt JC, Goldenman G, et al. 2020. An overview of the uses of per- and polyfluoroalkyl substances (PFAS). |
| [3] |
Lohmann R, Abass K, Bonefeld-Jørgensen EC, Bossi R, Dietz R, et al. 2024. Cross-cutting studies of per- and polyfluorinated alkyl substances (PFAS) in Arctic wildlife and humans. |
| [4] |
Xie Z, Kallenborn R. 2023. Legacy and emerging per- and poly-fluoroalkyl substances in polar regions. |
| [5] |
Jian JM, Chen D, Han FJ, Guo Y, Zeng L, et al. 2018. A short review on human exposure to and tissue distribution of per- and polyfluoroalkyl substances (PFASs). |
| [6] |
Klingelhöfer D, Braun M, Groneberg DA, Brüggmann D. 2024. The "forever" per- and polyfluoroalkyl substances (PFAS): a critical accounting of global research on a major threat under changing regulations. |
| [7] |
Cheng Y, An Q, Qi H, Li R, Liu W, et al. 2023. Temporal trends of legacy and emerging PFASs from 2011 to 2021 in agricultural soils of Eastern China: impacts of the Stockholm convention. |
| [8] |
Yuan S, Wang X, Jiang Z, Zhang H, Yuan S. 2023. Contribution of air-water interface in removing PFAS from drinking water: adsorption, stability, interaction and machine learning studies. |
| [9] |
Kim SK, Kannan K. 2007. Perfluorinated acids in air, rain, snow, surface runoff, and lakes: relative importance of pathways to contamination of urban lakes. |
| [10] |
Trobisch KM, Reeves DM, Cassidy DP. 2024. Environmental fate and transport of PFAS in wastewater treatment plant effluent discharged to rapid infiltration basins. |
| [11] |
Wang J, Fang D, Magnuson JT, Xu B, Zheng C, et al. 2025. Perfluorodecanoic acid (PFDA) disrupts immune regulation via the Toll-like receptor signaling pathway in zebrafish. |
| [12] |
Cui QW, Wang YQ, Ni JY, Liu ZQ, Li YF. 2025. Per- and polyfluoroalkyl substances (PFASs) inhibit larval metamorphosis by impairing larval muscle degeneration in the mussel Mytilus coruscus. |
| [13] |
Cao X, Li Y, Liu X, Li K, Hong S, et al. 2025. Neurodevelopmental effects of exposure to environmentally relevant concentrations of perfluorooctane sulfonic acid (PFOS), perfluorobutanesulfonic acid (PFBS) and 6:2 chlorinated polyfluorinated ether sulfonate (6:2 Cl-PFESA) on larval zebrafish: multi-omics and neuropathology perspective. |
| [14] |
Liao H, He YJ, Zhang S, Kang X, Yang X, et al. 2024. Perfluorohexanesulfonic acid (PFHxS) induces hepatotoxicity through the PPAR signaling pathway in larval zebrafish (Danio rerio). |
| [15] |
Lukić Bilela L, Matijošytė I, Krutkevičius J, Alexandrino DAM, Safarik I, et al. 2023. Impact of per- and polyfluorinated alkyl substances (PFAS) on the marine environment: raising awareness, challenges, legislation, and mitigation approaches under the One Health concept. |
| [16] |
Burkhard LP. 2021. Evaluation of published bioconcentration factor (BCF) and bioaccumulation factor (BAF) data for per- and polyfluoroalkyl substances across aquatic species. |
| [17] |
Zhang X, Li L, Xie Z, Ma J, Li YF, et al. 2024. Exploring global oceanic persistence and ecological effects of legacy persistent organic pollutants across five decades. |
| [18] |
Jamieson AJ, Malkocs T, Piertney SB, Fujii T, Zhang Z. 2017. Bioaccumulation of persistent organic pollutants in the deepest ocean fauna. |
| [19] |
Gardiner CL, Petali JM, Chen CY, Giffard NG, Fernando S, et al. 2025. Evaluating the environmental occurrence of per- and polyfluoroalkyl substances (PFAS) and potential exposure risk for recreational shellfish harvesters in the Great Bay Estuary, New Hampshire. |
| [20] |
Qiu W, Yang G, Cao L, Niu S, Li Y, et al. 2000. Risks of per- and polyfluoroalkyl substance exposure through marine fish consumption. |
| [21] |
Hong Y, Li J, Qiu Y, Wang Y, Du Z, et al. 2025. Integrative in silico analysis of per- and polyfluorinated alkyl substances (PFAS)-associated molecular alterations in human cancers: a multi-cancer framework for predicting toxicogenomic disruption. |
| [22] |
Du X, Xu X, Liang X, Wu Y, Du Z, et al. 2025. Integration of animal, population, and toxicogenomic evidence on the hematotoxic and immunosuppressive effects of environmental exposure to PFAS mixtures in adolescents. |
| [23] |
Sun CS, Hou R, Huang QY, Li ZH, Xu XR. 2024. Food web bioaccumulation model for ecological risk assessment of emerging organic pollutants in marine ecosystems: principles, advances and challenges. |
| [24] |
Li C, Xu Z, Luo K, Chen Z, Xu X, et al. 2021. Biomagnification and trophic transfer of total mercury and methylmercury in a sub-tropical montane forest food web, southwest China. |
| [25] |
Zhang Y, Lu Y, Wang P, Shi Y. 2018. Biomagnification of Hexabromocyclododecane (HBCD) in a coastal ecosystem near a large producer in China: human exposure implication through food web transfer. |
| [26] |
Brandsma SH, Leonards PEG, Leslie HA, de Boer J. 2015. Tracing organophosphorus and brominated flame retardants and plasticizers in an estuarine food web. |
| [27] |
Gobas FA, de Wolf W, Burkhard LP, Verbruggen E, Plotzke K. 2009. Revisiting bioaccumulation criteria for POPs and PBT assessments. |
| [28] |
Du D, Lu Y, Zhou Y, Li Q, Zhang M, et al. 2021. Bioaccumulation, trophic transfer and biomagnification of perfluoroalkyl acids (PFAAs) in the marine food web of the South China Sea. |
| [29] |
Borgå K, Kidd KA, Muir DC, Berglund O, Conder JM, et al. 2012. Trophic magnification factors: considerations of ecology, ecosystems, and study design. |
| [30] |
Tomy GT, Budakowski W, Halldorson T, Helm PA, Stern GA, et al. 2004. Fluorinated organic compounds in an Eastern arctic marine food web. |
| [31] |
Ohoro CR, Amaku JF, Conradie J, Olisah C, Akpomie KG, et al. 2024. Effect of physicochemical parameters on the occurrence of per- and polyfluoroalkyl substances (PFAS) in aquatic environment. |
| [32] |
Do ATN, Kim Y, Ha Y, Kwon JH. 2022. Estimating the bioaccumulation potential of hydrophobic ultraviolet stabilizers using experimental partitioning properties. |
| [33] |
Sun JM, Kelly BC, Gobas FAPC, Sunderland EM. 2022. A food web bioaccumulation model for the accumulation of per- and polyfluoroalkyl substances (PFAS) in fish: how important is renal elimination? |
| [34] |
Ng CA, Hungerbühler K. 2014. Bioaccumulation of perfluorinated alkyl acids: observations and models. |
| [35] |
Zhao L, Teng M, Zhao X, Li Y, Sun J, et al. 2023. Insight into the binding model of per- and polyfluoroalkyl substances to proteins and membranes. |
| [36] |
Cheng W, Doering JA, LaLone C, Ng C. 2021. Integrative computational approaches to inform relative bioaccumulation potential of per- and polyfluoroalkyl substances across species. |
| [37] |
Bangma J, Guillette TC, Bommarito PA, Ng C, Reiner JL, et al. 2022. Understanding the dynamics of physiological changes, protein expression, and PFAS in wildlife. |
| [38] |
McKinney MA, McMeans BC, Tomy GT, Rosenberg B, Ferguson SH, et al. 2012. Trophic transfer of contaminants in a changing arctic marine food web: cumberland sound, Nunavut, Canada. |
| [39] |
Diao J, Chen Z, Wang T, Su C, Sun Q, et al. 2022. Perfluoroalkyl substances in marine food webs from South China Sea: trophic transfer and human exposure implication. |
| [40] |
Zhang D, Liu W, Xin Y, Liu X, Zhang Z, et al. 2024. Trophic transfer of PFAS potentially threatens vulnerable Saunders's gull (Larus saundersi) via the food chain in the coastal wetlands of the Yellow Sea, China. |
| [41] |
Hamid N, Junaid M, Sultan M, Yoganandham ST, Chuan OM. 2024. The untold story of PFAS alternatives: insights into the occurrence, ecotoxicological impacts, and removal strategies in the aquatic environment. |
| [42] |
Brunn H, Arnold G, Körner W, Rippen G, Steinhäuser KG, et al. 2023. PFAS: forever chemicals—persistent, bioaccumulative and mobile. Reviewing the status and the need for their phase out and remediation of contaminated sites |
| [43] |
Liu H, Fujibayashi M, Kuba T. 2025. Impacts of per- and polyfluoroalkyl substances on benthic animals in aquatic ecosystems under various land use types: a review. |
| [44] |
Glaser D, Lamoureux E, Opdyke D, LaRoe S, Reidy D, et al. 2021. The impact of precursors on aquatic exposure assessment for PFAS: insights from bioaccumulation modeling. |
| [45] |
Kelly BC, Sun JM, McDougall MRR, Sunderland EM, Gobas FAPC. 2024. Development and evaluation of aquatic and terrestrial food web bioaccumulation models for per- and polyfluoroalkyl substances. |
| [46] |
Wang L, Yang T, Liu X, Liu J, Liu W. 2024. Critical evaluation and meta-analysis of ecotoxicological data on per- and polyfluoroalkyl substances (PFAS) in freshwater species. |
| [47] |
Ankley GT, Bennett RS, Erickson RJ, Hoff DJ, Hornung MW, et al. 2010. Adverse outcome pathways: a conceptual framework to support ecotoxicology research and risk assessment. |
| [48] |
Kotalik CJ, Hubbard LE, Perrotta BG, Walters DM, Kolpin DW, et al. 2025. Bioaccumulation and transfer of per- and polyfluoroalkyl substances (PFAS) in a stream and riparian food web contaminated by food processing wastewater. |
| [49] |
Lewis AJ, Yun X, Spooner DE, Kurz MJ, McKenzie ER, et al. 2022. Exposure pathways and bioaccumulation of per- and polyfluoroalkyl substances in freshwater aquatic ecosystems: key considerations. |
| [50] |
Xu J, Guo CS, Zhang Y, Meng W. 2014. Bioaccumulation and trophic transfer of perfluorinated compounds in a eutrophic freshwater food web. |
| [51] |
Liang X, Yang X, Jiao W, Zhou J, Zhu L. 2022. Simulation modelling the structure related bioaccumulation and biomagnification of per- and polyfluoroalkyl substances in aquatic food web. |
| [52] |
Chen CT, Carlotti F, Harmelin-Vivien M, Guilloux L, Bănaru D. 2021. Temporal variation in prey selection by adult European sardine (Sardina pilchardus) in the NW Mediterranean Sea. |
| [53] |
Ahrens L, Bundschuh M. 2014. Fate and effects of poly- and perfluoroalkyl substances in the aquatic environment: a review. |
| [54] |
Feng WL, Wu JP, Li X, Nie YT, Xu YC, et al. 2022. Bioaccumulation and maternal transfer of two understudied DDT metabolites in wild fish species. |
| [55] |
Post DM. 2002. Using stable isotopes to estimate trophic position: models, methods, and assumptions. |
| [56] |
Peterson BJ, Fry B. 1987. Stable isotopes in ecosystem studies. |
| [57] |
Letourneur Y, Fey P, Dierking J, Galzin R, Parravicini V. 2024. Challenging trophic position assessments in complex ecosystems: calculation method, choice of baseline, trophic enrichment factors, season and feeding guild do matter: a case study from Marquesas Islands coral reefs. |
| [58] |
Wang Z, Li Y, Kong F, Li M, Xi M, et al. 2021. How do trophic magnification factors (TMFs) and biomagnification factors (BMFs) perform on toxic pollutant bioaccumulation estimation in coastal and marine food webs. |
| [59] |
Xie X, Lu Y, Lei H, Cheng J, An X, et al. 2024. Bioaccumulation and trophic transfer of per- and polyfluoroalkyl substances in a subtropical mangrove estuary food web. |
| [60] |
Anderson C, Cabana G. 2007. Estimating the trophic position of aquatic consumers in river food webs using stable nitrogen isotopes. |
| [61] |
Pan CG, Xiao SK, Yu KF, Wu Q, Wang YH. 2021. Legacy and alternative per- and polyfluoroalkyl substances in a subtropical marine food web from the Beibu Gulf, South China: fate, trophic transfer and health risk assessment. |
| [62] |
Fang S, Chen X, Zhao S, Zhang Y, Jiang W, et al. 2014. Trophic magnification and isomer fractionation of perfluoroalkyl substances in the food web of Taihu Lake, China. |
| [63] |
Chen Z, Zhan X, Zhang J, Diao J, Su C, et al. 2023. Bioaccumulation and risk mitigation of legacy and novel perfluoroalkyl substances in seafood: insights from trophic transfer and cooking method. |
| [64] |
Miranda DA, Benskin JP, Awad R, Lepoint G, Leonel J, et al. 2021. Bioaccumulation of per- and polyfluoroalkyl substances (PFASs) in a tropical estuarine food web. |
| [65] |
Gao K, Miao X, Fu J, Chen Y, Li H, et al. 2020. Occurrence and trophic transfer of per- and polyfluoroalkyl substances in an Antarctic ecosystem. |
| [66] |
Houde M, Bujas TAD, Small J, Wells RS, Fair PA, et al. 2006. Biomagnification of perfluoroalkyl compounds in the bottlenose dolphin (Tursiops truncatus) food web. |
| [67] |
Simmonet-Laprade C, Budzinski H, Babut M, Le Menach K, Munoz G, et al. 2019. Investigation of the spatial variability of poly- and perfluoroalkyl substance trophic magnification in selected riverine ecosystems. |
| [68] |
Kotthoff M, Müller J, Jürling H, Schlummer M, Fiedler D. 2015. Perfluoroalkyl and polyfluoroalkyl substances in consumer products. |
| [69] |
Liu W, He W, Wu J, Qin N, He Q, et al. 2018. Residues, bioaccumulations and biomagnification of perfluoroalkyl acids (PFAAs) in aquatic animals from Lake Chaohu, China. |
| [70] |
Starnes HM, Jackson TW, Rock KD, Belcher SM. 2024. Quantitative cross-species comparison of serum albumin binding of per- and polyfluoroalkyl substances from five structural classes. |
| [71] |
Farrell MR, Buchwalter DB, Weed RA, Enders JR, Planchart A. 2025. Trophic transfer of per- and polyfluoroalkyl acids in a periphyton-mayfly-zebrafish food chain. |
| [72] |
Kelly BC, Ikonomou MG, Blair JD, Surridge B, Hoover D, et al. 2009. Perfluoroalkyl contaminants in an arctic marine food web: trophic magnification and wildlife exposure. |
| [73] |
Li Y, Ren J, Li Y, Dong F, He Q, et al. 2025. Trophodynamic mechanisms of per- and polyfluoroalkyl substances in oligotrophic ecosystem from the Tibetan Plateau river. |
| [74] |
Penland TN, Cope WG, Kwak TJ, Strynar MJ, Grieshaber CA, et al. 2020. Trophodynamics of per- and polyfluoroalkyl substances in the food web of a large Atlantic slope river. |
| [75] |
Wang Q, Ruan Y, Jin L, Tao LSR, Lai H, et al. 2023. Legacy and emerging per- and polyfluoroalkyl substances in a subtropical marine food web: suspect screening, isomer profile, and identification of analytical interference. |
| [76] |
Houde M, Czub G, Small JM, Backus S, Wang X, et al. 2008. Fractionation and bioaccumulation of perfluorooctane sulfonate (PFOS) isomers in a lake ontario food web. |
| [77] |
Simonnet-Laprade C, Budzinski H, Maciejewski K, Le Menach K, Santos R, et al. 2019. Biomagnification of perfluoroalkyl acids (PFAAs) in the food web of an urban river: assessment of the trophic transfer of targeted and unknown precursors and implications. |
| [78] |
Munoz G, Budzinski H, Babut M, Drouineau H, Lauzent M, et al. 2017. Evidence for the trophic transfer of perfluoroalkylated substances in a temperate macrotidal estuary. |
| [79] |
Maso L, Trande M, Liberi S, Moro G, Daems E, et al. 2021. Unveiling the binding mode of perfluorooctanoic acid to human serum albumin. |
| [80] |
Ren J, Point AD, Baygi SF, Fernando S, Hopke PK, et al. 2023. Bioaccumulation of perfluoroalkyl substances in the Lake Erie food web. |
| [81] |
Zhu W, Liu W, Jin H. 2024. Sediment-seawater partitioning, bioaccumulation, and biomagnification of perfluorobutane sulfonamide in marine environment. |
| [82] |
Wang Z, Cousins IT, Scheringer M, Buck RC, Hungerbühler K. 2014. Global emission inventories for C4–C14 perfluoroalkyl carboxylic acid (PFCA) homologues from 1951 to 2030, Part I: production and emissions from quantifiable sources. |
| [83] |
Ren J, Point A, Fakouri Baygi S, Fernando S, Hopke PK, et al. 2022. Bioaccumulation of perfluoroalkyl substances in a Lake Ontario food web. |
| [84] |
Tomy GT, Pleskach K, Ferguson SH, Hare J, Stern G, et al. 2009. Trophodynamics of some PFCs and BFRs in a Western Canadian Arctic Marine Food Web. |
| [85] |
Ren J, Point AD, Baygi SF, Fernando S, Hopke PK, et al. 2022. Bioaccumulation of polyfluoroalkyl substances in the Lake Huron aquatic food web. |
| [86] |
Liu Y, Ruan T, Lin Y, Liu A, Yu M, et al. 2017. Chlorinated polyfluoroalkyl ether sulfonic acids in marine organisms from Bohai Sea, China: occurrence, temporal variations, and trophic transfer behavior. |
| [87] |
Chen H, Han J, Cheng J, Sun R, Wang X, et al. 2018. Distribution, bioaccumulation and trophic transfer of chlorinated polyfluoroalkyl ether sulfonic acids in the marine food web of Bohai, China. |
| [88] |
Sheng N, Wang J, Guo Y, Wang J, Dai J. 2020. Interactions of perfluorooctanesulfonate and 6:2 chlorinated polyfluorinated ether sulfonate with human serum albumin: a comparative study. |
| [89] |
Wen W, Xiao L, Hu D, Zhang Z, Xiao Y, et al. 2023. Fractionation of perfluoroalkyl acids (PFAAs) along the aquatic food chain promoted by competitive effects between longer and shorter chain PFAAs. |
| [90] |
Shi Y, Vestergren R, Xu L, Zhou Z, Li C, et al. 2016. Human exposure and elimination kinetics of chlorinated polyfluoroalkyl ether sulfonic acids (Cl-PFESAs). |
| [91] |
Li Y, Yao J, Zhang J, Pan Y, Dai J, et al. 2022. First report on the bioaccumulation and trophic transfer of perfluoroalkyl ether carboxylic acids in estuarine food web. |
| [92] |
Li Y, Yao J, Pan Y, Dai J, Tang J. 2023. Trophic behaviors of PFOA and its alternatives perfluoroalkyl ether carboxylic acids (PFECAs) in a coastal food web. |
| [93] |
Liu M, Wang B, Yi S, Dou X, Zhang Y, et al. 2024. Novel insights into the mechanisms of bioaccumulation and tissue-specific distribution of hexafluoropropylene oxide homologues, novel PFOA alternatives, in zebrafish (Danio rerio). |
| [94] |
Cheng W, Ng CA. 2018. Predicting relative protein affinity of novel per- and polyfluoroalkyl substances (PFASs) by an efficient molecular dynamics approach. |
| [95] |
Munoz G, Mercier L, Duy SV, Liu J, Sauvé S, et al. 2022. Bioaccumulation and trophic magnification of emerging and legacy per- and polyfluoroalkyl substances (PFAS) in a St. Lawrence River food web. |
| [96] |
Wang Y, Vestergren R, Shi Y, Cao D, Xu L, et al. 2016. Identification, tissue distribution, and bioaccumulation potential of cyclic perfluorinated sulfonic acids isomers in an airport impacted ecosystem. |
| [97] |
Saha B, Ateia M, Fernando S, Rodríguez-Martínez RE, Iskander SM. 2025. PFAS in pelagic Sargassum: a growing concern for the Mexican Caribbean coastline. |
| [98] |
Martin JW, Whittle DM, Muir DCG, Mabury SA. 2004. Perfluoroalkyl contaminants in a food web from Lake Ontario. |
| [99] |
Zhou Z, Liang Y, Shi Y, Xu L, Cai Y. 2013. Occurrence and transport of perfluoroalkyl acids (PFAAs), including short-chain PFAAs in Tangxun Lake, China. |
| [100] |
Hong S, Khim JS, Wang T, Naile JE, Park J, et al. 2015. Bioaccumulation characteristics of perfluoroalkyl acids (PFAAs) in coastal organisms from the west coast of South Korea. |
| [101] |
Lu Y, Meng L, Ma D, Cao H, Liang Y, et al. 2021. The occurrence of PFAS in human placenta and their binding abilities to human serum albumin and organic anion transporter 4. |
| [102] |
Fu Q, Meyer C, Patrick M, Kosfeld V, Rüdel H, et al. 2022. Comprehensive screening of polar emerging organic contaminants including PFASs and evaluation of the trophic transfer behavior in a freshwater food web. |
| [103] |
Gui D, Zhang M, Zhang T, Zhang B, Lin W, et al. 2019. Bioaccumulation behavior and spatiotemporal trends of per- and polyfluoroalkyl substances in Indo-Pacific humpback dolphins from the Pearl River Estuary, China. |
| [104] |
Peng H, Zhang S, Sun J, Zhang Z, Giesy JP, et al. 2014. Isomer-specific accumulation of perfluorooctanesulfonate from (N-ethyl perfluorooctanesulfonamido)ethanol-based phosphate diester in Japanese Medaka (Oryzias latipes). |
| [105] |
Zeng HS, He C, Yang YY, Zeng XL, Xie JL, et al. 2024. Investigation on the bioaccumulation and tissue distribution of per- and polyfluoroalkyl substances in zebrafish by UPLC-MS/MS. |
| [106] |
Chen M, Wang Q, Shan G, Zhu L, Yang L, et al. 2018. Occurrence, partitioning and bioaccumulation of emerging and legacy per- and polyfluoroalkyl substances in Taihu Lake, China. |
| [107] |
Brandsma SH, Smithwick M, Solomon K, Small J, de Boer J, et al. 2011. Dietary exposure of rainbow trout to 8:2 and 10:2 fluorotelomer alcohols and perfluorooctanesulfonamide: uptake, transformation and elimination. |
| [108] |
Yeung LWY, Mabury SA. 2013. Bioconcentration of aqueous film-forming foam (AFFF) in juvenile rainbow trout (Oncorhyncus mykiss). |
| [109] |
Wen W, Xia X, Hu D, Zhou D, Wang H, et al. 2017. Long-chain perfluoroalkyl acids (PFAAs) affect the bioconcentration and tissue distribution of short-chain PFAAs in zebrafish (Danio rerio). |
| [110] |
Xie X, Lu Y, Wang P, Lei H, Liang Z. 2023. Per- and polyfluoroalkyl substances in marine organisms along the coast of China. |
| [111] |
Wang H, Hu D, Wen W, Lin X, Xia X. 2023. Warming affects bioconcentration and bioaccumulation of per- and polyfluoroalkyl substances by pelagic and benthic organisms in a water–sediment system. |
| [112] |
Vidal A, Lafay F, Daniele G, Vulliet E, Rochard E, et al. 2019. Does water temperature influence the distribution and elimination of perfluorinated substances in rainbow trout (Oncorhynchus mykiss)? |
| [113] |
Benskin JP, Muir DCG, Scott BF, Spencer C, De Silva AO, et al. 2012. Perfluoroalkyl acids in the atlantic and Canadian arctic oceans. |
| [114] |
Jeon J, Kannan K, Lim HK, Moon HB, Ra JS, et al. 2010. Bioaccumulation of perfluorochemicals in pacific oyster under different salinity gradients. |
| [115] |
Xia X, Dai Z, Rabearisoa AH, Zhao P, Jiang X. 2015. Comparing humic substance and protein compound effects on the bioaccumulation of perfluoroalkyl substances by Daphnia magna in water. |
| [116] |
Galvez F, Donini A, Playle RC, Smith DS, O'Donnell MJ, et al. 2008. A matter of potential concern: natural organic matter alters the electrical properties of fish gills. |
| [117] |
Al-Reasi HA, Wood CM, Smith DS. 2013. Characterization of freshwater natural dissolved organic matter (DOM): mechanistic explanations for protective effects against metal toxicity and direct effects on organisms. |
| [118] |
Xia C, Lim X, Yang H, Goodson BM, Liu J. 2022. Degradation of per- and polyfluoroalkyl substances (PFAS) in wastewater effluents by photocatalysis for water reuse. |
| [119] |
Kükrer S, Mutlu E. 2019. Assessment of surface water quality using water quality index and multivariate statistical analyses in Saraydüzü Dam Lake, Turkey. |
| [120] |
Robuck AR, Cantwell MG, McCord JP, Addison LM, Pfohl M, et al. 2020. Legacy and novel per- and polyfluoroalkyl substances in juvenile seabirds from the U. S. Atlantic coast |