Abbasi G, Saini A, Goosey E, et al. Product screening for sources of halogenated flame retardants in Canadian house and office dust[J]. Science of the Total Environment, 2016, 545/546: 299-307
|
Kefeni K K, Okonkwo J O, Olukunle O I, et al. Brominated flame retardants: Sources, distribution, exposure pathways, and toxicity[J]. Environmental Reviews, 2011, 19(1): 238-253
|
Stasinska A, Heyworth J, Reid A, et al. Polybrominated diphenyl ether (PBDE) concentrations in plasma of pregnant women from Western Australia[J]. Science of the Total Environment, 2014, 493: 554-561
|
Marklund A, Andersson B, Haglund P. Screening of organophosphorus compounds and their distribution in various indoor environments[J]. Chemosphere, 2003, 53(9): 1137-1146
|
Wei G L, Li D Q, Zhuo M N, et al. Organophosphorus flame retardants and plasticizers: Sources, occurrence, toxicity and human exposure[J]. Environmental Pollution, 2015, 196: 29-46
|
Gao F M, Zhang X H, Shen X M, et al. Exposure assessment of aryl-organophosphate esters based on specific urinary biomarkers and their associations with reproductive hormone homeostasis disruption in women of childbearing age[J]. Environment International, 2022, 169: 107503
|
Hu F X, Li W, Wang H K, et al. Environmentally relevant concentrations of tris (2-chloroethyl) phosphate (TCEP) induce hepatotoxicity in zebrafish (Danio rerio): A whole life-cycle assessment[J]. Fish Physiology and Biochemistry, 2023, 49(6): 1421-1433
|
Hu W X, Gao P, Wang L, et al. Endocrine disrupting toxicity of aryl organophosphate esters and mode of action[J]. Critical Reviews in Environmental Science and Technology, 2023, 53(1): 1-18
|
Kang H, Lee J, Lee J P, et al. Urinary metabolites of organophosphate esters (OPEs) are associated with chronic kidney disease in the general US population, NHANES 2013-2014[J]. Environment International, 2019, 131: 105034
|
M Al-Salem A, Saquib Q, Siddiqui M A, et al. Tris(2-chloroethyl) phosphate (TCEP) elicits hepatotoxicity by activating human cancer pathway genes in HepG2 cells[J]. Toxics, 2020, 8(4): 109
|
Saquib Q, Al-Salem A M, Siddiqui M A, et al. Cyto-genotoxic and transcriptomic alterations in human liver cells by tris (2-ethylhexyl) phosphate (TEHP): A putative hepatocarcinogen[J]. International Journal of Molecular Sciences, 2022, 23(7): 3998
|
van der Veen I, de Boer J. Phosphorus flame retardants: Properties, production, environmental occurrence, toxicity and analysis[J]. Chemosphere, 2012, 88(10): 1119-1153
|
World Health Organization. Flame retardants: Tris-(chloropropyl)phosphate and tris-(2-chloroethyl)phosphate[R]. Geneva: World Health Organization, 1998
|
Tran C M, Lee H, Lee B, et al. Effects of the chorion on the developmental toxicity of organophosphate esters in zebrafish embryos[J]. Journal of Hazardous Materials, 2021, 401: 123389
|
叶长春, 李颖, 陈子璐, 等. 饮食中有机磷酸酯暴露现状及其对消化系统影响的研究进展[J]. 中国普外基础与临床杂志, 2022, 29(5): 677-682
Ye C C, Li Y, Chen Z L, et al. Research progress on the exposure of organophosphate in diet and its influence on digestive system[J]. Chinese Journal of Bases and Clinics in General Surgery, 2022, 29(5): 677-682(in Chinese)
|
Zhang W, Giesy J P, Wang P L. Organophosphate esters in agro-foods: Occurrence, sources and emerging challenges[J]. Science of the Total Environment, 2022, 827: 154271
|
Zhao L M, Jian K, Su H J, et al. Organophosphate esters (OPEs) in Chinese foodstuffs: Dietary intake estimation via a market basket method, and suspect screening using high-resolution mass spectrometry[J]. Environment International, 2019, 128: 343-352
|
Yao S Y, Chen X L, Lyu B, et al. Comprehensive dietary exposure assessment of the Chinese population to organophosphate esters (OPEs): Results of the sixth China total diet study[J]. Chemosphere, 2024, 364: 143281
|
管娜, 朱斌, 赵申升, 等. 生理动力学模型及其在健康风险评估中的应用进展和展望[J]. 生态毒理学报, 2024, 19(4): 1-12
Guan N, Zhu B, Zhao S S, et al. The development and future prospective of physiologically based kinetic models and its applications in risk assessment[J]. Asian Journal of Ecotoxicology, 2024, 19(4): 1-12(in Chinese)
|
王小丹, 谢锐莉, 许宜平, 等. 替代动物实验中的体外-体内外推方法[J]. 生态毒理学报, 2024, 19(4): 13-26
Wang X D, Xie R L, Xu Y P, et al. In vitro to in vivo extrapolation: Facilitating alternatives to animal testing in chemical health risk assessment[J]. Asian Journal of Ecotoxicology, 2024, 19(4): 13-26(in Chinese)
|
Bessems J G, Loizou G, Krishnan K, et al. PBTK modelling platforms and parameter estimation tools to enable animal-free risk assessment[J]. Regulatory Toxicology and Pharmacology, 2014, 68(1): 119-139
|
Hartung T, FitzGerald R E, Jennings P, et al. Systems toxicology: Real world applications and opportunities[J]. Chemical Research in Toxicology, 2017, 30(4): 870-882
|
Thiel C, Smit I, Baier V, et al. Using quantitative systems pharmacology to evaluate the drug efficacy of COX-2 and 5-LOX inhibitors in therapeutic situations[J]. NPJ Systems Biology and Applications, 2018, 4: 28
|
European Union. European Union risk assessment report tris (2-chloroethyl)phosphate, TCEP[R]. Brussels: European Union, 2009
|
Environmental Protection Agency. Proposed designation of tris(2-chloroethyl) phosphate (CASRN 115-96-8) as a high-priority substance for risk evaluation[R]. Washington, DC: Environmental Protection Agency, 2019
|
Wang X L, Liu Q, Zhong W J, et al. Estimating renal and hepatic clearance rates of organophosphate esters in humans: Impacts of intrinsic metabolism and binding affinity with plasma proteins[J]. Environment International, 2020, 134: 105321
|
Jeong S H, Jang J H, Cho H Y, et al. Human risk assessment of 4-n-nonylphenol (4-n-NP) using physiologically based pharmacokinetic (PBPK) modeling: Analysis of gender exposure differences and application to exposure analysis related to large exposure variability in population[J]. Archives of Toxicology, 2022, 96(10): 2687-2715
|
Ding J Q, He W Y, Sha W X, et al. Physiologically based toxicokinetic modelling of tri(2-chloroethyl) phosphate (TCEP) in mice accounting for multiple exposure routes[J]. Ecotoxicology and Environmental Safety, 2024, 271: 115976
|
World Health Organization. Characterization and application of physiologically based pharmacokinetic models in risk assessment[R]. Geneva: World Health Organization, 2010
|
Tang B, Poma G, Bastiaensen M, et al. Bioconcentration and biotransformation of organophosphorus flame retardants (PFRs) in common carp (Cyprinus carpio)[J]. Environment International, 2019, 126: 512-522
|
Wang Y, Li W H, Martínez-Moral M P, et al. Metabolites of organophosphate esters in urine from the United States: Concentrations, temporal variability, and exposure assessment[J]. Environment International, 2019, 122: 213-221
|
Zhao J Y, Zhan Z X, Lu M J, et al. A systematic scoping review of epidemiological studies on the association between organophosphate flame retardants and neurotoxicity[J]. Ecotoxicology and Environmental Safety, 2022, 243: 113973
|
Liu M, Li A, Meng L L, et al. Exposure to novel brominated flame retardants and organophosphate esters and associations with thyroid cancer risk: A case-control study in Eastern China[J]. Environmental Science & Technology, 2022, 56(24): 17825-17835
|
Kanda K, Ito S, Koh D H, et al. Effects of tris(2-chloroethyl) phosphate exposure on chicken embryos in a shell-less incubation system[J]. Ecotoxicology and Environmental Safety, 2021, 207: 111263
|
Wang H K, Jing C, Peng H K, et al. Parental whole life-cycle exposure to tris (2-chloroethyl) phosphate (TCEP) disrupts embryonic development and thyroid system in zebrafish offspring[J]. Ecotoxicology and Environmental Safety, 2022, 248: 114313
|