Hartmann P C, Bürgi D, Giger W. Organophosphate flame retardants and plasticizers in indoor air[J]. Chemosphere, 2004, 57(8):781-787
Meeker J D, Stapleton H M. House dust concentrations of organophosphate flame retardants in relation to hormone levels and semen quality parameters[J]. Environmental Health Perspectives, 2010, 118(3):318-323
Marklund A, Andersson B, Haglund P. Organophosphorus flame retardants and plasticizers in air from various indoor environments[J]. Journal of Environmental Monitoring, 2005, 7(8):814-819
Wan W N, Zhang S Z, Huang H L, et al. Occurrence and distribution of organophosphorus esters in soils and wheat plants in a plastic waste treatment area in China[J]. Environmental Pollution, 2016, 214:349-353
Ding J J, Shen X L, Liu W P, et al. Occurrence and risk assessment of organophosphate esters in drinking water from Eastern China[J]. Science of the Total Environment, 2015, 538:959-965
Butt C M, Congleton J, Hoffman K, et al. Metabolites of organophosphate flame retardants and 2-ethylhexyl tetrabromobenzoate in urine from paired mothers and toddlers[J]. Environmental Science & Technology, 2014, 48(17):10432-10438
Cooper E M, Covaci A, Nuijs A L N, et al. Analysis of the flame retardant metabolites bis(1,3-dichloro-2-propyl) phosphate (BDCPP) and diphenyl phosphate (DPP) in urine using liquid chromatography-tandem mass spectrometry[J]. Analytical and Bioanalytical Chemistry, 2011, 401(7):2123-2132
Zhao F R, Chen M, Gao F M, et al. Organophosphorus flame retardants in pregnant women and their transfer to chorionic villi[J]. Environmental Science & Technology, 2017, 51(11):6489-6497
Zhao F R, Kang Q Y, Zhang X H, et al. Urinary biomarkers for assessment of human exposure to monomeric aryl phosphate flame retardants[J]. Environment International, 2019, 124:259-264
Pellizzari E D, Woodruff T J, Boyles R R, et al. Identifying and prioritizing chemicals with uncertain burden of exposure:Opportunities for biomonitoring and health-related research[J]. Environmental Health Perspectives, 2019, 127(12):126001
Li Y, Kang Q Y, Chen R C, et al. 2-ethylhexyl diphenyl phosphate and its hydroxylated metabolites are anti-androgenic and cause adverse reproductive outcomes in male Japanese medaka (Oryzias latipes)[J]. Environmental Science & Technology, 2020, 54(14):8919-8925
Hu W X, Gao F M, Zhang H, et al. Activation of peroxisome proliferator-activated receptor gamma and disruption of progesterone synthesis of 2-ethylhexyl diphenyl phosphate in human placental choriocarcinoma cells:Comparison with triphenyl phosphate[J]. Environmental Science & Technology, 2017, 51(7):4061-4068
Li Y, Wang C, Zhao F, et al. Environmentally relevant concentrations of the organophosphorus flame retardant triphenyl phosphate impaired testicular development and reproductive behaviors in Japanese medaka (Oryzias latipes)[J]. Environmental Science & Technology Letters, 2018, 5(11):649-654
Li Y, Chen R C, He J W, et al. Triphenyl phosphate at environmental levels retarded ovary development and reduced egg production in Japanese medaka (Oryzias latipes)[J]. Environmental Science & Technology, 2019, 53(24):14709-14715
Hu W X, Jia Y T, Kang Q Y, et al. Screening of house dust from Chinese homes for chemicals with liver X receptors binding activities and characterization of atherosclerotic activity using an in vitro macrophage cell line and ApoE-/-mice[J]. Environmental Health Perspectives, 2019, 127(11):117003
Hu W X, Kang Q Y, Zhang C H, et al. Triphenyl phosphate modulated saturation of phospholipids:Induction of endoplasmic reticulum stress and inflammation[J]. Environmental Pollution, 2020, 263:114474
Farzadfar F, Danaei G, Namdaritabar H, et al. National and subnational mortality effects of metabolic risk factors and smoking in Iran:A comparative risk assessment[J]. The Lancet, 2013, 381:S47
Moran A, Gu D, Zhao D, et al. Risk factor trends and future cardiovascular disease in China:Forecasts from the coronary heart disease policy model-China[J]. Circulation, 2010, 122(2):E184
Jarosińska D, Biesiada M, Muszyńska-Graca M. Environmental burden of disease due to lead in urban children from Silesia, Poland[J]. Science of the Total Environment, 2006, 367(1):71-79
Zhao F R, Li Y, Zhang S Y, et al. Association of aryl organophosphate flame retardants triphenyl phosphate and 2-ethylhexyl diphenyl phosphate with human blood triglyceride and total cholesterol levels[J]. Environmental Science & Technology Letters, 2019, 6(9):532-537
van den Eede N, Neels H, Jorens P G, et al. Analysis of organophosphate flame retardant diester metabolites in human urine by liquid chromatography electrospray ionisation tandem mass spectrometry[J]. Journal of Chromatography A, 2013, 1303:48-53
van den Eede N, Maho W, Erratico C, et al. First insights in the metabolism of phosphate flame retardants and plasticizers using human liver fractions[J]. Toxicology Letters, 2013, 223(1):9-15
Ballesteros-Gómez A, Erratico C A, Eede N V D, et al. In vitro metabolism of 2-ethylhexyldiphenyl phosphate (EHDPHP) by human liver microsomes[J]. Toxicology Letters, 2015, 232(1):203-212
Crump K S. Calculation of benchmark doses from continuous data[J]. Risk Analysis, 1995, 15(1):79-89
Suwazono Y, Sand S, Vahter M, et al. Benchmark dose for cadmium-induced renal effects in humans[J]. Environmental Health Perspectives, 2006, 114(7):1072-1076
Murata K, Budtz-Jorgensen E, Grandjean P. Benchmark dose calculations for methylmercury-associated delays on evoked potential latencies in two cohorts of children[J]. Risk Analysis, 2002, 22(3):465-474
Murata K, Weihe P, Budtz-Jørgensen E, et al. Delayed brainstem auditory evoked potential latencies in 14-year-old children exposed to methylmercury[J]. The Journal of Pediatrics, 2004, 144(2):177-183
Jacobson J L, Janisse J, Banerjee M, et al. A benchmark dose analysis of prenatal exposure to polychlorinated biphenyls[J]. Environmental Health Perspectives, 2002, 110(4):393-398
Crump K S, Van Landingham C, Shamlaye C, et al. Benchmark concentrations for methylmercury obtained from the Seychelles Child Development Study[J]. Environmental Health Perspectives, 2000, 108(3):257-263
Budtz-Jørgensen E, Grandjean P, Keiding N, et al. Benchmark dose calculations of methylmercury-associated neurobehavioural deficits[J]. Toxicology Letters, 2000, 112-113:193-199
Lachenmeier D W, Kanteres F, Rehm J. Epidemiology-based risk assessment using the benchmark dose/margin of exposure approach:The example of ethanol and liver cirrhosis[J]. International Journal of Epidemiology, 2011, 40(1):210-218
United States Environmental Protection Agency (US EPA). Benchmark dose technical guidance[R]. Washington DC:US EPA, 2012
Bokkers B G H, Slob W. Deriving a data-based interspecies assessment factor using the NOAEL and the benchmark dose approach[J]. Critical Reviews in Toxicology, 2007, 37(5):355-373
European Food Safety Authority (EFSA). Update:Guidance on the use of the benchmark dose approach in risk assessment[R/OL].[2021-04-12]. https://efsa.onlinelibrary.wiley.com/doi/10.2903/j.efsa.2017.4658
Knutsen H K, Alexander J. Risk to human health related to the presence of perfluorooctane sulfonic acid and perfluorooctanoic acid in food[J]. EFSA Journal, 2018, 16(12):e05194
Dong Z M, Hu J Y. Development of lead source-specific exposure standards based on aggregate exposure assessment:Bayesian inversion from biomonitoring information to multipathway exposure[J]. Environmental Science & Technology, 2012, 46(2):1144-1152
Chen Y, Fang J Z, Ren L, et al. Urinary metabolites of organophosphate esters in children in South China:Concentrations, profiles and estimated daily intake[J]. Environmental Pollution, 2018, 235:358-364
Dodson R E, van den Eede N, Covaci A, et al. Urinary biomonitoring of phosphate flame retardants:Levels in California adults and recommendations for future studies[J]. Environmental Science & Technology, 2014, 48(23):13625-13633
Zhang T, Bai X Y, Lu S Y, et al. Urinary metabolites of organophosphate flame retardants in China:Health risk from tris(2-chloroethyl) phosphate (TCEP) exposure[J]. Environment International, 2018, 121:1363-1371
Carignan C C, Mínguez-Alarcón L, Butt C M, et al. Urinary concentrations of organophosphate flame retardant metabolites and pregnancy outcomes among women undergoing in vitro fertilization[J]. Environmental Health Perspectives, 2017, 125(8):087018
Hoffman K, Daniels J L, Stapleton H M. Urinary metabolites of organophosphate flame retardants and their variability in pregnant women[J]. Environment International, 2014, 63:169-172
Meeker J D, Cooper E M, Stapleton H M, et al. Urinary metabolites of organophosphate flame retardants:Temporal variability and correlations with house dust concentrations[J]. Environmental Health Perspectives, 2013, 121(5):580-585
United States Environmental Protection Agency (US EPA). ProUCL Version 4.00.02 User Guide[R]. Washington DC:US EPA, 2007
Schindler B K, Förster K, Angerer J. Determination of human urinary organophosphate flame retardant metabolites by solid-phase extraction and gas chromatography-tandem mass spectrometry[J]. Journal of Chromatography B, 2009, 877(4):375-381