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Occurrence of antimony and phthalate esters in polyethylene terephthalate bottled drinking water

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References

  • Zenith International. (2014) UK bottled water drinks report 2014. Available at: http://zenithinternational.com (accessed May 2015).
  • Smithers Pira. (2014) The future of PET packaging to 2019. Available at: http://www.smitherspira.com/products/market-reports/packaging/rigid-packaging/pet-packaging-industry-trends (accessed May 2015).
  • Zenith International. (2012) 2012 Global Bottled Water Congress and market trends. Available at: http://zenithinternational.com (accessed May 2015).
  • Gerald, B.L., Marine, J.A., Pope, J.F., and Murini, M.W. (2007) Bottled water practices of Louisiana healthcare facilities. J. Am. Diet. Soc., 107: A68.
  • Drewnowski, A., Rehm, C.R., and Constant, F. (2013) Water and beverage consumption among adults in the United States: Cross-sectional study using data from NHANES 2005–2010. BMC Public Health, 13: 1068–1078.
  • Drewnowski, A., Rehm, C.R., and Constant, F. (2013) Water and beverage consumption among children age 4-13y in the United States: Analyses of 2005–2010 NHANES data. Nutr. J., 12: 85–94.
  • Data table 19. Per-Capita Bottled Water Consumption by Top Countries, 1999–2010 (liters per person per year). Available at: www.worldwater.org/datav7/data_table_19_per_capita_bottled_water_by_country.pdf (accessed October 2015).
  • Rungchang, S., Numthuam, S., Qiu, X., Li, Y., and Satake, T. (2013) Diffusion coefficient of antimony leaching from polyethylene terephthalate bottles into beverages. J. Food Eng., 115: 322–329.
  • Reimann, C., Birke, M., and Filzmoser, P. (2010) Bottled drinking water. Water contamination from bottle materials (glass, hard PET, soft PET), the influence of colour and acidification. Appl. Geochem., 25: 1030–1046.
  • Reimann, C., Birke, M., and Filzmoser, P. (2012) Temperature-dependent leaching of chemical elements from mineral water bottle materials. Appl. Geochem., 27: 1492–1498.
  • Greifenstein, M., White, D.W., Stubner, A., Hout, J., and Whelton, A.J. (2007) Impact of temperature and storage duration on the chemical and odor quality of military packaged water in polyethylene terephthalate bottles. Sci. Total Environ., 456–457: 376–383.
  • Pang, K., Kotek, R., and Tonelli, A. (2006) Review of conventional and novel polymerization processes for polyesters. Progr. Polymer Sci., 31: 1009–1037.
  • Awaja, F. and Pavel, D. (2005) Recycling of PET. Eur. Polymer J., 41: 1453–1477.
  • Duh, B. (2002) Effect of antimony catalyst on solid-state polycondensation of poly(ethyleneterephthalate). Polymer, 43: 3147–3154.
  • Franz, R. and Welle, F. (2009) Can migration of endocrine disruptors from plastic bottles be the cause of estrogenic burden recently determined in bottled mineral water? Dtsch. Lebensm. Rundsch., 105: 315–318.
  • Takahashi, Y., Sakuma, K., Itai, T., Zheng, G., and Mitsunobu, S. (2008) Speciation of antimony in PET bottles produced in Japan and China by X-ray absorption fine structure spectroscopy. Environ. Sci. Tech., 42: 9045–9050.
  • Holland, B.J. and Hay, J.N. (2002) Analysis of comonomer content and cyclic oligomers of poly(ethylene terephthalate). Polymer, 43: 1797–1804.
  • Holland, B.J. and Hay, J.N. (2002) The thermal degradation of PET and analogous polyesters measured by thermal analysis-Fourier transform infrared spectroscopy. Polymer, 43: 1835–1847.
  • Romão, W., Franco, M.F., Corilo, Y.E., Eberlin, M.N., Spinacẻ, M.A.S., and De Paoli, M.A. (2009) Poly(ethyleneterephthalate) thermo-mechanical and thermo-oxidative degradation mechanisms. Polymer Degrad. Stabil., 94: 1849–1859.
  • Zhang, H. and Ward, I.M. (1995) Kinetics of hydrolytic degradation of poly(ethylene naphtalene-2,6-dicarboxylate). Macromolecules, 28: 7622–7629.
  • Paci, M. and La Mantia, F.P. (1998) Competition between degradation and chain extension during processing of reclaimed poly(ethylene terephthalate). Polymer Degrad. Stabil., 61: 417–420.
  • Bach, C., Dauchy, X., Chagnon, M.C., and Etienne, S. (2012) Chemical compounds and toxicological assessments of drinking water stored in polyethylene terephthalate (PET) bottles: a source of controversy reviewed. Water Res., 46: 571–583.
  • 10/2011/EC. (2011) Commission Regulation (EU) on plastic materials and articles intended to come into contact with food. Available at: http://ec.europa.eu/food/food/chemicalsafety/foodcontact/docs/guidance_reg-10-2011_without_boxes_en.pdf (accessed May 2015).
  • Garbos, S., Bulska, E., Hulanicki, A., Fijalek, Z., and Soltyk K. (2000) Determination of total antimony and antimony (V) by inductively coupled plasma mass spectrometry after selective separation of antimony (III) by solvent extraction with N-benzoyl-N-phenylhydroxylamine. Spectrochim. Acta B, 55: 795–802.
  • Cornelis, R., Caruso, J., Crews, H., and Heumann, K. (2003) Handbook of Elemental Speciation: Techniques and Methodology. 1st ed. Wiley: Weinheim, Germany.
  • Zheng, J., Ohata, M., and Furuta, N. (2000) Antimony speciation in environmental samples by using high-performance liquid chromatography coupled to inductively coupled plasma mass spectrometry. Anal. Sci., 16: 75–80.
  • Krachler, M., Burow, M., and Emons, H. (1999) Development and evaluation of an analytical procedure for the determination of antimony in plant materials by hydride generation atomic absorption spectrometry. Analyst, 124: 777–782.
  • Ephros, M., Bitnun, A., Shaked, P., Waldman, E., and Zilberstein, D. (1999) Stage-specific activity of pentavalent antimony against Leishmania donovani axenic amastigotes. Antimicrob. Agents Chemother., 43: 278–282.
  • Faraut-Gambarelli, F., Pearroux, R., Denau, M., Giusiano, B., Marty, P., Michel, G., Faugere, B., and Dumon, H. (1997) In vitro and in vivo resistance of Leishmania infantum to meglumine antimoniate: A study of 37 strains collected from patients with visceral leishmaniasis. Antimicrob. Agents Chemother., 41: 827–830.
  • Ibrahim, M.E., Hag-Ali, M., El-Hassan, A.M., Theander, I.G., and Kharazmi, A. (1994) Leishmania resistant to sodium stibogluconate: Drug-associated macrophage-dependent killing. Parasitol. Res., 80: 569–874.
  • International Agency for Research on Cancer. (1989) IARC Monographs on the Evaluation of Carcinogenic Risks to Humans, 47: 291–305.
  • Merian, E. (1991) Metals and Their Components in the Environment. 1st ed. VCH: Weinheim, Germany.
  • Kuroda, K.G., Endo, A., Okamoto, A., Yoo, Y.S., and Huriguchi, S. (1991) Genotoxicity of beryllium, gallium and antimony in short-term assays. Mutat. Res. Lett., 264: 163–170.
  • Stemmer, K.L. (1976) Pharmacology and toxicology of heavy metals: Antimony. Pharmacol. Therapeut., 1: 157–160.
  • Antimony pentoxide (T3D0872). Available at: http://www.t3db.ca/toxins/T3D0872#reference-L790 (accessed May 2015).
  • Felicetti, S.A., Thomas, R.G., and McClellan, R.O. (1974) Metabolism of two valence states of inhaled antimony in hamsters. Am. Ind. Hyg. Assoc. J., 35: 292–300.
  • Werrin, M. (1963) Chemical food poisoning. Association of Food and Drug Officials. Q. Bull. - Hussock Food Drug Off, US, 27: 28–45.
  • Brieger, H., Semisch, C.W., Stasney, J., and Piatnek, DA. (1954) Industrial antimony poisoning. Ind. Med. Surg., 23: 521–523.
  • Schnorr, T.M., Steenland, K., Thun, M.J., and Rinsky, R.A. (1995) Mortality in a cohort of antimony smelter workers. Am. J. Ind. Med., 27: 759–770.
  • Jones, R.D. (1994) Survey of antimony workers: Mortality 1961–1992. Occup. Environ. Med., 51: 772–776.
  • Belyaeva, A.P. (1967) The effect of antimony on reproduction. Gig. Tr. Prof. Zabol., 11: 32.
  • WHO/SDE/WSH/03.04/74. (2003) Antimony in drinking-water. Background document for development of WHO guidelines for drinking-water quality. Available at: http://www.who.int/water_sanitation_health/dwq/chemicals/antimony.pdf (accessed May 2015).
  • 98/83/EC. (1998) Council Directive on the quality of water intended for human consumption. Available at: http://eur-lex.europa.eu/legal-content/EN/TXT/?uri = CELEX:31998L0083 (accessed May 2015).
  • EPA 816-F-09-004. (2009) National Primary Drinking Water Regulations. Available at: http://www.epa.gov/ogwdw/consumer/pdf/mcl.pdf (accessed May 2015).
  • Mutsuga, M., Tojima, T., Kawamura, Y., and Tanamoto, K. (2005) Survey of formaldehyde, acetaldehyde and oligomers in polyethylene terephthalate food-packaging materials. Food Addit. Contam., 22: 783–789.
  • Nawrocki, J., Dabrowska, A., and Borcz, A. (2002) Investigation of carbonyl compounds in bottled waters from Poland. Water Res., 36: 4893–4901.
  • Mutsuga, M., Kawamura, Y., Sugita-Konishi, Y., Hara-Kudo, Y., Takatori, K., and Tanamoto, K. (2006) Migration of formaldehyde and acetaldehyde into mineral water in polyethylene terephthalate (PET) bottles. Food Addit. Contam., 23: 212–218.
  • Liu, H., Den, W., Chan, S., and Kin, K.T. (2008) Analysis of trace contamination of phthalate esters in ultrapure water using a modified solid-phase extraction procedure and automated thermal desorption–gas chromatography/mass spectrometry. J. Chromatogr. A, 1188: 286–294.
  • Peñalver, A., Pocorull, E., Borrul, F., and Marce, R.M. (2000) Determination of phthalate esters in water samples by solid-phase microextraction and gas chromatography with mass spectrometric detection. J. Chromatogr. A, 872: 191–201.
  • Pinto, B. and Reali, D. (2009) Screening of estrogen-like activity of mineral water stored in PET bottles. Int. J. Hyg. Envir. Health, 212: 228–232.
  • LaFleur, A.D. and Schug, K. (2011) A review of separation methods for the determination of estrogens and plastics-derived estrogen mimics from aqueous systems. Anal. Chim. Acta, 696: 6–26.
  • World Health Organization. (2011) Guidelines for Drinking-Water Quality. 4th ed. Available at: http://www.who.int/water_sanitation_health/publications/2011/dwq_guidelines/en/ (accessed May 2015).
  • 2013/39/EU. (2013) Directive 2013/39/EU of the European Parliament and of the Council amending Directives 2000/60/EC and 2008/105/EC as regards priority substances in the field of water policy. Available at: http://eur-lex.europa.eu/legal-content/EN/TXT/?uri = celex:32013L0039 (accessed October 2015).
  • 2008/105/EC. (2008) Directive 2008/105/EC of the European Parliament and of the Council on Environmental Quality Standards in the Field of Water Policy, amending and subsequently repealing Council Directives 82/176/EEC, 83/513/EEC, 84/156/EEC, 84/491/EEC, 86/280/EEC and amending Directive 2000/60/EC of the European Parliament and of the Council. Available at: http://eur-lex.europa.eu/LexUriServ/LexUriServ.do?uri=OJ:L:2008:348:0084:0097:en:PDF (accessed May 2015).
  • European Food Safety Authority. (2005) Opinion of the Scientific Panel on Food Additives, Flavourings, Processing Aids and Materials in Contact with Food (AFC) related to butylbenzylphthalate (BBP) for use in food contact materials. Available at: http://www.efsa.europa.eu/de/scdocs/doc/241.pdf (accessed May 2015).
  • European Food Safety Authority. (2005) Opinion of the Scientific Panel on Food Additives, Flavourings, Processing Aids and Materials in Contact with Food (AFC) related to di-butylphthalate (DBP) for use in food contact materials. Available at: http://www.efsa.europa.eu/en/scdocs/doc/242.pdf (accessed May 2015).
  • European Food Safety Authority. (2005) Opinion of the Scientific Panel on Food Additives, Flavorings, Processing Aids and Materials in Contact with Food (AFC) related to bis(2-ethylhexyl)phthalate (DEHP) for use in food contact materials. Available at: http://www.efsa.europa.eu/en/scdocs/doc/243.pdf (accessed May 2015).
  • Gomez-Hens, A. and Aguilar-Caballos, M.P. (2003) Social and economic interest in the control of phthalic acid esters. TRAC - Trends Anal. Chem., 22: 847–857.
  • Swan, S.H., Main, K.M., Liu, F., Stewart, S.L., Kruse, R.L., Calafat, A.M., Mao, C.S., Redmon, J.B., Ternand, C.L., Sullivan, S., Teague, J.L., and the Study for Future Families Research Team. (2005) Decrease in anogenital distance among male infants with prenatal phthalate exposure. Environ. Health Perspect., 113: 1056–1061.
  • SEC. (2007) 1635 Commission Staff working document on the implementation of the “Community Strategy for Endocrine Disrupters”—A range of substances suspected of interfering with the hormone systems of humans and wildlife (COM (1999) 706), (COM (2001) 262) and (SEC (2004) 1372). Available at: http://ec.europa.eu/environment/chemicals/endocrine/pdf/sec_2007_1635.pdf (accessed May 2015).
  • Marguí, E., Sagué, M., Queralt, I., and Hidalgo, M. (2013) Liquid phase microextraction strategies combined with total-reflection X-ray spectrometry for the determination of low amounts of inorganic antimony species in waters. Anal. Chim. Acta, 786: 8–15.
  • Smichowski, P., Madrid, Y., and Cámara C. (1998) Analytical methods for antimony speciation in water at trace and ultratrace levels. Fresen. J. Anal. Chem., 360: 623–629.
  • Nash, M.J., Maskall, J.E., and Hill, S.J. (2000) Methodologies for determination of antimony in terrestrial environmental samples. J. Environ. Monit., 2: 97–109.
  • Li, Y., Hu, B., and Jiang, Z. (2006) On-line cloud point extraction combined with electrothermal vaporization inductively coupled plasma atomic emission spectrometry for the speciation of inorganic antimony in environmental and biological samples. Anal. Chim. Acta, 576: 207–214.
  • Jiang, X., Wen, S., and Xiang, G. (2010) Cloud point extraction combined with electrothermal atomic absorption spectrometry for the speciation of antimony (III) and antimony (V) in food packaging materials. J. Hazard. Mater., 175: 146–510.
  • Hansen, H.R. and Pergantis, S.A. (2006) Detection of antimony species in citrus juices and drinking water stored in PET containers. JAAS: Journal of Analytical Atomic Spectrometry, 21: 731–733.
  • Sánchez-Martínez, M., Pérez-Corona, T., Cámara, C., and Madrid, Y. (2013) Migration of antimony from PET containers into regulated EU food simulants. Food Chem., 141: 816–822.
  • Morita, Y., Kobayashi, T., Kuroiwa, T., and Narukawa, T. (2007) Study on simultaneous speciation of arsenic and antimony by HPLC-ICP-MS. Talanta, 73: 81–86.
  • Martin, R.R., Shotyk, W.S., Naftel S.J., Ablett, J.M., and Northrup P. (2010) Speciation of antimony in polyethylene terephthalate bottles. X-ray Spectrom., 39: 257–259.
  • Bošnir, J., Puntaric, D., Galić, A., Škes, I., Dijanić, T., Klarić, M., Grgić, M., Čurković, M., and Šmit, Z. (2007) Migration of phthalates from plastic containers into soft drinks and mineral water. Food Tech. Biotechnol., 45: 91–95.
  • Criado, M.V., Pinto, V.E.F., Badessari, A., and Cabral, D. (2005) Conditions that regulate the growth of moulds inoculated into bottled mineral water. Int. J. Food Microbiol., 99:343–349.
  • Biscardi, D., Monarca, S., De Fusco, R., Senator, F., Poli, P., Buschini, A., Rossi, C., and Zani, C. (2003) Evaluation of the migration of mutagens/carcinogens from PET bottles into mineral water by Tradescantia/micronuclei test, comet assay on leukocytes and GC/MS. Sci. Total Environ., 302: 101–108.
  • Fierens, T., Servaes, K., Van Holderbeke, M., Geerts, L., De Henauw, S., and Sioen, I. (2012) Analysis of phthalates in food products and packaging materials sold on Belgian market. Food Chem. Toxicol., 50: 2575–2582.
  • Cao, X.L. (2008) Determination of phthalates and adipate in bottled water by headspace solid-phase microextraction and gas chromatography/mass spectrometry. J. Chromatogr. A, 1178: 231–238.
  • Baram, G.I., Azarova, I.N., Gorshikov, A.G., Vereschagin, A.L., Lang, B., and Kiryukhina, E.D. (2000) Determination of bis(2-ethylhexyl) phthalate in water by high-performance liquid chromatography with direct on-column preconcentration. J. Anal. Chem., 55: 750–754.
  • Ragonese, C., Sciarrone, D., Tranchida, P.Q., Dugo, P., and Mondello, L. (2012) Use of ionic liquids as stationary phases in hyphenated gas chromatography techniques. J. Chromatogr. A, 1255: 130–144.
  • Dévier, M.H., Le Menach, K., Viglino, L., Di Gioia, L., Lachassagne, P., and Budzinski, H. (2013) Ultra-trace analysis of hormones, pharmaceutical substances, alkylphenols and phthalates in two French natural mineral waters. Sci. Total Environ., 443: 621–632.
  • Polo, M., Llompart, M., Garcia-Jares, C., and Cela, R. (2005) Multivariate optimization of a solid-phase microextraction method for the analysis of phthalate esters in environmental waters. J. Chromatogr. A, 1072: 63–72.
  • Amiridou, D. and Voutsa, D. (2011) Alkylphenols and phthalates in bottled waters. J. Hazard. Mater., 185: 281–286.
  • Ferretti, E., Lucentini, L., Veschetti, E., Bonadonna, L., Stammati, A., Turco, L., and Ottaviani, M. (2007) Screening and identification of unknown contaminants in water destined to human consumption: A case study. Microchem. J., 85: 57–64.
  • Leivadara, S.V., Nikolaou, A.D., and Lekkas, T.D. (2008) Determination of organic compounds in bottled waters. Food Chem., 108: 277–286.
  • Schmid, P., Kohler, M., Meierhofer, R., Luzi, S., and Wegelin, M. (2008) Does the reuse of PET bottles during solar water disinfection pose a health risk due to the migration of plasticisers and other chemicals into the water? Water Res., 42: 5054–5060.
  • Santana, J., Giraudi C., Marengo, E., Robotti, E., Pires, S., Nunes, I., and Gaspar, E.M. (2014) Preliminary toxicological assessment of phthalate esters from drinking water consumed in Portugal. Environ. Sci. Pollut. Res., 21: 1380–1390.
  • Psillakis, E. and Kalogerakis, N. (2003) Hollow-fibre liquid-phase microextraction of phthalate esters from water. J. Chromatogr. A, 999: 145–153.
  • Xu, J., Liang, P., and Zhang, T. (2007) Dynamic liquid-phase microextraction of three phthalate esters from water samples and determination by gas chromatography. Anal. Chim. Acta, 597: 1–5.
  • Mortelmans, K. and Zeiger, E. (2000) The Ames Salmonella/microsome mutagenicity assay. Mutat. Res., 455: 29–60.
  • Morais Leme, D. and Marin-Morales, M.A. (2009) Allium cepa test in environmental monitoring: A review on its application. Mutat. Res. - Rev. Mutat., 682: 71–81.
  • Mišík, M., Pichler, C., Rainer, B., Nersesyan, A., and Knasmueller, S. (2013) Micronucleus assay with tetrad cells of Tradescantia. In Genotoxicity Assessment. Methods in Molecular Biology, Dhawan, A., Bajpayee, M., Eds., Springer, New York, pp. 405–415.
  • Fomin, A. and Hafner, C. (1998) Evaluation of genotoxicity of emissions from municipal waste incinerators with Tradescantia-micronucleus bioassay (Trad-MCN). Mutat Res Genet Toxicol Environ Mutagen, 414: 139–148.
  • Routledge, E.J. and Sumpter, J.P. (1996) Estrogenic activity of surfactants and some of their degradation products assessed using a recombinant yeast screen. Environ. Toxicol. Chem., 15: 241–248.
  • Gaido, K.W., Leonard, L.S., Lovell, S., Gould, J.C., Babaï, D., Portier, C.J., and McDonnell, D.P. (1997) Evaluation of chemicals with endocrine modulating activity in a yeast-based steroid hormone receptor gene transcription assay. Toxicol. Appl. Pharm., 143: 205–212.
  • Schultis, T. and Metzger, J.W. (2004) Determination of estrogenic activity by LYES-assay (yeast estrogen screen-assay assisted by enzymatic digestion with lyticase). Chemosphere, 57: 1649–1655.
  • Wagner, M. and Oehlmann, J. (2011) Endocrine disruptors in bottled mineral water: Total estrogenic activity in the E-screen. Journal of Steroid Biochemistry, 127: 128–135.
  • Keresztes, S., Tatár, E., Czégény, Z., Záray, G., and Mihucz, V.G. (2013) Study on the leaching of phthalates from polyethylene terephthalate bottles into mineral water. Sci. Total Environ., 458-460: 451–458.
  • Misund, A., Frengstad, B., Siewers, U., and Reimann, C. (1999) Variations of 66 elements in European bottled mineral waters. Sci. Total Environ., 243–244: 21–24.
  • Güler, C. (2007) Evaluation of maximum contaminant levels in Turkish bottled drinking waters utilizing parameters reported on manufacturer's labeling and government-issued production licenses. J. Food Compos. Anal., 20: 262–272.
  • Westerhoff, P., Prapaipong, P., Shock, E., and Hillaireau, A. (2008) Antimony leaching from polyethylene terephthalate (PET) plastic used for bottled drinking water. Water Res., 42: 551–556.
  • Shotyk, W. and Krachler, M. (2007) Contamination of bottled waters with antimony leaching from polyethylene terephthalate (PET) increases upon storage. Environ. Sci. Tech., 41: 1560–1563.
  • Christen, K. (2006) Bottled antimony. Environ. Sci. Technol., 40: 2500–2501.
  • Shotyk, W., Krachler, M., and Chen, B. (2006) Contamination of Canadian and European bottled waters with antimony from PET containers. J. Environ. Monit., 8: 288–292.
  • Tukur, A., Sharp, L., Stern, B., Tizaouic, C., and Benkreira, H. (2012) PET bottle use patterns and antimony migration into bottled water and soft drinks: the case of British and Nigerian bottles. J. Environ. Monit., 14: 1236–1246.
  • Plotan, M., Frizzell, C., Robinson, V., Elliott, C.T., and Connolly, L. (2013) Endocrine disruptor activity in bottled mineral and flavoured water. Food Chem., 136: 1590–1596.
  • Wu, M.T., Wu, C.F., Wu, J.R., Chen, B.H., Chen, E.K., Chao, M.C., Liu, C.K., and Ho, C.K. (2012) The public health threat of phthalate-tainted foodstuffs in Taiwan: The policies the government implemented and the lessons we learned. Environ. Int., 44: 75–79.
  • Hirayama, K., Tanaka, H., Kawana, K., Tani, T., and Nakazawa, H. (2001) Analysis of plasticizers in cap-sealing resins for bottled foods. Food Addit. Contam., 18: 357–362.
  • Keresztes, S., Tatár, E., Mihucz, V.G., Virág, I., Majdik, C., and Záray, G. (2009) Leaching of antimony from polyethylene terephthalate bottles into mineral water. Sci. Total Environ., 407: 4731–4735.
  • Casajuana, N and Lacorte, S. (2003) Presence and release of phthalic esters and other endocrine disrupting compounds in drinking water. Chromatographia 57: 649–655.
  • Saleh, M.A., Ewane, E., Jones, J., and Wilson, B.L. (2001) Chemical evaluation of commercial bottled drinking water from Egypt. J. Food Compos. Anal., 14: 127–152.
  • Al-Saleh, I., Shinwari, N., and Alsabbaheen, A. (2011) Phthalates residues in plastic bottled waters. J. Toxicol. Sci., 36: 469–478.
  • Hureiki, L. and Youssef Mouneimne, Y. (2012) Antimony release in PET bottled natural water in Lebanon. Water Sci. Tech., 12: 193–199.
  • Bach, C., Dauchy, X., Severin, I., Muñoz, J.F., Etienne, S., and Chagnon, M.C. (2013) Effect of temperature on the release of intentionally and non-intentionally added substances from polyethylene terephthalate (PET) bottles into water: Chemical analysis and potential toxicity. Food Chem., 139: 672–680.
  • Peric-Grujic, A.A., Radmanovac, A.R., Stojanov, A.M., Pocajt, V.V., and Ristic, M.D. (2010) The influence of PET containers on antimony concentration in bottled drinking water. Hemijska Industrija / Chemical Industry, 64: 305–310.
  • Bach, C., Dauchy, X., Severin, I., Muñoz, J.F., Etienne, S., and Chagnon, M.C. (2014) Effect of sunlight exposure on the release of intentionally and/or non-intentionally added substances from polyethylene terephthalate (PET) bottles into water: Chemical analysis and in vitro toxicity. Food Chem., 162: 63–71.
  • Andra, S.S., Makris, K.C., and Shine, J.P. (2011) Frequency of use controls chemical leaching from drinking-water containers subject to disinfection. Water Res., 45: 6677–6687.
  • Mustafa, A., Scholz, M., Khan, S., and Ghaffar, A. (2013) Application of solar disinfection for treatment of contaminated public water supply in a developing country: field observations. J. Water Health, 11: 135–145.
  • Solar Water Disinfection: A Guide for the application of SODIS. SANDEC Report No 06/02. (2012) Available at: http://www.sodis.ch/files/SODIS_Manual_english.pdf (accessed May 2015).
  • Meierhofer, R. and Landolt, G. (2009) Factors supporting the sustained use of solar water disinfection—Experiences from a global promotion and dissemination programme. Desalination, 248: 144–151.
  • Lertsirisopon, R., Soda, S., Sei, K., and Ike, M. (2009) Abiotic degradation of four phthalic acid esters in aqueous phase under natural sunlight irradiation. J. Environ. Sci., 21: 285–290.
  • Monarca, S., De Fusco, R., Biscardi, D., De Feo, V., Pasquini, R., Fatigoni, C., Moretti, M., and Zanardini, A. (1994) Studies of migration of potentially genotoxic compounds into water stored in PET bottles. Food Chem. Toxicol., 32: 783–788.
  • Evandri, M.G., Tucci, P., and Bolle, P. (2000) Toxicological evaluation of commercial mineral water bottled in polyethyleneterephthalate: A cytogenetic approach with Allium cepa. Food Addit. Contam., 17: 1037–1045.
  • Sax, L. (2010) Polyethylene terephthalate may yield endocrine disruptors. Environ. Health Perspect., 118: 445–448.
  • Yang, C.Z., Yaniger, S.I., Jordan, V.C., Klein, D.J., and Bittner, G.D. (2011) Most plastic products release estrogenic chemicals: A potential health problem that can be solved. Environ. Health Perspect., 119: 982–996.
  • Jobling, S., Sheahan, D., Osborne, J.A., Mathiessen, P., and Sumpter, J.P. (1995) A variety of environmentally persistent chemicals, including some phthalates plasticizers, are weakly estrogenic. Environ. Health Perspect., 103: 582–587.
  • Choe, S.Y., Kim, S.J., Kim, H.G., Lee, J.H., Choi, Y., Lee, H., and Kim, H. (2003) Evaluation of estrogenicity of major heavy metals. Sci. Total Environ., 312: 15–21.
  • Safa, H.L. (1999) Sorption–desorption of aromas on multi-use PET bottles. A test procedure. Packag. Tech. Sci., 12: 37–44.
  • Wagner, M. and Oehlmann, J. (2009) Endocrine disruptors in bottled mineral water: Total estrogenic burden and migration from plastic bottles. Environ. Sci. Pollut. Res., 16: 278–286.
  • Muncke, J. (2009) Exposure to endocrine disrupting compounds via the food chain: Is packaging a relevant source? Sci. Total Environ., 407: 4549–4559.
  • Biros, S.M., Bridgewater, B.M., Villeges-Estrada, A., Tanski, J.M., and Parkin, G. (2002) Antimony ethylene glycolate and catecholate compounds: structural characterization of polyesterification catalysts. Inorg. Chem., 41:4051–4057.
  • American Chemistry Council. (2009) Phthalates Information Center. Available at: http://www.phthalates.americanchemistry.com (accessed May 2015).
  • Nishioka, K., Hirahara, A., and Iwamoto, E. (2002) Determination of antimony in polyethylene terephthalate bottles by graphite furnace atomic absorption spectrometry using microwave sample preparation. Bull. Inst. Life Sci. - Hiroshima Prefectural Women's University, 8: 35–42.
  • Lopez-Molinero, A., Calatayud, P., Sipiera, D., Falcon, R., Liñan, D., and Castillo, J.R. (2007) Determination of antimony in poly(ethylene terephthalate) by volatile bromide generation flame atomic absorption spectrometry. Microchim. Acta, 158: 247–253.
  • Krachler, M. and Shotyk, W. (2009) Trace and ultratrace metals in bottled waters: survey of sources worldwide and comparison with refillable metal bottles. Sci. Total Environ., 407: 1089–1096.
  • Serôdio, P. and Nogueira, J.M.F. (2006) Considerations on ultra-trace analysis of phthalates in drinking water. Water Res., 40: 2572–2582.
  • Montuori, P., Jover, E., Morgantini, M., Bayona, J.M., and Triassi, M. (2008) Assessing human exposure to phthalic acid and phthalate esters from mineral water stored in polyethylene terephthalate and glass bottles. Food Addit. Contam., 25: 511–518.
  • Liang, P., Xu, J., and Li, Q. (2008) Application of dispersive liquid–liquid microextraction and high-performance liquid chromatography for the determination of three phthalate esters in water samples. Anal. Chim. Acta, 609: 53–58.
  • Dumitraşcu, I. (2013) Method validation for phthalate analysis from water. AES - Bioflux, 5: 63–69.

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