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:: Volume 3, Issue 4 (9-2016) ::
jehe 2016, 3(4): 259-269 Back to browse issues page
Monitoring of Para-Hydroxy Benzoic Acid Esters (Antimicrobial and Preservative) in Tehran Wastewater Treatment Plants and Performance Evaluation of Various Wastewater Treatment Method in the Removal of These Compounds
Mojtaba Yegane Badi , Sevda Fallah Jokandan , Salimeh Rezaei Nia , Ali Esrafili , Mehdi Farzad Kia , Mitra Gholami *
Abstract:   (4356 Views)

Background and Purpose: Parabens are a group of Para-hydroxy Benzoic acid alkyl esters which extensively used as preservative in personal care products. Parabens have been recently found in wastewater, rivers, soil and dust. Therefore, the purpose of this study aimed to Monitor the occurrence of parabens from selected wastewater treatment plants (Shahrak Ghods and south of Tehran) and evaluate the performance of different treatment methods for removing these compounds.

Methods: In this study, the samples from influent and effluent were collected from Shahrak Ghods and South of Tehran wastewater treatment plant as Seasonal and Three samples per season. Concentration of Para-hydroxy Benzoic acid esters was determined by HPLC, CECIL, 4100 at 242 nm.

Result: After sampling in the different seasons from the west and south treatment plants, two selective paraben concentrations (Methyl paraben and Ethyl paraben) were measured. The results showed that average concentration of Methyl paraben (MeP) and Ethyl paraben) EtP( respectively were 740.7 and 277.7 ng/L in the Influent and 179.3 and 45.8 ng/L in the effluent of Shahrak Ghods treatment plant. Also, the average concentration of MeP and EtP respectively were 835.3 and 295.3 ng/L in Influent and 132.8 and 29.7 ng/L in the effluent of South of Tehran treatment plant. In the next step, Risk assessment of effluent treatment plants discharging to environment with comparing the studies was done. According to the paraben concentration in the effluent of both treatment plants, discharge of effluent treatment plants whit selective contaminants, have little biological effects on ecosystems.

Conclusions: The removal efficiency of Shahrak Ghods treatment plant in removing parabens, was lower than the South of Tehran. But the effluent quality of both treatment plant was less than the Effluent discharge standard. So both of treatment plant have appropriate performance to removal contaminants.

Keywords: Parabens, Wastewater Treatment Plants
Full-Text [PDF 522 kb]   (2159 Downloads)    
Type of Study: Research | Subject: Special
Received: 2017/01/3 | Accepted: 2017/01/3 | Published: 2017/01/3
References
1. Haman C, Dauchy X, Rosin C, et al. Occurrence, fate and behavior of parabens in aquatic environments: A review. Water res. 2015; 68: 1-11.
2. González-Mariño I, Quintana JB, Rodríguez I, et al. Evaluation of the occurrence and biodegradation of parabens and halogenated by-products in wastewater by accurate-mass liquid chromatography-quadrupole-timeof-flight-mass spectrometry (LC-QTOF-MS). Water res. 2011; 45(20): 6770-80.
3. Pérez R, Albero B, Miguel E, et al. Determination of parabens and endocrine-disrupting alkylphenols in soil by gas chromatography–mass spectrometry following matrix solid-phase dispersion or in-column microwave-assisted extraction: a comparative study. Analytical and bioanalytical chemistry. 2012 402(7): 23-47.
4. Piao C, Chen L, Wang Y. A review of the extraction and chromatographic determination methods for the analysis of parabens. J of Chromatogr B. 2014; 969: 139-48.
5. Yamamoto H, Tamura I, Hirata Y, et al. Aquatic toxicity and ecological risk assessment of seven parabens: individual and additive approach. Sci Total Environ. 2011; 410: 102-11
6. Liao C, Lee S, Moon H-B, et al. Parabens in sediment and sewage sludge from the United States, Japan, and Korea: spatial distribution and temporal trends. ENVIRON SCI TECHNOL. 2013; 47(19): 10895-902.
7. González‐Mariño I, Quintana JB, Rodríguez I, et al. Simultaneous determination of parabens, triclosan and triclocarban in water by liquid chromatography/electrospray ionisation tandem mass spectrometry. Rapid Communications in Mass Spectrometry. 2009; 23(12): 1756-66
8. Błędzka D, Gromadzińska J, Wąsowicz W. Parabens From environmental studies to human health. Environ Int. 2014; 67: 27-42.
9. Wang L, Wu Y, Zhang W, Kannan K. Characteristic profiles of urinary p-hydroxybenzoic acid and its esters (parabens) in children and adults from the United States and China. Environ Sci Technol. 2013;47(4):2069-76
10. Cashman AL, Warshaw EM. Parabens: a review of epidemiology, structure, allergenicity, and hormonal properties. Dermatitis. 2005; 16(2): 57-66.
11. Soni M, Carabin I, Burdock G. Safety assessment of esters of p-hydroxybenzoic acid (parabens). Food Chem Toxicol. 2005; 43(7): 985-1015.
12. Prichodko A, Jonusaite K, Vickackaite V. Hollow fibre liquid phase microextraction of parabens. Central European Journal of Chemistry. 2009; 7(3): 285-90.
13. Tsunoda M. Recent advances in methods for the analysis of catecholamines and their metabolites. Analytical and bioanalytical chemistry. 2006; 386(3): 506-14.
14. Yamini Y, Saleh A, Rezaee M, et al. Ultrasound-assisted emulsification microextraction of various preservatives from cosmetics, beverages, and water samples. J Liq Chromatogr R T. 2012; 35(18): 2623-42.
15. Bazin I, Gadal A, Touraud E, et al. Hydroxy benzoate preservatives (parabens) in the environment: data for environmental toxicity assessment. Xenobiotics in the urban water cycle. 2010; 245-57.
16. Dobbins LL, Usenko S, Brain RA, et al. Probabilistic ecological hazard assessment of parabens using Daphnia magna and Pimephales promelas. Environ Toxicol Chem.2009; (28): 28-53.
17. Darbre P, Aljarrah A, Miller W, et al. Concentrations of parabens in human breast tumours. J Appl Toxicol. 2004; 24(1): 5-13.
18. Smith KW, Braun JM, Williams PL, et al. Predictors and variability of urinary paraben concentrations in men and women, including before and during pregnancy. Environ Health Persp. 2012; 120(1): 1538-43.
19. Crinnion WJ. Toxic effects of the easily avoidable phthalates and parabens. Alternative medicine review: a journal of clinical therapeutic. 2010; 15(3): 190-6.
20. Moos RK, Angerer J, Wittsiepe J, et al. Rapid determination of nine parabens and seven other environmental phenols in urine samples of German children and adults. Int J Hyg Envir Heal. 2014; 217(8): 845-53.
21. Albero B, Pérez RA, Sánchez-Brunete C, et al. Occurrence and analysis of parabens in municipal sewage sludge from wastewater treatment plants in Madrid(Spain). J Hazard Mater. 2012; 239: 48-55.
22. Benijts T, Lambert W, De Leenheer A. Analysis of multiple endocrine disruptors in environmental waters via wide-spectrum solid-phase extraction and dual-polarity ionization LC-ion trap-MS/MS. Analytical chemistry. 2004; 76(3): 704-11.
23. Cabaleiro N, De La Calle I, Bendicho C, et al. An overview of sample preparation for the determination of parabens in cosmetics. TrAC Trends in Analytical Chemistry. 2014; 57: 34-46.
24. Li W, Shi Y, Gao L et al. Occurrence, fate and risk assessment of parabens and their chlorinated derivatives in an advanced wastewater treatment plant. Journal of hazardous materials. 2015; 300: 29-38.
25. Lee H-B, Peart TE, Svoboda ML. Determination of endocrine-disrupting phenols, acidic pharmaceuticals, and personal-care products in sewage by solid-phase extraction and gas chromatography–mass spectrometry. J Chromatogr A. 2005; 1094(1): 122-9.
26. Canosa P, Rodríguez I, Rubí E, et al. Optimisation of a solid-phase microextraction method for the determination of parabens in water samples at the low ng per litre level.J Chromatogr A. 2006; 1124(1): 3-10.
27. Terasaki M, Takemura Y, Makino M. Parabenchlorinated derivatives in river waters. Environmental chemistry letters. 2012; 10(4): 401-6.
28. Jonkers N, Kohler H-PE, Dammshäuser A, et al. Mass flows of endocrine disruptors in the Glatt River during varying weather conditions. Environ Pollut. 2009; 157(3): 714-23.
29. Andersen HR,Lundsbye M, Wedel H, et al. Estrogenic personal care products in a greywater reuse system. Water Sci Technol. 2007; 56(12): 45-50.
30. Kasprzyk-Hordern B, Dinsdale RM, Guwy AJ. The removal of pharmaceuticals, personal care products, endocrine disruptors and illicit drugs during wastewater treatment and its impact on the quality of receiving waters. Water Res. 2009; 43(2): 363-80.
31. Sahar E, Messalem R, Cikurel H, et al. Fate of antibiotics in activated sludge followed by ultrafiltration (CAS-UF) and in a membrane bioreactor (MBR). Water Res. 2011;45(16): 4827-36
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Yegane Badi M, Fallah Jokandan S, Rezaei Nia S, Esrafili A, Farzad Kia M, Gholami M. Monitoring of Para-Hydroxy Benzoic Acid Esters (Antimicrobial and Preservative) in Tehran Wastewater Treatment Plants and Performance Evaluation of Various Wastewater Treatment Method in the Removal of These Compounds. jehe 2016; 3 (4) :259-269
URL: http://jehe.abzums.ac.ir/article-1-267-en.html


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Volume 3, Issue 4 (9-2016) Back to browse issues page
مجله مهندسی بهداشت محیط Journal of Environmental Health Enginering
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