Skip navigation

DSpace

機構典藏 DSpace 系統致力於保存各式數位資料(如:文字、圖片、PDF)並使其易於取用。

點此認識 DSpace
DSpace logo
English
中文
  • 瀏覽論文
    • 校院系所
    • 出版年
    • 作者
    • 標題
    • 關鍵字
    • 指導教授
  • 搜尋 TDR
  • 授權 Q&A
    • 我的頁面
    • 接受 E-mail 通知
    • 編輯個人資料
  1. NTU Theses and Dissertations Repository
  2. 公共衛生學院
  3. 食品安全與健康研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/91854
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor陳家揚zh_TW
dc.contributor.advisorChia-Yang Chenen
dc.contributor.author師玉珊zh_TW
dc.contributor.authorYu-Shan Shihen
dc.date.accessioned2024-02-23T16:18:24Z-
dc.date.available2026-01-31-
dc.date.copyright2024-02-23-
dc.date.issued2024-
dc.date.submitted2024-01-31-
dc.identifier.citationNapper, I.E. and Thompson, R.C., Environmental deterioration of biodegradable, oxo-biodegradable, compostable, and conventional plastic carrier bags in the sea, soil, and open-air over a 3-year period. Environmental science & technology, 2019. 53(9): p. 4775-4783.
Skoczinski, P., Krause, L., Raschka, A., Dammer, L., and Carus, M., Current status and future development of plastics: Solutions for a circular economy and limitations of environmental degradation, in Methods in enzymology. Elsevier, 2021. p. 1-26.
Hahladakis, J.N., Velis, C.A., Weber, R., Iacovidou, E., and Purnell, P., An overview of chemical additives present in plastics: Migration, release, fate and environmental impact during their use, disposal and recycling. Journal of hazardous materials, 2018. 344: p. 179-199.
Godwin, A.D., Plasticizers, in Applied plastics engineering handbook. Elsevier, 2017. p. 533-553.
PlasticsEurope. Plastics – the fast Facts 2023. Available from: https://plasticseurope.org/knowledge-hub/plastics-the-fast-facts-2023/. Accessed [26 December 2023]
Fréry, N., Santonen, T., Porras, S.P., Fucic, A., Leso, V., Bousoumah, R., et al., Biomonitoring of occupational exposure to phthalates: A systematic review. International Journal of Hygiene and Environmental Health, 2020. 229: p. 113548.
Billings, A., Jones, K.C., Pereira, M.G., and Spurgeon, D.J., Plasticisers in the terrestrial environment: sources, occurrence and fate. Environmental Chemistry, 2021. 18(3): p. 111-130.
Hidalgo-Serrano, M., Borrull, F., Marcé, R.M., and Pocurull, E., Phthalate esters in marine ecosystems: analytical methods, occurrence and distribution. TrAC Trends in Analytical Chemistry, 2022. 151: p. 116598.
Chang, W.-H., Herianto, S., Lee, C.-C., Hung, H., and Chen, H.-L., The effects of phthalate ester exposure on human health: A review. Science of the total environment, 2021. 786: p. 147371.
Koniecki, D., Wang, R., Moody, R.P., and Zhu, J., Phthalates in cosmetic and personal care products: concentrations and possible dermal exposure. Environmental research, 2011. 111(3): p. 329-336.
Bao, J., Wang, M., Ning, X., Zhou, Y., He, Y., Yang, J., et al., Phthalate concentrations in personal care products and the cumulative exposure to female adults and infants in Shanghai. Journal of Toxicology and Environmental Health, Part A, 2015. 78(5): p. 325-341.
Hou, H., Min, Y., Liu, X., Wang, P., Zhou, Z., and Liu, D., Occurrence and migration of phthalates in adhesive materials to fruits and vegetables. Journal of Hazardous Materials, 2021. 418: p. 126277.
Fierens, T., Servaes, K., Van Holderbeke, M., Geerts, L., De Henauw, S., Sioen, I., et al., Analysis of phthalates in food products and packaging materials sold on the Belgian market. Food and Chemical Toxicology, 2012. 50(7): p. 2575-2583.
Van Holderbeke, M., Geerts, L., Vanermen, G., Servaes, K., Sioen, I., De Henauw, S., et al., Determination of contamination pathways of phthalates in food products sold on the Belgian market. Environmental research, 2014. 134: p. 345-352.
Pecht, M.G., Ali, I., and Carlson, A., Phthalates in electronics: the risks and the alternatives. Ieee Access, 2017. 6: p. 6232-6242.
Li, H.-L., Ma, W.-L., Liu, L.-Y., Zhang, Z., Sverko, E., Zhang, Z.-F., et al., Phthalates in infant cotton clothing: Occurrence and implications for human exposure. Science of the Total Environment, 2019. 683: p. 109-115.
Malarvannan, G., Onghena, M., Verstraete, S., van Puffelen, E., Jacobs, A., Vanhorebeek, I., et al., Phthalate and alternative plasticizers in indwelling medical devices in pediatric intensive care units. Journal of hazardous materials, 2019. 363: p. 64-72.
Lovekamp-Swan, T. and Davis, B.J., Mechanisms of phthalate ester toxicity in the female reproductive system. Environmental health perspectives, 2003. 111(2): p. 139-145.
Fang, H., Wang, H., Zeng, C., Fu, H., Zhao, B., Liu, A., et al., A preliminary cumulative risk assessment of Diethylhexyl phthalate and Dibutyl phthalate based on the inhibition of embryonic development via the PPARγ pathway. Toxicology in Vitro, 2022. 84: p. 105430.
Kim, J.H. and Kim, S.H., Exposure to phthalate esters and the risk of endometriosis. Development & Reproduction, 2020. 24(2): p. 71.
Huang, H.-B., Kuo, P.-H., Su, P.-H., Sun, C.-W., Chen, W.J., and Wang, S.-L., Prenatal and childhood exposure to phthalate diesters and neurobehavioral development in a 15-year follow-up birth cohort study. Environmental research, 2019. 172: p. 569-577.
Nidens, N., Vogel, M., Körner, A., and Kiess, W., Prenatal exposure to phthalate esters and its impact on child development. Best Practice & Research Clinical Endocrinology & Metabolism, 2021. 35(5): p. 101478.
Hlisníková, H., Petrovičová, I., Kolena, B., Šidlovská, M., and Sirotkin, A., Effects and mechanisms of phthalates’ action on reproductive processes and reproductive health: a literature review. International journal of environmental research and public health, 2020. 17(18): p. 6811.
Wu, H., Ma, K., and Na, X., Rosmarinic acid alleviates di-2-ethylhexyl phthalate (DEHP)-induced thyroid dysfunction via multiple inflammasomes activation. The Journal of Toxicological Sciences, 2020. 45(7): p. 373-390.
Su, T.-C., Hwang, J.-J., Sun, C.-W., and Wang, S.-L., Urinary phthalate metabolites, coronary heart disease, and atherothrombotic markers. Ecotoxicology and environmental safety, 2019. 173: p. 37-44.
Zeng, G., Zhang, Q., Wang, X., and Wu, K.-H., Low-level plasticizer exposure and all-cause and cardiovascular disease mortality in the general population. Environmental Health, 2022. 21(1): p. 32.
Zhu, X., Yin, T., Yue, X., Liao, S., Cheang, I., Zhu, Q., et al., Association of urinary phthalate metabolites with cardiovascular disease among the general adult population. Environmental Research, 2021. 202: p. 111764.
Gopalakrishnan, K., Aushev, V.N., Manservisi, F., Falcioni, L., Panzacchi, S., Belpoggi, F., et al., Gene expression profiles for low-dose exposure to diethyl phthalate in rodents and humans: a translational study with implications for breast carcinogenesis. Scientific Reports, 2020. 10(1): p. 7067.
Hsieh, T.H., Tsai, C.F., Hsu, C.Y., Kuo, P.L., Lee, J.N., Chai, C.Y., et al., Phthalates induce proliferation and invasiveness of estrogen receptor‐negative breast cancer through the AhR/HDAC6/c‐Myc signaling pathway. The FASEB Journal, 2012. 26(2): p. 778-787.
Zhu, M., Huang, C., Ma, X., Wu, R., Zhu, W., Li, X., et al., Phthalates promote prostate cancer cell proliferation through activation of ERK5 and p38. Environmental Toxicology and Pharmacology, 2018. 63: p. 29-33.
Zhu, M., Wu, J., Ma, X., Huang, C., Wu, R., Zhu, W., et al., Butyl benzyl phthalate promotes prostate cancer cell proliferation through miR-34a downregulation. Toxicology In Vitro, 2019. 54: p. 82-88.
Giovanoulis, G., Bui, T., Xu, F., Papadopoulou, E., Padilla-Sanchez, J.A., Covaci, A., et al., Multi-pathway human exposure assessment of phthalate esters and DINCH. Environment international, 2018. 112: p. 115-126.
Cheshmazar, E., Arfaeinia, L., Vasseghian, Y., Ramavandi, B., Moradi, M., Hashemi, S.E., et al., Phthalate acid esters in pickled vegetables packaged in polyethylene terephthalate container: Occurrence, migration, and estrogenic activity-associated risk assessment. Journal of Food Composition and Analysis, 2021. 99: p. 103880.
Alp, A.C. and Yerlikaya, P., Phthalate ester migration into food: Effect of packaging material and time. European Food Research and Technology, 2020. 246: p. 425-435.
Wang, X., Zhang, Y., Huang, B., Chen, Z., Zhong, M., Lu, Q., et al., Phthalate pollution and migration in soil-air-vegetable systems in typical plastic agricultural greenhouses in northwestern China. Science of the total environment, 2022. 809: p. 151101.
Wu, Y., Eichler, C.M., Chen, S., and Little, J.C., Simple method to measure the vapor pressure of phthalates and their alternatives. Environmental Science & Technology, 2016. 50(18): p. 10082-10088.
Ishak, H., Stephan, J., Karam, R., Goutaudier, C., Mokbel, I., Saliba, C., et al., Aqueous solubility, vapor pressure and octanol-water partition coefficient of two phthalate isomers dibutyl phthalate and di-isobutyl phthalate contaminants of recycled food packages. Fluid Phase Equilibria, 2016. 427: p. 362-370.
Jebara, A., Albergamo, A., Rando, R., Potortì, A.G., Turco, V.L., Mansour, H.B., et al., Phthalates and non-phthalate plasticizers in Tunisian marine samples: Occurrence, spatial distribution and seasonal variation. Marine Pollution Bulletin, 2021. 163: p. 111967.
Han, Y., Cheng, J., Tang, Z., He, Y., and Lyu, Y., Widespread occurrence of phthalates in popular take-out food containers from China and the implications for human exposure. Journal of Cleaner Production, 2021. 290: p. 125851.
Yuan, H., Hao, Q., Su, R., Qi, W., and He, Z., Migration of phthalates from polyvinyl chloride film to fatty food simulants: experimental studies and model application. Journal of Consumer Protection and Food Safety, 2020. 15: p. 135-143.
Fang, H., Wang, J., and Lynch, R.A., Migration of di (2-ethylhexyl) phthalate (DEHP) and di-n-butylphthalate (DBP) from polypropylene food containers. Food Control, 2017. 73: p. 1298-1302.
Ma, G., Ma, B., Wang, L., and Tao, W., Occurrence and dietary exposure risks of phthalate esters in food in the typical valley city Xi’an, Northwest China. Environmental Science and Pollution Research, 2022. 29(21): p. 31426-31440.
Zeng, L.-J., Huang, Y.-H., Chen, X.-T., Chen, X.-H., Mo, C.-H., Feng, Y.-X., et al., Prevalent phthalates in air-soil-vegetable systems of plastic greenhouses in a subtropical city and health risk assessments. Science of the Total Environment, 2020. 743: p. 140755.
Wang, J., Chen, G., Christie, P., Zhang, M., Luo, Y., and Teng, Y., Occurrence and risk assessment of phthalate esters (PAEs) in vegetables and soils of suburban plastic film greenhouses. Science of the Total Environment, 2015. 523: p. 129-137.
Lee, Y.-M., Lee, J.-E., Choe, W., Kim, T., Lee, J.-Y., Kho, Y., et al., Distribution of phthalate esters in air, water, sediments, and fish in the Asan Lake of Korea. Environment International, 2019. 126: p. 635-643.
Ministry of Health and Welfare, Sanitation Standard for Food Utensils, Containers and Packages. Available from: https://law.moj.gov.tw/LawClass/LawAll.aspx?pcode=L0040019. Accessed [1 December 2023]
Commission Regulation (EU) 2018/2005. Available from: https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX%3A32018R2005. Accessed [5 December 2023]
Commission Regulation (EU) 2023/1442. Available from: https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX%3A32023R1442&qid=1701783983579. Accessed [5 December 2023]
衛生福利部. 公布我國DEHP等5種鄰苯二甲酸酯類塑化劑之每日耐受量 (Tolerable Daily Intake, TDI)參考值. 2011. Available from: https://www.mohw.gov.tw/cp-16-25242-1.html. Accessed [5 December 2023]
Bui, T.T., Giovanoulis, G., Cousins, A.P., Magnér, J., Cousins, I.T., and de Wit, C.A., Human exposure, hazard and risk of alternative plasticizers to phthalate esters. Science of the total environment, 2016. 541: p. 451-467.
Edwards, L., McCray, N.L., VanNoy, B.N., Yau, A., Geller, R.J., Adamkiewicz, G., et al., Phthalate and novel plasticizer concentrations in food items from US fast food chains: a preliminary analysis. Journal of exposure science & environmental epidemiology, 2022. 32(3): p. 366-373.
Han, Z. and Liu, H., Conceptual design of novel self-heating reactors for bisphenol A (BPA) synthesis with improved performance. Chemical Engineering Research and Design, 2023. 194: p. 487-496.
Merchant Research and Consulting Itd, A Closer Look at the Global Bisphenol A Market: Demand, Regulations & Sustainability. 2023. Available from: https://mcgroup.co.uk/news/20230711/a-closer-look-at-the-global-bisphenol-a-market-demand-regulations-sustainability.html. Accessed [5 December 2023]
Mordor Intelligence, Bisphenol-A Market Size & Share Analysis - Growth Trends & Forecasts (2023 - 2028). Available from: https://www.mordorintelligence.com/industry-reports/bisphenol-a-bpa-market. Accessed [5 December 2023]
Cooper, J.E., Kendig, E.L., and Belcher, S.M., Assessment of bisphenol A released from reusable plastic, aluminium and stainless steel water bottles. Chemosphere, 2011. 85(6): p. 943-947.
Cunha, S. and Fernandes, J., Assessment of bisphenol A and bisphenol B in canned vegetables and fruits by gas chromatography–mass spectrometry after QuEChERS and dispersive liquid–liquid microextraction. Food Control, 2013. 33(2): p. 549-555.
Munguia-Lopez, E.M., Peralta, E., Gonzalez-Leon, A., Vargas-Requena, C., and Soto-Valdez, H., Migration of bisphenol A (BPA) from epoxy can coatings to jalapeno peppers and an acid food simulant. Journal of agricultural and food chemistry, 2002. 50(25): p. 7299-7302.
Xue, B., Tang, R., Xue, D., Guan, Y., Sun, Y., Zhao, W., et al., Sustainable alternative for bisphenol A epoxy resin high-performance and recyclable lignin-based epoxy vitrimers. Industrial Crops and Products, 2021. 168: p. 113583.
Zhang, N., Scarsella, J.B., and Hartman, T.G., Identification and quantitation studies of migrants from BPA alternative food-contact metal can coatings. Polymers, 2020. 12(12): p. 2846.
Garrison, M.D., Storch, P.J., Eck, W.S., Adams, V.H., Fedick, P.W., and Harvey, B.G., BPA-free high-performance sustainable polycarbonates derived from non-estrogenic bio-based phenols. Green Chemistry, 2021. 23(20): p. 8016-8029.
Liu, Y. and Lu, X.B., Chemical recycling to monomers: Industrial Bisphenol‐A‐Polycarbonates to novel aliphatic polycarbonate materials. Journal of Polymer Science, 2022. 60(24): p. 3256-3268.
Sungur, Ş., Köroğlu, M., and Özkan, A., Determinatıon of bisphenol a migrating from canned food and beverages in markets. Food chemistry, 2014. 142: p. 87-91.
Amir, S., Shah, S.T.A., Mamoulakis, C., Docea, A.O., Kalantzi, O.-I., Zachariou, A., et al., Endocrine disruptors acting on estrogen and androgen pathways cause reproductive disorders through multiple mechanisms: a review. International Journal of Environmental Research and Public Health, 2021. 18(4): p. 1464.
Cariati, F., Carbone, L., Conforti, A., Bagnulo, F., Peluso, S.R., Carotenuto, C., et al., Bisphenol A-induced epigenetic changes and its effects on the male reproductive system. Frontiers in endocrinology, 2020. 11: p. 453.
Cimmino, I., Fiory, F., Perruolo, G., Miele, C., Beguinot, F., Formisano, P., et al., Potential mechanisms of bisphenol A (BPA) contributing to human disease. International journal of molecular sciences, 2020. 21(16): p. 5761.
Pirozzi, C., Lama, A., Annunziata, C., Cavaliere, G., Ruiz-Fernandez, C., Monnolo, A., et al., Oral bisphenol A worsens liver immune-metabolic and mitochondrial dysfunction induced by high-fat diet in adult mice: cross-talk between oxidative stress and inflammasome pathway. Antioxidants, 2020. 9(12): p. 1201.
Yin, N., Liang, X., Liang, S., Liang, S., Yang, R., Hu, B., et al., Embryonic stem cell-and transcriptomics-based in vitro analyses reveal that bisphenols A, F and S have similar and very complex potential developmental toxicities. Ecotoxicology and environmental safety, 2019. 176: p. 330-338.
Ma, Y., Liu, H., Wu, J., Yuan, L., Wang, Y., Du, X., et al., The adverse health effects of bisphenol A and related toxicity mechanisms. Environmental research, 2019. 176: p. 108575.
Cwiek-Ludwicka, K., Bisphenol A (BPA) in food contact materials-new scientific opinion from EFSA regarding public health risk. Roczniki Państwowego Zakładu Higieny, 2015. 66(4).
Geens, T., Aerts, D., Berthot, C., Bourguignon, J.-P., Goeyens, L., Lecomte, P., et al., A review of dietary and non-dietary exposure to bisphenol-A. Food and chemical toxicology, 2012. 50(10): p. 3725-3740.
Lim, D.S., Kwack, S.J., Kim, K.-B., Kim, H.S., and Lee, B.M., Potential risk of bisphenol A migration from polycarbonate containers after heating, boiling, and microwaving. Journal of Toxicology and Environmental Health, Part A, 2009. 72(21-22): p. 1285-1291.
Nam, S.-H., Seo, Y.-M., and Kim, M.-G., Bisphenol A migration from polycarbonate baby bottle with repeated use. Chemosphere, 2010. 79(9): p. 949-952.
Vilarinho, F., Sendón, R., Van der Kellen, A., Vaz, M., and Silva, A.S., Bisphenol A in food as a result of its migration from food packaging. Trends in food science & technology, 2019. 91: p. 33-65.
Adeyi, A.A. and Babalola, B.A., Bisphenol-A (BPA) in foods commonly consumed in Southwest Nigeria and its human health risk. Scientific reports, 2019. 9(1): p. 17458.
Commission Regulation (EU) 2018/213. Available from: https://www.legislation.gov.uk/eur/2018/213/2018-02-12. Accessed [5 December 2023]
EFSA Panel on Food Contact Materials, E., Aids, P., Lambré, C., Barat Baviera, J.M., Bolognesi, C., Chesson, A., et al., Re‐evaluation of the risks to public health related to the presence of bisphenol A (BPA) in foodstuffs. EFSA Journal, 2023. 21(4): p. e06857.
European Food Safety Authority, Bisphenol A. Available from: https://www.efsa.europa.eu/en/topics/topic/bisphenol. Accessed [5 December 2023]
Adegoke, E.O., Rahman, M.S., and Pang, M.-G., Bisphenols threaten male reproductive health via testicular cells. Frontiers in Endocrinology, 2020. 11: p. 624.
Qiu, W., Liu, S., Chen, H., Luo, S., Xiong, Y., Wang, X., et al., The comparative toxicities of BPA, BPB, BPS, BPF, and BPAF on the reproductive neuroendocrine system of zebrafish embryos and its mechanisms. Journal of hazardous materials, 2021. 406: p. 124303.
Qiu, W., Shao, H., Lei, P., Zheng, C., Qiu, C., Yang, M., et al., Immunotoxicity of bisphenol S and F are similar to that of bisphenol A during zebrafish early development. Chemosphere, 2018. 194: p. 1-8.
Hidalgo-Serrano, M., Borrull, F., Marcé, R.M., and Pocurull, E., Simple method for determining phthalate diesters and their metabolites in seafood species using QuEChERS extraction and liquid chromatography-high resolution mass spectrometry. Food Chemistry, 2021. 336: p. 127722.
Zhang, T., Ma, B., and Wang, L., Phthalic acid esters in grains, vegetables, and fruits: Concentration, distribution, composition, bio-accessibility, and dietary exposure. Environmental Science and Pollution Research, 2023. 30(2): p. 2787-2799.
González, N., Cunha, S.C., Ferreira, R., Fernandes, J.O., Marquès, M., Nadal, M., et al., Concentrations of nine bisphenol analogues in food purchased from Catalonia (Spain): Comparison of canned and non-canned foodstuffs. Food and Chemical Toxicology, 2020. 136: p. 110992.
Xia, L., Yang, J., Su, R., Zhou, W., Zhang, Y., Zhong, Y., et al., Recent progress in fast sample preparation techniques. Analytical Chemistry, 2019. 92(1): p. 34-48.
Maragou, N.C., Lampi, E.N., Thomaidis, N.S., and Koupparis, M.A., Determination of bisphenol A in milk by solid phase extraction and liquid chromatography–mass spectrometry. Journal of Chromatography A, 2006. 1129(2): p. 165-173.
Tuzimski, T. and Szubartowski, S., Method development for selected bisphenols analysis in sweetened condensed milk from a can and breast milk samples by HPLC–DAD and HPLC-QqQ-MS: Comparison of sorbents (Z-SEP, Z-SEP Plus, PSA, C18, Chitin and EMR-Lipid) for clean-up of QuEChERS extract. Molecules, 2019. 24(11): p. 2093.
Xu, D., Deng, X., Fang, E., Zheng, X., Zhou, Y., Lin, L., et al., Determination of 23 phthalic acid esters in food by liquid chromatography tandem mass spectrometry. Journal of Chromatography A, 2014. 1324: p. 49-56.
Kanu, A.B., Recent developments in sample preparation techniques combined with high-performance liquid chromatography: A critical review. Journal of Chromatography A, 2021. 1654: p. 462444.
López-Bascón, M. and De Castro, M.L., Soxhlet extraction, in Liquid-phase extraction. 2020, Elsevier. p. 327-354.
Wu, P.-G., Pan, X.-D., Ma, B.-J., Wang, L.-Y., and Zhang, J., Determination of phthalate esters in non-alcoholic beverages by GC–MS and optimization of the extraction conditions. European Food Research and Technology, 2014. 238: p. 607-612.
Pil-Bala, B., Khandaghi, J., and Afshar Mogaddam, M.R., Analysis of endocrine-disrupting compounds from cheese samples using pressurized liquid extraction combined with dispersive liquid–liquid microextraction followed by high-performance liquid chromatography. Food Analytical Methods, 2019. 12(7): p. 1604-1611.
Torres-Torres, E., Montiel, C., Araiza-Olivera, D., Gutierrez-Aguilar, M., Gimeno, M., and García-Arrazola, R., Extracting endocrine disrupting compounds from infant formula using supercritical carbon dioxide. The Journal of Supercritical Fluids, 2019. 152: p. 104554.
Black, G.P., Woodward, E.E., Sanders, C.J., Gross, M.S., and Hladik, M.L., Multiresidue extraction of current-use pesticides from complex solid matrices using energized dispersive guided extraction with analysis by gas and liquid chromatography tandem mass spectroscopy. Chemosphere, 2023. 327: p. 138550.
C.E.M. Corporation, Automated Solvent Extraction System EDGE. Available from: https://cem.com/edge. Accessed [5 December 2023]
C.E.M. Corporation, CEM EDGE Brochure. Available from: https://www.gaiascience.com.my/uploads/catalogs/Gaia_Science_CEM_EDGE_Brochure.pdf. Accessed [5 December 2023]
Kinross, A.D., Hageman, K.J., Doucette, W.J., and Foster, A.L., Comparison of Accelerated Solvent Extraction (ASE) and Energized Dispersive Guided Extraction (EDGE) for the analysis of pesticides in leaves. Journal of Chromatography A, 2020. 1627: p. 461414.
Lu, L., Yang, Y., Zhang, J., and Shao, B., Determination of seven bisphenol analogues in reed and Callitrichaceae by ultra performance liquid chromatography–tandem mass spectrometry. Journal of Chromatography B, 2014. 953: p. 80-85.
Diamantidou, D., Begou, O., Theodoridis, G., Gika, H., Tsochatzis, E., Kalogiannis, S., et al., Development and validation of an ultra high performance liquid chromatography-tandem mass spectrometry method for the determination of phthalate esters in Greek grape marc spirits. Journal of Chromatography A, 2019. 1603: p. 165-178.
Fan, J.-c., Wu, L., Wang, X.-f., Huang, X.-h., Jin, Q., and Wang, S.-t., Determination of the migration of 20 phthalate esters in fatty food packaged with different materials by solid-phase extraction and UHPLC–MS/MS. Analytical Methods, 2012. 4(12): p. 4168-4175.
Bajic, S., Waters UniSpray Ionization Source. Wilmslow, Iso-Britannia: Waters Corporation, 2017.
Galani, J.H.Y., Houbraken, M., Van Hulle, M., and Spanoghe, P., Comparison of electrospray and UniSpray, a novel atmospheric pressure ionization interface, for LC-MS/MS analysis of 81 pesticide residues in food and water matrices. Analytical and bioanalytical chemistry, 2019. 411: p. 5099-5113.
張又儒, 以自動加壓流體萃取搭配極致液相層析/串聯式質譜術分析食品中鄰苯二甲酸酯類及雙酚類化合物. 國立臺灣大學環境與職業健康科學研究所, 2022. Chang, Y.R., Determination of phthalate esters and bisphenols in food using energized dispersive guided extraction and ultra-performance liquid chromatography/tandem mass spectrometry. 2022.
Guo, Y. and Kannan, K., Challenges encountered in the analysis of phthalate esters in foodstuffs and other biological matrices. Analytical and bioanalytical chemistry, 2012. 404: p. 2539-2554.
郭宣妤, 以超音波萃取搭配即時直接分析串聯式質譜術半定量食品包材中鄰苯二甲酸酯類與雙酚類.國立臺灣大學環境與職業健康科學研究所, 2022. Guo, X.Y., Semi-quantitative determination of phthalate esters, bisphenols and their alternatives in food packaging with ultrasonic extraction and direct analysis in real time/tandem mass spectrometry. 2022.
Feng, Y.-X., Feng, N.-X., Zeng, L.-J., Chen, X., Xiang, L., Li, Y.-W., et al., Occurrence and human health risks of phthalates in indoor air of laboratories. Science of the Total Environment, 2020. 707: p. 135609.
Ma, T., Teng, Y., Christie, P., Luo, Y., Chen, Y., Ye, M., et al., A new procedure combining GC-MS with accelerated solvent extraction for the analysis of phthalic acid esters in contaminated soils. Frontiers of Environmental Science & Engineering, 2013. 7: p. 31-42.
Saliu, F., Montano, S., Lasagni, M., and Galli, P., Biocompatible solid-phase microextraction coupled to liquid chromatography triple quadrupole mass spectrometry analysis for the determination of phthalates in marine invertebrate. Journal of Chromatography A, 2020. 1618: p. 460852.
Agilent, Captiva EMR-Lipid: Product Details. Available from: https://www.agilent.com/en/product/sample-preparation/filtration/captiva-emr-lipid?gclid=EAIaIQobChMIgsOVr5KvggMV79gWBR03YwQsEAAYASAAEgKLoPD_BwE&gclsrc=aw.ds. Accessed [7 November 2023]
Agilent, Simple Steps to Maximize Lipid Removal with EMR-Lipid. Available from: https://www.agilent.com/en/video/simple-steps-to-maximize-lipid-removal-with-emr-lipid. Accessed [7 November 2023]
Slámová, T., Sadowska-Rociek, A., Fraňková, A., Surma, M., and Banout, J., Application of QuEChERS-EMR-Lipid-DLLME method for the determination of polycyclic aromatic hydrocarbons in smoked food of animal origin. Journal of Food Composition and Analysis, 2020. 87: p. 103420.
Le, Q.H.H., Tran, N.N.C., Nguyen, T.C.T., Nguyen, H.G., Lac, K.T., Pham, T.A., et al., Comparison and applicability of Agilent EMR-Lipid and Captiva EMR-Lipid Sorbents in QuEChERS method for food analysis. Vietnam Journal of Science, Technology and Engineering, 2020. 62(3): p. 19-25.
Vavrouš, A., Pavloušková, J., Ševčík, V., Vrbík, K., and Čabala, R., Solution for blank and matrix difficulties encountered during phthalate analysis of edible oils by high performance liquid chromatography coupled with tandem mass spectrometry. Journal of Chromatography A, 2016. 1456: p. 196-204.
Han, L., Matarrita, J., Sapozhnikova, Y., and Lehotay, S.J., Evaluation of a recent product to remove lipids and other matrix co-extractives in the analysis of pesticide residues and environmental contaminants in foods. Journal of Chromatography A, 2016. 1449: p. 17-29.
Agilent, Agilent Captiva EMR—Lipid Method Guide. Available from: https://www.agilent.com/cs/library/usermanuals/public/5991-8308EN.pdf. Accessed [1 December 2023]
Casajuana, N. and Lacorte, S., New methodology for the determination of phthalate esters, bisphenol A, bisphenol A diglycidyl ether, and nonylphenol in commercial whole milk samples. Journal of Agricultural and Food Chemistry, 2004. 52(12): p. 3702-3707.
Chemicals Administration Ministry of Environment, Toxic and concerned chemical substances: dichloromethane. Available from: https://www.cha.gov.tw/sp-toch-form-1873-0394f6a59dd24f06944e155309d50c6d-1.html. Accessed [7 November 2023]
Petrarca, M.H., Fernandes, J.O., Marmelo, I., Marques, A., and Cunha, S.C., Multi-analyte gas chromatography-mass spectrometry method to monitor bisphenols, musk fragrances, ultraviolet filters, and pesticide residues in seafood. Journal of Chromatography A, 2022. 1663: p. 462755.
Sun, X., Dong, W., Liu, M., Shen, C., Zhang, Y., Sun, J., et al., Validation of a QuEChERS‐based gas chromatography‐mass spectrometry (GC‐MS) method for analysis of phthalate esters in grain sorghum. Journal of food science, 2018. 83(4): p. 892-901.
Schenck, F.J., Callery, P., Gannett, P.M., Daft, J.R., and Lehotay, S.J., Comparison of magnesium sulfate and sodium sulfate for removal of water from pesticide extracts of foods. Journal of AOAC International, 2002. 85(5): p. 1177-1180.
Waters. LC-MS適用的溶劑和注意事項. Available from: https://www.waters.com/nextgen/tw/zh/education/primers/the-mass-spectrometry-primer/solvents-and-caveats-for-lcms.html. Accessed [10 Novenber 2023]
-
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/91854-
dc.description.abstract鄰苯二甲酸酯 (phthalate esters, PAEs) 為目前廣泛使用之塑化劑 (plasticizer),常用於軟化聚氯乙烯 (polyvinyl chloride, PVC) 產品。雙酚類 (bisphenols, BPs) 經常作為聚碳酸酯 (polycarbonate, PC) 與環氧樹脂 (epoxy resins) 之合成原料,並用於食品接觸容器具與金屬罐頭之內部塗層中。鄰苯二甲酸酯與雙酚類皆為已知的內分泌干擾物質 (endocrine-disrupting chemicals, EDCs),其不僅會由農作物栽種環境中吸收,還會因食品包材之滲漏而污染食品,最終人體透過攝食方式暴露這些化合物,進而造成健康危害。本實驗室先前開發了以極致液相層析搭配串聯式質譜儀同時檢測不同食品中鄰苯二甲酸酯與雙酚類化合物之方法,但因鄰苯二甲酸酯與雙酚類之背景濃度干擾,以及不佳的淨化效率,影響了待測物的定量,故本研究欲針對先前開發之樣品前處理方法進行優化。
1 g 之均質食品樣本於自動加壓流體萃取系統 (Energized Dispersive Guided Extraction, EDGE) 中進行兩個循環之萃取,每個循環使用 5 mL 的丙酮,於 65℃ (30–34 psi) 萃取 5 分鐘。萃取完成後,取 4 mL 萃取液混合 1 mL 去離子水,通過經甲醇與丙酮預洗過之 Captiva EMR-Lipid 固相萃取匣進行淨化。將淨化液濃縮至 2 mL,並經0.2-μm PTFE 濾膜後,以 Waters I-Class PLUS極致液相層析搭配Waters Xevo TQ-XS 串聯式質譜儀分析食品中 12 種鄰苯二甲酸酯與 6 種雙酚類。本研究使用 Ascentis Express F5 (30 × 2.1 mm, 2.0 μm) 管柱進行層析, UniSpray 為游離源。12 種鄰苯二甲酸酯與雙酚A二環氧甘油醚 (bisphenol A diglycidyl ether, BADGE) 於正電模式下進行梯度流析,管柱溫度 35℃,有機移動相為甲醇,水性移動相為 5 mM 醋酸胺水溶液/0.1% 醋酸水溶液 (pH 4.19),流速為 0.5 mL/min,總層析時間需 8.5 分鐘。其餘 5 種雙酚類於負電模式下進行檢測,管柱溫度為 40℃,有機移動相為甲醇,水性移動相為 Milli-Q water,流速為 0.5 mL/min,層析時間共需 7.35 分鐘。標準品配製於甲醇中,進樣體積為 2 μL,而樣品溶液丙酮/水 (1:1, v/v) 混合溶液,進樣體積為 4 μL。標準品檢量線之線性範圍介於 0.1–500 ng/mL,決定係數 r2 皆達到 0.994 以上,儀器偵測極限介於 1.04–2,658 fg,儀器定量極限則在 3.33–8,861 fg 之間。
在 Captiva EMR-Lipid 淨化過程中,選用丙酮/水 (80:20, v/v) 作為溶劑,可保留較乙腈/水 (80:20, v/v) (9.0–70.3%) 多的高分子量鄰苯二甲酸酯 (high molecular-weight PAEs, HMW PAEs) 於淨化液中,介於 47.1–81.4% 之間。 Captiva EMR-Lipid 固相萃取匣本身具高鄰苯二甲酸酯背景濃度,本研究測試了三種預洗條件: (1) 4 mL 丙酮、(2) 4 mL甲醇與 4 mL 丙酮、以及 (3) 4 mL 二氯甲烷與 4 mL 丙酮;其中利用 4 mL 甲醇與 4 mL丙酮進行預洗能最有效的降低其背景干擾。為提升樣品中待測物的濃度,將淨化液濃縮至 2 mL (含50% 的水) 並進樣 4 μL可取得良好的對稱峰型,未有管柱過載之問題。
12 種鄰苯二甲酸酯及 6 種雙酚類於地瓜葉、空心菜、雞腿肉與鮭魚的基質效應因子分別為 43.4–139%、9.4–57.9%、55.7–96.7%、以及69.4–109%,相較於富含色素的空心菜,油脂含量高的雞腿肉與鮭魚中之待測物受到的基質效應較少,故 Captiva EMR-Lipid 固相萃取匣可能較適用於淨化動物性樣本,植物性樣本之淨化程序需再重新設計。18 種目標分析物於地瓜葉與鮭魚的萃取效率分別介於 0.1–34.6% 與 0.9–163% 之間,其中高分子量鄰苯二甲酸酯皆低於 20%。由於前處理過程中高分子量鄰苯二甲酸酯與其內標的損失會對定量造成影響,未來需設法提升其萃取效率。
zh_TW
dc.description.abstractPhthalate esters (PAEs) are widely used as plasticizers for softening rigid plastics, such as polyvinyl chloride (PVC). Bisphenols (BPs) are the monomers used to produce polycarbonate plastics and epoxy resins, which are used in food and beverage contact appliances. PAEs and BPs are endocrine disruptors that can be absorbed from the environment into cultivated plants and leach from food contact materials to foodstuffs, leading to human exposure via ingestion and causing adverse health effects. Our laboratory developed a method for determining 12 PAEs and six BPs in food simultaneously using ultra-performance liquid chromatography coupled with tandem mass spectrometry (UPLC-MS/MS); however, the deficient cleanup efficiency and the backgrounds of PAEs and BPs from sample preparation processes affected the quantification of these compounds. Therefore, this study aimed to optimize the sample preparation steps.
One gram of homogenized food samples were extracted twice with 5 mL of acetone at 65℃ (30–34 psi) for 5 minutes using energized dispersive guided extraction (EDGE) system. After the extraction, 4 mL of the extracts were mixed with 1 mL of Milli-Q water, then were cleaned up by a methanol/acetone-prewashed Captiva EMR-Lipid cartridge. The cleanup eluents were concentrated to 2 mL and were filtered by 0.2-μm PTFE syringe filters, and 12 PAEs and six BPs in the extract were analyzed with UPLC-MS/MS. Ascentis Express F5 (30 × 2.1 mm, 2.0 μm) column and UniSpray were used for chromatographic separation and ionization of the analytes, respectively. 12 PAEs and BADGE were detected at positive mode; the column temperature was 35℃, and the mobile phases were composed of 5-mM ammonium acetate/0.1% acetic acid(aq) (pH 4.19) and methanol; the flow rate was 0.5 mL/min, and the total chromatographic time was 8.5 minutes. Five BPs were analyzed at negative mode; the column temperature was 40℃, and the mobile phases were composed of Milli-Q water and methanol; the flow rate was 0.5 mL/min, and the total chromatographic time was 7.35 minutes. The injection volumes of standard solutions and samples were 2 μL and 4 μL, respectively. The linear ranges of calibration curves were 0.1−500 ng/mL with the coefficient of determination (r2) greater than 0.994. The instrumental detection limits (IDLs) were 1.04–2,658 fg, and the instrumental quantitation limits (IQLs) ranged from 3.33–8,861 fg.
After passing through the Captiva EMR-Lipid cartridge, acetone/water (80:20, v/v) kept more high molecular-weight (HMW) PAEs (47.1–81.4%) in the cleanup eluents than those with acetonitrile/water (80:20, v/v) (9.0–70.3%). Owing to the high background levels of PAEs in Captiva EMR-Lipid cartridge, prewashing the cartridges with 4 mL of methanol followed by 4 mL of acetone was the most efficient method for reducing the background levels compared with other prewash combinations, which were (1) 4 mL of acetone and (2) 4 mL of dichloromethane followed by 4 mL of acetone. To increase the concentrations of analytes, the eluents were concentrated to 2 mL (with 50% water) and injected 4 μL into UPLC-MS/MS, which provided good peak shapes of all analytes (no fronting peaks).
The matrix effect factors of 12 PAEs and six BPs in sweet potato leaves, water spinach, chicken, and salmon were 43.4–139%, 9.4–57.9%, 55.7–96.7%, and 69.4–109%, respectively; PAEs and BPs in lipid-rich chicken and salmon samples were subjected to less ion suppression than those in pigment-rich water spinach, which meant Captiva EMR-Lipid cartridges were suitable for the cleanup of animal foods, and the cleanup procedure for plant foods needs to be improved. The extraction efficiencies of the 18 analytes in sweet potato leaves and salmon ranged between 0.1–34.6% and 0.9–163%, respectively; among these, the extraction efficiencies of HMW PAEs were lower than 20%. Due to the loss of HMW PAEs and their ISTDs during sample preparation processes, the sample pretreatment steps required further optimization to increase the extraction efficiencies of these compounds.
en
dc.description.provenanceSubmitted by admin ntu (admin@lib.ntu.edu.tw) on 2024-02-23T16:18:24Z
No. of bitstreams: 0
en
dc.description.provenanceMade available in DSpace on 2024-02-23T16:18:24Z (GMT). No. of bitstreams: 0en
dc.description.tableofcontents口試委員會審定書 i
誌謝 ii
中文摘要 iii
Abstract v
Contents viii
List of figures xi
List of tables xiii
Chapter 1 Introduction 1
1.1 Phthalate esters (PAEs) and their substitutes 1
1.2 Bisphenol A (BPA) and its analogs 5
1.3 Analytical methods for PAEs and BPs in foods 7
1.4 Objectives 10
Chapter 2 Material and Methods 11
2.1 Chemicals and reagents 11
2.2 Sample collection 17
2.3 Sample preparation 17
2.4 Instrumental analysis 20
2.4.1 Mass spectrometric conditions 21
2.4.2 Ultra-performance liquid chromatographic conditions 24
2.5 The tests for optimizing EDGE extraction step 26
2.5.1 The remaining percentage of PAEs and BPs in the extracts after EDGE extraction 26
2.5.2 EDGE wash methods (carry-over test) 27
2.5.3 Extraction efficiency of PAEs and BPs in salmon mixed with and without glass beads 29
2.6 The tests for optimizing cleanup method 30
2.6.1 Organic solvent for Captiva EMR-Lipid cartridges cleanup 30
2.6.2 Prewash Captiva EMR-Lipid cartridges test 30
2.6.3 Matrix effect of PAEs and BPs in plant and animal foods (cleanup adsorbent: Captiva EMR-Lipid cartridges) 31
2.6.4 The remaining percentage of PAEs and BPs in cleanup eluent after cleaning up with ENVI-Carb cartridge 32
2.6.5 Matrix effect of PAEs and BPs in sweet potato leaves (cleanup adsorbent: ENVI-Carb cartridges) 32
2.7 The test for optimizing concentrated volume 33
2.8 Extraction efficiency of PAEs and BPs in plant and animal foods (cleanup adsorbent: Captiva EMR-Lipid cartridges) 34
2.9 Identification, quantitation, and data analysis 34
2.10 Quality assurance and quality control 36
2.11 Statistical analysis 37
Chapter 3 Results and Discussion 38
3.1 Optimization of EDGE extraction program 38
3.1.1 The loss of analytes during EDGE extraction 38
3.1.2 EDGE wash methods 40
3.1.3 Mixed salmon with glass beads before extraction 45
3.2 Optimization of cleanup method 49
3.2.1 Organic solvent for Captiva EMR-Lipid cartridges cleanup 50
3.2.2 The prewash protocol of Captiva EMR-Lipid cartridges 52
3.2.3 Matrix effect of PAEs and BPs in plant and animal foods 55
3.2.4 ENVI-Carb cartridges for cleanup of sweet potato leaves 57
3.3 Optimization of concentration and chromatographic conditions 60
3.3.1 Water removal step (after Captiva EMR-Lipid cartridge cleanup) 60
3.3.2 Concentrated volume and chromatographic conditions 61
3.4 Extraction efficiency of PAEs and BPs 72
3.5 Instrumental identification and quantification 75
3.6 Limitation and Future work 77
Chapter 4 Conclusion 78
Reference 80
Supplement 93
-
dc.language.isoen-
dc.subject自動加壓流體萃取系統zh_TW
dc.subjectCaptiva EMR-Lipid 固相萃取匣zh_TW
dc.subjectUniSpray游離源zh_TW
dc.subject內分泌干擾物質zh_TW
dc.subjectCaptiva EMR-Lipid cartridgeen
dc.subjectUniSpray ionizationen
dc.subjectenergized dispersive guided extractionen
dc.subjectendocrine-disrupting chemicalen
dc.title以極致液相層析串聯式質譜術分析食品中鄰苯二甲酸酯類與雙酚類化合物—樣品前處理方法優化zh_TW
dc.titleDetermination of Phthalate Esters and Bisphenols in Food with Ultra-Performance Liquid Chromatography/Tandem Mass Spectrometry — Optimization of Sample Preparationen
dc.typeThesis-
dc.date.schoolyear112-1-
dc.description.degree碩士-
dc.contributor.oralexamcommittee蔡詩偉;陳宏彰;洪偉倫zh_TW
dc.contributor.oralexamcommitteeShih-Wei Tsai;Hong-Jhang Chen;Wei-Lun Hungen
dc.subject.keyword自動加壓流體萃取系統,Captiva EMR-Lipid 固相萃取匣,UniSpray游離源,內分泌干擾物質,zh_TW
dc.subject.keywordenergized dispersive guided extraction,Captiva EMR-Lipid cartridge,UniSpray ionization,endocrine-disrupting chemical,en
dc.relation.page101-
dc.identifier.doi10.6342/NTU202400394-
dc.rights.note未授權-
dc.date.accepted2024-01-31-
dc.contributor.author-college公共衛生學院-
dc.contributor.author-dept食品安全與健康研究所-
顯示於系所單位:食品安全與健康研究所

文件中的檔案:
檔案 大小格式 
ntu-112-1.pdf
  未授權公開取用
4.73 MBAdobe PDF
顯示文件簡單紀錄


系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。

社群連結
聯絡資訊
10617臺北市大安區羅斯福路四段1號
No.1 Sec.4, Roosevelt Rd., Taipei, Taiwan, R.O.C. 106
Tel: (02)33662353
Email: ntuetds@ntu.edu.tw
意見箱
相關連結
館藏目錄
國內圖書館整合查詢 MetaCat
臺大學術典藏 NTU Scholars
臺大圖書館數位典藏館
本站聲明
© NTU Library All Rights Reserved