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Articles

Chromatographic analysis of dithiocarbamate residues and their metabolites in foods employed in dietary exposure studies—a review

ORCID Icon &
Pages 1731-1743 | Received 19 Apr 2022, Accepted 12 Jul 2022, Published online: 25 Jul 2022

References

  • Al-Alam J, Bom L, Chbani A, Fajloun Z, Millet M. 2017. Analysis of dithiocarbamate fungicides in vegetable matrices using HPLC-UV followed by atomic absorption spectrometry. J Chromatogr Sci. 55(4):429–435. doi:10.1093/chromsci/bmw198
  • Arslan S, Mert ID, Yiğitkaya S, Dagaşan O, Sakallı FN, Oztürk S. 2019. The false positive effect of residue of sulphur sources on dithiocarbamate analysis based on CS2 measurement. Food Addit Contam A. 36(1):131–140. doi:10.1080/19440049.2018.1562235
  • Bardarov V, Zaikov C, Mitewa M. 1989. Application of high-performance liquid chromatography with spectrophotometric and electrochemical detection to the analysis of alkylenebis(dithiocarbamates) and their metabolites. J Chromatogr. 479:97–105. doi:10.1016/S0021-9673(01)83320-3
  • Blasco C, Font G, Pico Y. 2004. Determination of dithiocarbamates and metabolites in plants by liquid chromatography–mass spectrometry. J Chromatogr A. 1028(2):267–276. doi:10.1016/j.chroma.2003.12.002
  • Brewin S, Miller C, Khoshab A. 2008. The LC-MS/MS ethylene bisdithiocarbamate (EBDC) analytical method – a comparison with the CS2 analysis technique on wheat samples generated from field trials. 7th European Pesticide Residues Workshop (EPRW), Book of Abstracts, Berlin, Germany, 2008, p. 142.
  • Charoenkitamorn K, Chailapakul O, Siangproh W. 2015. Development of gold nanoparticles modified screen-printed carbon electrode for the analysis of thiram and their derivative in food using ultra-high performance liquid chromatography. Talanta 132:416–423. doi:10.1016/j.talanta.2014.09.020
  • Chung SWC, Lam CH. 2012. Development and validation of a method for determination of residues of 15 pyrethroids and two metabolites of dithiocarbamates in foods by ultra-performance liquid chromatography–tandem mass spectrometry. Anal Bioanal Chem. 403(3):885–896. doi:10.1007/s00216-012-5882-1
  • Crnogorac G, Schwack W. 2007. Determination of dithiocarbamate fungicide residues by liquid chromatography/mass spectrometry and stable isotope dilution assay. Rapid Commun Mass Spectrom. 21(24):4009–4016. doi:10.1002/rcm.3312
  • Crnogorac G, Schwack W. 2009. Residue analysis of dithiocarbamate fungicides. Trends Anal Chem. 28(1):40–50. doi:10.1016/j.trac.2008.10.008
  • Crnogorac G, Schwack W, Schmauder S. 2008. Trace analysis of dithiocarbamate fungicide residues on fruits and vegetables by hydrophilic interaction liquid chromatography/tandem mass spectrometry. Rapid Commun Mass Spectrom. 22(16):2539–2546. doi:10.1002/rcm.3646
  • de Silva RC, Wickert C, Pizzutti IR, de Kok A. 2021. Clean-up strategy for dithiocarbamate fungicide determination in soybean by GC-ITD-MS and GC-PFPD: Method development and validation. J Agric Food Chem. 69(38):11485–11493. doi:10.1021/acs.jafc.1c01870
  • Deutsche Forschungsgemeinschaft (DFG). 1987. Pesticides Commission, Manual of Pesticide Residue Analysis. vol. I, S 21: Ethylene and propylene bisdithiocarbamate fungicides, VCH, Weinheim, Germany, p. 407.
  • Deutsche Forschungsgemeinschaft (DFG) 1987. Pesticides Commission, Manual of Pesticide Residue Analysis, Vol. I, S 15: Dithiocarbamate and Thiuram Disulfide Fungicides, VCH, Weinheim, Germany, p. 353.
  • European Food Safety Authority (EFSA). 2019. Review of the existing maximum residue levels for metam according to Article 12 of Regulation (EC) No 396/2005. EFSA J. 17(1):5561–5576. doi:10.2903/j.efsa.2019.5561
  • Food Standards Australia and New Zealand (FSANZ). 2001. The 19th Australian Total Diet Survey. [accessed 2022 Apr 18]. https://www.foodstandards.gov.au/publications/documents/19th%20ATDS.pdf.
  • French agency for food, environmental and occupational health and safety (ANSES). 2011. Second French Total Diet Study Report 2. [accessed 2022 Apr 18]. https://www.anses.fr/en/system/files/PASER2006sa0361Ra2EN.pdf.
  • Gustafsson KH, Fahlgren CH. 1983. Determination of dithiocarbamate fungicides in vegetable food stuffs by high-performance liquid chromatography. J Agric Food Chem. 31(2):461–463. doi:10.1021/jf00116a074
  • Hayama T, Takada M. 2008. Simple and rapid method for the determination of ethylenebisdithiocarbamate fungicides in fruits and vegetables using liquid chromatography with tandem mass spectrometry. Anal Bioanal Chem. 392(5):969–976. doi:10.1007/s00216-008-2346-8
  • Heise S, Weber H, Alder L. 2000. Reasons for the decomposition of the fungicide thiram during preparation of fruit and vegetable samples and consequences for residue analysis. Fresenius J Anal Chem. 366(8):851–856. doi:10.1007/s002160051584
  • IPCS. 1988. Dithiocarbamate Pesticides, Ethylenethiourea and Propylenethiourea: A General Introduction. Environmental Health Criteria 78. Geneva: WHO.
  • Jafari A, Shoeibi S, Amini M, Amirahmadi M, Rastegar H, Ghaffarian A, Ghazi-Khansari M. 2012. Monitoring dithiocarbamate fungicide residues in greenhouse and non-greenhouse tomatoes in Iran by HPLC-UV. Food Addit Contam Part B Surveill. 5(2):87–92. doi:10.1080/19393210.2012.657693
  • Jensen BH, Andersen JH, Petersen A, Christensen T. 2008. Dietary exposure assessment of Danish consumers to dithiocarbamate residues in food: a comparison of the deterministic and probabilistic approach. Food Addit Contam Part A Chem Anal Control Expo Risk Assess. 25(6):714–721. doi:10.1080/02652030701858262
  • Kakitani A, Yoshioka T, Nagatomi Y, Harayama K. 2017. A rapid and sensitive analysis of dithiocarbamate fungicides using modified QuEChERS method and liquid chromatography–tandem mass spectrometry. J Pesticide Sci. 42(4):145–150. doi:10.1584/jpestics.D17-025
  • Kim HY, Choi HJ, Eom JY, Seo EC, Choi SH, Cheong SY, Choi SH, Lee HJ, Choi JC. 2010. Determination of dithiocarbamates in agricultural products circulated in Korea Korean. J Food Sci Technol. 42:1–7.
  • Li J, Dong C, Yang Q, An WJ, Zheng ZT, Jiao BN. 2019. Simultaneous Determination of Ethylenebisdithiocarbamate (EBDC) and Propylenebisdithiocarbamate (PBDC) Fungicides in Vegetables, Fruits, and Mushrooms by Ultra-High-Performance Liquid Chromatography Tandem. Food Anal Methods. 12(9):2045–2055. doi:10.1007/s12161-019-01538-z
  • Ministry for Primary Industries (MPI), New Zealand. 2018. 2016 New Zealand Total Diet Study. [accessed 2022 Apr 18]. https://www.mpi.govt.nz/dmsdocument/43177-2016-NZ-Total-Diet-Study-with-Appendices-report.
  • Nakamura M, Noda S, Kosugi M, Ishiduka N, Mizukoshi K, Taniguchi M, Nemoto S. 2010. Determination of dithiocarbamates and milneb residues in foods by gas chromatography-mass spectrometry. Shokuhin Eiseigaku Zasshi. 51(5):213–219. doi:10.3358/shokueishi.51.213
  • Nakazawa H, Tsuda Y, Ito K, Yoshimura Y, Kubo H, Homma H. 2004. Determination of dithiocarbamate fungicides by reversed-phase ion-pair liquid chromatography with chemiluminescence detection. J Liq Hromatogr Related Technol. 27(4):705–713. doi:10.1081/JLC-120028258
  • Oellig C, Schwack W. 2017. Comparison of HILIC columns for residue analysis of dithiocarbamate fungicides. J Liq Chromatogr Relat Technol. 40(8):415–418. doi:10.1080/10826076.2017.1315724
  • Perz RC, Schwack W. 2003. High performance ion pair chromatography as a routine-compliant tool for surveilling residues of dithiocarbamate fungicides in fruits and vegetables. Deutsche Lebensmittel-Rundschau. 99(4):137–142.
  • Perz RC, van Lishaut H, Schwack W. 2000. CS2 Blinds in Brassica Crops: false positive results in the dithiocarbamate residue analysis by the acid digestion method. J Agric Food Chem. 48(3):792–796. doi:10.1021/jf9905323
  • Pflugmacher J, Ebing W. 1980. A new rapid method for determination of alkylenebis-dithiocarbamate fungicide residues | [Eine neue Schnellmethode zur Bestimmung von Alkylen-bis-dithiocarbamat-Fungicid-Rückständen. Z Lebensm Unters Forch. 170(5):349–354. doi:10.1007/BF01042972
  • Ringli D, Schwack W. 2013. Selective determination of thiram residues in fruit and vegetables by hydrophilic interaction LC-MS. Food Addit Contam Part A Chem Anal Control Expo Risk Assess. 30(11):1909–1917. doi:10.1080/19440049.2013.833669
  • Roussev M, Lehotay SJ, Pollaehne J. 2019. Cryogenic sample processing with liquid nitrogen for effective and efficient monitoring of pesticide residues in foods and feeds. J Agric Food Chem. 67(33):9203–9209. doi:10.1021/acs.jafc.9b04006
  • SANTÉ. 2021. Analytical quality control and method validation procedures for pesticide residues analysis in food and feed 11312/2021. [accessed 2022 Apr 18]. https://ec.europa.eu/food/system/files/2022-02/pesticides_mrl_guidelines_wrkdoc_2021-11312.pdf.
  • Schmidt B, Christensen HB, Petersen A, Sloth JJ, Poulsen ME. 2013. Method validation and analysis of nine dithiocarbamates in fruits and vegetables by LC-MS/MS. Food Addit Contam Part A Chem Anal Control Expo Risk Assess. 30(7):1287–1298. doi:10.1080/19440049.2013.801083
  • Song S, Wei J, Chen Z, Lei Y, Zhang Y, Deng C, Tan H, Li X. 2018. Determination of propineb and its metabolites propylenethiourea and propylenediamine in banana and soil using gas chromatography with flame photometric detection and LC–MS/MS analysis. J Environ Sci Health B. 53(3):153–160. doi:10.1080/03601234.2017.1399765
  • Vaclavik L, Shippar JJ, Koesukwiwat U, Mastovska K. 2018. Method development and validation for low-level propineb and propylenethiourea analysis in baby food, infant formula and related matrices using liquid chromatography-tandem mass spectrometry. Food Addit Contam Part A Chem Anal Control Expo Risk Assess. 35(12):2387–2399. doi:10.1080/19440049.2018.1539529
  • van Lishaut H, Schwack W. 2000. Selective trace determination of dithiocarbamate fungicides in fruits and vegetables by reversed-phase ion-pair liquid chromatography with ultraviolet and electrochemical detection. J AOAC Int. 83(3):720–727.
  • Wong WWK, Yau ATC, Chung SWC, Lam C, Ma S, Ho YY, Xiao Y. 2014. Dietary exposure of Hong Kong adults to pesticide residues: results of the first Hong Kong total diet study. Food Addit Contam Part A. 31(5):852–871. doi:10.1080/19440049.2014.900573
  • Zhou L, Xu J, Luan L, Ma J, Gong Y, Qin D, Pan C. 2013. Optimization and validation of a method based on derivatization with methylating agent followed by HPLC–DAD for determining dithiocarbamates residues. Acta Chromatogr. 25(4):613–625. doi:10.1556/AChrom.25.2013.4.2