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Articles

Magnetic nanocellulose hybrid nanoparticles and ionic liquid for extraction of neonicotinoid insecticides from milk samples prior to determination by liquid chromatography-mass spectrometry

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Pages 1755-1766 | Received 18 Apr 2018, Accepted 07 Jun 2018, Published online: 26 Jul 2018

References

  • Asfaram A, Ghaedi M, Goudarzi A, Soylak M, Langroodi SM. 2015. Magnetic nanoparticle based dispersive microsolid-phase extraction for the determination of malachite green in water samples: optimized experimental design. New J Chem. 39:9813–9823.
  • Benmassaoud Y, Villaseñor MJ, Salghi R, Jodeh S, Algarra M, Zougagh M, Ríos Á. 2017. Magnetic/non-magnetic argan press cake nanocellulose for the selective extraction of sudan dyes in food samples prior to the determination by capillary liquid chromatography. Talanta. 166:63–69.
  • Biever RC, Hoberg JR, Jacobson B, Dionne E, Sulaiman M, McCahon P. 2003. Icon® rice seed treatment toxicity to crayfish (Procambarus clarkii) in experimental rice paddies. Environ Toxicol Chem. 22:167–174.
  • Bonmatin JM, Giorio C, Girolami V, Goulson D, Kreutzweiser DP, Krupke C, Liess M, Long E, Marzaro M, Mitchell EAD, et al. 2015. Environmental fate and exposure; neonicotinoids and fipronil. Environ Sci Pollut Res. 22:35–67.
  • Di Muccio A, Fidente P, Barbini DA, Dommarco R, Seccia S, Morrica P. 2006. Application of solid-phase extraction and liquid chromatography–mass spectrometry to the determination of neonicotinoid pesticide residues in fruit and vegetables. J Chromatogr A. 1108:1–6.
  • [EC] European Commission. 2002. Commission Decision 96/23/Ec Commission (2002) 96/23/EC COMMISSION DECISION of 12 August 2002 implementing Council Directive 96/23/EC concerning the performance of analytical methods and the interpretation of results (notified under document number C (2002) 3044) (Text withEEA relevance) (2002/657/EC). 96/23/Ec Comm Decis 29.
  • [EC] European Commission. 2005. 396/2005. PE-MrlR (EC) N Regulation EC 396/2005 and amendments.
  • [EC] European Commission. 2013. Commission Implementing Regulation (EU). 167–174.
  • Farajzadeh MA, Bamorowat M, Mogaddam MRA. 2016. Ringer tablet-based ionic liquid phase microextraction: application in extraction and preconcentration of neonicotinoid insecticides from fruit juice and vegetable samples. Talanta. 160:211–216.
  • Gbylik-Sikorska M, Sniegocki T, Posyniak A. 2015. Determination of neonicotinoid insecticides and their metabolites in honey bee and honey by liquid chromatography tandem mass spectrometry. J Chromatogr B. 990:132–140.
  • Gure A, Lara FJ, García-Campaña AM, Megersa N, Del Olmo-Iruela M. 2015. Vortex-assisted ionic liquid dispersive liquid–liquid microextraction for the determination of sulfonylurea herbicides in wine samples by capillary high-performance liquid chromatography. Food Chem. 170:348–353.
  • Hao C, Noestheden MR, Zhao X, Morse D. 2016. Liquid chromatography-tandem mass spectrometry analysis of neonicotinoid pesticides and 6-chloronicotinic acid in environmental water with direct aqueous injection. Anal Chim Acta. 925:43–50.
  • He Z, Alexandridis P. 2015. Nanoparticles in ionic liquids: interactions and organization. Phys Chem Chem Phys. 17:18238–18261.
  • Hou R, Panga S, He L. 2015. In situ SERS detection of multi-class insecticides on plant surfaces. Anal Methods. 7:6325–6330.
  • Jovanov P, Guzsvány V, Lazic S, Franko M, Sakac M, Saric L, Kos J. 2015. Development of HPLC-DAD method for determination of neonicotinoids in honey. J Food Compos Anal. 40:106–113.
  • Kamel A, Qian Y, Kolbe E, Stafford C. 2010. Development and validation of a multiresidue method for the determination of neonicotinoid and macrocyclic lactone pesticide residues in milk, fruits, and vegetables by ultra-performance liquid chromatography/MS/MS. J AOAC Int. 93(2):389–399.
  • Kaur R, Hasan A, Iqbal N, Alam S, Saini MK, Raza SK. 2014. Synthesis and surface engineering of magnetic nanoparticles for environmental cleanup and pesticide residue analysis: a review. J Sep Sci. 37:1805–1825.
  • Kavvalakis MP, Tzatzarakis MN, Theodoropoulou EP, Barbounis EG, Tsakalof AK, Tsatsakis AM. 2013. Development and application of LC–APCI–MS method for biomonitoring of animal and human exposure to imidacloprid. Chemosphere. 93:2612–2620.
  • Liu J, Chi Y, Jiang G, Tai C, Peng J, Hu J. 2004. Ionic liquid-based liquid-phase microextraction, a new sample enrichment procedure for liquid chromatography. J Chromatogr A. 1026:143–147.
  • Liu L, Feng T, Wang C, Wu Q, Wang Z. 2014. Enrichment of neonicotinoid insecticides from lemon juice sample with magnetic three-dimensional graphene as the adsorbent followed by determination with high-performance liquid chromatography. J Sep Sci. 37:1276–1282.
  • Liu L, Hao Y, Zhou X, Wang C, Wu Q, Wang Z. 2015. Magnetic porous carbon based solid-phase extraction coupled with high performance liquid chromatography for the determination of neonicotinoid insecticides in environmental water and peanut milk samples. Anal Methods. 7:2762–2769.
  • Ma X, Wang J, Sun M, Wang W, Wu Q, Wang C, Wang Z. 2013. Magnetic solid-phase extraction of neonicotinoid pesticides from pear and tomato samples using graphene grafted silica-coated Fe3O4 as the magnetic adsorbent. Anal Methods. 5:2809–2815.
  • Miller JN, Miller JC. 2005. Statistics and chemometrics for analytical chemistry. London: Pearson.
  • Obana H, Okihashi M, Akutsu K, Kitagawa Y, Hori S. 2002. Determination of acetamiprid, imidacloprid, and nitenpyram residues in vegetables and fruits by high-performance liquid chromatography with diode-array detection. J Agric Food Chem. 50:4464–4467.
  • Obana H, Okihashi M, Akutsu K, Kitigawa Y, Hori S. 2003. Determination of neonicotinoid pesticide residues in vegetables and fruits with solid phase extraction and liquid chromatography mass spectrometry. J Agric Food Chem. 51:2501–2505.
  • Safari M, Yamini Y, Tahmasebi E, Ebrahimpour B. 2016. Magnetic nanoparticle assisted supramolecular solvent extraction of triazine herbicides prior to their determination by HPLC with UV detection. Microchim Acta. 183:203–210.
  • Sánchez-Hernández L, Hernández-Domínguez D, Bernala J, Neusüß C, Martína MT, Bernala JL. 2014. Capillary electrophoresis–mass spectrometry as a new approach to analyze neonicotinoid insecticides. J Chromatogr A. 1359:317–324.
  • Seccia S, Fidente P, Montesano D, Morrica P. 2008. Determination of neonicotinoid insecticides residues in bovine milk samples by solid-phase extraction clean-up and liquid chromatography with diode-array detection. J Chromatogr A. 1214:115–120.
  • Tomizawa M, Casida JE. 2005. Neonicotinoid insecticide toxicology: mechanisms of selective action. Annu Rev Pharmacol Toxicol. 45:247–268.
  • Van der Sluijs J, Simon-Delso N, Goulson D, Maxim L, Bonmatin JM, Belzunces LP. 2013. Neonicotinoids, bee disorders and the sustainability of pollinator services. Curr Opin Environ Sustain. 5:293–305.
  • Vichapong J, Burakham R, Santaladchaiyakit Y, Srijaranai S. 2016a. A preconcentration method for analysis of neonicotinoids in honey samples by ionic-based cold-induced aggregation microextraction. Talanta. 155:216–221.
  • Vichapong J, Burakham R, Srijaranai S. 2016b. Ionic liquid-based vortex-assisted liquid–liquid microextraction for simultaneous determination of neonicotinoid insecticides in fruit juice samples. Food Anal Methods. 9:419–426.
  • Wanatabe S, Ito S, Kamata Y, Omoda N, Yamazaki T, Munakata H, Kaneko T, Yuasa Y. 2001. Development of competitive enzyme-linked immunosorbent assays (ELISAs) based on monoclonal antibodies for chloronicotinoid insecticides imidacloprid and acetamiprid. Anal Chim Acta. 427:211–219.
  • Wang L, Cai J, Wang Y, Fang Q, Wang S, Cheng Q, Du D, Lin Y, Liu F. 2014. A bare-eye-based lateral flow immunoassay based on the use of gold nanoparticles for simultaneous detection of three pesticides. Microchim Acta. 181:1565–1572.
  • Wang P, Yang X, Wang J, Cui J, Dong AJ, Zhao HT, Zhang LW, Wang ZY, Xu RB, Li WJ, et al. 2012a. Multi-residue method for determination of seven neonicotinoid insecticides in grains using dispersive solid-phase extraction and dispersive liquid–liquid micro-extraction by high performance liquid chromatography. Food Chem. 134:1691–1698.
  • Wang W, Li Y, Wu Q, Wang C, Zang X, Wang Z. 2012b. Extraction of neonicotinoid insecticides from environmental water samples with magnetic graphene nanoparticles as adsorbent followed by determination with HPLC. Anal Methods. 4:766–772.
  • Watanabe E, Baba K, Miyake S. 2011. Analytical evaluation of enzyme-linked immunosorbent assay for neonicotinoid dinotefuran for potential application to quick and simple screening method in rice samples. Talanta. 84:1107–1111.
  • Watanabe E, Bara K, Eun H. 2007. Simultaneous determination of neonicotinoid insecticides in agricultural samples by solid-phase extraction cleanup and liquid chromatography equipped with diode-array detection. J Agr Food Chem. 55:3798–3804.
  • Watanabe E, Eun H, Baba K, Arao T, Ishii Y, Endo S, Ueji M. 2004. Rapid and simple screening analysis for residual imidacloprid in agricultural products with commercially available ELISA. Anal Chim Acta. 521:45–51.
  • Watanabe E, Miyake S, Baba K, Eun H, Endo S. 2006. Immunoassay for acetamiprid detection: application to residue analysis and comparison with liquid chromatography. Anal Bioanal Chem. 386:1441–1448.
  • Wijaya W, Pang S, Labuza TP, He L. 2014. Rapid detection of acetamiprid in foods using Surface-Enhanced Raman Spectroscopy (SERS). J Food Sci. 79:T743–T747.
  • Wu Q, Li Z, Wang C, Wu C, Wang W, Wang Z. 2011. Dispersive solid-phase extraction clean-up combined with dispersive liquid–liquid microextraction for the determination of neonicotinoid insecticides in vegetable samples by high-performance liquid chromatography. Food Anal Methods. 4:559–566.
  • Xie L, Jiang R, Zhu F, Liu H, Ouyang G. 2014. Application of functionalized magnetic nanoparticles in sample preparation. Anal Bioanal Chem. 406:377–399.
  • Xie W, Han C, Qian Y, Ding H, Chen X, Xi J. 2011. Determination of neonicotinoid pesticides residues in agricultural samples by solid-phase extraction combined with liquid chromatography–tandem mass spectrometry. J Chromatogr A. 1218:4426–4433.
  • Xu Q, Du S, Jin G, Li H, Hu XY. 2011. Determination of acetamiprid by a colorimetric method based on the aggregation of gold nanoparticles. Microchim Acta. 173:323–329.
  • Yang D, Li G, Wu L, Yang Y. 2018a. Ferrofluid-based liquid-phase microextraction: analysis of four phenolic compounds in milks and fruit juices. Food Chem. 261:96–102.
  • Yang D, Li X, Meng D, Yang Y. 2018b. Carbon quantum dots-modified ferrofluid for dispersive solid-phase extraction of phenolic compounds in water and milk samples. J Mol Liq. 261(2018):155–161.
  • Yılmaz E, Soylak M. 2016. Preparation and characterization of magnetic carboxylated nanodiamonds for vortex-assisted magnetic solid-phase extraction of ziram in food and water samples. Talanta. 158:152–158.
  • Zhang M, Zhao HT, Yang X, Dong AJ, Zhang H, Wang J, Liu GY, Zhai XC. 2016. A simple and sensitive electrochemical sensor for new neonicotinoid insecticide Paichongding in grain samples based on β-cyclodextrin-graphene modified glassy carbon electrode. Sens Actuators B Chem. 229:190–199.
  • Zhang S, Yang X, Yin X, Wang C, Wang Z. 2012. Dispersive liquid–liquid microextraction combined with sweeping micellar electrokinetic chromatography for the determination of some neonicotinoid insecticides in cucumber samples. Food Chem. 133:544–550.

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