Analysis of Hydroxyl Methyl Furfuran by Graphene Oxide-reinforced Hollow Fiber Electromembrane Extraction in Food Samples
الموضوعات :Maryam Rezaee 1 , Shahram Shoeibi 2 , Mahmoud Ebrahimi 3
1 - Department of Chemistry, Mashhad Branch, Islamic Azad University, Mashhad, Iran
2 - Food and Drug Laboratory Research Center, Iran Food and Drug Administration (IFDA), Ministry of Health and Medical Education (MOH), Tehran, Iran
3 - Department of Chemistry, Mashhad Branch, Islamic Azad University, Mashhad, Iran
الکلمات المفتاحية: Graphene oxide, High-performance liquid chromatography, Hydroxymethylfurfural, Hollow fiber, Electromembrane techniques,
ملخص المقالة :
Cooking, sterilization and roasting are used in the food industry for different purposes, such as taste improvement, flavor addition, and shelf-life extension. The roasting stage plays an important role in the improvement of color and sensory properties of coffee; although as a result of this process the level of Hydroxymethylfurfural (HMF) is increased. The purpose of the this investigation was to analysis the level of HMF in instant coffee and infant formula samples through Electromembrane extraction (EME) techniques coupled with HPLC. To achieve the highest extraction efficiency, some critical extraction parameters were optimized, including the concentration of geraphen oxide (GO), the pH of the sample solution, the solution existing inside the lumen of hollow fiber, the extraction technique, and desorption time. A full validation was conducted for the method in terms of linearity, precision, and trueness. The method showed good linear ranges (0.1-100μg kg-1) with correlation coefficients greater than 0.999-0.998 μg kg-1 for instant coffee and infant formula. The limit of quantification (LOD) value of the present method for instant coffee and infant formula was 0.1μg kg-1. The method provided high recoveries ranging from 85.0% to 108.0% for instant coffee and infant formula. The results indicated that the method was rapid, efficient and environment-friendly in the determination of HMF in instant coffee and infant formula samples.
1. Jalili1 M., Ansari1 F., 2015. Identification and Quantification of 5-Hydroxymethylfurfural in Food Products. JNFSR. 2(1), 47-53.
2. Rufián J., Andrade D., Morales F., 2006. Analysis of Heat –damage indices in Berakfast cereals: influence of composition. 43(1), 63-69.
3. Zhang L., Sun Y., Zhang Y., Sun B., Chen H., 2017. Determination and Quantification of 5-Hydroxymethylfurfural in Vinegars and Soy Sauce. J of Food Quality. 1-8.
4. Markowicz D.B., Monaro E., Siguemoto E., Séfora M., 2012. Maillard reaction products in processed foods: pros and cons. Food industrial processes-methods and equipment. 281–300
5. Kowalskı S., Lukasıewıcz M., Duda-Chodak A., Ziec G., 2013. 5-Hydroxymethyl-2-Furfural (HMF) –Heat-induced formation, occurrence in food and biotransformation –a Review. Pol., J Food Nutr Sci. 63, 207-225.
6. Spano N., Casula L., Panzanelli A., Pilo MI., Piu C., Scanu R., Tapparo A., Sanna G.,2006. RP-HPLC determination of 5-hydroxymethylfurfural in honey - The case of strawberry tree honey. Talanta. 68(4), 390-1395.
7. Janzowski C., Glaab V., Samimi E., Schlatter J., Eisenbrand G., 2000. 5-hydroxymethylfurfural: Assessment of mutagenicity, DNA-damaging potential and reactivity towards cellular glutathione. Food Chem Toxicol .38, 801-809.
8. Vorlova L., Borkovcova I., Kalabova K., Vecerek V., 2006. Hydroxymethylfurfural contents in foodstuffs determined by HPLC method. J Food Nutr Res. 45, 34-38.
9. Directive 2001/110/EC of 20 December (2001).Official Journal of the European Communities. 47–52.
10. Ünüvar S., 2018. Determination of 5-hydroxymethylfurfural (5-HMF) in Expired Pharmaceutical Syrups by Using HPLC-DAD Method. JOTCSA. 5(3), 1431-1440.
11. Arribas-Lorenzo G., Morales F.J., 2010.Estimation of Dietary Intake of 5-hydroxymethylfurfural and Related Substances From Coffee to Spanish Population.Food Chem Toxicol. 48(2), 644-9.
12. Ferrer E., Alegra A., Farre R., Abellan P., Romero F., 2002. High performance liquid chromatographic determination of furfural compounds in infant formulas: Changes during heat treatment and storage. J Chromatogr A. 947, 85–89.
13. Gökmen V., Şenyuva H., 2006.Improved Method for the Determination of Hydroxymethylfurfural in Baby Foods Using Liquid Chromatography−Mass Spectrometry. J Agric Food Chem. 548, 2845-2849.
14. Palma M., Taylor L.T., 2001. Supercritical fluid extraction of 5-Hydroxymethyl-2- furaldehyde from raisins. J Agric Food Chem. 49, 628–632.
15. Baltaci C., AKcit Z., 2016. Validation of Hplc Method for determination of 5-Hydroxymethylfurfural in Pestil, Jam, Marmalade. J Science and Engineering. 3(2), 91-97.
16. Habibi H., Mohammadi A., Hoseini H., Mohammadi M., Azadniya E., 2013. Headspace liquid-phase microextraction followed by gas chromatography–mass spectrometry for determination of furanic compounds in baby foods and method optimization using response surface methodology. Food Anal Method. 6(4), 1056-64.
17. Yuan J., Shi Z., Feng Y., 2009. Determination of 5-Hydroxymethylfurfural Using Derivatization Combined with Polymer Monolith Microextraction by High-Performance Liquid Chromatography. J Agric Food Chem. 57(10), 3981-3988.
18. Habibi H., Mohammadi A., Mohammadi M., Amiri Z, Azadniya E., 2013. Determination of furanic compounds in baby-foods in Tehran market using the microextraction technique and effects of preparation temperature on their concentration. Iran J Nutr Sci Food Technol. 8(1), 241-52.
19. Zhanga H., Pinga O., Zhanga J., 2017 .Determination of Furfural and Hydroxymethyl furfural by UV Spectroscopy in ethanol-water hydrolysate of Reed. JBB. 2(4), 170-174.
20. Teixidó E., Moyano E., Santos F.J., Galceran M.T., 2008. Liquid chromatography multi-stage mass spectrometry for the analysis of 5-hydroxymethylfurfural in foods. J Chromatogr A. 1185(1), 102-8.
21. Lemos G., Santos M., Santos J., 2010. Method validation to HMF determination in honey by HPLC-UV and its influence on the product quality. J Quim Nova. 33(8), 1682-1685.
22. EMSM G., Lopes J.F., 2009. Simple gas chromatographic method for furfural analysis. J Chromatogr A. 1216(14), 2762-2767.
23. Bjergaard P.S., Rasmussen K.E., 2006. Electrokinetic migration across artificial liquid membranes - New concept for rapid sample preparation of biological fluids. J Chromatogr A. 1109, 183-190.
24. Bjergaard S., Gjelstad A., 2017. Electromembrane extraction–Recent trends and where to go. JPA. 7(3), 414-147.
25. Petersen N., Rasmussen K., Bjergaard S., 2011. Electromembrane Extraction from Biological Fluids, Anal Sci. 27(10), 965-72.
26. Seidi S., Yamini Y., Rezazadeh M., Esrafili A., 2012. Low-voltage electrically-enhanced microextraction as a novel technique for simultaneous extraction of acidic and basic drugs from biological fluids, J Chromatogr A. 1243(22), 6-13.
27. Oral A., Dogan M., Sarıoglu K., Kayacıer A., Sagdic O., 2015. Determination of HMF in Some Instant Foods and Its Biodegradation by Some Lactic Acid Bacteria in Medium and Food. Ann Chromatogr Sep Tech. 1(1), 1004-1007.
28. Rezaee M., Shoeibi Sh., Razavi-Azarkhiavi K., Ebrahimi M., 2018. Application of Graphene Oxide Reinforced Hollow Fibers as a Novel Electromembrane Extraction Method for Quantitative Analysis of Dicyandiamide in Infant Formula. Journal of Chemical Health Risks. 8(4), 313-321.
29. Marothu V. K., Gorrepati M., Vusa R., 2013. Electromembrane extraction-a novel extraction technique for pharmaceutical, chemical, clinical and environmental analysis. J Chromatogr Sci. 51, 619-631.
30. Bagheri H., Fakhari Zavareh A., Koruni M., 2016. Graphene oxide assisted electromembrane extraction with gas chromatography for the determination of methamphetamine as a model analyte in hair and urine samples. J Sep Sci. 39, 1182–1188.
31. Domínguez Nc., Gjelstad A., Nadal A., Jensen H., Petersen N., Hansen SH., Rasmussen K., Bjergaard P., 2012. Selective electromembrane extraction at low voltages based on analyte polarity and charge. J Chromatogr A. 1248, 48– 54.
32. Balchen M., Reubsaet L., Bjergaard S.P., 2008. Two-phase electrodriven membrane extraction combined with liquid chromatography for the determination of tricyclic antidepressants in aqueous matrices. J Chromatogr A. 6(21), 43–49.
33. Balchen M., Reubsaet L., Pedersen-Bjergaard S.J., 2008. Electromembrane extraction of peptides. Chromatogr A. 1194, 143–149.
34. Yamani A., Seidi S., Rezazadeh M., 2014. Electrical field-induced extraction and separation techniques: promising trends in analytical chemistry. Anal Chim Acta. 314, 1-22.