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Drying Technology
An International Journal
Volume 35, 2017 - Issue 3
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Original Articles

Effects of various roasting conditions on acrylamide, acrolein, and polycyclic aromatic hydrocarbons content in cocoa bean and the derived chocolates

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References

  • Farah, D.M.H.; Zaibunnisa, A.H.; Misnawi. Optimization of cocoa beans roasting process using response surface methodology based on concentration of pyrazine and acrylamide. International Food Research Journal 2012, 19(4), 1355–1359.
  • Oliviero, T.; Capuano, E.; Cammerer, B.; Fogliano, V. Influence of roasting on the antioxidant activity and HMF formation of a cocoa bean model systems. Journal of Agricultural and Food Chemistry 2009, 57, 147–152.
  • Krysiak, W. Effects of convective and microwave roasting on the physicochemical properties of cocoa beans and cocoa butter extracted from this material. Grasas y Aceites 2011, 62, 467–478.
  • Misnawi; Jinap, S.M.; Jamilah, B.; Nazamid, S. Sensory properties of cocoa liquor as affected by polyphenol concentration and duration of roasting. Food Quality and Preference 2004, 15, 403–409.
  • Farah, D.M.H.; Zaibunnisa, A.H.; Misnawi, J.; Zainal, S. Effect of roasting process on the concentration of acrylamide and pyrizines in roasted cocoa beans from different origins. APCBEE Procedia 2012, 4, 204–208.
  • Lineback, D.R.; Coughlin, J.R.; Stadler, R.H. Acrylamide in foods: A review of the science and future considerations. Annual Review of Food Science and Technology 2012, 3, 15–35.
  • Mottram, D.S.; Wedzicha, B.L.; Dodson, A.T. Acrylamide is formed in the Maillard reaction. Nature 2002, 419, 448–449.
  • Huang, L.-I.; Zhang, M. Trends in development of dried vegetable products as snacks. Drying Technology 2012, 30(5), 448–461.
  • Yasuhara, A.; Tanaka, Y.; Hengel, M.; Shibamoto, T. Gas chromatographic investigation of acrylamide formation in browning model systems. Journal of Agricultural and Food Chemistry 2003, 51, 3999–4003.
  • Liu, Y.; Wang, P.; Chen, F.; Yuan, Y.; Zhu, Y.; Yan, H.; Hu, X. Role of plant polyphenols in acrylamide formation and elimination. Food Chemistry 2015, 186, 46–53.
  • Taeymans, D.; Wood, J.; Ashby, P.; Blank, I.; Studer, A.; Stadler, R.H.; Gondé, P.; Van Eijck, P.; Lalljie, S.; Lingnert, H.; Lindblom, M.; Matissek, R.; Müller, D.; Tallmadge, D.; O’Brien, J.; Thompson, S.; Silvani, D.; Whitmore, T. A review of acrylamide: An industry perspective on research, analysis, formation and control. Critical Reviews in Food Science and Nutrition 2004, 44(5), 323–347.
  • Hoenicke, K.; Gatermann, R. Studies on the stability of acrylamide in food during storage. Journal of AOAC International 2005, 88(1), 268–273.
  • IARC. Acrylamide. In IARC Monographs on the Evaluation of Carcinogen Risk to Humans: Some Industrial Chemicals; International Agency for Research on Cancer (IARC): Lyon, France, 1994; 389–433.
  • Klaunig, J.E. Acrylamide carcinogenicity. Journal of Agricultural and Food Chemistry 2008, 56, 5984–5988.
  • Anese, M.; Nicoli, M.C.; Verardo, G.; Munari, M.; Mirolo, G.; Bortolomeazzi, R. Effect of vacuum roasting on acrylamide formation and reduction in coffee beans. Food Chemistry 2014, 145, 168–172.
  • Hedegaard, R.V.; Granby, K.; Frandsen, H.; Thygesen, J.; Skibsted, L.H. Acrylamide in bread. Effect of prooxidants and antioxidants. European Food Research and Technology 2007, 227, 519–525.
  • Biedermann, M.; Noti, A.; Biedermann-Brem, S.; Mozzetti, V.; Grob, K. Experiments on acrylamide formation and possibilities to decrease the potential of acrylamide formation in potatoes. Mitteilungen aus Lebensmitteluntersuchung und Hygiene 2002, 93(6), 668–687.
  • Claeys, W.L.; De Vleeschouwer, K.; Hendrickx, M.E. Kinetics of acrylamide formation and elimination during heating of an asparagine-sugar model system. Journal of Agricultural and Food Chemistry 2005, 53, 9999–10005.
  • Bartkiene, E.; Jakobsone, I.; Pugajeva, I.; Bartkevics, V.; Zadeike, D.; Juodeikiene, G. Reducing of acrylamide formation in wheat biscuits supplemented with flaxseed and lupine. LWT - Food Science and Technology 2016, 65, 275–282.
  • Claus, A.; Mongili, M.; Weisz, G.; Schieber, A.; Carle, R. Impact of formulation and technological factors on the acrylamide content of wheat bread and bread rolls. Journal of Cereal Science 2008, 47, 546–554.
  • Misnawi. Effect of cocoa bean drying methods on polycyclic aromatic hydrocarbons contamination in cocoa butter. International Food Research Journal 2012, 19(4), 1589–1594.
  • Lowor, S.T.; Jacquet, M.; Vrielink, T.; Aculey, P.; Cros, E.; Takrama, J. Post-harvest sources of polycyclic aromatic hydrocarbon contamination of cocoa beans: A simulation. International Journal of AgriScience 2012, 2, 1043–1052.
  • Raters, M.; Matissek, R. Quantitation of polycyclic aromatic hydrocarbons (PAH4) in cocoa and chocolate samples by an HPLC-FD method. Journal of Agricultural and Food Chemistry 2014, 62(44), 10666–10671.
  • Orecchio, S.; Paradiso Ciotti, V.; Culotta, L. Polycyclic aromatic hydrocarbons (PAHs) in coffee brew samples: Analytical method by GC–MS, profile, levels and sources. Food and Chemical Toxicology 2009, 47, 819–826.
  • Wandan, E.N.; Elleingand, E.F.; Ndouba, A.M. A screening for benzo[a]pyrène in cocoa beans subjected to different drying methods during on farm processing. International Journal of Engineering Science and Technology 2011, 3(5), 3621–3630.
  • Iciek, J.; Krysiak, W. Effect of air parameters on the quality of dried potato cubes. Drying Technology 2009, 27(12), 1316–1324.
  • Żyżelewicz, D.; Krysiak, W.; Nebesny, E.; Budryn, G. Application of various methods for determination of the color of cocoa beans roasted under variable process parameters. European Food Research and Technology 2014, 238, 549–563.
  • Krysiak, W. Influence of roasting conditions on coloration of roasted cocoa beans. Journal of Food Engineering 2006, 77, 449–453.
  • ISO 2291. Cocoa Beans – Determination of Moisture Content (Routine Method); 1980.
  • Budryn, G.; Żyżelewicz, D.; Nebesny, E.; Oracz, J.; Krysiak, W. Influence of addition of green tea and green coffee extracts on the properties of fine yeast pastry fried products. Food Research International 2013, 50, 149–160.
  • Sakura, N.; Nishimura, S.; Fujita, N.; Namera, A.; Yashiki, M.; Kojima, T. Determination of acrolein in human urine by headspace gas chromatography and mass spectrometry. Journal of Chromatography B 1998, 719, 209–212.
  • Beránek, J.; Kubátová, A. Evaluation of solid-phase microextraction methods for determination of trace concentration aldehydes in aqueous solution. Journal of Chromatography A 2008, 1209, 44–54.
  • Camargo, M.C.R.; Toledo, M.C. Polycyclic aromatic hydrocarbons in Brazilian vegetables and fruits. Food Control 2003, 14, 49–53.
  • Tfouni, S.A.V.; Souza, N.G.; Neto, M.B.; Loredo, I.S.D.; Leme, F.M.; Furlani, R.P.Z. Polycyclic aromatic hydrocarbons (PAHs) in sugarcane juice. Food Chemistry 2009, 116(1), 391–394.
  • Żyżelewicz, D.; Krysiak, W.; Budryn, G.; Oracz, J.; Nebesny, E. Tocopherols in cocoa butter obtained from cocoa bean roasted in different forms and under various process parameters. Food Research International 2014, 63, 390–399.
  • Żyżelewicz, D.; Budryn, G.; Krysiak, W.; Oracz, J.; Nebesny, E.; Bojczuk, M. Influence of roasting conditions on fatty acid composition and oxidative changes of cocoa butter extracted from cocoa bean of Forastero variety cultivated in Togo. Food Research International 2014, 63, 328–343.
  • Krysiak, W.; Motyl-Patelska, L. Wpływ warunków prażenia na stopień migracji tłuszczu z jądra ziarna kakaowego [Influence of roasting conditions on the migration of cocoa butter from cocoa kernel]. Inz Chem Procesowa 2005, 26, 817–829.
  • Granvogl, M.; Schieberle, P. Quantification of 3-aminopropionamide in cocoa, coffee and cereal product. European Food Research Technology 2007, 225, 857–863.
  • Krysiak, W.; Motyl-Patelska, L. Effects of air parameters on changes in temperature inside roasted cocoa beans. Acta Agrophysica 2006, 7(1), 113–128.
  • Wang, Y.; Zhang, M.; Mujumdar, A.S. Trends in processing technologies for dried aquatic products. Drying Technology 2011, 29, 382–394.
  • Iyota, H.; Nishimura, N.; Yoshida, M.; Nomura, T. Simulation of superheated steam drying considering initial steam condensation. Drying Technology 2001, 19(7), 1425–1440.
  • Prachayawarakorn, S.; Soponronnarit, S.; Wetchacama, S.; Jaisut, D. Desorption isotherms and drying characteristics of shrimp in superheated steam and hot air. Drying Technology 2002, 20, 669–684.
  • Hidalgo, F.J.; Delgado, R.M.; Zamora, R. Role of mercaptans on acrylamide elimination. Food Chemistry 2010, 122, 596–601.
  • Zzaman, W.; Bhat, R.; Yang, T.A. Application of response surface methodology to optimize roasting conditions in cocoa beans subjected to superheated steam treatments in relevance to antioxidant compounds and activities. Drying Technology 2014, 32, 1104–1111.
  • Pakowski, Z.; Adamski, R. On prediction of the drying rate in superheated steam drying process. Drying Technology 2011, 29, 1492–1498.
  • Delatour, T.; Périsset, A.; Goldmann, T.; Riediker, S.; Stadler, R.H. Improved sample preparation to determine acrylamide in difficult matrixes such as chocolate powder, cocoa, and coffee by liquid chromatography tandem mass spectroscopy. Journal of Agricultural and Food Chemistry 2004, 52(15), 4625–4631.
  • Pardo, O.; Yusà, V.; Coscollà, C.; León, N.; Pastor, A. Determination of acrylamide in coffee and chocolate by pressurised fluid extraction and liquid chromatography–tandem mass spectrometry. Food Additives & Contaminants 2007, 24(7), 663–672.
  • Ren, Y.; Zhang, Y.; Jiao, J.; Cai, Z.; Zhang, Y. Sensitive isotope dilution liquid chromatography/electrospray ionization tandem mass spectrometry method for the determination of acrylamide in chocolate. Food Additives & Contaminants 2006, 23(3), 228–236.
  • Mujumdar, A.S. Superheated steam drying. In Handbook of Industrial Drying; Mujumdar, A.S., Ed.; Marcel Dekker: New York, NY, 1995; 1071–1086.
  • Krysiak, W.; Adamski, R.; Żyżelewicz, D. Factors affecting the color of roasted cocoa bean. Journal of Food Quality 2013, 36, 21–31.
  • Aikpokpodion, P.E.; Oduwole, O.O.; Ademola, S.M. Evaluation of polycyclic aromatic hydrocarbons (PAHs) in cocoa beans obtained from selected cocoa producing states in Nigeria. Journal of Scientific Research and Reports 2013, 2(2), 612–625.
  • Ziegenhals, K.; Speer, K.; Jira, W. Polycyclic aromatic hydrocarbons (PAH) in chocolate on the German market. Journal fur Verbraucherschutz und Lebensmittelsicherheit 2009, 4, 128–135.
  • European Commission. Commission regulation (EC) no. 835/2011 of 19 August 2011 amending regulation (EC) no. 1881/2006 as regards maximum levels for polycyclic aromatic hydrocarbons in foodstuffs. Official Journal of European Union 2011, L215, 4–8.

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