Comparative Study of the Effects of Thermal and Photochemical Accelerated Oxidations on Quality of “Green Type” and “Black Type” French Olive Oils — Oak Academic Publishing
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Comparative Study of the Effects of Thermal and Photochemical Accelerated Oxidations on Quality of “Green Type” and “Black Type” French Olive Oils
Aix Marseille Université, CNRS, IRD, Avignon Université, IMBE, UMR 7263, équipe BEC, case 451, Avenue Escadrille Normandie Niémen, 13397 Marseille cedex 20, France
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Aix Marseille Université, CNRS, IRD, Avignon Université, IMBE, UMR 7263, équipe BEC, case 451, Avenue Escadrille Normandie Niémen, 13397 Marseille cedex 20, France
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Aix Marseille Université, CNRS, IRD, Avignon Université, IMBE, UMR 7263, équipe BEC, case 451, Avenue Escadrille Normandie Niémen, 13397 Marseille cedex 20, France
,
Aix Marseille Université, CNRS, IRD, Avignon Université, IMBE, UMR 7263, équipe BEC, case 451, Avenue Escadrille Normandie Niémen, 13397 Marseille cedex 20, France
1 Aix Marseille Université, CNRS, IRD, Avignon Université, IMBE, UMR 7263, équipe BEC, case 451, Avenue Escadrille Normandie Niémen, 13397 Marseille cedex 20, France
2 Aix Marseille Université, CNRS, IRD, Avignon Université, IMBE, UMR 7263, équipe BEC, case 451, Avenue Escadrille Normandie Niémen, 13397 Marseille cedex 20, France
3 Aix Marseille Université, CNRS, IRD, Avignon Université, IMBE, UMR 7263, équipe BEC, case 451, Avenue Escadrille Normandie Niémen, 13397 Marseille cedex 20, France
4 Aix Marseille Université, CNRS, IRD, Avignon Université, IMBE, UMR 7263, équipe BEC, case 451, Avenue Escadrille Normandie Niémen, 13397 Marseille cedex 20, France
Oxidative stability of two commercial olive oils of different specificity (green type and black type) has been studied during thermal and photochemical accelerated processes through the evolution of quality indices. It might help to assure a good utilisation of olive oil. In most of works described in literature, they are measured individually. In this study, a Principal Component Analysis (PCA) has been performed to emphasize their variation and describe in concise way the quality and the safety of extra-virgin olive oil after two oxidative stresses. No difference had been detected between both type oils when they are heated. Peroxides, aldehydes and conjugated dienes and trienes were formed but rapidly degraded into final oxidation compounds, mainly acid compounds. During the photochemical process, similar changes occurred slower and the green type oil had shown better stability because of its higher phenolic content. The fatty acids had been more impacted (higher disappearance of monounsaturated fatty acids (MUFA) and polyunsaturated fatty acids (PUFA)) when the oils were heated than when irradiated. Saturated fatty acids (SFA), MUFA and PUFA were the most relevant indicators to characterize non-oxidized oils and PV characterized the early stage of oil oxidation.
KeywordsOlive OilPhoto-OxidationThermal OxidationQuality Control ParametersFatty AcidsPhenolic Compounds
ISO (2009) Animal and Vegetable Fats and Oils—Determination of Acid Value and Acidity. ISO Standard 660, International Organization for Standardization Geneva, Switzerland.
ISO (2007) Animal and Vegetable Fats and Oils—Determination of Peroxide Value—Io-dometric (Visual) Endpoint Determination. ISO Standard 3960, International Organization for Standardization Geneva, Switzerland.
International Olive Council (2010) Spectrophotometric Investigation in the Ultraviolet Adopted by International Olive Council. IOC/T.20/Doc. No.19.
ISO (2006) Animal and Vegetable Fats and Oils—Determination of Anisidine Value. ISO Standard 6885, International Organization for Standardization Geneva, Switzerland.
EEC (2013) On the Characteristics of Olive Oil and Olive-Residue Oil and on the Relevant Methods of Analysis. Commission Implementing Regulation (EU) 299/2013 of March 26, 2013 Amending Regulation EEC 2568/91. Official Journal of the European Communities, 52-70.
International Olive Council (2013) Preparation of the Fatty Acid Methyl Esters from Olive Oil and Olive-Pomace Oil Adopted by International Olive Council. IOC/T.20/Doc. No. 24.
International Olive Council (2009) Determination of Biophenols in Olive Oils by HPL Cadopted by International Olive Council. IOC/T.20/Doc. No. 29.
Gertz, C., Klostermann, S. and Kochhar, S.P. (2000) Testing and Comparing Oxidative Stability of Vegetable Oils and Fats at Frying Temperature. European Journal of Lipid Science and Technology, 102, 543-551.
Niccolo, M.B.C., Neri, M.B. and Sebastiano, M.B. (2000) Method for Preservation of Olive Oil. Patent EP0974270A1.
Intelidimou, A.D. (2014) Olive Oil Portions. Patent GR1008762B.
Santos, S.P., Cruz, R., Cunha, S.C. and Casal, S. (2013) Effect of Cooking on Olive Oil Quality Attributes. Food Research International, 54, 2016-2024. https://doi.org/10.1016/j.foodres.2013.04.014
Andrikopoulos, N.K., Kalogeropoulos, N., Falirea, A. and Barbagianni, M.N. (2002) Performance of Virgin Olive Oil and Vegetable Shortening during Domestic Deep-Frying and Pan-Frying of Potatoes. International Journal of Food Science Technology, 37, 177-190. https://doi.org/10.1046/j.1365-2621.2002.00555.x
Casal, S., Malheiro, R., Sendas, A., Oliveira, B.P.P. and Pereira, J.A. (2010) Olive Oil Stability under Deep-Frying Conditions. Food and Chemical Toxicology, 48, 2972-2979. https://doi.org/10.1016/j.fct.2010.07.036
Cheikhousman, R., Zude, M., Bouveresse, D., Léger, C., Rutledge, D. and Birlouez-Aragon, I. (2005) Fluorescence Spectroscopy for Monitoring Deterioration of Extra Virgin Olive Oil during Heating. Analytical and Bioanalytical Chemistry, 382, 1438-1443. https://doi.org/10.1007/s00216-005-3286-1
Daskalaki, D., Kefi, G., Kotsiou, K. and Tasioula-Margari, M. (2009) Evaluation of Phenolic Compounds Degradation in Virgin Olive Oil during Storage and Heating. Journal of Food and Nutrition Research, 48, 31-41.
Mancebo-Campos, V., Desamparados-Salvador, M. and Fregapane, G. (2007) Comparative Study of Virgin Olive Oil Behavior under Rancimat Accelerated Oxidation Conditions and Long-Term Room Temperature Storage. Journal of Agricultural and Food Chemistry, 55, 8231-8236. https://doi.org/10.1021/jf070915y
Maggio, R.M., Valli, E., Bendini, A., Gómez-Caravaca, A.M., Toschi, T.G. and Cerretani, L. (2011) A Spectroscopic and Chemometric Study of Virgin Olive Oils Subjected to Thermal Stress. Food Chemistry, 127, 216-221. https://doi.org/10.1016/j.foodchem.2010.12.018
Gharby, S., Harhar, H., Matthäus, B., Bouzoubaa, Z. and Charrouf, Z. (2016) The Chemical Parameters and Oxidative Resistance to Heat Treatment of Refined and Extra Virgin Moroccan Picholine Olive Oil. Journal of Taibah University for Science, 10, 100-106. https://doi.org/10.1016/j.jtusci.2015.05.004
Poyato, C., Ansorena, D., Navarro-Blasco, I. and Astiasarán, I. (2014) A Novel Approach to Monitor the Oxidation Process of Different Types of Heated Oils by Using Chemometric Tools. Food Research International, 57, 152-161. https://doi.org/10.1016/j.foodres.2014.01.033
Gómez-Alonso, S., Mancebo-Campos, V., Salvador, M.D. and Fregapane, G. (2007) Evolution of Major and Minor Components and Oxidation Indices of Virgin Olive Oil during 21 Months Storage at Room Temperature. Food Chemistry, 100, 36-42. https://doi.org/10.1016/j.foodchem.2005.09.006
BeSter, E., Butinar, B., Bucar-Miklavcic, M. and Golob, T. (2008) Chemical Changes in Extra Virgin Olive Oils from Slovenian Istra after Thermal Treatment. Food Chemistry, 108, 446-454. https://doi.org/10.1016/j.foodchem.2007.10.061
Gómez-Alonso, S., Fregapane, G., Salvador, M.D. and Gordon, M.H. (2003) Changes in Phenolic Composition and Antioxidant Activity of Virgin Olive Oil during Frying. Journal of Agricultural and Food Chemistry, 51, 667-672. https://doi.org/10.1021/jf025932w
Skevin, D., Rade, D., Strucelj, D., Mokrovcak, Z., Nederal, S. and Bencic, D. (2003) The Influence of Variety and Harvest Time on the Bitterness and Phenolic Compounds of Olive Oil. European Journal of Lipid Science and Technology, 105, 536-541.
Poulli, K.I., Mousdis, G.A. and Georgiou, C.A. (2009) Monitoring Olive Oil Oxidation under Thermal and UV Stress through Synchronous Fluorescence Spectroscopy and Classical Assays. Food Chemistry, 117, 499-503. https://doi.org/10.1016/j.foodchem.2009.04.024
Rahmani, M. and Csallany, A.S. (1998) Role of Minor Constituents in the Photooxidation of Virgin Olive Oil. Journal of the American Oil Chemists’ Society, 75, 837-843. https://doi.org/10.1007/s11746-998-0234-1
Rodrigues, N., Dias, L.G., Veloso, A.C.A., Pereira, J.A. and Peres, A.M. (2016) Monitoring Olive Oils Quality and Oxidative Resistance during Storage Using an Electronic Tongue. LWT—Food Science and Technology, 73, 683-692. https://doi.org/10.1016/j.lwt.2016.07.002
Luna, G., Morales, M.T. and Aparicio, R. (2006) Changes Induced by UV Radiation during Virgin Olive Oil Storage. Journal of Agriculture and Food Chemistry, 54, 4790-4794. https://doi.org/10.1021/jf0529262
Nieto, M.L., Hodaifa, G., Rodriguez Vives, S., Gimenez Casares, J.A. and Casanova, M.S. (2009) Photodegradation of Phytosanitary Molecules Present in Virgin Olive Oil. Journal of Photochemistry and Photobiology A: Chemistry, 203, 1-6. https://doi.org/10.1016/j.jphotochem.2008.11.025
Kotsiou, K. and Tasioula-Margari, M. (2016) Monitoring the Phenolic Compounds of Greek Extra-Virgin Olive Oils during Storage. Food Chemistry, 200, 255-262. https://doi.org/10.1016/j.foodchem.2015.12.090
Pinatel, C., Petit, C., Ollivier, D. and Artaud, J. (2004) Outils pour l’amélioration organo-leptique des huiles d’olives vierges. OCL—Oilseeds & Fats Corps and Lipids, 11, 217-222. https://doi.org/10.1051/ocl.2004.0217
Afidol, Association Française interprofessionnelle de l’olive (2013). http://www.afidoltek.org/index.php/Fruit%C3%A9_noir
Talpur, M.Y., Sherazi, S.T.H., Mahesar, S.A. and Bhutto, A.A. (2010) A Simplified UV Spectrometric Method for Determination of Peroxide Value in Thermally Oxidized Canola Oil. Talanta, 80, 1823-1826. https://doi.org/10.1016/j.talanta.2009.10.028
Nissiotis, M. and Tasioula-Margari, M. (2002) Changes in Antioxidant Concentration of Virgin Olive Oil during Thermal Oxidation. Food Chemistry, 77, 371-376. https://doi.org/10.1016/S0308-8146(02)00113-9
Jolliffe, I.T. (2002) Principal Component Analysis. 2nd Edition, Springer, Berlin.
Frankel, E. (1984) Lipid Oxidation: Mechanisms, Products and Biological Significance. Journal of the American Oil Chemists’ Society, 61, 1908-1917. https://doi.org/10.1007/BF02540830
Naz, S., Siddiqi, R., Sheikh, H. and Sayeed, S.A. (2005) Deterioration of Olive, Corn and Soybean Oils due to Air, Light, Heat and Deep-Frying. Food Research International, 38, 127-134. https://doi.org/10.1016/j.foodres.2004.08.002
Moreno, M.M.C.M., Olivares, M.D., López, A.F.J., Adelantado, G.J.V. and Reig, B.F. (1999) Analytical Evaluation of Polyunsaturated Fatty Acids Degradation during Thermal Oxidation of Edible Oils by Fourier Transform Infrared Spectroscopy. Talanta, 50, 269-275. https://doi.org/10.1016/S0039-9140(99)00034-X
Shahidi, F. and Wanasundara, U.N. (2002) Methods for Measuring Oxidative Rancidity in Fats and Oils. In: Akoh, C.C. and Min, D.B., Eds., Food Lipids, Chemistry, Nutrition, and Biotechnology, Marcel Dekker Inc., New York, 465-505. https://doi.org/10.1201/9780203908815.ch14
Dobson, G., Christie, W.W. and Dobarganes, M.C. (1996) Changes in Molecular Species of Triacylglycerols during Frying. Consejo Superior de Investigaciones Cientificas (CSIC), 47, 34-37.
Koh, E. and Surh, J. (2015) Food Types and Frying Frequency Affect the Lipid Oxidation of Deep Frying Oil for the Preparation of School Meals in Korea. Food Chemistry, 174, 467-472. https://doi.org/10.1016/j.foodchem.2014.11.087
Sacchi, R., Paduano, A., Savarese, M., Vitaglione, P. and Fogliano, V. (2014) Extra Virgin Olive Oil: From Composition to “Molecular Gastronomy”. Advances in Nutrition and Cancer, 159, 325-338. https://doi.org/10.1007/978-3-642-38007-5_19