Chemical alterations taken place during deep-fat frying based on certain reaction products: a review.
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Jing Chen | Q. Shen | J. Chen | Ahmed S. M. Saleh | Qing Zhang | Qing Zhang | Ahmed S M Saleh | Qun Shen | Q. Shen
[1] B. Inbaraj,et al. Analysis and formation of trans fatty acids in hydrogenated soybean oil during heating , 2007 .
[2] G. Takeoka,et al. Effect of Heating on the Characteristics and Chemical Composition of Selected Frying Oils and Fats , 1997 .
[3] S. Marmesat,et al. Action and fate of natural and synthetic antioxidants during frying , 2010 .
[4] A. S. Csallany,et al. The effect of intermittent and continuous heating of soybean oil at frying temperature on the formation of 4-hydroxy-2-trans-nonenal and other α-, β-unsaturated hydroxyaldehydes , 2006 .
[5] L. Skibsted,et al. Structural analysis of hydroperoxy- and epoxy-triacylglycerols by liquid chromatography mass spectrometry. , 2004, Chemistry and physics of lipids.
[6] W. Christie,et al. Silver ion chromatography and gas chromatography-mass spectrometry in the structural analysis of cyclic dienoic acids formed in frying oils , 1995 .
[7] Santford Vance Overton,et al. Analysis of volatile organics in cooking oils by thermal desorption-gas chromatography-mass spectrometry , 1995 .
[8] Chemistry, biochemistry, and safety of acrylamide. A review. , 2003 .
[9] M. Yamane. High-performance liquid chromatography–thermospray ionization-mass spectrometry of the oxidation products of polyunsaturated-fatty acids , 2002 .
[10] S. Marmesat,et al. Chemistry of Frying , 2008 .
[11] E. Wąsowicz,et al. Products Formed During Thermo-oxidative Degradation of Phytosterols , 2009 .
[12] B. Kaina,et al. Degradation of heterocyclic aromatic amines in oil under storage and frying conditions and reduction of their mutagenic potential. , 2007, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[13] M. Jägerstad,et al. Influence of frying fat on the formation of heterocyclic amines in fried beefburgers and pan residues. , 1995, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[14] D. Schwartz,et al. The formation of oxo- and hydroxy-fatty acids in heated fats and oils , 1994 .
[15] R. Ostlund,et al. Phytosterols in human nutrition. , 2003, Annual review of nutrition.
[16] A. Ruiz,et al. Monitoring of heat‐induced degradation of edible oils by proton NMR , 2008 .
[17] W. Christie,et al. Gas chromatographic properties of cyclic dienoic fatty acids formed in heated linseed oil , 1996 .
[18] E. Choe,et al. Chemistry of deep-fat frying oils. , 2007, Journal of food science.
[19] B. R. Reddy,et al. Chemical reactions involved in the deep fat frying of foods: IV. Identification of acidic volatile decomposition products of hydrogenated cottonseed oil , 1968 .
[20] E. G. Perkins,et al. Dimer acids: Synthesis and mass spectrometry of the tetrahydroxy, dihydroxy, and diketo dinners of methyl stearate , 1989 .
[21] G. García-Llatas,et al. Current and new insights on phytosterol oxides in plant sterol-enriched food. , 2011, Chemistry and physics of lipids.
[22] A. Kamal-Eldin,et al. Effect of α- and γ-tocopherols on thermal polymerization of purified high-oleic sunflower triacylglycerols , 1998 .
[23] F. Courtois,et al. Kinetic Study of Hydroperoxide Degradation in Edible Oils Using Electron Spin Resonance Spectroscopy , 2012 .
[24] E. G. Perkins,et al. Analysis of Cyclic Fatty Acid Monomer 2-Alkenyl-4,4-dimethyloxazoline Derivatives by Gas Chromatography−Matrix Isolation−Fourier Transform Infrared Spectroscopy , 1996 .
[25] C. Chyau,et al. Release of volatile compounds from microwave heating of garlic juice with 2,4-decadienals , 1999 .
[26] J. A. Thompson,et al. Chemical reactions involved in the deep-fat frying of foods. VII. Identification of volatile decomposition products of trilinolein1 , 1978, Journal of the American Oil Chemists' Society.
[27] M. Jägerstad,et al. Chemistry, formation and occurrence of genotoxic heterocyclic amines identified in model systems and cooked foods , 1998 .
[28] W. Christie,et al. SATURATED BICYCLIC FATTY ACIDS FORMED IN HEATED SUNFLOWER OILS , 1997 .
[29] T. Cajka,et al. Alternative GC-MS approaches in the analysis of substituted pyrazines and other volatile aromatic compounds formed during Maillard reaction in potato chips. , 2009, Analytica chimica acta.
[30] F. Hidalgo,et al. The Maillard reaction and lipid oxidation , 2011 .
[31] W. Tsuzuki. cis-trans isomerization of carbon double bonds in monounsaturated triacylglycerols via generation of free radicals. , 2010, Chemistry and physics of lipids.
[32] K. Warner,et al. Effect of Deep-Fat Frying on Phytosterol Content in Oils with Differing Fatty Acid Composition , 2007 .
[33] V. Piironen,et al. GC-MS method for characterization and quantification of sitostanol oxidation products , 2004 .
[34] E. Wąsowicz,et al. Changes in phytosterols and their oxidation products during frying of French fries in rapeseed oil. , 2005 .
[35] Jaehwan Lee,et al. Evaluation of antioxidant capacity of sesamol and free radical scavengers at different heating temperatures , 2011 .
[36] T. Shibamoto,et al. Analysis of Volatile Compounds Formed from Fish Oil Heated with Cysteine and Trimethylamine Oxide , 1998 .
[37] In Hwa Han,et al. Formation of Toxic α,β-Unsaturated 4-Hydroxy-Aldehydes in Thermally Oxidized Fatty Acid Methyl Esters , 2009 .
[38] Evaluation of acrylamide formation in potatoes during deep-frying: the effect of operation and configuration , 2010 .
[39] G. Dedoussis,et al. Monitoring of 2,4-decadienal in oils and fats used for frying in restaurants in Athens, Greece , 2004 .
[40] G. Fenner,et al. Comparative effects of phytosterol oxides and cholesterol oxides in cultured macrophage-derived cell lines. , 2001, Journal of agricultural and food chemistry.
[41] P. White,et al. Influence of Polydimethylsiloxane on the Formation of 4-Hydroxynonenal in Soybean Oil at Frying Temperature , 2011 .
[42] F. Kummerow. The negative effects of hydrogenated trans fats and what to do about them. , 2009, Atherosclerosis.
[43] J. Vélez-Ruiz,et al. Mass, thermal and quality aspects of deep-fat frying of pork meat , 2006 .
[44] E. G. Perkins,et al. Rapid determination of double bond configuration and position along the hydrocarbon chain in cyclic fatty acid monomers , 1994, Lipids.
[45] O. Berdeaux,et al. Selection of methylation procedures for quantitation of short-chain glycerol-bound compounds formed during thermoxidation. , 1999, Journal of chromatography. A.
[46] I. Cho,et al. Quantification of trans fatty acid content in French fries of local food service retailers using attenuated total reflection – Fourier transform infrared spectroscopy , 2011 .
[47] A. Datta,et al. Moisture, Oil and Energy Transport During Deep-Fat Frying of Food Materials , 1999 .
[48] N. Kruger,et al. Nitrogen dioxide induces cis-trans-isomerization of arachidonic acid within cellular phospholipids. Detection of trans-arachidonic acids in vivo. , 1999, The Journal of biological chemistry.
[49] G. Morlock,et al. Quantification of heterocyclic aromatic amines in fried meat by HPTLC/UV-FLD and HPLC/UV-FLD: a comparison of two methods. , 2008, Journal of agricultural and food chemistry.
[50] A. Aro,et al. Analysis of C18:1cis and trans fatty acid isomers by the combination of gas-liquid chromatography of 4,4-dimethyloxazoline derivatives and methyl esters , 1998 .
[51] M. Dobarganes,et al. Quantitation and distribution of altered fatty acids in frying fats , 1995 .
[52] A. Maguire,et al. Phytosterol Oxidation Products: Their Formation, Occurrence, and Biological Effects , 2009 .
[53] K. Rennick,et al. Effect of elevated temperature on development of tocopherolquinones in oils. , 2006, Journal of agricultural and food chemistry.
[54] Constantina Tzia,et al. The effect of process time and temperature on the accumulation of polar compounds in cottonseed oil during deep‐fat frying , 2003 .
[55] Zacharias B. Maroulis,et al. Water loss and oil uptake as a function of frying time , 2000 .
[56] S. A. Sayeed,et al. Deterioration of olive, corn and soybean oils due to air, light, heat and deep-frying , 2005 .
[57] B. Matthäus,et al. Short‐chain fatty acids as marker for the degradation of frying fats and oils , 2008 .
[58] O. Berdeaux,et al. Evolution of short-chain glycerol-bound compounds during thermoxidation of FAME and monoacid TAG , 2002 .
[59] N. Totani,et al. Chemical properties and cytotoxicity of thermally oxidized oil. , 2008, Journal of oleo science.
[60] M. Greer,et al. High Performance Liquid Chromatography–Size Exclusion Chromatography for Rapid Analysis of Total Polar Compounds in Used Frying Oils , 2011 .
[61] V. Piironen,et al. Pan-frying may induce phytosterol oxidation , 2007 .
[62] E. Kafkas,et al. Effect of the type of frying oil on volatile compounds of goatfish (Upeneus pori) during cold storage , 2011 .
[63] A. Fullana,et al. Emissions of volatile aldehydes from heated cooking oils , 2010 .
[64] K. Schaich. Lipid Oxidation: Theoretical Aspects , 2005 .
[65] Constantina Tzia,et al. A kinetic study of oil deterioration during frying and a comparison with heating , 2002 .
[66] M. Eberlin,et al. HPLC separation and determination of 12 cholesterol oxidation products in fish: comparative study of RI, UV, and APCI-MS detectors. , 2006, Journal of agricultural and food chemistry.
[67] N. A. M. Eskin,et al. Quality control in the use of deep frying oils , 1984 .
[68] R. Buttery,et al. Volatile Constituents of Used Frying Oils , 1996 .
[69] F. Destaillats,et al. Evidence for [1,5] sigmatropic rearrangements of CLA in heated oils , 2002, Lipids.
[70] M. Jägerstad,et al. Lipids and phytosterol oxidation products in commercial potato crisps commonly consumed in Sweden , 2008 .
[71] A. Ahromrit,et al. Heat and mass transfer in deep-frying of pumpkin, sweet potato and taro , 2010, Journal of food science and technology.
[72] J. -. Martin,et al. Cyclic fatty acid monomers from heated oil modify the activities of lipid synthesizing and oxidizing enzymes in rat liver. , 2000, The Journal of nutrition.
[73] S. Bastida,et al. Polar content vs. TAG oligomer content in the frying-life assessment of monounsaturated and polyunsaturated oils used in deep-frying , 2002 .
[74] C. Alamprese,et al. Tocopherols and tocotrienols as free radical-scavengers in refined vegetable oils and their stability during deep-fat frying , 2007 .
[75] P. Gillatt. 12 – Flavour and aroma development in frying and fried food , 2001 .
[76] G. Dobson,et al. Monocyclic dienoic fatty acids formed from γ-linolenic acid in heated evening primrose oil , 1999 .
[77] A. Romero,et al. Cyclic fatty acid monomer formation in domestic frying of frozen foods in sunflower oil and high oleic acid sunflower oil without oil replenishment. , 2006, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[78] A. Kiritsakis,et al. Effect of phenolic extracts on trans fatty acid formation during frying , 1999 .
[79] D. Barrera-Arellano,et al. Loss of tocopherols and formation of degradation compounds in triacylglycerol model systems heated at high temperature , 1999 .
[80] A. Voragen,et al. Identification and olfactometry of French fries flavour extracted at mouth conditions , 2005 .
[81] Genyi Zhang,et al. Occurrence and analytical methods of acrylamide in heat-treated foods. Review and recent developments. , 2005, Journal of chromatography. A.
[82] F. Mendoza,et al. An experimental set-up for studying acrylamide formation in potato crisps , 2007 .
[83] M. Nakajima,et al. cis/trans-Isomerisation of triolein, trilinolein and trilinolenin induced by heat treatment , 2008 .
[84] J. Mastelić,et al. A study of volatile flavour substances in Dalmatian traditional smoked ham: Impact of dry-curing and frying , 2007 .
[85] A. Kamal-Eldin,et al. Aldehydic acids in frying oils: formation, toxicological significance and analysis , 1996 .
[86] F. Hidalgo,et al. Contribution of lipid oxidation products to acrylamide formation in model systems. , 2008, Journal of agricultural and food chemistry.
[87] Rosana G. Moreira,et al. Total frying‐use time effects on soybean‐oil deterioration and on tortilla chip quality , 1996 .
[88] S. Filip,et al. Influence of natural antioxidants on the formation of trans‐fatty‐acid isomers during heat treatment of sunflower oil , 2011 .
[89] Leland L. Smith. Review of progress in sterol oxidations: 1987–1995 , 1996, Lipids.
[90] Chen Yc,et al. Determination of polycyclic aromatic hydrocarbons in fumes from fried chicken legs. , 2003 .
[91] P. Harrington,et al. Thermal degradation and isomerisation kinetics of triolein studied by infrared spectrometry and GC-MS combined with chemometrics. , 2009, Chemistry and physics of lipids.
[92] J. Manson,et al. Intake of trans fatty acids and risk of coronary heart disease among women , 1993, The Lancet.
[93] Martin M. F. Choi,et al. SPE/HPLC/UV studies on acrylamide in deep-fried flour-based indigenous Chinese foods , 2008 .
[94] N. Haase,et al. Factors affecting the concentration of acrylamide during deep‐fat frying of potatoes , 2004 .
[95] A. Brash,et al. Synthesis of dihydroperoxides of linoleic and linolenic acids and studies on their transformation to 4-hydroperoxynonenal , 2005, Lipids.
[96] Anna-Maija Lampi,et al. Distribution of monomeric, dimeric and polymeric products of stigmasterol during thermo-oxidation. , 2009 .
[97] G. Mittal,et al. Regulating the use of degraded oil/fat in deep-fat/oil food frying. , 1997, Critical reviews in food science and nutrition.
[98] W. Artz,et al. Pan-frying stability of NuSun oil, a mid-oleic sunflower oil , 2003 .
[99] A. Christy. Thermally Induced Isomerization of Trilinolein and Trilinoelaidin at 250 °C: Analysis of Products by Gas Chromatography and Infrared Spectroscopy , 2009, Lipids.
[100] Han-Seung Shin,et al. Influence of extra virgin olive oil on the formation of heterocyclic amines in roasted beef steak , 2011 .
[101] Eden Tareke,et al. Analysis of acrylamide, a carcinogen formed in heated foodstuffs. , 2002, Journal of agricultural and food chemistry.
[102] S. Marmesat,et al. Formation and evolution of monoepoxy fatty acids in thermoxidized olive and sunflower oils and quantitation in used frying oils from restaurants and fried-food outlets. , 2004, Journal of agricultural and food chemistry.
[103] Feng Chen,et al. Heterocyclic amines: chemistry and health. , 2006, Molecular nutrition & food research.
[104] P. Jacobs,et al. Epoxide yield determination of oils and fatty acid methyl esters using 1H NMR , 2004 .
[105] Joaquín Velasco,et al. Interactions between fat and food during deep-frying , 2000 .
[106] V. Piironen,et al. Cytotoxic and apoptotic effects of single and mixed oxides of beta-sitosterol on HepG2-cells. , 2009, Toxicology in vitro : an international journal published in association with BIBRA.
[107] J. Hodge. Dehydrated Foods, Chemistry of Browning Reactions in Model Systems , 1953 .
[108] M. Mossoba,et al. Preparation, separation, and confirmation of the eight geometrical cis/trans conjugated linoleic acid isomers 8,10-through 11,13–18∶2 , 1999, Lipids.
[109] Imre Blank,et al. Food chemistry: Acrylamide from Maillard reaction products , 2002, Nature.
[110] R. Cava,et al. Effect of the type of frying culinary fat on volatile compounds isolated in fried pork loin chops by using SPME-GC-MS. , 2004, Journal of agricultural and food chemistry.
[111] J. Keramat,et al. Acrylamide in Foods: Chemistry and Analysis. A Review , 2011 .
[112] E. Choe,et al. Spinach (Spinacia oleracea) powder as a natural food-grade antioxidant in deep-fat-fried products. , 2002, Journal of agricultural and food chemistry.
[113] M. Mossoba,et al. Determination of total trans fats and oils by infrared spectroscopy for regulatory compliance , 2007, Analytical and bioanalytical chemistry.
[114] M. I. Bhanger,et al. GC-MS quantification of fatty acid profile including trans FA in the locally manufactured margarines of Pakistan. , 2008, Food chemistry.
[115] I. Sam Saguy,et al. Integrated approach to deep fat frying: engineering, nutrition, health and consumer aspects , 2003 .
[116] J. Sebedio,et al. Heat treatment of vegetable oils I. Isolation of the cyclic fatty acid monomers from heated sunflower and linseed oils , 1987 .
[117] Stephen S. Chang,et al. Chemical reactions involved in the deep fat frying of foods. II. Identification of acidic volatile decomposition products of corn oil , 1967 .
[118] A. Romero,et al. Cyclic FA monomers in high-oleic acid sunflower oil and extra virgin olive oil used in repeated frying of fresh potatoes , 2003 .
[119] N. Porter,et al. Mechanisms of free radical oxidation of unsaturated lipids , 1995, Lipids.
[120] M. Hendrickx,et al. Quantifying the formation of carcinogens during food processing: acrylamide , 2005 .
[121] Stephen S. Chang,et al. Chemical reactions involved in the deep- fat frying of foods: IX. Identification of the volatile decomposition products of triolein , 1983, Journal of the American Oil Chemists' Society.
[122] Renato Grimaldi,et al. Zero trans fats from soybean oil and fully hydrogenated soybean oil: Physico-chemical properties and food applications , 2009 .
[123] J. Sebedio,et al. Trans fatty acids : Definition and occurrence in foods , 2007 .
[124] C. M. Seppanen,et al. Formation of 4-hydroxynonenal, a toxic aldehyde, in soybean oil at frying temperature , 2002 .
[125] I Sam Saguy,et al. Mechanism of oil uptake during deep-fat frying and the surfactant effect-theory and myth. , 2006, Advances in colloid and interface science.
[126] F. Destaillats,et al. Thermally induced formation of conjugated isomers of linoleic acid , 2005 .
[127] Eleni Kalogianni,et al. Effect of potato presence on the degradation of extra virgin olive oil during frying , 2010 .
[128] L. Skibsted,et al. Formation and hydrolysis of triacylglycerol and sterols epoxides: role of unsaturated triacylglycerol peroxyl radicals. , 2004, Free radical biology & medicine.
[129] N. Porter. Mechanisms for the autoxidation of polyunsaturated lipids , 1986 .
[130] Chi-Tang Ho,et al. Volatile compounds formed from thermal interaction of 2,4-decadienal with cysteine and glutathione , 1989 .
[131] B. Wedzicha,et al. Food chemistry: Acrylamide is formed in the Maillard reaction , 2002, Nature.
[132] E. G. Perkins,et al. Confirmatory mass-spectral data for cyclic fatty acid monomers , 1996 .
[133] C. Chyau,et al. Effects of various oils on volatile compounds of deep-fried shallot flavouring , 2001 .
[134] M. Murkovic. Chemistry, formation and occurrence of genotoxic heterocyclic aromatic amines in fried products , 2004 .
[135] Francisco J. Sánchez-Muniz,et al. Effect of oil replenishment during deep-fat frying of frozen foods in sunflower oil and high-oleic acid sunflower oil , 1998 .
[136] Patricia S. Uriarte,et al. Contribution to further understanding of the evolution of sunflower oil submitted to frying temperature in a domestic fryer: study by 1H nuclear magnetic resonance. , 2009, Journal of agricultural and food chemistry.
[137] F. Destaillats,et al. Directed sequential synthesis of conjugated linoleic acid isomers from Δ7, 9 to Δ12, 14 , 2003 .
[138] George Boskou,et al. Content of trans,trans-2,4-decadienal in deep-fried and pan-fried potatoes , 2006 .
[139] E. Schulte. Determination of higher carbonyl compounds in used frying fats by HPLC of DNPH derivatives , 2002, Analytical and bioanalytical chemistry.
[140] S. Ou,et al. Effect of antioxidants on elimination and formation of acrylamide in model reaction systems. , 2010, Journal of hazardous materials.
[141] M. Karel,et al. Interaction of peroxidizing methyl linoleate with some proteins and amino acids. , 1975, Journal of agricultural and food chemistry.
[142] Z. Réblová. The effect of temperature on the antioxidant activity of tocopherols , 2006 .
[143] V. Piironen,et al. Determination of thermo-oxidation products of plant sterols. , 2002, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[144] S. Marmesat,et al. Quantitation of short-chain glycerol-bound compounds in thermoxidized and used frying oils. A monitoring study during thermoxidation of olive and sunflower oils. , 2005, Journal of agricultural and food chemistry.
[145] M. Dobarganes,et al. Formation of polymerization compounds during thermal oxidation of cottonseed oil, partially hydrogenated cottonseed oil and their blends , 2006 .
[146] E. G. Perkins,et al. Frying performance of low-linolenic acid soybean oil , 2000 .
[147] S. Grégoire,et al. Influence of heat and refining on formation of CLA isomers in sunflower oil , 2003 .
[148] V. Piironen,et al. Formation and decomposition of stigmasterol hydroperoxides and secondary oxidation products during thermo-oxidation , 2005 .
[149] F. Hidalgo,et al. Coordinate Contribution of Lipid Oxidation and Maillard Reaction to the Nonenzymatic Food Browning , 2005, Critical reviews in food science and nutrition.
[150] C. Gertz,et al. Analysis of acrylamide and mechanisms of its formation in deep‐fried products , 2002 .
[151] Yiping Ren,et al. Rapid determination of acrylamide contaminant in conventional fried foods by gas chromatography with electron capture detector. , 2006, Journal of chromatography. A.
[152] S. Garrigues,et al. Direct determination of polymerized triglycerides in deep-frying olive oil by attenuated total reflectance–Fourier transform infrared spectroscopy using partial least squares regression , 2010, Analytical and bioanalytical chemistry.
[153] R. Verhé,et al. Modeling of α-tocopherol loss and oxidation products formed during thermoxidation in triolein and tripalmitin mixtures , 2001, Lipids.
[154] R. Przybylski,et al. Antioxidative properties of phenolic acids and interaction with endogenous minor components during frying , 2011 .
[155] W. Artz,et al. Formation of 4-Hydroxy-2-(E)-Nonenal in a Corn–Soy Oil Blend: a Controlled Heating Study Using a French Fried Potato Model , 2011 .
[156] M. S. Brewer,et al. VOLATILE COMPOUNDS AND SENSORY CHARACTERISTICS OF FRYING FATS , 1999 .
[157] P. Wardman,et al. Trans-fatty acids and radical stress: what are the real culprits? , 2006, Bioorganic & medicinal chemistry.
[158] F. Pedreschi,et al. Acrylamide reduction under different pre-treatments in French fries , 2007 .
[159] K. Warner,et al. The effect of phytosterol concentration on oxidative stability and thermal polymerization of heated oils , 2008 .
[160] Chi-Tang Ho,et al. Volatile compounds of deep-oil fried, microwave-heated, and oven-baked garlic slices , 1993 .
[161] E. G. Perkins,et al. Cyclic fatty acid monomer formation in frying fats. I. Determination and structural study , 1987 .
[162] W. Nawar,et al. Thermal interaction of linoleic acid and its esters with valine , 1981 .
[163] P. Rocculi,et al. Effect of frying time on acrylamide content and quality aspects of French fries , 2008 .
[164] S. Marmesat,et al. Quantitative determination of epoxy acids, keto acids and hydroxy acids formed in fats and oils at frying temperatures. , 2008, Journal of chromatography. A.
[165] D. Derewiaka,et al. Phytosterol oxides content in selected thermally processed products , 2012, European Food Research and Technology.
[166] C. Lerici,et al. Interaction between Maillard reaction products and lipid oxidation in starch-based model systems. , 2000, Journal of the science of food and agriculture.
[167] W. Christie,et al. Monocyclic saturated fatty acids formed from oleic acid in heated sunflower oils , 1996 .
[168] F. Sánchez-Muniz,et al. Trans fatty acid production in deep fat frying of frozen foods with different oils and frying modalities , 2000 .
[169] K. Grob,et al. Influence of the frying temperature on acrylamide formation in French fries , 2006 .
[170] E. Zoidis,et al. PHYSICOCHEMICAL CHANGES OF OLIVE OIL AND SELECTED VEGETABLE OILS DURING FRYING , 2006 .
[171] J. -. Martin,et al. Effect of fatty acid positional distribution and triacylglycerol composition on lipid by-products formation during heat treatment: III—Cyclic fatty acid monomers study , 1998 .
[172] Chi-Tang Ho,et al. Chemical reactions involved in the deep-fat frying of foods1 , 1978 .
[173] G. Márquez‐Ruiz,et al. A simple procedure to evaluate the performance of fats and oils at frying temperatures , 1997 .
[174] E. G. Perkins,et al. Isolation and characterization of dinners formed in used soybean oil , 1989 .
[175] W. Christie,et al. Formation of cyclic fatty acids during the frying process , 2000 .
[176] F. Salta,et al. Formation and distribution of oxidized fatty acids during deep‐ and pan‐frying of potatoes , 2007 .
[177] E. G. Perkins,et al. The effects of cyclic fatty acid monomers on cultured porcine endothelial cells , 1997, Lipids.
[178] M. Dobarganes,et al. Sensitive and accurate quantitation of monoepoxy fatty acids in thermoxidized oils by gas-liquid chromatography. , 2002, Journal of chromatography. A.
[179] T. Shibamoto,et al. Headspace volatile compounds formed from heated corn oil and corn oil with glycine , 1991 .
[180] Ángel A. Carbonell-Barrachina,et al. Volatile aldehyde emissions from heated cooking oils , 2004 .
[181] R. Gatermann,et al. Analysis of acrylamide in different foodstuffs using liquid chromatography–tandem mass spectrometry and gas chromatography–tandem mass spectrometry , 2004 .
[182] G. Márquez‐Ruiz,et al. Short-Chain Fatty Acid Formation during Thermoxidation and Frying , 1996 .
[183] M. Dobarganes,et al. Characterization, quantitation and evolution of monoepoxy compounds formed in model systems of fatty acid methyl esters and monoacid triglycerides heated at high temperature , 1999 .
[184] A. Brash,et al. Two Distinct Pathways of Formation of 4-Hydroxynonenal , 2001, The Journal of Biological Chemistry.
[185] Miguel de la Guardia,et al. Direct determination of polymerised triacylglycerides in deep-frying vegetable oil by near infrared spectroscopy using Partial Least Squares regression , 2012 .
[186] L. Hagmar,et al. Differences in hemoglobin adduct levels of acrylamide in the general population with respect to dietary intake, smoking habits and gender. , 2005, Mutation research.
[187] Chong-Tai Kim,et al. Effects of tocopherols and tocotrienols on the inhibition of autoxidation of conjugated linoleic acid , 2010 .
[188] Patricia S. Uriarte,et al. Aldehydes contained in edible oils of a very different nature after prolonged heating at frying temperature: Presence of toxic oxygenated α,β unsaturated aldehydes , 2012 .
[189] J. Sebedio,et al. Cyclic fatty acids: natural sources, formation during heat treatment, synthesis and biological properties. , 1989, Progress in lipid research.
[190] M. Mossoba,et al. Variations in isomer distribution in commercially available conjugated linoleic acid , 1999 .
[191] S. Marmesat,et al. Formation of short-chain glycerol-bound oxidation products and oxidised monomeric triacylglycerols during deep-frying and occurrence in used frying fats , 2004 .
[192] V. Segtnan,et al. On-line monitoring of fat, dry matter and acrylamide contents in potato chips using near infrared interactance and visual reflectance imaging , 2010 .
[193] A. S. Csallany,et al. Incorporation of the toxic aldehyde 4-hydroxy-2-trans-nonenal into food fried in thermally oxidized soybean oil , 2004 .
[194] M. Rudzińska,et al. β-Sitosterol and campesterol stabilisation by natural and synthetic antioxidants during heating , 2011 .
[195] J. Rossell. Frying : Improving Quality , 2001 .
[196] T. Gomes,et al. Use of the high performance size exclusion chromatography analysis for the measurement of the degree of hydrolytic and oxidative degradation of the lipid fraction of biscuits , 2007 .
[197] Yan-Hwa Chu,et al. Effects of sugar, salt and water on soybean oil quality during deep-frying , 1994 .
[198] Chung‐May Wu,et al. Volatile compounds in oils after deep frying or stir frying and subsequent storage , 1992 .
[199] M. Jägerstad,et al. Genotoxicity of heat-processed foods. , 2005, Mutation research.
[200] K. Warner,et al. Effect of phytosterol structure on thermal polymerization of heated soybean oil , 2008 .
[201] E. G. Perkins,et al. Elucidation of cyclic fatty acid monomer structures. Cyclic and bicyclic ring sizes and double bond position and configuration , 1995 .
[202] C. V. Van Peteghem,et al. Influence of oil type on the amounts of acrylamide generated in a model system and in French fries. , 2005, Journal of agricultural and food chemistry.
[203] M. Craig-Schmidt. World-wide consumption of trans fatty acids. , 2006, Atherosclerosis. Supplements.
[204] J. Sebedio,et al. Effect of fatty acid positional distribution and triacylglycerol composition on lipid by-products formation during heat treatment: II. Trans isomers , 1998 .
[205] J. Sebedio,et al. Linoleic acid isomers in heat treated sunflower oils , 1988 .
[206] W. Neff,et al. Electrospray ionization MS of high M.W. TAG oligomers , 2004 .
[207] A. Romero,et al. Cyclic fatty acid monomers and thermoxidative alteration compounds formed during frying of frozen foods in extra virgin olive oil , 2000 .
[208] S. Garrigues,et al. Monitoring of Polymerized Triglycerides in Deep-Frying Oil by On-Line GPC-FTIR Spectrometry Using the Science Based Calibration Multivariate Approach , 2010 .
[209] W. Nawar,et al. Thermal decomposition of some phenolic antioxidants , 1991 .
[210] R. Przybylski,et al. Sitosterol Thermo-oxidative Degradation Leads to the Formation of Dimers, Trimers and Oligomers: A Study Using Combined Size Exclusion Chromatography/Mass Spectrometry , 2010, Lipids.
[211] V. Gökmen,et al. Determination of acrylamide in potato chips and crisps by high-performance liquid chromatography. , 2005, Journal of chromatography. A.
[212] E. G. Perkins,et al. Effects of dietary heated fats on rat liver enzyme activity , 1996, Lipids.
[213] E. Goicoechea,et al. Toxic Oxygenated α,β-Unsaturated Aldehydes and their Study in Foods: A Review , 2008, Critical reviews in food science and nutrition.
[214] W. Tsuzuki,et al. Formation of trans fatty acids in edible oils during the frying and heating process , 2010 .
[215] J. Keramat,et al. Acrylamide in Baking Products: A Review Article , 2011 .
[216] Maciej S. Buchowski,et al. Changes in antioxidant activity and free radical scavenging potential of rosemary extract and tocopherols in isolated rapeseed oil triacylglycerols during accelerated tests , 2005 .
[217] A. Christy. Evidence in the formation of conjugated linoleic acids from thermally induced 9t12t linoleic acid: a study by gas chromatography and infrared spectroscopy. , 2009, Chemistry and physics of lipids.
[218] Mar Villamiel,et al. Heat transfer coefficient during deep-fat frying. , 2009 .
[219] Stephen S. Chang,et al. Isolation and identification of volatile compounds from fried chicken , 1983 .
[220] H. Chun,et al. VOLATILE NITROGEN‐CONTAINING COMPOUNDS GENERATED FROM MAILLARD REACTIONS UNDER SIMULATED DEEP‐FAT FRYING CONDITIONS , 1997 .
[221] A. Kamal-Eldin,et al. Characterisation of aldehydic acids in used and unused frying oils , 1997 .
[222] Kathleen Warner,et al. Chemistry of frying oils. , 2002 .
[223] M. Dobarganes,et al. Effect of fatty acid positional distribution and triacylglycerol composition on lipid by-products formation during heat treatment: I. polymer formation , 1998 .
[224] M. Mellema. Mechanism and reduction of fat uptake in deep-fat fried foods , 2003 .
[225] P A Luning,et al. Possible causes of variation in acrylamide concentration in French fries prepared in food service establishments: an observational study. , 2012, Food chemistry.
[226] V. Fogliano,et al. Lipid oxidation promotes acrylamide formation in fat-rich model systems , 2010 .
[227] K. B. Hicks,et al. Phytosterols, phytostanols, and their conjugates in foods: structural diversity, quantitative analysis, and health-promoting uses. , 2002, Progress in lipid research.
[228] L. Franco,et al. Thermoinduced lipid oxidation of a culinary oil: a kinetic study of the oxidation products by magnetic resonance spectroscopies. , 2010, The journal of physical chemistry. A.
[229] M. Dobarganes,et al. Determination of polar compounds, polymerized and oxidized triacylglycerols, and diacylglycerols in oils and fats: results of collaborative studies and the standardized method (Technical report) , 2000 .
[230] P. Lambelet,et al. Isolation and structural analysis of the cyclic fatty acid monomers formed from eicosapentaenoic and docosahexaenoic acids during fish oil deodorization. , 2007, Journal of chromatography. A.
[231] D. Mozaffarian. Trans fatty acids - effects on systemic inflammation and endothelial function. , 2006, Atherosclerosis. Supplements.
[232] F. Destaillats,et al. On the mechanisms of cyclic and bicyclic fatty acid monomer formation in heated edible oils , 2005 .
[233] C. Spangler. Thermal [1,j] sigmatropic rearrangements , 1976 .
[234] V. Piironen,et al. Liquid chromatography mass spectrometry for plant sterol oxide determination in complex mixtures , 2008 .
[235] Sylwia Mildner-Szkudlarz,et al. The potential of different techniques for volatile compounds analysis coupled with PCA for the detection of the adulteration of olive oil with hazelnut oil , 2008 .
[236] Z. de Lourdes Cardeal,et al. Determination of acrolein in french fries by solid-phase microextraction gas chromatography and mass spectrometry. , 2011, Journal of chromatography. A.