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A review on the status of the phenolic compounds and antioxidant capacity of the flour: Effects of cereal processing

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Pages S798-S809 | Received 03 Sep 2016, Accepted 31 Mar 2017, Published online: 18 Jul 2017

References

  • Dewey, K.G.; Brown, K.H. Update on Technical Issues Concerning Complementary Feeding of Young Children in Developing Countries and Implications for Intervention Programs. Food and Nutrition Bulletin 2003, 241, 5–28.
  • Fardet, A. New Hypotheses for the Health-Protective Mechanisms of Whole-Grain Cereals: What Is beyond Fibre? Nut Researcher Reviews 2010, 23, 65–134.
  • Kadiri, O.; Olawoye, B. Underutilized Indigenous Vegetable (UIV) in Nigeria: A Rich Source of Nutrient and Antioxidants- A Review. Annals Food Sciences Technical 2015, 16(2), 236–247.
  • Fernandez-Panchon, M.S.; Villano, D.; Troncoso, A.M.; Garcia-Parrilla, M.C. Antioxidant Activity of Phenolic Compounds: From in Vitro Results to in Vivo Evidence. Critical Reviews Food Sciences Nutrition 2008, 48, 649–671.
  • Scalbert, A.; Manach, C.; Morand, C.; Remesy, C.; Jimenez, L. Dietary Polyphenols and the Prevention of Diseases. Critical Reviews Food Sciences Nutrition 2005, 45, 287–306.
  • Boskov-Hansen, H.; Andersen, M.F.; Nielsen, L.M.; Back-Knudsen, K.E.; Meyer, A.S.; Christensen, L.P.; et al. Changes in Dietary Fibre, Phenolic Acids and Activity of Endogenous Enzymes during Rye Bread Making. European Food Researcher Technical 2002, 214, 33–42.
  • Dewanto, V.; Wu, X.; Adom, K.K.; Liu, R.H. Thermal Processing Enhances the Nutritional Value of Tomatoes by Increasing Total Antioxidant Activity. Journal Agricultural Food Chemical 2002a, 50, 3010–3014.
  • Ðordevic, T.M.; Šiler-Marinkovic´, S.S.; Dimitrijevic´-Brankovic´, S. I. Effect of Fermentation on Antioxidant Properties of Some Cereals and Pseudo Cereals. Food Chem. 2010, 119(3), 957–963.
  • Huang, D.; Ou, B.; Hampsch-Woodill, M.; Flanagan, J.A.; Prior, R.L. High Throughput Assay of Oxygen Radical Absorbance Capacity (ORAC) Using a Multichannel Liquid Handling System Coupled with a Microplate Fluorescence Reader in 96-Well Format. Journal Agricultural Food Chemical 2002, 50(16), 4437–4444.
  • Kono, I.; Himeno, K. Changes in Gamma-Aminobutyric Acid Content during Beni-Koji Making. Bioscience Biotechnic Biochemical 2000, 64(3), 617–619.
  • Kadiri, O.; Olawoye, B.; Fawale, O.S.; Adalumo, O.A.; Nutraceutical and Antioxidant Properties of the Seeds, Leaves and Fruits of Carica papaya: Potential Relevance to Humans Diet, the Food Industry and the Pharmaceutical Industry: A Review. Turk Journal Agricultural - Food Sciences Technology 2016, 4(12), 1039–1052.
  • Krishnaswamy, K.; Raghuramulu, N. Bioactive Phytochemicals with Emphasis on Dietary Practice. Industrial Journal Medica Researcher 1998, 1998(108), 167–181.
  • Yun, K.-J.; Koh, D.-J.; Kim, S.-H.; Park, S.J.; Ryu, J.H.; Kim, D.-G.; Lee, J.-Y.; Lee, K.-T. Anti-Inflammatory Effects of Sinapic Acid through the Suppression of Inducible Nitric Oxide Synthase, Cyclooxygase-2, and Pro-Inflammatory Cytokines Expressions via Nuclear Factor-Kappa B Inactivation. Journal of Agricultural and Food Chemistry 2008, (2008(56), 10265–10272.
  • Nagah, A.M.; Seal, C.J. In Vitro Procedure to Predict Apparent Antioxidant Release from Wholegrain Foods Measured Using Three Different Analytical Methods. Journal of the Science of Food and Agriculture 2005, 85, 1177–1185.
  • Miller, N.J.; Rice-Evans, C.A. Factors Influencing the Antioxidant Activity Determined by the ABTS+ Radical Cation Assay. Free Rad Researcher 1997, 26(3), 195–199.
  • Kadiri, O.; Charles, T.A.; Olawoye, B.; Gbadamosi, S.O. Characterization and Antioxidant Evaluation of Phenolic Compounds Extracted from the Protein Concentrate and Protein Isolate Produced from Pawpaw (Carica papaya Linn.) Seeds. International Journal Food Properties 2016, 10.1080/10942912.2016.1230874.
  • Chu, S.-C.; Chen, C. Effects of Origins and Fermentation Time on the Antioxidant Activities of Kombucha. Food Chemistry 2006, 98(3), 502–507.
  • Khokhar, S.; Owusu Apenten, R.K. Iron Binding Characteristics of Phenolic Compounds: Some Tentative Structure–Activity Relations. Food Chemistry 2003, 81(1), 133–140.
  • Zielinski, H.; Kozlowska, H.; Lewczuk, B. Bioactive Compounds in the Cereal Grains before and after Hydrothermal Processing. Innovative Food Science Emerging Technologies 2001, 2(3), 159–169.
  • Olawoye, B.; Optimization, K.O. Response Surface Modeling of Antioxidant Activities of Amaranthus virides Seed Flour Extract. Annals Journal Food Sciences Techn 2016, 17(1), 114–123.
  • Maggi-Capeyron, M.F.; Ceballos, P.; Cristol, J.P.; Delbosc, S.; Le Doucen, C.; Pons, M.; Leger, C.L.; Descomps, B. Wine Phenolic Antioxidants Inhibit AP-1 Transcriptional Activity. Journal of Agricultural and Food Chemistry 2001, 49, 5646–5652.
  • Liu, R.H. Whole Grain Phytochemicals and Health. Journal of Cereal Science 2007, 46, 207–219.
  • Nicoli, M.C.; Anese, M.; Parpinel, M. Influence of Processing on the Antioxidant Properties of Fruit and Vegetables. Trends Food Sciences Technical 1999, 10, 94–100.
  • Kadiri, O. Studies of the Chemical Composition, Functional properties and Antioxidant properties of Pawpaw (Carica papaya) Seed Flour, Protein Concentrate and Protein isolate, MSc Thesis, Obafemi Awolowo University, 2015, Ile-Ife, Nigeria.
  • Kadiri, O.; Olawoye, B. Vernonia amygdalina: An Underutilized Vegetable with Nutraceutical Potentials – A Review. Turk Journal Agricultural - Food Sciences Technology 2016, 4(9), 763–768.
  • Arts, I.C.; Hollman, P.C. Polyphenols and Disease Risk in Epidemiologic Studies. The American Journal of Clinical Nutrition 2005, 81, 317S–325S.
  • Cole, G.M.; Lim, G.P.; Yang, F.; Teter, B.; Begum, A.; Ma, Q.; Harris-White, M.E.; Frautschy, S.A. Prevention of Alzheimer’s Disease: Omega-3 Fatty Acid and Phenolic Anti-Oxidant Interventions. Neurobiology Aging Supplement 2005, 2005, 133–136.
  • Hertog, M.G.; Feskens, E.J.; Hollman, P.C.; Katan, M.B.; Kromhout, D. Dietary Flavonoids and Cancer Risk in the Zutphen Elderly Study. Nutritional Cancer 1994, 22, 175–184.
  • Rasmussen, S.E.; Frederiksen, H.; Struntze Krogholm, K.; Poulsen, L. Dietary Proanthocyanidins: Occurrence, Dietary Intake, Bioavailability, and Protection against Cardiovascular Disease. Molecular Nutritional Food Researcher 2005, 49, 159–174.
  • Chinma, C.E.; Julian, C.A.; Omotade, C.S.; Raliat, O.O.; Nehemiah, D. Effect of Germination on the Physicochemical and Antioxidant Characteristics of Rice Flour from Three Rice Varieties from Nigeria. Food Chemistry 2015, 185, 454–458.
  • Lotito., S.B.; Frei, B. Consumption of Flavonoid-Rich Foods and Increased Plasma Antioxidant Capacity in Humans: Cause, Consequence, or Epiphenomenon? Free Radical Biology and Medicine 2006, 41.
  • Martins, S.; Mussatto, S.I.; Martínez-Avila, G.; Montañez-Saenz, J.; Aguilar, C.N.; Teixeira, J.A. Bioactive Phenolic Compounds: Production and Extraction by Solid-State Fermentation. A Review. Biotechnology Advances 2011, 29(3), 365–373.
  • Torino, M.I.; Limón, R.I.; Martínez-Villaluenga, C.; Mäkinen, S.; Pihlanto, A.; Vidal- Valverde, C.; et al. Antioxidant and Antihypertensive Properties of Liquid and Solid State Fermented Lentils. Food Chemistry 2013, 136(2), 1030–1037.
  • Frias, J.; Miranda, M.L.; Doblado, R.; Vidal-Valverde, C. Effect of Germination and Fermentation on the Antioxidant Vitamin Content and Antioxidant Capacity of Lupinus albus L. Var. Multolupa. Food Chemistry 2005, 92(2), 211–220.
  • Lee, I.H.; Hung, Y.-H.; Chou, C.-C. Solid-State Fermentation with Fungi to Enhance the Antioxidative Activity, Total Phenolic and Anthocyanin Contents of Black Bean. International Journal Food Microbiology 2008, 121(2), 150–156.
  • Seki, T.; Morimura, S.; Tabata, S.; Tang, Y.; Shigematsu, T.; Kida, K. Antioxidant Activity of Vinegar Produced from Distilled Residues of the Japanese Liquor Shochu. Journal of Agricultural and Food Chemistry 2008, 56(10), 3785–3790.
  • Wang, C.-Y.; Sz-Jie, W.; Shyu, Y.-T. Antioxidant Properties of Certain Cereals as Affected by Food-Grade Bacteria Fermentation. Journal of Bioscience and Bioengineering 2014, 117(4), 449–456.
  • Anson, N.M.; Selinheimo, E.; Havenaar, R.; Aura, A.-M.; Mattila, I.; Lehtinen, P.; Bast, A.; Poutanen, K.; Haenen, G.R.M.M. Bioprocessing of Wheat Bran Improves in Vitro Bioaccessibility and Colonic Metabolism of Phenolic Compounds. Journal of Agricultural and Food Chemistry 2009, 57, 6148–6155.
  • Cai, S.; Wang, O.; Wu, W.; Zhu, S.; Zhou, F.; Ji, B.; et al. Comparative Study of the Effects of Solid-State Fermentation with Three Filamentous Fungi on the Total Phenolics Content (TPC), Flavonoids, and Antioxidant Activities of Sub-Fractions from Oats (Avena sativa L.). Journal of Agricultural and Food Chemistry 2012, 60(1), 507–513.
  • Georgetti, S.R.; Vicentini, F.T.; Yokoyama, C.Y.; Borin, M.F.; Spadaro, A.C.; Fonseca, M.J. Enhanced in Vitro and in Vivo Antioxidant Activity and Mobilization of Free Phenolic Compounds of Soybean Flour Fermented with Different Beta-Glucosidase-Producing Fungi. J. Applications Micro 2009, 106(2), 459–466.
  • Katina, K.; Laitila, A.; Juvonen, R.; Liukkonen, K.-H.; Kariluoto, S.; Piironen, V.; et al. Bran Fermentation as a Means to Enhance Technological Properties and Bioactivity of Rye. Food Micro 2014, 24, 175–186.
  • Priefert, H.; Rabenhorst, J.; Steinbuchel, A. Biotechnological Production of Vanillin. Applications Micro Biotechnology 2001, 56, 296–314.
  • Kariluoto, S.; Aittamaa, M.; Korhola, M.; Salovaara, H.; Vahteristo, L.; Piironen, V. Effects of Yeasts and Bacteria on the Levels of Folates in Rye Sourdoughs. International Journal Food Microbiology 2006, 106(2), 137–143.
  • Katina, K.; Liukkonen, K.-H.; Kaukovirta-Norja, A.; Adlercreutz, H.; Heinonen, S.-M.; Lampi, A.-M.; et al. Fermentation-Induced Changes in the Nutritional Value of Native or Germinated Rye. Journal of Cereal Science 2007, 46, 348–355.
  • Prior, R.L.; Xianli, W.; Schaich, K. Standardized Methods for the Determination of Antioxidant Capacity and Phenolics in Food and Dietary Supplements. Journal of Agricultural and Food Chemistry 2005, 53, 4290–4302.
  • Dona, A.M. Enhancing antioxidant activity and extractability of bioactive compounds of wheat bran using thermal treatments. Unpublished (MSc thesis), Winnipeg, MB: University of Manitoba, 2011.
  • Bryngelsson, S.; Dimberg, L. H. Kamal-Eldin, A. Effects of Commercial Processing on Levels of Antioxidants in Oats (Avena sativa L.). Journal of Agricultural and Food Chemistry 1890–1896, 2002, 50.
  • Cheng, Z.; Su, L.; Moore, J.; Zhou, K.; Luther, M.; Yin, J.; Yu, L. Effects of Post-Harvest Treatment and Heat Stress on Availability of Wheat Antioxidants. Journal Agricultural Food Chemical 2006, 54, 5623–5629.
  • Min, B.; McClung, A.; Chen, M. Effects of Hydrothermal Processes on Antioxidants in Brown, Purple and Red Bran Whole Grain Rice (Oryza sativa L.). Food Chemistry 2014, 159, 106–115.
  • Zhang, M.; Chen, H.; Li, J.; Pei, Y.; Liang, Y. Antioxidant Properties of Tartary Buckwheat Extracts as Affected by Different Thermal Processing Methods. LWT-Food Science and Technology 2010, 43, 181–185.
  • Chandrasekara, A.; Shahidi, F. Bioaccessibility and Antioxidant Potential of Millet Grain Phenolics as Affected by Simulated in Vitro Digestion and Microbial Fermentation. Journal of Functional Foods 2012, 4, 226–237.
  • Ti, H.; Ruifen, Z.; Qing, L.; Zhencheng, W.; Mingwei, Z. Effects of Cooking and in Vitro Digestion of Rice on Phenolic Profiles and Antioxidant Activity. Food Research International 2015, 76, 813–820.
  • Siah, S.; Jennifer, A.W.; Samson, A.; Izabela, K.; Christopher, L.B. Effects of Soaking, Boiling and Autoclaving on the Phenolic Contents and Antioxidant Activities of Faba Beans (Vicia faba L.). Differing in Seed Coat Colours. Food Chemistry 2014, 142, 461–468.
  • Massaretto, M.A.M. Mussi De M.N.V.; Carmona A.K.; Lanfer M.U.M. Phenolic Compounds in Raw and Cooked Rice (Oryza sativa L.) and Their Inhibitory Effect on the Activity of Angiotensin I-Converting Enzyme. Journal Cereal Sciences 2011, 54, 236–240.
  • Chen, C.; Lilei, Y.; Xinkun, W.; Zhenxin, G. Trust Beta 2016. Changes of Phenolic Profiles and Antioxidant Activity in Canary Seed (Phalaris canariensis L.) during Germination. Food Chemistry 2016, 194, 608–618.
  • Liukkonen, K.H.; Katina, K.; Wilhelmsson, A.; Myllymaki, O.; Lampi, A. M.; Kariluoto. S., Piironen, V.; Heinonen, S. M.; Nurmi, T.; Adlercreutz, H.; Peltoketo, A.; Pihlava, J. M.; Hietaniemi, V.; Poutanen, K. Process-Induced Changes on Bioactive Compounds in Whole Grain Rye. Proceedings of the Nutrition Society 2003, 62, 117–122.
  • Kaukovirta-Norja, A.; Wilhelmsson, A.; Germination, P.K. A Means to Improve the Functionality of Oat. Agricultural Food Sciences 2004, 13, 100–112.
  • Bondia-Pons, I.; Aura, A.-M.; Vuorela, S.; Kolehmainen, M.; Mykkanen, H.; Poutanen, K. Rye Phenolics in Nutrition and Health. Journal of Cereal Science 2009, 49, 323–336.
  • Sharma, S.; Dharmesh, C.; Saxena, C.; Riar, S. Analyzing the Effect of Germination on Phenolics, Dietary Fibres, Minerals and Γ-Amino Butyric Acid Contents of Barnyard Millet (Echinochloa frumentaceae). Food Bioscience 2016, 13, 60–68.
  • Abderrahim,F.; Huanatico, E.; Repo-Carrasco-Valencia, R.; Arribas, S.M.; Gonzalez, M.C.; Condezo-Hoyos, L. Effect of Germination on Total Phenolic Compounds, Total Antioxidant Capacity, Maillard Reaction Products and Oxidative Stress Markers in Canihua (Chenopodium pallidicaule). Journal of Cereal Science 2012, 56, 410–417.
  • Dai, J.; Mumper, R.J. Plant Phenolics Extraction, Analysis and Their Antioxidant and Anticancer Properties. Mole 2010, 15(10), 7313–7352.
  • Beecher, G.R. Overview of Dietary Flavonoids: Nomenclature, Occurrence and Intake. Journal Nut 2003, 133, 3248S.
  • Wanyo, P.; Meeso, N.; Siriamornpun, S. Effects of different treatments on the antioxidant properties and phenolic compounds of rice bran and rice husk. Food Chemistry 2014, 157, 457–463.
  • Zaupa, M.; Calani, L.; Rio, D.D.; Brighenti, F.; Pellegrini, N. Characterization of total antioxidant capacity and (poly)phenolic compounds of differently pigmented rice varieties and their changes during domestic cooking. Food Chemistry 2015, 187, 338–347.

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