Polyphenols Composition and Antioxydant Capacity of Herbal Tea Composite Citrus sinensis Peel and Moringa ol e ifera Leaf — Oak Academic Publishing
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Polyphenols Composition and Antioxydant Capacity of Herbal Tea Composite Citrus sinensis Peel and Moringa ol e ifera Leaf
Laboratory of Biotchnology, Agriculture and Valorization of Biological Resources, University of Félix Houphouët-Boigny, Abidjan, Côte d’Ivoire
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Laboratory of Biotchnology, Agriculture and Valorization of Biological Resources, University of Félix Houphouët-Boigny, Abidjan, Côte d’Ivoire
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Laboratory of Biotchnology, Agriculture and Valorization of Biological Resources, University of Félix Houphouët-Boigny, Abidjan, Côte d’Ivoire
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Laboratory of Botanical Pharmacognosy, Faculty of Pharmaceutical and Biological Sciences, University of Félix Houphouët-Boigny, Abidjan, Côte d’Ivoire
1 Laboratory of Biotchnology, Agriculture and Valorization of Biological Resources, University of Félix Houphouët-Boigny, Abidjan, Côte d’Ivoire
2 Laboratory of Biotchnology, Agriculture and Valorization of Biological Resources, University of Félix Houphouët-Boigny, Abidjan, Côte d’Ivoire
3 Laboratory of Biotchnology, Agriculture and Valorization of Biological Resources, University of Félix Houphouët-Boigny, Abidjan, Côte d’Ivoire
4 Laboratory of Botanical Pharmacognosy, Faculty of Pharmaceutical and Biological Sciences, University of Félix Houphouët-Boigny, Abidjan, Côte d’Ivoire
This study aimed to determine the polyphenolic composition, to evaluate the antioxydant activity of composite teas of Citrus sinensis peel and Moringa oleifera leaves. Samples of zest and moringa collected were processed. The phenolic composition as well as the antioxydant capacity was determined on eleven composite powders from the composite central plane. The total polyphenol content was determined by the Folin-Ciocalteu method, while the flavonoid content was assessed by the aluminum chloride method. Antioxydant capacity was determined by the DPPH free radical reduction method (1,1,diphenyl-2-picrylhydrazyl) and by the iron reducing method (FRAP). The herbal teas obtained have a high content of phenolic compounds. In fact, the herbal tea consisting of (77.89% Citrus sinensis /22.11% Moringa oleifera ) obtained the highest polyphenol content, while EC10 (70% Citrus sinensis /30% Moringa oleifera ) has the highest flavonoid content. EF01 (77.89% Citrus sinensis /22.11% Moringa oleifera ) has the highest reducing activity, however, EF01 has a strong anti-free radical activity. There is a strong correlation between. These composite teas are a good source of total polyphenols and flavonoids. They also have good antioxydant properties.
Valavanidis, T.A. (2019) Tea, the Most Popular Beverage Worldwide, Is Beneficial to Human Health Studies on Antioxydant Polyphenolic Constituents and Epidemiological Evidence for Disease Prevention. Scientific Reviews , 1.
Dhalla, N.S., Temsah, R.M. and Netticadan, T. (2000) Role of Oxidative Stress in Cardiovascular Diseases. Journal of Hypertension , 18, 655-673. https://doi.org/10.1097/00004872-200018060-00002
Rafiq, S., Kaul, R., Sofi, S.A., Bashir, N., Nazir, F. and Nayik, G.A. (2016) Citrus Peel as a Source of Functional Ingredient: A Review. Journal of the Saudi Society of Agricultural Sciences , 17, 351-358.
Konan, A., Konan, Y. and Kone, M. (2015) Polyphenols Content and Antioxidant Capacity of Traditional Juices Consumed in Côte d’Ivoire. Journal of Applied Biosciences , 87, 8015-8021. https://doi.org/10.4314/jab.v87i1.3
Valavanidis, A., Vlachogianni, T., Fiotakis, K. and Loridas, S. (2013) Pulmonary Oxidative Stress, Inflammation and Cancer: Respirable Particulate Matter, Fibrous Dusts and Ozone as Major Causes of Lung Carcinogenesis through Reactive Oxygen Species Mechanisms. International Journal of Environmental Research and Public Health , 10, 3886-3907. https://doi.org/10.3390/ijerph10093886
Thiagarajah, K., Ong, M.K., Teh, L.K. and Lye, H.S. (2019) Plants Infused Water as Preferred Healthy Drinks. In: Grumezescu, A.M. and Holban, A.M., Eds., Bottled and Packaged Water , Elsevier, 367-402. https://doi.org/10.1016/b978-0-12-815272-0.00013-1
Lagou, V.C., Konan, N.Y. and Assa, R.R. (2013) Physicochemical and Nutritive Characteristics of the Residues Deriving from the Oranges ( Citrus sinensis L.) Consumed in Côte d’Ivoire. Journal of New Sciences , 58, 3777-3785.
Okafor, G.I. and Ogbobe, N.M. (2015) Production and Quality Evaluation of Green and Black Herbal Teas from Moringa Oleifera Leaf. Journal of Food Resource Science , 4, 62-72. https://doi.org/10.3923/jfrs.2015.62.72
Lalas, S., Athanasiadis, V., Karageorgou, I., Batra, G., Nanos, G.D. and Makris, D.P. (2017) Nutritional Characterization of Leaves and Herbal Tea of Moringa oleifera Cultivated in Greece. Journal of Herbs , Spices & Medicinal Plants , 23, 320-333. https://doi.org/10.1080/10496475.2017.1334163
Kumar, N. and Pruthi, V. (2014) Potential Applications of Ferulic Acid from Natural Sources. Biotechnology Reports , 4, 86-93. https://doi.org/10.1016/j.btre.2014.09.002
Feinberg, M. (1996) La validation des méthodes d’analyse: Approche chimiométrique de l’assurance qualité au laboratoire. Masson, 395.
Ekissi, A.C. (2013) Nutritional Enhancement of the Leaves of the Savannah Tea Plant (Lippia Multiflora) from the Ivory Coast and Its Derived Products. PHD Thesis of the Félix HouphouëtBoigny University, 156 p.
Singleton, V.L., Orthofer, R. and Lamuela-Raventós, R.M. (1999) Analysis of Total Phenols and Other Oxidation Substrates and Antioxidants by Means of Folin-Ciocalteu Reagent. In: Methods in Enzymology , Elsevier, 152-178. https://doi.org/10.1016/s0076-6879(99)99017-1
Meda, A., Lamien, C.E., Romito, M., Millogo, J. and Nacoulma, O.G. (2005) Determination of the Total Phenolic, Flavonoid and Proline Contents in Burkina Fasan Honey, as Well as Their Radical Scavenging Activity. Food Chemistry , 91, 571-577. https://doi.org/10.1016/j.foodchem.2004.10.006
Lee, J., Durst, R.W. and Wrolstad, R.E. (2005) Determination of Total Monomeric Anthocyanin Pigment Content of Fruit Juices, Beverages, Natural Colorants, and Wines by the Ph Differential Method: Collaborative Study. Journal of AOAC INTERNATIONAL , 88, 1269-1278. https://doi.org/10.1093/jaoac/88.5.1269
Choi, C.W., Kim, S.C., Hwang, S.S., Choi, B.K., Ahn, H.J., Lee, M.Y., et al. (2002) Antioxidant Activity and Free Radical Scavenging Capacity between Korean Medicinal Plants and Flavonoids by Assay-Guided Comparison. Plant Science , 163, 1161-1168. https://doi.org/10.1016/s0168-9452(02)00332-1
Zhao, C., Tang, G., Cao, S., Xu, X., Gan, R., Liu, Q., et al. (2019) Phenolic Profiles and Antioxidant Activities of 30 Tea Infusions from Green, Black, Oolong, White, Yellow and Dark Teas. Antioxidants , 8, Article 215. https://doi.org/10.3390/antiox8070215
Benzie, I.F.F. and Szeto, Y.T. (1999) Total Antioxidant Capacity of Teas by the Ferric Reducing/antioxidant Power Assay. Journal of Agricultural and Food Chemistry , 47, 633-636. https://doi.org/10.1021/jf9807768
Ndife, J., Uka, N.C. and Ukom, N.A. (2019) Development and Comparative Evaluation of Green and Black Tisanes Using Scent Leaves ( Chromolaena odorata ). Food Research , 3, 448-455.
Joubert, E., Gelderblom, W.C.A., Louw, A. and de Beer, D. (2008) South African Herbal Teas: Aspalathus linearis , Cyclopia Spp. and Athrixia phylicoides —A Review. Journal of Ethnopharmacology , 119, 376-412. https://doi.org/10.1016/j.jep.2008.06.014
Magcwebeba, T.U., Riedel, S., Swanevelder, S., Swart, P., De Beer, D., Joubert, E., et al. (2016) The Potential Role of Polyphenols in the Modulation of Skin Cell Viability by Aspalathus linearis and Cyclopia Spp. Herbal Tea Extracts in Vitro . Journal of Pharmacy and Pharmacology , 68, 1440-1453. https://doi.org/10.1111/jphp.12629
Zhou, Y., Zheng, J., Li, Y., Xu, D., Li, S., Chen, Y., et al. (2016) Natural Polyphenols for Prevention and Treatment of Cancer. Nutrients , 8, Article 515. https://doi.org/10.3390/nu8080515
Li, A., Li, S., Zhang, Y., Xu, X., Chen, Y. and Li, H. (2014) Resources and Biological Activities of Natural Polyphenols. Nutrients , 6, 6020-6047. https://doi.org/10.3390/nu6126020
Lugasi, A., Hóvári, J., Sági, K.V. and Biról (2003) The Role of Antioxydant Phytonutrients in the Prevention of Diseases. Acta Biologica Szegediensis , 47, 119-125.
Dreosti, I.E. (2000) Antioxidant Polyphenols in Tea, Cocoa, and Wine. Nutrition , 16, 692-694. https://doi.org/10.1016/s0899-9007(00)00304-x
Mahan, M.R., Konan, N.Y., Sidibé, D., Coulibaly, A., Ezoua, P., Chatigre, K.O. and Biego, G.H.M. (2016) Nutritive Compounds from Leaves of Moringa oleifera L. and Beans of Vigna unguiculata W. for Improvement of the Meal Deriving with New Shoots of Borassus aethiopum M. in Côte d’Ivoire. International Journal of Environmental & Agriculture Research , 2, 64-74.
Mahan, M.R., Sidibe, D., Coulibaly, A., Deigna, M.V., Konan, N.Y. and Biego, G.H.M. (2016) Formulation of Flours Based on Young Shoots of Roan ( Borassus aethiopum Mart) Enriched with Powders of Moringa Leaves ( Moringa oleifera Lam) and Cowpea Seeds ( Vigna unguiculata Walp). 3 rd Symposium Sciences et Hygiène Alimentaires , Abidjan, 6-7 October 2016.
Blauer, R. (2016) Citrus: World Markets and Trade. USDA Foreign Agricultural Service. http://www.fas.usda.gov/data/
Zielinski, A.A.F., Haminiuk, C.W.I., Alberti, A., Nogueira, A., Demiate, I.M. and Granato, D. (2014) A Comparative Study of the Phenolic Compounds and the in Vitro Antioxidant Activity of Different Brazilian Teas Using Multivariate Statistical Techniques. Food Research International , 60, 246-254. https://doi.org/10.1016/j.foodres.2013.09.010
Wang, J. and Mazza, G. (2002) Effects of Anthocyanins and Other Phenolic Compounds on the Production of Tumor Necrosis Factor Α in LPS/IFN- γ -Activated RAW 264.7 Macrophages. Journal of Agricultural and Food Chemistry , 50, 4183-4189. https://doi.org/10.1021/jf011613d
Hooper, L., Kroon, P.A., Rimm, E.B., Cohn, J.S., Harvey, I., Le Cornu, K.A., et al. (2008) Flavonoids, Flavonoid-Rich Foods, and Cardiovascular Risk: A Meta-Analysis of Randomized Controlled Trials. The American Journal of Clinical Nutrition , 88, 38-50. https://doi.org/10.1093/ajcn/88.1.38
Lotito, S. and FREI, B. (2006) Consumption of Flavonoid-Rich Foods and Increased Plasma Antioxidant Capacity in Humans: Cause, Consequence, or Epiphenomenon? Free Radical Biology and Medicine , 41, 1727-1746. https://doi.org/10.1016/j.freeradbiomed.2006.04.033
Yochum, L., Kushi, L.H., Meyer, K. and Folsom, A.R. (1999) Dietary Flavonoid Intake and Risk of Cardiovascular Disease in Postmenopausal Women. American Journal of Epidemiology , 149, 943-949. https://doi.org/10.1093/oxfordjournals.aje.a009738
Pérez-Jiménez, J., Arranz, S., Tabernero, M., Díaz-Rubio, M.E., Serrano, J., Goñi, I., et al. (2008) Updated Methodology to Determine Antioxidant Capacity in Plant Foods, Oils and Beverages: Extraction, Measurement and Expression of Results. Food Research International , 41, 274-285. https://doi.org/10.1016/j.foodres.2007.12.004
Isik, B., Ceylan, A. and Isik, R. (2007) Oxidative Stress in Smokers and Non-Smokers. Inhalation Toxicology , 19, 767-769. https://doi.org/10.1080/08958370701401418
Roussel, A. (2009) Qui manque d’antioxydants, et comment le savoir? Cahiers de Nutrition et de Diététique , 44, 230-236. https://doi.org/10.1016/j.cnd.2009.05.001
Wang, L., Fan, S., Wang, X., Wang, X., Yan, X., Shan, D., et al. (2019) Physicochemical Aspects and Sensory Profiles as Various Potential Factors for Comprehensive Quality Assessment of Nü-Er-Cha Produced from Rhamnus heterophylla Oliv. Molecules , 24, Article 3211. https://doi.org/10.3390/molecules24183211