Determination of Residual Catechins, Polyphenolic Contents and Antioxidant Activities of Developed Theaflavin-3,3’-Digallate Rich Black Teas — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Determination of Residual Catechins, Polyphenolic Contents and Antioxidant Activities of Developed Theaflavin-3,3’-Digallate Rich Black Teas
KALRO-Tea Research Institute, Kericho, Kenya
,
KALRO-Tea Research Institute, Kericho, Kenya
,
Department of Chemistry, Egerton University, Nakuru, Kenya
,
Department of Biochemistry, Egerton University, Nakuru, Kenya
,
Department of Biochemistry, Egerton University, Nakuru, Kenya
,
Association for Strengthening Agricultural Research in East and Central Africa, Entebbe, Uganda
1 KALRO-Tea Research Institute, Kericho, Kenya
2 KALRO-Tea Research Institute, Kericho, Kenya
3 Department of Chemistry, Egerton University, Nakuru, Kenya
4 Department of Biochemistry, Egerton University, Nakuru, Kenya
5 Department of Biochemistry, Egerton University, Nakuru, Kenya
6 Association for Strengthening Agricultural Research in East and Central Africa, Entebbe, Uganda
This study was carried out to characterize total residual catechins and their fractions, polyphenolic contents and antioxidant activities of black teas enriched with high levels of theaflavin-3,3’-digallate. The made teas were processed from eleven selected cultivars. A comparative study was carried out between the processed teas and those from commercially grown Kenyan cultivars in relation to the above chemical parameters. A correlation matrix analysis was also conducted to find out whether a relationship existed between the antioxidant activities and the said chemical parameters. The total residual catechins were found to range between 3.10% and 8.08%. The total polyphenol levels varied between 19.00% and 28.90%, while the antioxidant activities of the teas ranged from 82.70% to 91.70%. There was a significant p < 0.001 correlation between the antioxidant activity and total polyphenols (r = 0.8948). There was also a high correlation p < 0.001 between the antioxidant activity and total catechins (r = 0.8878). Out of the four catechin fractions, the antioxidant activity correlated most with EGCG (r = 0.8774). The total polyphenolic contents and antioxidant activities for most of the cultivars were comparable to those of the green tea reference standard. From the figures obtained, it can be concluded that the most of the newly developed black teas of the selected cultivars have higher quality and enhanced antioxidant activities and that they can be recommended for commercial production.
Aneja, R., Odoms, K., Denenberg, A.G. and Wong, H.R. (2004) Theaflavin, a Black Tea Extract, Is a Novel Anti-In-flammatory Compound. Critical Care Medicine, 32, 2097-2103. http://dx.doi.org/10.1097/01.CCM.0000142661.73633.15
Yang, C.S., Chung, J.Y., Yang, G.Y., Li, C., Meng, X. and Lee, M.J. (2000) Mechanisms of Inhibition of Carcinogenesis by Tea. BioFactors, 13, 73-79. http://dx.doi.org/10.1002/biof.5520130113
Balentine, D.A. (1992) Manufacturing and Chemistry of Tea. ACS Symposium Series, 506, 102-117. http://dx.doi.org/10.1021/bk-1992-0506.ch008
Li, S., Lo, C.-Y., Pan, M.-H., Lai, C.-S. and Ho, C.-T. (2013) Black Tea: Chemical Analysis and Stability. Food & Function, 4, 10-18. http://dx.doi.org/10.1039/C2FO30093A
Lou Heiss, M. (2007) The Book of Tea. Gastronomica, 7, 113-114. http://dx.doi.org/10.1525/gfc.2007.7.4.113
Tanaka, T., Inoue, K., Betsumiya, Y., Mine, C. and Kouno, I. (2001) Two Types of Oxidative Dimerization of the Black Tea Polyphenol Theaflavin. Journal of Agricultural and Food Chemistry, 49, 5785-5789. http://dx.doi.org/10.1021/jf010842x
Liu, S., Lu, H., Zhao, Q., He, Y., Niu, J., Debnath, A.K., Wu, S. and Jiang, S. (2005) Theaflavin Derivatives in Black Tea and Catechin Derivatives in Green Tea Inhibit HIV-1 Entry by Targeting gp41. Biochimica et Biophysica Acta (BBA)—General Subjects, 1723, 270-281. http://dx.doi.org/10.1016/j.bbagen.2005.02.012
Song, Y.-A., Park, Y.-L., Yoon, S.-H., Kim, K.-Y., Cho, S.-B., Lee, W.-S., Chung, I.-J. and Joo, Y.-E. (2011) Black Tea Polyphenol Theaflavin Suppresses LPS-Induced ICAM-1 and VCAM-1 Expression via Blockage of NF-κB and JNK Activation in Intestinal Epithelial Cells. Inflammation Research, 60, 493-500. http://dx.doi.org/10.1007/s00011-010-0296-z
Kilel, E.C., Wanyoko, J.K., Faraj, A.K. and Wachira, F.N. (2013) Plain Black Tea Quality Parameters of Purple Leaf Coloured Tea Clones in Kenya. International Journal of Research in Chemistry and Environment, 3, 81-88.
Karori, S.M., Wachira, F.N., Wanyoko, J.K. and Ngure, R.M. (2007) Antioxidant Capacity of Different Types of Tea Products. African Journal of Biotechnology, 6, 2287-2296.
Kimutai, S., Kinyanjui, T., Wanyoko, J.K., Wachira, F.N., Karori, S.M and Muthiani, A. (2015) Optimization of Aeration Times in the Development of Theaflavin-3,3’-Digallate Rich Black Teas. American Journal of Plant Sciences, 6, 3001-3012.
Haase, G. (2010) Functional and Speciality Beverage Technology, 20.
Khokhar, S., Venema, D., Hollman, P.C.H., Dekker, M. and Jongen, W. (1997) A RP-HPLC Method for the Determination of Tea Catechins. Cancer Letters, 114, 171-172. http://dx.doi.org/10.1016/S0304-3835(97)04653-3
Dalluge, J.J. and Nelson, B.C. (2000) Determination of Tea Catechins. Journal of Chromatography A, 881, 411-424. http://dx.doi.org/10.1016/S0021-9673(00)00062-5
Owuor, P.O. and Obanda, M. (2001) Comparative Responses in Plain Black Tea Quality Parameters of Different Tea Clones to Fermentation Temperature and Duration. Food Chemistry, 72, 319-327. http://dx.doi.org/10.1016/S0308-8146(00)00232-6
Antioxidants, E., Leung, L.K., Su, Y., Chen, R., Zhang, Z., Huang, Y. and Chen, Z. (2001) Theaflavins in Black Tea and Catechins in Green Tea Are Equally. Society, 1, 2248-2251.
Luczaj, W. and Skrzydlewska, E. (2005) Antioxidative Properties of Black Tea. Preventive Medicine, 40, 910-918. http://dx.doi.org/10.1016/j.ypmed.2004.10.014
Lorenz, M., Urban, J., Engelhardt, U., Baumann, G., Stangl, K. and Stangl, V. (2009) Green and Black Tea Are Equally Potent Stimuli of No Production and Vasodilation: New Insights into Tea Ingredients Involved. Basic Research in Cardiology, 104, 100-110. http://dx.doi.org/10.1007/s00395-008-0759-3
Tanaka, T. and Kouno, I. (2003) Oxidation of Tea Catechins: Chemical Structures and Reaction Mechanism. Food Science and Technology Research, 9, 128-133. http://dx.doi.org/10.3136/fstr.9.128
Ngure, F.M., Wanyoko, J.K., Mahungu, S.M. and Shitandi, A.A. (2009) Catechins Depletion Patterns in Relation to Theaflavin and Thearubigins Formation. Food Chemistry, 115, 8-14. http://dx.doi.org/10.1016/j.foodchem.2008.10.006
Kerio, L.C., Wachira, F.N., Wanyoko, J.K. and Rotich, M.K. (2013) Total Polyphenols, Catechin Profiles and Antioxidant Activity of Tea Products from Purple Leaf Coloured Tea Cultivars. Food Chemistry, 136, 1405-1413. http://dx.doi.org/10.1016/j.foodchem.2012.09.066
Wachira, F.N., Kamunya, S., Karori, S., Chalo, R. and Maritim, T. (2013) Chapter 1—The Tea Plants: Botanical Aspects. Tea in Health and Disease Prevention, 3-17.
Higdon, J.V. and Frei, B. (2003) Tea Catechins and Polyphenols: Health Effects, Metabolism, and Antioxidant Functions. Critical Reviews in Food Science and Nutrition, 43, 89-143. http://dx.doi.org/10.1080/10408690390826464
Sajilata, M.G., Bajaj, P.R. and Singhal, R.S. (2008) Tea Polyphenols as Nutraceuticals. Comprehensive Reviews in Food Science and Food Safety, 7, 229. http://dx.doi.org/10.1111/j.1541-4337.2008.00043.x
Rashid, K., Wachira, F.N., Nyariki, J.N., Wanyonyi, B., Murilla, G. and Isaac, A.O. (2014) Kenyan Purple Tea Anthocyanins Ability to Cross the Blood Brain Barrier and Reinforce Brain Antioxidant Capacity in Mice. Nutritional Neuroscience, 17, 178-185. http://dx.doi.org/10.1179/1476830513Y.0000000081
Anesini, C., Ferraro, G.E. and Filip, R. (2008) Total Polyphenol Content and Antioxidant Capacity of Commercially Available Tea (Camellia sinensis) in Argentina. Journal of Agricultural and Food Chemistry, 56, 9225-9229. http://dx.doi.org/10.1021/jf8022782
Yao, L.H., Jiang, Y.M., Caffin, N., D’Arcy, B., Datta, N., Liu, X., Singanusong, R. and Xu, Y. (2006) Phenolic Compounds in Tea from Australian Supermarkets. Food Chemistry, 96, 614-620. http://dx.doi.org/10.1016/j.foodchem.2005.03.009
Jhoo, J.W., Lo, C.Y., Li, S., Sang, S., Ang, C.Y.W., Heinze, T.M. and Ho, C.T. (2005) Stability of Black Tea Polyphenol, Theaflavin, and Identification of Theanaphthoquinone as Its Major Radical Reaction Product. Journal of Agricultural and Food Chemistry, 53, 6146-6150. http://dx.doi.org/10.1021/jf050662d
Feng, Q., Torii, Y., Uchida, K., Nakamura, Y., Hara, Y. and Osawa, T. (2002) Black Tea Polyphenols, Theaflavins, Prevent Cellular DNA Damage by Inhibiting Oxidative Stress and Suppressing Cytochrome P450 1A1 in Cell Cultures. Journal of Agricultural and Food Chemistry, 50, 213-220. http://dx.doi.org/10.1021/jf010875c
Drobna, Z., Wismer, W. and Goonewardene, L. (2004) Selection of an Astringency Reference Standard for the Sensory Evaluation of Black Tea. Journal of Sensory Studies, 19, 119-132.
Yanagimoto, K., Ochi, H., Lee, K.G. and Shibamoto, T. (2003) Antioxidative Activities of Volatile Extracts from Green Tea, Oolong Tea, and Black Tea. Journal of Agricultural and Food Chemistry, 51, 7396-7401. http://dx.doi.org/10.1021/jf030127i
Krishnan, R. and Maru, G.B. (2004) Inhibitory Effect(s) of Polymeric Black Tea Polyphenol Fractions on the Formation of [(3)H]-B(a)P-Derived DNA Adducts. Journal of Agricultural and Food Chemistry, 52, 4261-4269. http://dx.doi.org/10.1021/jf049979o
Steele, V.E., Kelloff, G.J., Balentine, D., Boone, C.W., Mehta, R., Bagheri, D., Sigman, C.C., Zhu, S. and Sharma, S. (2000) Comparative Chemopreventive Mechanisms of Green Tea, Black Tea And Selected Polyphenol Extracts Measured by in Vitro Bioassays. Carcinogenesis, 21, 63-67. http://dx.doi.org/10.1093/carcin/21.1.63
Mulder, T.P., van Platerink, C.J., Wijnand Schuyl, P.J. and van Amelsvoort, J.M. (2001) Analysis of Theaflavins in Biological Fluids Using Liquid Chromatography-Electrospray Mass Spectrometry. Journal of Chromatography B, 760, 271-279. http://dx.doi.org/10.1016/S0378-4347(01)00285-7
Haslam, E. (1999) Practical Polyphenolics : From Structure to Molecular Recognition and Physiological Action. Trends in Food Science & Technology, 10, 339.