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Dietary Polyphenols and the Prevention of Diseases

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[35] Rein, D., Lotito, S., Holt, R.R., Keen, C.L., Schmitz, H.H., and Fraga, C.G. 2000. Epicatechin in human plasma: In vivo determination and effect of chocolate consumption on plasma oxidation status. J. Nutr., 130:2109S– 2114S. [36] Sharpe, P.C., McGrath, L.T., McClean, E., Young, I.S., and Archbold, G.P. 1995. Effect of red wine consumption on lipoprotein (a) and other risk factors for atherosclerosis. Q. J. Med., 88:101–108. [37] Hodgson, J.M., Puddey, I.B., Croft, K.D., Mori, T.A., Rivera, J., and Beilin, L.J. 1999. Isoflavonoids do not inhibit in vivo lipid peroxidation in subjects with high-normal blood pressure. Atherosclerosis, 145:167– 172. [38] Laughton, M.J., Halliwell, B., Evans, P.J., and Hoult, J.R. 1989. Antiox- idant and pro-oxidant actions of the plant phenolics quercetin, gossypol and myricetin. Effects on lipid peroxidation, hydroxyl radical genera- tion and bleomycin-dependent damage to DNA. Biochem. Pharmacol., 38:2859–2865. [39] Shirahata, S., Murakami, H., Nishiyama, K., Yamada, K., Nonaka, G., Nishioka, I., and Omura, H. 1989. DNA breakage by flavan-3-ols and procyanidins in the presence of cupric ion. J. Agric. Food Chem., 37:299– 303. [40] Sakagami, H., Kuribayashi, N., Iida, M., Sakagami, T., Takeda, M., Fukuchi, K., Gomi, K., Ohata, H., Momose, K., Kawazoe, Y., Hatano, T., Yoshida, T., and Okuda, T. 1995. Induction of DNA fragmentation by tannin- and lignin-related substances. Anticanc. Res., 15:2121–2128. [41] Vance, R.E. and Teel, R.W. 1989. Effect of tannic acid on rat liver S9 mediated mutagenesis, metabolism and DNA binding of benzo[a]pyrene. Cancer Lett., 47:37–44. [42] Wood, A.W., Huang, M.T., Chang, R.L., Newmark, H.L., Lehr, R.E., Yagi, H., Sayer, J.M., Jerina, D.M., and Conney, A.H. 1982. Inhibition of the mutagenicity of bay-region diol epoxides of polycyclic aromatic hydrocarbons by naturally occurring plant phenols: Exceptional activity of ellagic acid. Proc. Natl. Acad. Sci. USA, 79:5513–5517. [43] Sayer, J.M., Yagi, H., Wood, A.W., Conney, A.H., and Jerina, D.M. 1982. Extremely facile reaction between the ultimate carcinogen benzo[a]pyrene-7,8-diol 9,10-epoxide and ellagic acid. J. Am. Chem. Soc., 104:5562–5564. [44] Mukhtar, H., Das, M., Del Tito, B.J., and Bickers, D.R. 1984. Protection against 3-mehtylcholanthrene-induced skin tumorigenicity in BALB/c mice by ellagic acid. Biochem. Biophys. Res. Commun., 119:751–757. [45] Casalini, C., Lodovici, M., Briani, C., Paganelli, G., Remy, S., Cheynier, V., and Dolara, P. 1999. Effect of complex polyphenols and tannins from red wine (WCPT) on chemically induced oxidative DNA damage in the rat. Eur. J. Nutr., 38:190–195. [46] Takagi, A., Sai, K., Umemura, T., Hasegawa, R., and Kurokawa, Y. 1995. Inhibitory effects of vitamin E and ellagic acid on 8- hydroxydeoxyguanosine formation in the liver nuclear DNA of rats treated with 2-nitropropane. Cancer Lett., 91:139–144. [47] Giovannelli, L., Testa, G., De Filippo, C., Cheynier, V., Clifford, M.N., and Dolara, P. 2000. Effect of complex polyphenols and tannins from red wine on DNA oxidative damage of rat colon mucosa in vivo. Eur. J. Nutr., 39:207–212. [48] Lodovici, M., Casalini, C., De Filippo, C., Copeland, E., Xu, X., Clifford, M., and Dolara, P. 2000. Inhibition of 1,2-dimethylhydrazine-induced ox- idative DNA damage in rat colon mucosa by black tea complex polyphe- nols. Food Chem. Toxicol., 38:1085–1088. [49] Huber, W.W., McDaniel, L.P., Kaderlik, K.R., Teitel, C.H., Lang, N.P., and Kadlubar, F.F. 1997. Chemoprotection against the formation of colon DNA adducts from the food-borne carcinogen 2-amino-1-methyl- 6-phenylimidazo[4,5-b]pyridine (PhIP) in the rat. Mutat. Res., 376:115– 122. [50] Lampe, J.W. 1999. Health effects of vegetables and fruit: Assessing mechanisms of action in human experimental studies. Am. J. Clin. Nutr., 70:475S–490S. [51] Leighton, F., Cuevas, A., Guasch, V., Perez, D.D., Strobel, P., San Martin, A., Urzua, U., Diez, M.S., Foncea, R., Castillo, O., Mizon, C., Espinoza, M.A., Urquiaga, I., Rozowski, J., Maiz, A., and Germain, A. 1999. Plasma polyphenols and antioxidants, oxidative DNA damage and endothelial function in a diet and wine intervention study in humans. Drugs Exp. Clin. Res., 25:133–141. [52] Boyle, S.P., Dobson, V.L., Duthie, S.J., Kyle, J.A., and Collins, A.R. 2000. Absorption and DNA protective effects of flavonoid glycosides from an onion meal. Eur. J. Nutr., 39:213–223. [53] Lean, M.E., Noroozi, M., Kelly, I., Burns, J., Talwar, D., Sattar, N., and Crozier, A. 1999. Dietary flavonols protect diabetic human lymphocytes against oxidative damage to DNA. Diabetes, 48:176–181. [54] Beatty, E.R., O’Reilly, J.D., England, T.G., McAnlis, G.T., Young, I.S., Geissler, C.A., Sanders, T.A., and Wiseman, H. 2000. Effect of dietary quercetin on oxidative DNA damage in healthy human subjects. Br. J. Nutr., 84:919–925. [55] Young, J.F., Dragstedt, L.O., Haraldsdottir, J., Daneshvar, B., Kal, M.A., Loft, S., Nilsson, L., Nielsen, S.E., Mayer, B., Skibsted, L.H., Huynh-Ba, T., Hermetter, A., and Sandstrom, B. 2002. Green tea extract only affects markers of oxidative status postprandially: Lasting antioxidant effect of flavonoid-free diet. Br. J. Nutr., 87:343–355. [56] Collins, A.R. 1999. Oxidative DNA damage, antioxidants, and cancer. Bioessays, 21:238–246. [57] Liao, K. and Yin, M. 2000. Individual and combined antioxidant effects of seven phenolic agents in human erythrocyte membrane ghosts and phos- phatidylcholine liposome systems: Importance of the partition coefficient. J. Agric. Food Chem., 48:2266–2270. [58] daSilva, E.L., Piskula, M.K., Yamamoto, N., Moon, J.H., and Terao, J. 1998. Quercetin metabolites inhibit copper ion-induced lipid peroxidation in rat plasma. FEBS Lett., 430:405–408. [59] Hayek, T., Fuhrman, B., Vaya, J., Rosenblat, M., Belinky, P., Coleman, R., Elis, A., and Aviram, M. 1997. Reduced progression of atherosclerosis in apolipoprotein E-deficient mice following consumption of red wine, or its polyphenols quercetin or catechin, is associated with reduced suscep- tibility of LDL to oxidation and aggregation. Arteriosclerosis Thrombosis and Vascular Biology, 17:2744–2752. [60] Miura, Y., Chiba, T., Tomita, I., Koizumi, H., Miura, S., Umegaki, K., Hara, Y., Ikeda, M., and Tomita, T. 2001. Tea catechins prevent the devel- opment of atherosclerosis in apoprotein E-deficient mice. J. Nutr., 131:27– 32. [61] Kaplan, M., Hayek, T., Raz, A., Coleman, R., Dornfeld, L., Vaya, J., and Aviram, M. 2001. Pomegranate juice supplementation to atherosclerotic mice reduces macrophage lipid peroxidation, cellular cholesterol accu- mulation and development of atherosclerosis. J. Nutr., 131:2082–2089. [62] Yamakoshi, J., Kataoka, S., Koga, T., and Ariga, T. 1999. Proanthocyanidin-rich extract from grape seeds attenuates the develop- ment of aortic atherosclerosis in cholesterol-fed rabbits. Atherosclerosis, 142:139–149. [63] Zhu, Q.Y., Huang, Y., Tsang, D., and Chen, Z.Y. 1999. Regeneration of alpha-tocopherol in human low-density lipoprotein by green tea catechin. J. Agric. Food Chem., 47:2020–2025. [64] Ishikawa, T., Suzukawa, M., Ito, T., Yoshida, H., Ayaori, M., Nishi- waki, M., Yonemura, A., Hara, Y., and Nakamura, H. 1997. Effect of tea flavonoid supplementation on the susceptibility of low-density lipopro- tein to oxidative modification. American Journal of Clinical Nutrition, 66:261–266. [65] Kondo, K., Matsumoto, A., Kurata, H., Tanahashi, H., Koda, H., Amachi, T., and Itakura, H. 1994. Inhibition of oxidation of low-density lipoprotein with red wine. Lancet, 344:1152. [66] Kondo, K., Hirano, R., Matsumoto, A., Igarashi, O., and Itakura, H. 1996. Inhibition of LDL oxidation by cocoa. Lancet, 348:1514. [67] Aviram, M., Dornfeld, L., Rosenblat, M., Volkova, N., Kaplan, M., Coleman, R., Hayek, T., Presser, D., and Fuhrman, B. 2000. Pomegranate juice consumption reduces oxidative stress, atherogenic modifications to LDL, and platelet aggregation: Studies in humans and in atherosclerotic apolipoprotein E-deficient mice. Am. J. Clin. Nutr., 71:1062–1076. [68] Osakabe, N., Natsume, M., Adachi, T., Yamagishi, M., Hirano, R., Takizawa, T., Itakura, H., and Kondo, K. 2000. Effects of cacao liquor polyphenols on the susceptibility of low-density lipoprotein to oxida- tion in hypercholesterolemic rabbits. J. Atheroscler Thromb., 7:164– 168. DIETARY POLYPHENOLS AND DISEASE PREVENTION 299

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