Flavonoids are a group of natural compounds in plants with versatile health benefits for humans. Grapes are a dietary source of flavonoids and the flavonoid components in grape berries can depend on the grape species and cultivar. In this experiment, proanthocyanidins, flavonols, and anthocyanins were analyzed in Vitis coignetiae and V. ficifolia var. ganebu , wild grapes native to Japan, and compared with those in V. labruscana cv. Muscat Bailey A, to evaluate the potential of the wild grapes as a grape resource. Proanthocyanidin contents in seeds were lower in the two wild grapes than in Muscat Bailey A. However, the skin of V. ficifolia var. ganebu was the richest source of proanthocyanidins. Flavonol levels in the skins of the two wild grapes were lower than that in the skin of Muscat Bailey A. Colorimetry determined that the total anthocyanin content in the skin of V. ficifolia var. ganebu was 6 times and 7 times higher, respectively, than those of V. coignetiae and Muscat Bailey A. Although monoglucoside anthocyanin levels analyzed by high-pressure liquid chromatography (HPLC) were in the order Muscat Bailey A > V. ficifolia var. ganebu > V. coignetiae , most of the diglucoside and acylated monoglucoside and diglucoside anthocyanin levels identified by HPLC-mass spectrometry were highest in V. ficifolia var. ganebu. These data suggest that V. ficifolia var. ganebu might be a novel source of flavonoids and superior to V. coignetiae as a source of flavonoids.
Jeandet, P., Bessis, R. and Gautheron, B. (1991) The Production of Resveratrol (3,5,4’-trihydroxystilbene) by Grape Berries in Different Developmental Stages. American Journal of Enology and Viticulture, 42, 41-46.
Shiozaki, S., Nakamura, T. and Ogata, T. (2013) Resveratrol Productivity of Wild Grapes Native to Japan: Vitis ficifolia var. lobata and Vitis ficifolia var. ganebu. American Journal of Enology and Viticulture, 64, 163-168. https://doi.org/10.5344/ajev.2012.12066
Fremont, L. (2000) Biological Effects of Resveratrol. Life Sciences, 66, 663-673. https://doi.org/10.1016/S0024-3205(99)00410-5
Pirola, L. and Frojdo, S. (2008) Resveratrol: One Molecule, Many Targets. IUBMB Life, 60, 323-332. https://doi.org/10.1002/iub.47
Ramprasath, V.R. and Jones, P.J.H. (2010) Anti-Atherogenic Effects of Resveratrol. European Journal of Clinical Nutrition, 64, 660-668. https://doi.org/10.1038/ejcn.2010.77
Shiozaki, S. and Murakami, M. (2016) Lipids in the Seeds of Wild Grapes Native to Japan: Vitis coignetiae and Vitis ficifolia var. ganebu. Scientia Horticulturae, 201, 124-129. https://doi.org/10.1016/j.scienta.2016.01.038
Matthäus, B. (2008) Virgin Grape Seed Oil: Is It Really a Nutritional Highlight? European Journal of Lipid Science and Technology, 110, 645-650. https://doi.org/10.1002/ejlt.200700276
Lesschaeve, I. and Noble, A.C. (2005) Polyphenols: Factors Influencing Their Sensory Properties and Their Effects on Food and Beverage Preferences. The American Journal of Clinical Nutrition, 81, 330S-335S.
Preys, S., Mazerolles, G., Courcoux, P., Samson, A., Fischer, U., Hanafi, H., Bertrand, D. and Cheynier, V. (2006) Relationship between Polyphenolic Composition and Some Sensory Properties in Red Wines Using Multiway Analyses. Analytica Chimica Acta, 563, 126-136. https://doi.org/10.1016/j.aca.2005.10.082
Peralbo-Molina, A. and Luque de Castro, M.D. (2014) Grape Phenols and Their Healthy Properties. In: Câmara, J.S., Ed., Grapes: Production, Phenolic Composition and Potential Biomedical Effects, Nova Science Publishers, Inc., New York, 181-209.
Yao, L.H., Jiang, Y.M., Shi, J., Tomás-Barberán, F.A., Datta, N., Singanusong, R. and Chen, S.S. (2004) Flavonoids in Food and Their Health Benefits. Plant Foods for Human Nutrition, 59, 113-122. https://doi.org/10.1007/s11130-004-0049-7
Zafra-Stone, S., Yasmin, T., Bagchi, M., Chatterjee, A., Vinson, J.A. and Bagchi, D. (2007) Berry Anthocyanins as Novel Antioxidants in Human Health and Disease Prevention. Molecular Nutrition & Food Research, 51, 675-683. https://doi.org/10.1002/mnfr.200700002
Baiano, A. (2014) Influence of Genotype, Pedoclimatic Conditions, Viticultural Practices and Ripening on the Phenolic Composition of Grapes: A Review. In: Câmara, J.S., Ed., Grapes: Production, Phenolic Composition and Potential Biomedical Effects, Nova Science Publishers, Inc., New York, 3-26.
Zhu, L., Zhang, Y. and Lu, J. (2012) Phenolic Contents and Compositions in Skins of Red Wine Grape Cultivars among Various Genetic Backgrounds and Originations. International Journal of Molecular Sciences, 13, 3492-3510. https://doi.org/10.3390/ijms13033492
Yamashita, H. and Mochioka, R. (2014) Wild Grape Germplasms in Japan. Advances in Horticultural Science, 28, 214-224.
Sun, B., Leandro, C., Ricardo da Silva, J.M. and Spranger, I. (1998) Separation of Grape and Wine Proanthocyanidins According to Their Degree of Polymerization. Journal of Agricultural and Food Chemistry, 46, 1390-1396. https://doi.org/10.1021/jf970753d
Sun, B., Ricardo da Silva, J.M. and Spranger, I. (1998) Critical Factors of Vanillin Assay for Catechins and Proanthocyanidins. Journal of Agricultural and Food Chemistry, 46, 4267-4274. https://doi.org/10.1021/jf980366j
Pena-Neira, A., Duenas, M., Duarte, A., Hernandez, T., Estrella, I. and Loyola, E. (2004) Effects of Ripening Stages and of Plant Vegetative Vigor on the Phenolic Composition of Grapes (Vitis vinifera L.) cv. Cabernet Sauvignon in the Maipo Valley (Chile). Vitis, 43, 51-57.
Shiraishi, M., Yamada, M., Mitani, N. and Ueno, T. (2007) A Rapid Determination Method for Anthocyanin Profiling in Grape Genetic Resources. Journal of the Japanese Society for Horticultural Science, 76, 28-35. https://doi.org/10.2503/jjshs.76.28
Cheynier, V., Prieur, C., Guyot, S., Rigaud, J. and Moutounet, M. (1997) The Structures of Tannins in Grapes and Wines and Their Interaction with Proteins. In: Watkins, T.R., Ed., Wine: Nutritional and Therapeutic Benefits, ACS Symposium Series 661, American Chemical Society, Washington DC, 81-93.
Labarbe, B., Cheynier, V., Brossaud, F., Souquet, J.-M. and Moutounet, M. (1999) Quantitative Fractionation of Grape Proanthocyanidins According to Their Degree of Polymerization. Journal of Agricultural and Food Chemistry, 47, 2719-2723. https://doi.org/10.1021/jf990029q
Fujita, A., Soma, N., Goto-Yamamoto, N., Mizuno, A., Kiso, K. and Hashizume, K. (2007) Effect of Shading on Proanthocyanidin Biosynthesis in the Grape Berry. Journal of the Japanese Society for Horticultural Science, 76, 112-119. https://doi.org/10.2503/jjshs.76.112
Harbertson, J.F., Kennedy, J.A. and Adams, D.O. (2002) Tannin in Skins and Seeds of Cabernet Sauvignon, Syrah, and Pinot Noir Berries during Ripening. American Journal of Enology and Viticulture, 53, 54-59.
Hernandez-Jimenez, A., Gomez-Plaza, E., Martinez-Cutillas, A. and Kennedy J.A. (2009) Grape Skin and Seed Proanthocyanidins from Monastrell Syrah Grapes. Journal of Agricultural and Food Chemistry, 57, 10798-10803. https://doi.org/10.1021/jf903465p
Rodrigues-Montealegre, R., Romero-Peces, R., Chacon-Vozmediano, J.L., Martinez-Gascuena, J. and Garcia-Romero, E. (2006) Phenolic Compounds in Skins and Seeds of Ten Grape Vitis vinifera Varieties Grown in a Warm Climate. Journal of Food Composition and Analysis, 19, 687-693. https://doi.org/10.1016/j.jfca.2005.05.003
Xu, C., Zhang, Y., Cao, L. and Lu, J. (2010) Phenolic Compounds and Antioxidant Properties of Different Grape Cultivars Grown in China. Food Chemistry, 119, 1557-1565. https://doi.org/10.1016/j.foodchem.2009.09.042
Lago Vanzela, E.S., Alves Baffi, M., Machado de Castilhos, M.B., Moacir Ribeiro Pinto, M.R., Del Bianchi, V.L., Mota Ramos, A., Cesar Stringeta, P., Hermosin-Gutierrez, I. and Da-Silva, R. (2014) Phenolic Compounds in Grapes and Wines: Chemical and Biochemical Characteristics and Technological Quality. In: Câmara, J.S., Ed., Grapes: Production, Phenolic Composition and Potential Biomedical Effects, Nova Science Publishers, Inc., New York, 47-105.
Downey, M.O., Harvey, J.S. and Robinson, S.P. (2003) Synthesis of Flavonols and Expression of Flavonol Synthase Genes in the Developing Grape Berries of Shiraz and Chardonnay (Vitis vinifera L.). Australian Journal of Grape and Wine Research, 9, 110-121. https://doi.org/10.1111/j.1755-0238.2003.tb00261.x
Liang, Z., Owens, C.L., Zhong, G.-Y. and Cheng, L. (2011) Polyphenolic Profiles Detected in the Ripe Berries of Vitis vinifera Germplasm. Food Chemistry, 129, 940-950. https://doi.org/10.1016/j.foodchem.2011.05.050
Cook, M.G., Zhang, Y., Nelson, C.J., Gambetta, G., Kennedy, J.A. and Kurtural, S.K. (2015) Anthocyanin Composition of Merlot Is Ameliorated by Light Microclimate and Irrigation in Central California. American Journal of Enology and Viticulture, 66, 266-278. https://doi.org/10.5344/ajev.2015.15006
Kallithraka, S., Abdel-Azeem Mohdaly, A., Makris, D.P. and Kefalas, P. (2005) Determination of Major Anthocyanin Pigments in Hellenic Native Grape Varieties (Vitis vinifera sp.): Association with Antiradical Activity. Journal of Food Composition and Analysis, 18, 375-386. https://doi.org/10.1016/j.jfca.2004.02.010
Matsuyama, S., Tanzawa, F., Kobayashi, H., Suzuki, S., Tanaka, R. and Saito, H. (2014) Leaf Removal of Accelerated Accumulation of Delphinidin-Based Anthocyanins in Muscat Bailey A [Vitis labruscana (Bailey) and Vitis vinifera (Muscat Hamburg)] Grape Skin. Journal of the Japanese Society for Horticultural Science, 83, 17-22. https://doi.org/10.2503/jjshs1.CH-062
Oh, Y.S., Lee, J.H., Yoon, S.H., Oh, C.H., Choi, D.S., Choe, E. and Jung, M.Y. (2008) Characterization and Quantification of Anthocyanins in Grape Juices Obtained from the Grapes Cultivated in Korea by HPLC/DAD, HPLC/MS, and HPLC/MS/ MS. Journal of Food Science, 73, C378-C389. https://doi.org/10.1111/j.1750-3841.2008.00756.x
Ribereau-Gayon, P., Glories, Y., Maujean, A. and Dubourdieu, D. (2006) Phenolic Compounds In: Ribereau-Gayon, P., Glories, Y., Maujean, A. and Dubourdieu, D., Eds., Handbook of Enology Volume 2. The Chemistry of Wine Stabilization and Treatments, 2nd Edition, John Wiley & Sons, Ltd., Chichester, 141-204. https://doi.org/10.1002/0470010398.ch6
Giusti, M.M. and Wrolstad, R.E. (2001) Characterization and Measurement of Anthocyanins by UV-Visible Spectroscopy. In: Giusti, M.M. and Wrolstad, R.E., Eds., Current Protocols in Food Analytical Chemistry, John Wiley and Sons, Inc., Hoboken, F1.2.1.-F1.2.13.
Woodall, G.S. and Stewart, G.R. (1998) Do Anthocyanins Play a Role in UV Protection of the Red Juvenile Leaves of Syzygium? Journal of Experimental Botany, 49, 1447-1450.
Burger, J. and Edwards, G.A. (1996) Photosynthetic Efficiency, and Photodamage by UV and Visible Radiation, in Red versus Green Leaf Coleus Varieties. Plant Cell Physiol., 37, 395-399. https://doi.org/10.1093/oxfordjournals.pcp.a028959