Antioxidant Properties of European Cranberrybush Fruit (Viburnum opulus var. edule)
Abstract
:1. Introduction
2. Results and Discussion
Cultivar | Year | TFC | AAC |
---|---|---|---|
Leningradskaya otbornaya | 2007 | 3.85 ± 0.17a | 1.14 ± 0.11a |
2008 | 3.96 ± 0.16a | 1.35 ± 0.09b | |
2009 | 4.06 ± 0.20a | 1.47 ± 0.08b | |
Souzga | 2007 | 3.14 ± 0.21b | 1.01 ± 0.10a |
2008 | 3.44 ± 0.14b | 1.12 ± 0.06a | |
2009 | 3.25 ± 0.15b | 1.50 ± 0.10b | |
Taezny rubiny | 2007 | 4.54 ± 0.25c | 1.64 ± 0.08b |
2008 | 4.75 ± 0.27c | 1.15 ± 0.11a | |
2009 | 4.89 ± 0.21c | 1.50 ± 0.05b |
Cultivar | Year | Nitric oxide (%) | Superoxide anion (%) | Hydroxyl radical (%) | Lipid peroxidation (%) |
---|---|---|---|---|---|
Leningradskaya otbornaya | 2007 | 24.16 ± 0.26a | 27.11 ± 0.56a | 22.02 ± 0.85a | 12.71 ± 0.56a |
2008 | 23.84 ± 0.32a | 27.60 ± 0.39a | 21.86 ± 0.79a | 12.95 ± 0.29a | |
2009 | 24.31 ± 0.29a | 27.55 ± 0.50a | 21.90 ± 0.69a | 13.16 ± 0.28a | |
Souzga | 2007 | 22.11 ± 0.15b | 25.16 ± 0.49b | 19.40 ± 0.80b | 11.20 ± 0.36b |
2008 | 22.10 ± 0.28b | 25.44 ± 0.50b | 19.65 ± 0.75b | 11.62 ± 0.38b | |
2009 | 21.89 ± 0.30c | 25.13 ± 0.45b | 19.61 ± 0.81b | 11.51 ± 0.40b | |
Taezny rubiny | 2007 | 25.19 ± 0.31d | 28.50 ± 0.38c | 23.94 ± 0.74c | 13.78 ± 0.51ac |
2008 | 25.44 ± 0.24d | 27.95 ± 0.30ac | 23.78 ± 0.68c | 13.90 ± 0.37c | |
2009 | 25.37 ± 0.26d | 28.15 ± 0.41c | 23.98 ± 0.80c | 13.45 ± 0.42ac |
Cultivar | Year | TPC | TAA (DPPH test) | TAA (ABTS test) |
---|---|---|---|---|
Leningradskaya otbornaya | 2007 | 7.20 ± 0.22a | 9.21 ± 0.16a | 9.90 ± 0.14a |
2008 | 7.27 ± 0.15a | 9.28 ± 0.17a | 9.95 ± 0.18a | |
2009 | 7.29 ± 0.20a | 9.34 ± 0.10a | 9.98 ± 0.17a | |
Souzga | 2007 | 6.80 ± 0.15b | 8.58 ± 0.15b | 9.10 ± 0.20b |
2008 | 6.86 ± 0.12ab | 8.66 ± 0.15b | 9.17 ± 0.18b | |
2009 | 6.80 ± 0.15b | 8.55 ± 0.30b | 9.14 ± 0.23b | |
Taezny rubiny | 2007 | 8.14 ± 0.14c | 9.59 ± 0.13c | 10.94 ± 0.31c |
2008 | 8.31 ± 0.21c | 9.79 ± 0.19c | 11.12 ± 0.26c | |
2009 | 8.29 ± 0.22c | 9.75 ± 0.14c | 11.02 ± 0.25c |
3. Experimental
3.1. Description of growing locality
3.2. Sample processing
3.3. Total phenolic content (TPC) and antioxidant activity (TAA) assay
3.4. Reactive oxygen species scavenging activity assay
3.5. Lipid peroxidation inhibition activity
3.6. Total flavonoid content assay
3.7. Ascorbic acid content assay
3.8. Statistical analysis
4. Conclusions
Acknowledgements
References
- Maciejewska, I. Pollen morphology of the Polish species of the family Caprifoliaceae. Acta Soc. Bot. Pol. 1997, 66, 133–142. [Google Scholar]
- Jordheim, M.; Giske, N.H.; Andersen, O.M. Anthocyanins in Caprifoliaceae. Biochem. Syst. Ecol. 2007, 35, 153–159. [Google Scholar] [CrossRef]
- Hampton, R.; Small, E.; Haunold, A. Habitat and variability of Humulus lupulus var. lupuloides in upper midwestern North America: A critical source of American hop germplasm. J. Torrey Bot. Soc. 2001, 128, 35–46. [Google Scholar] [CrossRef]
- Velioglu, Y.S.; Ekici, L.; Poyrazoglu, E.S. Phenolic composition of European cranberrybush (Viburnum opulus L.) berries and astringency removal of its commercial juice. Int. J. Food Sci. Tech. 2006, 41, 1011–1015. [Google Scholar]
- Soylak, M.; Elci, L.; Saracoglu, S.; Divrikli, U. Chemical analysis of fruit juice of European cranberrybush (Viburnum opulus) from Kayseri – Turkey. Asian J. Chem. 2002, 14, 135–138. [Google Scholar]
- Cam, M.; Hisil, Y. Comparison of chemical characteristics of fresh and pasteurised juice of gilaburu (Viburnum opulus L.). Acta Aliment. Hung. 2007, 36, 381–385. [Google Scholar] [CrossRef]
- Ezov, L.A.; Koncejev, M.G. Vse o jagodach – Novaja enciklopedia dacnika, 1st ed; Ripoll Klasik: Moscow, Russia, 2000; pp. 311–387. [Google Scholar]
- Witmer, M.C. Nutritional interactions and fruit removal: Cedar Waxwing consumption of Viburnum opulus fruits in spring. Ecology 2001, 82, 3120–3130. [Google Scholar]
- Nikitina, V.V. Dlja vas sadovody, 1st ed; Kostroma RIO: Kostroma, Russia, 1998; pp. 301–316. [Google Scholar]
- Cam, M.; Hisil, Y.; Kuscu, A. Organic acid, phenolic content, and antioxidant capacity of fruit flesh and seed of Viburnum opulus. Chem. Nat. Compd. 2007, 43, 460–461. [Google Scholar] [CrossRef]
- Cesoniene, L.; Daubaras, R.; Viskelis, P. Evaluation of productivity and biochemical components in fruit of different Viburnum accessions. Biologia 2008, 54, 93–96. [Google Scholar] [CrossRef]
- Sagdic, O.; Aksoy, O.; Ozkan, G. Evaluation of the antibacterial and antioxidant potentials of cranberry (gilaburu, Viburnum opulus L.) fruit extract. Acta Aliment. Hung. 2006, 35, 487–492. [Google Scholar] [CrossRef]
- Yilmaz, N.; Yali, N.; Misir, G.; Coskuncelebi, K.; Karaoglu, S.; Yayli, N. Chemical composition and antimicrobial activities of the essential oils of Viburnum opulus, Viburnum lantana and Viburnum orientala. Asian J. Chem. 2008, 20, 3324–3330. [Google Scholar]
- Akbulut, M.; Causir, S.; Marakoglu, T.; Coklar, H. Chemical and technological properties of European cranberrybush. Asian J. Chem. 2008, 20, 1875–1885. [Google Scholar]
- Kopec, K.; Balik, J. Kvalitologie zahradnickych produktu, 1st ed; Mendel University of Agriculture and Forestry in Brno: Brno, Czech, 2008; pp. 130–148. [Google Scholar]
- Vrhovsek, U.; Rigo, A.; Tonon, D.; Mattivi, F. Quantitation of polyphenols in different apple varieties. J. Agr. Food Chem. 2004, 52, 6532–6538. [Google Scholar] [CrossRef]
- Rop, O.; Jurikova, T.; Mlcek, J.; Kramarova, D.; Sengee, Z. Antioxidant activity and selected nutritional values of plums (Prunus domestica L.) typical of the White Carpathian Mountains. Sci. Hortic. 2009, 122, 545–549. [Google Scholar]
- Ercisli, S.; Orhan, E.; Ozdemir, O.; Sengul, M. The genotypic effects on the chemical composition and antioxidant activity of sea buckthorn (Hippophae rhamnoides L.) berries grown in Turkey. Sci. Hortic. 2007, 115, 27–33. [Google Scholar]
- Deineka, V.I.; Sorokopudov, V.N.; Deineka, L.A.; Shaposhnik, E.I.; Koltsov, S.V. Anthocyans from fruit of some plants of the Caprifoliaceae family. Chem. Nat. Compd. 2005, 41, 162–164. [Google Scholar] [CrossRef]
- Lugasi, A.; Hovari, J. Flavonoid aglycons in foods of plant origin II. Fresh and dried fruits. Acta Aliment. Hung. 2002, 31, 63–71. [Google Scholar] [CrossRef]
- Kim, D.O.; Jeong, S.W.; Lee, C.Y. Antioxidant capacity of phenolic phytochemicals from various cultivars of plums. Food Chem. 2003, 81, 321–326. [Google Scholar] [CrossRef]
- Usenik, V.; Fabcic, J.; Stampar, F. Sugars, organic acids, phenolic composition and antioxidant activity of sweet cherry (Prunus avium L.). Food Chem. 2008, 107, 185–192. [Google Scholar]
- Thompson, M.M.; Chaovanalikit, A. Preliminary observations on adaption and nutraceutical values of blue honeysuckle (Lonicera caerulea) in Oregon, USA. Acta Hortic. 2003, 626, 65–72. [Google Scholar]
- Bae, S.H.; Suh, H.J. Antioxidant activities of five different mulberry cultivars in Korea. LWT-Food Sci. Technol. 2007, 40, 955–962. [Google Scholar] [CrossRef]
- Maffei, F.; Tarozzi, A.; Karbone, F.; Marchesi, A.; Hrelia, S.; Angeloni, C.; Forti, G.C.; Hrelia, P. Relevance of apple consumption for protection against oxidative damage induced by hydrogen peroxide in human lymphocytes. Brit. J. Nutr. 2007, 97, 921–927. [Google Scholar] [CrossRef]
- Chew, Y.L.; Lim, Y.Y.; Omar, M.; Khoo, K.S. Antioxidant activity of three edible seaweeds from two areas in South East Asia. LWT-Food Sci. Technol. 2008, 41, 1067–1072. [Google Scholar] [CrossRef]
- Barros, L.; Falcao, S.; Baptista, P.; Freire, C.; Vilas-Boas, M.; Ferreira, I.C.F.R. Antioxidant activity of Agaricus spp. mushrooms by chemical, biochemical and electrochemical assays. Food Chem. 2008, 111, 61–66. [Google Scholar] [CrossRef]
- Wang, Z.; Hsu, Ch.; Yin, M. Antioxidative characteristics of aqueous and ethanol extracts of glossy privat fruit. Food Chem. 2009, 112, 914–918. [Google Scholar] [CrossRef]
- Anonymous, Anonymous. Data from Central Institute for Supervising and Testing in Agriculture. 2009.
- Sulc, M.; Lachman, J.; Hamouz, K.; Orsak, M.; Dvorak, P.; Horackova, V. Selection and evaluation of methods for determination of antioxidant activity of purple- and red-fleshed potato varieties. Chem. Listy 2007, 101, 584–591. [Google Scholar]
- Brand-Williams, W.; Cuvelier, M.E.; Berset, C. Use of a free radical method to evaluate antioxidant activity. LWT-Food Sci. Technol. 1995, 28, 25–30. [Google Scholar] [CrossRef]
- Thaipong, K.; Boonprakob, U.; Crosby, k.; Cisneros-Zevallos, L.; Byrne, D.H. Comparison of ABTS, DPPH, FRAP, and ORAC assays for estimating antioxidant activity from guava fruit extracts. J. Food Compos. Anal. 2006, 19, 669–675. [Google Scholar] [CrossRef]
- Rupasinghe, H.P.V.; Jayasankar, S.; Lay, W. Variation in total phenolic and antioxidant capacity among European plum genotypes. Sci. Hortic. 2006, 108, 243–246. [Google Scholar]
- Ghiselli, A.; Nardini, M.; Baldi, A.; Scaccini, C. Antioxidant activity of different phenolic fractions separated from an Italian red wine. J. Agr. Food Chem. 1998, 46, 361–367. [Google Scholar] [CrossRef]
- Green, L.C.; Wagner, D.A.; Glogowski, J.; Skipper, P.L.; Wishnok, J.S.; Tannenbaum, S.R. Analysis of nitrate, nitrite, and [15N] nitrate in biological fluids. Anal. Biochem. 1982, 126, 131–138. [Google Scholar]
- Beissenhirtz, M.K.; Kwan, R.C.; Ko, K.M.; Renneberg, R.; Schiller, F.W.; Liskat, F. Comparing an in vitro electrochemical measurement of superoxide scavenging activity with an in vivo assessment of antioxidant potential in Chinese tonifying herbs. Phytother. Res. 2004, 18, 149–153. [Google Scholar] [CrossRef]
- Srivastava, A.; Harish, S.R.; Shivanandappa, T. Antioxidant activity of the roots of Decalepis hamiltonii. LWT-Food Sci. Technol. 2006, 36, 1059–1065. [Google Scholar]
- Singleton, V.L.; Orthofer, R.; Lamuela-Raventos, R.M. Analysis of total phenols and other oxidation substrates and antioxidants by Folin-Ciocalteu reagent. Method. Enzymol. 1999, 299, 152–178. [Google Scholar]
- Miki, N. High-performance liquid-chromatographic determination of ascorbic acid in tomato products. J. Jpn. Soc. Food Sci. 1981, 28, 264–268. [Google Scholar] [CrossRef]
- Snedecor, G.W.; Cochran, W.G. Statistical Methods, 5th ed; Iowa State University Press: Ames, IA, USA, 1968; pp. 125–230. [Google Scholar]
- Sample Availability: Contact the authors.
© 2010 by the authors;
Share and Cite
Rop, O.; Reznicek, V.; Valsikova, M.; Jurikova, T.; Mlcek, J.; Kramarova, D. Antioxidant Properties of European Cranberrybush Fruit (Viburnum opulus var. edule). Molecules 2010, 15, 4467-4477. https://doi.org/10.3390/molecules15064467
Rop O, Reznicek V, Valsikova M, Jurikova T, Mlcek J, Kramarova D. Antioxidant Properties of European Cranberrybush Fruit (Viburnum opulus var. edule). Molecules. 2010; 15(6):4467-4477. https://doi.org/10.3390/molecules15064467
Chicago/Turabian StyleRop, Otakar, Vojtech Reznicek, Magdalena Valsikova, Tunde Jurikova, Jiri Mlcek, and Daniela Kramarova. 2010. "Antioxidant Properties of European Cranberrybush Fruit (Viburnum opulus var. edule)" Molecules 15, no. 6: 4467-4477. https://doi.org/10.3390/molecules15064467
APA StyleRop, O., Reznicek, V., Valsikova, M., Jurikova, T., Mlcek, J., & Kramarova, D. (2010). Antioxidant Properties of European Cranberrybush Fruit (Viburnum opulus var. edule). Molecules, 15(6), 4467-4477. https://doi.org/10.3390/molecules15064467