Varietal Distributions of Stilbenes in Grape Cane of Vitis vinifera L.

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Authors: Ivo Soural, Josef Balík, Naděžda Vrchotová and Jan Tříska

Volume/Issue: Volume 20: Issue 1

Published online: 06 Jun 2017

Pages: 11–14

DOI: https://doi.org/10.1515/ahr-2017-0003


Abstract

Grape cane is a waste product from viticulture, which can be used as a source of stilbenes, such as resveratrol and viniferins with high antioxidant values. These stilbenes have also important healthy effects for humans. Resveratrol and viniferins are known as phytoalexins since 1977. Biomass of grape canes in annual pruning is a very valuable source of stilbenes, e.g. trans-resveratrol, and trans-ε-viniferin in dry grape canes. The main goal of this article was to compare the distribution of resveratrol and viniferins in the grape cane varieties of Laurot, Hibernal, Malverina and Chardonnay. The highest content of trans-resveratrol was found in Hibernal (6,111 mg kg−1); for trans-ε-viniferin and r2-vinifein, the highest levels were found in Malverina (2,211 and 654 mg kg−1). These compounds can be obtained from this waste product (grape cane), by easy extraction process in winemaking or food-processing industry.


Keywords: Vitis vinifera L., varieties, grape canes, stilbenes, distribution

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References

AAVIKSAAR A. – HAGA M. – PUSSA T. – ROASTO M. – TSOUPRAS G. 2003. Purification of resveratrol from vine stems. In Proceedings of the Estonian Academy of Sciences: Chemistry vol. 52 2003 no. 4 pp. 155–164.


AAVIKSAAR A. – HAGA M. – PUSSA T. – ROASTO M. – TSOUPRAS G. 2003. Purification of resveratrol from vine stems. In Proceedings of the Estonian Academy of Sciences: Chemistry vol. 52 2003 no. 4 pp. 155–164.


BALÍK J. – KYSELÁKOVÁ M. – VRCHOTOVÁ N. – TŘÍSKA J. – KUMŠTA M. – VEVERKA J. – HÍC P. – TOTUŠEK J. – LEFNEROVÁ D. 2008. Relations between polyphenols content and antioxidant activity in vine grapes and leaves. In Czech Journal of Food Sciences vol. 26 2008 pp. 25–32.


CATALGOL B. – BATIREL S. – TAGA Y. – OZER N. K. 2012. Resveratrol: French paradox revisited. In Front Pharmacol vol. 3 2012 no. 141 p. 141.


HOUILLÉ B. – BESSEAU S. – COURDAVAULT V. – OUDIN A. – GLÉVAREC G. – DELANOUE G. – GUÉRIN L. – SIMKIN A. J. – PAPON N. – CLASTRE M. – GIGLIOLI–GUIVARC‘H N. – LANOUE A. 2015. Biosynthetic Origin of E–Resveratrol Accumulation in Grape Canes during Postharvest Storage. In Journal of Agricultural and Food Chemistry vol. 63 2015 no. 5 pp. 1631–1638.


LAMBERT C. – RICHARD T. – RENOUF E. – BISSON J. – WAFFO–TÉGUO P. – BORDENAVE L. – OLLAT N. – MÉRILLON J. M. – CLUZET S. 2013. Comparative analyses of stilbenoids in canes of major Vitis vinifera L. cultivars. In Journal of Agricultural and Food Chemistry vol. 61 2013 no. 47 pp. 11392–11399


LANGCAKE P. – PRYCE R. J. 1976. The production of resveratrol by Vitis vinifera and other members of the Vitaceae as a response to infection or injury. In Physiological Plant Pathology vol. 9 1976 no. 1 pp. 77–86.


LANGCAKE P. – PRYCE R. J. 1977. The production of resveratrol and the viniferins by grapevines in response to ultraviolet irradiation. In Phytochemistry vol. 16 1977 no. 8 pp. 1193–1196.


McCORMACK D. – McFADDEN D. 2013. A review of pterostilbene antioxidant activity and disease modification. In Oxidative Medicine and Cellular Longevity 2013 pp. 1–15.


PARK E. J. – PARK H. J. – CHUNG H. J. – SHIN Y. – MIN H. Y. – HONG J. Y. – KANG Y. J. – AHN Y. H. – PYEE J. H. – LEE S. K. 2012. Antimetastatic activity of pinosylvin a natural stilbenoid is associated with the suppression of matrix metalloproteinases. In Journal of Nutritional Biochemistry vol. 23 2012 no. 8 pp. 946–952.


PAWLUS A. D. – SAHLI R. – BISSON J. – RIVIÈRE C. – DELAUNAY J. C. – RICHARD T. – GOMÈS E. – BORDENAVE L. – WAFFO–TÉGUO P. – MÉRILLON J. M. 2013. Stilbenoid profiles of canes from Vitis and Muscadinia species. In Journal of Agricultural and Food Chemistry vol. 61 2013 no. 3 pp. 501–511.


RAYNE S. – KARACABEY E. – MAZZA G. 2008. Grape cane waste as source of trans-resveratrol and trans-viniferin: highvalue phytochemicals with medicinaland anti-phytopathogenic applications. In Industrial Crops and Products vol. 27 2008 no. 3 pp. 335–340.


RENAUD S. – de LORGERIL M. 1992. Wine alcohol platelets and the French paradox for coronary heart disease. In Lancet vol. 339 1992 pp. 1523–1526.


RICHARD T. – POUPARD P. – NASSRA M. – PAPASTAMOULIS Y. – IGLESIAS M. L. – KRISA S. – WAFFO–TEGUO P. – MERILLON J. M. – MONTI J. P. 2011. Protective effect of ε-viniferin on β-amyloid peptide aghgregation investigated by electrospray ionization mass spectrometry. In Bioorganic @ Medicinal Chemistry vol. 19 2011 no. 10 pp. 3152–3155.


SOTHEESWARAN S. – PASUPATHY V. 1993. Distribution of resveratrol oligomers in plants. In Phytochemistry vol. 32 1993 no. 5 pp. 1083–1092.


SOURAL I. – VRCHOTOVA N. – TRISKA J. – BALIK J. – HORNIK S. – CURINOVA P. – SYKORA J. 2015. Various Extraction Methods for Obtaining Stilbenes from Grape Cane of Vitis vinifera L. In Molecules vol. 20 2015 no. 4 pp. 6093–6112.


TŘÍSKA J. – VRCHOTOVÁ N. – OLEJNÍČKOVÁ J. – JÍLEK R. – SOTOLÁŘ R. 2012. Separation and identification of highly fluorescent compounds derived from trans–resveratrol in the leaves of Vitis vinifera infected by Plasmopara viticola. In Molecules vol. 17 2012 no. 3 pp. 2773–2783.


TŘÍSKA J. – VRCHOTOVÁ N. – SÝKORA J. – MOOS M. 2013. Separation and identification of 124-trihydroxynaphthalene-1-O-glucoside in Impatiens glandulifera Royle. In Molecules vol. 18 2013 no. 7 pp. 8429–8439.


VERGARA C. – VON BAER D. – MARDONES C. – WILKENS A. – WERNEKINCK K. – DAMM A. – MACKE S. – GORENA T. – WINTERHALTER P. 2012. Stilbene levels in grape cane of different cultivars in southern Chile: Determination by HPLC-DAD-MS/MS method. In Journal of Agricultural and Food Chemistry vol. 60 2012 no. 4 pp. 929–933.


XUE Y. Q. – DI J. M. – LUO Y. – CHENG K. J. – WEI X. – SHI Z. 2014. Resveratrol Oligomers for the Prevention and Treatment of Cancers. In Oxidative Medicine and Cellular Longevity 2014 9 p.