Correlation between browning degree and composition of important Turkish white wine grape varieties

Correlation between browning degree and composition of important Turkish white wine grape varieties

This study was undertaken to investigate the correlation between browning degree and composition of important Turkish white wine grape varieties during the 2006 and 2007 seasons. Large seasonal and cultivar variations were found in all measured variables. The highest browning degree was found in the Narince cultivar in both years, followed by Emir and Sultaniye, with Narince being the most susceptible to browning and Sultaniye being the least. No correlation (P < 0.05) was found between browning degrees and cysteine, glutathione, polyphenol oxidase activity, or total phenolic contents. Effects of harvest year and variety on all measured parameters, except total phenolics, were statistically significant (P < 0.01).

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  • Adams DO, Liyanage C (1991). Modification of an enzymatic glutathione assay for determination of total glutathione in grapevine tissues. Am J Enol Viticult 42: 137‒140.
  • Adams DO, Liyanage C (1993). Glutathione increases in grape berries at the onset of ripening. Am J Enol Viticult 44: 333‒338.
  • Bozdogan A, Canbas A (2011). Influence of yeast strain, immobilisation and ageing time on the changes of free amino acids and amino acids in peptides in bottle-fermented sparkling wines obtained from Vitis vinifera cv. Emir. Int J Food Sci Tech 46: 1113‒1121.
  • Cheng GW, Crisosto CH (1995). Browning potential, phenolic composition, and polyphenoloxidase activity of buffer extracts of peach and nectarine skin tissue. J Am Soc Hortic Sci 5: 835‒838.
  • Cheynier V, Hulst MWJ (1988). Oxidation of trans-caftaric acid and 2-S-glutahionyl caftaric acid model solutions. J Agr Food Chem 36: 10‒15.
  • Cheynier V, Osse C, Rigaud J (1988). Oxidation of grape juice phenolic compounds in model solutions. J Food Sci 53: 1729‒1732.
  • Cheynier V, Souquet JM, Kontek A, Moutounet M (1994). Anthocyanin degradation in oxidising grape musts. J Sci Food Agr 66: 283‒288.
  • Fracassetti D, Lawrence N, Tredoux AGJ, Tirelli A, Nieuwoudt HH, Toit WJ (2011). Quantification of glutathione, catechin and caffeic acid in grape juice and wine by a novel ultraperformance liquid chromatography method. Food Chem 128: 1136–1142.
  • Gómez-Alonso S, Hermosín-Gutiérrez I, García-Romero E (2007). Simultaneous HPLC analysis of biogenic amines, amino acids, and ammonium ion as aminoenone derivatives in wine and beer samples. J Agr Food Chem 55: 608‒613.
  • Hermosín I, Chicón RM, Cabezudo, MD (2003). Free amino acid composition and botanical origin of honey. Food Chem 83: 263–268.
  • Hooper LR, Collins GG, Rankie BC (1985). Catecholase activity in Australian white grape varieties. Am J Enol Viticult 36: 203‒206.
  • Jackson RS (2008). Wine Science. 3rd ed. Burlington, MA, USA: Academic Press.
  • Kallithraka S, Salacha MI, Tzourou I (2009). Changes in phenolic composition and antioxidant activity of white wine during bottle storage: accelerated browning test versus bottle storage. Food Chem 113: 500–505.
  • Kritzinger EC, Bauer FF, Toit WJD (2013). Role of glutathione in winemaking: a review. J Agr Food Chem 61: 269−277.
  • Lee CY, Jaworski AW (1988). Phenolics and browning potential of white grapes grown in New York. Am J Enol Viticult 39: 337‒340.
  • Lee CY, Kagan V, Jaworski AJ, Brown SK (1990). Enzymatic browning in relation to phenolic compounds and polyphenol oxidase activity among various peach cultivars. J Agr Food Chem 38: 99‒101.
  • Li H, Guo A, Wang H (2008). Mechanisms of oxidative browning of wine. Food Chem 108: 1–13.
  • López-Miranda S, Hernández-Sánchez P, Serrano-Martínez A, Hellín P, Fenoll J, Núñez-Delicado E (2011). Effect of ripening on protein content and enzymatic activity of Crimson Seedless table grape. Food Chem 127: 481‒486.
  • Macheix JJ, Sapis JC, Fleuriet A (1991). Phenolic compounds and polyphenoloxidase in. relation to browning in grapes and wines. Crit Rev Food Sci Nutr 30: 441‒486.
  • Maggu M, Winz R, Kilmartin PA, Trought MCT, Nicolau L (2007). Effect of skin contact and pressure on the composition of Sauvignon Blanc must. J Agr Food Chem 55: 10281–10288.
  • Moreno-Arribas MV, Polo MC (2009). Wine Chemistry and Biochemistry. New York, NY, USA: Springer.
  • Ough CS, Amerine MA (1988). Methods For Analysis of Musts and Wines. New York, NY, USA: John Wiley and Sons.
  • Robinson DS (1991). Peroxidase and catalase. In: Robinson DS, Eskin NAM, editors. Oxidative Enzymes in Foods. New York, NY, USA: Elsevier Pres, pp. 1–49.
  • Singleton VL, Salgues M, Trousdale E (1985). Caftaric acid disappearance and conversion to products of enzymic oxidation in grape must and wine. Am J Enol Viticult 36: 50‒56.
  • Ünal MÜ, Şener A (2006). Determination of some biochemical properties of polyphenol oxidase from Emir grape (Vitis vinifera L. cv. Emir). J Sci Food Agr 86: 2374–2379.
  • Ünal MÜ, Şener A (2014). Effect of harvest year on biochemical properties of Narince grape (Vitis vinifera L. cv. Narince) polyphenol oxidase. Eur Food Res Technol 4: 613‒619.
  • Ünal MÜ, Şener A, Bozdoğan A (2010). A comparative study of polyphenol oxidase from two varieties of quince (Cydonia oblonga). J Food Biochem 34: 356–367.
  • Ünal MÜ, Şener A, Şen K (2007). Characterization of Sultaniye grape (Vitis vinifera L. cv. ‘Sultana’) polyphenol oxidase. Int J Food Sci Technol 42: 1123–1127.
  • Varga-Visi E, Terlaky-Balla E, Pohn G, Kametler L, Csapó J (2000). RPHPLC determination of l- and d-cystine and cysteine as cysteic acid. Chromatographia Supplement 51: 325‒327.
  • Wissemann KW, Lee CY (1980). Polyphenol oxidase activity during grape maturation and wine production. Am J Enol Viticult 31: 206‒211.