Seasonal variation in amino acid and phenolic compound profiles of three Turkish white wine grapes

Abstract: Changes in amino acids and phenolic compounds in Emir, Narince, and Sultaniye grapes were monitored by high-performance liquid chromatography for two consecutive seasons. Seasonal and varietal variations in amino acid content were observed among the cultivars. Arginine, histidine, and alanine were the most prominent amino acids in all 3 cultivars in both years, with arginine being the highest found in the Sultaniye cultivar, varying between 910 and 955 mg/L. The phenolic contents also showed seasonal and varietal variations. Of the phenolic compounds identified, catechin was the most abundant in all three cultivars, with the highest found in Narince ranging between 106 and 109 mg/kg. Procyanidin B1 and gallic acid were the second most prominent.

Seasonal variation in amino acid and phenolic compound profiles of three Turkish white wine grapes

Abstract: Changes in amino acids and phenolic compounds in Emir, Narince, and Sultaniye grapes were monitored by high-performance liquid chromatography for two consecutive seasons. Seasonal and varietal variations in amino acid content were observed among the cultivars. Arginine, histidine, and alanine were the most prominent amino acids in all 3 cultivars in both years, with arginine being the highest found in the Sultaniye cultivar, varying between 910 and 955 mg/L. The phenolic contents also showed seasonal and varietal variations. Of the phenolic compounds identified, catechin was the most abundant in all three cultivars, with the highest found in Narince ranging between 106 and 109 mg/kg. Procyanidin B1 and gallic acid were the second most prominent.

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  • Bisson LF (2004). The biotechnology of wine yeast. Food Biotech 18: 63–96.
  • Bourzeix M, Weyland D, Heredia N (1986). Etude des catechines et des procyanidols de la grappe de raisin, du vin et d’autres dérives de la vigne. Bull de l’OIV 59: 1171–1254 (in French).
  • Bozdoğan A, Canbaş 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 Mol Sci 46: 1113–1121.
  • Flamini R, Mattivi F, Rosso MD, Arapitsas P, Bavaresco L (2013). Advanced knowledge of three important classes of grape phenolics: anthocyanins, stilbenes and flavonols. Int J Mol Sci 14: 19651–19669.
  • Freitas V, Glories Y, Monique A (2000). Developmental changes of procyanidin in grapes of red Vitis vinifera varieties and their composition in respective wines. Am J Enol Viticult 51: 397– 403.
  • Fugelsang KC, Edwards CG (2007). Wine Microbiology. New York, NY, USA: Springer.
  • Garde-Cerdan T, Ancin-Azpilicueta C (2008). Effect of the addition of different quantities of amino acids to nitrogen-deficient must on the formation of esters, alcohols, and acids during wine alcoholic fermentation. LWT Food Sci Technol 4: 501– 510.
  • Garrido J, Borges F (2013). Wine and grape polyphenols – a chemical perspective. Food Res Int 54: 1844–1858.
  • Gomez-Alonso S, Hermosin-Gutierrez I, Garcia-Romero E (2007). Simultaneous HPLC analysis of biogenic amines, amino acids, and ammonium ion as aminoenone derivatives in wine and beer samples. J Agric Food Chem 55: 608–613.
  • Henschke PA, Jiranex V (1993). Yeasts – metabolism of nitrogen compounds. In: Fleet GH, editor. Wine Microbiology and Biotechnology. London, UK: Taylor & Francis, pp. 77–164.
  • Herbert P, Cabrita MJ, Ratola N, Laureano O, Alves A (2006). Relationship between biogenic amines and free amino acid contents of wines and musts from Alentejo (Portugal). J Environ Sci Health B 41: 1171–1186.
  • Hermosin I, Chicon RM, Cabezudo MD (2003). Free amino acid composition and botanical origin of honey. Food Chem 83: 263–268.
  • Hernandez-Orte P, Cacho JF, Ferreira V (2002). Relationship between varietal amino acid profile of grapes and wine aromatic composition. Experiments with model solutions and chemometric study. J Agric Food Chem 50: 2891–2899.
  • Hoenicke K, Simat TJ, Steinhart H, Köhler HJ, Schwab A (2001). Determination of free and conjugated indole-3-acetic acid, tryptophan, and tryptophan metabolites in grape must and wine. J Agric Food Chem 49: 5494–5501.
  • Jackson RS (2008). Wine Science. 3rd ed. San Diego, CA, USA: Academic Press, pp. 281–376.
  • Jogaiah S, Oulkar DP, Banerjee K (2010). Amino acid profile of ‘Thompson Seedless’ grapes grafted on different rootstocks at various stages of berry development. Int J Fruit Sci 10: 323–340.
  • Kelebek H, Canbas A, Jourdes M, Teissedre PL (2010). Characterization of colored and colorless phenolic compounds in Öküzgözü wines from Denizli and Elazig regions using HPLC-DAD–MS. Ind Crops Prod 31: 499–508.
  • Kliewer WM (1967). Concentration of tartrates, malates, glucose, and fructose in the fruits of the genus. Vitis Am J Enol Viticult 18: 33–41.
  • Lee J, Schreiner RP (2010). Free amino acid profiles from ‘Pinot noir’ grapes are influenced by vine N-status and sample preparation method. Food Chem 119: 484–489.
  • Marais J, Hunter JJ, Haasbroek PD (1999). Effect of canopy microclimate, season and region on Sauvignon blanc grape composition and wine quality. S Afr J Enol Vitic 20: 19–30.
  • Meng JF, Fang YL, Qin MY, Zhuang XF, Zhang ZW (2012). Varietal differences among the phenolic profiles and antioxidant properties of four cultivars of spine grape (Vitis davidii Foex) in Chongyi County (China). Food Chem 134: 2049–2056.
  • Monagas M, Bartolome B, Gomez-Cordoves G (2005). Updated knowledge about the presence of phenolic compounds in wine. Crit Rev Food Sci 45: 85–118.
  • Montealegre RR, Peces RR, Vozmediano JLC, Gascuena JM, Romero EG (2006). Phenolic compounds in skins and seeds of ten grape Vitis vinifera varieties grown in a warm climate. J Food Comp Anal 19: 687–693.
  • Moreira N, Pinho PGD, Santos C, Vasconcelos I (2011). Relationship between nitrogen content in grapes and volatiles, namely heavy sulphur compounds, in wines. Food Chem 126: 1599–1607.
  • Moreno-Arribas MV, Polo MC (2005). Winemaking biochemistry and microbiology: current knowledge and future trends. Crit Rev Food Sci 45: 265–286.
  • Peinado J, Lerma NL, Peralbo-Molina A, Priego-Capote F, Castro C, McDonagh B (2013). Sunlight exposure increases the phenolic content in postharvested white grapes. An evaluation of their antioxidant activity in Saccharomyces cerevisiae. J Funct Foods 5: 1566–1575.
  • Perestrelo R, Lu Y, Santos SAO, Silvestre AJD, Neton CP, Camara JS, Rocha SM (2012). Phenolic profile of Sercial and Tinta Negra Vitis vinifera L. grape skins by HPLC–DAD–ESI-MSn novel phenolic compounds in Vitis vinifera L. grape. Food Chem 13: 594–104.
  • Person DM (2010). Location and rootstock effect on free amino acid and phenolic composition of grape cultivars. MSc, University of California at Davis, Davis, CA, USA.
  • Ribereau-Gayon P, Dubourdieu D, Doneche B, Lonvaud A (2006). Handbook of Enology. 2nd ed. New York, NY, USA: John Wiley & Sons Ltd.
  • Sayed H (1992). Vineyard Site Suitability in Ontario. Ontario Grape and Wine Adjustment Program, OMAFRA and Agriculture Canada. Publication N.10.92. Ottawa, Canada: Ministry of Agriculture and Food.
  • 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.
  • Stines AP, Grubb J, Gockowiak H, Henscheke PA, Hoj PB, Heeswijck R (2000). Proline and arginine accumulation in developing berries of Vitis vinifera L. in Australian vineyards: influence of vine cultivar, berry maturity and tissue type. Aust J Grape Wine Res 6: 150–158.
  • Teixeira A, Eiras-Dias J, Castellarin SD, Geros H (2013). Berry phenolics of grapevine under challenging environments. Int J Mol Sci 14: 18711–18739.
  • Ünal MÜ, Şener A (2006). Determination of some biochemical properties of polyphenol oxidase from Emir grape (Vitis vinifera L. cv. Emir). J Food Sci Agric 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 238: 613–619.
  • Ünal MÜ, Şener A, Bozdoğan A (2010). 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 Tech 42: 1123–1127.
  • Valdes E, Vilanova M, Sabio E, Benalte MJ (2011). Clarifying agents effect on the nitrogen composition in must and wine during fermentation. Food Chem 125: 430–437.
  • Varga-Visi E, Terlaky-Balla E, Pohn G, Kametler L, Csapo J (2000). RPHPLC determination of L- and D-cystine and cysteine as cysteic acid. Chromatographia 51: S325–S327.
  • Wiebe J, Anderson ET (1977). Site Selection of Grapes in the Niagara Peninsula. Vineland, Canada: Horticultural Research Institute of Ontario.
Turkish Journal of Agriculture and Forestry-Cover
  • ISSN: 1300-011X
  • Yayın Aralığı: Yılda 6 Sayı
  • Yayıncı: TÜBİTAK
Sayıdaki Diğer Makaleler

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