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Relationship between wine composition and temperature: Impact on Bordeaux wine typicity in the context of global warming—Review

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Pages 14-30 | Received 18 Apr 2017, Accepted 12 Jul 2017, Published online: 24 Oct 2017

References

  • Agasse, A., C. Vignault, C. Kappel, C. Conde, H. Gerós, and S. Delrot. (2009). Sugar transport & sugar sensing in grape. In Grapevine molecular physiology & biotechnology, ed. K. A. Roubelakis-Angelakis, 105–39. Dordrecht: Springer Netherlands.
  • Allamy, L., P. Darriet, and A. Pons. (2017). Identification and organoleptic contribution of (Z)-1,5-octadien-3-one to the flavor of Vitis vinifera cv. Merlot and Cabernet Sauvignon musts. Journal of Agricultural and Food Chemistry 65:1915–23.
  • Allen, M. S., and M. J. Lacey. (1993). Methoxypyrazine grape flavour: Influence of climate, cultivar and viticulture. Vitic. Enol. Sci 48:211–13.
  • Allen, M. S., M. J. Lacey, and S. Boyd. (1994). Determination of methoxypyrazines in red wines by stable isotope dilution gas chromatography-mass spectrometry. Journal of Agricultural and Food Chemistry 42 (8):1734–38.
  • Asproudi, A., M. Petrozzielo, S. Cavalletto, and S. Guidoni. (2016). Grape aroma precursor in Cv. Nebbiolo as affected by vine microclimate. Food Chemistry 211:947–56.
  • Azuma, A., H. Yakushiji, Y. Koshita, and S. Kobayashi. (2012). Flavonoid biosynthesis-related genes in grape skin are differentially regulated by temperature and light conditions. Planta 236 (4):1067–80.
  • Belancic, A., and E. Agosin. (2007). Methoxypyrazines in grapes and wines of Vitis vinifera Cv. Carmenere. American Journal of Enology and Viticulture 58 (4):462–9.
  • Belancic, A., E. Agosin, A. Ibacache, E. Bordeu, R. Baumes, A. Razungles, and C. Bayonove. (1997). Influence of sun exposure on the aromatic composition of Chilean Muscat grape cultivars Moscatel de alejandria and Moscatel Rosada. American Journal of Enology and Viticulture 48 (2):181–6.
  • Bergqvist, J., N. Dokoozlian, and N. Ebisuda. (2001). Sunlight exposure and temperature effects on berry growth and composition of Cabernet Sauvignon and Grenache in the Central San Joaquin Valley of California. American Journal of Enology and Viticulture 52 (1):1–7.
  • Bisson, J. (1999). French grapevines classed in phenotypical ecogeogroups essay. OENO One, 33(3):105–110.
  • Bock, A., T. Sparks, N. Estrella, and A. Menzel. (2011). Changes in the phenology and composition of wine from Franconia, Germany. Climate Research 50 (1):69–81.
  • Bonada, M. and Sadras, V. O. (2015). critical appraisal of methods to investigate the effect of temperature on grapevine berry composition. Aust. J. Grape and Wine Res. 21(1):1–17.
  • Bordiga, M., F. Travaglia, M. Locatelli, J. D. Coïsson, and M. Arlorio. (2011). Characterisation of polymeric skin and seed proanthocyanidins during ripening in six Vitis vinifera L. Cv. Food Chemistry 127 (1):180–87.
  • Bouchilloux, P., P. Darriet, and D. Dubourdieu. (1998). Identification of a very odoriferous thiol, 2 methyl-3-furanthiol, in wines. Vitis 37:177–80.
  • Bruick, R. K., and S. L. McKnight. (2001). A conserved family of Prolyl-4-hydroxylases that modify HIF. Science 294 (5545):1337–40.
  • Bureau, S. M., A. J. Razungles, and R. L. Baumes. (2000). The aroma of Muscat of Frontignan grapes: Effect of the light environment of vine or bunch on volatiles and glycoconjugates. Journal of the Science of Food and Agriculture 80 (14):2012–20.
  • Buttrose, M. S., and C. R. Hale. (1971). Effects of temperature on accumulation of starch or lipid in chloroplasts of grapevine. Planta 101 (2):166–70.
  • Buttrose, M. S., C. R. Hale, and W. M. Kliewer. (1971). Effect of temperature on the composition of ‘Cabernet Sauvignon' berries. American Journal of Enology and Viticulture 22 (2):71–75.
  • Chapman, D. M., M. A. Matthews, and J. -X. Guinard. (2004). Sensory attributes of Cabernet Sauvignon wines made from vines with different crop yields. American Journal of Enology and Viticulture 55 (4):325.
  • Chira, K., G. Schmauch, C. Saucier, S. Fabre, and P._L. Teissedre. (2009). Grape variety effect on proanthocyanidin composition and sensory perception of skin and seed tannin extracts from Bordeaux wine grapes (Cabernet Sauvignon and Merlot) for two consecutive vintages (2006 and 2007). Journal of Agricultural and Food Chemistry 57 (2):545–53.
  • Cholet, C., S. Claverol, O. Claisse, A. Rabot, A. Osowsky, V. Dumot, G. Ferrari, and L. Gény. (2016). Tartaric acid pathways in Vitis vinifera L. (Cv. Ugni Blanc): A comparative study of two vintages with contrasted climatic conditions. BMC Plant Biology 16 (1):144–62.
  • Choné, X., V. Lavigne-Cruège, C. van Leeuwen, C. Saucier, and D. Dubourdieu. (2006). Effect of vine nitrogen status on grape aromatic potential: Flavor precursors (S-cysteine conjugates), glutathione and phenolic content in Vitis vinifera L. Cv Sauvignon Blanc grape juice. Journal International Des Sciences de La Vigne et Du Vin 40 (1):1–6.
  • Chuine, I., P. Yiou, N. Viovy, B. Seguin, V. Daux, and E. Ladurie. (2004). Historical phenology: Grape ripening as a past climate indicator. Nature 432 (7015):289–90.
  • Coetzee, C., and W. J. du Toit. (2012). A Comprehensive review on Sauvignon Blanc aroma with a focus on certain positive volatile thiols. Food Research International 45 (1):287–98.
  • Cohen, S. D., J. M. Tarara, G. A. Gambetta, M. A. Matthews, and J. A. Kennedy. (2012). Impact of diurnal temperature variation on grape berry development, proanthocyanidin accumulation, and the expression of flavonoid pathway genes. Journal of Experimental Botany 63 (7):2655–65.
  • Cohen, S. D., J. M. Tarara, and J. A. Kennedy. (2008). Assessing the impact of temperature on grape phenolic metabolism. Analytica Chimica Acta 621 (1):57–67.
  • Conde, C., P. Silva, N. Fontes, A. C. P. Dias, R. M. Tavares, M. J. Sousa, A. Agasse, S. Delrot, and H. Geros. (2007). Biochemical changes throughout grape berry developement and fruit and wine quality. Food 1:1–22.
  • Cook, B. I., and E. M. Wolkovich. (2016). Climate change decouples drought from early wine grape harvests in France. Nature Climate Change 6 (7):715–9.
  • Coombe, B. G. (1987). Influence of temperature on composition and quality of grape. Acta Horticulturae 206:23–36.
  • Coombe, B. G. (1992). Research on development and ripening of the grape berry. Am. J. Enol. Vitic. 43(1):101–110.
  • Cozzolino, D., W. U. Cynkar, R. G. Dambergs, M. Gishen, and P. Smith. (2010). Grape (Vitis vinifera) compositional data spanning ten successive vintages in the context of abiotic growing parameters. Agriculture, Ecosystems & Environment 139 (4):565–70.
  • Crippen, D. D., and J. C. Morrison. (1986). The effects of sun exposure on the compositional development of Cabernet Sauvignon berries. American Journal of Enology and Viticulture 37 (4):235–42.
  • Cutzach, I., P. Chatonnet, and D. Dubourdieu. (1998). Rôle Du Sotolon Dans L'arôme Des Vins Doux Naturels, Inlfuence Des Conditions D'élevage et de Vieillissement. Journal International Des Sciences de La Vigne et Du Vin 32:223–33.
  • Dai, Z. W., N. Ollat, E. Gomes, S. Decroocq, J.-P. Tandonnet, L. Bordenave, P. Pieri, et al. (2011). Ecophysiological, genetic, and molecular causes of variation in grape berry weight and composition: A review. American Journal of Enology and Viticulture 62 (4):413–25.
  • Darriet, P., T. Tominaga, V. Lavigne, J. -N. Boidron, and D. Dubourdieu. (1995). Identification of a powerful aromatic component of Vitis vinifera L. var. Sauvignon wine: 4-mercapto-4methylpentan-2-one. Flavour and Fragrance Journal 10 (6):385–92.
  • del Rio, J. L. P. and Kennedy, J. A. (2006). Development of proanthocyanidins in Vitis vinifera L. cv. Pinot noir grapes and extraction into wine. Am. J. Enol. Vitic. 57(2):125–132.
  • Deluc, L., Bogs, J., Walker, A. R., Ferrier, T., Decendit, A., Merillon, J. M., ... and Barrieu, F. (2008). The transcription factor VvMYB5b contributes to the regulation of anthocyanin and proanthocyanidin biosynthesis in developing grape berries. Plant Physiol. 147(4): 2041–2053.
  • Deluc, L. G., A. Decendit, Y. Papastamoulis, JM. Mérillon, J. C. Cushman, and G. R. Cramer. (2011). Water deficit increases stilbene metabolism in Cabernet Sauvignon berries. Journal of Agricultural and Food Chemistry 59 (1):289–97.
  • Deluc, L. G., D. R. Quilici, A. Decendit, J. Grimplet, M. D. Wheatley, K. A. Schlauch, J. M. Mérillon, J. C. Cushman, and G. R. Cramer. (2009). Water deficit alters differentially metabolic pathways affecting important flavor and quality traits in grape berries of Cabernet Sauvignon and Chardonnay. BMC Genomics 10 (1):212–45.
  • Demiglio, P., and G. J. Pickering. (2008). The influence of ethanol and pH on the taste and mouthfeel sensations elicited by red wine. J. Food Agric. Environ 6 (3–4):143–50.
  • Díaz-Maroto, M. C., R. Schneider, and R. Baumes. (2005). Formation pathways of ethyl esters of branched short-chain fatty acids during wine aging. Journal of Agricultural and Food Chemistry 53 (9):3503–9.
  • Di Stefano, R., Bottero, S., Pigella, R., Borsa, D., Bezzo, G. and Corino, L. (1998). Precursori d'aroma glicosilati presenti nelle uve di alcune cultivar a frutto colorato. L'Enotecnico 34(3):63–74.
  • Dokoozlian, N. K., and W. M. Kliewer. (1995). The light environment within grapevine Canopies. I. Description and seasonal changes during fruit development. American Journal of Enology and Viticulture 46 (2):209–18.
  • Downey, M. O., N. K. Dokoozlian, and M. P. Krstic. (2006). Cultural practice and environmental impacts on the flavonoid composition of grapes and wine: A review of recent research. American Journal of Enology and Viticulture 57 (3):257–68.
  • Downey, M. O., J. S. Harvey, and S. P. Robinson. (2004). The effect of bunch shading on berry development and flavonoid accumulation in Shiraz grapes. Australian Journal of Grape and Wine Research 10:55–73.
  • Dubourdieu, D., A. Pons, and V. Lavigne. (2013). Le Vieillissement Prématuré de L'arôme Des Vins Rouges. Revue Des Oenologues 149:52–54.
  • Duchêne, E., and C. Schneider. (2005). Grapevine and climatic changes: A glance at the situation in Alsace. Agronomy for Sustainable Development 25 (1):93–99.
  • Dunlevy, J. D., Kalua, C. M., Keyzers, R. A. and Boss, P. K. (2009). The production of flavour & aroma compounds in grape berries. In Grapevine molecular physiology & biotechnology, pp. 293–340. Roubelakis-Angelakis, K. A., Ed., Springer Netherlands.
  • Dunlevy, J. D., Soole, K. L., Perkins, M. V., Dennis, E. G., Keyzers, R. A., Kalua, C. M. and Boss, P. K. (2010). Two O-methyltransferases involved in the biosynthesis of methoxypyrazines: grape-derived aroma compounds important to wine flavour. Plant Mol. Biol. 74(1-2):77–89.
  • Ebeler, S. E., and J. H. Thorngate. (2009). Wine chemistry and flavor: Looking into the crystal glass. Journal of Agricultural and Food Chemistry 57 (18):8098–108.
  • Erasmus, D., G. Vandermerwe, and H. Vanvuuren. (2003). Genome-wide expression analyses: Metabolic adaptation of to high sugar stress. FEMS Yeast Research 3 (4):375–99.
  • Escudero, A., E. Campo, L. Fariña, J. Cacho, and V. Ferreira. (2007). Analytical characterization of the aroma of five premium red wines. Insights into the role of odor families and the concept of fruitiness of wines. Journal of Agricultural and Food Chemistry 55 (11):4501–10.
  • Ewart, A., and W. M. Kliewer. (1977). Effects of controlled day and night temperatures and nitrogen on fruit-set, ovule fertility, and fruit composition of several wine grape cultivars. American Journal of Enology and Viticulture 28 (2):88–95.
  • Falcão, L. D., G. de Revel, M. C. Perello, A. Moutsiou, M. C. Zanus, and M. T. Bordignon-Luiz. (2007). A survey of seasonal temperatures and vineyard altitude influences on 2-methoxy-3-isobutylpyrazine, C13 -norisoprenoids, and the sensory profile of Brazilian Cabernet Sauvignon wines. Journal of Agricultural and Food Chemistry 55 (9):3605–12.
  • Ferreira, A. C. S., P. Guedes de Pinho, P. Rodrigues, and T. Hogg. (2002). Kinetics of oxidative degradation of white wines and how they are affected by selected technological parameters. Journal of Agricultural and Food Chemistry 50 (21):5919–24.
  • Ferreira, V., R. López, A. Escudero, and J. F. Cacho. (1998). The aroma of Grenache red wine: Hierarchy and nature of its main odorants. Journal of the Science of Food and Agriculture 77 (2):259–67.
  • Ferreyra, M. L. F., S. P. Rius, and P. Casati. (2012). Flavonoids: Biosynthesis, biological functions, and biotechnological applications. Frontiers in Plant Science 3.
  • Ferrier, T. (2008). Les facteurs de transcription MYB et la régulation de la biosynthèse des flavonoïdes dans la baie de raisin: analyse fonctionnelle et identification de nouveaux candidats (Doctoral dissertation, Bordeaux 1).
  • Field, C. B., V. Barros, T. F. Stocker, Q. Dahe, D. Jon Dokken, K. L. Ebi, M. D. Mastrandrea, et al. (2012). IPCC, 2012: Managing the risks of extreme events and disasters to advance climate change adaptation. Cambridge, UK, and New York, NY, USA: Cambridge University Press.
  • Flint, S. D., P. W. Jordan, and M. M. Caldwell. (1985). Plant protective response to enhanced UV-B radiation under field conditions: Leaf optical properties and photosynthesis. Photochemistry and Photobiology 41 (1):95–99.
  • Fontoin, H., C. Saucier, P. -L. Teissedre, and Y. Glories. (2008). Effect of pH, ethanol and acidity on astringency and bitterness of grape seed tannin oligomers in model wine solution. Food Quality and Preference 19 (3):286–91.
  • Forde, C. G., A. Cox, E. R. Williams, and P. K. Boss. (2011). Associations between the sensory attributes and volatile composition of Cabernet Sauvignon wines and the volatile composition of the grapes used for their production. Journal of Agricultural and Food Chemistry 59 (6):2573–83.
  • Francis, I. L., M. A. Sefton, and P. J. Williams. (1992). Sensory descriptive analysis of the aroma of hydrolysed precursor fractions from Semillon, Chardonnay and Sauvignon Blanc grape juices. Journal of the Science of Food and Agriculture 59 (4):511–20.
  • Gagné, S., S. Lacampagne, O. Claisse, and L. Gény. (2009). Leucoanthocyanidin reductase and anthocyanidin reductase gene expression and activity in flowers, young berries and skins of Vitis vinifera L. Cv. Cabernet-Sauvignon during development. Plant Physiology and Biochemistry 47 (4):282–90.
  • Gawel, R. (1998). Red wine astringency: A review. Australian Journal of Grape and Wine Research 4:74–95.
  • Geny, L., C. Saucier, S. Bracco, F. Daviaud, and Y. Glories. (2003). Composition and cellular localization of tannins in grape seeds during maturation. Journal of Agricultural and Food Chemistry 51 (27):8051–54.
  • Gil, M., R. Bottini, F. Berli, M. Pontin, M. F. Silva, and P. Piccoli. (2013). Volatile organic compounds characterized from grapevine (Vitis vinifera L. Cv. Malbec) berries increase at pre-harvest and in response to UV-B radiation. Phytochemistry 96:148–57.
  • Gil, M., M. Pontin, F. Berli, R. Bottini, and P. Piccoli. (2012). Metabolism of terpenes in the response of grape (Vitis Vinifera L.) leaf tissues to UV-B radiation. Phytochemistry 77 (May):89–98.
  • Goldner, M. C., M. C. Zamora, P. Di Leo Lira, H. Gianninoto, and A. Bandoni. (2009). Effect of ethanol in the perception of aroma attributes and the detection of volatile compounds in red wine. Journal of Sensory Studies 24 (2):243–57.
  • Gollop, R., S. E. Even, V. Colova-Tsolova, and A. Peri. (2002). Expression of the grape dihydroflavonol reductase gene and analysis of its promoter region. Journal of Experimental Botany 53 (373):1397–409.
  • Gollop, R., S. Farhi, and A. Perl. (2001). Regulation of the leucoanthocyanidin dioxygenase gene expression in Vitis vinifera. Plant Science 161 (3):579–88.
  • González-Barreiro, C., Rial-Otero, R., Cancho-Grande, B. and Simal-Gándara, J. (2015). Wine aroma compounds in grapes: a critical review. Crit. Rev. Food Sci. Nutr. 55(2):202–218.
  • Graca da Silveira, M., M. Vitoria San Romao, M. C. Loureiro-Dias, F. M. Rombouts, and T. Abee. (2002). Flow cytometric assessment of membrane integrity of ethanol-stressed oenococcus oeni cells. Applied and Environmental Microbiology 68 (12):6087–93.
  • Gray, J. D. (2002). The basis of variation in the size and composition of grape berries (Doctoral dissertation). Australia: The University of Adelaide.
  • Green, J. A., W. V. Parr, J. Breitmeyer, D. Valentin, and R. Sherlock. (2011). Sensory and chemical characterisation of Sauvignon Blanc wine: Influence of source of origin. Food Research International 44 (9):2788–97.
  • Grosch, W. (2001). Evaluation of the key odorants of foods by dilution experiments, aroma models and omission. Chem. Senses 26:533–45.
  • Guillaumie, S., A. Ilg, S. Rety, M. Brette, C. Trossat-Magnin, S. Decroocq, C. Leon, et al. (2013). Genetic analysis of the biosynthesis of 2-Methoxy-3-Isobutylpyrazine, a major grape-derived aroma compound impacting wine quality. Plant Physiology 162 (2):604–15.
  • Hannah, L., P. R. Roehrdanz, M. Ikegami, A. V. Shepard, M. R. Shaw, G. Tabor, L. Zhi, P. A. Marquet, and R. J. Hijmans. (2013). Climate change, wine, and conservation. Proceedings of the National Academy of Sciences 110 (17):6907–12.
  • Harris, S. A., I. Ryona, and G. L. Sacks. (2012). Behavior of 3-isobutyl-2-hydroxypyrazine (IBHP), a key intermediate in 3-isobutyl-2-methoxypyrazine (IBMP) metabolism, in ripening wine grapes. Journal of Agricultural and Food Chemistry 60 (48):11901–8.
  • Haselgrove, L., D. Botting, R. van Heeswijck, P. B. Hoj, P. R. Dry, C. Ford, and P. G. Iland. (2000). Canopy microclimate and berry composition: The effect of bunch exposure on the phenolic composition of Vitis vinifera L Cv. Shiraz grape berries. Australian Journal of Grape and Wine Research 6:141–49.
  • Hashizume, K., and T. Samuta. (1999). Grape maturity and light exposure affect berry methoxypyrazine concentration. American Journal of Enology and Viticulture 50 (2):194–8.
  • Helwi, P. (2015). Effet Du Statut Azoté de La Vigne Sur Le Potentiel Aromatique de La Baie de Raisin et L'arôme Du Vin. PhD, Université de Bordeaux.
  • Helwi, P., S. Guillaumie, C. Thibon, C. Keime, A. Habran, G. Hilbert, E. Gomes, P. Darriet, S. Delrot, and C. van Leeuwen. (2016). Vine nitrogen status and volatile thiols and their precursors from plot to transcriptome level. BMC Plant Biology 16 (1):173–96.
  • Hrazdina, G., and G. F. Parsons. (1982). Induction of flavonoid synthesizing enzymes by light in etiolated pea (Pisum sativum Cv. Midfreezer) seedlings. Plant Physiology 70 (2):506–10.
  • Huglin, P., and C. Schneider. (1998). Biologie et écologie de la vigne. 2e édition. Tec & Doc Lavoisier, Paris, FRANCE (Monographie).
  • Hunter, J. J., H. P. Ruffner, C. G. Volschenk, and D. J. Le Roux. (1995). Partial defoliation of Vitis vinifera L. Cv. Cabernet Sauvignon/99 richter: Effect on root growth, Canopy efficiency; grape composition, and wine quality. American Journal of Enology and Viticulture 46 (3):306–14.
  • Hunter, J. J., C. G. Volschenk, J. Marais, and G. W. Fouché. (2004). Composition of Sauvignon Blanc Grapes as affected by Pre-Véraison Canopy manipulation and ripeness level. South African Journal for Enology and Viticulture 25:13–18.
  • IPCC. (2014). Climate change 2014: Impacts, adaptation, and vulnerability. International Panel of Climate Change.
  • Jackson, D. I., and P. B. Lombard. (1993). Environmental and management practices affecting grape composition and wine quality-a review. American Journal of Enology and Viticulture 44 (4):409–30.
  • Jeffery, D. W. (2016). Spotlight on varietal thiols and precursors in grapes and wines. Australian Journal of Chemistry 69:1323–30.
  • Jones, G., and R. Davis. (2000). Climate influences on grapevine phenology, grape composition, and wine production and quality for Bordeaux, France. American Journal of Enology and Viticulture 51 (3):249–61.
  • Jones, G., E. Duchêne, D. Tomasi, J. Yuste, O. Braslavska, H. Schultz, C. Martinez, et al. (2005a). Changes in European winegrape phenology and relationship with climate. XIV International GESCO Viticulture Congress, Geisenheim, Germany.
  • Jones, G., and G. Goodrich. (2008). Influence of climate variability on wine regions in the Western USA and on wine quality in the Napa Valley. Climate Research 35 (February):241–54.
  • Jones, G., N. Snead, and P. Nelson. (2004). Geology and Wine 8. Modeling viticultural landscapes: A GIS analysis of the terroir potential in the Umpqua Valley of Oregon. Geoscience Canada 31 (4).
  • Jones, G., M. White, O. Cooper, and K. Storchmann. (2005b). Climate change and global wine quality. Climatic Change 73 (3):319–43.
  • Jones, G. V. (2007). Climate change: observations, projections, and general implications for viticulture and wine production. Economics Department-working paper, (7):14.
  • Jones, G. V. (2013). Winegrape phenology. In Phenology: An integrative environmental science, ed. M. D. Schwartz, 563–84. Dordrecht: Springer, Netherlands.
  • Kataoka, I., A. Sugiura, N. Utsunomiya, and T. Tomana. (1982). Effect of abscisic acid and defoliation on anthocyanin accumulation in Kyoho Grapes (Vitis vinifera L. X V. labruscana BAILEY). Vitis 21:325–32.
  • Keller, M. (2010). Managing grapevines to optimise fruit development in a challenging environment: A climate change primer for viticulturists. Australian Journal of Grape and Wine Research 16 (January):56–69.
  • Kennedy, J. A. (2008). Grape and wine phenolics: Observations and recent findings. Ciencia E Investigación Agraria 35 (2):107–20.
  • Kennedy, J. A., C. Saucier, and Y. Glories. (2006). Grape and wine phenolics: History and perspective. American Journal of Enology and Viticulture 57 (3):239–48.
  • Kim, M. S., S. M. Cho, E. Y. Kang, Y. J. Im, H. Hwangbo, Y. H. Kim, C. -M. Ryu, K. Y. Yang, G. C. Chung, and B. H. Cho. (2008). Galactinol is a signaling component of the induced systemic resistance caused by Pseudomonas chlororaphis O6 root colonization. Molecular Plant-Microbe Interactions 21 (12):1643–53.
  • King, E. S., R. L. Dunn, and H. Heymann. (2013). The influence of alcohol on the sensory perception of red wines. Food Quality and Preference 28 (1):235–43.
  • Kliewer, W. M. (1965). Changes in the concentration of malates, tartrates, and total free acids in flowers and berries of Vitis vinifera. American Journal of Enology and Viticulture 16 (2):92–100.
  • Kliewer, W. M., and L. A. Lider. (1968). Influence of cluster exposure to the sun on the composition of Thompson seedless fruit. American Journal of Enology and Viticulture 19 (3):175–84.
  • Kliewer, W. M., and R. E. Torres. (1972). Effect of controlled day and night temperatures on grape coloration. American Journal of Enology and Viticulture 23 (2):71–77.
  • Kobayashi, H., H. Takase, Y. Suzuki, F. Tanzawa, R. Takata, K. Fujita, M. Kohno, M. Mochizuki, S. Suzuki, and T. Konno. (2011). Environmental stress enhances biosynthesis of flavor precursors, S-3-(hexan-1-Ol)-glutathione and S-3-(hexan-1-Ol)-L-cysteine, in grapevine through glutathione s-transferase activation. Journal of Experimental Botany 62 (3):1325–36.
  • Kotseridis, Y., A. A. Beloqui, A. Bertrand, and J. P. Doazan. (1998). An analytical method for studying the volatile compounds of Merlot noir clone wines. American Journal of Enology and Viticulture 49 (1):44–48.
  • Koyama, K., H. Ikeda, P. R. Poudel, and N. Goto-Yamamoto. (2012). Light quality affects flavonoid biosynthesis in young berries of Cabernet Sauvignon grape. Phytochemistry 78 (June):54–64.
  • Kriedemann, P., and R. Smart. (1971). Effect of irradiance, temperature and leaf water potential on photosynthesis of vine leaves. Photosynthetica 5:6–15.
  • Kuhn, N., L. Guan, Z. W. Dai, B.-H. Wu, V. Lauvergeat, E. Gomes, S.-H. Li, F. Godoy, P. Arce-Johnson, and S. Delrot. (2014). Berry ripening: Recently Heard through the grapevine. Journal of Experimental Botany 65 (16):4543–59.
  • Kwasniewski, M. T., J. E. Vanden Heuvel, B. S. Pan, and G. L. Sacks. (2010). Timing of cluster light environment manipulation during grape development affects C13 norisoprenoid and carotenoid concentrations in Riesling. Journal of Agricultural and Food Chemistry 58 (11):6841–49.
  • Lacey, M. J., M. S. Allen, R. L. N. Harris, and W. V. Brown. (1991). Methoxypyrazines in Sauvignon Blanc grapes and wines. American Journal of Enology and Viticulture 42 (2):103–8.
  • Lacey, M. J., Brown, M. W., Allen, M. S. and Harris, R. L. N. (1988). Alkyl Methoxypyrazines and Sauvignon Blanc Charater (pp. 344–345). Presented at the Second International Cool Climate Viticulture and Oenology Symposium, Auckland New Zealand.
  • Lakso, A. N., and W. M. Kliewer. (1975). The influence of temperature on malic acid metabolism in grape berries I. Enzyme responses. Plant Physiology 56 (3):370–2.
  • Lakso, A. N., and W. M. Kliewer. (1978). The influence of temperature on malic acid metabolism in grape berries. II. Temperature responses of net dark CO2 fixation and malic acid pools. American Journal of Enology and Viticulture 29 (3):145–9.
  • Larronde, F., S. Krisa, A. Decendit, C. Cheze, G. Deffieux, and J. M. Mérillon. (1998). Regulation of polyphenol production in Vitis vinifera cell suspension cultures by sugars. Plant Cell Reports 17 (12):946–50.
  • Le Berre, E., B. Atanasova, D. Langlois, P. Etiévant, and T. Thomas-Danguin. (2007). Impact of ethanol on the perception of wine odorant mixtures. Food Quality and Preference 18 (6):901–8.
  • Lebon, E. (2002). Changements Climatiques: Quelles Conséquences Pour La Viticulture. CR 6ième Rencontres Rhodaniennes 31–36.
  • Lecourieux, F., C. Kappel, D. Lecourieux, A. Serrano, E. Torres, P. Arce-Johnson, and S. Delrot. (2014). An update on sugar transport and signalling in grapevine. Journal of Experimental Botany 65 (3):821–32.
  • Lee, S.-H., M.-J. Seo, M. Riu, J. P. Cotta, D. E. Block, N. K. Dokoozlian, and S. E. Ebeler. (2007). Vine microclimate and norisoprenoid concentration in Cabernet Sauvignon grapes and wines. American Journal of Enology and Viticulture 58 (3):291–301.
  • Loewus, F. (1971). Carbohydrate interconversions. Annual Review of Plant Physiology 22:337–64.
  • Loreto, F., A. Förster, M. Dürr, O. Csiky, and G. Suefert. (1998). On the monoterpene emission under heat stress and on the increased thermotolerance of leaves of Quercus Ilex L. fumigated with selected monoterpenes. Plant, Cell & Environment 21:101–7.
  • Loreto, F., and J.-P. Schnitzler. (2010). Abiotic stresses and induced BVOCs. Trends in Plant Science 15 (3):154–66.
  • Ma, W., A. Guo, Y. Zhang, H. Wang, Y. Liu, and H. Li. (2014). A review on astringency and bitterness perception of tannins in wine. Trends in Food Science & Technology 40 (1):6–19.
  • Marais, J. (1998). Effect of Grape Temperature, Oxidation and skin contact on Sauvignon Blanc juice and wine composition and wine quality. South African Journal for Enology and Viticulture 19:10–16.
  • Marais, J. (2001). Effect of Grape Temperature and Yeast strain on Sauvignon Blanc wine aroma composition and quality. South African Journal for Enology and Viticulture 22 (1):47–51.
  • Marais, J., J. J. Hunter, and P. D. Haasbroek. (1999). Effect of Canopy microclimate, season and region on Sauvignon Blanc grape composition and wine quality. South African Journal for Enology and Viticulture 20:19–30.
  • Marullo, P., and D. Dubourdieu. (2010). Yeast selection for wine flavour modulation. Managing Wine Quality 2:293–345.
  • Matus, J. T., R. Loyola, A. Vega, A. Pena-Neira, E. Bordeu, P. Arce-Johnson, and J. A. Alcalde. (2009). Post-Veraison sunlight exposure induces MYB-mediated transcriptional regulation of anthocyanin and flavonol synthesis in berry skins of Vitis vinifera. Journal of Experimental Botany 60 (3):853–67.
  • McIntyre, G. N., L. A. Lider, and N. L. Ferrari. (1982). The chronological classification of grapevine phenology. American Journal of Enology and Viticulture 33 (2):80–85.
  • Moisselin, J. M., Schneider, M. and Canellas, C. (2002). Les changements climatiques en France au XXè siècle. Etude des longues séries homogénéisées de données de température et de précipitations. La météorologie 38:45–56.
  • Moreno-Arribas, M. V., and M. C. Polo, eds. (2009). Wine chemistry and biochemistry. New York, NY: Springer New York.
  • Mori, K., N. Goto-Yamamoto, M. Kitayama, and K. Hashizume. (2007). Loss of anthocyanins in red-wine grape under high temperature. Journal of Experimental Botany 58 (8):1935–45.
  • Mori, K., H. Sato, N. Goto-Yamamoto, M. Kitayama, S. Kobayashi, S. Sugaya, H. Gemma, and K. Hashizume. (2005). Effects of abscisic acid treatment and night temperatures on anthocyanin composition in Pinot noir grapes. VITIS-Journal of Grapevine Research 44 (4):161.
  • Mori, K., S. Sugaya, and H. Gemma. (2004). Regulatory mechanism of anthocyanin biosynthesis in “Kyoho” grape beriies grown under different temperature condition. Environ. Control in Biol 42 (1):21–30.
  • Mori, K., S. Sugaya, and H. Gemma. (2005). Decreased anthocyanin biosynthesis in grape berries grown under elevated night temperature condition. Scientia Horticulturae 105 (3):319–30.
  • Mullins, M. G., A. Bouquet, and L. E. Williams. (1992). Biology of the grapevine. Cambridge University Press.
  • Neethling, E., G. Barbeau, C. Bonnefoy, and H. Quénol. (2012). Change in climate and berry composition for grapevine varieties cultivated in the Loire Valley. Climate Research 53 (2):89–101.
  • Nurgel, C., and G. Pickering. (2005). Contribution of glycerol, ethanol and sugar to the perception of viscosity and density elicited by model white wines. Journal of Texture Studies 36 (3):303–23.
  • de Orduña, R. M. (2010). Climate change associated effects on grape and wine quality and production. Food Research International 43 (7):1844–55.
  • Pachauri, R. K., M. R. Allen, V. R. Barros, J. Broome, W. Cramer, R. Christ, J. A. Church, et al. (2014). Climate change 2014: Synthesis report. Contribution of working groups I, II and III to the fifth assessment report of the intergovernmental panel on climate change.
  • Parra, C. S., J. Aguirreolea, M. Sánchez-Díaz, J. J. Irigoyen, and F. Morales. (2010). Effects of climate change scenarios on tempranillo grapevine (Vitis vinifera L.) Ripening: Response to a combination of elevated CO2 and temperature, and moderate drought. Plant and Soil 337 (1–2):179–91.
  • Petrie, P. R., and V. O. Sadras. (2008). Advancement of grapevine maturity in Australia between 1993 and 2006: Putative causes, magnitude of trends and viticultural consequences. Australian Journal of Grape and Wine Research 14 (1):33–45.
  • Peynaud, E., and J. Blouin. (2013). Le Goût Du Vin. 5e édition. Paris: Dunod..
  • Peyrot des Gachons, C., T. Tominaga, and D. Dubourdieu. (2002a). Localization of S-cysteine conjugates in the berry: Effect of skin contact on aromatic potential of Vitis vinifera L. Cv. Sauvignon Blanc must. American Journal of Enology and Viticulture 53 (2):144–6.
  • Peyrot des Gachons, C., T. Tominaga, and D. Dubourdieu. (2002b). Sulfur aroma precursor present in S-glutathione conjugate form: Identification of S-3-(Hexan-1-Ol)-glutathione in must from Vitis vinifera L. Cv. Sauvignon Blanc. Journal of Agricultural and Food Chemistry 50 (14):4076–79.
  • Peyrot des Gachons, C., C. Van Leeuwen, T. Tominaga, J. -P. Soyer, J. -P. Gaudillère, and D. Dubourdieu. (2005). Influence of water and nitrogen deficit on fruit ripening and aroma potential of Vitis vinifera L Cv Sauvignon Blanc in field conditions. Journal of the Science of Food and Agriculture 85 (1):73–85.
  • Pickering, G. J. (2000). Low-and reduced-alcohol wine: A review. Journal of Wine Research 11 (2):129–44.
  • Pieri, P. (2010). Changement climatique et culture de la vigne: l'essentiel des impacts. Changement climatique, agriculture et forêt en France: simulations d'impacts sur les principales espèces. Le Livre Vert du projet CLIMATOR (2007-2010), Ademe ed, 213–223.
  • Pillet, J. (2011). Impact Du Microclimat Sur Le Métabolisme de La Baie de Raisin (Doctoral dissertation, Bordeaux 2).
  • Pillet, J., A. Egert, P. Pieri, F. Lecourieux, C. Kappel, J. Charon, E. Gomes, F. Keller, S. Delrot, and D. Lecourieux. (2012). VvGOLS1 and VvHsfA2 Are involved in the heat stress responses in grapevine berries. Plant and Cell Physiology 53 (10):1776–92.
  • Pineau, B., J. C. Barbe, C. Van Leeuwen, and D. Dubourdieu. (2007). Which impact for β-damascenone on red wines aroma? Journal of Agricultural and Food Chemistry 55:4103–8.
  • Pirie, A., and M. G. Mullins. (1976). Changes in anthocyanin and phenolics content of grapevine leaf and fruit tissues treated with sucrose, nitrate, and abscisic acid. Plant Physiology 58:468–72.
  • Pons, A., L. Allamy, V. Lavigne, D. Dubourdieu, and P. Darriet. (2017). Study of the contribution of massoia lactone to the aroma of Merlot and Cabernet Sauvignon musts and wines. Food Chemistry 232:229–36.
  • Pons, A., V. Lavigne, P. Darriet, and D. Dubourdieu. (2011). Identification et Impact Organoleptique de La Massoia Lactone Dans Les Moûts et Les Vins Rouges. In 9éme Symposium d'Oenologie, Ed. Bordeaux.
  • Pons, A., Lavigne, V., Eric, F., Darriet, P. and Dubourdieu, D. (2008). Identification of volatile compounds responsible for prune aroma in prematurely aged red wines. J. Agr. Food Chem. 56(13):5285–5290.
  • Pons, A., V. Lavigne, F. Eric, P. Darriet, and D. Dubourdieu. (2008). Identification of volatile compounds responsible for prune aroma in prematurely aged red wines. Journal of Agricultural and Food Chemistry 56 (13):5285–90.
  • Price, S. F., P. J. Breen, M. Valladao, and B. T. Watson. (1995). Cluster sun exposure and quercetin in Pinot noir grapes and wine. American Journal of Enology and Viticulture 46 (2):187–94.
  • Prieur, C., J. Rigaud, V. Cheynier, and M. Moutounet. (1994). Oligomeric and polymeric procyanidins from grape seeds. Phytochemistry 36 (3):781–84.
  • Ramey, D. D., and C. S. Ough. (1980). Volatile ester hydrolysis or formation during storage of model solutions and wines. Journal of Agricultural and Food Chemistry 28 (5):928–34.
  • Ramos, M., G. Jones, and J. Martínez-Casasnovas. (2008). Structure and trends in climate parameters affecting winegrape production in Northeast Spain. Climate Research 38:1–15.
  • Rapp, A. and Mandery, H. (1986). Wine aroma. Cellular and Mol. Life Sci. 42(8):873–884.
  • Reay, P. F., and J. E. Lancaster. (2001). Accumulation of anthocyanins and quercetin glycosides in “Gala” and “Royal Gala” apple fruit skin with UV-B-visible irradiation: Modifying effects of fruit maturity, fruit side, and temeprature. Scientia Horticulturae 90:57–68.
  • Ribéreau-Gayon, P., Glories, Y., Maujean, A. and Dubourdieu, D. (2012). Traité d'oenologie-Tome 2-6e éd.-Chimie du vin. Stabilisation et traitements. Dunod.
  • Rinaldi, A., M. Jourdes, P. L. Teissedre, and L. Moio. (2014). A preliminary characterization of aglianico (Vitis vinifera L. Cv.) grape proanthocyanidins and evaluation of their reactivity towards salivary proteins. Food Chemistry 164:142–49.
  • Robinson, A. L., S. E. Ebeler, H. Heymann, P. K. Boss, P. S. Solomon, and R. D. Trengove. (2009). Interactions between wine volatile compounds and grape and wine matrix components influence aroma compound headspace partitioning. Journal of Agricultural and Food Chemistry 57 (21):10313–22.
  • Roby, G., J. F. Harbertson, D. A. Adams, and M. A. Matthews. (2004). Berry size and vine water deficits as factors in winegrape composition: Anthocyanins and tannins. Australian Journal of Grape and Wine Research 10 (2):100–7.
  • Roland, A., R. Schneider, F. Charrier, F. Cavelier, M. Rossignol, and A. Razungles. (2011). Distribution of varietal thiol precursors in the skin and the pulp of melon B. and Sauvignon Blanc grapes. Food Chemistry 125 (1):139–44.
  • Roujou de Boubée, D. (2003). Research on 2-Methoxy-3-Isobutylpyrazine in grapes and wines. Bordeaux: Academie Amorim.
  • Roujou de Boubée, D., C. Van Leeuwen, and D. Dubourdieu. (2000). Organoleptic impact of 2-methoxy-3-isobutylpyrazine on red Bordeaux and Loire Wines. Effect of environmental conditions on concentrations in grapes during ripening. Journal of Agricultural and Food Chemistry 48 (10):4830–34.
  • Ruffner, H. P., J. S. Hawker, and C. R. Hale. (1976). Temperature and enzymatic control of malate metabolism in berries of Vitis vinifera. Phytochemistry 15:1877–80.
  • Ryan, K. G., K. R. Markham, S. J. Bloor, J. M. Bradley, K. A. Mitchell, and B. R. Jordan. (1998). UVB radiation induced increase in quercetin: Kaempferol ratio in wild-type and transgenic lines of Petunia. Photochemistry and Photobiology 63 (3):323–30.
  • Ryona, I., B. S. Pan, D. S. Intrigliolo, A. N. Lakso, and G. L. Sacks. (2008). Effects of cluster light exposure on 3-isobutyl-2-methoxypyrazine accumulation and degradation patterns in red wine grapes (Vitis vinifera L. Cv. Cabernet Franc). Journal of Agricultural and Food Chemistry 56 (22):10838–46.
  • Sadras, V. O., and M. A. Moran. (2012). Elevated temperature decouples anthocyanins and sugars in berries of Shiraz and Cabernet Franc: Thermal decoupling of anthocyanins and sugars. Australian Journal of Grape and Wine Research 18 (2):115–22.
  • Sadras, V. O., M. A. Moran, and M. Bonada. (2013). Effects of elevated temperature in grapevine. I Berry sensory traits: Temperature effects on berry traits. Australian Journal of Grape and Wine Research 19 (1):95–106.
  • Sadras, V. O., and C. J. Soar. (2009). Shiraz vines maintain yield in response to a 2–4°C increase in maximum temperature using an open-top heating system at key phenostages. European Journal of Agronomy 31 (4):250–58.
  • Saito, K., and Z. Kasai. (1978). Conversion of labeled substrates to sugars, cell wall polysaccharides, and tartaric acid in grape berries. Plant Physiology 62 (2):215–9.
  • San-Juan, F., V. Ferreira, J. Cacho, and A. Escudero. (2011). Quality and aromatic sensory descriptors (mainly fresh and dry fruit character) of Spanish red wines can be predicted from their aroma-active chemical composition. Journal of Agricultural and Food Chemistry 59 (14):7916–24.
  • Santos, J. A., A. C. Malheiro, M. K. Karremann, and J. G. Pinto. (2010). Statistical modelling of grapevine yield in the port wine region under present and future climate conditions. International Journal of Biometeorology 55 (2):119–31.
  • Santos, J., A. Malheiro, J. Pinto, and G. Jones. (2012). Macroclimate and viticultural zoning in Europe: Observed trends and atmospheric forcing. Climate Research 51 (1):89–103.
  • Schultz, H. (2000). Climate change and viticulture: A European perspective on climatology, carbon dioxide and UV-B effects. Australian Journal of Grape and Wine Research 6 (1):2–12.
  • Schwarz, B., and T. Hofmann. (2008). Is there a direct relationship between oral astringency and human salivary protein binding? European Food Research and Technology 227 (6):1693–98.
  • Sefton, M. A., I. L. Francis, and P. J. Williams. (1994). Free and bound volatile secondary metabolites of Vitis vinifera grape Cv. Sauvignon Blanc. Journal of Food Science 59 (1):142–7.
  • Seguin, B. (2007). Le Réchauffement Climatique et Ses Conséquences Pour La Viticulture. In Communication Au Colloque Réchauffement Climatique, Quels Impacts Probables Sur Les Vignobles.
  • Seguin, G. (1983). Influence Des Terroirs Viticoles Sur La Constitution et La Qualite Des Vendanges [Sol, Pedologie, Geologie, Alimentation En Eau]. Bulletin de l'OIV 56 (623):3–18.
  • Sepúlveda, G. and Kliewer, W. M. (1986). Effect of high temperature on grapevines (Vitis vinifera L.). II. Distribution of soluble sugars. Am. J. Enol. Vitic. 37(1):20–25.
  • Smeekens, S., J. Ma, J. Hanson, and F. Rolland. (2010). Sugar signals and molecular networks controlling plant growth. Current Opinion in Plant Biology 13 (3):273–78.
  • Smith, G. J., and K. R. Markham. (1998). Tautomerism of flavonol glucosides: Relevance to plant UV protection and flower colour. Journal of Photochemistry and Photobiology A: Chemistry 118 (2):99–105.
  • Soar, C. J., V. O. Sadras, and P. R. Petrie. (2008). Climate drivers of red wine quality in four contrasting Australian wine regions. Australian Journal of Grape and Wine Research 14 (2):78–90.
  • Somers, T. C. (1971). The polymeric nature of wine pigments. Phytochemistry 10:2175–86.
  • Souquet, J.-M., V. Cheynier, F. Brossaud, and M. Moutounet. (1996). Polymeric proanthocyanidins from grape skins. Phytochemistry 43 (2):509–12.
  • Spayd, S. E., J. M. Tarara, D. L. Mee, and J. C. Ferguson. (2002). Separation of sunlight and temperature effects on the composition of Vitis vinifera Cv. Merlot berries. American Journal of Enology and Viticulture 53 (3):171–82.
  • Šuklje, K., G. Antalick, Z. Coetzee, L. M. Schmidtke, H. Baša Česnik, J. Brandt, W. J. du Toit, K. Lisjak, and A. Deloire. (2014). Effect of leaf removal and ultraviolet radiation on the composition and sensory perception of V Itis vinifera L. Cv. Sauvignon Blanc Wine: Light, ultraviolet radiation and wine composition. Australian Journal of Grape and Wine Research 20 (2):223–33.
  • Takos, A. M., B. E. Ubi, S. P. Robinson, and A. R. Walker. (2006). Condensed tannin biosynthesis genes are regulated separately from other flavonoid biosynthesis genes in apple fruit skin. Plant Science 170 (3):487–99.
  • Tanner, G. J., K. T. Francki, S. Abrahams, J. M. Watson, P. J. Larkin, and A. R. Ashton. (2003). Proanthocyanidin biosynthesis in plants: Purification of legume leucoanthocyanidin reductase and molecular cloning of its cDNA. Journal of Biological Chemistry 278 (34):31647–56.
  • Tarara, J. M., Lee, J., Spayd, S. E. and Scagel, C. F. (2008). Berry temperature and solar radiation alter acylation, proportion, and concentration of anthocyanin in Merlot grapes. Am. J. Enol. Vitic. 59(3):235–247.
  • Thibon, C., C. Böcker, S. Shinkaruk, V. Moine, P. Darriet, and D. Dubourdieu. (2016). Identification of S-3-(hexanal)-glutathione and its bisulfite adduct in grape juice from Vitis vinifera L. cv. Sauvignon blanc as new potential precursors of 3SH. Food Chemistry 199:711–9.
  • Thibon, C., S. Cluzet, J. -M. Mérillon, P. Darriet, and D. Dubourdieu. (2011). 3-Sulfanylhexanol precursor biogenesis in grapevine cells: The stimulating effect of Botrytis Cinerea. Journal of Agricultural and Food Chemistry 59 (4):1344–51.
  • Tomasi, D., G. Jones, M. Giust, L. Lovat, and F. Gaiotti. (2011). Grapevine phenology and climate change: Relationships and trends in the Veneto region of Italy for 1964–2009. American Journal of Enology and Viticulture 62 (3):329–39.
  • Tominaga, T., L. Blanchard, P. Darriet, and D. Dubourdieu. (2000). A powerful aromatic volatile thiol, 2-furanmethanethiol, exhibiting roast coffee aroma in wines made from several Vitis vinifera grape varieties. J. Agric. Food Chem 48:1799–802.
  • Tominaga, T., P. Darriet, and D. Dubourdieu. (1996). Identification of 3-mercaptohexyl acetate in Sauvignon wine, a powerful aromatic compound exhibiting box-tree odor. Vitis 35:207–10.
  • Tominaga, T., A. Furrer, R. Henry, and D. Dubourdieu. (1998a). Identification of new volatile thiols in the aroma of Vitis vinifera L. var. Sauvignon blanc wines. Flavour Frag. J 13:159–62.
  • Tominaga, T., C. Peyrot Des Gachons, and D. Dubourdieu. (1998b). A new type of flavor precursors in Vitis vinifera L. cv. Sauvignon blanc: S-cysteine conjugates. J. Agric. Food Chem 46:5215–9.
  • Tonietto, J., and A. Carbonneau. (2004). A multicriteria climatic classification system for grape-growing regions worldwide. Agricultural and Forest Meteorology 124 (1–2):81–97.
  • Tonietto, J., Sotes Ruiz, V., Zanus, M. C., Montes, C., Uliarte, E. M., Bruno, L. A., ... and Kohlberg, E. J. (2014). The Effect of viticultural climate on red and white wine typicity: characterization in Ibero-American grape-growing regions. Embrapa Semiárido-Artigo em periódico indexado (ALICE).
  • Tsukaguchi, T., Y. Kawamitsu, H. Takeda, K. Suzuki, and Y. Egawa. (2003). Water status of flower buds and leaves as affected by high temperature in heat-tolerant and heat-sensitive cultivars of snap bean (Phaseolus vulgaris L.). Plant Production Science 6 (1):24–27.
  • Vallarino, J. G., X. A. López-Cortés, J. D. Dunlevy, P. K. Boss, F. D. González-Nilo, and Y. M. Moreno. (2011). Biosynthesis of methoxypyrazines: Elucidating the structural/functional relationship of two Vitis vinifera O-methyltransferases capable of catalyzing the putative final step of the biosynthesis of 3-alkyl-2-methoxypyrazine. Journal of Agricultural and Food Chemistry 59 (13):7310–16.
  • Valluru, R., and W. Van den Ende. (2011). Myo-Inositol and beyond—Emerging networks under stress. Plant Science 181 (4):387–400.
  • Van Leeuwen, C., P. Friant, X. Chone, O. Tregoat, S. Koundouras, and D. Dubourdieu. (2004). Influence of climate, soil, and cultivar on terroir. American Journal of Enology and Viticulture 55 (3):207–17.
  • Van Leeuwen, C., and G. Seguin. (2006). The concept of terroir in viticulture. Journal of Wine Research 17 (1):1–10.
  • Van Leeuwen, C., Bois, B., Cellie, N., Tregoat, O., & Roby, J.-P. (2009a). Les modifications de l'expression du terroir induites par le changement climatique nécessitent une adaptation du matériel végétal et des techniques viticoles. Revue Française D'oenologie, (235), 10–14.
  • Van Leeuwen, C., O. Tregoat, X. Choné, B. Bois, D. Pernet, and J.-P. Gaudillère. (2009b). Vine water status is a key factor in grape ripening and vintage quality for red Bordeaux wine. How can it be assessed for vineyard management purposes. J. Int. Sci. Vigne Vin 43 (3):121–34.
  • Van Leeuwen, C., and P. Darriet. (2016). The impact of climate change on viticulture and wine quality. Journal of Wine Economics 11 1675 (01):150–67.
  • Vitrac, X., F. Larronde, S. Krisa, A. Decendit, G. Deffieux, and J.-M. Mérillon. (2000). Sugar sensing and Ca 2+–calmodulin requirement in Vitis vinifera cells producing anthocyanins. Phytochemistry 53 (6):659–65.
  • Webb, L. B., P. H. Whetton, and E. W. R. Barlow. (2007). Modelled impact of future climate change on the phenology of winegrapes in Australia. Australian Journal of Grape and Wine Research 13 (3):165–75.
  • Webb, L. B., P. H. Whetton, and E. W. R. Barlow. (2008). Climate change and winegrape quality in Australia. Climate Research 36:99–111.
  • Webb, L. B., P. H. Whetton, and E. W. R. Barlow. (2011). Observed trends in winegrape maturity in Australia. Global Change Biology 17 (8):2707–19.
  • White, M. A., N. Diffenbaugh, G. Jones, J. Pal, and F. Giorgi. (2006). Extreme heat reduces and shifts United States premium wine production in the 21st century. Proceedings of the National Academy of Sciences 103 (30):11217–22.
  • Williams, P. J., C. R. Strauss, and B. Wilson. (1980). Hydroxylated linalool derivatives as precursors of volatile monoterpenes of Muscat grapes. Journal of Agricultural and Food Chemistry 28 (4):766–71.
  • Winkler, A. J., J. Cook, W. Kliewer, and L. Lider. (1974). General viticulture. Berkeley: University of California Press.
  • Yamane, T., S. T. Jeong, N. Goto-Yamamoto, Y. Koshita, and S. Kobayashi. (2006). Effects of temperature on anthocyanin biosynthesis in grape berry skins. American Journal of Enology and Viticulture 57 (1):54–59.
  • Zheng, Y., L. Tian, H. Liu, Q. Pan, J. Zhan, and W. Huang. (2009). Sugars induce anthocyanin accumulation and flavanone 3-hydroxylase expression in grape berries. Plant Growth Regulation 58 (3):251–60.

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