Macrowine 2021
IVES 9 IVES Conference Series 9 Study of the volatil profile of minority white varieties

Study of the volatil profile of minority white varieties

Abstract

The genetic material preservation is a priority issue in winemaking research. The recovery of minority grape varieties can control the genetic erosion, contributing also to preserve wine typical characteristics. In D.O.Ca. Rioja (Spain) the number of grown white varieties has been very limited, representing Viura the 91% of the cultivated white grape area in 2005, while the others, Garnacha Blanca and Malvasía riojana, hardly were grown. For this reason, a recovery and characterization study of plant material was carried out in this region. In 2008, the results obtained allowed the authorization of three minority white varieties: Tempranillo Blanco, Maturana Blanca and Turruntés. Tempranillo Blanco comes from a mutation of Tempranillo Tinto and it was picked up for the first time in La Rioja in 1988. Maturana Blanca and Turruntés have been grown since long time ago and were recovered from old vineyards. Tempranillo Blanco and Maturana Blanca are only authorized in D.O.Ca. Rioja, and therefore they can really contribute to wines differentiation, increasing the added value and providing wines with personal and marked characteristics. Turruntés, that is a synonym of Albillo Mayor, is cultivated in other Spanish regions. The variety is one of the main factors responsible for the must and wine aroma. In this study, the pre-fermentative volatile profile of five minority white varieties was determined during the 2014 vintage, in comparison to Viura, considering it as the reference variety. All the cultivars were grown in an experimental vineyard. The volatile compounds of these varieties were analyzed by HS-SPME-GC-MS. The results showed marked differences in the aromatic profile of the studied grape varieties. In all cases, C6 were the most abundant compounds (70 – 93%), followed by norisoprenoids (4 – 13%), carbonyl (0.6 – 4%), benzenoids (0.1 – 4%) and terpenoids (1.2 – 3.3%). Cv. Tempranillo Blanco highlighted by a high content of C6 compounds, greater than cv. Malvasía, Turruntés and Viura. The most representative compounds were hexanal and (E)-2-hexenal. Within norisoprenoids, (E)-β-damascenone and (Z)-β-damascenone were the most abundant compounds in cv. Garnacha Blanca and Malvasía. In these varieties a higher content of terpenoids, such as trans-geranyl-acetone, β-linalool and nerol oxide was observed. Both, norisoprenoids and terpenoids are the most odoriferous groups of compounds, with floral scents that play a key role in the varietal aroma. The content of benzenoids in cv. Malvasía and cv. Turruntés was higher than in the rest of varieties, being 2-phenylethanol the most important molecule. Tempranillo Blanco and Garnacha Blanca presented a significantly higher global aromatic content than Turruntés and Viura. Thus, minority white grape varieties can provide wines with interesting and marked aromatic characteristics.

Publication date: May 17, 2024

Issue: Macrowine 2016

Type: Poster

Authors

Ana Gonzalo-Diago*, Enrique García-Escudero, Estela Terroba-Pérez, Juana Martínez

*ICVV

Contact the author

Tags

IVES Conference Series | Macrowine | Macrowine 2016

Citation

Related articles…

Use of computational modelling for selecting adsorbents for improved fining of wine

The occurrence of faults and taints in wine, such as those caused by microbial spoilage or various taints, have resulted in significant financial losses to wine producers. The wine industry commits significant financial resources towards fining and taint removal processes each year. Fining involves the addition of one or more adsorptive substrates to juice or wine to bind certain components, thus reducing their concentration [1]. However, these processes are often not selective and can also remove desirable flavour and aroma compounds.

Directed Evolution of Oenococcus oeni: optimising yeast-bacteria interactions for improved malolactic fermentation

Malolactic fermentation (MLF) is a secondary step in the vinification process and it follows alcoholic fermentation (AF) which is predominantly carried out by Saccharomyces cerevisiae. These two processes result in the degradation of metabolites to produce secondary metabolites which also contribute to the final wine flavour and quality. AF results in the production of ethanol and carbon dioxide from sugars and MLF stems from the degradation of L-malic acid (a dicarboxylic acid) to L-lactic acid (a monocarboxylic acid). The latter process results in a smoother texture as the acidity of the wine is reduced by the process, it also adds to the flavour complexity of the wine.

Development of a new sustainable filtering media for wine and beer clarification and sterilisation

Different separation techniques are frequently used during vinification process. Nowadays, clarification and microbiological stabilization of wine or beer can be done using precoat filters or crossflow filters to remove yeast and bacteria. Kieselguhr powders are the most used filter aids for precoat filtration. Their crystalline structure and their pulverulent nature induce ecotoxicological risks when used. Moreover, regeneration and reuse of these filter aids is not efficient and the filtration waste requires cost effective retreatment.

Elicitors used as a tool to increase stilbenes in grapes and wines

The economic importance of grapevine as a crop plant makes Vitis vinífera a good model system to study the improvement of the nutraceutical properties of food products (Vezulli et al. 2007). Stilbenes in general, and trans-resveratrol in particular, have been reported to be responsible for various beneficial effects. Resveratrol´s biological properties include antibacteria and antifungal effects, as well as cardioprotective, neuroprotective and anticâncer actions (Guerrero et al. 2010 ). Stilbenes can be induced by biotic and abiotic elicitors since they are phytoalexins (Bavaresco et al. 2001).

Anti/prooxidant activity of wine polyphenols in reactions of adrenaline auto-oxidation

Adrenaline (epinephrine) belongs to catecholamine class. It is a neurotransmitter and both a hormone which is released by the sympathetic nervous system and adrenal medulla in response to a range of stresses in order to regulate blood pressure, cardiac stimulation, relaxation of smooth muscles and other physiological processes. Adrenaline exhibits an effective antioxidant capacity (1). However, adrenalin is capable to auto-oxidation and in this case it generates toxic reactive oxygen intermediates and adrenochrome. Under in vitro conditions, auto-oxidation of adrenaline occurs in an alkaline medium (2).