Macrowine 2021
IVES 9 IVES Conference Series 9 Effects of post-fermentative cold maceration on chemical and sensory characteristics of Syrah, Cabernet Franc and Montepulciano wines

Effects of post-fermentative cold maceration on chemical and sensory characteristics of Syrah, Cabernet Franc and Montepulciano wines

Abstract

Astringency sensation decreases slowly during the aging of red wine. Complex reactions of condensation and precipitation of wine polyphenols are involved in this phenomenon. Wine composition and conditions of aging, such as temperature and oxygen availability, strongly influence evolution of the phenol matrix. Recently, a Post-Fermentative cold Maceration (PFM) technique was tested with the aim of accelerating reactions leading to the reduction of astringency and exploiting chemical compounds not extracted from the solid parts of grapes during the previous traditional maceration phase. To this purpose, an innovative maceration system was engineered and used to perform PFM trials on marc derived from vinification of different varieties of red grapes. Syrah grapes, vintage 2012, were used for the experiment on a pilot scale. In 2013, PFM trials were performed with Syrah, Cabernet Franc and Montepulciano grapes vinified on an industrial scale. For each trial, perfectly healthy grapes were manually harvested at maturity. At the winery, grapes were crushed, destemmed and fermented in a stainless steel tank, at 28 °C. At the end of fermentation, free-run wine was used as control in the experiment. After racking, wet marc (marc/free-run wine ratio about 3/1) was transferred to the maceration system, added with 5 Kg/hL of dry ice and processed for 48 h at 6 °C, mixing every 6 h for 15 min. At the end of the cycle, wine (WPFM) was drained and marc was gently pressed inside the system. In 2012, during PFM treatment of Syrah, a significant decrease of total polyphenols, proteins and Astringency Mucin Index (AMI)(Fia et al. 2009) was observed. Total polyphenols, proteins and AMI remained lower than that detected for the control up to 6 months. In 2013, WPFM and control wines were aged for 18 months in oak barrel. After 6 months, chemical parameters and sensory attributes of the wines were evaluated. Total polyphenols, proteins and the Astringency Mucin Index (AMI) of WPFM were lower compared to the control wine. WPFM wines reached protein stability while the controls were unstable. Color intensity of the WPFM samples was high but lower than that of the control while hue was similar. The effects of PFM treatment on sensory characteristics of the wines vary depending on grape variety. Syrah and Cabernet Franc elaborated with PFM technique were perceived as significantly less astringent and bitter compared to the control wines. PFM treatment also influenced smell characteristics of Syrah and Cabernet Franc in term of oak and fruity aroma. After 6 months, the sensory profile of Montepulciano wine from PFM treatment did not show differences compared to control. After 18 months, all wines were significantly less astringent compared to control. The obtained results indicate that the PFM treatment can rapidly induce a noticeable reduction of wine astringency, probably due to a selective precipitation of the most reactive polyphenols with grape proteins.

Publication date: May 17, 2024

Issue: Macrowine 2016

Type: Poster

Authors

Giovanna Fia*, Claudio Gori

*University of Florence

Contact the author

Tags

IVES Conference Series | Macrowine | Macrowine 2016

Citation

Related articles…

Bentonite fining in cold wines: prediction tests, reduced efficiency and possibilities to avoid additional fining treatments

Bentonite fining is widely used to prevent protein haze in white wines. Most wineries use laboratory-scale fining trials to define the appropriate amount of bentonite to be used in the cellar. Those pre-tests need to mimic as much as possible the industrial scale fining procedure to determine the exact amount of bentonite necessary for protein stability. Nevertheless it is frequent that, after fining with the recommended amount of bentonite, wines appear still unstable and need an additional fining treatment. It remains a major challenge to understand why the same wine, fined with the same dosage of the same bentonite, achieves stability in the lab, but not in the cellar.

A combination of biotechnology tools and coopers elements for an alternative the addition of SO2 at the end of the malolactic fermentation in red wines or at the “mutage” for the “liquoreux” wines

In red wines the post-MLF SO2 addition is an essential event. It is also the case for the “mutage” during the elaboration of the “liquoreux”. At these moments SO2 plays an antimicrobial action and an antioxidant effect. But at current pH of wines, ensuring a powerful molecular SO2 has become very difficult. Recent work on Brettanomyces strains have also shown that some strains are resistant up to 1.2 mg / L of molecular SO2. It’s also the case of the some Saccharomuces or Zygosaccharomyces strains suitable to re-ferment “liquoreux” wines after the “mutage”.

The effect of Nitrogen and Sulphur foliar applications in hot climates

ine nitrogen deficiency can negatively influence the aroma profile and ageing potential of white wines. Canopy management can alter vine microclimate, affect the nitrogen availability and influence the response of leaf senescence. Increasing the nitrogen availability to vines can increase the Yeast Assimilable Nitrogen (YAN) levels in harvested fruit and wine. Studies show that foliar nitrogen and sulphur applications at véraison, on low YAN Sauvignon blanc grapes have an effect on the level of amino acids (Jreij et al. 2009) and on S-containing compounds such as glutathione and thiols (Lacroux et al. 2008), which in turn can influence the formation of major volatiles and the aroma profile of the wine.

The commercial yeast strain as a significant source of variance for tyrosol and hydroxytyrosol in white wine

Tyrosol (TYR) and hydroxytyrosol (HYT) are bioactive phenols present in olive oil and wine, basic elements of the Mediterranean diet. TYR is reported in the literature for its interesting antioxidant, cardioprotective and anti-inflammatory properties. In wine, its concentration can reach values as high as about 40 mg/L
[Pour Nikfardjam et al. 2007] but, more frequently, this phenol – derived from yeast metabolism of tyrosine during fermentation – is present at lower levels, generally higher in red wines compared to whites. HYT was measured for the first time by Di Tommaso et al. [1998] in Italian wines – with maximum values of 4.20 mg/L and 1.92 mg/L for red and white wines, respectively – while definitely lower concentrations have been found later in Greek samples.

Petrolomics-derived data interpretation to study acetaldehyde-epicatechin condensation reactions

During red wine ageing or conservation, color and taste change and astringency tends to reduce. These changes result from reactions of flavan-3-ols and/or anthocyanins among which condensation reactions with acetaldehyde are particularly important. The full characterization of these reactions has not been fully achieved because of difficulties in extracting and separating the newly formed compounds directly from wine. Model solutions mimicking food products constitute a simplified medium for their exploration, allowing the detection of the newly formed compounds, their isolation, and their structure elucidation.