Macrowine 2021
IVES 9 IVES Conference Series 9 Influence of nitrogen source on expression of genes involved in aroma production in Saccharomyces uvarum

Influence of nitrogen source on expression of genes involved in aroma production in Saccharomyces uvarum

Abstract

Saccharomyces uvarum has interesting properties that can be exploited for the production of fermented beverages. Particularly, the cryotolerance and capacity to produce high amounts of volatile compounds offers new opportunities for the wine industry. Besides the contribution of the nitrogen source to primary metabolism, some nitrogen compounds are precursors of volatile molecules that produce aroma. The nitrogen compounds assimilated by yeast are classified as rich or poor nitrogen sources depending on how they affect the growth and the nitrogen regulation mechanisms. In S. cerevisiae, the nitrogen metabolism is well understood but less is known about these pathways in S. uvarum. The aim here is to understand the nitrogen metabolism in S. uvarum and the effects of the nitrogen source on the production of aroma volatiles at low temperature; the focus is on temperatures below 20°C since this is relevant for wine production. First, nitrogen preference was established using 10 different compounds as sole nitrogen sources for S. uvarum and S. cerevisiae: important differences were found in the efficiency of asparagine to support growth. The alcoholic fermentations done in synthetic must, showed the same pattern of nitrogen consumption in each species. Afterwards, comparative analysis of gene expression (RNAseq) of S. uvarum MTF3098 was carried out in ammonium, methionine, phenylalanine and asparagine to determine how the nitrogen source affects the expression of key genes involved in nitrogen metabolism and aroma production. The transcriptome data revealed substantial changes in expression patterns of nitrogen metabolism genes. The gene clusters with highest fold change when comparing inorganic nitrogen source (ammonium) and organic source (methionine, phenylalanine, asparagine) in S. uvarum MTF3098 were genes encoding transporters and proteins responsible for aroma synthesis; using amino acids as sole nitrogen source instead of ammonium resulted in an increased expression of this group of genes. This study increases understanding of the importance of the nitrogen source in the aroma production of Saccharomyces yeasts and broads the knowledge on S. uvarum aroma production for applications in wine industry. Ongoing work includes correlating transcriptome and volatile metabolome data to understand links between gene expression and aroma production in S. uvarum.

DOI:

Publication date: September 3, 2021

Issue: Macrowine 2021

Type: Article

Authors

Angela Coral Medina, Carole CAMARASA, John Morrissey, Darren Fenton

1 SPO, UMR, INRA, SupAgro, Universite de Montpellier, France 2 School of Microbiology, University College Cork, Ireland, SPO, UMR, INRA, SupAgro, Universite de Montpellier, France, School of Microbiology, University College Cork, Ireland, School of Biochemestry and Cell Biology, University College Cork, Ireland

Contact the author

Keywords

saccharomyces uvarum, nitrogen source, gene expression, aroma

Citation

Related articles…

Enological, economical, social and viticulture ”terroir” units as fundamental elements of mosaic of “big” zoning

Nous savons tous très bien qu’on a assisté au cours de ces dix dernières années à une éclosion soudaine de recherches sur le zonage viti-vinicole qui, à partir par exemple du modèle du concept de “terroir”, se sont de plus en plus enrichies en passant aux “Unités ou Systèmes de Transformation” (UTTE) et “Valorisation” (UTCE) pour terminer avec les “Systèmes productifs globaux du Territoire” (UTB) comprenant en filière les aspects existentiels (UTBES), sociaux (UTBSO) et économiques (UTBEC) hypothisés dans le “GRANDE ZONAZIONE: Grand zonage” (MORLAT R., 1996, CARBONNEAU A., 1996, TOUZARD J.M. 1998, CARBONNEAU A., CARGNELLO G., 1996, 1998, CARGNELLO G., 1994, 1995, 1996, 1998, 1999, 2001, -MILOTIC A., CARGNELLO G., PERSURIC G., 1999, PERSURIC G., STAYER M., CARGNELLO G., 2000, MILOTIC A., OPLANIC M., CARGNELLO G., PERSURIC G., 2000).

Regulation of terpene production in methyl jasmonate treated cell-cultures

Terpenes are responsible for flavors and aromas of grapes, however, they also protect from radiation, participate in biotic stress and antioxidant mechanisms. The phytohormone methyl jasmonate (MeJA) mediates many of these stress responses and has been associated with increased terpene content in berries. Here, we generated transcriptomic data of Vitis vinifera cv. ‘Gamay’ cells treated with MeJA (100 μM) and cyclodextrins (50 μM) to understand these responses. Ontology analysis revealed that up-regulated genes (URGs) were enriched in jasmonic acid biosynthesis and signaling terms, as expected. Inspection of transcription factors (TFs) among URGs allowed us to study uncharacterized TFs.

Polyphenolic profile and dietary fiber content of skins and seeds from unfermented and fermented grape pomace

The valorization of winemaking byproducts is subordinated to the knowledge of their chemical characteristics. This work concerned the determination of the polyphenolic profile and the dietary fiber content of skins and seeds from unfermented and fermented pomace of different cultivars (Moscato bianco, Cortese, Arneis, Pinot Noir, Barbera, Grignolino, Nebbiolo), sampled from some wineries in the Piedmont area (Italy) during the 2020 harvest.

Simulating climate change impact on viticultural systems in historical and emergent vineyards

Global climate change affects regional climates and hold implications for wine growing regions worldwide. Although winegrowers are constantly adapting to internal and external factors, it seems relevant to develop tools, which will allow them to better define actual and future agro-climatic potentials. Within this context, we develop a modelling approach, able to simulate the impact of environmental conditions and constraints on vine behaviour and to highlight potential adaptation strategies according to different climate change scenarios. Our modeling approach, named SEVE (Simulating Environmental impacts on Viticultural Ecosystems), provides a generic modeling framework for simulating grapevine growth and berry ripening under different conditions and constraints (slope, aspect, soil type, climate variability…) as well as production strategies and adaptation rules according to climate change scenarios. Each activity is represented by an autonomous agent able to react and adapt its reaction to the variability of environmental constraints. Using this model, we have recently analyzed the evolution of vineyards’ exposure to climatic risks (frost, pathogen risk, heat wave) and the adaptation strategies potentially implemented by the winegrowers. This approach, implemented for two climate change scenarios, has been initiated in France on traditional (Loire Valley) and emerging (Brittany) vineyards. The objective is to identify the time horizons of adaptations and new opportunities in these two regions. Carried out in collaboration with wine growers, this approach aims to better understand the variability of climate change impacts at local scale in the medium and long term.

Differentiating and grouping of oltrepo’ pavese environments according to grape maturation

The maturation patterns process has been very studied. In particular the modelization of the sugars and titratable acidity during the ripening period was an important approach, in particular for the prediction of harvest date (Barillere et al., 1988; Jourion et al.,1987; Maujean et al., 1983; Scienza, 1989). In Oltrepò Pavese, the widest viticultural district of Lombardy – Northern Italy – (about 15000 hectares), grape maturation trends shows high variability, due to the large variation in environmental characteristics of vineyards (altitude, exposure, soil type, mesoclimate) and to “cultivar x environment” interaction.