Light-induced adaptive laboratory evolution enhances bioactive aromatic amino acid-derived compound profile in a wine strain of Saccharomyces cerevisiae
Journal article, 2027

Yeast metabolism plays a key role in the synthesis of bioactive compounds in fermented foods and beverages. Among these, aromatic amino acid-derived compounds (AADCs) such as tryptophol, 2-phenylethanol, and tyrosol, along with indolic compounds like melatonin, serotonin, and 3-indoleacetic acid, contribute to the quality and stability of wine. This study aimed to enhance the production of these compounds in Saccharomyces cerevisiae through adaptive laboratory evolution (ALE) using white light as a selective pressure. The hypothesis was that oxidative stress induced by light would stimulate non-enzymatic antioxidant responses, increasing the synthesis of indolic compounds. A wine yeast strain was subjected to ALE, and the evolved strain was analyzed for genotypic, phenotypic, and metabolomic changes. Results showed significant genomic and transcriptomic differences, leading to a marked increase in AADC production. These findings highlight this approach as a promising non-GMO strategy for improving yeast strains in the food industry.

Wine yeast

Transcriptomics

Adaptive evolution

Metabolomics

Bioactive metabolites

Author

Ricardo Bisquert Alcaraz

Spanish National Research Council (CSIC)

Chalmers, Life Sciences, Systems and Synthetic Biology

Alba Guillén

Spanish National Research Council (CSIC)

Guillermo Quintas

Leitat Technological Center

José Manuel Guillamón

Spanish National Research Council (CSIC)

Food Microbiology

0740-0020 (ISSN) 1095-9998 (eISSN)

Vol. 142 105295

Subject Categories (SSIF 2025)

Other Environmental Biotechnology

Food Biotechnology

DOI

10.1016/j.fm.2026.105295

More information

Latest update

9/11/2026