Brewer's spent grain and crude glycerol: Sustainable substrates for 2-phenylethanol production by Yarrowia lipolytica.

Sara Mitri, Mohamed Koubaa, Richard G. Maroun, Nicolas Louka, Tristan Rossignol
2025-02-10

SCID:  54.1/zukn6wd6
• Microbial fermentation for de novo production of the aroma molecule 2-phenylethanol. • Valorizing brewer's spent grain and crude glycerol to produce value-added compounds. • Use of Golden Gate Assembly for Yarrowia lipolytica strain manipulation. • Transformation of yeast with amyloglucosidase gene for starch hydrolysis. • Optimization of culture medium composition through central composite design. The development of natural, efficient, and cost-effective methods for producing the aromatic alcohol 2-phenylethanol (2-PE) is necessary. 2-PE, characterized by a rosy scent, is widely used in the cosmetic, pharmaceutical, and food industries. It is commonly utilized as a flavoring agent in desserts, baked goods, and beverages, enhancing the overall flavor with fruity, honeyed, creamy, and caramelized notes. In this study, the optimization of 2-PE production through fermentation of the yeast Yarrowia lipolytica on brewer's spent grain (BSG) was examined using a central composite design. The impact of crude glycerol (CG) and yeast extract (YE) on 2-PE production were investigated. A prerequisite for utilizing BSG as a substrate is the hydrolysis of its complex components, primarily starch. This was achieved by transforming the amyloglucosidase (AMG) gene into the genome of Y. lipolytica . Fermentations were carried out in 500 mL baffled Erlenmeyer flasks with a working volume of 100 mL. Optimally, 1.52 g/L of 2-PE was produced after 168 h fermentation in a medium containing 2.87 g/L yeast extract and 45.9 g/L crude glycerol in BSG.
Publication Details
Publication Date
2025-02-10
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Sara Mitri
Mohamed Koubaa
Richard G. Maroun
Nicolas Louka
Tristan Rossignol
Explore More Research
Use the citation graph to discover related papers and expand your research horizons.
Click any node to explore
Download PDF
100%