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Mixed fermentation can enhance the flavor and aroma of fruit wine, but the mechanisms driving this enhancement remain unclear. This study used non-targeted metabolomics to analyze the effects of mixed versus single fermentation on plum wine flavor. The results showed that compared with single fermentation, mixed fermentation reduced ethanol content and the ability to consume reducing sugars. In single fermentation, volatile compounds increased over time, while in mixed fermentation, they first increased and then declined. Mixed fermentation notably increased esters and reduced higher alcohols, with key differentiators including phenethyl acetate, hexyl acetate, isoamyl acetate, ethyl acetate, isoamyl alcohol, phenethyl alcohol, ethyl caproate, and isobutanol. Furthermore, 40 differential non-volatile flavor compounds were identified, with amino acids emerging as the predominant differentiators. The annotation analysis of these compounds revealed 11 important metabolic pathways for proline, aspartate, glutamate, and β-alanine metabolism. These findings provide insight about producing plum wines with distinct flavor profiles.
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http://dx.doi.org/10.1016/j.fochx.2024.102100 | DOI Listing |
Food Chem
September 2025
College of Biomass Science and Engineering and Healthy Food Evaluation Research Center, Sichuan University, Chengdu 610065, China.
The growing demand for healthy Tartary buckwheat-based foods has sparked interest in fermentation as a processing technique to enhance food quality and bioactivity. This study investigated the impact of solid-state fermentation of black Tartary buckwheat (BTB) with Monascus purpureus and Eurotium cristatum PW-1 on its quality, biochemical properties, and hypolipidemic potential, using metabolomics, bioinformatics, network pharmacology, and invivo zebrafish models. Fermentation significantly increased total amino acids, γ-aminobutyric acid, and aromatic volatile compounds such as alcohols, esters, terpenes, and terpenoids, enhancing the flavor profile.
View Article and Find Full Text PDFFEMS Yeast Res
September 2025
Enology and Fermentation Biotechnology Area, Department of Science and Food Technology. Faculty of Chemistry, Universidad de la Republica. Montevideo, Uruguay.
Hanseniaspora species are among the most prevalent yeasts found on grapes and other fruits, with a growing role in wine fermentation due to their distinctive metabolic profiles. This review focuses on the functional divergence within the genus, particularly between the fast-evolving fruit clade and the slow-evolving fermentation clade. While species in the fruit clade often exhibit limited fermentation capacity with interesting enzymatic activity, members of the fermentation clade-especially H.
View Article and Find Full Text PDFTransl Anim Sci
August 2025
Department of Animal Science - Texas A&M University, College Station, TX 77843, USA.
This experiment evaluated the effects of supplementing yeast culture ( ) on in situ ruminal degradability, rumen fermentation and microbiota responses of heifers consuming a forage-based diet. Twelve ruminally-cannulated Angus-influenced heifers were ranked by body weight ( 180 ± 4 kg) and assigned to 4 groups of 3 heifers each. Groups were enrolled in a replicated 3 × 3 Latin square design containing 3 periods of 21 d and 14-d washout intervals.
View Article and Find Full Text PDFMethodsX
December 2025
Animal Nutrition Division, ICAR-National Dairy Research Institute, Karnal-132001, India.
In vitro simulation of rumen fermentation is critical for improving feed efficiency, assessing dietary interventions, and supporting methane mitigation strategies in ruminant production systems. However, existing fermentation platforms are often expensive, technically complex, or poorly suited for long-term microbial viability under near-rumen conditions-especially in resource-limited settings. This study presents the development and validation of a modular, low-cost engineered to replicate key physiological parameters of the rumen, including temperature control (39-40 °C), continuous buffering via artificial saliva infusion, anaerobic regulation, and simulated motility through mixing pumps.
View Article and Find Full Text PDFBMC Biotechnol
September 2025
Botanical Garden, Ulm University, Hans-Krebs-Weg, 89081, Ulm, Germany.