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Open Access Issue
Effects of Mixed Fermentation of Torulaspora delbrueckii and Saccharomyces cerevisiae on the Aroma of Yellow Peach Wine
Food Science 2025, 46(20): 250-257
Published: 25 October 2025
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This study explored the potential of Torulaspora delbrueckii in peach wine fermentation and its impact on peach wine aroma. The aroma compounds of yellow peach wines (cv. ‘Jinxiu’) obtained by mixed fermentations of T. delbrueckii PL09 and Saccharomyces cerevisiae K1 or DV10 were determined by headspace-solid-phase microextraction (HS-SPME) and gas chromatography-mass spectrometry (GC-MS) and were analyzed by odor activity value, principal component analysis and sensory evaluation. The results showed that mixed fermentation with T. delbrueckii and S. cerevisiae significantly reduced the total acid and volatile acid contents in yellow peach wine. Additionally, the types and contents of aroma components in the wine fermented with mixed cultures were higher than those in the wine fermented with S. cerevisiae alone, and mixed fermentation promoted the production of esters and alcohols. Among the three wines, the one co-fermented with PL09 and K1 had the highest content of aroma compounds and showed significantly increased levels of ethyl esters (e.g., ethyl acetate, ethyl hexanoate and ethyl laurate) and terpenoids (e.g., phenethyl alcohol and linalool) and enhanced floral and fruity aromas than did the two other wines. Sensory analysis revealed that the PL09 + K1 fermented wine exhibited the most intense sweet and floral notes, with moderate fruity and wine-like aromas, and scored highest for overall aroma. In conclusion, PL09 + K1 co-fermentation increases the aroma complexity of yellow peach wine, providing a theoretical reference for the flavor improvement of yellow peach wine and the industrial application of mixed fermentation.

Open Access Issue
Preparation, Characterization and Storage Stability of Vitis davidii Foex. Anthocyanin Microcapsules with Tannin as Co-pigment
Food Science 2024, 45(19): 15-25
Published: 15 October 2024
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In this study, co-pigmentation with tannin combined with microencapsulation was used to improve the stability of Vitis davidii Foex. anthocyanin. Anthocyanin microcapsules were prepared by vacuum freeze drying using maltodextrin with different dextrose equivalent (DE) values as the wall material. The results showed that the co-pigmented anthocyanin microcapsules with maltodextrin DE12 had the highest encapsulation efficiency of (99.23 ± 0.31)% and the best hygroscopicity and thermal stability. Scanning electron microscopy (SEM) showed that the surface morphology of all four microcapsules was glassy structure. The co-pigmented anthocyanin microcapsules had higher L* and a* values but lower b* value than the unco-pigmented ones. Differential scanning calorimetry (DSC) analysis showed that the co-pigmented anthocyanin microcapsules with maltodextrin DE12 had higher thermal denaturation temperature and thermal stability. Fourier transform infrared spectroscopy (FTIR) confirmed successful microencapsulation of co-pigmented anthocyanin with maltodextrin. The co-pigmented anthocyanin microcapsules with maltodextrin DE12 had good sustained release performance and strong antioxidant capacity. After simulated gastric digestion, the percentage of anthocyanins released from the microcapsules was only (56.84 ± 0.02)%. After simulated intestinal digestion, the 1,1-diphenyl-2-picrylhydrazyl (DPPH) radical scavenging activity of the microcapsules was (50.15 ± 0.38)%. Moreover, the degradation kinetics of the microcapsules followed first-order kinetics model and the microcapsules had good storage stability. Microencapsulation could effectively reduce the loss of anthocyanins during the pasteurization of V. davidii Foex. grape juice.

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