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February 20, 2026Foods0 citationsOpen Access

Red Yeast Rice-Driven Kombucha Fermentation: A Novel Strategy for Developing Functional Beverages with Enhanced Hypoglycemic and Hypolipidemic Properties

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KTKai TONGYLYuxue LiaoYTYongqing Tang

Key Points

  • The study aims to explore red yeast rice as a substrate to enhance the functional diversity and health benefits of kombucha.
  • Prepared three kombucha variants: black tea, black tea-red yeast rice, and red yeast rice kombucha.
  • Fermented samples for 9 days and analyzed pH, total acidity, and sugar metabolic activity.
  • Conducted in vitro enzyme inhibition assays against cholesterol esterase, pancreatic lipase, α-glucosidase, and α-amylase.
  • Identified volatile flavor compounds and performed microbial community analysis.
  • KRY exhibited the lowest pH and highest total acidity after fermentation.
  • Showed significant enzyme inhibition rates, indicating potential health benefits: 82.8% against cholesterol esterase, 78.2% against pancreatic lipase, 70.3% against α-glucosidase, and 76.9% against α-amylase.
  • Identified 72 volatile flavor compounds, enhancing sensory properties of KRY, which received the highest scores for color, clarity, and aroma.
  • Observed microbial dominance of Komagataeibacter, Acetobacter, and Saccharomyces correlated with key volatile compounds.

Abstract

To address the limited functional diversity of traditional kombucha, this study utilized red yeast rice (RYR) as an alternative substrate and prepared three samples: black tea kombucha (KBT), black tea-red yeast rice mixed kombucha (KBL, at a 1:1 ratio), and red yeast rice kombucha (KRY). After 9 days of fermentation, KRY exhibited the lowest pH, the highest total acidity, and notable sugar metabolic activity. It exhibited in vitro inhibition rates of 82.8%, 78.2%, 70.3%, and 76.9% against cholesterol esterase, pancreatic lipase, α-glucosidase, and α-amylase, respectively, indicating potential hypoglycemic and hypolipidemic activities. In contrast, KBT maintained the strongest antioxidant capacity, with scavenging rates exceeding 90% against both 2,2-diphenyl-1-picrylhydrazyl (DPPH) and 2,2′-Azinobis-(3-ethylbenzthiazoline-6-sulphonate) (ABTS). A total of 72 volatile flavor compounds (VFCs) were identified, with 7 key compounds enriched in KRY, which enhanced its sensory acceptance and received the highest scores in color, clarity, and aroma. Microbial community analysis revealed the post-fermentation dominance of Komagataeibacter, Acetobacter, and Saccharomyces, which correlated positively with key VFCs. These findings indicate that RYR as a substrate enhances functional microbial growth, sugar metabolism, organic acid production, flavor enrichment, and in vitro inhibitory activity of enzymes associated with hypoglycemic and hypolipidemic effects.

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Cite This Study

TONG et al. (2026) studied this question.

synapsesocial.com/papers/6997fa03ad1d9b11b3452daehttps://doi.org/10.3390/foods15040747
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