ArticleFrontiers in microbiology2023
Metabolic improvements of novel microbial fermentation on black tea by
Article in Frontiers in microbiology, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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6 citing papers in PubMed.
- Mechanistic insights into taste modulation ofFood chemistry: X · 2026Article
- Preparation-Route-Associated Differences in Color and Non-Volatile Metabolite Profiles ofFoods (Basel, Switzerland) · 2026Article
- Comparative profiling of surface-sterilized leaf-associated microbiota and flavor-associated metabolites in two Gougunao tea cultivars across fresh and fermented leaf stages.Frontiers in nutrition · 2026Article
- Metabolic responses and antioxidant mechanisms of Aspergillus cristatus to NaCl-induced osmotic stress in small-leaved Kuding tea media.BMC biotechnology · 2025Article
- Study on the influence of microorganisms on the flavor of black tea.Food chemistry: X · 2025Article
- Metabolites of epigallocatechin gallate and changes in antioxidant activity through biotransformation withFood chemistry: X · 2025Article
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Abstract
Due to its traditional fermentation, there are obvious limits on the quality improvements in black tea. However, microbial fermentation can provide an abundance of metabolites and improve the flavor of tea. The "golden flower" fungi are widely used in the microbial fermentation of tea and has unique uses in healthcare. To further explore the improvements in black tea quality achieved via microbial fermentation, we used widely targeted metabolomics and metagenomics analyses to investigate the changes in and effects of metabolites and other microorganisms during the interaction between the "golden flower" fungi and black tea. Five key flavor metabolites were detected, the levels of catechin, epigallocatechin gallate, (-)-epicatechin gallate were decreased by different degrees after the inoculation of the "golden flower" fungus, whereas the levels of caffeine and (+)-gallocatechin increased. Botryosphaeriaceae, Botryosphaeriales, Dothideomycetes, Aspergillaceae, Trichocomaceae, and Lecanoromycetes play a positive role in the black tea fermentation process after inoculation with the "golden flower" fungi. D-Ribose can prevent hypoxia-induced apoptosis in cardiac cells, and it shows a strong correlation with Botryosphaeriaceae and Botryosphaeriales. The interaction between microorganisms and metabolites is manifested in tryptophan metabolism, starch and sucrose metabolism, and amino sugar and nucleotide sugar metabolism. In conclusion, the changes in metabolites observed during the fermentation of black tea by "golden flower" fungi are beneficial to human health. This conclusion extends the knowledge of the interaction between the "golden flower" fungi and black tea, and it provides important information for improving the quality of black tea.
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