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Enhanced Fermentation of Pu-Erh Tea with Aspergillus niger: Quality and Microbial Community Analysis
Jingchuan Zheng1, Lijun Yu1, Muhammad Aaqil1
1College of Food Science and Technology, Yunnan Agricultural University, Kunming 650201, China.
Abstract:
Post-fermented Pu-erh tea (PFPT) is a microbial fermented tea characterized by unique sensory attributes and multiple health benefits. Aspergillus niger is the dominant fungus involved in the fermentation process and plays a significant role in imparting the distinct characteristics of PFPT. To investigate the role of Aspergillus niger in the fermentation of Pu-erh tea, this study inoculated unsterilized sun-dried green tea with Aspergillus niger isolated from Pu-erh tea to enhance the fermentation process. Metabolites and microbial communities in sun-dried green tea (CK), fortified fermented tea (TF), and naturally fermented tea (NF) were analyzed using non-targeted metabolomics, 16S rDNA, and internal transcribed spacer sequencing. Non-targeted metabolomics revealed that Aspergillus niger significantly altered the metabolite profile of the tea samples, identifying a total of 200 different metabolites, with 95 showing significant increases and 105 significant decreases, predominantly enriched in metabolic pathways associated with amino acid biosynthesis and degradation. High-throughput sequencing revealed that although the relative abundance of the fungal community remained largely unchanged, the inoculation of Aspergillus niger significantly increased the abundance of Bacillales and Pseudomonas within the bacterial community, thereby influencing the dynamic balance of the microbial ecosystem. Collectively, the inoculation of Aspergillus niger altered the composition of the microbial community and metabolic activities, resulting in changes to the content of amino acid-dominated metabolites, thereby enhancing the flavor profile and overall quality of Pu-erh tea. These findings provide important insights for optimizing the production processes of Pu-erh tea and the application of microorganisms in other fermented foods.
Insights
Inoculating Pu-erh tea with Aspergillus niger enhanced its fermentation by altering microbial communities and amino acid metabolites, improving flavor and quality. This study optimizes Pu-erh tea production.
Area of Science:
- Food Science and Technology
- Microbiology
- Metabolomics
Background:
- Post-fermented Pu-erh tea (PFPT) is known for unique sensory qualities and health benefits, largely attributed to microbial fermentation.
- Aspergillus niger is a key fungus in PFPT fermentation, significantly influencing its distinct characteristics.
Purpose of the Study:
- To investigate the specific role of Aspergillus niger in enhancing Pu-erh tea fermentation.
- To analyze the impact of Aspergillus niger inoculation on metabolite profiles and microbial communities.
Main Methods:
- Sun-dried green tea was inoculated with Aspergillus niger.
- Metabolite profiles were analyzed using non-targeted metabolomics.
- Microbial communities were analyzed using 16S rDNA and internal transcribed spacer sequencing.
Main Results:
- Aspergillus niger inoculation significantly altered the tea's metabolite profile, with 95 metabolites increasing and 105 decreasing, particularly in amino acid pathways.
- Bacterial communities showed increased abundance of Bacillales and Pseudomonas post-inoculation.
- Fungal community relative abundance remained largely unchanged.
Conclusions:
- Aspergillus niger inoculation modifies microbial composition and metabolic activity, enhancing amino acid-related metabolites in Pu-erh tea.
- This process improves the flavor profile and overall quality of Pu-erh tea.
- Findings offer insights for optimizing PFPT production and microbial applications in fermented foods.
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