| [1] |
Wang Z, Jin Q, Jiang R, Liu Y, Xie H, et al. 2024. Characteristic volatiles of Fu brick tea formed primarily by extracellular enzymes during Aspergillus cristatus fermentation. |
| [2] |
Xiao Y, Zhong K, Bai JR, Wu YP, Gao H. 2020. Insight into effects of isolated Eurotium cristatum from Pingwu Fuzhuan brick tea on the fermentation process and quality characteristics of Fuzhuan brick tea. |
| [3] |
Wu H, Zhao H, Ding J, Wang Y, Hou J, et al. 2023. Metabolites and microbial characteristics of Fu brick tea after natural fermentation. |
| [4] |
Zhao R, Yao H, Hou Z, Zhou Q, Zhao M, et al. 2024. Sensomics-assisted analysis unravels the formation of the Fungus Aroma of Fu Brick Tea. |
| [5] |
Li H, Dai W, Zhang X, Lu J, Song F, et al. 2024. Chemical components of Fu brick tea and its potential preventive effects on metabolic syndrome. |
| [6] |
Yang M, Zhou L, Kan Z, Fu Z, Zhang X, et al. 2025. Beneficial health effects and possible health concerns of tea consumption: a review. |
| [7] |
Yang M, Chen R, Zhou X, Chen H. 2024. Research progress on pharmacological effects and mechanism of Polygonatum sibiricum polysaccharides. |
| [8] |
Zhao X, Patil S, Qian A, Zhao C. 2022. Bioactive compounds of Polygonatum sibiricum − therapeutic effect and biological activity. |
| [9] |
Zhu M, Chen G, Li J, Yi C, Yuan Y, et al. 2025. The antitumor potential of Polygonatum spp. : a narrative review of traditional uses, bioactive metabolites, and multi-targeted mechanisms. |
| [10] |
Li P, Yao H, Yue H, Huang J, Wang Q, et al. 2025. Preparation, structure, function, and application of dietary polysaccharides from Polygonatum sibiricum in the food industry: a review. |
| [11] |
Liu R, Zhang X, Cai Y, Xu S, Xu Q, et al. 2024. Research progress on medicinal components and pharmacological activities of Polygonatum sibiricum. |
| [12] |
Guo Q, Yuan J, Ding S, Nie Q, Xu Q, et al. 2024. Microbial fermentation in fermented tea beverages: transforming flavor and enhancing bioactivity. |
| [13] |
Ou X, Wang X, Zhao B, Zhao Y, Liu H, et al. 2023. Metabolome and transcriptome signatures shed light on the anti-obesity effect of Polygonatum sibiricum. |
| [14] |
Wang JJ, Zhang WW, Guan ZJ, Thakur K, Hu F, et al. 2023. Exploring the effects of the fermentation method on the quality of Lycium barbarum and Polygonatum cyrtonema compound wine based on LC-MS metabolomics. |
| [15] |
Zhang JG, Wang JJ, Zhang WW, Guan ZJ, Thakur K, et al. 2024. Metabolomics and HS-SPME-GC–MS-based analysis of quality succession patterns and flavor characteristics changes during the fermentation of Lycium barbarum and Polygonatum cyrtonema compound wine. |
| [16] |
Sun Y, Zhou L, Shan X, Zhao T, Cui M, et al. 2023. Untargeted components and in vivo metabolites analyses of Polygonatum under different processing times. |
| [17] |
Zhou Y, Zhou B, Pache L, Chang M, Khodabakhshi AH, et al. 2019. Metascape provides a biologist-oriented resource for the analysis of systems-level datasets. |
| [18] |
Kanehisa M, Furumichi M, Sato Y, Matsuura Y, Ishiguro-Watanabe M. 2025. KEGG: biological systems database as a model of the real world. |
| [19] |
Takatsuto S, Ikekawa N. 1986. Synthesis of 6-deoxohomodolichosterone, a new plant-growth-promoting steroid. |
| [20] |
Liu F, Li L, Tian X, Zhang D, Sun W, et al. 2021. Chemical constituents and pharmacological activities of steroid saponins isolated from rhizoma paridis. |
| [21] |
Tan Z, Yu P, Zhu H, Gao J, Han N, et al. 2024. Differential characteristics of chemical composition, fermentation metabolites and antioxidant effects of polysaccharides from Eurotium cristatum and Fu-brick tea. |
| [22] |
Li L, Thakur K, Liao BY, Zhang JG, Wei ZJ. 2018. Antioxidant and antimicrobial potential of polysaccharides sequentially extracted from Polygonatum cyrtonema Hua. |
| [23] |
Liu MY, He T, Wang XP, Feng H, Li XF, et al. 2024. Based on LC–MS and network pharmacology, the quality components, and anti-hypertensive mechanisms of three types of tea were studied. |
| [24] |
Du H, Shi L, Yan T, Wang Q, Wang Y, et al. 2022. Fu brick tea protects against high-fat diet-induced obesity phenotypes via promoting adipose browning and thermogenesis in association with gut microbiota. |
| [25] |
Alawiyah YS, Rimbawan R, Dewi M. 2025. The effect of green tea and Moringa oleifera tea brewing on lipid profiles in overweight and obese subject: a clinical trial. |
| [26] |
Qi B, Ren D, Li T, Niu P, Zhang X, et al. 2022. Fu brick tea manages HFD/STZ-induced type 2 diabetes by regulating the gut microbiota and activating the IRS1/PI3K/Akt signaling pathway. |
| [27] |
Wang G, Liu Z, Liang D, Yu J, Wang T, et al. 2022. Aqueous extract of Polygonatum sibiricum ameliorates glucose and lipid metabolism via PI3K/AKT signaling pathway in high-fat diet and streptozotocin-induced diabetic mice. |
| [28] |
Zhao L, Lin J, Li L, Ge ZJ. 2025. Benefits of tea on the reproductive health of diabetes mellitus. |
| [29] |
Chen J, Xia J, Yin F, Yu J, Huo J, et al. 2023. UPLC-Q-exactive-MS combined with network pharmacology to explore the antitumor effect of Polygonatum sibiricum leaf tea. |
| [30] |
Majithia AR, Flannick J, Shahinian P, Guo M, Bray MA, et al. 2014. Rare variants in PPARG with decreased activity in adipocyte differentiation are associated with increased risk of type 2 diabetes. |
| [31] |
Siersbæk R, Nielsen R, Mandrup S. 2010. PPARγ in adipocyte differentiation and metabolism–Novel insights from genome-wide studies. |
| [32] |
Kanehisa M. 2019. Toward understanding the origin and evolution of cellular organisms. |
| [33] |
Ye Y, Xia C, Hu H, Tang S, Huan H. 2024. Metabolomics reveals altered metabolites in cirrhotic patients with severe portal hypertension in Tibetan population. |
| [34] |
Liu S, Jiao W, Ni H, Ren F, Wang Y. 2026. Natural phytosterols as the nutraceuticals or functional agents: insights into structure–activity relationship. |
| [35] |
Xiao Y, He C, Chen Y, Ho CT, Wu X, et al. 2022. UPLC–QQQ–MS/MS-based widely targeted metabolomic analysis reveals the effect of solid-state fermentation with Eurotium cristatum on the dynamic changes in the metabolite profile of dark tea. |
| [36] |
Liu W, Shen J, Luo X, Lv X, Liu Z, et al. 2025. Beyond pigmentation: the regulatory role of carotenoids in tea flavor formation. |
| [37] |
Hu Y, Yin M, Bai Y, Chu S, Zhang L, et al. 2022. An evaluation of traits, nutritional, and medicinal component quality of Polygonatum cyrtonema Hua and P. sibiricum red. |
| [38] |
Li J, Zhou Y, Tang Y, Liu Z, Zhang S, et al. 2025. Effect of pu-erh tea compound solid beverage on weight loss of high-fat diet mice. |
| [39] |
Wang H, Fowler MI, Messenger DJ, Terry LA, Gu X, et al. 2018. Homoisoflavonoids are potent glucose transporter 2 (GLUT2) inhibitors: a potential mechanism for the glucose-lowering properties of Polygonatum odoratum. |
| [40] |
Jian OY, Li XP, Liu CW, Jie OY, Tang JY, et al. 2023. Moringa-Fu brick tea extract attenuated high-fat diet-induced obesity via modulating bile acid metabolism and gut microbiota in rats. |
| [41] |
Cheng H, Ton S, Tan J, Abdul Kadir K. 2017. The ameliorative effects of a tocotrienol-rich fraction on the AGE-RAGE axis and hypertension in high-fat-diet-fed rats with metabolic syndrome. |
| [42] |
Chen L, Ma J, Niu L, Feng Y, Fang Z, et al. 2025. Lipid profiles and metabolic characteristics of Chinese tea cultivars (Camellia sinensis) with different manufacturing suitabilities by comparative lipidomics using UHPLC-Q-Exactive mass spectrometry. |
| [43] |
Xiao Y, Huang Y, Chen Y, Zhu M, He C, et al. 2022. Characteristic fingerprints and change of volatile organic compounds of dark teas during solid-state fermentation with Eurotium cristatum by using HS-GC-IMS, HS-SPME-GC-MS, E-nose and sensory evaluation. |
| [44] |
Huang X, Liu G, Guo J, Su Z. 2018. The PI3K/AKT pathway in obesity and type 2 diabetes. |
| [45] |
Shen D, Feng Y, Zhang X, Gong L, Liu J, et al. 2022. Antiosteoporosis studies of 20 medicine food homology plants containing quercetin, rutin, and kaempferol: TCM characteristics, in vivo and in vitro activities, potential mechanisms, and food functions. |
| [46] |
Ren Y, Sun Y, Liao YY, Wang S, Liu Q, et al. 2024. Mechanisms of action and applications of Polygonatum sibiricum polysaccharide at the intestinal mucosa barrier: a review. |