Integrative multi-omics analysis to decipher the mechanism by which the interaction between Danggui Buxue Tang and gut microbiota drives isoflavone metabolic transformation

生物转化 化学 代谢组学 肠道菌群 转化(遗传学) 生物化学 代谢途径 代谢组 微生物代谢 异黄酮 细胞色素P450 双歧杆菌 发酵 拟杆菌 药物代谢 新陈代谢 拟杆菌 青蒿 代谢物 细菌 异黄酮素 蔷薇花 生物 真细菌 染料木素 小桶 生物活性
作者
Yutong Qi,Zixia Chen,Jiantang Zhang,Ruilan Du,Jingwen Shi,Qizhu Chen,Jun Chen,Huaben Bo
出处
期刊:Pharmacological research [Elsevier BV]
卷期号:18: 100744-100744
标识
DOI:10.1016/j.prmcm.2025.100744
摘要

• Gut microbiota transforms DBT isoflavones via three-step pathway. • DBT enriches Bifidobacterium (0.05%→25.5%), inhibits Porphyromonas . • Biotransformation cuts toxicity 90%, doubles drug clearance. • Metabolites strongly bind hematopoiesis targets like CDK2, GSK3B. • Multi-omics reveals microbiota-enzyme-metabolite-target network. Danggui Buxue Tang (DBT) is a classic herbal formula traditionally used to "tonify Qi and generate blood." Its efficacy is believed to depend on the biotransformation of its bioactive compounds by the gut microbiota; however, the specific metabolic profile and the key bacterial taxa involved remain unclear. An in vitro anaerobic fermentation model was established to simulate gut microbial biotransformation of DBT. This model allowed for a controlled and reproducible investigation of DBT-microbiota interactions. We integrated untargeted metabolomics (LC-MS) with 16S rRNA gene sequencing to analyze the concomitant changes in metabolites and the microbial community. PICRUSt2 was used for functional prediction. Additionally, network pharmacology and molecular docking were employed to construct a "microbiota-enzyme-metabolite-target" network. Untargeted metabolomics analysis identified 734 significantly altered metabolites following DBT fermentation, including notable increases in formononetin, biochanin A, and xenognosin B. 16S rRNA gene sequencing revealed that DBT markedly increased the relative abundance of Bifidobacterium (from 0.05% to 25.5%) while suppressing Porphyromonas. Functional prediction indicated significant enrichment in the "Drug metabolism - other enzymes" pathway. Correlation analysis revealed significant associations between specific gut microbiota and metabolites. A three-step metabolic cascade (glycoside hydrolysis → methylation → hydroxylation) was identified, which reduced toxicity by 90% and increased clearance twofold. The metabolites exhibited strong binding to targets such as CDK2 (binding energy ≤ -7.24 kcal/mol) and were enriched in hematopoiesis-related pathways, including the PI3K-Akt signaling pathway. This study systematically elucidates how the gut microbiota transforms DBT isoflavones into active aglycones that target core hematopoietic proteins, providing a novel perspective on the mechanism of orally administered, poorly absorbable traditional Chinese medicine formulas. Our results confirm that the gut microbiota is indispensable for the efficacy of DBT.
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