代谢组学
嘌呤
体内
嘧啶代谢
嘌呤代谢
化学
代谢物
黄芩苷
A549电池
对接(动物)
药理学
新陈代谢
癌症研究
生物
机制(生物学)
生物化学
作用机理
细胞
小桶
肺癌
腺苷
嘧啶
IC50型
转录因子
计算生物学
信号转导
基因表达
细胞生长
癌细胞
基因
癌症
代谢途径
作者
Jing Liao,Rui Wang,Yanan Bie,Junjun Bao,Qibiao Wu,Yu Cai
标识
DOI:10.2174/0113892002446093260416220857
摘要
OBJECTIVE: Baicalin (BA), the primary active component of Scutellaria baicalensis, exhibits anti-tumor potential; however, its multi-target mechanism in the treatment of non-small cell lung cancer (NSCLC) remains poorly understood. METHODS: This study systematically elucidated the anti-NSCLC mechanism of BA through an integrated approach that combined network pharmacology, molecular docking, molecular dynamics simulations, in vivo animal models, and untargeted metabolomics using LC-MS. Potential targets were predicted using SwissTargetPrediction and multiple disease databases. A protein-protein interaction (PPI) network was constructed and analyzed with Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analyses. Core targets were validated via molecular docking and simulations. The effects of BA on tumor growth and on the expression of EGFR and TNF-α were assessed in an A549 tumor-bearing nude mouse model. Serum metabolite changes were profiled and linked to associated pathways. RESULTS: Sixty overlapping targets were identified, with EGFR, TNF-α, CASP3, PTGS2, EZH2, and IL-2 serving as core nodes. Molecular docking demonstrated strong binding affinity between BA and both EGFR (-9.830 kcal/mol) and PTGS2 (-7.244 kcal/mol). The in vivo xenograft model demonstrated that BA (2.5 mg/kg) significantly inhibited NSCLC tumor growth, with efficacy comparable to paclitaxel. Immunohistochemistry confirmed BA downregulated EGFR and TNF-α expression in tumors. Metabolomics analysis revealed 17 differentially expressed metabolites and four significantly altered metabolic pathways: purine, caffeine, sphingolipid, and pyrimidine metabolism. Purine metabolism exhibited the most pronounced perturbation. DISCUSSION: The integrated analysis reveals that BA exerts its anti-NSCLC effects through a multi-target mechanism involving direct interactions with key signaling proteins, such as EGFR and PTGS2, downregulation of oncogenic and inflammatory pathways, and systemic reprogramming of cancer-associated metabolism, with purine metabolism as a central target. CONCLUSION: BA exerts its anti-NSCLC effects via multi-target regulation of oncogenic signaling and metabolic reprogramming. This offers preliminary insights that could inform future applications in metabolic-targeted therapies and combination treatments.
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