木犀草素
胰腺癌
癌症研究
体内
信号转导
计算生物学
医学
基因表达谱
生物
生物信息学
小桶
胰腺肿瘤
细胞生长
体外
作用机理
药理学
细胞培养
基因表达
癌症
基因
基因表达调控
机制(生物学)
代谢组学
作者
Danhong Pan,Shixia Li,Peixi Zhong,Lili Chen,Binbo Fang,Yifu Feng
标识
DOI:10.1186/s40001-026-04056-x
摘要
BACKGROUND: Pancreatic cancer remains one of the most lethal malignancies with limited therapeutic options. Luteolin, a natural flavonoid compound, has demonstrated potential anti-cancer properties, but its specific mechanisms of action in pancreatic cancer are not fully understood. OBJECTIVE: To identify potential molecular targets of luteolin in pancreatic cancer and elucidate the underlying therapeutic mechanisms through comprehensive bioinformatics and experimental approaches. METHODS: We employed multiple databases including SwissTargetPrediction, GeneCards, and OMIM to predict luteolin targets and pancreatic cancer-related genes. Differential gene expression analysis was performed using the GSE32676 dataset. KEGG and GO enrichment analyses were conducted to identify key pathways. Molecular docking and dynamics simulations validated protein-ligand interactions. TCGA data analysis examined MET expression patterns and prognostic significance. In vitro and in vivo experiments confirmed luteolin's therapeutic effects. RESULTS: We identified 7 overlapping genes between luteolin targets and pancreatic cancer-related genes, with MET emerging as the primary target through network analysis. Molecular docking revealed stable binding between luteolin and MET (- 8.0 kcal/mol). Molecular dynamics simulations confirmed the structural stability of the MET-luteolin complex. TCGA analysis showed MET overexpression in pancreatic cancer correlating with poor prognosis. Experimental validation demonstrated that luteolin inhibited pancreatic cancer cell proliferation and tumor growth through MET/PI3K/AKT pathway modulation. CONCLUSION: This study identifies MET as a critical therapeutic target of luteolin in pancreatic cancer, providing mechanistic insights into luteolin's anti-cancer effects via the MET/PI3K/AKT signaling pathway and supporting its potential clinical application.
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