分子生物学
IVD分子诊断
细胞培养与分析
蛋白研究
细胞因子
重组蛋白
抗体
高通量测序建库
病原检测UCF系列
生物医药
工具酶
抑制剂激活剂与常用试剂
仪器
耗材

Integrating network pharmacology and experimental validation to elucidate the mechanism by which 2-Dihydroailanthone induces HCT116 cell death through suppressing autophagy via the AMPK/mTOR pathway

An Baiping, Wang Jing, Li Zhuohong, Peng Lanqing, Luo Xin, Zhao Xueni, Shen Junru, Wang Xiaomin

Journal:BMC CANCER

IF:3.4

DOI:10.1186/s12885-026-15863-0

PMID:

Published:2026-03-17

research field:分子生物学生物信息学药理学癌症生物学天然产物化学

Abstract

Background and objective Colorectal cancer (CRC) is a highly prevalent and challenging malignancy worldwide, with chemotherapy resistance and tumor recurrence posing significant clinical hurdles. Previous studies have indicated that activation of protective autophagy under tumor microenvironment stress plays a key role in cancer cell survival and drug resistance. Consequently, inhibiting protective autophagy has emerged as a promising anti-CRC strategy. This study aims to investigate whether 2-Dihydroailanthone, an active constituent isolated from the bark of Ailanthus altissima (a traditional Chinese medicinal plant), induces CRC cell death by suppressing protective autophagy and to elucidate the underlying molecular mechanisms. Methods Network pharmacology was initially employed to predict the potential targets of 2-Dihydroailanthone and to perform pathway enrichment analyses. Molecular docking evaluated its binding interactions with the core targets AMPK and mTOR. Human CRC HCT116 cells were used as an experimental model to assess cell viability, migration, and apoptosis via CCK-8 assay, wound healing assay, and flow cytometry, respectively. Ultrastructural changes and autophagosome formation were examined through transmission electron microscopy (TEM). Protein expression of AMPK/mTOR pathway components and autophagy markers (LC3B-II and p62) were analyzed by Western blotting. Pharmacological gain- and loss-of-function experiments employed the AMPK activator GSK621 and the inhibitor Compound C to validate pathway involvement. Results Network pharmacology revealed significant enrichment of 2-Dihydroailanthone’s potential targets in autophagy- and AMPK/mTOR-related pathways. Molecular docking demonstrated high-affinity binding of 2-Dihydroailanthone to the active sites of AMPK and mTOR. Functional assays showed that 2-Dihydroailanthone suppressed HCT116 cell viability and migration in a dose-dependent manner and notably induced apoptosis.

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