Cepharanthine inhibits the proliferation of glioblastoma cells by blocking the autophagy–lysosomal pathway

IF 3.3 3区 医学 Q2 PHARMACOLOGY & PHARMACY Toxicology and applied pharmacology Pub Date : 2024-11-03 DOI:10.1016/j.taap.2024.117141
Xiangjun Dong , Weiyi Zhu , Nianrong Wang
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Abstract

Cepharanthine (CEP) is a Stephania cepharantha-derived bioactive alkaloid that can inhibit the progression of numerous tumors. However, the effects and specific mechanisms of CEP performance in glioblastoma (GBM) remain unclear. Thus, this study focused on exploring the effects of CEP on GBM and clarifying the underlying mechanisms. U251 and U87 cells were selected to estimate the anti-GBM effects of CEP, and the possible targets of CEP were analyzed using RNA sequencing (RNA-seq). Validation experiments based on RNA-seq data were performed to clarify the key pathway by which CEP mediates GBM cells response. Results showed that CEP administration successfully inhibited the proliferation and induced the cell cycle arrest and apoptosis of the GBM cells. RNA-seq analysis after CEP administration identified 386 differentially expressed genes, which were highly enriched in the autophagy–lysosomal pathway. Subsequent findings demonstrated that CEP exhibited the potential to curb GBM progression by causing lysosomal and autophagic dysfunction. Taken together, our results indicate that CEP is a potential drug candidate for GBM intervention.
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头孢噻啶通过阻断自噬-溶酶体途径抑制胶质母细胞瘤细胞的增殖。
头花苋碱(CEP)是一种从头花苋菜中提取的生物活性生物碱,可抑制多种肿瘤的进展。然而,CEP 在胶质母细胞瘤(GBM)中的作用和具体机制仍不清楚。因此,本研究重点探索 CEP 对 GBM 的影响并阐明其潜在机制。研究选择了 U251 和 U87 细胞来估测 CEP 的抗 GBM 作用,并使用 RNA 测序(RNA-seq)分析了 CEP 的可能靶点。基于RNA-seq数据进行了验证实验,以明确CEP介导GBM细胞反应的关键途径。结果表明,CEP能成功抑制GBM细胞的增殖,并诱导细胞周期停滞和凋亡。CEP用药后的RNA-seq分析发现了386个差异表达基因,这些基因高度富集于自噬-溶酶体通路。随后的研究结果表明,CEP 有可能通过导致溶酶体和自噬功能障碍来遏制 GBM 的发展。综上所述,我们的研究结果表明,CEP 是一种潜在的候选药物,可用于 GBM 的干预。
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来源期刊
CiteScore
6.80
自引率
2.60%
发文量
309
审稿时长
32 days
期刊介绍: Toxicology and Applied Pharmacology publishes original scientific research of relevance to animals or humans pertaining to the action of chemicals, drugs, or chemically-defined natural products. Regular articles address mechanistic approaches to physiological, pharmacologic, biochemical, cellular, or molecular understanding of toxicologic/pathologic lesions and to methods used to describe these responses. Safety Science articles address outstanding state-of-the-art preclinical and human translational characterization of drug and chemical safety employing cutting-edge science. Highly significant Regulatory Safety Science articles will also be considered in this category. Papers concerned with alternatives to the use of experimental animals are encouraged. Short articles report on high impact studies of broad interest to readers of TAAP that would benefit from rapid publication. These articles should contain no more than a combined total of four figures and tables. Authors should include in their cover letter the justification for consideration of their manuscript as a short article.
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