PO.ET06.01 · 实验与分子治疗
Hinokitiol靶向肝癌的金属与氧化还原易感性
Hinokitiol targets metal and redox vulnerabilities in liver cancer
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摘要 Abstract
中文摘要
肝细胞癌(HCC)是最致命的肝癌类型之一,占全球大多数肝癌死亡病例。目前的医学治疗疗效有限,尤其是在晚期,因此明显需要替代性的治疗策略。近年来,天然化合物作为难治性癌症的治疗选择受到关注。Hinokitiol(β-thujaplicin,β-崖柏素)便是这样一种化合物。研究表明,Hinokitiol具有抗癌特性;有趣的是,该化合物还已知可结合并动员铁。然而,其铁动员能力与其在HCC细胞中所激活的应激反应或细胞死亡通路类型之间的联系尚不清楚。由于HCC细胞本身携带较多的铁,Hinokitiol如何与富铁环境相互作用、以及它在HCC细胞中激活何种特定通路,仍有待阐明。我们使用肝癌细胞SK-HEP1来表征Hinokitiol的作用。我们通过Western blotting、RT PCR、免疫细胞化学和活细胞成像评估细胞反应,以测定细胞活力、溶酶体活性、线粒体完整性、自噬和氧化应激。我们的结果显示,Hinokitiol以时间和剂量依赖的方式显著抑制肝癌生长,96小时时IC50约为5 µM;处于或高于该水平的浓度几乎完全消除了克隆形成生长。在接近IC50的剂量下,Hinokitiol使自噬和应激相关基因表达升高约2-4倍。Western blot分析也证实LC3脂化和溶酶体标志物增加,提示Hinokitiol调动了自噬-溶酶体系统,而非简单的生长停滞。在相同浓度下,Hinokitiol诱导应激反应基因CHAC1并降低ferritin(铁蛋白)蛋白水平。活细胞成像结果表明,与对照细胞相比,Hinokitiol处理导致脂质过氧化增加并扩大了细胞内不稳定Fe²⁺池的规模。CHAC1的诱导、ferritin的丧失以及脂质损伤的增加共同提示,Hinokitiol产生铁介导的氧化应激。综上所述,这些发现提示Hinokitiol通过一种由铁和脂质氧化驱动、且独立于凋亡和坏死性凋亡的机制引起细胞死亡,与铁死亡样(ferroptosis-like)的细胞死亡形式相符。通过动员过量的细胞内铁,Hinokitiol激活铁死亡相关通路并利用HCC细胞中铁和氧化还原的弱点,支持其作为治疗药物的潜力。
查看英文原文 English abstract
Hepatocellular carcinoma (HCC) represents one of the most fatal forms of liver cancer, which accounts for most liver cancer deaths worldwide. The current medical treatments offer limited efficacy, especially in advanced stages, so there is a clear need for alternative therapeutic strategies. In recent years, natural compounds have gained attention as options for difficult-to-treat cancers. Hinokitiol (beta-thujaplicin) is one such compound. Studies have shown that Hinokitiol possesses anti-cancer properties; interestingly, this compound is also known to bind and mobilize iron. However, the link between iron-mobilizing ability and the type of stress response or cell death pathway it activates in HCC cells remains unclear. Since HCC cells inherently carry more iron, how hinokitol interacts with iron-rich environments and what specific pathway it activates in HCC cells still needs to be elucidated. We used the liver cancer cell SK-HEP1 to characterize the effect of hinokitol. We assessed the cell responses through Western blotting, RT PCR, immunocytochemistry, and live-cell imaging to measure cell viability, lysosome activity, mitochondrial integrity, autophagy, and oxidative stress. Our results showed that the Hinokitiol markedly suppressed liver cancer growth in a time and dose-dependent manner with an IC 50 ~5 µM at 96 hours; and concentrations at or above this level almost abolished clonogenic growth. At doses near IC₅₀, Hinokitiol enhanced autophagy and stress-related gene expression by roughly 2-4 fold. Western blot analysis also confirmed an increase in LC3 lipidation and lysosome markers, suggesting that Hinokitiol engages the autophagy-lysosome system rather than simple growth arrest. At the same concentrations, Hinokitiol induced the stress-response gene CHAC1 and decreased ferritin protein levels. The live-cell imaging results demonstrated that Hinokitiol treatment caused an increase in lipid peroxidation and expanded labile Fe²⁺ pool sizes in cells compared to control cells. The combined induction of CHAC1, loss of ferritin, and increased lipid damage suggest that Hinokitiol produces iron mediated oxidative stress. Taken together, these findings suggest that Hinokitiol causes cell death through an iron and lipid oxidation-driven mechanism that is independent of apoptosis and necroptosis, and is compatible with a ferroptosis-like form of cell death. By mobilizing excess intracellular iron, Hinokitiol activates ferroptosis-related pathways and takes advantage of iron and redox weaknesses in HCC cells, supporting its potential as a therapeutic agent.
利益披露 Disclosure
D. Delgado, None..
A. Rodriguez, None..
S. C. Chauhan, None..
N. Sahoo, None.