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首页> 外文期刊>American Journal of Cancer Research >HSF1/AMPKα2 mediated alteration of metabolic phenotypes confers increased oxaliplatin resistance in HCC cells
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HSF1/AMPKα2 mediated alteration of metabolic phenotypes confers increased oxaliplatin resistance in HCC cells

机译:HSF1 /AMPKα2介导的代谢表型改变赋予HCC细胞中的奥沙利铂抗性增加

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Recent studies suggest that up-regulated HSF1 possesses metabolic phenotypes switch and chemoresistance in cancer cells. However, the mechanism in which these characteristics are still ambiguous. Our study aims to identify how HSF1 confers chemoresistance through regulating metabolic pathway in hepatocellular carcinoma (HCC). Oxaliplatin (OXA)-resistant HCC cells (HCC-OXR) in both of abundant glucose (AG; 25 mM) and low glucose (LG; 5.5 mM) conditions were constructed; then glucose consumption, lactate production, intracellular ATP level and oxygen consumption of parental and OXA-resistant cells were determined by using the associated detected kits. Moreover, HSF1 was knocked down to analyze its effects on metabolic phenotypes alteration and chemoresistance formation in HCC cells. Compared to cells in AG condition, HCC cells delayed to form chemoresistance to OXA in LG condition; and OXA-resistant cells underwent a metabolic switch from glycolysis to oxidative phosphorylation (OXPHOS), which presented decreased glucose uptake and lactate production with increased levels of oxygen consumption and intercellular ATP; interestingly, this energy-producing pathway was blocked in HSF1-knockdown OXA-resistant cells, especially in LG condition. Analysis on previous data revealed that AMPK pathway was a critical regulator in the metabolism of OXA-resistance HCC cells. Furthermore, AMPKα2 was identified as an important factor regulated by HSF1 to achieve metabolic phenotype switch in OXA-resistance HCC cells. Consequently, these results suggest that combining restrictive glucose uptake and targeting HSF1/AMPKα2 is an attractive strategy to prevent chemoresistance to OXA in HCC patients.
机译:最近的研究表明,上调的HSF1具有代谢表型开关和癌细胞中的化学抑制。然而,这些特性仍然含糊不清的机制。我们的研究旨在识别HSF1如何通过调节肝细胞癌(HCC)中的代谢途径来赋予Chemiolisies。构建了大量葡萄糖(Ag; 25mm)和低葡萄糖(Lg; 5.5mm)条件中的奥沙利​​铂(OXA)的HCC电池(HCC-OXR);然后通过使用相关检测到的试剂盒测定葡萄糖消耗,乳酸盐产生,细胞内ATP水平和氧气消耗和耐氧耐药细胞。此外,将HSF1撞击以分析其对HCC细胞中代谢表型改变和化学渗透性形成的影响。与Ag条件中的细胞相比,HCC细胞延迟以在LG条件下形成化学化至Oxa;耐氧气抗性细胞从糖酵解中进行代谢切换到氧化磷酸化(汤膦),其呈现下降的葡萄糖摄取和乳酸盐产生,随着氧气消耗和细胞间ATP水平增加;有趣的是,这种能量产生的途径在HSF1敲低的氧气细胞中封闭,尤其是LG条件。对先前数据的分析表明,AMPK途径是氧气抗性HCC细胞代谢中的临界调节因子。此外,AMPKα2被鉴定为通过HSF1调节的重要因素,以在氧气抗性HCC细胞中实现代谢表型开关。因此,这些结果表明,将限制性葡萄糖摄取和靶向HSF1 /AMPKα2组合是一种有吸引力的策略,以防止HCC患者中的化学抑制。

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