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采用代谢组学方法评估阿霉素对乳腺癌细胞的药效学及耐药性

Metabolomic approach to evaluating adriamycin pharmacodynamics and resistance in breast cancer cells.

作者信息

Cao Bei, Li Mengjie, Zha Weibin, Zhao Qijin, Gu Rongrong, Liu Linsheng, Shi Jian, Zhou Jun, Zhou Fang, Wu Xiaolan, Wu Zimei, Wang Guangji, Aa Jiye

机构信息

Lab of Metabolomics, Key Laboratory of Drug Metabolism and Pharmacokinetics, State Key Laboratory of Natural Medicines, China Pharmaceutical University, Nanjing, 21009 China.

School of Pharmacy, The University of Auckland, Auckland, 1142 New Zealand.

出版信息

Metabolomics. 2013;9(5):960-973. doi: 10.1007/s11306-013-0517-x. Epub 2013 Mar 20.

Abstract

Continuous exposure of breast cancer cells to adriamycin induces high expression of P-gp and multiple drug resistance. However, the biochemical process and the underlying mechanisms for the gradually induced resistance are not clear. To explore the underlying mechanism and evaluate the anti-tumor effect and resistance of adriamycin, the drug-sensitive MCF-7S and the drug-resistant MCF-7Adr breast cancer cells were used and treated with adriamycin, and the intracellular metabolites were profiled using gas chromatography mass spectrometry. Principal components analysis of the data revealed that the two cell lines showed distinctly different metabolic responses to adriamycin. Adriamycin exposure significantly altered metabolic pattern of MCF-7S cells, which gradually became similar to the pattern of MCF-7Adr, indicating that metabolic shifts were involved in adriamycin resistance. Many intracellular metabolites involved in various metabolic pathways were significantly modulated by adriamycin treatment in the drug-sensitive MCF-7S cells, but were much less affected in the drug-resistant MCF-7Adr cells. Adriamycin treatment markedly depressed the biosynthesis of proteins, purines, pyrimidines and glutathione, and glycolysis, while it enhanced glycerol metabolism of MCF-7S cells. The elevated glycerol metabolism and down-regulated glutathione biosynthesis suggested an increased reactive oxygen species (ROS) generation and a weakened ability to balance ROS, respectively. Further studies revealed that adriamycin increased ROS and up-regulated P-gp in MCF-7S cells, which could be reversed by -acetylcysteine treatment. It is suggested that adriamycin resistance is involved in slowed metabolism and aggravated oxidative stress. Assessment of cellular metabolomics and metabolic markers may be used to evaluate anti-tumor effects and to screen for candidate anti-tumor agents.

摘要

乳腺癌细胞持续暴露于阿霉素会诱导P-糖蛋白的高表达和多药耐药性。然而,逐渐诱导产生耐药性的生化过程及潜在机制尚不清楚。为了探究潜在机制并评估阿霉素的抗肿瘤作用和耐药性,使用了对药物敏感的MCF-7S和耐药的MCF-7Adr乳腺癌细胞,并用阿霉素进行处理,然后使用气相色谱 - 质谱联用技术对细胞内代谢物进行分析。对数据的主成分分析表明,这两种细胞系对阿霉素表现出明显不同的代谢反应。阿霉素处理显著改变了MCF-7S细胞的代谢模式,使其逐渐变得类似于MCF-7Adr细胞的模式,这表明代谢转变与阿霉素耐药性有关。在药物敏感的MCF-7S细胞中,许多参与各种代谢途径的细胞内代谢物受到阿霉素处理的显著调节,但在耐药的MCF-7Adr细胞中受影响较小。阿霉素处理显著抑制了蛋白质、嘌呤、嘧啶和谷胱甘肽的生物合成以及糖酵解,同时增强了MCF-7S细胞的甘油代谢。甘油代谢的升高和谷胱甘肽生物合成的下调分别表明活性氧(ROS)生成增加和平衡ROS的能力减弱。进一步研究表明,阿霉素增加了MCF-7S细胞中的ROS并上调了P-糖蛋白,而这可以通过乙酰半胱氨酸处理来逆转。提示阿霉素耐药性与代谢减缓及氧化应激加重有关。评估细胞代谢组学和代谢标志物可用于评估抗肿瘤作用并筛选候选抗肿瘤药物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0acb/3769585/62fe7e1a58a8/11306_2013_517_Fig1_HTML.jpg

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