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首页> 外文期刊>Clinical cancer research: an official journal of the American Association for Cancer Research >MYC-induced cancer cell energy metabolism and therapeutic opportunities.
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MYC-induced cancer cell energy metabolism and therapeutic opportunities.

机译:MYC诱导的癌细胞能量代谢和治疗机会。

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摘要

Although cancers have altered glucose metabolism, termed the Warburg effect, which describes the increased uptake and conversion of glucose to lactate by cancer cells under adequate oxygen tension, changes in the metabolism of glutamine and fatty acid have also been documented. The MYC oncogene, which contributes to the genesis of many human cancers, encodes a transcription factor c-Myc, which links altered cellular metabolism to tumorigenesis. c-Myc regulates genes involved in the biogenesis of ribosomes and mitochondria, and regulation of glucose and glutamine metabolism. With E2F1, c-Myc induces genes involved in nucleotide metabolism and DNA replication, and microRNAs that homeostatically attenuate E2F1 expression. With the hypoxia inducible transcription factor HIF-1, ectopic c-Myc cooperatively induces a transcriptional program for hypoxic adaptation. Myc regulates gene expression either directly, such as glycolytic genes including lactate dehydrogenase A (LDHA), or indirectly, such as repression of microRNAs miR-23a/b to increase glutaminase (GLS) protein expression and glutamine metabolism. Ectopic MYC expression in cancers, therefore, could concurrently drive aerobic glycolysis and/or oxidative phosphorylation to provide sufficient energy and anabolic substrates for cell growth and proliferation in the context of the tumor microenvironment. Collectively, these studies indicate that Myc-mediated altered cancer cell energy metabolism could be translated for the development of new anticancer therapies.
机译:尽管癌症已经改变了葡萄糖的代谢(称为Warburg效应),该现象描述了在足够的氧气压力下癌细胞对葡萄糖的摄取和转化增加,但谷氨酰胺和脂肪酸的代谢也发生了变化。 MYC致癌基因可促进许多人类癌症的发生,它编码一种转录因子c-Myc,它将改变的细胞代谢与肿瘤发生联系起来。 c-Myc调节与核糖体和线粒体的生物发生有关的基因,并调节葡萄糖和谷氨酰胺代谢。借助E2F1,c-Myc可以诱导涉及核苷酸代谢和DNA复制的基因,以及能稳态抑制E2F1表达的microRNA。通过缺氧诱导型转录因子HIF-1,异位c-Myc协同诱导低氧适应的转录程序。 Myc直接调节基因表达(例如,包括乳酸脱氢酶A(LDHA)在内的糖酵解基因),或间接调节(例如抑制microRNA miR-23a / b以增加谷氨酰胺酶(GLS)蛋白表达和谷氨酰胺代谢)。因此,癌症中异位的MYC表达可以同时驱动有氧糖酵解和/或氧化磷酸化,从而为肿瘤微环境中的细胞生长和增殖提供足够的能量和合成代谢底物。总的来说,这些研究表明,Myc介导的改变的癌细胞能量代谢可以转化为新的抗癌疗法的发展。

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