Eppley Institute for Research in Cancer and Allied Diseases, University of Nebraska Medical Center, Omaha, NE, USA.
Department of Oncology Science, University of Oklahoma Health Sciences Center, Oklahoma City, OK, USA.
Nat Rev Cancer. 2023 May;23(5):275-294. doi: 10.1038/s41568-023-00557-7. Epub 2023 Mar 27.
Metabolic alterations are a key hallmark of cancer cells, and the augmented synthesis and use of nucleotide triphosphates is a critical and universal metabolic dependency of cancer cells across different cancer types and genetic backgrounds. Many of the aggressive behaviours of cancer cells, including uncontrolled proliferation, chemotherapy resistance, immune evasion and metastasis, rely heavily on augmented nucleotide metabolism. Furthermore, most of the known oncogenic drivers upregulate nucleotide biosynthetic capacity, suggesting that this phenotype is a prerequisite for cancer initiation and progression. Despite the wealth of data demonstrating the efficacy of nucleotide synthesis inhibitors in preclinical cancer models and the well-established clinical use of these drugs in certain cancer settings, the full potential of these agents remains unrealized. In this Review, we discuss recent studies that have generated mechanistic insights into the diverse biological roles of hyperactive cancer cell nucleotide metabolism. We explore opportunities for combination therapies that are highlighted by these recent advances and detail key questions that remain to be answered, with the goal of informing urgently warranted future studies.
代谢改变是癌细胞的一个关键特征,核苷酸三磷酸的合成和利用增加是不同癌症类型和遗传背景下癌细胞普遍存在的关键代谢依赖性。癌细胞的许多侵袭性行为,包括不受控制的增殖、化疗耐药、免疫逃逸和转移,严重依赖于核苷酸代谢的增加。此外,大多数已知的致癌驱动因素上调核苷酸生物合成能力,表明这种表型是癌症发生和进展的先决条件。尽管有大量数据表明核苷酸合成抑制剂在临床前癌症模型中的疗效,以及这些药物在某些癌症治疗中的既定临床应用,但这些药物的全部潜力尚未得到充分发挥。在这篇综述中,我们讨论了最近的研究,这些研究为过度活跃的癌细胞核苷酸代谢的多种生物学作用提供了机制上的见解。我们探讨了这些新进展所凸显的联合治疗机会,并详细介绍了仍有待回答的关键问题,以期为未来急需的研究提供信息。