Buj Raquel, Aird Katherine M
Department of Cellular and Molecular Physiology, Penn State College of Medicine, Hershey, PA, United States.
Front Endocrinol (Lausanne). 2018 Apr 18;9:177. doi: 10.3389/fendo.2018.00177. eCollection 2018.
The maintenance of a healthy deoxyribonucleotide triphosphate (dNTP) pool is critical for the proper replication and repair of both nuclear and mitochondrial DNA. Temporal, spatial, and ratio imbalances of the four dNTPs have been shown to have a mutagenic and cytotoxic effect. It is, therefore, essential for cell homeostasis to maintain the balance between the processes of dNTP biosynthesis and degradation. Multiple oncogenic signaling pathways, such as c-Myc, p53, and mTORC1 feed into dNTP metabolism, and there is a clear role for dNTP imbalances in cancer initiation and progression. Additionally, multiple chemotherapeutics target these pathways to inhibit nucleotide synthesis. Less is understood about the role for dNTP levels in metabolic disorders and syndromes and whether alterations in dNTP levels change cancer incidence in these patients. For instance, while deficiencies in some metabolic pathways known to play a role in nucleotide synthesis are pro-tumorigenic (e.g., p53 mutations), others confer an advantage against the onset of cancer (G6PD). More recent evidence indicates that there are changes in nucleotide metabolism in diabetes, obesity, and insulin resistance; however, whether these changes play a mechanistic role is unclear. In this review, we will address the complex network of metabolic pathways, whereby cells can fuel dNTP biosynthesis and catabolism in cancer, and we will discuss the potential role for this pathway in metabolic disease.
维持健康的三磷酸脱氧核糖核苷酸(dNTP)库对于细胞核和线粒体DNA的正常复制和修复至关重要。四种dNTP的时间、空间和比例失衡已被证明具有诱变和细胞毒性作用。因此,维持dNTP生物合成和降解过程之间的平衡对于细胞稳态至关重要。多种致癌信号通路,如c-Myc、p53和mTORC1,都参与dNTP代谢,dNTP失衡在癌症发生和发展中具有明确作用。此外,多种化疗药物靶向这些通路以抑制核苷酸合成。关于dNTP水平在代谢紊乱和综合征中的作用以及dNTP水平的改变是否会改变这些患者的癌症发病率,我们了解得较少。例如,虽然一些已知在核苷酸合成中起作用的代谢途径缺陷具有促肿瘤作用(如p53突变),但其他一些途径则对癌症的发生具有抑制作用(如葡萄糖-6-磷酸脱氢酶)。最新证据表明,糖尿病、肥胖症和胰岛素抵抗患者存在核苷酸代谢变化;然而,这些变化是否起机制性作用尚不清楚。在本综述中,我们将探讨代谢途径的复杂网络,通过该网络细胞可为癌症中的dNTP生物合成和分解代谢提供能量,并且我们将讨论该途径在代谢性疾病中的潜在作用。