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Metabolic effect of TAp63α: enhanced glycolysis and pentose phosphate pathway resulting in increased antioxidant defense

机译:TAp63α的代谢作用:增强糖酵解和磷酸戊糖途径从而增强抗氧化防御能力

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摘要

TAp63α is a member of the p53 family, which plays a central role in epithelial cancers. Recently, a role has emerged for p53 family members in cancer metabolic modulation.In order to assess whether TAp63α plays a role in cancer metabolism, we exploited p53-null osteosarcoma Tet-On Saos-2 cells, in which the expression of TAp63α was dependent on doxycycline supplementation to the medium. Metabolomics labeling experiments were performed by incubating the cells in 13C-glucose or 13C15N-glutamine-labeled culture media, as to monitor metabolic fluxes upon induced expression of TAp63α.Induced expression of TAp63α resulted in cell cycle arrest at the G1 phase. From a metabolic standpoint, expression of Tap63α promoted glycolysis and the pentose phosphate pathway, which was uncoupled from nucleotide biosynthesis, albeit prevented oxidative stress in the form of oxidized glutathione. Double 13C-glucose and 13C15N-glutamine metabolic labeling confirmed that induced expression of TAp63α corresponded to a decreased flux of pyruvate to the Krebs cycle and decreased utilization of glutamine for catabolic purposes in the TCA cycle. Results were not conclusive in relation to anabolic utilization of labeled glutamine, since it is unclear to what extent the observed minor TAp63α-dependent increases of glutamine-derived labeling in palmitate could be tied to increased rates of reductive carboxylation and de novo synthesis of fatty acids. Finally, bioinformatics elaborations highlighted a link between patient survival rates and the co-expression of p63 and rate limiting enzymes of the pentose phosphate pathway, G6PD and PGD.
机译:TAp63α是p53家族的成员,在上皮癌中起着核心作用。最近,p53家族成员在癌症代谢调节中发挥作用。为了评估TAp63α是否在癌症代谢中发挥作用,我们利用了p53缺失的骨肉瘤Tet-On Saos-2细胞,其中TAp63α的表达依赖对强力霉素补充培养基。通过在 13 C-葡萄糖或 13 C 15 N-谷氨酰胺标记的培养基中孵育细胞进行代谢组学标记实验,以监测诱导TAp63α表达时的代谢通量。诱导的TAp63α表达导致G1期细胞周期停滞。从代谢的观点来看,Tap63α的表达促进了糖酵解和磷酸戊糖途径,尽管核苷酸氧化可以阻止谷胱甘肽的氧化应激,但这与核苷酸的生物合成无关。 13 C-葡萄糖和 13 C 15 N-谷氨酰胺代谢双标记证实,TAp63α的诱导表达与丙酮酸通向丙酮酸的通量降低有关。在TCA循环中,Krebs循环和谷氨酰胺分解代谢的利用率降低。关于标记的谷氨酰胺的合成代谢利用,结果尚无定论,因为尚不清楚观察到的棕榈酸中谷氨酰胺衍生的标签中少量TAp63α-依赖性谷氨酰胺衍生标记的增加可能与还原性羧化速率和脂肪酸从头合成有关。最后,生物信息学的研究突显了患者存活率与p63和戊糖磷酸途径,G6PD和PGD的限速酶的共表达之间的联系。

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