首页> 外文期刊>Cancer science. >Pericellular pH homeostasis is a primary function of the Warburg effect: inversion of metabolic systems to control lactate steady state in tumor cells.
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Pericellular pH homeostasis is a primary function of the Warburg effect: inversion of metabolic systems to control lactate steady state in tumor cells.

机译:细胞周围pH稳态是Warburg效应的主要功能:代谢系统倒置以控制肿瘤细胞中的乳酸稳态。

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The Warburg effect describes a heightened propensity of tumor cells to produce lactic acid in the presence or absence of O(2) . A generally held notion is that the Warburg effect is related to energy. Using whole-genome, proteomic MALDI-TOF-MS and metabolite analysis, we investigated the Warburg effect in malignant neuroblastoma N2a cells. The findings show that the Warburg effect serves a functional role in regulating acidic pericellular pH (pHe), which is mediated by metabolic inversion or a fluctuating dominance between glycolytic-rate substrate level phosphorylation (SLP) and mitochondrial (mt) oxidative phosphorylation (OXPHOS) to control lactic acid production. The results also show that an alkaline pHe caused an elevation in SLP/OXPHOS ratio (approximately 98% SLP/OXPHOS); while the ratio was approximately 56% at neutral pHe and approximately 93% in acidic pHe. Acidic pHe paralleled greater expression of mitochondrial biogenesis and OXPHOS genes, such as complex III-V (Uqcr10, Atp5 and Cox7c), mt Fmc1, Romo1, Tmem 173, Tomm6, aldehyde dehydrogenase, mt Sod2 mt biogenesis component PPAR-γ co-activator 1 adjunct to loss of mt fission (Mff). Moreover, acidic pHe corresponded to metabolic efficiency evidenced by a rise in mTOR nutrient sensor GβL, its downstream target (Eif4ebp1), insulin modulators (Trib3 and Fetub) and loss of catabolic (Hadhb, Bdh1 and Pygl)/glycolytic processes (aldolase C, pyruvate kinase, Nampt and aldose-reductase). In contrast, alkaline pHe initiated loss of mitofusin 2, complex II-IV (Sdhaf1, Uqcrq, Cox4i2 and Aldh1l2), aconitase, mitochondrial carrier triple repeat 1 and mt biosynthetic (Coq2, Coq5 and Coq9). In conclusion, the Warburg effect might serve as a negative feedback loop that regulates the pHe toward a broad acidic range by altering lactic acid production through inversion of metabolic systems. These effects were independent of changes in O(2) concentration or glucose supply.
机译:Warburg效应描述了在存在或不存在O(2)的情况下,肿瘤细胞产生乳酸的倾向增强。人们普遍认为,沃堡效应与能量有关。使用全基因组,蛋白质组学的MALDI-TOF-MS和代谢物分析,我们研究了Warburg在恶性神经母细胞瘤N2a细胞中的作用。研究结果表明,Warburg效应在调节酸性细胞周围pH(pHe)中发挥功能性作用,这是由代谢转化或糖酵解速率底物水平磷酸化(SLP)和线粒体(mt)氧化磷酸化(OXPHOS)之间的主导地位介导的控制乳酸的产生。结果还表明,碱性pHe导致SLP / OXPHOS比率升高(约98%SLP / OXPHOS);而在中性pHe下该比例约为56%,在酸性pHe下该比例约为93%。酸性pHe使线粒体生物发生和OXPHOS基因的表达更高,例如复杂的III-V(Uqcr10,Atp5和Cox7c),mt Fmc1,Romo1,Tmem 173,Tomm6,醛脱氢酶,mt Sod2 mt生物发生成分PPAR-γ共激活因子1辅助裂变裂变(Mff)的损失。此外,酸性pHe对应于代谢效率,其表现为mTOR营养素传感器GβL,其下游靶标(Eif4ebp1),胰岛素调节剂(Trib3和Fetub)的升高和分解代谢(Hadhb,Bdh1和Pygl)/糖酵解过程(醛缩酶C,丙酮酸激酶,Nampt和醛糖还原酶)。相比之下,碱性pHe引发线粒体蛋白2,复合物II-IV(Sdhaf1,Uqcrq,Cox4i2和Aldh11l2),乌头酸酶,线粒体载体三重重复1和mt生物合成(Coq2,Coq5和Coq9)的损失。总之,沃堡效应可能是一个负反馈回路,可通过代谢系统的转化改变乳酸的产生,从而将pHe调节至较宽的酸性范围。这些影响与O(2)浓度或葡萄糖供应的变化无关。

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