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Pyruvate kinase M2, but not M1, allele maintains immature metabolic states of murine embryonic stem cells

机译:丙酮酸激酶M2但不是M1等位基因维持鼠胚胎干细胞的不成熟代谢状态

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The M2 isoform of pyruvate kinase, the final rate-limiting enzyme of aerobic glycolysis, is expressed during embryonic development. In contrast, the M1 isoform is expressed in differentiated cells due to alternative splicing. Here we investigated murine embryonic stem cells (ESCs) with Pkm1 or Pkm2 knock-in alleles. Pkm1 allele knock-in resulted in excessive oxidative phosphorylation and induced the formation of cysteine-thiol disulfide-dependent complexes of forkhead box class-O (FOXO) transcription factors, which resulted in altered endoderm differentiation. In contrast, Pkm2 knock-in induced synthesis of a methylation-donor, S-adenosylmethionine, and increased unsaturated eicosanoid groups, which contributed to the redox control and maintenance of ESC undifferentiated status. Because PKM2 is also a critical enzyme for the cancer-specific Warburg effect, our results demonstrate an important role for the Pkm2 allele in establishing intracellular redox conditions and modulating PKM1-dependent oxidative phosphorylation events to achieve an appropriate ESC differentiation program.
机译:丙酮酸激酶的M2同工型是有氧糖酵解的最终限速酶,在胚胎发育过程中表达。相反,由于选择性剪接,M1同工型在分化细胞中表达。在这里,我们调查了具有Pkm1或Pkm2敲入等位基因的小鼠胚胎干细胞(ESC)。 Pkm1等位基因敲入导致过度的氧化磷酸化,并诱导叉头盒O类(FOXO)转录因子的半胱氨酸-巯基二硫化物依赖性复合物的形成,从而导致内胚层分化改变。相反,Pkm2敲入诱导了甲基化供体,S-腺苷甲硫氨酸和增加的不饱和类花生酸基团的合成,这有助于氧化还原控制和维持ESC未分化状态。因为PKM2还是癌症特异的Warburg效应的关键酶,所以我们的结果证明Pkm2等位基因在建立细胞内氧化还原条件和调节PKM1依赖性氧化磷酸化事件以实现合适的ESC分化程序中起着重要作用。

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