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Glucose and glutamine metabolism regulate human hematopoietic stem cell lineage specification

机译:葡萄糖和谷氨酰胺代谢调节人类造血干细胞谱系规格

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The metabolic state of quiescent hematopoietic stem cells (HSCs) is an important regulator of self-renewal, but it is unclear whether or how metabolic parameters contribute to HSC lineage specification and commitment. Here, we show that the commitment of human and murine HSCs to the erythroid lineage is dependent upon glutamine metabolism. HSCs require the ASCT2 glutamine transporter and active glutamine metabolism for erythroid specification. Blocking this pathway diverts EPO-stimulated HSCs to differentiate into myelomonocytic fates, altering in vivo HSC responses and erythroid commitment under stress conditions such as hemolytic anemia. Mechanistically, erythroid specification of HSCs requires glutamine-dependent de novo nucleotide biosynthesis. Exogenous nucleosides rescue erythroid commitment of human HSCs under conditions of limited glutamine catabolism, and glucose-stimulated nucleotide biosynthesis further enhances erythroid specification. Thus, the availability of glutamine and glucose to provide fuel for nucleotide biosynthesis regulates HSC lineage commitment under conditions of metabolic stress.
机译:静止的造血干细胞(HSC)的代谢状态是自我更新的重要调节剂,但尚不清楚代谢参数是否或如何影响HSC谱系的确定和承诺。在这里,我们表明人类和鼠类HSC对类红细胞谱系的承诺取决于谷氨酰胺的代谢。 HSC需要ASCT2谷氨酰胺转运蛋白和活性谷氨酰胺代谢才能达到类红细胞规格。阻断该途径可将EPO刺激的HSC转移为骨髓单核细胞命运,从而在压力条件下(例如溶血性贫血)改变体内HSC反应和类红血球的发生。从机制上讲,HSC的类胡萝卜素规格要求依赖谷氨酰胺的从头核苷酸生物合成。外源性核苷可在谷氨酰胺分解代谢受限的条件下挽救人类HSC的类红血球生成,而葡萄糖刺激的核苷酸生物合成进一步提高了类红血球的规格。因此,在代谢应激条件下,谷氨酰胺和葡萄糖可用于为核苷酸生物合成提供燃料可调节HSC谱系承诺。

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