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The Fate of Glutamine in Human Metabolism. The Interplay with Glucose in Proliferating Cells

机译:谷氨酰胺在人类代谢中的命运。与葡萄糖在增殖细胞中的相互作用

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摘要

Genome-scale models of metabolism (GEM) are used to study how metabolism varies in different physiological conditions. However, the great number of reactions involved in GEM makes it difficult to understand these variations. In order to have a more understandable tool, we developed a reduced metabolic model of central carbon and nitrogen metabolism, C2M2N with 77 reactions, 54 internal metabolites, and 3 compartments, taking into account the actual stoichiometry of the reactions, including the stoichiometric role of the cofactors and the irreversibility of some reactions. In order to model oxidative phosphorylation (OXPHOS) functioning, the proton gradient through the inner mitochondrial membrane is represented by two pseudometabolites DPH (∆pH) and DPSI (∆ψ). To illustrate the interest of such a reduced and quantitative model of metabolism in mammalian cells, we used flux balance analysis (FBA) to study all the possible fates of glutamine in metabolism. Our analysis shows that glutamine can supply carbon sources for cell energy production and can be used as carbon and nitrogen sources to synthesize essential metabolites. Finally, we studied the interplay between glucose and glutamine for the formation of cell biomass according to ammonia microenvironment. We then propose a quantitative analysis of the Warburg effect.
机译:代谢的基因组规模模型(GEM)用于研究代谢在不同生理条件下的变化方式。但是,GEM中涉及的大量反应使得难以理解这些变化。为了拥有更易懂的工具,我们考虑了反应的实际化学计量,包括碳氢化合物的化学计量作用,开发了具有77个反应,54个内部代谢物和3个区室的中心碳和氮代谢,C2M2N的简化代谢模型。辅助因子和某些反应的不可逆性。为了模拟氧化磷酸化(OXPHOS)的功能,通过内部线粒体膜的质子梯度由两个假代谢物DPH(∆pH)和DPSI(∆ψ)表示。为了说明在哺乳动物细胞中这种减少的定量代谢模型的兴趣,我们使用了通量平衡分析(FBA)研究了谷氨酰胺在代谢中的所有可能命运。我们的分析表明,谷氨酰胺可以为细胞能量生产提供碳源,并且可以用作碳源和氮源来合成必需的代谢产物。最后,我们根据氨微环境研究了葡萄糖和谷氨酰胺之间的相互作用,以形成细胞生物质。然后,我们提出对Warburg效应的定量分析。

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