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Metabolic flux analysis of Escherichia coli K12 grown on C-13-labeled acetate and glucose using GG-MS and powerful flux calculation method

机译:使用GG-MS和强大的通量计算方法分析C-13标记的乙酸盐和葡萄糖上生长的大肠杆菌K12的代谢通量

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A new algorithm was developed for the estimation of the metabolic flux distribution based on GC-MS data of proteinogenic amino acids. By using a sensitive GC-MS protocol as well as by combining the global search algorithm such as the genetic algorithm with the local search algorithm such as the Levenberg-Marquardt algorithm, not only the distribution of the net fluxes in the entire network, but also certain exchange fluxes which contribute significantly to the isotopomer distribution could be quantified. This mass isotopomer analysis could identify the biochemical changes involved in the regulation where acetate or glucose was used as a main carbon source. The metabolic flux analysis clearly revealed that when the specific growth rate increased, only a slight change in flux distribution was observed for acetate metabolism, indicating that subtle regulation mechanism exists in certain key junctions of this network system. Different from acetate metabolism, when glucose was used as a carbon source, as the growth rate increased, a significant increase in relative pentose phosphate pathway (PPP) flux was observed for Escherichia coli K12 at the expense of the citric acid cycle, suggesting that when growing on glucose, the flux catalyzed by isocitrate dehydrogenase could not fully fulfill the NADPH demand for cell growth, causing the oxidative PPP to be utilized to a larger extent so as to complement the NADPH demand. The GC-MS protocol as well as the new algorithm demonstrated here proved to be a powerful tool for characterizing metabolic regulation and can be utilized for strain improvement and bioprocess optimization.
机译:根据蛋白质氨基酸的GC-MS数据,开发了一种新的算法来估算代谢通量分布。通过使用敏感的GC-MS协议,以及将诸如遗传算法之类的全局搜索算法与诸如Levenberg-Marquardt算法之类的局部搜索算法相结合,不仅净通量在整个网络中的分布,而且可以定量地定量地确定对异构体分布有显着贡献的某些交换通量。这种质量同位素异构体分析可以确定涉及调节的生化变化,其中乙酸盐或葡萄糖用作主要碳源。代谢通量分析清楚地表明,当比生长速率增加时,乙酸盐代谢仅观察到通量分布的细微变化,表明该网络系统的某些关键连接点存在微妙的调节机制。与乙酸盐代谢不同,当葡萄糖用作碳源时,随着生长速率的增加,大肠杆菌K12的相对戊糖磷酸途径(PPP)通量显着增加,而柠檬酸循环却受到了影响,这表明在葡萄糖上生长时,异柠檬酸脱氢酶催化的通量不能完全满足NADPH对细胞生长的需求,从而导致氧化PPP被更大程度地利用以补充NADPH需求。 GC-MS协议以及此处展示的新算法被证明是表征代谢调控的强大工具,可用于菌株改良和生物工艺优化。

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