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首页> 外文期刊>Metabolic engineering >H-2 and C-13 metabolic flux analysis elucidates in vivo thermodynamics of the ED pathway in Zymomonas mobilis
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H-2 and C-13 metabolic flux analysis elucidates in vivo thermodynamics of the ED pathway in Zymomonas mobilis

机译:H-2和C-13代谢通量分析在Zymomonas Mobilis的ED途径的体内热力学中阐明

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摘要

Zymomonas mobilis is an industrially relevant bacterium notable for its ability to rapidly ferment simple sugars to ethanol using the Entner-Doudoroff (ED) glycolytic pathway, an alternative to the well-known EmbdenMeyerhof-Parnas (EMP) pathway used by most organisms. Recent computational studies have predicted that the ED pathway is substantially more thermodynamically favorable than the EMP pathway, a potential factor explaining the high glycolytic rate in Z. mobilis. Here, to investigate the in vivo thermodynamics of the ED pathway and central carbon metabolism in Z. mobilis, we implemented a network-level approach that integrates quantitative metabolomics with H-2 and C-13 metabolic flux analysis to estimate reversibility and Gibbs free energy (Delta G) of metabolic reactions. This analysis revealed a strongly thermodynamically favorable ED pathway in Z. mobilis that is nearly twice as favorable as the EMP pathway in E. coli or S. cerevisiae. The in vivo step-by-step thermodynamic profile of the ED pathway was highly similar to previous in silico predictions, indicating that maximizing Delta G for each pathway step likely constitutes a cellular objective in Z. mobilis. Our analysis also revealed novel features of Z. mobilis metabolism, including phosphofructokinase-like enzyme activity, tricarboxylic acid cycle anaplerosis via PEP carboxylase, and a metabolic imbalance in the pentose phosphate pathway resulting in excretion of shikimate pathway intermediates. The integrated approach we present here for in vivo Delta G quantitation may be applied to the thermodynamic profiling of pathways and metabolic networks in other microorganisms and will contribute to the development of quantitative models of metabolism.
机译:Zymomonas Mobilis是一种工业相关的细菌,可用于使用Entner-doudoroff(Ed)糖蛋白途径将简单的糖快速发酵给乙醇的能力,是大多数生物使用的众所周知的Embdenmeyerhof-parnas(EMP)途径的替代方案。最近的计算研究预测,ED途径比EMP途径在热力学上更具热力学上,这是解释Z.Mobilis中高糖液速率的潜在因子。在这里,为了研究Z.Mobilis的ED途径和中央碳代谢的体内热力学,我们实施了一种网络级方法,其与H-2和C-13代谢通量分析集成了定量代谢源分析,以估计可逆性和吉布斯自由能量(Delta g)代谢反应。该分析揭示了Z.Mobilis的强大热力学良好的ED途径,其是大肠杆菌或酿酒酵母在大肠杆菌中的EMP途径的两倍。 ED途径的体内逐步热力学曲线与硅预测中的先前高度相似,表明每个途径步骤的最大化δg可能在Z.Mobilis中构成细胞目标。我们的分析还揭示了Z.Mobilis代谢的新颖特征,包括磷酸氨基酶样酶活性,通过PEP羧化酶的三羧酸循环吻合术,以及戊糖磷酸盐途径中的代谢不平衡,导致Shikimate途径中间体排泄。我们在这里以体内ΔG定量提供的综合方法可以应用于其他微生物中的途径和代谢网络的热力学分析,并将有助于开发代谢的定量模型。

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