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13C Metabolic Flux Analysis Identifies an Unusual Route for Pyruvate Dissimilation in Mycobacteria which Requires Isocitrate Lyase and Carbon Dioxide Fixation

机译:13 C代谢通量分析确定分枝杆菌丙酮酸异化的异常途径这需要异柠檬酸裂解酶和二氧化碳固定

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摘要

Mycobacterium tuberculosis requires the enzyme isocitrate lyase (ICL) for growth and virulence in vivo. The demonstration that M. tuberculosis also requires ICL for survival during nutrient starvation and has a role during steady state growth in a glycerol limited chemostat indicates a function for this enzyme which extends beyond fat metabolism. As isocitrate lyase is a potential drug target elucidating the role of this enzyme is of importance; however, the role of isocitrate lyase has never been investigated at the level of in vivo fluxes. Here we show that deletion of one of the two icl genes impairs the replication of Mycobacterium bovis BCG at slow growth rate in a carbon limited chemostat. In order to further understand the role of isocitrate lyase in the central metabolism of mycobacteria the effect of growth rate on the in vivo fluxes was studied for the first time using 13C-metabolic flux analysis (MFA). Tracer experiments were performed with steady state chemostat cultures of BCG or M. tuberculosis supplied with 13C labeled glycerol or sodium bicarbonate. Through measurements of the 13C isotopomer labeling patterns in protein-derived amino acids and enzymatic activity assays we have identified the activity of a novel pathway for pyruvate dissimilation. We named this the GAS pathway because it utilizes the Glyoxylate shunt and Anapleurotic reactions for oxidation of pyruvate, and Succinyl CoA synthetase for the generation of succinyl CoA combined with a very low flux through the succinate – oxaloacetate segment of the tricarboxylic acid cycle. We confirm that M. tuberculosis can fix carbon from CO2 into biomass. As the human host is abundant in CO2 this finding requires further investigation in vivo as CO2 fixation may provide a point of vulnerability that could be targeted with novel drugs. This study also provides a platform for further studies into the metabolism of M. tuberculosis using 13C-MFA.
机译:结核分枝杆菌需要异柠檬酸裂合酶(ICL)才能在体内生长和致病。结核分枝杆菌还需要ICL才能在营养不足的情况下生存,并且在甘油有限的恒化器中在稳态生长中起作用,这一事实表明该酶的功能超出了脂肪代谢。由于异柠檬酸裂合酶是潜在的药物靶标,因此阐明该酶的作用至关重要。然而,从未在体内通量水平研究异柠檬酸裂合酶的作用。在这里,我们显示了两个icl基因之一的缺失会削弱牛分枝杆菌BCG在碳有限的恒化器中缓慢生长的复制。为了进一步了解异柠檬酸裂合酶在分枝杆菌中枢代谢中的作用,首次使用 13 C-代谢通量分析(MFA)研究了生长速率对体内通量的影响。示踪剂实验是在BCG或结核分枝杆菌的稳态化学恒温培养物中进行的,其中添加了 13 C标记的甘油或碳酸氢钠。通过在蛋白质衍生的氨基酸中测量 13 C同位素标记方式和酶活性测定,我们确定了一条新的丙酮酸异化途径的活性。我们之所以将其命名为GAS途径,是因为它利用乙醛酸分流和厌氧消化反应来氧化丙酮酸,并利用琥珀酰CoA合成酶生成琥珀酰CoA,并通过三羧酸循环中的琥珀酸-草酰乙酸片段通过极低的通量。我们证实结核分枝杆菌可以将二氧化碳中的碳固定到生物质中。由于人类宿主体内的二氧化碳含量很高,因此这一发现需要在体内进行进一步研究,因为二氧化碳的固定可能会提供新药可能针对的脆弱点。该研究还为进一步研究 13 C-MFA对结核分枝杆菌的代谢提供了平台。

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