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The post-transcriptional regulatory system CSR controls the balance of metabolic pools in upper glycolysis of Escherichia coli

机译:转录后调控系统CSR控制大肠杆菌上端糖酵解过程中代谢池的平衡

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Metabolic control in Escherichia coli is a complex process involving multilevel regulatory systems but the involvement of post-transcriptional regulation is uncertain. The post-transcriptional factor CsrA is stated as being the only regulator essential for the use of glycolytic substrates. A dozen enzymes in the central carbon metabolism (CCM) have been reported as potentially controlled by CsrA, but its impact on the CCM functioning has not been demonstrated. Here, a multiscale analysis was performed in a wildtype strain and its isogenic mutant attenuated for CsrA (including growth parameters, gene expression levels, metabolite pools, abundance of enzymes and fluxes). Data integration and regulation analysis showed a coordinated control of the expression of glycolytic enzymes. This also revealed the imbalance of metabolite pools in the csrA mutant upper glycolysis, before the phosphofructokinase PfkA step. This imbalance is associated with a glucose-phosphate stress. Restoring PfkA activity in the csrA mutant strain suppressed this stress and increased the mutant growth rate on glucose. Thus, the carbon storage regulator system is essential for the effective functioning of the upper glycolysis mainly through its control of PfkA. This work demonstrates the pivotal role of post-transcriptional regulation to shape the carbon metabolism.
机译:大肠杆菌中的代谢控制是一个复杂的过程,涉及多级调控系统,但转录后调控的参与尚不确定。转录后因子CsrA被认为是使用糖酵解底物必不可少的唯一调节剂。据报道,中央碳代谢(CCM)中有十二种酶可能受CsrA控制,但尚未证明其对CCM功能的影响。在这里,在野生型菌株中进行了多尺度分析,其同基因突变体的CsrA(包括生长参数,基因表达水平,代谢产物库,酶和通量的丰度)减弱了。数据整合和调控分析显示了对糖酵解酶表达的协调控制。这也揭示了在磷酸果糖激酶PfkA步骤之前,csrA突变体上部糖酵解中代谢物池的失衡。这种失衡与葡萄糖-磷酸应激有关。恢复csrA突变菌株中的PfkA活性可以抑制这种压力并提高葡萄糖的突变体生长速率。因此,碳存储调节系统对于主要通过其对PfkA的控制对上部糖酵解的有效功能至关重要。这项工作证明了转录后调控对碳代谢的关键作用。

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