Enjalbert Brice, Letisse Fabien, Portais Jean-Charles
Université de Toulouse; INSA, UPS, INP, 135 Avenue de Rangueil, Toulouse F-31077, France.
Metabolites. 2013 Sep 20;3(3):820-37. doi: 10.3390/metabo3030820.
The glucose-acetate transition in Escherichia coli is a classical model of metabolic adaptation. Here, we describe the dynamics of the molecular processes involved in this metabolic transition, with a particular focus on glucose exhaustion. Although changes in the metabolome were observed before glucose exhaustion, our results point to a massive reshuffling at both the transcriptome and metabolome levels in the very first min following glucose exhaustion. A new transcriptional pattern, involving a change in genome expression in one-sixth of the E. coli genome, was established within 10 min and remained stable until the acetate was completely consumed. Changes in the metabolome took longer and stabilized 40 min after glucose exhaustion. Integration of multi-omics data revealed different modifications and timescales between the transcriptome and metabolome, but both point to a rapid adaptation of less than an hour. This work provides detailed information on the order, timing and extent of the molecular and physiological events that occur during the glucose-acetate transition and that are of particular interest for the development of dynamic models of metabolism.
大肠杆菌中的葡萄糖 - 乙酸转变是代谢适应的经典模型。在此,我们描述了参与这种代谢转变的分子过程的动态变化,特别关注葡萄糖耗尽的情况。尽管在葡萄糖耗尽之前就观察到了代谢组的变化,但我们的结果表明,在葡萄糖耗尽后的最初几分钟内,转录组和代谢组水平都发生了大规模的重新洗牌。一种新的转录模式,涉及大肠杆菌基因组六分之一的基因表达变化,在10分钟内建立并保持稳定,直到乙酸完全消耗。代谢组的变化持续时间更长,在葡萄糖耗尽后40分钟稳定下来。多组学数据的整合揭示了转录组和代谢组之间不同的修饰和时间尺度,但两者都表明在不到一小时的时间内发生了快速适应。这项工作提供了有关葡萄糖 - 乙酸转变过程中发生的分子和生理事件的顺序、时间和程度的详细信息,这些信息对于代谢动态模型的开发尤为重要。