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大规模 13C 通量分析揭示了大肠杆菌呼吸和发酵代谢的转录控制明显不同。

Large-scale 13C-flux analysis reveals distinct transcriptional control of respiratory and fermentative metabolism in Escherichia coli.

机构信息

Institute of Molecular Systems Biology, ETH Zurich, Zurich, Switzerland.

出版信息

Mol Syst Biol. 2011 Mar 29;7:477. doi: 10.1038/msb.2011.9.

Abstract

Despite our increasing topological knowledge on regulation networks in model bacteria, it is largely unknown which of the many co-occurring regulatory events actually control metabolic function and the distribution of intracellular fluxes. Here, we unravel condition-dependent transcriptional control of Escherichia coli metabolism by large-scale (13)C-flux analysis in 91 transcriptional regulator mutants on glucose and galactose. In contrast to the canonical respiro-fermentative glucose metabolism, fully respiratory galactose metabolism depends exclusively on the phosphoenol-pyruvate (PEP)-glyoxylate cycle. While 2/3 of the regulators directly or indirectly affected absolute flux rates, the partitioning between different pathways remained largely stable with transcriptional control focusing primarily on the acetyl-CoA branch point. Flux distribution control was achieved by nine transcription factors on glucose, including ArcA, Fur, PdhR, IHF A and IHF B, but was exclusively mediated by the cAMP-dependent Crp regulation of the PEP-glyoxylate cycle flux on galactose. Five further transcription factors affected this flux only indirectly through cAMP and Crp by increasing the galactose uptake rate. Thus, E. coli actively limits its galactose catabolism at the expense of otherwise possible faster growth.

摘要

尽管我们对模式细菌调控网络的拓扑学知识不断增加,但仍不清楚许多同时发生的调控事件中,哪些实际上控制着代谢功能和细胞内通量的分布。在这里,我们通过对 91 种转录调控因子突变体在葡萄糖和半乳糖上的大规模 (13)C 通量分析,揭示了大肠杆菌代谢的条件依赖性转录调控。与经典的需氧发酵型葡萄糖代谢不同,完全需氧的半乳糖代谢仅依赖于磷酸烯醇丙酮酸(PEP)-乙醛酸循环。虽然 2/3 的调控因子直接或间接地影响绝对通量速率,但不同途径之间的分配仍然相对稳定,转录调控主要集中在乙酰辅酶 A 分支点上。在葡萄糖上,有九个转录因子(ArcA、Fur、PdhR、IHF A 和 IHF B)对通量分配进行控制,但在半乳糖上,仅由 cAMP 依赖性 Crp 调节 PEP-乙醛酸循环通量来进行转录调控。另外五个转录因子仅通过增加半乳糖摄取率,通过 cAMP 和 Crp 间接地影响该通量。因此,大肠杆菌积极地牺牲了其他可能更快的生长速度,限制了其对半乳糖的分解代谢。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b56/3094070/a9d144850cb7/msb20119-f1.jpg

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