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古菌中控制代谢灵活性的转录网络的保守原则。

Conserved principles of transcriptional networks controlling metabolic flexibility in archaea.

作者信息

Schmid Amy K

机构信息

Department of Biology, Duke University, Durham, NC 27708, U.S.A.

Center for Genomics and Computational Biology, Duke University, Durham, NC 27708, U.S.A.

出版信息

Emerg Top Life Sci. 2018 Dec 14;2(4):659-669. doi: 10.1042/ETLS20180036.

Abstract

Gene regulation is intimately connected with metabolism, enabling the appropriate timing and tuning of biochemical pathways to substrate availability. In microorganisms, such as archaea and bacteria, transcription factors (TFs) often directly sense external cues such as nutrient substrates, metabolic intermediates, or redox status to regulate gene expression. Intense recent interest has characterized the functions of a large number of such regulatory TFs in archaea, which regulate a diverse array of unique archaeal metabolic capabilities. However, it remains unclear how the co-ordinated activity of the interconnected metabolic and transcription networks produces the dynamic flexibility so frequently observed in archaeal cells as they respond to energy limitation and intermittent substrate availability. In this review, we communicate the current state of the art regarding these archaeal networks and their dynamic properties. We compare the topology of these archaeal networks to those known for bacteria to highlight conserved and unique aspects. We present a new computational model for an exemplar archaeal network, aiming to lay the groundwork toward understanding general principles that unify the dynamic function of integrated metabolic-transcription networks across archaea and bacteria.

摘要

基因调控与新陈代谢密切相关,能够根据底物可用性对生化途径进行适时且适当的调节。在古菌和细菌等微生物中,转录因子(TFs)常常直接感知外部信号,如营养底物、代谢中间产物或氧化还原状态,以调控基因表达。近期的大量研究聚焦于古菌中众多此类调控转录因子的功能,这些转录因子调控着古菌多样独特的代谢能力。然而,目前仍不清楚相互关联的代谢网络和转录网络的协同活动是如何产生古菌细胞在应对能量限制和间歇性底物可用性时频繁展现出的动态灵活性的。在本综述中,我们阐述了关于这些古菌网络及其动态特性的当前研究进展。我们将这些古菌网络的拓扑结构与已知的细菌网络拓扑结构进行比较,以突出保守和独特的方面。我们提出了一个典型古菌网络的新计算模型,旨在为理解统一古菌和细菌中综合代谢 - 转录网络动态功能的一般原理奠定基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c96/7289023/6fb9ad63c949/ETLS-2-659-g0001.jpg

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