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迈向体内调控子动力学:乳酸乳球菌嘌呤耗竭期间5-磷酸核糖-α-1-焦磷酸对PurR的激活作用

Towards in vivo regulon kinetics: PurR activation by 5-phosphoribosyl-α-1-pyrophosphate during purine depletion in Lactococcus lactis.

作者信息

Jendresen Christian Bille, Dimitrov Peter, Gautier Laurent, Liu Meng, Martinussen Jan, Kilstrup Mogens

机构信息

Metabolic Signaling and Regulation Group, DTU Systems Biology, Technical University of Denmark, Kgs. Lyngby DK-2800, Denmark.

出版信息

Microbiology (Reading). 2014 Jul;160(Pt 7):1321-1331. doi: 10.1099/mic.0.077933-0. Epub 2014 Apr 10.

Abstract

Short-term adaptation to changing environments relies on regulatory elements translating shifting metabolite concentrations into a specifically optimized transcriptome. So far the focus of analyses has been divided between regulatory elements identified in vivo and kinetic studies of small molecules interacting with the regulatory elements in vitro. Here we describe how in vivo regulon kinetics can describe a regulon through the effects of the metabolite controlling it, exemplified by temporal purine exhaustion in Lactococcus lactis. We deduced a causal relation between the pathway precursor 5-phosphoribosyl-α-1-pyrophosphate (PRPP) and individual mRNA levels, whereby unambiguous and homogeneous relations could be obtained for PurR regulated genes, thus linking a specific regulon to a specific metabolite. As PurR activates gene expression upon binding of PRPP, the pur mRNA curves reflect the in vivo kinetics of PurR PRPP binding and activation. The method singled out the xpt-pbuX operon as kinetically distinct, which was found to be caused by a guanine riboswitch whose regulation was overlaying the PurR regulation. Importantly, genes could be clustered according to regulatory mechanism and long-term consequences could be distinguished from transient changes--many of which would not be seen in a long-term adaptation to a new environment. The strategy outlined here can be adapted to analyse the individual effects of members from larger metabolomes in virtually any organism, for elucidating regulatory networks in vivo.

摘要

对不断变化的环境的短期适应依赖于调控元件,这些元件将不断变化的代谢物浓度转化为经过特定优化的转录组。到目前为止,分析的重点一直分散在体内鉴定出的调控元件和体外小分子与调控元件相互作用的动力学研究之间。在此,我们描述了体内调控子动力学如何通过控制它的代谢物的作用来描述一个调控子,以乳酸乳球菌中嘌呤的暂时耗尽为例。我们推断出途径前体5-磷酸核糖-α-1-焦磷酸(PRPP)与个体mRNA水平之间的因果关系,由此可以获得PurR调控基因明确且一致的关系,从而将特定的调控子与特定的代谢物联系起来。由于PurR在结合PRPP时激活基因表达,pur mRNA曲线反映了PurR-PRPP结合和激活的体内动力学。该方法挑选出动力学上不同的xpt-pbuX操纵子,发现这是由一个鸟嘌呤核糖开关引起的,其调控叠加在PurR调控之上。重要的是,基因可以根据调控机制进行聚类,长期后果可以与瞬时变化区分开来——其中许多变化在对新环境的长期适应中是看不到的。这里概述的策略可以适用于分析几乎任何生物体中更大代谢组中成员的个体效应,以阐明体内的调控网络。

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