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大肠杆菌中卷曲纤维表达翻译后调控双稳态的逻辑连续建模

Logical-continuous modelling of post-translationally regulated bistability of curli fiber expression in Escherichia coli.

作者信息

Yousef Kaveh Pouran, Streck Adam, Schütte Christof, Siebert Heike, Hengge Regine, von Kleist Max

机构信息

Department of Mathematics and Computer Science, Freie Universität Berlin, Arnimallee 6, Berlin, 14195, Germany.

Faculty of Biology/Microbiology, Humboldt Universität zu Berlin, Chausseestraße 117, Berlin, 10115, Germany.

出版信息

BMC Syst Biol. 2015 Jul 23;9:39. doi: 10.1186/s12918-015-0183-x.

Abstract

BACKGROUND

Bacteria have developed a repertoire of signalling mechanisms that enable adaptive responses to fluctuating environmental conditions. The formation of biofilm, for example, allows persisting in times of external stresses, e.g. induced by antibiotics or a lack of nutrients. Adhesive curli fibers, the major extracellular matrix components in Escherichia coli biofilms, exhibit heterogeneous expression in isogenic cells exposed to identical external conditions. The dynamical mechanisms underlying this heterogeneity remain poorly understood. In this work, we elucidate the potential role of post-translational bistability as a source for this heterogeneity.

RESULTS

We introduce a structured modelling workflow combining logical network topology analysis with time-continuous deterministic and stochastic modelling. The aim is to evaluate the topological structure of the underlying signalling network and to identify and analyse model parameterisations that satisfy observations from a set of genetic knockout experiments. Our work supports the hypothesis that the phenotypic heterogeneity of curli expression in biofilm cells is induced by bistable regulation at the post-translational level. Stochastic modelling suggests diverse noise-induced switching behaviours between the stable states, depending on the expression levels of the c-di-GMP-producing (diguanylate cyclases, DGCs) and -degrading (phosphodiesterases, PDEs) enzymes and reveals the quantitative difference in stable c-di-GMP levels between distinct phenotypes. The most dominant type of behaviour is characterised by a fast switching from curli-off to curli-on with a slow switching in the reverse direction and the second most dominant type is a long-term differentiation into curli-on or curli-off cells. This behaviour may implicate an intrinsic feature of the system allowing for a fast adaptive response (curli-on) versus a slow transition to the curli-off state, in line with experimental observations.

CONCLUSION

The combination of logical and continuous modelling enables a thorough analysis of different determinants of bistable regulation, i.e. network topology and biochemical kinetics, and allows for an incorporation of experimental data from heterogeneous sources. Our approach yields a mechanistic explanation for the phenotypic heterogeneity of curli fiber expression. Furthermore, the presented work provides a detailed insight into the interactions between the multiple DGC- and PDE-type enzymes and the role of c-di-GMP in dynamical regulation of cellular decisions.

摘要

背景

细菌已形成一系列信号传导机制,使其能够对不断变化的环境条件做出适应性反应。例如,生物膜的形成使得细菌能够在外部压力时期持续存在,例如由抗生素或营养缺乏引起的压力。粘附性卷曲纤维是大肠杆菌生物膜中的主要细胞外基质成分,在暴露于相同外部条件的同基因细胞中表现出异质性表达。这种异质性背后的动力学机制仍知之甚少。在这项工作中,我们阐明了翻译后双稳态作为这种异质性来源的潜在作用。

结果

我们引入了一种结构化建模工作流程,将逻辑网络拓扑分析与时间连续确定性和随机建模相结合。目的是评估潜在信号网络的拓扑结构,并识别和分析满足一组基因敲除实验观察结果的模型参数化。我们的工作支持这样一种假设,即生物膜细胞中卷曲蛋白表达的表型异质性是由翻译后水平的双稳态调节引起的。随机建模表明,根据产生环二鸟苷酸(二鸟苷酸环化酶,DGCs)和降解环二鸟苷酸(磷酸二酯酶,PDEs)的酶的表达水平,稳定状态之间存在多种噪声诱导的切换行为,并揭示了不同表型之间稳定的环二鸟苷酸水平的定量差异。最主要的行为类型的特征是从卷曲蛋白关闭快速切换到卷曲蛋白开启,而反向切换缓慢,第二主要的行为类型是长期分化为卷曲蛋白开启或卷曲蛋白关闭的细胞。这种行为可能暗示了该系统的一个内在特征,即允许快速适应性反应(卷曲蛋白开启),而向卷曲蛋白关闭状态的转变则较为缓慢,这与实验观察结果一致。

结论

逻辑建模和连续建模的结合能够对双稳态调节的不同决定因素进行全面分析,即网络拓扑和生化动力学,并允许纳入来自异质来源的实验数据。我们的方法为卷曲纤维表达的表型异质性提供了一种机制解释。此外,所展示的工作详细深入地了解了多种DGC型和PDE型酶之间的相互作用以及环二鸟苷酸在细胞决策动态调节中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6834/4511525/f5ce9bcf2282/12918_2015_183_Fig1_HTML.jpg

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