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Modelling emergence of oscillations in communicating bacteria: a structured approach from one to many cells

机译:模拟传播细菌中振荡的出现:从一个到多个细胞的结构化方法

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摘要

Population-level measurements of phenotypic behaviour in biological systems may not necessarily reflect individual cell behaviour. To assess qualitative changes in the behaviour of a single cell, when alone and when part of a community, we developed an agent-based model describing the metabolic states of a population of quorum-coupled cells. The modelling is motivated by published experimental work of a synthetic genetic regulatory network (GRN) used in Escherichia coli cells that exhibit oscillatory behaviour across the population. To decipher the mechanisms underlying oscillations in the system, we investigate the behaviour of the model via numerical simulation and bifurcation analysis. In particular, we study the effect of an increase in population size as well as the spatio-temporal behaviour of the model. Our results demonstrate that oscillations are possible only in the presence of a high concentration of the coupling chemical and are due to a time scale separation in key regulatory components of the system. The model suggests that the population establishes oscillatory behaviour as the system's preferred stable state. This is achieved via an effective increase in coupling across the population. We conclude that population effects in GRN design need to be taken into consideration and be part of the design process. This is important in planning intervention strategies or designing specific cell behaviours.
机译:生物系统中表型行为的群体水平测量可能不一定反映单个细胞的行为。为了评估单个细胞行为的质变,无论是单独存在还是社区的一部分,我们开发了一种基于代理的模型来描述群体耦合细胞群体的代谢状态。该建模是受合成遗传调控网络(GRN)的已发表实验工作的启发,该合成遗传调控网络用于在整个群体中表现出振荡行为的大肠杆菌细胞中。为了破译系统中振荡的机理,我们通过数值模拟和分叉分析研究了模型的行为。特别是,我们研究了人口规模增加的影响以及模型的时空行为。我们的结果表明,只有在高浓度的偶联剂存在下,振荡才可能发生,这是由于系统关键调节组件中的时间刻度分离所致。该模型表明,总体将振荡行为确定为系统的首选稳定状态。这是通过有效增加整个人口的耦合来实现的。我们得出结论,需要考虑GRN设计中的种群效应,并将其纳入设计过程。这对于计划干预策略或设计特定的细胞行为很重要。

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