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Emergent Subpopulation Behavior Uncovered with a Community Dynamic Metabolic Model of Escherichia coli Diauxic Growth

机译:大肠杆菌亚营养生长的社区动态代谢模型揭示了亚种群的行为。

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Microbes have adapted to greatly variable environments in order to survive both short-term perturbations and permanent changes. A classical and yet still actively studied example of adaptation to dynamic environments is the diauxic shift of Escherichia coli , in which cells grow on glucose until its exhaustion and then transition to using previously secreted acetate. Here we tested different hypotheses concerning the nature of this transition by using dynamic metabolic modeling. To reach this goal, we developed an open source modeling framework integrating dynamic models (ordinary differential equation systems) with structural models (metabolic networks) which can take into account the behavior of multiple subpopulations and smooth flux transitions between time points. We used this framework to model the diauxic shift, first with a single E. coli model whose metabolic state represents the overall population average and then with a community of two subpopulations, each growing exclusively on one carbon source (glucose or acetate). After introduction of an environment-dependent transition function that determined the balance between subpopulations, our model generated predictions that are in strong agreement with published data. Our results thus support recent experimental evidence that diauxie, rather than a coordinated metabolic shift, would be the emergent pattern of individual cells differentiating for optimal growth on different substrates. This work offers a new perspective on the use of dynamic metabolic modeling to investigate population heterogeneity dynamics. The proposed approach can easily be applied to other biological systems composed of metabolically distinct, interconverting subpopulations and could be extended to include single-cell-level stochasticity. IMPORTANCE Escherichia coli diauxie is a fundamental example of metabolic adaptation, a phenomenon that is not yet completely understood. Further insight into this process can be achieved by integrating experimental and computational modeling methods. We present a dynamic metabolic modeling approach that captures diauxie as an emergent property of subpopulation dynamics in E. coli monocultures. Without fine-tuning the parameters of the E. coli core metabolic model, we achieved good agreement with published data. Our results suggest that single-organism metabolic models can only approximate the average metabolic state of a population, therefore offering a new perspective on the use of such modeling approaches. The open source modeling framework that we provide can be applied to model general subpopulation systems in more-complex environments and can be extended to include single-cell-level stochasticity.
机译:为了适应短期的干扰和永久的变化,微生物已经适应了变化很大的环境。适应动态环境的经典但仍在积极研究的例子是大肠埃希氏菌的双峰转移,其中细胞依靠葡萄糖生长直至耗尽,然后过渡到使用以前分泌的乙酸盐。在这里,我们通过使用动态代谢建模测试了有关此过渡性质的不同假设。为了实现此目标,我们开发了一个开放源代码建模框架,该框架将动态模型(普通微分方程组)与结构模型(代谢网络)集成在一起,可以考虑多个子种群的行为以及时间点之间的平滑通量转换。我们使用此框架来模拟双峰迁移,首先使用一个单一的大肠杆菌模型(其代谢状态代表总体总体平均值),然后使用两个亚种群组成的群落,每个亚种群仅在一种碳源(葡萄糖或乙酸盐)上生长。在引入确定了亚种群之间平衡的依赖于环境的过渡函数后,我们的模型生成的预测与已发布的数据非常一致。因此,我们的结果支持了最近的实验证据,即双生,而不是协调的代谢变化,将是单个细胞的分化模式,以在不同底物上实现最佳生长。这项工作为使用动态代谢模型研究种群异质性动力学提供了新的视角。所提出的方法可以很容易地应用于由代谢不同的,相互转换的亚群组成的其他生物系统,并且可以扩展到包括单细胞水平的随机性。重要信息大肠杆菌双性是代谢适应的一个基本例子,这种现象尚未完全被理解。通过集成实验和计算建模方法,可以进一步了解此过程。我们提出了一种动态代谢建模方法,该方法捕获diauxie作为大肠杆菌单培养物中亚种群动态的新兴属性。在不微调大肠杆菌核心代谢模型参数的情况下,我们与已发表的数据取得了很好的一致性。我们的研究结果表明,单生物代谢模型只能近似于人群的平均代谢状态,因此为使用这种建模方法提供了新的视角。我们提供的开源建模框架可以应用于在更复杂的环境中对通用子种群系统进行建模,并且可以扩展为包括单细胞级别的随机性。

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