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A hybrid cybernetic modeling for the growth of Escherichia coli in glucose-pyruvate mixtures.

机译:大肠杆菌在葡萄糖丙酮酸盐混合物中生长的混合控制论模型。

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Flux balance analysis in combination with the decomposition of metabolic networks into elementary modes has provided a route to modeling cellular metabolism. It is dependent, however, on the availability of external fluxes such as substrate uptake or growth rates before estimates of intracellular fluxes become available. The framework classically does not allow modeling of metabolic regulation or the formulation of dynamic models except through dynamic measurement of external fluxes. The cybernetic modeling approach of Ramkrishna and coworkers provides a dynamic framework for modeling metabolic systems because of its focus on describing regulatory processes based on cybernetic arguments which have the capacity to describe both external and internal fluxes.;The approach presented in this thesis uses the decomposition of network into elementary modes with cybernetic control on the selective combination of elementary modes so that global objectives such as the maximization of carbon uptake or growth rate are met. The hybrid cybernetic model in this thesis uses pseudo-steady state balances for each mode which greatly simplify the computational effort required for the analysis of these models. The main objective of this thesis is to report on the performance of hybrid cybernetic models in predicting bioprocess performance in batch and continuous reactors and evaluating the effect of regulatory processes on reactor behavior. The preliminary simulations of the hybrid cybernetic models with the simplified network and the reduced network have successfully shown the same performances of those models.;Based on preliminary observations, the hybrid cybernetic model for the anaerobic growth of E. coli in glucose-pyruvate mixtures is validated by batch experiments. The anaerobic batch cultures in glucose-pyruvate mixtures showed the preculturing effects as simulated by the previous cybernetic model. The identified hybrid cybernetic model has shown the steady state multiplicity of continuous reactor in glucose-pyruvate mixtures, confirmed experimentally at dilution rates 0.308 and 0.318 h-1. Also, the hybrid cybernetic model of the more detailed metabolic network presents oscillatory behavior of continuous bioreactor in glucose-only media under the dilution rate of 0.03 h-1.
机译:通量平衡分析与将代谢网络分解为基本模式相结合,为建模细胞代谢提供了一条途径。然而,这取决于胞内通量的估计值可用之前,外部通量的可用性,例如底物摄取或生长速率。该框架通常不允许对代谢调节进行建模或建立动态模型,除非通过外部流量的动态测量。 Ramkrishna及其同事的控制论建模方法为代谢系统建模提供了一个动态框架,因为它着重于描述基于控制论论证的调节过程,该过程能够描述外部和内部通量。本文采用的方法是分解通过对基本模式的选择性组合进行控制论的控制,将网络转换为基本模式,从而实现全球目标,例如最大程度地吸收碳或提高增长率。本文的混合控制论模型对每种模式使用伪稳态平衡,这大大简化了分析这些模型所需的计算工作。本论文的主要目的是报告混合控制论模型在分批和连续反应器中的生物过程性能预测中的性能,并评估调节过程对反应器行为的影响。具有简化网络和简化网络的混合控制论模型的初步模拟已成功显示了这些模型的相同性能。基于初步观察,用于葡萄糖-丙酮酸混合物中大肠杆菌厌氧生长的混合控制论模型为通过批处理实验验证。葡萄糖-丙酮酸盐混合物中的厌氧分批培养显示了以前的控制论模型所模拟的预培养效果。鉴定出的混合控制论模型显示了葡萄糖-丙酮酸盐混合物中连续反应器的稳态多重性,在稀释率0.308和0.318 h-1的实验条件下得到了证实。同样,更详细的代谢网络的混合控制论模型还显示了连续生物反应器在纯葡萄糖培养基中以0.03 h-1的稀释率振荡的行为。

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