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首页> 外文期刊>Biotechnology Progress >Exacting Predictions by Cybernetic Model Confirmed Experimentally: Steady State Multiplicity in the Chemostat
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Exacting Predictions by Cybernetic Model Confirmed Experimentally: Steady State Multiplicity in the Chemostat

机译:通过控制论模型确定的精确预测已通过实验得到证实:化学恒温器中的稳态多重性

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摘要

We demonstrate strong experimental support for the cybernetic model based on maximizing carbon uptake rate in describing the microorganism's regulatory behavior by verifying exacting predictions of steady state multiplicity in a chemostat. Experiments with a feed mixture of glucose and pyruvate show multiple steady state behavior as predicted by the cybernetic model. When multiplicity occurs at a dilution (growth) rate, it results in hysteretic behavior following switches in dilution rate from above and below. This phenomenon is caused by transient paths leading to different steady states through dynamic maximization of the carbon uptake rate. Thus steady state multiplicity is a manifestation of the nonlinearity arising from cybernetic mechanisms rather than of the nonlinear kinetics. The predicted metabolic multiplicity would extend to intracellular states such as enzyme levels and fluxes to be verified in future experiments.
机译:我们通过验证化学恒化器中稳态多重性的精确预测来描述基于微生物的调节行为的最大碳吸收率,从而证明了对控制论模型的强大实验支持。葡萄糖和丙酮酸的进料混合物的实验显示了控制论模型所预测的多种稳态行为。当以稀释(生长)速率发生多重性时,随着上下稀释比例的改变,其将导致磁滞行为。这种现象是由于瞬态路径通过动态最大化碳吸收率导致不同的稳态而引起的。因此,稳态多重性是控制论机制引起的非线性的体现,而不是非线性动力学的体现。预测的代谢多样性将扩展到细胞内状态,例如酶水平和通量,将在以后的实验中进行验证。

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