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量化通量平衡分析中参数不确定性的传播。

Quantifying the propagation of parametric uncertainty on flux balance analysis.

机构信息

Department of Chemical Engineering, Pennsylvania State University, University Park, PA, USA; Center for Advanced Bioenergy and Bioproducts Innovation, The Pennsylvania State University, University Park, PA, 16802, USA.

Department of Chemical Engineering, Pennsylvania State University, University Park, PA, USA.

出版信息

Metab Eng. 2022 Jan;69:26-39. doi: 10.1016/j.ymben.2021.10.012. Epub 2021 Oct 27.

DOI:10.1016/j.ymben.2021.10.012
PMID:34718140
Abstract

Flux balance analysis (FBA) and associated techniques operating on stoichiometric genome-scale metabolic models play a central role in quantifying metabolic flows and constraining feasible phenotypes. At the heart of these methods lie two important assumptions: (i) the biomass precursors and energy requirements neither change in response to growth conditions nor environmental/genetic perturbations, and (ii) metabolite production and consumption rates are equal at all times (i.e., steady-state). Despite the stringency of these two assumptions, FBA has been shown to be surprisingly robust at predicting cellular phenotypes. In this paper, we formally assess the impact of these two assumptions on FBA results by quantifying how uncertainty in biomass reaction coefficients, and departures from steady-state due to temporal fluctuations could propagate to FBA results. In the first case, conditional sampling of parameter space is required to re-weigh the biomass reaction so as the molecular weight remains equal to 1 g mmol, and in the second case, metabolite (and elemental) pool conservation must be imposed under temporally varying conditions. Results confirm the importance of enforcing the aforementioned constraints and explain the robustness of FBA biomass yield predictions.

摘要

通量平衡分析 (FBA) 和相关技术在基于代谢物平衡的基因组规模代谢模型上发挥着重要作用,用于量化代谢流并约束可行的表型。这些方法的核心有两个重要假设:(i) 生物量前体和能量需求既不会响应生长条件变化,也不会响应环境/遗传扰动变化,以及 (ii) 代谢物的产生和消耗速率在任何时候都相等(即稳态)。尽管这两个假设非常严格,但 FBA 已被证明在预测细胞表型方面具有惊人的鲁棒性。在本文中,我们通过量化生物量反应系数的不确定性以及由于时间波动而偏离稳态如何传播到 FBA 结果,正式评估了这两个假设对 FBA 结果的影响。在第一种情况下,需要对参数空间进行条件抽样,以便重新权衡生物量反应,从而使分子量保持在 1 g mmol ,在第二种情况下,必须在时间变化的条件下施加代谢物(和元素)池守恒。结果证实了实施上述约束的重要性,并解释了 FBA 生物质产量预测的鲁棒性。

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