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Flux Balance Analysis of Plant Metabolism: The Effect of Biomass Composition and Model Structure on Model Predictions

机译:植物代谢通量平衡分析:生物量组成和模型结构对模型预测的影响

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摘要

The biomass composition represented in constraint-based metabolic models is a key component for predicting cellular metabolism using flux balance analysis (FBA). Despite major advances in analytical technologies, it is often challenging to obtain a detailed composition of all major biomass components experimentally. Studies examining the influence of the biomass composition on the predictions of metabolic models have so far mostly been done on models of microorganisms. Little is known about the impact of varying biomass composition on flux prediction in FBA models of plants, whose metabolism is very versatile and complex because of the presence of multiple subcellular compartments. Also, the published metabolic models of plants differ in size and complexity. In this study, we examined the sensitivity of the predicted fluxes of plant metabolic models to biomass composition and model structure. These questions were addressed by evaluating the sensitivity of predictions of growth rates and central carbon metabolic fluxes to varying biomass compositions in three different genome-/large-scale metabolic models of Arabidopsis thaliana. Our results showed that fluxes through the central carbon metabolism were robust to changes in biomass composition. Nevertheless, comparisons between the predictions from three models using identical modeling constraints and objective function showed that model predictions were sensitive to the structure of the models, highlighting large discrepancies between the published models.
机译:基于约束的代谢模型中表示的生物量组成是使用流量平衡分析(FBA)预测细胞代谢的关键组成部分。尽管分析技术取得了重大进展,但要通过实验获得所有主要生物质成分的详细组成通常是一项挑战。迄今为止,检查生物量组成对代谢模型预测的影响的研究大部分是针对微生物模型进行的。关于FBA植物模型中变化的生物量组成对通量预测的影响知之甚少,由于存在多个亚细胞区室,其代谢非常通用且复杂。同样,已发表的植物代谢模型在大小和复杂性上也不同。在这项研究中,我们检查了植物代谢模型预测通量对生物量组成和模型结构的敏感性。通过评估拟南芥的三种不同基因组/大规模代谢模型中生长速率和中心碳代谢通量对变化的生物量组成的敏感性来解决这些问题。我们的结果表明,通过中央碳代谢的通量对生物量组成的变化具有鲁棒性。但是,使用相同的建模约束条件和目标函数对三个模型的预测进行的比较表明,模型预测对模型的结构敏感,突出显示了已发布模型之间的巨大差异。

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