Pereira Rui, Nielsen Jens, Rocha Isabel
CEB-Centre of Biological Engineering, University of Minho, Campus de Gualtar, Braga 4710-057, Portugal.
Department of Biology and Biological Engineering, Chalmers University of Technology, SE 412 96 Gothenburg, Sweden.
Metab Eng Commun. 2016 May 13;3:153-163. doi: 10.1016/j.meteno.2016.05.002. eCollection 2016 Dec.
Genome-scale metabolic models (GEMs) can be used to evaluate genotype-phenotype relationships and their application to microbial strain engineering is increasing in popularity. Some of the algorithms used to simulate the phenotypes of mutant strains require the determination of a wild-type flux distribution. However, the accuracy of this reference, when calculated with flux balance analysis, has not been studied in detail before. Here, the wild-type simulations of selected GEMs for have been analysed and most of the models tested predicted erroneous fluxes in central pathways, especially in the pentose phosphate pathway. Since the problematic fluxes were mostly related to areas of the metabolism consuming or producing NADPH/NADH, we have manually curated all reactions including these cofactors by forcing the use of NADPH/NADP in anabolic reactions and NADH/NAD for catabolic reactions. The curated models predicted more accurate flux distributions and performed better in the simulation of mutant phenotypes.
基因组规模代谢模型(GEMs)可用于评估基因型与表型的关系,其在微生物菌株工程中的应用越来越受到欢迎。一些用于模拟突变菌株表型的算法需要确定野生型通量分布。然而,此前尚未详细研究过通过通量平衡分析计算得到的该参考值的准确性。在此,我们分析了所选GEMs对[具体内容缺失]的野生型模拟,测试的大多数模型预测中心途径中的通量存在错误,尤其是在磷酸戊糖途径中。由于有问题的通量大多与消耗或产生NADPH/NADH的代谢区域相关,我们通过强制在合成代谢反应中使用NADPH/NADP以及在分解代谢反应中使用NADH/NAD,人工整理了所有包含这些辅因子的反应。经过整理的模型预测了更准确的通量分布,并且在突变体表型模拟中表现更好。