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Multiobjective Flux Balancing Using the NISE Method for Metabolic Network Analysis

机译:使用NISE方法进行代谢网络分析的多目标通量平衡

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Flux balance analysis (FBA) is well acknowledged as an analysis tool of metabolic networks in the framework of metabolic engineering. However,FBA has a limitation for solving a multiobjective optimization problem which considers multiple conflicting objectives. In this study,we propose a novel multiobjective flux balance analysis method,which adapts the noninferior set estimation (NISE) method (Solanki et al.,1993) for multiobjective linear programming (MOLP) problems. NISE method can generate an approximation of the Pareto curve for conflicting objectives without redundant iterations of single objective optimization. Furthermore,the flux distributions at each Pareto optimal solution can be obtained for understanding the internal flux changes in the metabolic network. The functionality of this approach is shown by applying it to a genome-scale in silico model of E. coli. Multiple objectives for the poly(3-hydroxybutyrate) [P(3HB)] production are considered simultaneously,and relationships among them are identified. The Pareto curve for maximizing succinic acid production vs. maximizing biomass production is used for the in silico analysis of various combinatorial knockout strains. This proposed method accelerates the strain improvement in the metabolic engineering by reducing computation time of obtaining the Pareto curve and analysis time of flux distribution at each Pareto optimal solution.
机译:通量平衡分析(FBA)是在代谢工程框架内公认的代谢网络分析工具。但是,FBA对于解决考虑多个冲突目标的多目标优化问题具有局限性。在这项研究中,我们提出了一种新颖的多目标通量平衡分析方法,该方法将非劣集估计(NISE)方法(Solanki et al。,1993)应用于多目标线性规划(MOLP)问题。 NISE方法可以为冲突的目标生成帕累托曲线的近似值,而无需重复进行单个目标优化。此外,可以获取每个帕累托最优解的通量分布,以了解代谢网络中的内部通量变化。通过将该方法应用于大肠杆菌的基因组规模的计算机模型,可以显示该方法的功能。同时考虑了生产聚(3-羟基丁酸酯)[P(3HB)]的多个目标,并确定了它们之间的关系。用于最大化琥珀酸产量相对于最大生物量产量的帕累托曲线用于各种组合敲除菌株的计算机分析。通过减少获得帕累托曲线的计算时间和每个帕累托最优解的通量分布分析时间,该方法可以加快代谢工程中的应变改善。

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