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CONSTRICTOR: Constraint Modification Provides Insight into Design of Biochemical Networks

机译:构造函数:约束修改可深入了解生化网络的设计

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摘要

Advances in computational methods that allow for exploration of the combinatorial mutation space are needed to realize the potential of synthetic biology based strain engineering efforts. Here, we present Constrictor, a computational framework that uses flux balance analysis (FBA) to analyze inhibitory effects of genetic mutations on the performance of biochemical networks. Constrictor identifies engineering interventions by classifying the reactions in the metabolic model depending on the extent to which their flux must be decreased to achieve the overproduction target. The optimal inhibition of various reaction pathways is determined by restricting the flux through targeted reactions below the steady state levels of a baseline strain. Constrictor generates unique in silico strains, each representing an “expression state”, or a combination of gene expression levels required to achieve the overproduction target. The Constrictor framework is demonstrated by studying overproduction of ethylene in Escherichia coli network models iAF1260 and iJO1366 through the addition of the heterologous ethylene-forming enzyme from Pseudomonas syringae. Targeting individual reactions as well as combinations of reactions reveals in silico mutants that are predicted to have as high as 25% greater theoretical ethylene yields than the baseline strain during simulated exponential growth. Altering the degree of restriction reveals a large distribution of ethylene yields, while analysis of the expression states that return lower yields provides insight into system bottlenecks. Finally, we demonstrate the ability of Constrictor to scan networks and provide targets for a range of possible products. Constrictor is an adaptable technique that can be used to generate and analyze disparate populations of in silico mutants, select gene expression levels and provide non-intuitive strategies for metabolic engineering.
机译:需要实现允许探索组合突变空间的计算方法的进步,以实现基于合成生物学的应变工程技术的潜力。在这里,我们介绍了Constrictor,一个使用流量平衡分析(FBA)来分析遗传突变对生化网络性能的抑制作用的计算框架。 Constrictor通过根据代谢通量必须降低的程度来实现过量生产的目标,通过对代谢模型中的反应进行分类来识别工程干预。通过将目标反应的通量限制在基线菌株的稳态水平以下,可以确定对各种反应途径的最佳抑制。 Constrictor生成独特的计算机菌株,每个菌株都代表“表达状态”,或达到超量生产目标所需的基因表达水平的组合。通过研究大肠杆菌网络模型iAF1260和iJO1366中乙烯的过量生产(通过添加丁香假单胞菌的异源乙烯形成酶),证明了Constrictor框架。靶向单个反应以及反应组合揭示了计算机模拟突变体,预测其在模拟指数生长期间的理论乙烯产率比基线菌株高25%。改变限制程度揭示了乙烯收率的较大分布,而对返回较低收率的表达状态的分析提供了对系统瓶颈的了解。最后,我们展示了Constrictor扫描网络并为一系列可能产品提供目标的能力。 Constrictor是一种适应性技术,可用于生成和分析计算机突变体的不同群体,选择基因表达水平并为代谢工程提供非直观的策略。

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