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FOCuS:一种用于从基因组规模模型计算基因敲除以进行菌株优化的元启发式算法。

FOCuS: a metaheuristic algorithm for computing knockouts from genome-scale models for strain optimization.

作者信息

Mutturi Sarma

机构信息

Department of Microbiology and Fermentation Technology, CSIR - Central Food Technological Research Institute, Mysuru 570 020, Karnataka, India.

出版信息

Mol Biosyst. 2017 Jun 27;13(7):1355-1363. doi: 10.1039/c7mb00204a.

Abstract

Although handful tools are available for constraint-based flux analysis to generate knockout strains, most of these are either based on bilevel-MIP or its modifications. However, metaheuristic approaches that are known for their flexibility and scalability have been less studied. Moreover, in the existing tools, sectioning of search space to find optimal knocks has not been considered. Herein, a novel computational procedure, termed as FOCuS (Flower-pOllination coupled Clonal Selection algorithm), was developed to find the optimal reaction knockouts from a metabolic network to maximize the production of specific metabolites. FOCuS derives its benefits from nature-inspired flower pollination algorithm and artificial immune system-inspired clonal selection algorithm to converge to an optimal solution. To evaluate the performance of FOCuS, reported results obtained from both MIP and other metaheuristic-based tools were compared in selected case studies. The results demonstrated the robustness of FOCuS irrespective of the size of metabolic network and number of knockouts. Moreover, sectioning of search space coupled with pooling of priority reactions based on their contribution to objective function for generating smaller search space significantly reduced the computational time.

摘要

虽然有一些工具可用于基于约束的通量分析以生成基因敲除菌株,但其中大多数要么基于双层混合整数规划(bilevel-MIP)及其改进方法。然而,以灵活性和可扩展性著称的元启发式方法却较少得到研究。此外,在现有工具中,尚未考虑对搜索空间进行划分以找到最优敲除。在此,开发了一种名为FOCuS(花授粉耦合克隆选择算法)的新型计算程序,用于从代谢网络中找到最优反应敲除以最大化特定代谢物的产量。FOCuS受益于受自然启发的花授粉算法和受人工免疫系统启发的克隆选择算法,以收敛到最优解。为了评估FOCuS的性能,在选定的案例研究中比较了从MIP和其他基于元启发式的工具获得的报告结果。结果表明,无论代谢网络的规模和敲除的数量如何,FOCuS都具有稳健性。此外,基于反应对目标函数的贡献对搜索空间进行划分并汇集优先级反应以生成更小的搜索空间,显著减少了计算时间。

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