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Identification of gene knockout strategies using a hybrid of an ant colony optimization algorithm and flux balance analysis to optimize microbial strains

机译:利用蚁群优化算法和通量平衡分析的混合体确定基因敲除策略,以优化微生物菌株

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摘要

Reconstructions of genome-scale metabolic networks from different organisms have become popular in recent years. Metabolic engineering can simulate the reconstruction process to obtain desirable phenotypes. In previous studies, optimization algorithms have been implemented to identify the near-optimal sets of knockout genes for improving metabolite production. However, previous works contained premature convergence and the stop criteria were not clear for each case. Therefore, this study proposes an algorithm that is a hybrid of the ant colony optimization algorithm and flux balance analysis (ACOFBA) to predict near optimal sets of gene knockouts in an effort to maximize growth rates and the production of certain metabolites. Here, we present a case study that uses Baker's yeast, also known as Saccharomyces cerevisiae, as the model organism and target the rate of vanillin production for optimization. The results of this study are the growth rate of the model organism after gene deletion and a list of knockout genes. The ACOFBA algorithm was found to improve the yield of vanillin in terms of growth rate and production compared with the previous algorithms.
机译:近年来,来自不同生物体的基因组规模代谢网络的重建已变得很流行。代谢工程可以模拟重建过程以获得所需的表型。在先前的研究中,已经实施了优化算法来识别基因敲除基因的近最佳集合,以改善代谢产物的产生。但是,先前的工作包含过早的收敛,并且每种情况下的停止标准尚不明确。因此,本研究提出了一种结合了蚁群优化算法和通量平衡分析(ACOFBA)的算法,以预测基因敲除的接近最佳集合,以最大程度地提高生长速度和某些代谢产物的产生。在这里,我们提供了一个案例研究,该案例使用贝克酵母(也称为酿酒酵母)作为模型生物,并以香兰素的生产速度为目标进行优化。这项研究的结果是基因缺失后模型生物的生长速率和敲除基因列表。与以前的算法相比,发现ACOFBA算法可以提高香兰素的产率和产量。

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