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Identifying Minimal Genomes and Essential Genes in Metabolic Model Using Flux Balance Analysis

机译:使用通量平衡分析识别代谢模型中的最小基因组和必需基因

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With the advancement in metabolic engineering technologies, reconstruction the genome of a host organism to achieve desired phenotypes for example, to optimize the production of metabolites can be made. However, due to the complexity and size of the genome scale metabolic network, significant components tend to be invisible. This research utilizes Flux Balance Analysis (FBA) to search the essential genes and obtain minimal functional genome. Different from traditional approaches, we identify essential genes by using single gene deletions and then we identify the significant pathway for the metabolite production using gene expression data. The experiment is conducted using genome scale metabolic model of Saccharomyces Cerevisiae for L-phenylalanine production. The result has shown the reliability of this approach to find essential genes for metabolites productions, reduce genome size and identify production pathway that can further optimize the production yield and can be applied in solving other genetic engineering problems.
机译:随着代谢工程技术的进步,可以进行宿主生物的基因组重建,以实现所需的表型,例如,优化代谢产物的产生。然而,由于基因组规模的代谢网络的复杂性和大小,重要的成分往往是不可见的。这项研究利用通量平衡分析(FBA)搜索必需基因并获得最少的功能基因组。与传统方法不同,我们通过使用单个基因缺失来鉴定必需基因,然后使用基因表达数据来鉴定产生代谢产物的重要途径。使用酿酒酵母的基因组规模代谢模型进行L-苯丙氨酸生产实验。结果表明,该方法可可靠地找到代谢产物的基本基因,减小基因组的大小,并确定可进一步优化生产产量并可用于解决其他基因工程问题的生产途径。

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