Cakir Tunahan, Kirdar Betül, Ulgen Kutlu O
Department of Chemical Engineering, Boğaziçi University, 34342 Bebek-Istanbul, Turkey.
Biotechnol Bioeng. 2004 May 5;86(3):251-60. doi: 10.1002/bit.20020.
Central carbon metabolism of the yeast Saccharomyces cerevisiae was analyzed using metabolic pathway analysis tools. Elementary flux modes for three substrates (glucose, galactose, and ethanol) were determined using the catabolic reactions occurring in yeast. Resultant elementary modes were used for gene deletion phenotype analysis and for the analysis of robustness of the central metabolism and network functionality. Control-effective fluxes, determined by calculating the efficiency of each mode, were used for the prediction of transcript ratios of metabolic genes in different growth media (glucose-ethanol and galactose-ethanol). A high correlation was obtained between the theoretical and experimental expression levels of 38 genes when ethanol and glucose media were considered. Such analysis was shown to be a bridge between transcriptomics and fluxomics. Control-effective flux distribution was found to be promising in in silico predictions by incorporating functionality and regulation into the metabolic network structure.
利用代谢途径分析工具对酿酒酵母的中心碳代谢进行了分析。使用酵母中发生的分解代谢反应确定了三种底物(葡萄糖、半乳糖和乙醇)的基本通量模式。所得的基本模式用于基因缺失表型分析以及中心代谢和网络功能的稳健性分析。通过计算每种模式的效率确定的控制有效通量用于预测不同生长培养基(葡萄糖 - 乙醇和半乳糖 - 乙醇)中代谢基因的转录本比率。当考虑乙醇和葡萄糖培养基时,38个基因的理论表达水平与实验表达水平之间获得了高度相关性。这种分析被证明是转录组学和通量组学之间的一座桥梁。通过将功能和调控纳入代谢网络结构,发现控制有效通量分布在计算机模拟预测中很有前景。