Tarlak Fatih, Sadıkoğlu Hasan, Çakır Tunahan
Department of Bioengineering, Gebze Institute of Technology, 41400 Kocaeli, Turkey.
Mol Biosyst. 2014 Jul 29;10(9):2459-65. doi: 10.1039/c4mb00117f.
Prediction of intracellular metabolic fluxes based on optimal biomass assumption is a well-known computational approach. While there has been a significant emphasis on the optimality, cellular flexibility, the co-occurrence of suboptimal flux distributions in a microbial population, has hardly been considered in the related computational methods. We have implemented a flexibility-incorporated optimization framework to calculate intracellular fluxes based on a few extracellular measurement constraints. Taking into account slightly suboptimal flux distributions together with a dual-optimality framework (maximization of the growth rate followed by the minimization of the total enzyme amount) we were able to show the positive effect of incorporating flexibility and minimal enzyme consumption on the better prediction of intracellular fluxes of central carbon metabolism of two microorganisms: E. coli and S. cerevisiae.
基于最优生物量假设预测细胞内代谢通量是一种广为人知的计算方法。虽然一直非常强调最优性,但细胞灵活性,即微生物群体中次优通量分布的共存情况,在相关计算方法中却几乎未被考虑。我们实施了一个纳入灵活性的优化框架,以基于一些细胞外测量约束来计算细胞内通量。考虑到略微次优的通量分布以及双最优框架(先最大化生长速率,再最小化总酶量),我们能够证明纳入灵活性和最小化酶消耗对更好地预测两种微生物(大肠杆菌和酿酒酵母)中心碳代谢的细胞内通量具有积极作用。