Quantification of Intracellular Metabolic Fluxes from Fractional Enrichment and 13C-13C Coupling Constraints on the Isotopomer Distribution in Labeled Biomass Components
metabolic flux analysis;
2D NMR spectroscopy;
isotopomer modeling;
isotopomer mapping matrices;
Monte Carlo simulation;
PCA;
Aspergillus niger;
D O I:
10.1006/mben.1999.0114
中图分类号:
Q81 [生物工程学(生物技术)];
Q93 [微生物学];
学科分类号:
071005 ;
0836 ;
090102 ;
100705 ;
摘要:
A method for the quantification of intracellular metabolic flux distributions from steady-state mass balance constraints and from the constraints posed by the measured C-13 labeling state of biomass components is presented. Two-dimensional NMR spectroscopy is used to analyze the labeling state of cell protein hydrolysate and cell wall components. No separation of the biomass hydrolysate is required to measure the degree of C-13-C-13 coupling and the fractional C-13 enrichment in various carbon atom positions. A mixture of [1-C-13]glucose and uniformly labeled [C-13(6)]glucose is applied to make fractional C-13 enrichment data and measurements of the degree of C-13-C-13 coupling informative with respect to the intracellular flux distribution. Simulation models that calculate the complete isotopomer distribution in biomass components on the basis of isotopomer mapping matrices are used for the estimation of intracellular fluxes by least-squares minimization. The statistical quality of the estimated intracellular flux distributions is assessed by Monte Carlo methods. Principal component analysis is performed on the outcome of the Monte Carlo procedure to identify groups of fluxes that contribute major parts to the total variance in the multiple flux estimations. The methods described are applied to a steady-state culture of a glucoamylase-producing recombinant Aspergillus niger strain. (C) 1999 Academic Press