Fundamental Escherichia coli biochemical pathways for biomass and energy production:: Creation of overall flux states

被引:67
作者
Carlson, R [1 ]
Srienc, F [1 ]
机构
[1] Univ Minnesota, Dept Chem Engn & Mat Sci, Gortner Lab 240, St Paul, MN 55108 USA
关键词
elementary mode analysis; metabolism; biochemical pathway; metabolic flux state; maintenance metabolism;
D O I
10.1002/bit.20044
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
We have previously shown that the metabolism for most efficient cell growth can be realized by a combination of two types of elementary modes. One mode produces biomass while the second mode generates only energy. The identity of the four most efficient biomass and energy pathway pairs changes, depending on the degree of oxygen limitation. The identification of such pathway pairs for different growth conditions offers a pathway-based explanation of maintenance energy generation. For a given growth rate, experimental aerobic glucose consumption rates can be used to estimate the contribution of each pathway type to the overall metabolic flux pattern. All metabolic fluxes are then completely determined by the stoichiometries of involved pathways defining all nutrient consumption and metabolite secretion rates. We present here equations that permit computation of network fluxes on the basis of unique pathways for the case of optimal, glucose-limited Escherichia coli growth under varying levels of oxygen stress. Predicted glucose and oxygen uptake rates and some metabolite secretion rates are in remarkable agreement with experimental observations supporting the validity of the presented approach. The entire most efficient, steady-state, metabolic rate structure is explicitly defined by the developed equations without need for additional computer simulations. The approach should be generally useful for analyzing and interpreting genomic data by predicting concise, pathway-based metabolic rate structures. (C) 2004 Wiley Periodicals, Inc.
引用
收藏
页码:149 / 162
页数:14
相关论文
共 64 条
[51]   Reaction routes in biochemical reaction systems: Algebraic properties, validated calculation procedure and example from nucleotide metabolism [J].
Schuster, S ;
Hilgetag, C ;
Woods, JH ;
Fell, DA .
JOURNAL OF MATHEMATICAL BIOLOGY, 2002, 45 (02) :153-181
[52]  
SCHUSTER S, 1994, MOD TR BIOTHERMOKIN, V3, P103
[53]   Analysis of optimality in natural and perturbed metabolic networks [J].
Segrè, D ;
Vitkup, D ;
Church, GM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (23) :15112-15117
[54]   THE GROWTH OF ESCHERICHIA-COLI IN GLUCOSE-LIMITED CHEMOSTAT CULTURES - A REEXAMINATION OF THE KINETICS [J].
SENN, H ;
LENDENMANN, U ;
SNOZZI, M ;
HAMER, G ;
EGLI, T .
BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS, 1994, 1201 (03) :424-436
[55]   DIFFERENCES IN SENSITIVITY TO NADH OF PURIFIED PYRUVATE-DEHYDROGENASE COMPLEXES OF ENTEROCOCCUS-FAECALIS, LACTOCOCCUS-LACTIS, AZOTOBACTER-VINELANDII AND ESCHERICHIA-COLI - IMPLICATIONS FOR THEIR ACTIVITY IN-VIVO [J].
SNOEP, JL ;
DEGRAEF, MR ;
WESTPHAL, AH ;
DEKOK, A ;
DEMATTOS, MJT ;
NEIJSSEL, OM .
FEMS MICROBIOLOGY LETTERS, 1993, 114 (03) :279-283
[56]   Metabolic network structure determines key aspects of functionality and regulation [J].
Stelling, J ;
Klamt, S ;
Bettenbrock, K ;
Schuster, S ;
Gilles, ED .
NATURE, 2002, 420 (6912) :190-193
[57]  
Stephanopoulos G.N., 1998, METABOLIC ENG PRINCI
[58]  
TAYLOR NB, 2003, J BIOL CHEM, P271
[59]  
Tempest DW, 1987, ESCHERICHIA COLI SAL, P797
[60]   STOICHIOMETRIC INTERPRETATION OF ESCHERICHIA-COLI GLUCOSE CATABOLISM UNDER VARIOUS OXYGENATION RATES [J].
VARMA, A ;
BOESCH, BW ;
PALSSON, BO .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1993, 59 (08) :2465-2473