Department of Biotechnology, Delft University of Technology, Julianalaan BC Delft, The Netherlands.
Biotechnol Bioeng. 2010 Oct 1;107(2):369-81. doi: 10.1002/bit.22802.
Metabolic network models describing growth of Escherichia coli on glucose, glycerol and acetate were derived from a genome scale model of E. coli. One of the uncertainties in the metabolic networks is the exact stoichiometry of energy generating and consuming processes. Accurate estimation of biomass and product yields requires correct information on the ATP stoichiometry. The unknown ATP stoichiometry parameters of the constructed E. coli network were estimated from experimental data of eight different aerobic chemostat experiments carried out with E. coli MG1655, grown at different dilution rates (0.025, 0.05, 0.1, and 0.3 h(-1)) and on different carbon substrates (glucose, glycerol, and acetate). Proper estimation of the ATP stoichiometry requires proper information on the biomass composition of the organism as well as accurate assessment of net conversion rates under well-defined conditions. For this purpose a growth rate dependent biomass composition was derived, based on measurements and literature data. After incorporation of the growth rate dependent biomass composition in a metabolic network model, an effective P/O ratio of 1.49 +/- 0.26 mol of ATP/mol of O, K(X) (growth dependent maintenance) of 0.46 +/- 0.27 mol of ATP/C-mol of biomass and m(ATP) (growth independent maintenance) of 0.075 +/- 0.015 mol of ATP/C-mol of biomass/h were estimated using a newly developed Comprehensive Data Reconciliation (CDR) method, assuming that the three energetic parameters were independent of the growth rate and the used substrate. The resulting metabolic network model only requires the specific rate of growth, micro, as an input in order to accurately predict all other fluxes and yields.
从大肠杆菌的基因组规模模型中推导出了描述大肠杆菌在葡萄糖、甘油和乙酸上生长的代谢网络模型。代谢网络中的一个不确定性因素是能量产生和消耗过程的确切化学计量。准确估计生物量和产物产率需要正确的 ATP 化学计量信息。从在不同稀释率(0.025、0.05、0.1 和 0.3 h(-1)) 和不同碳底物(葡萄糖、甘油和乙酸)下生长的大肠杆菌 MG1655 进行的八项不同好氧恒化器实验的实验数据中,估计了构建的大肠杆菌网络中未知的 ATP 化学计量参数。正确估计 ATP 化学计量需要正确的生物体生物量组成信息,以及在明确定义的条件下准确评估净转化率。为此,基于测量值和文献数据,推导出了与生长速率相关的生物量组成。在将与生长速率相关的生物量组成纳入代谢网络模型后,使用新开发的综合数据协调(CDR)方法,在假设三个能量参数独立于生长速率和使用的底物的情况下,估计出有效 P/O 比为 1.49 +/- 0.26 mol 的 ATP/mol 的 O、K(X)(生长相关维持)为 0.46 +/- 0.27 mol 的 ATP/C-生物量和 m(ATP)(生长独立维持)为 0.075 +/- 0.015 mol 的 ATP/C-生物量/h。由此产生的代谢网络模型仅需要比生长速率,即微,作为输入,以便准确预测所有其他通量和产率。