Metabolic engineering of lactic acid bacteria, the combined approach: kinetic modelling, metabolic control and experimental analysis

被引:145
作者
Hoefnagel, MHN
Starrenburg, MJC
Martens, DE
Hugenholtz, J
Kleerebezem, M
Van Swam, II
Bongers, R
Westerhoff, HV
Snoep, JL
机构
[1] Univ Wageningen & Res Ctr, Wageningen Ctr Food Sci, NL-6700 EV Wageningen, Netherlands
[2] Univ Wageningen & Res Ctr, Food & Bioproc Engn Grp, NL-6700 EV Wageningen, Netherlands
[3] NIZO Food Res, NL-6710 BA Ede, Netherlands
[4] Free Univ Amsterdam, Bioctr Amsterdam, Dept Mol Cell Physiol, NL-1081 HV Amsterdam, Netherlands
[5] Univ Stellenbosch, Dept Biochem, ZA-7602 Stellenbosch, South Africa
来源
MICROBIOLOGY-SGM | 2002年 / 148卷
关键词
metabolic control analysis; in silico modelling; Lactococcus lactis; pyruvate distribution;
D O I
10.1099/00221287-148-4-1003
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Everyone who has ever tried to radically change metabolic fluxes knows that it is often harder to determine which enzymes have to be modified than it is to actually implement these changes. In the more traditional genetic engineering approaches 'bottle-necks' are pinpointed using qualitative, intuitive approaches, but the alleviation of suspected 'rate-limiting' steps has not often been successful. Here the authors demonstrate that a model of pyruvate distribution in Lactococcus lactis based on enzyme kinetics in combination with metabolic control analysis clearly indicates the key control points in the flux to acetoin and diacetyl, important flavour compounds. The model presented here (available at http://jjj.biochem.sun.ac.za/wcfs.html) showed that the enzymes with the greatest effect on this flux resided outside the acetolactate synthase branch itself. Experiments confirmed the predictions of the model, i.e. knocking out lactate dehydrogenase and overexpressing NADH oxidase increased the flux through the acetolactate synthase branch from 0 to 75% of measured product formation rates.
引用
收藏
页码:1003 / 1013
页数:11
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