Abstract
The nature of the control of glycolytic flux is one of the central, as-yet-uncharacterized issues in cellular metabolism. We developed a molecular genetic tool that specifically induces ATP hydrolysis in living cells without interfering with other aspects of metabolism. Genes encoding the F(1) part of the membrane-bound (F(1)F(0)) H(+)-ATP synthase were expressed in steadily growing Escherichia coli cells, which lowered the intracellular [ATP]/[ADP] ratio. This resulted in a strong stimulation of the specific glycolytic flux concomitant with a smaller decrease in the growth rate of the cells. By optimizing additional ATP hydrolysis, we increased the flux through glycolysis to 1.7 times that of the wild-type flux. The results demonstrate why attempts in the past to increase the glycolytic flux through overexpression of glycolytic enzymes have been unsuccessful: the majority of flux control (>75%) resides not inside but outside the pathway, i.e., with the enzymes that hydrolyze ATP. These data further allowed us to answer the question of whether catabolic or anabolic reactions control the growth of E. coli. We show that the majority of the control of growth rate resides in the anabolic reactions, i.e., the cells are mostly "carbon" limited. Ways to increase the efficiency and productivity of industrial fermentation processes are discussed.
MeSH Terms
Adenosine Triphosphate/metabolism
Escherichia coli/genetics,metabolism
Glycolysis
Promoter Regions, Genetic
Proton-Translocating ATPases/metabolism
Chemicals
Adenosine Triphosphate
Proton-Translocating ATPases
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Koebmann Brian J
Section of Molecular Microbiology, BioCentrum-DTU, Technical University of Denmark, Lyngby, Denmark.
Westerhoff Hans V
Snoep Jacky L
Nilsson Dan
Jensen Peter R
References (24)
24 references, click to expand
-
Twofold reduction of phosphofructokinase activity in Lactococcus lactis results in strong decreases in growth rate and in glycolytic flux.
J Bacteriol. 2001 Jun;183(11):3458-67
PMID: 11344154
-
A control analysis exploration of the role of ATP utilisation in glycolytic-flux control and glycolytic-metabolite-concentration regulation.
Eur J Biochem. 1998 Dec 15;258(3):956-67
PMID: 9990313
-
A linear steady-state treatment of enzymatic chains. General properties, control and effector strength.
Eur J Biochem. 1974 Feb 15;42(1):89-95
PMID: 4830198
-
Culture medium for enterobacteria.
J Bacteriol. 1974 Sep;119(3):736-47
PMID: 4604283
-
The regulatory principles of glycolysis in erythrocytes in vivo and in vitro. A minimal comprehensive model describing steady states, quasi-steady states and time-dependent processes.
Biochem J. 1976 Feb 15;154(2):449-69
PMID: 132930
-
Reconstitution of thermostable ATPase capable of energy coupling from its purified subunits.
Proc Natl Acad Sci U S A. 1977 Mar;74(3):936-40
PMID: 139610
-
Reconstitution of ATPase activity from the isolated alpha, beta, and gamma subunits of the coupling factor, F1, of Escherichia coli.
Biochem Biophys Res Commun. 1977 Dec 21;79(4):1231-7
PMID: 146491
-
Reconstitution of a functional coupling factor from the isolated subunits of Escherichia coli F1 ATPase.
J Biol Chem. 1980 Jan 10;255(1):113-8
PMID: 6444218
-
Analysis of gene control signals by DNA fusion and cloning in Escherichia coli.
J Mol Biol. 1980 Apr;138(2):179-207
PMID: 6997493
-
Properties and functions of the subunits of the Escherichia coli coupling factor ATPase.
Arch Biochem Biophys. 1981 Sep;210(2):421-36
PMID: 6171195
-
Comparison of F1's of oxidative phosphorylation from Escherichia coli and Salmonella typhimurium and demonstration of interchangeability of their subunits.
Biochemistry. 1984 Feb 28;23(5):988-93
PMID: 6231953
-
Overproduction of glycolytic enzymes in yeast.
Yeast. 1989 Jul-Aug;5(4):285-90
PMID: 2528863
-
The proton-translocating ATPase of Escherichia coli.
Annu Rev Biophys Biophys Chem. 1990;19:7-41
PMID: 2141983
-
Control of glucose metabolism by enzyme IIGlc of the phosphoenolpyruvate-dependent phosphotransferase system in Escherichia coli.
J Bacteriol. 1991 Oct;173(19):6184-91
PMID: 1917852
-
Carbon and energy metabolism of atp mutants of Escherichia coli.
J Bacteriol. 1992 Dec;174(23):7635-41
PMID: 1447134
-
The use of lac-type promoters in control analysis.
Eur J Biochem. 1993 Jan 15;211(1-2):181-91
PMID: 8425528
-
Regulating the cellular economy of supply and demand.
FEBS Lett. 2000 Jun 30;476(1-2):47-51
PMID: 10878248
-
Control analysis of the dependence of Escherichia coli physiology on the H(+)-ATPase.
Proc Natl Acad Sci U S A. 1993 Sep 1;90(17):8068-72
PMID: 8367465
-
Control of glucose metabolism by the enzymes of the glucose phosphotransferase system in Salmonella typhimurium.
Eur J Biochem. 1995 May 15;230(1):170-82
PMID: 7601098
-
Cloning and partial characterization of regulated promoters from Lactococcus lactis Tn917-lacZ integrants with the new promoter probe vector, pAK80.
Appl Environ Microbiol. 1995 Jul;61(7):2540-7
PMID: 7618865
-
Experimental determination of control by the H(+)-ATPase in Escherichia coli.
J Bioenerg Biomembr. 1995 Dec;27(6):543-54
PMID: 8746842
-
The sequence of spacers between the consensus sequences modulates the strength of prokaryotic promoters.
Appl Environ Microbiol. 1998 Jan;64(1):82-7
PMID: 9435063
-
atp Mutants of Escherichia coli fail to grow on succinate due to a transport deficiency.
J Bacteriol. 1998 Nov;180(22):5855-9
PMID: 9811641
-
The control of flux.
Symp Soc Exp Biol. 1973;27:65-104
PMID: 4148886