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PMID: 10951190 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Can yeast glycolysis be understood in terms of in vitro kinetics of the constituent enzymes? Testing biochemistry.

European journal of biochemistry ·Vol. 267 ·No. 17 ·2000-09-00 ·Pages 5313-29

Teusink B, Passarge J, Reijenga CA, Esgalhado E, van der Weijden CC, Schepper M, Walsh MC, Bakker BM, van Dam K, Westerhoff HV, Snoep JL

Abstract

This paper examines whether the in vivo behavior of yeast glycolysis can be understood in terms of the in vitro kinetic properties of the constituent enzymes. In nongrowing, anaerobic, compressed Saccharomyces cerevisiae the values of the kinetic parameters of most glycolytic enzymes were determined. For the other enzymes appropriate literature values were collected. By inserting these values into a kinetic model for glycolysis, fluxes and metabolites were calculated. Under the same conditions fluxes and metabolite levels were measured. In our first model, branch reactions were ignored. This model failed to reach the stable steady state that was observed in the experimental flux measurements. Introduction of branches towards trehalose, glycogen, glycerol and succinate did allow such a steady state. The predictions of this branched model were compared with the empirical behavior. Half of the enzymes matched their predicted flux in vivo within a factor of 2. For the other enzymes it was calculated what deviation between in vivo and in vitro kinetic characteristics could explain the discrepancy between in vitro rate and in vivo flux.

MeSH Terms
Enzymes/metabolism Glycolysis Kinetics Models, Biological Saccharomyces cerevisiae/enzymology
Chemicals
Enzymes
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
Teusink B
E.C. Slater Institute, BioCentrum Amsterdam, University of Amsterdam, the Netherlands.
Passarge J
Reijenga C A
Esgalhado E
van der Weijden C C
Schepper M
Walsh M C
Bakker B M
van Dam K
Westerhoff H V
Snoep J L
Article Info
Journal
European journal of biochemistry
Abbr.
Eur J Biochem
ISSN
0014-2956
Published
2000-09-00
Pages
5313-29
Language
English
Region
England
NLM ID
0107600
Subset
IM
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