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PMID: 16176270 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Revisiting the 13C-label distribution of the non-oxidative branch of the pentose phosphate pathway based upon kinetic and genetic evidence.

The FEBS journal ·Vol. 272 ·No. 19 ·2005-10-00 ·Pages 4970-82

Kleijn RJ, van Winden WA, van Gulik WM, Heijnen JJ

Abstract

The currently applied reaction structure in stoichiometric flux balance models for the nonoxidative branch of the pentose phosphate pathway is not in accordance with the established ping-pong kinetic mechanism of the enzymes transketolase (EC 2.2.1.1) and transaldolase (EC 2.2.1.2). Based upon the ping-pong mechanism, the traditional reactions of the nonoxidative branch of the pentose phosphate pathway are replaced by metabolite specific, reversible, glycolaldehyde moiety (C(2)) and dihydroxyacetone moiety (C(3)) fragments producing and consuming half-reactions. It is shown that a stoichiometric model based upon these half-reactions is fundamentally different from the currently applied stoichiometric models with respect to the number of independent C(2) and C(3) fragment pools in the pentose phosphate pathway and can lead to different label distributions for (13)C-tracer experiments. To investigate the actual impact of the new reaction structure on the estimated flux patterns within a cell, mass isotopomer measurements from a previously published (13)C-based metabolic flux analysis of Saccharomyces cerevisiae were used. Different flux patterns were found. From a genetic point of view, it is well known that several micro-organisms, including Escherichia coli and S. cerevisiae, contain multiple genes encoding isoenzymes of transketolase and transaldolase. However, the extent to which these gene products are also actively expressed remains unknown. It is shown that the newly proposed stoichiometric model allows study of the effect of isoenzymes on the (13)C-label distribution in the nonoxidative branch of the pentose phosphate pathway by extending the half-reaction based stoichiometric model with two distinct transketolase enzymes instead of one. Results show that the inclusion of isoenzymes affects the ensuing flux estimates.

MeSH Terms
Carbon Isotopes Kinetics Models, Biological Oxidation-Reduction Pentose Phosphate Pathway/genetics Saccharomyces cerevisiae/genetics,metabolism
Chemicals
Carbon Isotopes
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Kleijn Roelco J
Department of Biotechnology, Delft University of Technology, the Netherlands. [email protected]
van Winden Wouter A
van Gulik Walter M
Heijnen Joseph J
Article Info
Journal
The FEBS journal
Abbr.
FEBS J
ISSN
1742-464X
Published
2005-10-00
Pages
4970-82
Language
English
Region
England
NLM ID
101229646
Subset
IM
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