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PMID: 17587457 Published · epublish English Journal Article

Study on roles of anaplerotic pathways in glutamate overproduction of Corynebacterium glutamicum by metabolic flux analysis.

Microbial cell factories ·Vol. 6 ·2007-06-23 ·Pages 19

Shirai T, Fujimura K, Furusawa C, Nagahisa K, Shioya S, Shimizu H

Abstract

Corynebacterium glutamicum has several anaplerotic pathways (anaplerosis), which are essential for the productions of amino acids, such as lysine and glutamate. It is still not clear how flux changes in anaplerotic pathways happen when glutamate production is induced by triggers, such as biotin depletion and the addition of the detergent material, Tween 40. In this study, we quantitatively analyzed which anaplerotic pathway flux most markedly changes the glutamate overproduction induced by Tween 40 addition. We performed a metabolic flux analysis (MFA) with [1-13C]- and [U-13C]-labeled glucose in the glutamate production phase of C. glutamicum, based on the analysis of the time courses of 13C incorporation into proteinogenic amino acids by gas chromatography-mass spectrometry (GC-MS). The flux from phosphoenolpyruvate (PEP) to oxaloacetate (Oxa) catalyzed by phosphoenolpyruvate carboxylase (PEPc) was active in the growth phase not producing glutamate, whereas that from pyruvate to Oxa catalyzed by pyruvate carboxylase (Pc) was inactive. In the glutamate overproduction phase induced by the addition of the detergent material Tween 40, the reaction catalyzed by Pc also became active in addition to the reaction catalyzed by PEPc. It was clarified by a quantitative 13C MFA that the reaction catalyzed by Pc is most markedly increased, whereas other fluxes of PEPc and PEPck remain constant in the glutamate overproduction induced by Tween 40. This result is consistent with the previous results obtained in a comparative study on the glutamate productions of genetically recombinant Pc- and PEPc-overexpressing strains. The importance of a specific reaction in an anaplerotic pathway was elucidated at a metabolic level by MFA.

Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Shirai Tomokazu
Department of Biotechnology, Graduate School of Engineering, Osaka University, Japan. [email protected]
Fujimura Koki
Furusawa Chikara
Nagahisa Keisuke
Shioya Suteaki
Shimizu Hiroshi
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Article Info
Journal
Microbial cell factories
Abbr.
Microb Cell Fact
ISSN
1475-2859
Published
2007-06-23
Epub
2007-00-23
Pages
19
Language
English
Region
England
NLM ID
101139812
PMCID
PMC1919393
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