Literature DB >> 15770511

Effect of carbon sources differing in oxidation state and transport route on succinate production in metabolically engineered Escherichia coli.

Henry Lin1, George N Bennett, Ka-Yiu San.   

Abstract

In mixed-acid fermentation, succinate synthesis requires one mole of phosphoenolpyruvate (PEP), one mole of CO2, and two moles of NADH for every mole of succinate to be formed. Different carbon sources with different properties were used to address these requirements. Sorbitol generates one more mole of NADH than glucose. Fermentation of sorbitol was shown in this study (and by others) to produce significantly more succinate than fermentation of glucose, due to increased NADH availability. Xylose fermentation conserves the intracellular PEP pool, since its transport does not require the phosphotransferase system normally used for glucose transport. The extra PEP can then be assimilated in the succinate pathway to improve production. In this study, fermentation of xylose did yield higher succinate production than glucose fermentation. Subsequent inactivation of the acetate and lactate pathways was performed to study metabolite redistribution and the effect on succinate production. With the acetate pathway inactivated, significant carbon flux shifted toward lactate rather than succinate. When both acetate and lactate pathways were inactivated, succinate yield ultimately increased with a concomitant increase in ethanol yield.

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Year:  2005        PMID: 15770511     DOI: 10.1007/s10295-005-0206-5

Source DB:  PubMed          Journal:  J Ind Microbiol Biotechnol        ISSN: 1367-5435            Impact factor:   3.346


  18 in total

1.  Evolution of the enzymatic characteristics of C4 phosphoenolpyruvate carboxylase--a comparison of the orthologous PPCA phosphoenolpyruvate carboxylases of Flaveria trinervia (C4) and Flaveria pringlei (C3).

Authors:  P Svensson; O E Bläsing; P Westhoff
Journal:  Eur J Biochem       Date:  1997-06-01

2.  Enhanced production of succinic acid by overexpression of phosphoenolpyruvate carboxylase in Escherichia coli.

Authors:  C S Millard; Y P Chao; J C Liao; M I Donnelly
Journal:  Appl Environ Microbiol       Date:  1996-05       Impact factor: 4.792

3.  Identification, characterization and sequence analysis of the gene encoding phosphoenolpyruvate carboxylase in Anabaena sp. PCC 7120.

Authors:  I Luinenburg; J R Coleman
Journal:  J Gen Microbiol       Date:  1992-04

4.  Metabolic engineering through cofactor manipulation and its effects on metabolic flux redistribution in Escherichia coli.

Authors:  Ka-Yiu San; George N Bennett; Susana J Berríos-Rivera; Ravi V Vadali; Yea-Tyng Yang; Emily Horton; Fred B Rudolph; Berna Sariyar; Kimathi Blackwood
Journal:  Metab Eng       Date:  2002-04       Impact factor: 9.783

5.  Mutation of the ptsG gene results in increased production of succinate in fermentation of glucose by Escherichia coli.

Authors:  R Chatterjee; C S Millard; K Champion; D P Clark; M I Donnelly
Journal:  Appl Environ Microbiol       Date:  2001-01       Impact factor: 4.792

6.  Site-directed mutagenesis of phosphoenolpyruvate carboxylase from E. coli: the role of His579 in the catalytic and regulatory functions.

Authors:  K Terada; T Murata; K Izui
Journal:  J Biochem       Date:  1991-01       Impact factor: 3.387

7.  Microbial synthesis of 3-dehydroshikimic acid: a comparative analysis of D-xylose, L-arabinose, and D-glucose carbon sources.

Authors:  K Li; J W Frost
Journal:  Biotechnol Prog       Date:  1999 Sep-Oct

8.  Bioconversion of fumaric acid to succinic acid by recombinant E. coli.

Authors:  X Wang; C S Gong; G T Tsao
Journal:  Appl Biochem Biotechnol       Date:  1998       Impact factor: 2.926

9.  Cloning and sequence analysis of the gene for phosphoenolpyruvate carboxylase from an extreme thermophile, Thermus sp.

Authors:  T Nakamura; I Yoshioka; M Takahashi; H Toh; K Izui
Journal:  J Biochem       Date:  1995-08       Impact factor: 3.387

10.  Improved conversion of fumarate to succinate by Escherichia coli strains amplified for fumarate reductase.

Authors:  I Goldberg; K Lonberg-Holm; E A Bagley; B Stieglitz
Journal:  Appl Environ Microbiol       Date:  1983-06       Impact factor: 4.792

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  6 in total

Review 1.  Metabolically engineered Escherichia coli for biotechnological production of four-carbon 1,4-dicarboxylic acids.

Authors:  Yujin Cao; Yugang Cao; Xiangzhi Lin
Journal:  J Ind Microbiol Biotechnol       Date:  2010-11-27       Impact factor: 3.346

2.  Metabolically Engineered Escherichia coli for Conversion of D-Fructose to D-Allulose via Phosphorylation-Dephosphorylation.

Authors:  Qiang Guo; Chen-Yang Liu; Ling-Jie Zheng; Shang-He Zheng; Ya-Xing Zhang; Su-Ying Zhao; Hui-Dong Zheng; Li-Hai Fan; Xiao-Cheng Lin
Journal:  Front Bioeng Biotechnol       Date:  2022-06-22

3.  Metabolic engineering of Escherichia coli to enhance shikimic acid production from sorbitol.

Authors:  Xianglei Liu; Jun Lin; Haifeng Hu; Bin Zhou; Baoquan Zhu
Journal:  World J Microbiol Biotechnol       Date:  2014-06-04       Impact factor: 3.312

Review 4.  Fermentative succinate production: an emerging technology to replace the traditional petrochemical processes.

Authors:  Yujin Cao; Rubing Zhang; Chao Sun; Tao Cheng; Yuhua Liu; Mo Xian
Journal:  Biomed Res Int       Date:  2013-12-12       Impact factor: 3.411

5.  A strategy to identify a ketoreductase that preferentially synthesizes pharmaceutically relevant (S)-alcohols using whole-cell biotransformation.

Authors:  Saiful F Haq; Anirudh P Shanbhag; Subbulakshmi Karthikeyan; Imran Hassan; Kannan Thanukrishnan; Abhishek Ashok; Sunilkumar Sukumaran; S Ramaswamy; Nagakumar Bharatham; Santanu Datta; Shalaka Samant; Nainesh Katagihallimath
Journal:  Microb Cell Fact       Date:  2018-12-03       Impact factor: 5.328

Review 6.  Biosynthetic Pathway and Metabolic Engineering of Succinic Acid.

Authors:  Xiutao Liu; Guang Zhao; Shengjie Sun; Chuanle Fan; Xinjun Feng; Peng Xiong
Journal:  Front Bioeng Biotechnol       Date:  2022-03-08
  6 in total

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