Literature DB >> 28484812

Metabolic engineering of Gluconobacter oxydans 621H for increased biomass yield.

Ines Kiefler1,2, Stephanie Bringer1,2, Michael Bott3,4.   

Abstract

The obligatory aerobic acetic acid bacterium Gluconobacter oxydans incompletely oxidizes carbon sources regio- and stereoselectively in the periplasm and therefore is used industrially for oxidative biotransformations, e. g., in vitamin C production. However, it has a very low biomass yield as the oxidized products largely remain in the medium and cannot be used for anabolism. Cytoplasmic carbon metabolism occurs via the pentose phosphate pathway and the Entner-Doudoroff pathway, whereas glycolysis and the tricarboxylic acid cycle are incomplete. Acetate is formed as an end product via pyruvate decarboxylase and acetaldehyde dehydrogenase. In order to increase the biomass yield from glucose, we sequentially replaced (i) gdhS encoding the cytoplasmic NADP-dependent glucose dehydrogenase by the Acetobacter pasteurianus sdhCDABE genes for succinate dehydrogenase and the flavinylation factor SdhE (strain IK001), (ii) pdc encoding pyruvate decarboxylase by a second ndh gene encoding a type II NADH dehydrogenase (strain IK002.1), and (iii) gdhM encoding the membrane-bound PQQ-dependent glucose dehydrogenase by sucCD from Gluconacetobacter diazotrophicus encoding succinyl-CoA synthetase (strain IK003.1). Analysis of the strains under controlled cultivation conditions in bioreactors revealed for IK003.1 that neither gluconate nor 2-ketogluconate was formed, but some 5-ketogluconate. Acetate formation was eliminated, and comparable amounts of pyruvate were formed instead. CO2 formation by IK003.1 was more than doubled compared to the reference strain. Growth of IK003.1 was retarded, but the biomass yield of this strain was raised by 60%. IK003.1 serves as suitable host for oxidative biotransformations and for further metabolic engineering.

Entities:  

Keywords:  Biomass yield; Genetic engineering; Gluconobacter oxydans; Glucose dehydrogenase; Succinate dehydrogenase; Succinyl-CoA synthetase; Tricarboxylic acid cycle

Mesh:

Substances:

Year:  2017        PMID: 28484812     DOI: 10.1007/s00253-017-8308-3

Source DB:  PubMed          Journal:  Appl Microbiol Biotechnol        ISSN: 0175-7598            Impact factor:   4.813


  11 in total

Review 1.  On the way toward regulatable expression systems in acetic acid bacteria: target gene expression and use cases.

Authors:  Philipp Moritz Fricke; Angelika Klemm; Michael Bott; Tino Polen
Journal:  Appl Microbiol Biotechnol       Date:  2021-04-15       Impact factor: 4.813

2.  RNAseq analysis of α-proteobacterium Gluconobacter oxydans 621H.

Authors:  Angela Kranz; Tobias Busche; Alexander Vogel; Björn Usadel; Jörn Kalinowski; Michael Bott; Tino Polen
Journal:  BMC Genomics       Date:  2018-01-06       Impact factor: 3.969

3.  Metabolic Exchange with Non-Alkane-Consuming Pseudomonas stutzeri SLG510A3-8 Improves n-Alkane Biodegradation by the Alkane Degrader Dietzia sp. Strain DQ12-45-1b.

Authors:  Bing Hu; Miaoxiao Wang; Shuang Geng; Liqun Wen; Mengdi Wu; Yong Nie; Yue-Qin Tang; Xiao-Lei Wu
Journal:  Appl Environ Microbiol       Date:  2020-04-01       Impact factor: 4.792

4.  Global mRNA decay and 23S rRNA fragmentation in Gluconobacter oxydans 621H.

Authors:  Angela Kranz; Andrea Steinmann; Ursula Degner; Aliye Mengus-Kaya; Susana Matamouros; Michael Bott; Tino Polen
Journal:  BMC Genomics       Date:  2018-10-16       Impact factor: 3.969

5.  Enhancing 2-Ketogluconate Production of Pseudomonas plecoglossicida JUIM01 by Maintaining the Carbon Catabolite Repression of 2-Ketogluconate Metabolism.

Authors:  Wenjing Sun; Tjahjasari Alexander; Zaiwei Man; Fangfang Xiao; Fengjie Cui; Xianghui Qi
Journal:  Molecules       Date:  2018-10-13       Impact factor: 4.411

6.  Highly tunable TetR-dependent target gene expression in the acetic acid bacterium Gluconobacter oxydans.

Authors:  Philipp Moritz Fricke; Martha Lürkens; Max Hünnefeld; Christiane K Sonntag; Michael Bott; Mehdi D Davari; Tino Polen
Journal:  Appl Microbiol Biotechnol       Date:  2021-08-27       Impact factor: 4.813

7.  Metabolic engineering of Pseudomonas putida for production of the natural sweetener 5-ketofructose from fructose or sucrose by periplasmic oxidation with a heterologous fructose dehydrogenase.

Authors:  Karen Wohlers; Astrid Wirtz; Alexander Reiter; Marco Oldiges; Meike Baumgart; Michael Bott
Journal:  Microb Biotechnol       Date:  2021-08-26       Impact factor: 5.813

8.  Engineering a tunable bicistronic TetR autoregulation expression system in Gluconobacter oxydans.

Authors:  Monica Bertucci; Ky Ariano; Meg Zumsteg; Paul Schweiger
Journal:  PeerJ       Date:  2022-07-19       Impact factor: 3.061

9.  Engineering of glycerol utilization in Gluconobacter oxydans 621H for biocatalyst preparation in a low-cost way.

Authors:  Jinxin Yan; Jing Xu; Menghao Cao; Zhong Li; Chengpeng Xu; Xinyu Wang; Chunyu Yang; Ping Xu; Chao Gao; Cuiqing Ma
Journal:  Microb Cell Fact       Date:  2018-10-08       Impact factor: 5.328

10.  A tunable L-arabinose-inducible expression plasmid for the acetic acid bacterium Gluconobacter oxydans.

Authors:  Philipp Moritz Fricke; Tobias Link; Jochem Gätgens; Christiane Sonntag; Maike Otto; Michael Bott; Tino Polen
Journal:  Appl Microbiol Biotechnol       Date:  2020-09-25       Impact factor: 4.813

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