Exploiting Hydrogenophaga pseudoflava for aerobic syngas-based production of chemicals.
Grenz S, Baumann PT, Rückert C, Nebel BA, Siebert D, Schwentner A, Eikmanns BJ, Hauer B, Kalinowski J, Takors R, Blombach B (2019)
Metabolic engineering 55: 220-230.
Zeitschriftenaufsatz
| Veröffentlicht | Englisch
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Autor*in
Grenz, Sebastian;
Baumann, Philipp T;
Rückert, ChristianUniBi ;
Nebel, Bernd A;
Siebert, Daniel;
Schwentner, Andreas;
Eikmanns, Bernhard J;
Hauer, Bernhard;
Kalinowski, JörnUniBi;
Takors, Ralf;
Blombach, Bastian
Einrichtung
Abstract / Bemerkung
Gasification is a suitable technology to generate energy-rich synthesis gas (syngas) from biomass or waste streams, which can be utilized in bacterial fermentation processes for the production of chemicals and fuels. Established microbial processes currently rely on acetogenic bacteria which perform an energetically inefficient anaerobic CO oxidation and acetogenesis potentially hampering the biosynthesis of complex and ATP-intensive products. Since aerobic oxidation of CO is energetically more favorable, we exploit in this study the Gram-negative beta-proteobacterium Hydrogenophaga pseudoflava DSM1084 as novel host for the production of chemicals from syngas. We sequenced and annotated the genome of H.pseudoflava and established a genetic engineering toolbox, which allows markerless chromosomal modification via the pk19mobsacB system and heterologous gene expression on pBBRMCS2-based plasmids. The toolbox was extended by identifying strong endogenous promotors such as PgapA2 which proved to yield high expression under heterotrophic and autotrophic conditions. H.pseudoflava showed relatively fast heterotrophic growth in complex and minimal medium with sugars and organic acids which allows convenient handling in lab routines. In autotrophic bioreactor cultivations with syngas, H.pseudoflava exhibited a growth rate of 0.06 h-1 and biomass specific uptakes rates of 14.2 ± 0.3 mmol H2 gCDW-1 h-1, 73.9 ± 1.8 mmol CO gCDW-1 h-1, and 31.4 ± 0.3 mmol O2 gCDW-1 h-1. As proof of concept, we engineered the carboxydotrophic bacterium for the aerobic production of the C15 sesquiterpene (E)-alpha-bisabolene from the C1 carbon source syngas by heterologous expression of the (E)-alpha-bisabolene synthase gene agBIS. The resulting strain H.pseudoflava (pOCEx1:agBIS) produced 59 ± 8 mug (E)-alpha-bisabolene L-1 with a volumetric productivity Qp of 1.2 ± 0.2 mug L-1 h-1 and a biomass-specific productivity qp of 13.1 ± 0.6 mug gCDW-1 h-1. The intrinsic properties and the genetic repertoire of H.pseudoflava make this carboxydotrophic bacterium a promising candidate for future aerobic production processes to synthesize more complex or ATP-intensive chemicals from syngas. Copyright © 2019 International Metabolic Engineering Society. Published by Elsevier Inc. All rights reserved.
Erscheinungsjahr
2019
Zeitschriftentitel
Metabolic engineering
Band
55
Seite(n)
220-230
ISSN
1096-7176
eISSN
1096-7184
Page URI
https://pub.uni-bielefeld.de/record/2936726
Zitieren
Grenz S, Baumann PT, Rückert C, et al. Exploiting Hydrogenophaga pseudoflava for aerobic syngas-based production of chemicals. Metabolic engineering. 2019;55:220-230.
Grenz, S., Baumann, P. T., Rückert, C., Nebel, B. A., Siebert, D., Schwentner, A., Eikmanns, B. J., et al. (2019). Exploiting Hydrogenophaga pseudoflava for aerobic syngas-based production of chemicals. Metabolic engineering, 55, 220-230. doi:10.1016/j.ymben.2019.07.006
Grenz, Sebastian, Baumann, Philipp T, Rückert, Christian, Nebel, Bernd A, Siebert, Daniel, Schwentner, Andreas, Eikmanns, Bernhard J, et al. 2019. “Exploiting Hydrogenophaga pseudoflava for aerobic syngas-based production of chemicals.”. Metabolic engineering 55: 220-230.
Grenz, S., Baumann, P. T., Rückert, C., Nebel, B. A., Siebert, D., Schwentner, A., Eikmanns, B. J., Hauer, B., Kalinowski, J., Takors, R., et al. (2019). Exploiting Hydrogenophaga pseudoflava for aerobic syngas-based production of chemicals. Metabolic engineering 55, 220-230.
Grenz, S., et al., 2019. Exploiting Hydrogenophaga pseudoflava for aerobic syngas-based production of chemicals. Metabolic engineering, 55, p 220-230.
S. Grenz, et al., “Exploiting Hydrogenophaga pseudoflava for aerobic syngas-based production of chemicals.”, Metabolic engineering, vol. 55, 2019, pp. 220-230.
Grenz, S., Baumann, P.T., Rückert, C., Nebel, B.A., Siebert, D., Schwentner, A., Eikmanns, B.J., Hauer, B., Kalinowski, J., Takors, R., Blombach, B.: Exploiting Hydrogenophaga pseudoflava for aerobic syngas-based production of chemicals. Metabolic engineering. 55, 220-230 (2019).
Grenz, Sebastian, Baumann, Philipp T, Rückert, Christian, Nebel, Bernd A, Siebert, Daniel, Schwentner, Andreas, Eikmanns, Bernhard J, Hauer, Bernhard, Kalinowski, Jörn, Takors, Ralf, and Blombach, Bastian. “Exploiting Hydrogenophaga pseudoflava for aerobic syngas-based production of chemicals.”. Metabolic engineering 55 (2019): 220-230.
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