Regular articleEngineering an electroactive Escherichia coli for the microbial electrosynthesis of succinate by increasing the intracellular FAD pool
-
Add time:08/20/2019 Source:sciencedirect.com
In this study, the FAD synthesis pathway was manipulated to increase its cellular concentration and thereby improve the electroactivity of E. coli. In a microbial electrosynthesis (MES) system with neutral red as electron carrier and fumarate as the sole electron acceptor, the engineered strains derived from three E. coli lines displayed increased electric current in the reaction system, indicating improved electroactivity. Furthermore, the production of succinate from fumarate increased by around 60% compared with that of the parent strains, confirming the improvement of E. coli electroactivity by manipulating the FAD synthesis pathway. An MES reaction was performed with engineered E. coli 8739, and an altered metabolic profile with more reductive fermentation products was obtained. When the electroactive succinate-producing strain E. coli T110 was used in the MES, a yield of 0.97 ± 0.02 mol/mol glucose was achieved, which corresponds to an approximately 1.4-fold increase compared with the fermentation with no electricity supply or non-electroactive T110. In addition, a carbon concentration mechanism (CCM) was employed to further improve succinate production and yield in the MES, which produced a succinate yield of 1.16 mol/mol glucose, a 1.7-fold increase compared with that of the parent strain T110, indicating that the electroactive E. coli could be used in MES to produce specific fermentation products with improved yield.
We also recommend Trading Suppliers and Manufacturers of (R)-(1-PHENYLETHYL)SUCCINATE (cas 107832-33-7). Pls Click Website Link as below: cas 107832-33-7 suppliers
Prev:Corynebacterium glutamicum CgynfM encodes a dicarboxylate transporter applicable to succinate production
Next:Purification, characterization, and gene cloning of an Aspergillus fumigatus polyhydroxybutyrate depolymerase used for degradation of polyhydroxybutyrate, polyethylene succinate, and polybutylene succinate) - 【Back】【Close 】【Print】【Add to favorite 】
- Related Information
- ArticleParabacteroides distasonis Alleviates Obesity and Metabolic Dysfunctions via Production of Succinate and Secondary Bile Acids08/25/2019
- Succinate accumulation impairs cardiac pyruvate dehydrogenase activity through GRP91-dependent and independent signaling pathways: Therapeutic effects of ginsenoside Rb108/24/2019
- Original articleAn X-ray and Natural Bond Orbital (NBO) structural study of α-tocopheryl and 2,2,5,7,8-pentamethylchroman-6-yl succinates08/23/2019
- Renewable and flexible UV-blocking film from poly(butylene succinate) and lignin08/22/2019
- Purification, characterization, and gene cloning of an Aspergillus fumigatus polyhydroxybutyrate depolymerase used for degradation of polyhydroxybutyrate, polyethylene succinate, and polybutylene succinate08/21/2019
- Corynebacterium glutamicum CgynfM encodes a dicarboxylate transporter applicable to succinate production08/19/2019
- Modification of chitosan and chitosan succinate by surfactants and investigation of their properties08/18/2019
- Metabolic engineering of the type I methanotroph Methylomonas sp. DH-1 for production of succinate from methane08/17/2019


