Toward Homosuccinate Fermentation: Metabolic Engineering of Corynebacterium glutamicum for Anaerobic Production of Succinate from Glucose and Formate

被引:173
作者
Litsanov, Boris [1 ]
Brocker, Melanie [1 ]
Bott, Michael [1 ]
机构
[1] Forschungszentrum Julich, Inst Bio & Geowissensch, IBG Biotechnol 1, D-52425 Julich, Germany
关键词
RECOMBINANT ESCHERICHIA-COLI; ACID-PRODUCING BACTERIUM; MOLECULAR ANALYSIS; MANNHEIMIA-SUCCINICIPRODUCENS; PYRUVATE PRODUCTION; RESPIRATORY-CHAIN; GENOME SEQUENCE; GENE-EXPRESSION; ORGANIC-ACIDS; FED-BATCH;
D O I
10.1128/AEM.07790-11
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Previous studies have demonstrated the capability of Corynebacterium glutamicum for anaerobic succinate production from glucose under nongrowing conditions. In this work, we have addressed two shortfalls of this process, the formation of significant amounts of by-products and the limitation of the yield by the redox balance. To eliminate acetate formation, a derivative of the type strain ATCC 13032 (strain BOL-1), which lacked all known pathways for acetate and lactate synthesis (Delta cat Delta pqo Delta pta-ackA Delta ldhA), was constructed. Chromosomal integration of the pyruvate carboxylase gene pyc(P458S) into BOL-1 resulted in strain BOL-2, which catalyzed fast succinate production from glucose with a yield of 1 mol/mol and showed only little acetate formation. In order to provide additional reducing equivalents derived from the cosubstrate formate, the fdh gene from Mycobacterium vaccae, coding for an NAD(+)-coupled formate dehydrogenase (FDH), was chromosomally integrated into BOL-2, leading to strain BOL-3. In an anaerobic batch process with strain BOL-3, a 20% higher succinate yield from glucose was obtained in the presence of formate. A temporary metabolic blockage of strain BOL-3 was prevented by plasmid-borne overexpression of the glyceraldehyde 3-phosphate dehydrogenase gene gapA. In an anaerobic fed-batch process with glucose and formate, strain BOL-3/pAN6-gap accumulated 1,134 mM succinate in 53 h with an average succinate production rate of 1.59 mmol per g cells (dry weight) (cdw) per h. The succinate yield of 1.67 mol/mol glucose is one of the highest currently described for anaerobic succinate producers and was accompanied by a very low level of by-products (0.10 mol/mol glucose).
引用
收藏
页码:3325 / 3337
页数:13
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共 47 条
  • [31] Metabolic Engineering of Corynebacterium glutamicum for the High-Level Production of Cadaverine That Can Be Used for the Synthesis of Biopolyamide 510
    Kim, Hee Taek
    Baritugo, Kei-Anne
    Oh, Young Hoon
    Hyun, Sung Min
    Khang, Tae Uk
    Kang, Kyoung Hee
    Jung, Sol Hee
    Song, Bong Keun
    Park, Kyungmoon
    Kim, Il-Kwon
    Lee, Myung Ock
    Kam, Yeji
    Hwang, Yong Taek
    Park, Si Jae
    Joe, Jeong Chan
    [J]. ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2018, 6 (04): : 5296 - 5305
  • [32] Metabolic engineering of Corynebacterium glutamicum: Unlocking its potential as a key cell factory platform for organic acid production
    Li, Ming-Hou
    Li, Han
    Zhang, Xue
    Liang, Yu-Chen
    Li, Cheng
    Sun, Meng-Lin
    Li, Kai
    Liu, Chen-Guang
    Sinskey, Anthony J.
    [J]. BIOTECHNOLOGY ADVANCES, 2024, 77
  • [33] Metabolic engineering of Corynebacterium glutamicum for production of scyllo-inositol, a drug candidate against Alzheimer's disease
    Ramp, Paul
    Lehnert, Alexander
    Matamouros, Susana
    Wirtz, Astrid
    Baumgart, Meike
    Bott, Michael
    [J]. METABOLIC ENGINEERING, 2021, 67 : 173 - 185
  • [34] Carbon Flux Analysis by 13C Nuclear Magnetic Resonance To Determine the Effect of CO2 on Anaerobic Succinate Production by Corynebacterium glutamicum
    Rados, Dusica
    Turner, David L.
    Fonseca, Luis L.
    Carvalho, Ana Lucia
    Blombach, Bastian
    Eikmanns, Bernhard J.
    Neves, Ana Rute
    Santos, Helena
    [J]. APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2014, 80 (10) : 3015 - 3024
  • [35] Improved fermentative production of the compatible solute ectoine by Corynebacterium glutamicum from glucose and alternative carbon sources
    Perez-Garcia, Fernando
    Ziert, Christian
    Risse, Joe Max
    Wendisch, Volker F.
    [J]. JOURNAL OF BIOTECHNOLOGY, 2017, 258 : 59 - 68
  • [36] Metabolic engineering of Escherichia coli for the production of phenol from glucose
    Kim, Byoungjin
    Park, Hyegwon
    Na, Dokyun
    Lee, Sang Yup
    [J]. BIOTECHNOLOGY JOURNAL, 2014, 9 (05) : 621 - 629
  • [37] Recent progress in metabolic engineering of Corynebacterium glutamicum for the production of C4, C5, and C6 chemicals
    Baritugo, Kei-Anne
    Son, Jina
    Sohn, Yu Jung
    Kim, Hee Taek
    Joo, Jeong Chan
    Choi, Jong-il
    Park, Si Jae
    [J]. KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2021, 38 (07) : 1291 - 1307
  • [38] Metabolic Engineering of Corynebacterium glutamicum for High-Level Ectoine Production: Design, Combinatorial Assembly, and Implementation of a Transcriptionally Balanced Heterologous Ectoine Pathway
    Giesselmann, Gideon
    Dietrich, Demian
    Jungmann, Lukas
    Kohlstedt, Michael
    Jeon, Eun J.
    Yim, Sung S.
    Sommer, Frederik
    Zimmer, David
    Muehlhaus, Timo
    Schroda, Michael
    Jeong, Ki J.
    Becker, Judith
    Wittmann, Christoph
    [J]. BIOTECHNOLOGY JOURNAL, 2019, 14 (09)
  • [39] Biofuel production: an odyssey from metabolic engineering to fermentation scale-up
    Hollinshead, Whitney
    He, Lian
    Tang, Yinjie J.
    [J]. FRONTIERS IN MICROBIOLOGY, 2014, 5
  • [40] Succinate production from different carbon sources under anaerobic conditions by metabolic engineered Escherichia coli strains
    Wang, Jian
    Zhu, Jiangfeng
    Bennett, George N.
    San, Ka-Yiu
    [J]. METABOLIC ENGINEERING, 2011, 13 (03) : 328 - 335