Mitochondrial engineering of the TCA cycle for fumarate production

被引:32
|
作者
Chen, Xiulai [1 ,2 ,3 ]
Dong, Xiaoxiang [1 ,2 ,3 ]
Wang, Yuancai [1 ,2 ,3 ]
Zhao, Zihao [1 ,2 ,3 ]
Liu, Liming [1 ,2 ,3 ]
机构
[1] Jiangnan Univ, State Key Lab Food Sci & Technol, Wuxi 214122, Peoples R China
[2] Jiangnan Univ, Minist Educ, Key Lab Ind Biotechnol, Wuxi 214122, Peoples R China
[3] Jiangnan Univ, Lab Food Microbial Mfg Engn, Wuxi 214122, Peoples R China
基金
中国国家自然科学基金;
关键词
Fumarate; Candida glabrata; Mitochondrial engineering; Transporter engineering; KETOGLUTARATE DEHYDROGENASE COMPLEX; ITACONIC ACID PRODUCTION; SUCCINYL-COA SYNTHETASE; SACCHAROMYCES-CEREVISIAE; TORULOPSIS-GLABRATA; ESCHERICHIA-COLI; ALPHA-KETOGLUTARATE; CANDIDA-GLABRATA; RHIZOPUS-ORYZAE; ASPERGILLUS-NIGER;
D O I
10.1016/j.ymben.2015.02.002
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
Microbial fumarate production from renewable feedstock is a promising and sustainable alternative to petroleum-based chemical synthesis. Here, mitochondrial engineering was used to construct the oxidative pathway for fumarate production starting from the TCA cycle intermediate alpha-ketoglutarate in Candida glabrata. Accordingly, alpha-ketoglutarate clehydrogenase complex (KGD), succinyl-CoA synthetase (SUCLG), and succinate dehydrogenase (SDH) were selected to be manipulated for strengthening the oxidative pathway, and the engineered strain T.G-K-S-S exhibited increased fumarate biosynthesis (1.81 g L-1). To further improve fumarate production, the oxidative route was optimized. First, three fusion proteins KGD2-SUCLG2, SUCLG2-SDH1 and KGD2-SDH1 were constructed, and KGD2-SUCLG2 led to improved fumarate production (4.24 g L-1). In addition, various strengths of KGD2-SUCLG2 and SDH1 expression cassettes were designed by combinations of promoter strengths and copy numbers, resulting in a large increase in fumarate production (from 4.24 g L-1 to 8.24 g L-1). Then, through determining intracellular amino acids and its related gene expression levels, argininosuccinate lyase in the urea cycle was identified as the key factor for restricting higher fumarate production. Correspondingly, after overexpression of it, the fumarate production was further increased to 9.96 g L-1. Next, two clicarboxylic acids transporters facilitated an improvement of fumarate production, and, as a result, the final strain T. G-KS(H)-S-(M)-A-2 S reached fumarate titer of 15.76 g L-1. This strategy described here paves the way to the development of an efficient pathway for microbial production of fumarate. (C) 2015 International Metabolic Engineering Society. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:62 / 73
页数:12
相关论文
共 50 条
  • [21] Localisation of gluconeogenesis and tricarboxylic acid (TCA)-cycle enzymes and first functional analysis of the TCA cycle in Toxoplasma gondii
    Fleige, Tobias
    Pfaff, Nils
    Gross, Uwe
    Bohne, Wolfgang
    INTERNATIONAL JOURNAL FOR PARASITOLOGY, 2008, 38 (10) : 1121 - 1132
  • [22] Engineering Scheffersomyces stipitis for fumaric acid production from xylose
    Wei, Liang
    Liu, Jiao
    Qi, Haishan
    Wen, Jianping
    BIORESOURCE TECHNOLOGY, 2015, 187 : 246 - 254
  • [23] Operation of a TCA cycle subnetwork in the mammalian nucleus
    Kafkia, Eleni
    Andres-Pons, Amparo
    Ganter, Kerstin
    Seiler, Markus
    Smith, Tom S.
    Andrejeva, Anna
    Jouhten, Paula
    Pereira, Filipa
    Franco, Catarina
    Kuroshchenkova, Anna
    Leone, Sergio
    Sawarkar, Ritwick
    Boston, Rebecca
    Thaventhiran, James
    Zaugg, Judith B.
    Lilley, Kathryn S.
    Lancrin, Christophe
    Beck, Martin
    Patil, Kiran Raosaheb
    SCIENCE ADVANCES, 2022, 8 (35)
  • [24] Engineering Escherichia coli for Efficient Aerobic Conversion of Glucose to Malic Acid through the Modified Oxidative TCA Cycle
    Skorokhodova, Alexandra Yu.
    Stasenko, Anastasiya A.
    Krasilnikova, Natalya V.
    Gulevich, Andrey Yu.
    Debabov, Vladimir G.
    FERMENTATION-BASEL, 2022, 8 (12):
  • [25] Increased flux through the TCA cycle enhances bacitracin production by Bacillus licheniformis DW2
    Liu, Zhaoyuan
    Yu, Wenli
    Nomura, Christopher T.
    Li, Junhui
    Chen, Shouwen
    Yang, Yong
    Wang, Qin
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2018, 102 (16) : 6935 - 6946
  • [26] INFLUENCE OF IMPELLER SPEED ON CITRIC-ACID PRODUCTION AND SELECTED ENZYME-ACTIVITIES OF THE TCA CYCLE
    ROUKAS, T
    JOURNAL OF INDUSTRIAL MICROBIOLOGY, 1991, 7 (03): : 221 - 225
  • [27] Enhancement of acetoin production in Candida glabrata by in silico-aided metabolic engineering
    Li, Shubo
    Gao, Xiang
    Xu, Nan
    Liu, Liming
    Chen, Jian
    MICROBIAL CELL FACTORIES, 2014, 13
  • [28] TCA cycle-powered synthesis of fucosylated oligosaccharides
    Guan, Ningzi
    Shin, Hyun-Dong
    Long, Lingfeng
    Azadi, Parastoo
    Chen, Rachel
    GLYCOBIOLOGY, 2018, 28 (07) : 468 - 473
  • [29] Fumarate production with Rhizopus oryzae: utilising the Crabtree effect to minimise ethanol by-product formation
    Swart, Reuben M.
    le Roux, Francois
    Naude, Andre
    de Jongh, Nicolaas W.
    Nicol, Willie
    BIOTECHNOLOGY FOR BIOFUELS, 2020, 13 (01)
  • [30] Metabolic Engineering of Candida glabrata for Diacetyl Production
    Gao, Xiang
    Xu, Nan
    Li, Shubo
    Liu, Liming
    PLOS ONE, 2014, 9 (03):