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
  • [41] Control of topoisomerase II activity and chemotherapeutic inhibition by TCA cycle metabolites
    Lee, Joyce H.
    Mosher, Eric P.
    Lee, Young-Sam
    Bumpus, Namandje N.
    Berger, James M.
    CELL CHEMICAL BIOLOGY, 2022, 29 (03) : 476 - +
  • [42] From Eat to trEat: engineering the mitochondrial Eat1 enzyme for enhanced ethyl acetate production in Escherichia coli
    Kruis, Aleksander J.
    Bohnenkamp, Anna C.
    Nap, Bram
    Nielsen, Jochem
    Mars, Astrid E.
    Wijffels, Rene H.
    van der Oost, John
    Kengen, Serve W. M.
    Weusthuis, Ruud A.
    BIOTECHNOLOGY FOR BIOFUELS, 2020, 13 (01)
  • [43] The TCA cycle is not required for selection or survival of multidrug-resistant Salmonella
    Ricci, Vito
    Loman, Nick
    Pallen, Mark
    Ivens, Alasdair
    Fookes, Maria
    Langridge, Gemma C.
    Wain, John
    Piddock, Laura J. V.
    JOURNAL OF ANTIMICROBIAL CHEMOTHERAPY, 2012, 67 (03) : 589 - 599
  • [44] UTILIZATION OF GLUTAMINE AND OF TCA CYCLE CONSTITUENTS AS PRECURSORS FOR TRANSMITTER GLUTAMATE AND GABA
    PENG, L
    HERTZ, L
    HUANG, R
    SONNEWALD, U
    PETERSEN, SB
    WESTERGAARD, N
    LARSSON, O
    SCHOUSBOE, A
    DEVELOPMENTAL NEUROSCIENCE, 1993, 15 (3-5) : 367 - 377
  • [45] Fumarase: From the TCA Cycle to DNA Damage Response and Tumor Suppression
    Leshets, Michael
    Silas, Yardena B. H.
    Lehming, Norbert
    Pines, Ophry
    FRONTIERS IN MOLECULAR BIOSCIENCES, 2018, 5
  • [46] A thermodynamic bottleneck in the TCA cycle contributes to acetate overflow in Staphylococcus aureus
    Shahreen, Nabia
    Ahn, Jongsam
    Alsiyabi, Adil
    Chowdhury, Niaz Bahar
    Shinde, Dhananjay
    Chaudhari, Sujata S.
    Bayles, Kenneth W.
    Thomas, Vinai C.
    Saha, Rajib
    MSPHERE, 2025, 10 (01)
  • [47] Engineering of Escherichia coli for Krebs cycle-dependent production of malic acid
    Trichez, Debora
    Aurio, Clement
    Baylac, Audrey
    Irague, Romain
    Dressaire, Clementine
    Carnicer-Heras, Marc
    Heux, Stephanie
    Francois, Jean Marie
    Walther, Thomas
    MICROBIAL CELL FACTORIES, 2018, 17
  • [48] Engineering microbes for isoprene production
    Ye, Lidan
    Lv, Xiaomei
    Yu, Hongwei
    METABOLIC ENGINEERING, 2016, 38 : 125 - 138
  • [49] Enhanced Production of 5-aminolevulinic Acid via Flux Redistribution of TCA Cycle toward l-Glutamate in Corynebacterium glutamicum
    Ko, Young Jin
    You, Seung Kyou
    Kim, Minhye
    Lee, Eunhye
    Shin, Sang Kyu
    Park, Hyeon Min
    Oh, Yuri
    Han, Sung Ok
    BIOTECHNOLOGY AND BIOPROCESS ENGINEERING, 2019, 24 (06) : 915 - 923
  • [50] Effect of glutamine substitution by TCA cycle intermediates on the production and sialylation of Fc-fusion protein in Chinese hamster ovary cell culture
    Ha, Tae Kwang
    Lee, Gyun Min
    JOURNAL OF BIOTECHNOLOGY, 2014, 180 : 23 - 29