Multiple strategies for metabolic engineering of Escherichia coli for efficient production of glycolate

被引:17
|
作者
Zhu, Tong [1 ,2 ,3 ]
Yao, Die [2 ,3 ,4 ]
Li, Di [1 ,2 ,3 ]
Xu, Hongtao [2 ,3 ]
Jia, Shiru [1 ]
Bi, Changhao [2 ,4 ]
Cai, Jun [4 ]
Zhu, Xinna [2 ,3 ]
Zhang, Xueli [2 ,3 ]
机构
[1] Tianjin Univ Sci & Technol, Coll Biotechnol, Tianjin, Peoples R China
[2] Chinese Acad Sci, Tianjin Inst Ind Biotechnol, Tianjin, Peoples R China
[3] Chinese Acad Sci, Key Lab Syst Microbial Biotechnol, Tianjin, Peoples R China
[4] Nankai Univ, Coll Life Sci, Dept Microbiol, Tianjin, Peoples R China
基金
中国国家自然科学基金; 国家重点研发计划;
关键词
Escherichia coli; glucose; g lycolate; NADP(+)-dependent GAPDH; ISOCITRATE DEHYDROGENASE; ETHYLENE-GLYCOL; PHOSPHORYLATION; ACID; PHOSPHOENOLPYRUVATE; IMPROVEMENT; LYASE;
D O I
10.1002/bit.27934
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
Glycolate is a bulk chemical with wide applications in the textile, food processing, and pharmaceutical industries. Glycolate can be produced from glucose via the glycolysis and glyoxylate shunt pathways, followed by reduction to glycolate. However, two problems limit the productivity and yield of glycolate when using glucose as the sole carbon source. The first is a cofactor imbalance in the production of glycolate from glucose via the glycolysis pathway, since NADPH is required for glycolate production, while glycolysis generates NADH. To rectify this imbalance, the NADP(+)-dependent glyceraldehyde 3-phosphate dehydrogenase GapC from Clostridium acetobutylicum was introduced to generate NADPH instead of NADH in the oxidation of glyceraldehyde 3-phosphate during glycolysis. The soluble transhydrogenase SthA was further eliminated to conserve NADPH by blocking its conversion into NADH. The second problem is an unfavorable carbon flux distribution between the tricarboxylic acid cycle and the glyoxylate shunt. To solve this problem, isocitrate dehydrogenase (ICDH) was eliminated to increase the carbon flux of glyoxylate and thereby improve the glycolate titer. After engineering through the integration of gapC, combined with the inactivation of ICDH, SthA, and by-product pathways, as well as the upregulation of the two key enzymes isocitrate lyase (encoding by aceA), and glyoxylate reductase (encoding by ycdW), the glycolate titer increased to 5.3 g/L with a yield of 1.89 mol/mol glucose. Moreover, an optimized fed-batch fermentation reached a titer of 41 g/L with a yield of 1.87 mol/mol glucose after 60 h.
引用
收藏
页码:4699 / 4707
页数:9
相关论文
共 50 条
  • [31] Metabolic engineering of Escherichia coli for chondroitin production
    Zhao C.
    Guo L.
    Gao C.
    Song W.
    Wu J.
    Liu J.
    Liu L.
    Chen X.
    Huagong Xuebao/CIESC Journal, 2023, 74 (05): : 2111 - 2122
  • [32] Metabolic engineering Escherichia coli for efficient production of icariside D2
    Liu, Xue
    Li, Lingling
    Liu, Jincong
    Qiao, Jianjun
    Zhao, Guang-Rong
    BIOTECHNOLOGY FOR BIOFUELS, 2019, 12 (01)
  • [33] Metabolic engineering for the production of l-phenylalanine in Escherichia coli
    Liu, Xiaozhen
    Niu, Hao
    Li, Qiang
    Gu, Pengfei
    3 BIOTECH, 2019, 9 (03)
  • [34] Metabolic engineering for the optimization of hydrogen production in Escherichia coli: A review
    Valle, Antonio
    Cantero, Domingo
    Bolivar, Jorge
    BIOTECHNOLOGY ADVANCES, 2019, 37 (05) : 616 - 633
  • [35] Metabolic engineering of Escherichia coli for the production of glyoxylate from xylose
    Li, Liang-Kang
    Shi, Li-Long
    Hong, Peng-Hui
    Tan, Tian-Wei
    Li, Zheng-Jun
    BIOCHEMICAL ENGINEERING JOURNAL, 2018, 129 : 113 - 118
  • [36] Metabolic engineering of Escherichia coli for the production of indirubin from glucose
    Du, Jikun
    Yang, Dongsoo
    Luo, Zi Wei
    Lee, Sang Yup
    JOURNAL OF BIOTECHNOLOGY, 2018, 267 : 19 - 28
  • [37] Metabolomics for the design of new metabolic engineering strategies for improving aerobic succinic acid production in Escherichia coli
    Valle, Antonio
    Soto, Zamira
    Muhamadali, Howbeer
    Hollywood, Katherine A.
    Xu, Yun
    Lloyd, Jonathan R.
    Goodacre, Royston
    Cantero, Domingo
    Cabrera, Gema
    Bolivar, Jorge
    METABOLOMICS, 2022, 18 (08)
  • [38] Metabolic engineering of Escherichia coli for the synthesis of the quadripolymer poly(glycolate-co-lactate-co-3-hydroxybutyrate-co-4-hydroxybutyrate) from glucose
    Li, Zheng-Jun
    Qiao, Kangjian
    Che, Xue-Mei
    Stephanopoulos, Gregory
    METABOLIC ENGINEERING, 2017, 44 : 38 - 44
  • [39] Combinatorial Metabolic Engineering Strategies for the Enhanced Production of Free Fatty Acids in Escherichia coli
    Park, Woo Sang
    Shin, Kwang Soo
    Jung, Hyun Wook
    Lee, Yongjoo
    Sathesh-Prabu, Chandran
    Lee, Sung Kuk
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2022, 70 (43) : 13913 - 13921
  • [40] Engineering Escherichia coli for efficient glutathione production
    Mori, Hiroki
    Matsui, Misato
    Bamba, Takahiro
    Hori, Yoshimi
    Kitamura, Sayaka
    Toya, Yoshihiro
    Hidese, Ryota
    Yasueda, Hisashi
    Hasunuma, Tomohisa
    Shimizu, Hiroshi
    Taoka, Naoaki
    Kobayashi, Shingo
    METABOLIC ENGINEERING, 2024, 84 : 180 - 190