Engineering the transmission efficiency of the noncyclic glyoxylate pathway for fumarate production inEscherichia coli

被引:0
|
作者
Chen, Xiulai [1 ,2 ,3 ]
Ma, Danlei [1 ,2 ,3 ]
Liu, Jia [1 ,2 ,3 ]
Luo, Qiuling [1 ,4 ]
Liu, Liming [1 ,2 ,3 ]
机构
[1] Jiangnan Univ, State Key Lab Food Sci & Technol, 1800 Lihu Rd, Wuxi 214122, Jiangsu, Peoples R China
[2] Jiangnan Univ, Minist Educ, Key Lab Ind Biotechnol, Wuxi 214122, Jiangsu, Peoples R China
[3] Jiangnan Univ, Int Joint Lab Food Safety, Wuxi 214122, Jiangsu, Peoples R China
[4] Wuxi Chenming Biotechnol Co Ltd, Wuxi 214100, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
Fumarate; Escherichia coli; Pathway optimization; Transporter engineering; Metabolic engineering; ESCHERICHIA-COLI; BIOSYNTHETIC PATHWAYS; ACID PRODUCTION; UREA CYCLE; OPTIMIZATION;
D O I
10.1186/s13068-020-01771-3
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
Background Fumarate is a multifunctional dicarboxylic acid in the tricarboxylic acid cycle, but microbial engineering for fumarate production is limited by the transmission efficiency of its biosynthetic pathway. Results Here, pathway engineering was used to construct the noncyclic glyoxylate pathway for fumarate production. To improve the transmission efficiency of intermediate metabolites, pathway optimization was conducted by fluctuating gene expression levels to identify potential bottlenecks and then remove them, resulting in a large increase in fumarate production from 8.7 to 16.2 g/L. To further enhance its transmission efficiency of targeted metabolites, transporter engineering was used by screening the C-4-dicarboxylate transporters and then strengthening the capacity of fumarate export, leading to fumarate production up to 18.9 g/L. Finally, the engineered strainE. coliW3110o4-P((H))CAI((H))SC produced 22.4 g/L fumarate in a 5-L fed-batch bioreactor. Conclusions In this study, we offered rational metabolic engineering and flux optimization strategies for efficient production of fumarate. These strategies have great potential in developing efficient microbial cell factories for production of high-value added chemicals.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Engineering a heterologous synthetic pathway in Escherichia coli for efficient production of biotin
    Wei, Pei-Pei
    Zhu, Fu-Cheng
    Chen, Cun-Wu
    Li, Guo-Si
    BIOTECHNOLOGY LETTERS, 2021, 43 (06) : 1221 - 1228
  • [22] Pathway construction and metabolic engineering for fermentative production of ectoine in Escherichia coli
    Ning, Yike
    Wu, Xuejiao
    Zhang, Chenglin
    Xu, Qingyang
    Chen, Ning
    Xie, Xixian
    METABOLIC ENGINEERING, 2016, 36 : 10 - 18
  • [23] Pathway engineering for high-yield production of lutein in Escherichia coli
    Takemura, Miho
    Kubo, Akiko
    Watanabe, Asuka
    Sakuno, Hanayo
    Minobe, Yuka
    Sahara, Takehiko
    Murata, Masahiro
    Araki, Michihiro
    Harada, Hisashi
    Terada, Yoshinobu
    Yaoi, Katsuro
    Ohdan, Kohji
    Misawa, Norihiko
    SYNTHETIC BIOLOGY, 2021, 6 (01)
  • [24] Improved succinate production in Corynebacterium glutamicum by engineering glyoxylate pathway and succinate export system
    Nianqing Zhu
    Huihua Xia
    Jiangang Yang
    Xueming Zhao
    Tao Chen
    Biotechnology Letters, 2014, 36 : 553 - 560
  • [25] Engineering endogenous L-proline biosynthetic pathway to boost trans-4-hydroxy-L-proline production in Escherichia coli
    Jiang, Liangzhen
    Pang, Jing
    Yang, Lixia
    Li, Wei
    Duan, Lili
    Zhang, Guolin
    Luo, Yinggang
    JOURNAL OF BIOTECHNOLOGY, 2021, 329 : 104 - 117
  • [26] Metabolic engineering of the mixed-acid fermentation pathway of Escherichia coli for anaerobic production of glutamate and itaconate
    Vuoristo, Kiira S.
    Mars, Astrid E.
    Sangra, Jose Vidal
    Springer, Jan
    Eggink, Gerrit
    Sanders, Johan P. M.
    Weusthuis, Ruud A.
    AMB EXPRESS, 2015, 5
  • [27] Metabolic engineering for p-coumaryl alcohol production in Escherichia coli by introducing an artificial phenylpropanoid pathway
    Jansen, Frank
    Gillessen, Bernhard
    Mueller, Frank
    Commandeur, Ulrich
    Fischer, Rainer
    Kreuzaler, Fritz
    BIOTECHNOLOGY AND APPLIED BIOCHEMISTRY, 2014, 61 (06) : 646 - 654
  • [28] Engineering a non-native hydrogen production pathway into Escherichia coli via a cyanobacterial [NiFe] hydrogenase
    Wells, Mark A.
    Mercer, James
    Mott, Richard A.
    Pereira-Medrano, Ana G.
    Burja, Adam M.
    Radianingtyas, Helia
    Wright, Phillip C.
    METABOLIC ENGINEERING, 2011, 13 (04) : 445 - 453
  • [29] Enhancement of malate production through engineering of the periplasmic rTCA pathway in Escherichia coli
    Guo, Liang
    Zhang, Fan
    Zhang, Can
    Hu, Guipeng
    Gao, Cong
    Chen, Xiulai
    Liu, Liming
    BIOTECHNOLOGY AND BIOENGINEERING, 2018, 115 (06) : 1571 - 1580
  • [30] Enhanced production of antibody fragment via SRP pathway engineering in Escherichia coli
    Lee, Yong Jae
    Jeong, Ki Jun
    BIOTECHNOLOGY AND BIOPROCESS ENGINEERING, 2013, 18 (04) : 751 - 758