Fermentative production of enantiomerically pure S-1,2-propanediol from glucose by engineered E. coli strain

被引:0
|
作者
Lingfeng Zhu
Xiangchen Guan
Nengzhong Xie
Limin Wang
Bo Yu
Yanhe Ma
机构
[1] Chinese Academy of Sciences,CAS Key Laboratory of Microbial Physiological and Metabolic Engineering, Institute of Microbiology
[2] Chinese Academy of Sciences,Tianjin Institute of Industrial Biotechnology
[3] Guangxi Academy of Science,National Engineering Research Center for Non
[4] University of Chinese Academy of Sciences,food Biorefinery
来源
关键词
-1,2-propanediol; -lactate; Glucose; Metabolic engineering; Fermentation;
D O I
暂无
中图分类号
学科分类号
摘要
The pure stereoisomers of 1,2-propanediol (1,2-PDO) could be used as starting materials to synthesize high value-added specialty chemicals and chiral pharmaceutical products. As the stereoisomers of 1,2-PDO cannot be obtained by traditional chemical synthesis processes, biotechnological processes have gained increasing attention. However, to our knowledge, the production of S-1,2-PDO directly from glucose has not been previously reported. In this study, we demonstrate a novel artificial pathway to convert l-lactic acid to S-1,2-PDO and its integration into the genome of Escherichia coli strain BW25113∆poxB with synchronous deletion of genes responsible for branch metabolic pathways from glucose. l-lactate production was increased by replacing the native d-lactate dehydrogenase with the l-lactate dehydrogenase from Bacillus coagulans. The methylglyoxal bypass pathway was blocked to avoid synthesis of a racemic mixture of d- and l-lactate and prevent the accumulation of methylglyoxal, a toxic intermediate. To further improve the yield of S-1,2-PDO, a novel cofactor regeneration system was introduced by combining pyruvate decarboxylase and acetaldehyde-CoA dehydrogenase II to simultaneously regenerate NADH and the CoA donor of acetyl-CoA for the lactate conversion pathway. Finally, 13.7 mM S-1,2-PDO with >99 % enantiomeric purity was directly produced from glucose by disrupting the major carbon-competing pathways and strengthening the lactate transformation pathway. This study demonstrates the first attempt to synthesize S-1,2-PDO by direct fermentation of glucose.
引用
收藏
页码:1241 / 1251
页数:10
相关论文
共 50 条
  • [21] One-step fermentative production of aromatic polyesters from glucose by metabolically engineered Escherichia coli strains
    Jung Eun Yang
    Si Jae Park
    Won Jun Kim
    Hyeong Jun Kim
    Bumjoon J. Kim
    Hyuk Lee
    Jihoon Shin
    Sang Yup Lee
    Nature Communications, 9
  • [22] Heterologous pathway for the production of L-phenylglycine from glucose by E. coli
    Liu, Shuang Ping
    Liu, Rui Xia
    El-Rotail, Ashraf A. M. M.
    Ding, Zhong Yang
    Gu, Zheng Hua
    Zhang, Liang
    Shi, Gui Yang
    JOURNAL OF BIOTECHNOLOGY, 2014, 186 : 91 - 97
  • [23] Metabolic engineering of E. coli for efficient production of glycolic acid from glucose
    Deng, Yu
    Mao, Yin
    Zhang, Xiaojuan
    BIOCHEMICAL ENGINEERING JOURNAL, 2015, 103 : 256 - 262
  • [24] Efficient 1-Hydroxy-2-Butanone Production from 1,2-Butanediol by Whole Cells of Engineered E. coli
    Lin, Hui
    Xu, Jiayin
    Sun, Wenlian
    Hu, Wujia
    Gao, Huifang
    Hu, Kaihui
    Qiu, Junzhi
    Huang, Binbin
    Zhang, Liaoyuan
    CATALYSTS, 2021, 11 (10)
  • [25] Simultaneous production of furfural, lignin and cellulose-rich residue from Eucalyptus urophylla x E. grandis by ChCl/1,2-propanediol/MIBK biphasic system pretreatment
    Yue, Zhuang
    Sun, Li-Li
    Wen, Jia-Long
    Yao, Shuang-Quan
    Sun, Shao-Ni
    Cao, Xue-Fei
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2024, 275
  • [26] Production of 1,3-propanediol from Glycerol by Recombinant E. coli Using Incompatible Plasmids System
    Fenghuan Wang
    Huijin Qu
    Dawei Zhang
    Pingfang Tian
    Tianwei Tan
    Molecular Biotechnology, 2007, 37 : 112 - 119
  • [27] Putrescine production from cellobiose by cell surface- and metabolically-engineered E. coli
    Tanaka, Tsutomu
    Nishikawa, Hiroki
    Ikeda, Naoki
    Kondo, Akihiko
    NEW BIOTECHNOLOGY, 2016, 33 : S191 - S191
  • [28] Improved Production and In Situ Recovery of Sesquiterpene (+)-Zizaene from Metabolically-Engineered E. coli
    Aguilar, Francisco
    Scheper, Thomas
    Beutel, Sascha
    MOLECULES, 2019, 24 (18):
  • [29] Sustainable Production of l-Homoserine Solely from CO2-Derived Acetate and Formate by Engineered E. coli Strain
    Zhang, Jia’nan
    Liu, Zizhen
    Wang, Yihan
    Yu, Bo
    ACS Sustainable Chemistry and Engineering, 2024, 12 (52): : 18704 - 18711
  • [30] Synthetic biology-enabled strategies for improving ethylene production from engineered E. coli
    Lynch, Sean
    Eckert, Carrie
    Yu, Jianping
    Maness, Pin-Ching
    Gill, Ryan
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 249