Investigation of two metabolic engineering approaches for (R,R)-2,3-butanediol production from glycerol in Bacillus subtilis

被引:6
|
作者
Vikromvarasiri, Nunthaphan [1 ]
Noda, Shuhei [1 ]
Shirai, Tomokazu [1 ]
Kondo, Akihiko [1 ,2 ]
机构
[1] RIKEN Ctr Sustainable Resource Sci, 1-7-22 Suehiro-cho,Tsurumi ku, Yokohama, Kanagawa 2300045, Japan
[2] Kobe Univ, Grad Sch Engn, Dept Chem Sci & Engn, 1-1 Rokkodai,Nada, Kobe 6578501, Japan
关键词
Glycerol; 2,3-Butanediol; Bacillus subtilis; Flux balance analysis; OptKnock; Genome-scale metabolic model; GENOME; FRAMEWORK; YIELD;
D O I
10.1186/s13036-022-00320-w
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Background Flux Balance Analysis (FBA) is a well-known bioinformatics tool for metabolic engineering design. Previously, we have successfully used single-level FBA to design metabolic fluxes in Bacillus subtilis to enhance (R,R)-2,3-butanediol (2,3-BD) production from glycerol. OptKnock is another powerful technique for devising gene deletion strategies to maximize microbial growth coupling with improved biochemical production. It has never been used in B. subtilis. In this study, we aimed to compare the use of single-level FBA and OptKnock for designing enhanced 2,3-BD production from glycerol in B. subtilis. Results Single-level FBA and OptKnock were used to design metabolic engineering approaches for B. subtilis to enhance 2,3-BD production from glycerol. Single-level FBA indicated that deletion of ackA, pta, lctE, and mmgA would improve the production of 2,3-BD from glycerol, while OptKnock simulation suggested the deletion of ackA, pta, mmgA, and zwf. Consequently, strains LM01 (single-level FBA-based) and MZ02 (OptKnock-based) were constructed, and their capacity to produce 2,3-BD from glycerol was investigated. The deletion of multiple genes did not negatively affect strain growth and glycerol utilization. The highest 2,3-BD production was detected in strain LM01. Strain MZ02 produced 2,3-BD at a similar level as the wild type, indicating that the OptKnock prediction was erroneous. Two-step FBA was performed to examine the reason for the erroneous OptKnock prediction. Interestingly, we newly found that zwf gene deletion in strain MZ02 improved lactate production, which has never been reported to date. The predictions of single-level FBA for strain MZ02 were in line with experimental findings. Conclusions We showed that single-level FBA is an effective approach for metabolic design and manipulation to enhance 2,3-BD production from glycerol in B. subtilis. Further, while this approach predicted the phenotypes of generated strains with high precision, OptKnock prediction was not accurate. We suggest that OptKnock modelling predictions be evaluated by using single-level FBA to ensure the accuracy of metabolic pathway design. Furthermore, the zwf gene knockout resulted in the change of metabolic fluxes to enhance the lactate productivity.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Investigation of two metabolic engineering approaches for (R,R)-2,3-butanediol production from glycerol in Bacillus subtilis
    Nunthaphan Vikromvarasiri
    Shuhei Noda
    Tomokazu Shirai
    Akihiko Kondo
    Journal of Biological Engineering, 17
  • [2] Metabolic engineering design to enhance (R,R)-2,3-butanediol production from glycerol in Bacillus subtilis based on flux balance analysis
    Vikromvarasiri, Nunthaphan
    Shirai, Tomokazu
    Kondo, Akihiko
    MICROBIAL CELL FACTORIES, 2021, 20 (01)
  • [3] Metabolic engineering design to enhance (R,R)-2,3-butanediol production from glycerol in Bacillus subtilis based on flux balance analysis
    Nunthaphan Vikromvarasiri
    Tomokazu Shirai
    Akihiko Kondo
    Microbial Cell Factories, 20
  • [4] Engineered Bacillus subtilis for the Production of Tetramethylpyrazine,(R,R)-2,3-Butanediol and Acetoin
    Shi, Lin
    Lin, Yuan
    Song, Jiaao
    Li, Hongxing
    Gao, Yinhao
    Lin, Yonghong
    Huang, Xiaowen
    Meng, Wu
    Qin, Weishuai
    FERMENTATION-BASEL, 2023, 9 (05):
  • [5] In silico metabolic engineering of Bacillus subtilis for improved production of riboflavin, Egl-237, (R,R)-2,3-butanediol and isobutanol
    Hao, Tong
    Han, Binbin
    Ma, Hongwu
    Fu, Jing
    Wang, Hui
    Wang, Zhiwen
    Tang, Bincai
    Chen, Tao
    Zhao, Xueming
    MOLECULAR BIOSYSTEMS, 2013, 9 (08) : 2034 - 2044
  • [6] Synthetic operon for (R,R)-2,3-butanediol production in Bacillus subtilis and Escherichia coli
    Rafael R. de Oliveira
    Wayne L. Nicholson
    Applied Microbiology and Biotechnology, 2016, 100 : 719 - 728
  • [7] Synthetic operon for (R,R)-2,3-butanediol production in Bacillus subtilis and Escherichia coli
    de Oliveira, Rafael R.
    Nicholson, Wayne L.
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2016, 100 (02) : 719 - 728
  • [8] Engineering of Bacillus subtilis for the Production of 2,3-Butanediol from Sugarcane Molasses
    Deshmukh, Apoorva Nandkumar
    Nipanikar-Gokhale, Padmaja
    Jain, Rishi
    APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2016, 179 (02) : 321 - 331
  • [9] Engineering of Bacillus subtilis for the Production of 2,3-Butanediol from Sugarcane Molasses
    Apoorva Nandkumar Deshmukh
    Padmaja Nipanikar-Gokhale
    Rishi Jain
    Applied Biochemistry and Biotechnology, 2016, 179 : 321 - 331
  • [10] Metabolic engineering of Bacillus subtilis for chiral pure meso-2,3-butanediol production
    Fu, Jing
    Huo, Guangxin
    Feng, Lili
    Mao, Yufeng
    Wang, Zhiwen
    Ma, Hongwu
    Chen, Tao
    Zhao, Xueming
    BIOTECHNOLOGY FOR BIOFUELS, 2016, 9