Combinatorial metabolic engineering of Bacillus subtilis for de novo production of polymyxin B

被引:3
|
作者
Sun, Hui-Zhong [1 ,2 ]
Li, Qing [1 ,2 ]
Shang, Wei [1 ,2 ]
Qiao, Bin [1 ,2 ]
Xu, Qiu-Man [3 ]
Cheng, Jing-Sheng [1 ,2 ]
机构
[1] Tianjin Univ, Frontiers Sci Ctr Synthet Biol, Yaguan Rd 135, Tianjin 300350, Peoples R China
[2] Tianjin Univ, Sch Chem Engn & Technol, Dept Pharmaceut Engn, Key Lab Syst Bioengn,Minist Educ, Yaguan Rd 135, Tianjin 300350, Peoples R China
[3] Tianjin Normal Univ, Coll Life Sci, Tianjin Key Lab Anim & Plant Resistance, Binshuixi Rd 393, Tianjin 300387, Peoples R China
关键词
Polymyxin; De novo synthesis; Combinatorial metabolic engineering; Bacillus subtilis; Fatty acids; PAENIBACILLUS-POLYMYXA; MAJOR COMPONENTS; GENE-CLUSTER; BIOSYNTHESIS; SYNTHETASE; EXPRESSION; COLISTIN; CLONING; REPLACEMENT; RESTRICTION;
D O I
10.1016/j.ymben.2024.04.001
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
Polymyxin is a lipopeptide antibiotic that is effective against multidrug-resistant Gram-negative bacteria. However, its clinical development is limited due to low titer and the presence of homologs. To address this, the polymyxin gene cluster was integrated into Bacillus subtilis, and sfp from Paenibacillus polymyxa was expressed heterologously, enabling recombinant B. subtilis to synthesize polymyxin B. Regulating NRPS domain inhibited formation of polymyxin B2 and B3. The production of polymyxin B increased to 329.7 mg/L by replacing the native promoters of pmxA, pmxB, and pmxE with PfusA, C2up, and PfusA, respectively. Further enhancement in this production, up to 616.1 mg/L, was achieved by improving the synthesis ability of 6-methyloctanoic acid compared to the original strain expressing polymyxin heterologously. Additionally, incorporating an anikasinderived domain into the hybrid nonribosomal peptide synthase of polymyxin increased the B1 ratio in polymyxin B from 57.5% to 62.2%. Through optimization of peptone supply in the fermentation medium and fermentation in a 5.0-L bioreactor, the final polymyxin B titer reached 962.1 mg/L, with a yield of 19.24 mg/g maltodextrin and a productivity of 10.02 mg/(L & sdot;h). This study demonstrates a successful approach for enhancing polymyxin B production and increasing the B1 ratio through combinatorial metabolic engineering.
引用
收藏
页码:123 / 136
页数:14
相关论文
共 50 条
  • [21] Combinatorial engineering for efficient production of protein-glutaminase in Bacillus subtilis
    Yin, Xinxin
    Zhang, Guoqiang
    Zhou, Jingwen
    Li, Jianghua
    Du, Guocheng
    ENZYME AND MICROBIAL TECHNOLOGY, 2021, 150
  • [22] Metabolic Engineering of Saccharomyces cerevisiae for De Novo Production of Kaempferol
    Lyu, Xiaomei
    Zhao, Guili
    Ng, Kuan Rei
    Mark, Rita
    Chen, Wei Ning
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2019, 67 (19) : 5596 - 5606
  • [23] Modular Pathway Engineering of Bacillus subtilis To Promote De Novo Biosynthesis of Menaquinone-7
    Yang, Shaomei
    Cao, Yingxiu
    Sun, Liming
    Li, Congfa
    Lin, Xue
    Cai, Zhigang
    Zhang, Guoyin
    Song, Hao
    ACS SYNTHETIC BIOLOGY, 2019, 8 (01): : 70 - 81
  • [24] Combinatorial promoter engineering of glucokinase and phosphoglucoisomerase for improved N-acetylglucosamine production in Bacillus subtilis
    Ling, Meixi
    Liu, Yanfeng
    Li, Jianghua
    Shin, Hyun-dong
    Chen, Jian
    Du, Guocheng
    Liu, Long
    BIORESOURCE TECHNOLOGY, 2017, 245 : 1093 - 1102
  • [25] Combinatorial metabolic engineering of Escherichia coli for de novo production of structurally defined and homogeneous Amino oligosaccharides
    Shi, Jinqi
    Deng, Chen
    Zhang, Chunyue
    Quan, Shu
    Fan, Liqiang
    Zhao, Liming
    SYNTHETIC AND SYSTEMS BIOTECHNOLOGY, 2024, 9 (04) : 713 - 722
  • [26] Metabolic engineering Saccharomyces cerevisiae for de novo production of the sesquiterpenoid (+)-nootkatone
    Meng, Xiangfeng
    Liu, Hui
    Xu, Wenqiang
    Zhang, Weixin
    Wang, Zheng
    Liu, Weifeng
    MICROBIAL CELL FACTORIES, 2020, 19 (01)
  • [27] Metabolic engineering of Bacillus subtilis for enhancing riboflavin production by alleviating dissolved oxygen limitation
    You, Jiajia
    Yang, Chen
    Pan, Xuewei
    Hu, Mengkai
    Du, Yuxuan
    Osire, Tolbert
    Yang, Taowei
    Rao, Zhiming
    BIORESOURCE TECHNOLOGY, 2021, 333 (333)
  • [28] Efficient Acetoin Production in Bacillus subtilis by Multivariate Modular Metabolic Engineering with Spatiotemporal Modulation
    Wang, Qiang
    Bao, Teng
    Hu, Mengkai
    Xu, Meijuan
    Rao, Zhiming
    Zhang, Xian
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2025, 13 (05): : 1927 - 1936
  • [29] Metabolic engineering of Bacillus subtilis for production of D-lactic acid
    Awasthi, Deepika
    Wang, Liang
    Rhee, Mun S.
    Wang, Qingzhao
    Chauliac, Diane
    Ingram, Lonnie O.
    Shanmugam, Keelnatham T.
    BIOTECHNOLOGY AND BIOENGINEERING, 2018, 115 (02) : 453 - 463
  • [30] Metabolic engineering of Bacillus subtilis for the co-production of uridine and acetoin
    Fan, Xiaoguang
    Wu, Heyun
    Jia, Zifan
    Li, Guoliang
    Li, Qiang
    Chen, Ning
    Xie, Xixian
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2018, 102 (20) : 8753 - 8762