The Genome-Based Metabolic Systems Engineering to Boost Levan Production in a Halophilic Bacterial Model

被引:15
|
作者
Aydin, Busra [1 ]
Ozer, Tugba [1 ,2 ]
Oner, Ebru Toksoy [1 ]
Arga, Kazim Yalcin [1 ]
机构
[1] Marmara Univ, Dept Bioengn, TR-34722 Istanbul, Turkey
[2] Yildiz Tech Univ, Dept Bioengn, Istanbul, Turkey
关键词
metabolic systems engineering; levan; overproduction; insertional mutagenesis; Halomonas smyrnensis; HALOMONAS SMYRNENSIS AAD6(T); MICROBIAL LEVAN; BACILLUS-AMYLOLIQUEFACIENS; BIOSYNTHESIS; LEVANSUCRASE; ELONGATA; CULTURE; ECTOINE; FRUCTOOLIGOSACCHARIDES; OPTIMIZATION;
D O I
10.1089/omi.2017.0216
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
Metabolic systems engineering is being used to redirect microbial metabolism for the overproduction of chemicals of interest with the aim of transforming microbial hosts into cellular factories. In this study, a genome-based metabolic systems engineering approach was designed and performed to improve biopolymer biosynthesis capability of a moderately halophilic bacterium Halomonas smyrnensis AAD6(T) producing levan, which is a fructose homopolymer with many potential uses in various industries and medicine. For this purpose, the genome-scale metabolic model for AAD6(T) was used to characterize the metabolic resource allocation, specifically to design metabolic engineering strategies for engineered bacteria with enhanced levan production capability. Simulations were performed in silico to determine optimal gene knockout strategies to develop new strains with enhanced levan production capability. The majority of the gene knockout strategies emphasized the vital role of the fructose uptake mechanism, and pointed out the fructose-specific phosphotransferase system (PTSfru) as the most promising target for further metabolic engineering studies. Therefore, the PTSfru of AAD6(T) was restructured with insertional mutagenesis and triparental mating techniques to construct a novel, engineered H. smyrnensis strain, BMA14. Fermentation experiments were carried out to demonstrate the high efficiency of the mutant strain BMA14 in terms of final levan concentration, sucrose consumption rate, and sucrose conversion efficiency, when compared to the AAD6(T). The genome-based metabolic systems engineering approach presented in this study might be considered an efficient framework to redirect microbial metabolism for the overproduction of chemicals of interest, and the novel strain BMA14 might be considered a potential microbial cell factory for further studies aimed to design levan production processes with lower production costs.
引用
收藏
页码:198 / 209
页数:12
相关论文
共 50 条
  • [1] Genome-based metabolic engineering of Mannheimia succiniciproducens for succinic acid production
    Lee, SJ
    Song, H
    Lee, SY
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2006, 72 (03) : 1939 - 1948
  • [2] Toward Genome-Based Metabolic Engineering in Bacteria
    Oesterle, Sabine
    Wuethrich, Irene
    Panke, Sven
    ADVANCES IN APPLIED MICROBIOLOGY, VOL 101, 2017, 101 : 49 - 82
  • [3] Genome-Based Prediction of Bacterial Antibiotic Resistance
    Su, Michelle
    Satola, Sarah W.
    Read, Timothy D.
    JOURNAL OF CLINICAL MICROBIOLOGY, 2019, 57 (03)
  • [4] Whole genome-based phylogenetic analysis of bacterial two-component systems
    Nguyen T.V.A.
    Hong S.H.
    Biotechnology and Bioprocess Engineering, 2008, 13 (3) : 288 - 292
  • [5] Genome-based engineering of ligninolytic enzymes in fungi
    Asemoloye, Michael Dare
    Marchisio, Mario Andrea
    Gupta, Vijai Kumar
    Pecoraro, Lorenzo
    MICROBIAL CELL FACTORIES, 2021, 20 (01)
  • [6] Genome-based engineering of ligninolytic enzymes in fungi
    Michael Dare Asemoloye
    Mario Andrea Marchisio
    Vijai Kumar Gupta
    Lorenzo Pecoraro
    Microbial Cell Factories, 20
  • [7] Whole genome-based phylogenetic analysis of bacterial two-component systems
    Nguyen, Thuy Vu An
    Hong, Soon Ho
    BIOTECHNOLOGY AND BIOPROCESS ENGINEERING, 2008, 13 (03) : 288 - 292
  • [8] Metabolic engineering of Bacillus subtilis based on genome-scale metabolic model to promote fengycin production
    Mingliang He
    Jianping Wen
    Ying Yin
    Pan Wang
    3 Biotech, 2021, 11
  • [9] Enhancement of rapamycin production by metabolic engineering in Streptomyces hygroscopicus based on genome-scale metabolic model
    Dang, Lanqing
    Liu, Jiao
    Wang, Cheng
    Liu, Huanhuan
    Wen, Jianping
    JOURNAL OF INDUSTRIAL MICROBIOLOGY & BIOTECHNOLOGY, 2017, 44 (02) : 259 - 270
  • [10] Metabolic engineering of Bacillus subtilis based on genome-scale metabolic model to promote fengycin production
    He, Mingliang
    Wen, Jianping
    Yin, Ying
    Wang, Pan
    3 BIOTECH, 2021, 11 (10)