De Novo Metabolic Engineering and the Promise of Synthetic DNA

被引:10
|
作者
Klein-Marcuschamer, Daniel [1 ]
Yadav, Vikramaditya G. [1 ]
Ghaderi, Adel [1 ]
Stephanopoulos, Gregory N. [1 ]
机构
[1] MIT, Dept Chem Engn, Bioinformat & Metabol Engn Lab, Cambridge, MA 02139 USA
来源
BIOSYSTEMS ENGINEERING I: CREATING SUPERIOR BIOCATALYSTS | 2010年 / 120卷
关键词
Gene circuits; Metabolic control; Oligonucleotide synthesis; Regulatory engineering; Synthetic biology; HIGH-LEVEL EXPRESSION; HYALURONIC-ACID PRODUCTION; MESSENGER-RNA STRUCTURE; ZINC-FINGER PROTEINS; GENE-EXPRESSION; ESCHERICHIA-COLI; TETRAHYMENA-PYRIFORMIS; PHENOTYPIC ALTERATION; HOMING ENDONUCLEASES; CODON USAGE;
D O I
10.1007/10_2009_52
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
The uncertain price and tight supply of crude oil and the ever-increasing demand for clean energy have prompted heightened attention to the development of sustainable fuel technologies that ensure continued economic development while maintaining stewardship of the environment. In the face of these enormous challenges, biomass has emerged as a viable alternative to petroleum for the production of energy, chemicals, and materials owing to its abundance, inexpensiveness, and carbon-neutrality. Moreover, the immense ease and efficiency of biological systems at converting biomass-derived feedstocks into fuels, chemicals, and materials has generated renewed interest in biotechnology as a replacement for traditional chemical processes. Aided by the ever-expanding repertoire of microbial genetics and plant biotechnology, improved understanding of gene regulation and cellular metabolism, and incessantly accumulating gene and protein data, scientists are now contemplating engineering microbial cell factories to produce fuels, chemical feedstocks, polymers and pharmaceuticals in an economically and environmentally sustainable way. This goal resonates with that of metabolic engineering the improvement of cellular properties through the intelligent design, rational modification, or directed evolution of biochemical pathways, and arguably, metabolic engineering seems best positioned to achieve the concomittant goals of environmental stewardship and economic prolificity. Improving a host organism's cellular traits and the potential design of new phenotypes is strongly dependent on the ability to effectively control the organism's genetic machinery. In fact, finely-tuned gene expression is imperative for achieving an optimal balance between pathway expression and cell viability, while avoiding cytotoxicity due to accumulation of certain gene products or metabolites. Early attempts to engineer a cell's metabolism almost exclusively relied on merely deleting or over-expressing single or multiple genes using recombinant DNA, and intervention targets were predominantly selected based on knowledge of the stoichiometry, kinetics, and regulation of the pathway of interest. However, the distributive nature of metabolic control, as opposed to the existence of a single rate-limiting step, predicates the controlled expression of multiple enzymes in several coordinated pathways to achieve the desired flux, and, as such, simple strategies involving either deleting or over-expressing genes are greatly limited in this context. On the other hand, the use of synthetic or modified promoters, riboswitches, tunable intergenic regions, and translation modulators such as internal ribosome entry sequences, upstream open reading frames, optimized mRNA secondary structures, and RNA silencing have been shown to be enormously conducive to achieving the fine-tuning of gene expression. These modifications to the genetic machinery of the host organism can be best achieved via the use of synthetic DNA technology, and the constant improvement in the affordability and quality of oligonucleotide synthesis suggests that these might well become the mainstay of the metabolic engineering toolbox in the years to come. The possibilities that arise with the use of synthetic oligonucleotides will be delineated herein.
引用
收藏
页码:101 / 131
页数:31
相关论文
共 50 条
  • [21] Synthetic biology devices as tools for metabolic engineering
    Shiue, Eric
    Prather, Kristala L. J.
    BIOCHEMICAL ENGINEERING JOURNAL, 2012, 65 : 82 - 89
  • [22] Metabolic Engineering of Escherichia coli for De Novo Production of 1,2-Butanediol
    Qin, Nan
    Zhu, Fanghuan
    Liu, Yanyan
    Liu, Dehua
    Chen, Zhen
    ACS SYNTHETIC BIOLOGY, 2023, 13 (01): : 351 - 357
  • [23] Metabolic engineering of Corynebacterium glutamicum for the de novo production of ethylene glycol from glucose
    Chen, Zhen
    Huang, Jinhai
    Wu, Yao
    Liu, Dehua
    METABOLIC ENGINEERING, 2016, 33 : 12 - 18
  • [24] Synthetic Biology Toolkits for Metabolic Engineering of Cyanobacteria
    Xia, Peng-Fei
    Ling, Hua
    Foo, Jee Loon
    Chang, Matthew Wook
    BIOTECHNOLOGY JOURNAL, 2019, 14 (06)
  • [25] Metabolic Engineering and Synthetic Biology
    Ramzi, Ahmad Bazli
    OMICS APPLICATIONS FOR SYSTEMS BIOLOGY, 2018, 1102 : 81 - 95
  • [26] Review of Microfluidic Photobioreactor Technology for Metabolic Engineering and Synthetic Biology of Cyanobacteria and Microalgae
    Yang, Ya-Tang
    Wang, Chun Ying
    Micromachines, 2016, 7 (10):
  • [27] Recent progress in development of synthetic biology platforms and metabolic engineering of Corynebacterium glutamicum
    Woo, Han Min
    Park, Jin-Byung
    JOURNAL OF BIOTECHNOLOGY, 2014, 180 : 43 - 51
  • [28] Small RNA regulators in bacteria: powerful tools for metabolic engineering and synthetic biology
    Kang, Zhen
    Zhang, Chuanzhi
    Zhang, Junli
    Jin, Peng
    Zhang, Juan
    Du, Guocheng
    Chen, Jian
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2014, 98 (08) : 3413 - 3424
  • [29] Engineering a microbial platform for de novo biosynthesis of diverse methylxanthines
    McKeague, Maureen
    Wang, Yen-Hsiang
    Cravens, Aaron
    Win, Maung Nyan
    Smolke, Christina D.
    METABOLIC ENGINEERING, 2016, 38 : 191 - 203
  • [30] Modular Engineering of Escherichia coli for de novo Production of Eugenol
    Zhao G.
    Cao J.
    Ma Y.
    Qiu Z.
    Li J.
    Tianjin Daxue Xuebao (Ziran Kexue yu Gongcheng Jishu Ban)/Journal of Tianjin University Science and Technology, 2022, 55 (07): : 728 - 736