Jensen Michael K, Keasling Jay D
The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Hørsholm, Denmark
The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Hørsholm, Denmark.
FEMS Yeast Res. 2015 Feb;15(1):1-10. doi: 10.1111/1567-1364.12185. Epub 2015 Jan 14.
The last 20 years of metabolic engineering has enabled bio-based production of fuels and chemicals from renewable carbon sources using cost-effective bioprocesses. Much of this work has been accomplished using engineered microorganisms that act as chemical factories. Although the time required to engineer microbial chemical factories has steadily decreased, improvement is still needed. Through the development of synthetic biology tools for key microbial hosts, it should be possible to further decrease the development times and improve the reliability of the resulting microorganism. Together with continuous decreases in price and improvements in DNA synthesis, assembly and sequencing, synthetic biology tools will rationalize time-consuming strain engineering, improve control of metabolic fluxes, and diversify screening assays for cellular metabolism. This review outlines some recently developed synthetic biology tools and their application to improve production of chemicals and fuels in yeast. Finally, we provide a perspective for the challenges that lie ahead.
过去20年的代谢工程已实现利用具有成本效益的生物工艺,从可再生碳源生物基生产燃料和化学品。这项工作大多是通过充当化学工厂的工程微生物来完成的。尽管构建微生物化学工厂所需的时间已稳步减少,但仍需改进。通过为关键微生物宿主开发合成生物学工具,应该有可能进一步缩短开发时间并提高所得微生物的可靠性。再加上DNA合成、组装和测序价格的持续下降以及技术改进,合成生物学工具将使耗时的菌株工程合理化,改善对代谢通量的控制,并使细胞代谢的筛选测定多样化。本综述概述了一些最近开发的合成生物学工具及其在改善酵母中化学品和燃料生产方面的应用。最后,我们对未来面临的挑战提出了展望。