Hossain Gazi Sakir, Nadarajan Saravanan Prabhu, Zhang Lei, Ng Tee-Kheang, Foo Jee Loon, Ling Hua, Choi Won Jae, Chang Matthew Wook
Department of Biochemistry, Yong Loo Lin School of Medicine, National University of Singapore, Singapore, Singapore.
NUS Synthetic Biology for Clinical and Technological Innovation (SynCTI), Life Sciences Institute, National University of Singapore, Singapore, Singapore.
Front Microbiol. 2018 Feb 12;9:155. doi: 10.3389/fmicb.2018.00155. eCollection 2018.
Living organisms have evolved over millions of years to fine tune their metabolism to create efficient pathways for producing metabolites necessary for their survival. Advancement in the field of synthetic biology has enabled the exploitation of these metabolic pathways for the production of desired compounds by creating microbial cell factories through metabolic engineering, thus providing sustainable routes to obtain value-added chemicals. Following the past success in metabolic engineering, there is increasing interest in diversifying natural metabolic pathways to construct non-natural biosynthesis routes, thereby creating possibilities for producing novel valuable compounds that are non-natural or without elucidated biosynthesis pathways. Thus, the range of chemicals that can be produced by biological systems can be expanded to meet the demands of industries for compounds such as plastic precursors and new antibiotics, most of which can only be obtained through chemical synthesis currently. Herein, we review and discuss novel strategies that have been developed to rewrite natural metabolic blueprints in a bid to broaden the chemical repertoire achievable in microorganisms. This review aims to provide insights on recent approaches taken to open new avenues for achieving biochemical production that are beyond currently available inventions.
生物体经过数百万年的进化,对其新陈代谢进行了精细调节,以创建高效的途径来产生生存所需的代谢物。合成生物学领域的进展使得通过代谢工程创建微生物细胞工厂,利用这些代谢途径生产所需化合物成为可能,从而提供了获得增值化学品的可持续途径。继过去代谢工程取得成功之后,人们越来越有兴趣使天然代谢途径多样化,以构建非天然生物合成途径,从而为生产非天然或无明确生物合成途径的新型有价值化合物创造可能性。因此,可以扩大生物系统能够生产的化学品范围,以满足工业对塑料前体和新抗生素等化合物的需求,目前其中大多数只能通过化学合成获得。在此,我们回顾并讨论为重写天然代谢蓝图而开发的新策略,以拓宽微生物中可实现的化学物质种类。本综述旨在深入了解为实现生化生产开辟新途径而采取的最新方法,这些方法超越了目前已有的发明。