Department of Chemical Engineering and Applied Chemistry, University of Toronto, Toronto, ON, Canada.
Department of Chemical Engineering and Applied Chemistry, University of Toronto, Toronto, ON, Canada.
Biotechnol Adv. 2019 Nov 1;37(6):107379. doi: 10.1016/j.biotechadv.2019.04.001. Epub 2019 Apr 4.
Production of chemicals in microorganisms is no longer restricted to products arising from native metabolic potential. In this review, we highlight the evolution of metabolic engineering studies, from the production of natural chemicals fermented from biomass hydrolysates, to the engineering of microorganisms for the production of non-natural chemicals. Advances in synthetic biology are accelerating the successful development of microbial cell factories to directly produce value-added chemicals. Here we outline the emergence of novel computational tools for the creation of synthetic pathways, for designing artificial enzymes for non-natural reactions and for re-wiring host metabolism to increase the metabolic flux to products. We also highlight exciting opportunities for applying directed evolution of enzymes, dynamic control of growth and production, growth-coupling strategies as well as decoupled strategies based on orthogonal pathways in the context of non-natural chemicals.
微生物中的化学品生产不再局限于源自天然代谢潜能的产物。在这篇综述中,我们强调了代谢工程研究的发展,从利用生物质水解物发酵生产天然化学品,到为生产非天然化学品而对微生物进行工程改造。合成生物学的进步正在加速微生物细胞工厂的成功开发,以直接生产高附加值化学品。在这里,我们概述了用于创建合成途径的新型计算工具的出现,用于设计用于非天然反应的人工酶,以及用于重新连接宿主代谢以增加产物代谢通量的方法。我们还强调了在非天然化学品的背景下,应用酶的定向进化、生长和生产的动态控制、生长偶联策略以及基于正交途径的解偶联策略的令人兴奋的机会。