Abatemarco Joseph, Hill Andrew, Alper Hal S
Department of Chemical Engineering, The University of Texas at Austin, Austin, TX, USA.
Biotechnol J. 2013 Dec;8(12):1397-410. doi: 10.1002/biot.201300021. Epub 2013 Jul 15.
Cellular systems can be engineered into factories that produce high-value chemicals from renewable feedstock. Such an approach requires an expanded toolbox for metabolic engineering. Recently, protein engineering and directed evolution strategies have started to play a growing and critical role within metabolic engineering. This review focuses on the various ways in which directed evolution can be applied in conjunction with metabolic engineering to improve product yields. Specifically, we discuss the application of directed evolution on both catalytic and non-catalytic traits of enzymes, on regulatory elements, and on whole genomes in a metabolic engineering context. We demonstrate how the goals of metabolic pathway engineering can be achieved in part through evolving cellular parts as opposed to traditional approaches that rely on gene overexpression and deletion. Finally, we discuss the current limitations in screening technology that hinder the full implementation of a metabolic pathway-directed evolution approach.
细胞系统可以被设计成从可再生原料生产高价值化学品的工厂。这种方法需要一个用于代谢工程的扩展工具箱。最近,蛋白质工程和定向进化策略在代谢工程中开始发挥越来越重要的关键作用。本综述重点关注定向进化与代谢工程相结合以提高产品产量的各种方式。具体而言,我们讨论了定向进化在代谢工程背景下对酶的催化和非催化特性、调控元件以及全基因组的应用。我们展示了与依赖基因过表达和缺失的传统方法相反,如何通过进化细胞部件部分实现代谢途径工程的目标。最后,我们讨论了阻碍代谢途径定向进化方法全面实施的筛选技术当前的局限性。