Yang Jina, Kim Beomhee, Kim Gi Yeon, Jung Gyoo Yeol, Seo Sang Woo
1School of Chemical and Biological Engineering, Seoul National University, 1 Gwanak-ro, Gwanak-gu, Seoul, 08826 South Korea.
2Institute of Chemical Process, Seoul National University, 1 Gwanak-ro, Gwanak-gu, Seoul, 08826 South Korea.
Biotechnol Biofuels. 2019 May 9;12:113. doi: 10.1186/s13068-019-1460-5. eCollection 2019.
With the increased attention on bio-based industry, demands for techniques that enable fast and effective strain improvement have been dramatically increased. Evolutionary engineering, which is less dependent on biological information, has been applied to strain improvement. Currently, synthetic biology has made great innovations in evolutionary engineering, particularly in the development of synthetic tools for phenotypic perturbation. Furthermore, discovering biological parts with regulatory roles and devising novel genetic circuits have promoted high-throughput screening and selection. In this review, we first briefly explain basics of synthetic biology tools for mutagenesis and screening of improved variants, and then describe how these strategies have been improved and applied to phenotypic engineering. Evolutionary engineering using advanced synthetic biology tools will enable further innovation in phenotypic engineering through the development of novel genetic parts and assembly into well-designed logic circuits that perform complex tasks.
随着对生物基产业的关注度不断提高,对能够实现快速有效菌株改良的技术的需求急剧增加。进化工程较少依赖生物信息,已被应用于菌株改良。目前,合成生物学在进化工程方面取得了重大创新,特别是在用于表型扰动的合成工具的开发方面。此外,发现具有调控作用的生物部件并设计新型遗传电路促进了高通量筛选和选择。在本综述中,我们首先简要解释用于诱变和筛选改良变体的合成生物学工具的基础知识,然后描述这些策略是如何得到改进并应用于表型工程的。使用先进合成生物学工具的进化工程将通过开发新型遗传部件并将其组装成执行复杂任务的精心设计的逻辑电路,在表型工程中实现进一步创新。