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微生物进化工程中的诱变技术——利用 CRISPR-Cas、寡核苷酸、重组酶和聚合酶。

Mutagenesis techniques for evolutionary engineering of microbes - exploiting CRISPR-Cas, oligonucleotides, recombinases, and polymerases.

机构信息

VIB Laboratory for Systems Biology, VIB-KU Leuven Center for Microbiology, Leuven, 3001, Belgium; CMPG Laboratory of Genetics and Genomics, Department M2S, KU Leuven, Leuven, 3001, Belgium.

Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin, China; College of Life Science, Tianjin Normal University, Tianjin, China.

出版信息

Trends Microbiol. 2024 Sep;32(9):884-901. doi: 10.1016/j.tim.2024.02.006. Epub 2024 Mar 15.

Abstract

The natural process of evolutionary adaptation is often exploited as a powerful tool to obtain microbes with desirable traits. For industrial microbes, evolutionary engineering is often used to generate variants that show increased yields or resistance to stressful industrial environments, thus obtaining superior microbial cell factories. However, even in large populations, the natural supply of beneficial mutations is typically low, which implies that obtaining improved microbes is often time-consuming and inefficient. To overcome this limitation, different techniques have been developed that boost mutation rates. While some of these methods simply increase the overall mutation rate across a genome, others use recent developments in DNA synthesis, synthetic biology, and CRISPR-Cas techniques to control the type and location of mutations. This review summarizes the most important recent developments and methods in the field of evolutionary engineering in model microorganisms. It discusses how both in vitro and in vivo approaches can increase the genetic diversity of the host, with a special emphasis on in vivo techniques for the optimization of metabolic pathways for precision fermentation.

摘要

自然进化适应过程常被用作获取具有理想特性的微生物的有力工具。对于工业微生物,进化工程常被用于生成具有更高产量或对恶劣工业环境的抗性的变体,从而获得更优的微生物细胞工厂。然而,即使在大群体中,有益突变的自然供应通常也很低,这意味着获得改良的微生物通常是耗时且低效的。为了克服这一限制,已经开发了不同的技术来提高突变率。虽然其中一些方法只是简单地提高整个基因组的总体突变率,而其他方法则利用 DNA 合成、合成生物学和 CRISPR-Cas 技术的最新进展来控制突变的类型和位置。本文综述了模式微生物进化工程领域的最新重要进展和方法。它讨论了如何通过体外和体内方法来增加宿主的遗传多样性,特别强调了用于优化精确发酵代谢途径的体内技术。

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