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CRISPR 工具在微生物基因组和表型工程中的应用

CRISPR-Enabled Tools for Engineering Microbial Genomes and Phenotypes.

机构信息

Chemical and Biological Engineering, University of Colorado, Boulder, CO, USA.

Renewable and Sustainable Energy Institute, University of Colorado, Boulder, CO, USA.

出版信息

Biotechnol J. 2018 Sep;13(9):e1700586. doi: 10.1002/biot.201700586. Epub 2018 Jul 12.

Abstract

In recent years CRISPR-Cas technologies have revolutionized microbial engineering approaches. Genome editing and non-editing applications of various CRISPR-Cas systems have expanded the throughput and scale of engineering efforts, as well as opened up new avenues for manipulating genomes of non-model organisms. As we expand the range of organisms used for biotechnological applications, we need to develop better, more versatile tools for manipulation of these systems. Here the authors summarize the current advances in microbial gene editing using CRISPR-Cas based tools and highlight state-of-the-art methods for high-throughput, efficient genome-scale engineering in model organisms Escherichia coli and Saccharomyces cerevisiae. The authors also review non-editing CRISPR-Cas applications available for gene expression manipulation, epigenetic remodeling, RNA editing, labeling, and synthetic gene circuit design. Finally, the authors point out the areas of research that need further development in order to expand the range of applications and increase the utility of these new methods.

摘要

近年来,CRISPR-Cas 技术彻底改变了微生物工程方法。各种 CRISPR-Cas 系统的基因组编辑和非编辑应用扩展了工程工作的通量和规模,并为操纵非模式生物的基因组开辟了新途径。随着我们扩大用于生物技术应用的生物体范围,我们需要开发更好、更通用的工具来操纵这些系统。在这里,作者总结了使用基于 CRISPR-Cas 的工具进行微生物基因编辑的最新进展,并重点介绍了在模式生物大肠杆菌和酿酒酵母中进行高通量、高效基因组规模工程的最先进方法。作者还回顾了可用于基因表达操作、表观遗传重塑、RNA 编辑、标记和合成基因电路设计的非编辑 CRISPR-Cas 应用。最后,作者指出需要进一步发展研究领域,以扩大这些新方法的应用范围并提高其效用。

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