基因组编辑
工具箱
多路复用
清脆的
枯草芽孢杆菌
反式激活crRNA
生物
细菌
计算生物学
CRISPR干扰
基因组工程
基因组
计算机科学
基因
Cas9
遗传学
程序设计语言
作者
Vitória Fernanda Bertolazzi Zocca,Graciely Gomes Corrêa,Milca Rachel da Costa Ribeiro Lins,Victor Nunes de Jesus,Leonardo Ferro Tavares,Laura Araujo da Silva Amorim,Guilherme E. Kundlatsch,Danielle Biscaro Pedrolli
标识
DOI:10.1080/07388551.2021.1983516
摘要
CRISPR has revolutionized the way we engineer genomes. Its simplicity and modularity have enabled the development of a great number of tools to edit genomes and to control gene expression. This powerful technology was first adapted to Bacillus subtilis in 2016 and has been intensely upgraded since then. Many tools have been successfully developed to build a CRISPR toolbox for this Gram-positive model and important industrial chassis. The toolbox includes tools, such as double-strand and single-strand cutting CRISPR for point mutation, gene insertion, and gene deletion up to 38 kb. Moreover, catalytic dead Cas proteins have been used for base editing, as well as for the control of gene expression (CRISPRi and CRISPRa). Many of these tools have been used for multiplex CRISPR with the most successful one targeting up to six loci simultaneously for point mutation. However, tools for efficient multiplex CRISPR for other functionalities are still missing in the toolbox. CRISPR engineering has already resulted in efficient protein and metabolite-producing strains, demonstrating its great potential. In this review, we cover all the important additions made to the B. subtilis CRISPR toolbox since 2016, and strain developments fomented by the technology.
科研通智能强力驱动
Strongly Powered by AbleSci AI