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CRMAGE:CRISPR优化的MAGE重组工程

CRMAGE: CRISPR Optimized MAGE Recombineering.

作者信息

Ronda Carlotta, Pedersen Lasse Ebdrup, Sommer Morten O A, Nielsen Alex Toftgaard

机构信息

The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Kogle Allé 6, 2970 Hørsholm, Denmark.

出版信息

Sci Rep. 2016 Jan 22;6:19452. doi: 10.1038/srep19452.

Abstract

A bottleneck in metabolic engineering and systems biology approaches is the lack of efficient genome engineering technologies. Here, we combine CRISPR/Cas9 and λ Red recombineering based MAGE technology (CRMAGE) to create a highly efficient and fast method for genome engineering of Escherichia coli. Using CRMAGE, the recombineering efficiency was between 96.5% and 99.7% for gene recoding of three genomic targets, compared to between 0.68% and 5.4% using traditional recombineering. For modulation of protein synthesis (small insertion/RBS substitution) the efficiency was increased from 6% to 70%. CRMAGE can be multiplexed and enables introduction of at least two mutations in a single round of recombineering with similar efficiencies. PAM-independent loci were targeted using degenerate codons, thereby making it possible to modify any site in the genome. CRMAGE is based on two plasmids that are assembled by a USER-cloning approach enabling quick and cost efficient gRNA replacement. CRMAGE furthermore utilizes CRISPR/Cas9 for efficient plasmid curing, thereby enabling multiple engineering rounds per day. To facilitate the design process, a web-based tool was developed to predict both the λ Red oligos and the gRNAs. The CRMAGE platform enables highly efficient and fast genome editing and may open up promising prospective for automation of genome-scale engineering.

摘要

代谢工程和系统生物学方法中的一个瓶颈是缺乏高效的基因组工程技术。在此,我们将基于CRISPR/Cas9和λ Red重组工程的MAGE技术(CRMAGE)相结合,创建了一种高效、快速的大肠杆菌基因组工程方法。使用CRMAGE,对三个基因组靶点进行基因重编码时,重组效率在96.5%至99.7%之间,而使用传统重组工程时效率在0.68%至5.4%之间。对于蛋白质合成的调控(小插入/RBS替换),效率从6%提高到了70%。CRMAGE可以进行多重操作,并能够在一轮重组工程中以相似的效率引入至少两个突变。使用简并密码子靶向PAM非依赖位点,从而有可能修饰基因组中的任何位点。CRMAGE基于两个通过USER克隆方法组装的质粒,能够快速且经济高效地替换gRNA。此外,CRMAGE利用CRISPR/Cas9实现高效的质粒清除,从而每天能够进行多轮工程操作。为了便于设计过程,开发了一个基于网络的工具来预测λ Red寡核苷酸和gRNA。CRMAGE平台能够实现高效、快速的基因组编辑,并可能为基因组规模工程的自动化开辟广阔前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f59d/4726160/aa34e4ce48fc/srep19452-f1.jpg

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