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RNA-guided editing of bacterial genomes using CRISPR-Cas systems

机译:使用CRIspR-Cas系统RNa引导编辑细菌基因组

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摘要

Here we use the clustered, regularly interspaced, short palindromic repeats (CRISPR)–associated Cas9 endonuclease complexed with dual-RNAs to introduce precise mutations in the genomes of Streptococcus pneumoniae and Escherichia coli. The approach relies on dual-RNA:Cas9-directed cleavage at the targeted genomic site to kill unmutated cells and circumvents the need for selectable markers or counter-selection systems. We reprogram dual-RNA:Cas9 specificity by changing the sequence of short CRISPR RNA (crRNA) to make single- and multinucleotide changes carried on editing templates. Simultaneous use of two crRNAs enables multiplex mutagenesis. In S. pneumoniae, nearly 100% of cells that were recovered using our approach contained the desired mutation, and in E. coli, 65% that were recovered contained the mutation, when the approach was used in combination with recombineering. We exhaustively analyze dual-RNA:Cas9 target requirements to define the range of targetable sequences and show strategies for editing sites that do not meet these requirements, suggesting the versatility of this technique for bacterial genome engineering.
机译:在这里,我们使用成簇的,规则间隔的,短回文重复序列(CRISPR)相关的Cas9核酸内切酶与双RNA复合,在肺炎链球菌和大肠杆菌的基因组中引入精确的突变。该方法依赖于靶向基因组位点的双RNA:Cas9定向切割,以杀死未突变的细胞,从而避免了对选择性标记或反选择系统的需求。我们通过更改短CRISPR RNA(crRNA)的序列来对双RNA:Cas9特异性进行重新编程,以使编辑模板上进行的单核苷酸和多核苷酸更改。同时使用两个crRNA可以进行多重诱变。在肺炎链球菌中,使用我们的方法回收的细胞中近100%包含所需的突变,而在大肠杆菌中,当该方法与重组结合使用时,回收的65%的细胞中包含突变。我们详尽地分析了双RNA:Cas9的靶标需求,以定义可靶序列的范围,并显示了不符合这些要求的编辑位点的策略,这表明该技术可用于细菌基因组工程的多功能性。

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