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Genome engineering in Saccharomyces cerevisiae using CRISPR-Cas systems

机译:使用CRISPR-Cas系统在酿酒酵母中进行基因组工程

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摘要

Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR) and CRISPR-associated (Cas) systems in bacteria and archaea use RNA-guided nuclease activity to provide adaptive immunity against invading foreign nucleic acids. Here, we report the use of type II bacterial CRISPR-Cas system in Saccharomyces cerevisiae for genome engineering. The CRISPR-Cas components, Cas9 gene and a designer genome targeting CRISPR guide RNA (gRNA), show robust and specific RNA-guided endonuclease activity at targeted endogenous genomic loci in yeast. Using constitutive Cas9 expression and a transient gRNA cassette, we show that targeted double-strand breaks can increase homologous recombination rates of single- and double-stranded oligonucleotide donors by 5-fold and 130-fold, respectively. In addition, co-transformation of a gRNA plasmid and a donor DNA in cells constitutively expressing Cas9 resulted in near 100% donor DNA recombination frequency. Our approach provides foundations for a simple and powerful genome engineering tool for site-specific mutagenesis and allelic replacement in yeast.
机译:细菌和古细菌中的成簇的规则间隔的短回文重复序列(CRISPR)和CRISPR相关的(Cas)系统使用RNA引导的核酸酶活性来提供针对入侵的外来核酸的适应性免疫力。在这里,我们报告了在酿酒酵母中用于基因组工程的II型细菌CRISPR-Cas系统的使用。 CRISPR-Cas组件,Cas9基因和靶向CRISPR指导RNA(gRNA)的设计者基因组在酵母中靶向的内源基因组位点上显示出强大而特异性的RNA指导的内切核酸酶活性。使用组成型Cas9表达和瞬时gRNA盒,我们表明靶向的双链断裂可以分别增加5倍和130倍的单链和双链寡核苷酸供体的​​同源重组率。另外,在组成性表达Cas9的细胞中gRNA质粒和供体DNA的共转化导致近100%的供体DNA重组频率。我们的方法为简单而强大的基因组工程工具提供了基础,该工具可用于酵母中的特定位点诱变和等位基因置换。

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