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Gene silencing based on RNA-guided catalytically inactive Cas9 (dCas9): a new tool for genetic engineering in Leptospira

机译:基于RNA引导的非活性Cas9(dCas9)的基因沉默:钩端螺旋体基因工程的新工具

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摘要

Leptospirosis is a worldwide zoonosis caused by pathogenic bacteria of the genus Leptospira, which also includes free-living saprophyte strains. Many aspects of leptospiral basic biology and virulence mechanisms remain unexplored mainly due to the lack of effective genetic tools available for these bacteria. Recently, the type II CRISPR/Cas system from Streptococcus pyogenes has been widely used as an efficient genome engineering tool in bacteria by inducing double-strand breaks (DSBs) in the desired genomic targets caused by an RNA-guided DNA endonuclease called Cas9, and the DSB repair associated machinery. In the present work, plasmids expressing heterologous S. pyogenes Cas9 in L. biflexa cells were generated, and the enzyme could be expressed with no apparent toxicity to leptospiral cells. However, L. biflexa cells were unable to repair RNA-guided Cas9-induced DSBs. Thus, we used a catalytically dead Cas9 (dCas9) to obtain gene silencing rather than disruption, in a strategy called CRISPR interference (CRISPRi). We demonstrated complete gene silencing in L. biflexa cells when both dCas9 and single-guide RNA (sgRNA) targeting the coding strand of the β-galactosidase gene were expressed simultaneously. Furthermore, when the system was applied for silencing the dnaK gene, no colonies were recovered, indicating that DnaK protein is essential in Leptospira. In addition, flagellar motor switch FliG gene silencing resulted in reduced bacterial motility. To the best of our knowledge, this is the first work applying the CRISPRi system in Leptospira and spirochetes in general, expanding the tools available for understanding leptospiral biology.
机译:钩端螺旋体病是一种由钩端螺旋体属的致病细菌引起的全球人畜共患病,钩端螺旋体还包括自由活动的腐生菌菌株。钩端螺旋体基本生物学和毒力机制的许多方面仍未探索,主要是由于缺乏可用于这些细菌的有效遗传工具。最近,化脓链球菌的II型CRISPR / Cas系统已被广泛用作细菌中的有效基因组工程工具,其方法是在所需的基因组靶标中诱导双链断裂(DSB),该双链断裂是由RNA引导的DNA内切核酸酶Cas9引起的,并且DSB维修相关机械。在目前的工作中,产生了在双弯曲乳杆菌细胞中表达异源化脓性链球菌Cas9的质粒,该酶可以表达而对钩端螺旋体细胞没有明显的毒性。但是,双弯曲乳杆菌细胞不能修复RNA引导的Cas9诱导的DSB。因此,我们使用一种称为CRISPR干扰(CRISPRi)的策略使用催化死亡的Cas9(dCas9)获得基因沉默而不是破坏基因。当同时表达靶向β-半乳糖苷酶基因编码链的dCas9和单向导RNA(sgRNA)时,我们证明了双弯曲乳杆菌细胞中的完整基因沉默。此外,当该系统用于沉默dnaK基因时,未发现菌落,表明DnaK蛋白在钩端螺旋体中必不可少。此外,鞭毛马达开关FliG基因沉默导致细菌运动性降低。据我们所知,这是将CRISPRi系统普遍应用于钩端螺旋体和螺旋体的第一项工作,扩展了可用于了解钩端螺旋体生物学的工具。

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