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Harnessing CRISPR-Cas9 for Genome Editing in Streptococcus pneumoniae D39V

机译:利用CRISPR-CAS9进行链球菌D39V中的基因组编辑

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CRISPR-Cas systems provide bacteria and archaea with adaptive immunity against viruses and plasmids by the detection and cleavage of invading foreign DNA. Modified versions of this system can be exploited as a biotechnological tool for precise genome editing at a targeted locus. Here, we developed a replicative plasmid that carries the CRISPR-Cas9 system for RNA-programmable genome editing by counterselection in the opportunistic human pathogen Streptococcus pneumoniae . Specifically, we demonstrate an approach for making targeted markerless gene knockouts and large genome deletions. After a precise double-stranded break (DSB) is introduced, the cells’ DNA repair mechanism of homology-directed repair (HDR) is exploited to select successful transformants. This is achieved through the transformation of a template DNA fragment that will recombine in the genome and eliminate recognition of the target of the Cas9 endonuclease. Next, the newly engineered strain can be easily cured from the plasmid, which is temperature sensitive for replication, by growing it at the nonpermissive temperature. This allows for consecutive rounds of genome editing. Using this system, we engineered a strain with three major virulence factors deleted. The approaches developed here could potentially be adapted for use with other Gram-positive bacteria.IMPORTANCE Streptococcus pneumoniae (the pneumococcus) is an important opportunistic human pathogen killing more than 1 million people each year. Having the availability of a system capable of easy genome editing would significantly facilitate drug discovery and efforts to identify new vaccine candidates. Here, we introduced an easy-to-use system to perform multiple rounds of genome editing in the pneumococcus by putting the CRISPR-Cas9 system on a temperature-sensitive replicative plasmid. The approaches used here will advance genome editing projects in this important human pathogen.
机译:CRISPR-CAS系统通过检测和切割侵入外国DNA,提供细菌和古痤疮对病毒和质粒的适应性免疫。该系统的修改版本可以被利用为生物技术工具,用于在目标基因座处精确基因组编辑。在这里,我们开发了一种复制质粒,其携带CRISPR-CAS9系统,用于通过机会人体病原体链球菌肺炎料的计数器进行RNA可编程基因组编辑。具体而言,我们证明了一种使靶向无标记基因敲除和大基因组缺失的方法。在引入精确的双链断裂(DSB)之后,利用同源导向修复(HDR)的细胞'DNA修复机制以选择成功的转化体。这通过模板DNA片段的转化来实现,所述模板DNA片段将重组在基因组中并消除Cas9内切核酸酶的靶标。接下来,通过在非智能温度下生长,新工程化菌株可以容易地从质粒上固化,这是对复制的温度敏感。这允许连续的基因组编辑。使用该系统,我们设计了一种带有三个主要毒力因子的菌株。这里开发的方法可能适用于其他革兰氏阳性的细菌。Portuce Streptocccus肺炎(肺炎球菌)是每年造成超过100万人的重要机会人体病原体。具有能够易于基因组编辑的系统的可用性将显着促进药物发现和核查新疫苗候选者的努力。在这里,我们介绍了一种易于使用的系统,通过将CRISPR-CAS9系统放在温度敏感的复制质粒上,在肺炎球菌中进行多轮基因组编辑。这里使用的方法将提前在这个重要人体病原体中提前基因组编辑项目。

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