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CRISPR-Cas: an efficient tool for genome engineering of virulent bacteriophages

机译:CRISPR-Cas:高效噬菌体基因组工程的有效工具

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Bacteriophages are now widely recognized as major players in a wide variety of ecosystems. Novel genes are often identified in newly isolated phages as well as in environmental metavirome studies. Most of these novel viral genes have unknown functions but appear to be coding for small, non-structural proteins. To understand their biological role, very efficient genetic tools are required to modify them, especially in the genome of virulent phages. We first show that specific point mutations and large deletions can be engineered in the genome of the virulent phage 2972 using the Streptococcus thermophilus CRISPR-Cas Type II-A system as a selective pressure to increase recombination efficiencies. Of significance, all the plaques tested contained recombinant phages with the desired mutation. Furthermore, we show that the CRISPR-Cas engineering system can be used to efficiently introduce a functional methyltransferase gene into a virulent phage genome. Finally, synthetic CRISPR bacteriophage insensitive mutants were constructed by cloning a spacer-repeat unit in a low-copy vector illustrating the possibility to target multiple regions of the phage genome. Taken together, this data shows that the CRISPR-Cas system is an efficient and adaptable tool for editing the otherwise intractable genomes of virulent phages and to better understand phage-host interactions.
机译:噬菌体现已被广泛认为是各种生态系统的主要参与者。通常在新分离的噬菌体以及环境超病毒组研究中鉴定出新基因。这些新颖的病毒基因大多数具有未知的功能,但似乎编码小的非结构蛋白。为了了解它们的生物学作用,需要非常有效的遗传工具对其进行修饰,尤其是在有毒噬菌体的基因组中。我们首先显示,可以使用嗜热链球菌CRISPR-Cas II-A型系统作为选择性压力来提高毒性噬菌体2972的基因组中的特定点突变和大缺失,以提高重组效率。重要的是,所有测试的噬菌斑均包含具有所需突变的重组噬菌体。此外,我们表明,CRISPR-Cas工程系统可用于有效地将功能性甲基转移酶基因引入有毒噬菌体基因组。最后,通过在低拷贝载体中克隆一个间隔重复单元来构建合成的CRISPR噬菌体不敏感突变体,从而说明了靶向噬菌体基因组多个区域的可能性。综上所述,该数据表明,CRISPR-Cas系统是一种有效且适应性强的工具,用于编辑原本难以处理的强力噬菌体基因组并更好地了解噬菌体与宿主之间的相互作用。

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