School of Biological Sciences, The University of Hong Kong, Pokfulam Road, Hong Kong SAR, China.
Integrative Microbiology Research Centre, South China Agricultural University, Guangzhou, Guangdong, China.
Nucleic Acids Res. 2021 Sep 20;49(16):e94. doi: 10.1093/nar/gkab521.
The Class 1 type I CRISPR-Cas systems represent the most abundant and diverse CRISPR systems in nature. However, their applications for generic genome editing have been hindered due to difficulties of introducing the class-specific, multi-component effectors (Cascade) in heterologous hosts for functioning. Here we established a transferrable Cascade system that enables stable integration and expression of a highly active type I-F Cascade in heterologous bacterial hosts for various genetic exploitations. Using the genetically recalcitrant Pseudomonas species as a paradigm, we show that the transferred Cascade displayed substantially higher DNA interference activity and greater editing capacity than both the integrative and plasmid-borne Cas9 systems, and enabled deletion of large fragments such as the 21-kb integrated cassette with efficiency and simplicity. An advanced I-F-λred system was further developed to enable editing in genotypes with poor homologous recombination capacity, clinical isolates lacking sequence information, and cells containing anti-CRISPR elements Acrs. Lastly, an 'all-in-one' I-F Cascade-mediated CRISPRi platform was developed for transcription modulation by simultaneous introduction of the Cascade and the programmed mini-CRISPR array in one-step. This study provides a framework for expanding the diverse type I Cascades for widespread, heterologous genome editing and establishment of editing techniques in 'non-model' bacterial species.
I 型 CRISPR-Cas 系统 1 类代表了自然界中最丰富和最多样化的 CRISPR 系统。然而,由于难以将特异性的多成分效应器(Cascade)引入异源宿主以发挥作用,它们在通用基因组编辑中的应用受到了限制。在这里,我们建立了一种可转移的 Cascade 系统,该系统能够在异源细菌宿主中稳定整合和表达高度活跃的 I 型-F Cascade,从而实现各种遗传利用。我们使用遗传上顽固的假单胞菌作为范例,表明转移的 Cascade 显示出比整合和质粒携带的 Cas9 系统更高的 DNA 干扰活性和更大的编辑能力,并且能够以效率和简单性删除大型片段,如 21kb 整合盒。进一步开发了先进的 I-F-λred 系统,以实现具有较差同源重组能力的基因型、缺乏序列信息的临床分离株和含有抗 CRISPR 元件 Acrs 的细胞的编辑。最后,开发了一种“一体化”的 I-F Cascade 介导的 CRISPRi 平台,通过在一步中同时引入 Cascade 和编程的 mini-CRISPR 阵列,实现转录调节。这项研究为扩展多样化的 I 型 Cascade 以进行广泛的异源基因组编辑以及在“非模式”细菌物种中建立编辑技术提供了一个框架。