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选择性加载和处理间隔序列以实现精确的 CRISPR 适应。

Selective loading and processing of prespacers for precise CRISPR adaptation.

机构信息

Kavli Institute of Nanoscience, Department of Bionanoscience, Delft University of Technology, Delft, The Netherlands.

Molecular Horizons and School of Chemistry and Molecular Bioscience, University of Wollongong, Wollongong, New South Wales, Australia.

出版信息

Nature. 2020 Mar;579(7797):141-145. doi: 10.1038/s41586-020-2018-1. Epub 2020 Feb 19.

Abstract

CRISPR-Cas immunity protects prokaryotes against invading genetic elements. It uses the highly conserved Cas1-Cas2 complex to establish inheritable memory (spacers). How Cas1-Cas2 acquires spacers from foreign DNA fragments (prespacers) and integrates them into the CRISPR locus in the correct orientation is unclear. Here, using the high spatiotemporal resolution of single-molecule fluorescence, we show that Cas1-Cas2 selects precursors of prespacers from DNA in various forms-including single-stranded DNA and partial duplexes-in a manner that depends on both the length of the DNA strand and the presence of a protospacer adjacent motif (PAM) sequence. We also identify DnaQ exonucleases as enzymes that process the Cas1-Cas2-loaded prespacer precursors into mature prespacers of a suitable size for integration. Cas1-Cas2 protects the PAM sequence from maturation, which results in the production of asymmetrically trimmed prespacers and the subsequent integration of spacers in the correct orientation. Our results demonstrate the kinetic coordination of prespacer precursor selection and PAM trimming, providing insight into the mechanisms that underlie the integration of functional spacers in the CRISPR loci.

摘要

CRISPR-Cas 免疫保护原核生物免受入侵的遗传元件的侵害。它使用高度保守的 Cas1-Cas2 复合物来建立可遗传的记忆(间隔物)。Cas1-Cas2 如何从外源 DNA 片段(前间隔物)获取间隔物并将其以正确的取向整合到 CRISPR 基因座中尚不清楚。在这里,我们使用单分子荧光的高时空分辨率,表明 Cas1-Cas2 以依赖于 DNA 链长度和存在原间隔序列邻近基序 (PAM) 序列的方式从各种形式的 DNA 中选择前间隔物的前体-包括单链 DNA 和部分双链。我们还鉴定出 DnaQ 外切核酸酶作为将 Cas1-Cas2 加载的前间隔物前体加工成适合整合的成熟前间隔物的酶。Cas1-Cas2 保护 PAM 序列免受成熟的影响,导致不对称修剪的前间隔物的产生,并随后以正确的取向整合间隔物。我们的结果表明前间隔物前体选择和 PAM 修剪的动力学协调,为理解 CRISPR 基因座中功能性间隔物整合的机制提供了线索。

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