DNA
清脆的
基因组编辑
效应器
Cas9
生物
劈开
核糖核酸
基因组
计算生物学
细胞生物学
遗传学
基因
作者
Patrick Pausch,Katarzyna M. Soczek,Dominik A. Herbst,Connor A. Tsuchida,Basem Al-Shayeb,Jillian F. Banfield,Eva Nogales,Jennifer A. Doudna
标识
DOI:10.1038/s41594-021-00632-3
摘要
CRISPR–CasΦ, a small RNA-guided enzyme found uniquely in bacteriophages, achieves programmable DNA cutting as well as genome editing. To investigate how the hypercompact enzyme recognizes and cleaves double-stranded DNA, we determined cryo-EM structures of CasΦ (Cas12j) in pre- and post-DNA-binding states. The structures reveal a streamlined protein architecture that tightly encircles the CRISPR RNA and DNA target to capture, unwind and cleave DNA. Comparison of the pre- and post-DNA-binding states reveals how the protein rearranges for DNA cleavage upon target recognition. On the basis of these structures, we created and tested mutant forms of CasΦ that cut DNA up to 20-fold faster relative to wild type, showing how this system may be naturally attenuated to improve the fidelity of DNA interference. The structural and mechanistic insights into how CasΦ binds and cleaves DNA should allow for protein engineering for both in vitro diagnostics and genome editing. Cryo-EM structures of CRISPR–CasΦ, a small RNA-guided enzyme unique to bacteriophages, reveal how CasΦ binds to and cleaves DNA, paving the way for engineering of improved CasΦ variants for diagnostics and genome-editing applications.
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