阿尔戈瑙特
生物
核酸酶
DNA
清脆的
遗传学
Cas9
质粒
RNA干扰
细胞生物学
核糖核酸
基因
作者
Anton Kuzmenko,Anastasiya Oguienko,Daria Esyunina,Denis Yudin,Petrova Ma,A. G. Kudinova,O. A. Maslova,Maria Ninova,Sergei Ryazansky,David R. F. Leach,Alexei A. Aravin,Andrey Kulbachinskiy
出处
期刊:Nature
[Springer Nature]
日期:2020-07-30
卷期号:587 (7835): 632-637
被引量:137
标识
DOI:10.1038/s41586-020-2605-1
摘要
Members of the conserved Argonaute protein family use small RNA guides to locate their mRNA targets and regulate gene expression and suppress mobile genetic elements in eukaryotes1,2. Argonautes are also present in many bacterial and archaeal species3–5. Unlike eukaryotic proteins, several prokaryotic Argonaute proteins use small DNA guides to cleave DNA, a process known as DNA interference6–10. However, the natural functions and targets of DNA interference are poorly understood, and the mechanisms of DNA guide generation and target discrimination remain unknown. Here we analyse the activity of a bacterial Argonaute nuclease from Clostridium butyricum (CbAgo) in vivo. We show that CbAgo targets multicopy genetic elements and suppresses the propagation of plasmids and infection by phages. CbAgo induces DNA interference between homologous sequences and triggers DNA degradation at double-strand breaks in the target DNA. The loading of CbAgo with locus-specific small DNA guides depends on both its intrinsic endonuclease activity and the cellular double-strand break repair machinery. A similar interaction was reported for the acquisition of new spacers during CRISPR adaptation, and prokaryotic genomes that encode Ago nucleases are enriched in CRISPR–Cas systems. These results identify molecular mechanisms that generate guides for DNA interference and suggest that the recognition of foreign nucleic acids by prokaryotic defence systems involves common principles. Argonaute protein from the bacterium C. butyricum targets multicopy genetic elements and functions in the suppression of plasmid and phage propagation, and there appears to be a DNA-mediated immunity pathway in prokaryotes.
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