转移RNA
核糖核酸
劈开
核酸酶
生物
清脆的
效应器
先天免疫系统
细胞生物学
翻译(生物学)
基因
核酸
DNA
计算生物学
遗传密码
引导RNA
劈理(地质)
遗传学
外小体复合体
RNA聚合酶Ⅲ
解旋酶
化学
核糖核酸酶P
生物化学
Cas9
作者
Oleg Dmytrenko,Biao Yuan,Kadin T. Crosby,Max Krebel,Xiye Chen,Jakub S. Nowak,Andrzej Chramiec-Głąbik,Bamidele Filani,Anne-Sophie Gribling-Burrer,Wiep van der Toorn,Max von Kleist,Tatjana Achmedov,Redmond P. Smyth,Sebastian Glatt,Jack P. K. Bravo,Dirk W. Heinz,Ryan N. Jackson,Chase L. Beisel
出处
期刊:Nature
[Nature Portfolio]
日期:2026-01-07
卷期号:649 (8099): 1312-1321
被引量:3
标识
DOI:10.1038/s41586-025-09852-9
摘要
Abstract In all domains of life, tRNAs mediate the transfer of genetic information from mRNAs to proteins. As their depletion suppresses translation and, consequently, viral replication, tRNAs represent long-standing and increasingly recognized targets of innate immunity 1–5 . Here we report Cas12a3 effector nucleases from type V CRISPR–Cas adaptive immune systems in bacteria that preferentially cleave tRNAs after recognition of target RNA. Cas12a3 orthologues belong to one of two previously unreported nuclease clades that exhibit RNA-mediated cleavage of non-target RNA, and are distinct from all other known type V systems. Through cell-based and biochemical assays and direct RNA sequencing, we demonstrate that recognition of a complementary target RNA by the CRISPR RNA triggers Cas12a3 to cleave the conserved 5′-CCA-3′ tail of diverse tRNAs to drive growth arrest and anti-phage defence. Cryogenic electron microscopy structures further revealed a distinct tRNA-loading domain that positions the tRNA tail in the RuvC active site of the nuclease. By designing synthetic reporters that mimic the tRNA acceptor stem and tail, we expanded the capacity of current CRISPR-based diagnostics for multiplexed RNA detection. Overall, these findings reveal widespread tRNA inactivation as a previously unrecognized CRISPR-based immune strategy that broadens the application space of the existing CRISPR toolbox.
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