Min Liu, Qin Yu, Xiaoruo Zhang, Dujuan Shi, Qiong Xing, Wenqiang Li, Fengtao Huang, Lixin Ma
Prokaryotic Argonautes (pAgos) are widely distributed and provide immunity against invading DNA. Based on their domain architecture, pAgos are classified into three major groups: long-A, long-B, and short pAgos. Among them, long-B pAgos remain the least understood subgroup. Here, we show that a long-B pAgo-nuclease system (EcBPAN) from Escherichia coli (E. coli) provides the first clear evidence of anti-phage activity among long-B pAgo systems. By combining structural determination, biochemical analyses, and in vivo phage-resistance assays, we elucidated the activation mechanism of EcBPAN. We found that RNA-guided EcAgo recognizes target DNA and subsequently recruits the autoinhibited EcbAgaN (long-B pAgo-associated nuclease from E. coli) dimer to form an unprecedented 8:8 pAgo-nuclease complex with robust nonspecific DNase activity. The cryo-EM structure of the activated complex revealed a distinctive bowl-shaped architecture, in which the C-terminal nuclease domains of EcbAgaN form an active octamer, while the N-terminal domains engage four EcAgo-guide RNA-target DNA ternary dimers in an interleaved manner, thereby relieving autoinhibition. Together, these findings provide mechanistic insights into the long-B pAgo defense system and reveal a mode of immune activation that is distinct from those of long-A and short pAgo systems, its supramolecular assembly and regulatory mechanism.