Cyclic tri-adenylate controls a CARF-TM effector in type II Panoptes anti-phage systems
Cyclic nucleotide second messengers are used in all domains of life to amplify viral infection signals and activate cellular defences. In prokaryotes, CBASS (cyclic nucleotide-based antiphage signalling system) and type III CRISPR-Cas systems generate a range of cyclic nucleotides which bind and allosterically activate effector proteins to mount an anti-viral response. Viruses have evolved counter measures to antagonise these signalling pathways in the form of cyclic nucleotide sponges and phosphodiesterases that sequester or degrade these molecules to subvert immunity. Recently, the Panoptes system was shown to function as a guard against these viral tactics. The type I Panoptes polymerase, mCpol, generates cyclic dinucleotides as decoy molecules that, when sequestered by phage proteins, results in the activation of the membrane-permeabilising effector 2TMβ to halt the phage infection cycle. Here, we investigate the type II Panoptes system, demonstrating that it generates cyclic tri-adenylate (cA3) to maintain a CRISPR-associated Rossmann fold-transmembrane (CARF-TM) effector in an inactive, dimeric state. When cA3 is sequestered or degraded, the CARF protein undergoes conformational changes. In vivo, the absence of cA3 results in membrane disruption and growth arrest. Type II Panoptes provides defence against phages that express the cA3-degrading enzyme Acb1; phage escapers introduce mutations into the acb1 gene to avoid triggering the Panoptes system. These findings expand our understanding of the guard systems that constitute a fascinating component of the bacterial immune system.
Authors
- Sabine Grüschow
- Malcolm F. White (ORCID: https://orcid.org/0000-0003-1543-9342)
- Emma Hilton Balfe
- Shirley Graham
- Peter Wotherspoon
Institutions
- University of St Andrews (GB)
Publication Details
- Journal
- PLoS Biology
- Published
- 2026-09-15
- DOI
- https://doi.org/10.1371/journal.pbio.3003934
- Citations
- 1
- Primary Topic
- CRISPR and Genetic Engineering
- Type
- article
- Field-Weighted Citation Impact
- 2.75
Funders
- Directorate for Biological Sciences
- Biotechnology and Biological Sciences Research Council
- European Research Council