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. 2025 Jul 10;188(14):3744-3756.e16.
doi: 10.1016/j.cell.2025.04.022. Epub 2025 May 8.

Cyclic-dinucleotide-induced filamentous assembly of phospholipases governs broad CBASS immunity

Affiliations

Cyclic-dinucleotide-induced filamentous assembly of phospholipases governs broad CBASS immunity

Jingge Wang et al. Cell. .

Abstract

Cyclic-oligonucleotide-based antiphage signaling systems (CBASS), a widespread antiviral bacterial immune system homologous to the mammalian cGAS-STING pathway, synthesizes cyclic nucleotide signals and triggers effector proteins to induce cell death and prevent viral propagation. Among various CBASS effectors, phospholipase effectors are the first to be discovered and are one of the most widespread families that sense cyclic dinucleotides to degrade cell membrane phospholipids. Here, we report that CBASS phospholipases assemble from a dimeric inactive state into active higher-order filamentous oligomers upon sensing cyclic dinucleotides. Using a combined approach of cryo-electron microscopy and X-ray crystallography, we have determined the structures of CBASS phospholipase in the inactive dimeric state, the cyclic-dinucleotide-bound active higher-order state, and the substrate-analog-bound catalytic mimicry state, thereby visualizing the complete conformational reorganization process. Complemented by functional assays of intermolecular binding, phospholipase enzymatic activity, in vitro membrane disruption, and in vivo antiphage efficiency, our work elucidates the mechanisms of assembly and activation of CBASS phospholipases.

Keywords: CBASS; CapE; CapV; antiphage defense system; cGAS; cell death; cyclic dinucleotide; filament; phospholipase.

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Conflict of interest statement

Declaration of interests The authors declare no competing interests.