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Robbins, L. K.

Publications and source records attributed to Robbins, L. K..

2 recordsLinked to original sources

Minimal diadenylate cyclases have been co-opted to detect phage immune evasion

Many bacterial immune defenses transmit recognition of phage infection via the generation of diverse cyclic nucleotide second messengers. Phage have evolved to subvert this kind of immunity by sequestering, degrading, or inhibiting synthesis of these signaling molecules. Consequently, bacteria have evolved counter-mechanisms to detect disruption of cyclic nucleotide signaling and induce another layer of immune protection. Here we detail our discovery of the PanDA defense system (Panoptes-like DisA), an antiphage defense which detects sequestration of 3'3'-c-di-AMP by phage sponge proteins. PanDA consists of two proteins, PanS and PanE, which are both necessary for defense. PanS contains a minimal diadenylate cyclase (DAC) domain that constitutively generates the cyclic dinucleotide 3'3'-c-di-AMP which binds to and represses a toxic effector, the 2TM-{beta} family protein PanE. When a cell is infected by a phage encoding the sponge protein Acb4 (anti-CBASS protein 4), PanE is activated and induces membrane permeability. This work represents the first confirmed use of 3'3'-c-di-AMP as an immune second messenger in bacteria, facilitated by the exaptation of a DAC domain which has thus far only been best understood for its non-immune signaling roles.

microbiology↗

A bacterial NLR-related protein recognizes multiple unrelated phage triggers to sense infection

Immune systems must rapidly sense viral infections to initiate antiviral signaling, but sensing poses a unique biochemical challenge because viruses rapidly evolve to escape detection. Immune receptors must therefore detect conserved components or activities that are crucial to the viral lifecycle and cannot easily be altered. Here, we show that a bacterial NLR-related protein, bNACHT11, senses viral (phage) infection via direct interactions with multiple phage proteins that are unrelated in their sequences, structures, and functions, thereby limiting viral escape. A conserved surface on the bNACHT11 C-terminal sensor domain binds at least five distinct activators, and a cryo-electron microscopy structure reveals sensing of the protein backbone through {beta}-augmentation. Activator protein binding to bNACHT11 induced oligomerization and effector domain clustering, which limited phage infection by initiating programmed cell death through plasmolysis. These findings reveal a sophisticated immune strategy that counters the rapid evolution of viruses, with parallels to human and plant immune signaling.

microbiology↗