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Puteikiene, R.

Publications and source records attributed to Puteikiene, R..

2 recordsLinked to original sources

Viral SSB-bound ssDNA activates the bacterial anti-phage defense system DARNA

To protect themselves against phage infection, bacteria employ diverse defense systems that are typically activated specifically upon infection. However, the mechanisms of activation and self versus non-self discrimination for most systems remain poorly understood. Here, we show that the bacterial immunity protein DARNA, once activated, cleaves a subset of host tRNAs, thereby inhibiting phage propagation. Although phages escape DARNA-mediated defense through mutations in the gene encoding single-stranded DNA-binding protein (SSB), we find that phage SSBs do not directly stimulate DARNA. Instead, DARNA is activated by single-stranded DNA presented by phage SSB, but not by the host SSB. The recognition of an endogenous nucleic acid signal promoted by a viral protein ensures that DARNA can detect and respond to a broad range of viruses while avoiding auto-immunity.

microbiology↗

Deoxydinucleotides activate the bacterial anti-phage defense system ApeA

Bacteria and archaea encode diverse antiviral defense systems, many of which rely on toxic effector proteins that are activated specifically upon bacteriophage infection. However, the mechanisms by which infection is recognized and coupled to effector activation remain poorly understood for most antiviral systems. Here, we focus on ApeA, a HEPN-domain antiviral protein that confers immunity through cleavage of host tRNAs within their anticodon loops. We show that ApeA proteins form large doughnut-shaped oligomers that are activated upon ligand binding in a conserved protein pocket distinct from the catalytic center. In the Ec2ApeA variant, this pocket specifically recognizes 5'-phosphorylated deoxydinucleotides that likely arise as intermediates of host genome degradation by viral nucleases, thereby enabling Ec2ApeA to achieve a broad protection profile. Together, our results reveal how small-molecule products of virus-induced host cell destruction function as signals that activate bacterial immune defenses.

molecular biology↗