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MultiDefence Consortium,

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Dual ATPase-activated DNA hemimethylation and cleavage by the MANTIS defence system

Bacterial defence systems are diverse and form major barriers to horizontal gene transfer and bacteriophage (phage) infection. Though restriction-modification systems were the first such defences discovered and remain the most widespread, the basis of self/non-self discrimination in many newly identified methylation-based systems remains unclear. Here, we define the mechanism of a widely distributed BREX-related defence family, previously termed Gao_RL, which we rename MANTIS (Methyltransferase, ATPases and Nuclease Targeting Inverted-repeat Sequences). Using phage infection and plasmid transformation assays in Pseudomonas aeruginosa, biochemical reconstitution, and structural biology, we show that MANTIS establishes self-identity through adenine hemimethylation of short asymmetric DNA sequences. Unexpectedly, a AAA+ ATPase (MtsA) and a co-regulator (MtsB) are both required to recruit and activate the methyltransferase MtsC, revealing a previously unknown ATP-dependent mode of epigenetic modification. DNA recognition by the MtsABC complex then triggers restriction by a dimeric helicase-nuclease effector (MtsD), with activity dependent on target-site architecture: inverted pairs of unmodified sites support robust restriction, whereas direct repeats or single sites are restricted less efficiently. Consistent with this model, virulent phages show strand-biased depletion of MANTIS target sites, indicating evolutionary pressure to evade restriction. Together, these findings reveal how dual ATPases couple self-modification to non-self restriction and provide a framework for understanding the expanding landscape of methylation-based defence systems.

molecular biology↗