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December 8, 2025mBio2 citationsOpen Access

Manganese activates the CBASS immunity to protect bacteria from phage infection

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XWXiao WangYLYongdong LiXWXiao Wang

Key Points

  • Manganese significantly boosts the activation of CBASS and enhances bacterial immunity against phages.
  • The study highlights the role of phospholipase in rapidly inducing bacterial cell lysis and limiting phage replication.
  • Employing an analysis of bacterial immune systems reveals manganese's critical role as a modulator in cyclic dinucleotide signaling.
  • Understanding manganese homeostasis could significantly improve strategies for controlling bacterial resistance to bacteriophages.

Abstract

ABSTRACT The cyclic-oligonucleotide-based antiphage signaling system (CBASS) is essential for bacterial defense against phage infections, mirroring many features of the eukaryotic cGAS-STING pathway. Although metal ions are well-known regulators of cGAS-STING activation, their impact on CBASS-mediated antiviral function remains largely unexplored. Here, we show that manganese (Mn 2+ ) serves as a key cofactor to enhance CBASS activation. Upon phage infection, the intracellular Mn 2+ level is elevated, and the gene expression of the Mn 2+ transportation system is upregulated. We found that Mn 2+ directly augments the activity of DncV, markedly boosting 3′3′-cGAMP production. Consequently, the phospholipase CapV is activated more rapidly, driving premature bacterial cell lysis and curtailing phage replication. Notably, Mn 2+ also alleviates folate-mediated inhibition of DncV, underscoring its role as a potent modulator of cyclic dinucleotide signaling. Our findings reveal a mechanism through which Mn 2+ confers bacterial resistance to phages, mirroring the Mn 2+ -enhanced antiviral responses of mammalian cGAS-STING. IMPORTANCE Bacteriophages pose a persistent threat to bacterial survival, driving the evolution of diverse antiviral systems, including the cyclic-oligonucleotide-based antiphage signaling system (CBASS) immunity. Here, we reveal that manganese (Mn 2+ ) acts as a pivotal cofactor for CBASS, directly enhancing the activity of the cGAS-like cyclase DncV to generate 3′3′-cGAMP, which, in turn, activates the phospholipase CapV. This Mn 2+ -driven DncV activation induces rapid bacterial cell death, thereby limiting phage replication. These findings underscore a striking parallel with mammalian cGAS-STING, where Mn 2+ likewise amplifies antiviral responses. By illuminating the importance of Mn 2+ homeostasis in bacterial phage resistance, our study broadens the understanding of bacterial innate immunity and highlights a deeply conserved mechanism across prokaryotes and eukaryotes.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/69401f0f2d562116f28fa1b1https://doi.org/10.1128/mbio.02758-25
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