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February 2, 2026Cell Host & Microbe8 citationsOpen Access

Chemical inhibition of a bacterial immune system

ZZZhiyu ZangODOlivia K. DuncanDSDziugas Sabonis

Key Points

  • This research aims to explore the use of chemical inhibitors to counteract bacterial resistance mechanisms against phage therapy.
  • Identified and tested a class of chemical inhibitors targeting type II Thoeris anti-phage immune systems.
  • Conducted experiments on various bacteria, including antibiotic-resistant strains.
  • Analyzed the effects of inhibitors on histidine-ADPR signal biosynthesis.
  • Evaluated the efficacy of phage therapy in a mouse model infected with P. aeruginosa.
  • The chemical inhibitors effectively sensitized phage-resistant bacteria to therapeutic phages.
  • Inhibition of Thoeris systems improved phage replication and therapy outcomes in test subjects.
  • Increased efficacy was observed specifically against a clinical isolate of P. aeruginosa.

Abstract

The rise of antibiotic resistance motivates a revived interest in phage therapy. However, bacteria possess dozens of anti-phage immune systems that confer resistance to therapeutic phages. Chemical inhibitors of these anti-phage immune systems could be employed as adjuvants to overcome resistance in phage-based therapies. Here, we report a class of chemical inhibitors that selectively inhibit type II Thoeris anti-phage immune systems from diverse bacteria-including antibiotic-resistant pathogens, thereby sensitizing phage-resistant bacteria to phages. These inhibitors block the biosynthesis of a histidine-ADPR intracellular "alarm" signal by ThsB, thereby preventing ThsA from arresting phage replication. Chemical inhibition of the Thoeris defense improves the efficacy of a model phage therapy against a phage-resistant clinical isolate of P. aeruginosa in a mouse infection, suggesting a therapeutic potential. These findings demonstrate that the selective inhibition of anti-phage defense systems can improve the efficacy of therapeutic phages, suggesting a strategy to circumvent phage-therapy resistance.

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Cite This Study

Zang et al. (2026) studied this question.

synapsesocial.com/papers/6980ff19c1c9540dea811bf5https://doi.org/10.1016/j.chom.2026.01.003
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