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January 22, 2026Nature Communications11 citationsOpen Access

High-entropy alloy Janus artificial enzymes for pH-gated sequential redox therapy of drug-resistant bacterial infection

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CHCong HanYWYongqi WangSGShihuan Gao

Key Points

  • The aim is to design high-entropy alloy-based enzymes for effective therapy against drug-resistant bacterial infections.
  • Designed Janus artificial enzymes using high-entropy alloys.
  • Analyzed pH-gated biocatalytic activity for antibacterial and repair functions.
  • Assessed the effect on methicillin-resistant Staphylococcus aureus in infected wounds.
  • Conducted mechanistic analyses for metabolic and immune responses.
  • Enzymes eliminated MRSA and biofilms at low concentrations.
  • Facilitated cellular proliferation and reduced oxidative injury.
  • Enhanced neovascularization and matrix remodeling during healing.
  • Promoted macrophage polarization towards the M2 phenotype while suppressing inflammation.

Abstract

Abstract Drug-resistant bacterial infections in chronic wounds remain a critical challenge, particularly under persistent inflammation. Here, we report the de novo design of high-entropy alloy (HEA, PtFeCuCoNi)-based Janus artificial enzymes with pH-gated redox biocatalysis for sequential antibacterial and repair functions. The multi-metal synergy stabilizes the d -band center, allowing acidic oxidase/peroxidase-like activity and neutral antioxidase-like activity. In infection, the enzymes generate bactericidal reactive oxygen species (ROS) to eliminate methicillin-resistant Staphylococcus aureus ( MRSA ) and biofilms at ultralow concentrations (8 μg/mL). During healing, they scavenge ROS, alleviate oxidative injury and support cellular proliferation. In MRSA -infected wounds, this dual-action system clears bacteria and then accelerates regeneration through enhanced neovascularization and matrix remodeling. Mechanistic analyses reveal PFKFB3 -mediated metabolic reprogramming, suppression of pro-inflammatory cytokines, and macrophage polarization toward the M2 phenotype. Integrating pH-gated antimicrobial and immunomodulatory repair within one nanoplatform, this strategy addresses the conflicting demands of infection control and tissue healing.

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Cite This Study

Han et al. (2026) studied this question.

synapsesocial.com/papers/6971bdad642b1836717e25e2https://doi.org/10.1038/s41467-025-68020-9
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