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April 19, 2026Advanced Science0 citationsOpen Access

Dual‐Mode Type I/II Photosensitization of a Stable Mesoporous Hydrogen‐Bonded Organic Framework for Antibacterial Therapy

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YCYi-Lun ChengHYHui YuanYLYuhang Li

Key Points

  • The goal is to develop an organic framework that enhances antibacterial properties through dual photosensitization.
  • Design and synthesize a π-conjugated donor-acceptor molecule for framework construction
  • Create a highly crystalline mesoporous framework via self-assembly through hydrogen bonding
  • Measure quantum yield of singlet oxygen generation in both monomeric and framework states
  • Assess antibacterial efficacy against methicillin-resistant bacteria and E. coli under light irradiation
  • Quantum yield of singlet oxygen generation increased significantly from 0.01 to 0.98 with the framework
  • Demonstrated effective antibacterial action against methicillin-resistant bacteria and E. coli
  • PFC-513 downregulates pro-inflammatory cytokines and chemokines, aiding in diabetic wound healing
  • Establishes a new method for enhancing photodynamic therapy efficacy using crystalline porous frameworks

Abstract

In contrast to monomers that are randomly distributed in solution or in an amorphous state, constructing a highly crystalline framework with precise molecular arrangement might provide materials with markedly enhanced functionalities. Herein, a large π-conjugated electron donor-acceptor (D-A) type molecule was designed and synthesized, which self-assembles through hydrogen bonds to form an organic framework named PFC-513. The ordered arrangement dramatically boosts the quantum yield (ΦΔ) of singlet oxygen generation, classified as type IIreactive oxygen species (ROS), from 0.01 for the monomer to 0.98 for PFC-513, while enabling the hydroxyl radical generation (type I ROS), which is absent in the monomeric state. Such dual-mode Type I/II Photosensitization grants PFC-513 potent antibacterial activity against methicillin-resistant bacteria and E. coli. Beyond direct antibacterial action, PFC-513 can simultaneously downregulate key pro-inflammatory cytokines and chemokines under light irradiation for a diabetic wound, therefore synergistically accelerating wound healing. This work establishes a new paradigm for engineering crystalline porous frameworks with superior PDT efficacy, offering a promising strategy for combating infections and promoting wound repair.

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Cite This Study

Cheng et al. (2026) studied this question.

synapsesocial.com/papers/69e471ef010ef96374d8e1e8https://doi.org/10.1002/advs.75173
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