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March 4, 2026European Cells and Materials4 citationsOpen Access

Microneedle-mediated delivery of an nir-triggered nanoagent for synergistic anti-biofilm infection therapy

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FCF.F. ChenLZLiang ZhangLWL.Y. Wang

Key Points

  • The aim is to develop a microneedle-based system for effective treatment of post-surgical biofilm infections.
  • Engineered curcumin-loaded iron-based nanoparticles within a hyaluronic acid hydrogel.
  • Characterized the nanoparticles for their structural and release properties.
  • Evaluated antibacterial efficacy in vitro and in a murine MRSA-infected model.
  • Demonstrated synergistic bacterial eradication via photothermal and chemodynamic therapies.
  • Achieved significant reduction in bacterial load and enhanced wound closure in vivo.
  • Showed effective disruption of biofilms and inhibition of new formation through quorum sensing suppression.

Abstract

Background: Post-surgical biofilm infections present a major clinical challenge due to their exceptional tolerance to antibiotics and the physical barrier of extracellular polymeric substance (EPS), calling for innovative non-antibiotic therapeutic strategies. Methods: We engineered a synergistic platform by constructing curcumin-loaded iron-based metal-organic framework (MIL@Cur) nanoparticles and incorporating them into a dissolvable hyaluronic acid-based hydrogel to fabricate composite microneedles (MIL@Cur microneedle (FCMN)). The system was characterized for its physicochemical properties and evaluated for antibacterial efficacy in vitro and in a murine methicillin-resistant staphylococcus aureus (MRSA)-infected wound model. Results: The MIL@Cur nanoparticles demonstrated well-defined morphology, high photothermal conversion efficiency (reaching >50°C under laser irradiation), and pH-responsive drug release. In vitro, MIL@Cur with laser irradiation achieved synergistic bacterial eradication through photothermal therapy and ironoverload-induced chemodynamic therapy (CDT), while also disrupting pre-formed biofilms and inhibiting new biofilm formation via quorum sensing (QS) suppression. The FCMN patch exhibited excellent mechanical strength and efficient transdermal delivery. In vivo, the FCMN + Laser group showed accelerated wound closure, ∼ 2-log reduction in bacterial load, enhanced collagen deposition and angiogenesis, and no systemic toxicity. Conclusions: This microneedle-mediated platform effectively combines multiple antimicrobial modalities, providing a powerful and translatable strategy for treating stubborn biofilm infections and promoting wound repair.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69a7cce8d48f933b5eed8c09https://doi.org/10.22203/ecm.v055a05
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Also Consider

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  5. 5MICRONEEDLE PATCHES BASED ON HERBAL FORMULATIONS FOR BIOFILM DISRUPTION AND MANAGEMENT: A COMPREHENSIVE REVIEW2025