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May 14, 2026Regenerative Biomaterials0 citationsOpen Access

Coordination-based Nanocomposite Hydrogel Promotes Tissue Regeneration Under Infection-Compromised Conditions

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KYKailing YuJZJia ZhongYMY Ma

Key Points

  • This research aims to develop a coordination-based nanocomposite hydrogel for tissue regeneration in infected wound environments.
  • Developed daphnetin-copper nanoparticles integrated into a thermosensitive hydrogel.
  • Evaluated the hydrogel's ability to control infection and promote tissue regeneration in an infected wound model.
  • Assessed macrophage polarization, keratinocyte migration, and angiogenesis.
  • DAP-Cu NGs achieved a significantly faster wound closure rate with near-complete tissue reconstruction.
  • Demonstrated favorable biocompatibility without the use of exogenous growth factors.
  • Induction of M2 macrophage phenotype observed, enhancing regeneration.

Abstract

Abstract Impaired tissue regeneration, rather than mere bacterial colonization, represents the core pathological challenge in infected wounds, where persistent infection, biofilm formation, and inflammatory dysregulation collectively disrupt the healing process. Herein, we report a coordination-based nanocomposite hydrogel (DAP-Cu NGs) designed to restore regenerative capacity by integrating infection control with active microenvironmental remodeling. The system comprises daphnetin-copper nanoparticles (DAP-Cu NPs) self-assembled via coordination chemistry and loaded into a poloxamer thermosensitive hydrogel. This design achieves two key objectives: nanoconfinement of Cu2+ to mitigate cytotoxicity, and pH-responsive release enabling spatiotemporally controlled drug delivery within the acidic infection microenvironment. Beyond synergistic elimination of pathogens and biofilms, DAP-Cu NGs actively modulate the regenerative niche by inducing macrophage polarization toward the pro-repair M2 phenotype, promoting keratinocyte and fibroblast migration, and enhancing angiogenesis with orderly collagen deposition. In an infected wound model, DAP-Cu NGs significantly accelerated wound closure and achieved near-complete tissue reconstruction with favorable biocompatibility. Critically, these regenerative outcomes were accomplished without exogenous growth factors, highlighting the inherent bioactivity of the coordination platform. This work establishes a paradigm shift from passive antimicrobial therapy toward active regeneration-engaging biomaterials, positioning infection control as an enabling step rather than a therapeutic endpoint for treating infection-compromised wounds.

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Cite This Study

Yu et al. (2026) studied this question.

synapsesocial.com/papers/6a05684ea550a87e60a20b98https://doi.org/10.1093/rb/rbag094
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