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December 11, 2025ACS Applied Materials & Interfaces6 citations

Mechanically Reinforced In Situ Injectable Hydrogels Integrating MXene Nanosheet-Driven Photothermal Antibacterial and Immunomodulatory Capacities for Enhanced Diabetic Wound Healing

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YWYiyu WangCNChunqing NiuYLYushan Li

Key Points

  • The aim is to develop an injectable hydrogel to enhance diabetic wound healing through antibacterial and immunomodulatory effects.
  • Designed a dual-cross-linked hydrogel integrating MXene nanosheets (SCO@M) to improve flowability and mechanical properties.
  • Utilized reversible Schiff-base and hydrogen bonds for dynamic network formation during injection.
  • Conducted in vitro and in vivo studies to assess wound healing efficacy in diabetic rats.
  • SCO@M facilitated wound closure and enhanced angiogenesis and cell migration.
  • Normalized inflammatory response via modulation of M1/M2 macrophages through IL-17 pathways.
  • Demonstrated superior mechanical properties without compromising injectability.

Abstract

Recently, injectable hydrogels with synergistic antioxidant and antimicrobial properties have emerged as promising candidates for diabetic wound treatment. However, the outstanding flowability of injectable hydrogels often compromises their mechanical properties, and few systems provide the multiple synergistic cues needed for rapid healing. Here, we designed an injectable dual-cross-linked hydrogel (SCO@M) that integrated MXene nanosheets (NNs) to furnish simultaneous photothermal antibacterial activity and intrinsic immunomodulation. At first, a dynamic network was formed in situ through reversible Schiff-base and hydrogen bonds among oxidized hyaluronic acid, carboxymethyl chitosan, and methacrylated silk fibroin (SF-MA), endowing the precursor with shear-thinning behavior and easy injectability. Brief UV exposure then photo-cross-linked residual SF-MA to form a covalent secondary network, markedly reinforcing mechanical strength without sacrificing injectability. Importantly, the incorporation of MXene NNs not only enhanced the mechanical properties but also imparted robust photothermal antibacterial activity under near-infrared irradiation alongside excellent reactive oxygen species (ROS) scavenging capacity. Both in vitro and in vivo results demonstrated that SCO@M normalized the inflammatory response by modulating the M1/M2 macrophage balance via IL-17/MAPK/TNF-α pathways, enhanced angiogenesis and cell migration, and accelerated wound closure in diabetic rats, representing a promising strategy for chronic wound healing.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/69401b0d2d562116f28f7242https://doi.org/10.1021/acsami.5c16938
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