Jul 2026· Small· pp.
e74712
· 0 citations· 44 references
Medicine
TL;DR
A multifunctional, mechanism-targeted strategy that provides a rational, disease-relevant approach for treating chronic diabetic wounds by dampening inflammatory signaling and protecting reparative cells is developed.
Abstract
Chronic diabetic wounds are characterized by prolonged inflammation, elevated reactive oxygen species (ROS), impaired angiogenesis, and delayed healing, often leading to tissue necrosis and amputation. Conventional wound dressings rarely address oxidative stress, dysregulated inflammation, bacterial infection, and local hyperglycemia simultaneously. Here, we developed a multifunctional nanoplatform consisting of tannic acid (TA)-complexed chitosan-polyethylenimine-phenylboronic acid (CPB-TA) nanoparticles embedded within a thermoresponsive poly(N-isopropylacrylamide-co-acrylic acid) [P(NIPAm-co-AAc)] hydrogel. CPB-TA nanoparticles exhibit dual cfDNA-scavenging and antioxidant activity, sequestering cfDNA through combined cationic binding and polyphenol interactions, and reducing ROS via complementary antioxidant mechanisms, thereby dampening inflammatory signaling and protecting reparative cells. The phenylboronic acid groups reversibly capture glucose through dynamic boronate ester bonds, helping to alleviate local hyperglycemia. The hydrogel matrix is designed to be responsive to body temperature, promoting localized delivery of CPB-TA at the wound site. In vitro, CPB-TA nanoparticles promoted macrophage polarization from M1 to M2, protected endothelial cells from oxidative damage, and exhibited antibacterial activity against Escherichia coli and Staphylococcus aureus. In vivo, topical application of CPB-TA@hydrogel accelerated wound closure, enhanced re-epithelialization, and increased collagen deposition in non-infected and S. aureus-infected diabetic mouse models. This multifunctional, mechanism-targeted strategy provides a rational, disease-relevant approach for treating chronic diabetic wounds.
A precision-engineered hydrogel that integrates structural integrity with environment-triggered delivery and seamlessly coupling nanocontrolled release with microenvironmental sensing is presented, presenting a precision-engineered platform for the synergistic treatment of recalcitrant diabetic wounds.
Diabetic wounds pose considerable therapeutic challenges owing to impaired tissue regeneration and elevated risk of bacterial infection. This study developed a hydrogel-based microenvironment-responsive multifunctional composite system. This composite material comprises a pH/reactive oxygen species (ROS) dual-responsive hydrogel scaffold formed by dihydrocaffeic acid-grafted chitosan and phenylboronic acid-functionalized oxidized dextran hinges, encapsulating gallium ions and ROS-responsive curcumin micelles. Taking advantage of the acidic microenvironment (pH 4.5-6.5) and elevated ROS levels in diabetic wounds, the composites exhibit significant efficacy in inhibiting bacterial biofilm formation, scavenging excess ROS, alleviating inflammatory responses, significantly promoting angiogenesis and collagen deposition. This integrated strategy successfully addresses major challenges in diabetic wound treatment-namely, susceptibility to infection, persistent inflammation, elevated oxidative stress, and impaired angiogenesis by enabling synergistic regulation of antibacterial, anti-inflammatory, antioxidant, and pro-regenerative effects. This comprehensive strategy bridges antimicrobial defense and immune regulation in the context of comprehensive wound management, thereby providing a valuable reference for the development of effective clinical therapies for diabetic wounds.
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A multifunctional hydrogel dressing was constructed from carboxymethyl chitosan and oxidized dextran as the dynamic network, incorporating CeO2 nanozymes for early anti-inflammatory and antioxidant effects and PLGA microspheres loaded with astragaloside IV for sustained pro-regeneration.
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In vivo, AP@EM-gel produced near-complete wound closure by day 14 and improved bacterial clearance, re-epithelialisation, collagen organisation, angiogenesis, and inflammatory resolution compared with the commercial dressing.
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With its integrated hemostatic, antioxidant, antibacterial, and pro-regenerative properties, the CBOS hydrogel offers a viable and attractive therapeutic approach for complex wound tissue repair.
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