Chronic diabetic wounds are plagued by problems such as severe infection, oxidative stress, persistent inflammation. Here, we present an innovative dual-mode thermoelectric bio-dressing that synergistically addresses the multifactorial challenges of diabetic wound healing. The integrated, self-sustained platform combines photothermal sterilization, thermoelectric-driven electrical stimulation, and antioxidant-mediated immunoregulation, consisting of a 3D-printed graphene-doped polycaprolactone (PCL) photothermal generator (PTG), a Bi2Te3-based thermoelectric generator (TEG), and an astaxanthin (AST)-loaded polyvinyl alcohol (PVA) hydrogel. Under near-infrared (NIR) irradiation, the PTG raises local temperature to eliminate bacteria and creates a thermal gradient that activates the TEG, generating ∼190 mV electrical output-this electrical field enhances bacterial membrane disruption and antimicrobial efficacy. After NIR cessation, the natural skin-environment temperature difference sustains ∼106 mV stable voltage, providing prolonged low-level electrical stimulation to promote fibroblast proliferation, endothelial migration, and angiogenesis. Meanwhile, the thermoresponsive hydrogel releases AST (a potent antioxidant) to scavenge ROS and polarize macrophages toward the pro-regenerative M2 phenotype, alleviating chronic inflammation. In vivo experiments and single-cell RNA sequencing confirm the dressing effectively eradicates Staphylococcus aureus infection, accelerates re-epithelialization, stimulates vascularization, and modulates immune responses for tissue repair. Unlike previous single-modality or externally powered devices, this work innovatively integrates thermoelectric energy harvesting, photothermal therapy, and phytochemical-based immunoregulation into a scalable, autonomous, and environment-adaptive solution.
山东省济南市章丘区文博路2号
齐鲁师范学院 genelibs生信实验室
山东省济南市高新区舜华路750号
大学科技园北区F座4单元2楼
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