Thermal-feedback modality switchable hydrogel with thermoelectric self-modulation for stage-adaptive repair of infected diabetic wound

光热治疗 热疗 伤口愈合 生物医学工程 材料科学 热电效应 慢性伤口 伤口护理 伤口闭合 自愈水凝胶 热疗 纳米技术 医学 糖尿病溃疡 烧蚀 体内 癌症治疗 肿瘤消融
作者
Yutong Yang,Qingqing Fang,Tianyu Shu,Wenjia Liu,Yuchen Sun,Xiao Liu,Meng Li,Baolin Guo
出处
期刊:Nature Communications [Nature Portfolio]
卷期号:17 (1)
标识
DOI:10.1038/s41467-026-76553-w
摘要

Hyperthermia is a promising strategy for chronic wound management, with efficacy critically dependent on precise temperature control. Current strategies largely rely on two discrete modes: high-temperature bactericidal ablation or mild hyperthermia to promote tissue regeneration. Enabling hyperthermia to autonomously match the thermal requirements of each wound-healing stage remains challenging. Herein, we developed a biomimetic thermal-feedback modality switchable (TFMS) hydrogel, obtained by copolymerizing N-isopropylacrylamide with sulfobetaine vinylimidazolium (SBVI) and loading glucose oxidase (GOx) together with EGCG-Fe3+-modified Bi2Te3. Tuning SBVI content precisely programs the volume phase transition temperature of hydrogel, enabling thermostatic photothermal antibacterial activity within a biologically safe window. GOx mediates the dissociation of the metal-polyphenol network during wound repair, thereby flexibly self-limiting the photothermal temperature and activating a thermoelectric effect at mild temperature to compensate for loss of intrinsic electric field in diabetic wounds. TFMS hydrogel enables stage-adaptive repair regulation of infected diabetic wounds through progressive regulation. Compared with commercial bioactive Flamigel, it significantly accelerates wound closure and improves wound repair quality in diabetic mice. The TFMS hydrogel expands the design of dynamic thermostatic hyperthermia in self-adaptive wound dressings, which can promote adaptability and user-friendly wound care, and has great application potential in chronic wound care. Diabetic wounds are among the most difficult chronic injuries to treat due to their severely dysregulated microenvironment. Photothermal therapy (PTT) has emerged as a promising approach for combating drug-resistant infections and improving lowerlimb perfusion in diabetic patients. However, conventional PTT relies mainly on externally applied laser power, offering little control over photothermal temperature. Here, the authors report a thermal-feedback modality-switchable (TFMS) hydrogel that enables stage-adaptive temperature regulation following repair phases of infected diabetic wounds.
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