Nano‐Interlocking Enhanced Electroactive Dressing: Electromagnetic Induction for Accelerated Diabetic Wound Healing and Wound Microenvironment Monitoring

联锁 材料科学 伤口愈合 生物医学工程 纳米- 纳米技术 复合材料 医学 外科 机械工程 工程类
作者
Fengkai Zhou,Leqian Wei,Liqin Tang,Mengqi Shan,Zeyu Wang,Jiamin Peng,Zhan Zhang,Xiaoli Liu,Qian Zhang,Fujun Wang,Lu Wang,Jifu Mao
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:35 (52) 被引量:15
标识
DOI:10.1002/adfm.202508829
摘要

Abstract The impaired electrophysiological microenvironment of diabetic wounds can be salvaged by electrical stimulation, but clinical application is hindered by a conventional, bulky power supply. Furthermore, the patient's sensory impairment regarding the dangerous state of the wound and non‐visualization increases the difficulty and economic burden of wound care. To address these challenges, an electromagnetic induction‐powered electroactive dressing is developed that enables wireless electrical stimulation therapy and wound microenvironment monitoring. Interestingly, the formed nano‐interlocking structure between Ti 3 C 2 T x MXene and polycaprolactone fibers endows the dressing with superior mechanical performance and stable conductivity (≈3.5 S·cm −1 , 72.2% retention rate after 7‐day phosphate‐buffered saline immersion), effectively matching practical wound therapy. Under a rotating magnetic field, the dressing can generate wirelessly therapeutic microcurrents (10.8 µA) that activate pro‐healing pathways (calcium, transforming growth factor‐β [TGF‐β], phosphatidylinositol 3‐kinase/protein kinase B [PI3K‐AKT], peroxisome proliferators‐activated receptors [PPAR], Axon guidance, and wingless‐type [Wnt]) while suppressing inflammatory pathways (tumor necrosis factor [TNF] and nuclear factor‐κB [NF‐kappa B]). This dual regulation of cellular behavior and the immune microenvironment accelerates wound healing and nerve regeneration by ≈36.3% and 283.8%, respectively, compared to the control group. The prepared dressing can also monitor the wound's physiological parameters, including temperature, strain, and exudate, enabling timeous and precise wound care. In short, this research promotes the development of electromagnetic induction biomedicine and personalized medicine.
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