Flexible patch with printable and antibacterial conductive hydrogel electrodes for accelerated wound healing

材料科学 伤口愈合 生物医学工程 电极 伤口闭合 体内 刺激 血管生成 导电体 伤口敷料 纳米技术 医学 外科 复合材料 化学 癌症研究 生物 生物技术 物理化学 内科学
作者
Canran Wang,Xing Jiang,Hanjun Kim,Shiming Zhang,Xingwu Zhou,Yi Chen,Haonan Ling,Yumeng Xue,Zhaowei Chen,Mengjie Qu,Li Ren,Jixiang Zhu,Alberto Libanori,Yangzhi Zhu,Heemin Kang,Samad Ahadian,Mehmet R. Dokmeci,Peyman Servati,Ximin He,Zhen Gu,Wujin Sun,Ali Khademhosseini
出处
期刊:Biomaterials [Elsevier]
卷期号:285: 121479-121479 被引量:70
标识
DOI:10.1016/j.biomaterials.2022.121479
摘要

Electrical stimulation can facilitate wound healing with high efficiency and limited side effects. However, current electrical stimulation devices have poor conformability with wounds due to their bulky nature and the rigidity of electrodes utilized. Here, a flexible electrical patch (ePatch) made with conductive hydrogel as electrodes to improve wound management was reported. The conductive hydrogel was synthesized using silver nanowire (AgNW) and methacrylated alginate (MAA), with the former chosen as the electrode material considering its antibacterial properties, and the latter used due to its clinical suitability in wound healing. The composition of the hydrogel was optimized to enable printing on medical-grade patches for personalized wound treatment. The ePatch was shown to promote re-epithelization, enhance angiogenesis, mediate immune response, and prevent infection development in the wound microenvironment. In vitro studies indicated an elevated secretion of growth factors with enhanced cell proliferation and migration ability in response to electrical stimulation. An in vivo study in the Sprague-Dawley rat model revealed a rapid wound closure within 7 days compared to 20 days of usual healing process in rodents.
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