Chen Yining, Xu Wenxin, Zheng Xin, Huang Xuantao, Dan Nianhua, Wang Meng, Li Yuwen, Li Zhengjun, Dan Weihua, Wang Yunbing
Key Laboratory of Leather Chemistry and Engineering (Ministry of Education), Sichuan University, Chengdu 610065, China.
Research Center of Biomedical Engineering, Sichuan University, Chengdu, Sichuan 610065, China.
Biomacromolecules. 2023 Mar 13;24(3):1483-1496. doi: 10.1021/acs.biomac.2c01520. Epub 2023 Feb 20.
The repair of wound damage has been a common problem in clinic for a long time. Inspired by the electroactive nature of tissues and the electrical stimulation of wounds in clinical practice, the next generation of wound therapy with self-powered electrical stimulator is expected to achieve the desired therapeutic effect. In this work, a two-layered self-powered electrical-stimulator-based wound dressing (SEWD) was designed through the on-demand integration of the bionic tree-like piezoelectric nanofiber and the adhesive hydrogel with biomimetic electrical activity. SEWD has good mechanical properties, adhesion properties, self-powered properties, high sensitivity, and biocompatibility. The interface between the two layers was well integrated and relatively independent. Herein, the piezoelectric nanofibers were prepared by P(VDF-TrFE) electrospinning, and the morphology of the nanofibers was controlled by adjusting the electrical conductivity of the electrospinning solution. Benefiting from its bionic dendritic structure, the prepared piezoelectric nanofibers had better mechanical properties and piezoelectric sensitivity than native P(VDF-TrFE) nanofibers, which can convert tiny forces into electrical signals as a power source for tissue repair. At the same time, the designed conductive adhesive hydrogel was inspired by the adhesive properties of natural mussels and the redox electron pairs formed by catechol and metal ions. It has bionic electrical activity matching with the tissue and can conduct the electrical signal generated by the piezoelectric effect to the wound site so as to facilitate the electrical stimulation treatment of tissue repair. In addition, and experiments demonstrated that SEWD converts mechanical energy into electricity to stimulate cell proliferation and wound healing. The proposed healing strategy for the effective treatment of skin injury was provided by developing self-powered wound dressing, which is of great significance to the rapid, safe, and effective promotion of wound healing.
长期以来,伤口损伤的修复一直是临床上的常见问题。受组织的电活性以及临床实践中伤口电刺激的启发,有望通过自供电电刺激器实现下一代伤口治疗的理想治疗效果。在这项工作中,通过按需整合具有仿生电活性的仿生树状压电纳米纤维和粘性水凝胶,设计了一种基于自供电电刺激器的双层伤口敷料(SEWD)。SEWD具有良好的机械性能、粘附性能、自供电性能、高灵敏度和生物相容性。两层之间的界面结合良好且相对独立。在此,通过P(VDF-TrFE)静电纺丝制备压电纳米纤维,并通过调节静电纺丝溶液的电导率来控制纳米纤维的形态。得益于其仿生树枝状结构,所制备的压电纳米纤维比天然P(VDF-TrFE)纳米纤维具有更好的机械性能和压电灵敏度,能够将微小的力转化为电信号,作为组织修复的电源。同时,所设计的导电粘性水凝胶的灵感来自天然贻贝的粘附特性以及儿茶酚和金属离子形成的氧化还原电子对。它具有与组织匹配的仿生电活性,能够将压电效应产生的电信号传导至伤口部位,从而便于进行组织修复的电刺激治疗。此外,实验表明SEWD可将机械能转化为电能,以刺激细胞增殖和伤口愈合。通过开发自供电伤口敷料,为有效治疗皮肤损伤提供了一种愈合策略,这对快速、安全且有效地促进伤口愈合具有重要意义。