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镁电池集成生物电子贴片为伤口愈合提供高效电化学刺激。

A Mg Battery-Integrated Bioelectronic Patch Provides Efficient Electrochemical Stimulations for Wound Healing.

机构信息

State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, Changchun, 130012, China.

Jilin Provincial Key Laboratory of Pediatric Neurology, Department of Pediatric Neurology, The First Hospital of Jilin University, Changchun, 130021, China.

出版信息

Adv Mater. 2024 Nov;36(48):e2410205. doi: 10.1002/adma.202410205. Epub 2024 Oct 3.

Abstract

Bioelectronic patches hold promise for patient-comfort wound healing providing simplified clinical operation. Currently, they face paramount challenges in establishing long-term effective electronic interfaces with targeted cells and tissues due to the inconsistent energy output and high bio interface impedance. Here a new electrochemical stimulation technology is reported, using a simple wound patch, which integrates the efficient generation and delivery of stimulation. This is realized by employing a hydrogel bioelectronic interface as an active component in an integrated power source (i.e., Mg battery). The Mg battery enhances fibroblast functions (proliferation, migration, and growth factor secretion) and regulates macrophage phenotype (promoting regenerative polarization and down-regulating pro-inflammatory cytokines), by providing an electric field and the ability to control the cellular microenvironment through chemical release. This bioelectronic patch shows an effective and accelerated wound closure by guiding epithelial migration, mediating immune response, and promoting vasculogenesis. This new electrochemical-mediated therapy may provide a new avenue for user-friendly wound management as well as a platform for fundamental insights into cell stimulation.

摘要

生物电子贴片有望为患者提供舒适的伤口愈合治疗,简化临床操作。目前,由于能量输出不一致和生物界面阻抗高,它们在与目标细胞和组织建立长期有效的电子接口方面面临着巨大的挑战。在这里,我们报告了一种新的电化学刺激技术,使用一个简单的伤口贴片,整合了高效的刺激产生和传递。这是通过将水凝胶生物电子界面用作集成电源(即 Mg 电池)中的一个活性组件来实现的。Mg 电池通过提供电场和通过化学释放控制细胞微环境的能力,增强成纤维细胞的功能(增殖、迁移和生长因子分泌),并调节巨噬细胞表型(促进再生极化和下调促炎细胞因子)。这种生物电子贴片通过引导上皮细胞迁移、调节免疫反应和促进血管生成,显示出有效的加速伤口闭合作用。这种新的电化学介导治疗方法可为用户友好型伤口管理提供新途径,并为细胞刺激的基础研究提供平台。

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