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一种用于糖尿病伤口修复的生物相容性自供电压电聚乙烯醇基水凝胶。

A Biocompatible Self-Powered Piezoelectric Poly(vinyl alcohol)-Based Hydrogel for Diabetic Wound Repair.

作者信息

Wang Limin, Yu Yaru, Zhao Xiaowen, Zhang Zhen, Yuan Xueling, Cao Jinlong, Meng Weikun, Ye Lin, Lin Wei, Wang Guanglin

机构信息

Department of Orthopedics, West China Hospital, Sichuan University, Chengdu610065, China.

State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University, Chengdu610065, China.

出版信息

ACS Appl Mater Interfaces. 2022 Oct 19;14(41):46273-46289. doi: 10.1021/acsami.2c13026. Epub 2022 Oct 4.

Abstract

Acute and chronic wounds, caused by trauma, tumors, diabetic foot ulcers, etc., are usually difficult to heal, while applying exogenous electrical stimulation to enhance the endogenous electric field in the wound has been proven to significantly accelerate wound healing. However, traditional electrical stimulation devices require an additional external power supply, making them poor in portability and comfort. In this work, a self-powered piezoelectric poly(vinyl alcohol) (PVA)/polyvinylidene fluoride (PVDF) composite hydrogel is constructed by establishing a distinctive preparation process of freezing/thawing-solvent replacement-annealing-swelling. The hydrogen bonding in the hydrogel is remarkably enhanced by the annealing-swelling process, which is stronger between PVA/PVDF molecules than that between PVA molecules, promoting transformation of the α-phase into the electroactive β-phase PVDF and facilitating formation of a much more crystalline structure with high cross-linking density. Hence, an obvious piezoelectric response with high piezoelectric coefficient and electrical signal output with superior stability and sensitivity and excellent mechanical strength and stretchability was achieved for hydrogels. PVA/PVDF composite hydrogels with good cytocompatibility significantly promote proliferation, migration, and secretion of extracellular matrix proteins and growth factors of fibroblasts, possibly through activating the AKT and ERK1/2 signaling pathways. In a wound model of diabetic rats, piezoelectric hydrogels could not only rapidly attract wound exudate and maintain the wet environment of the wound bed but also convert the mechanical energy generated by rats' physical activities into electrical energy, so as to provide local piezoelectric stimulation to the wound bed evenly and symmetrically in real time. Such an effect significantly promotes re-epithelialization and collagen deposition and increases angiogenesis and secretion of growth factors in wound tissue. Besides, it regulates the macrophage phenotype from the M1 subtype (pro-inflammatory subtype) to the M2 subtype (anti-inflammatory subtype) and reduces the expression levels of inflammatory factors, thus accelerating wound healing. The development of such a novel piezoelectric hydrogel provides new therapeutic strategies for chronic wound healing.

摘要

由创伤、肿瘤、糖尿病足溃疡等引起的急慢性伤口通常难以愈合,而施加外源电刺激以增强伤口内的内源性电场已被证明可显著加速伤口愈合。然而,传统的电刺激装置需要额外的外部电源,导致其便携性和舒适性较差。在这项工作中,通过建立独特的冷冻/解冻-溶剂置换-退火-溶胀制备工艺,构建了一种自供电的压电聚(乙烯醇)(PVA)/聚偏氟乙烯(PVDF)复合水凝胶。退火-溶胀过程显著增强了水凝胶中的氢键,PVA/PVDF分子间的氢键比PVA分子间的更强,促进了α相转变为电活性β相PVDF,并有助于形成具有高交联密度的更多晶体结构。因此,水凝胶实现了具有高压电系数的明显压电响应以及具有卓越稳定性、灵敏度、机械强度和拉伸性的电信号输出。具有良好细胞相容性的PVA/PVDF复合水凝胶显著促进成纤维细胞的增殖、迁移以及细胞外基质蛋白和生长因子的分泌,可能是通过激活AKT和ERK1/2信号通路实现的。在糖尿病大鼠伤口模型中,压电水凝胶不仅能迅速吸引伤口渗出物并维持伤口床的湿润环境,还能将大鼠身体活动产生的机械能转化为电能,从而实时、均匀且对称地向伤口床提供局部压电刺激。这种效果显著促进了伤口再上皮化和胶原蛋白沉积,增加了伤口组织中的血管生成和生长因子分泌。此外,它将巨噬细胞表型从M1亚型(促炎亚型)调节为M2亚型(抗炎亚型),并降低炎症因子的表达水平,从而加速伤口愈合。这种新型压电水凝胶的开发为慢性伤口愈合提供了新的治疗策略。

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