伤口愈合
血管生成
糖尿病足
拉伤
医学
成纤维细胞
慢性伤口
糖尿病
生物医学工程
药理学
外科
癌症研究
化学
解剖
体外
内分泌学
生物化学
作者
Georgios Theocharidis,Hyunwoo Yuk,Heejung Roh,Liu Wang,Ikram Mezghani,Jingjing Wu,Antonios Kafanas,Mauricio Contreras,Brandon J. Sumpio,Zhuqing Li,Enya Wang,Lihong Chen,Chuan Fei Guo,Navin Jayaswal,Christos Miliotis,Nikolaos Kalavros,Christoph S. Nabzdyk,Ioannis S. Vlachos,Aristidis Veves,Xuanhe Zhao
标识
DOI:10.1038/s41551-022-00905-2
摘要
Diabetic foot ulcers and other chronic wounds with impaired healing can be treated with bioengineered skin or with growth factors. However, most patients do not benefit from these treatments. Here we report the development and preclinical therapeutic performance of a strain-programmed patch that rapidly and robustly adheres to diabetic wounds, and promotes wound closure and re-epithelialization. The patch consists of a dried adhesive layer of crosslinked polymer networks bound to a pre-stretched hydrophilic elastomer backing, and implements a hydration-based shape-memory mechanism to mechanically contract diabetic wounds in a programmable manner on the basis of analytical and finite-element modelling. In mouse and human skin, and in mini-pigs and humanized mice, the patch enhanced the healing of diabetic wounds by promoting faster re-epithelialization and angiogenesis, and the enrichment of fibroblast populations with a pro-regenerative phenotype. Strain-programmed patches might also be effective for the treatment of other forms of acute and chronic wounds.
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