伤口愈合
人类多任务处理
抗菌剂
异步通信
医学
血管生成
药理学
计算机科学
癌症研究
生物
微生物学
免疫学
神经科学
计算机网络
作者
Jun Ren,Chaoli Wang,Hao Gao,Shuaikun Lu,Congxiao Fu,Hu Wang,Guoliang Wang,Zhenfeng Zhu,Hong Wu,Wen Luo,Yunfei Zhang
标识
DOI:10.1002/adhm.202403282
摘要
A diabetic foot ulcer (DFU) is a common and serious complication of diabetes. This complication can result in amputation and death because of the several challenges associated with wound healing that can be attributed to the complex wound microenvironment, including biofilm infection, hyperglycemia, and diabetic angiopathy. Existing investigations on the wound-healing rate consider only one or two pathogenic factors, and therefore, despite the extensive research on these pathological microenvironments, there is an urgent need to optimize the wound-healing rate in patients with diabetic foot ulcers. To this end, a multitasking asynchronous collaborative nanosystem is designed in this study. The designed nanosystem can efficiently clear biofilm infections using optimized photodynamic therapy based on a poly photosensitizer ionic liquid (i.e., Ce6IL), reduce local blood glucose concentration using glucose oxidase, and reconstruct blood vessels by stimulating endothelial cell proliferation and migration using nitric oxide. The experimental results indicate that the three-step sequential collaboration strategy for clearing biofilm infections, reducing glucose concentrations, and reconstructing damaged blood vessels can help significantly accelerate wound healing rate in patients with diabetic foot ulcers.
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