伤口愈合
糖基化
氧化应激
细胞外基质
炎症
活性氧
化学
止血
医学
药理学
外科
免疫学
糖尿病
生物化学
内分泌学
作者
Fang Cheng,Shenqiang Wang,Hua Zheng,Haidong Shen,Li Zhou,Zuoting Yang,Qiyan Li,Qiuyu Zhang,Hepeng Zhang
标识
DOI:10.1002/smtd.202200949
摘要
Diabetic wound healing still faces a dilemma because of the hostile hyperglycemic, oxidative, and easily-infected wound microenvironment. In addition, advanced glycation end products (AGEs) further impede wound repair by altering the immunological balance. Herein, ceria nanorods with distinctive antiglycative and excellent antioxidative capacities are innovatively introduced into a self-healing and erasable hydrogel, which could reshape the wound microenvironment by expediting hemostasis, inhibiting infection, reducing AGEs, and continuously depleting reactive oxygen species. The remitted oxidative stress and glycosylation synergistically regulate inflammatory responses, and promote revascularization and extracellular matrix deposition, resulting in accelerated diabetic wound repair. This study provides a highly efficient strategy for constructing nanoenzyme-reinforced antiglycative hydrogel that regulates every wound healing stage for diabetic wound management.
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