| Literature DB >> 32574064 |
Shenqiang Wang1, Hua Zheng1, Li Zhou1, Fang Cheng1, Zhao Liu1, Hepeng Zhang1, Lili Wang2, Qiuyu Zhang1,3.
Abstract
Diabetic wound healing remains a critical challenge due to its vulnerability to multidrug-resistant (MDR) bacterial infection, as well as the hyperglycemic and oxidative wound microenvironment. Herein, an injectable multifunctional hydrogel (FEMI) was developed to simultaneously overcome these hurdles. The FEMI hydrogel was fabricated through a Schiff-based reaction between ε-polylysine (EPL)-coated MnO2 nanosheets (EM) and insulin-loaded self-assembled aldehyde Pluronic F127 (FCHO) micelles. Through a synergistic combination of EPL and "nanoknife-like" MnO2 nanosheets, the FEMI hydrogel exhibited extraordinary antimicrobial capacities against MDR bacteria. The MnO2 nanoenzyme reshaped the hostile oxidative wound microenvironment by decomposing the endogenous H2O2 into O2. Meanwhile, the pH/redox dual-responsive FEMI hydrogel achieved a sustained and spatiotemporal controlled release of insulin to regulate the blood glucose. Our FEMI hydrogel demonstrated an accelerated MDR bacteria-infected diabetic wound healing in vivo and represents a versatile strategy for healing a broad range of tissue damages caused by diabetes.Entities:
Keywords: Diabetic wound healing; Injectable self-healing hydrogel; Insulin delivery; Multidrug-resistant bacteria; Redox homeostasis
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Year: 2020 PMID: 32574064 DOI: 10.1021/acs.nanolett.0c01371
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189