Bioactive anti-inflammatory, antibacterial, conductive multifunctional scaffold based on MXene@CeO2 nanocomposites for infection-impaired skin multimodal therapy

伤口愈合 聚乙烯亚胺 肉芽组织 脚手架 多重耐药 材料科学 纳米复合材料 纳米技术 生物医学工程 医学 化学 抗生素 免疫学 生物化学 转染 基因
作者
Hua Zheng,Shenqiang Wang,Fang Cheng,Xiaowei He,Zongxu Liu,Wenyan Wang,Li Zhou,Qiuyu Zhang
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:424: 130148-130148 被引量:118
标识
DOI:10.1016/j.cej.2021.130148
摘要

Overcoming multidrug-resistant (MDR) bacterial infection and simultaneously enhancing wound healing/skin reconstruction are still critical challenges for both clinic practice and fundamental research. The single modal therapy strategy is usually inefficient. Herein, for the first time, multifunctional [email protected]2 nanocomposites were prepared by combining the 2D antibacterial conductive Ti3C2Tx MXenes and antioxidant CeO2 and applied in developing multifunctional hydrogel scaffold (FOM) for MDR infection-impaired skin multimodal therapy. FOM scaffold was fabricated by incorporating [email protected]2 nanocomposites in a dynamic Schiff-based chemical crosslinked hydrogel of polyethylenimine grafted Pluronic F127 (F127-PEI) and oxidized sodium alginate (OSA). FOM scaffold possessed multifunctional properties including injectable self-healing behavior, efficient anti-inflammatory, antibacterial, and antioxidative abilities, conductive bioactivities, tissue-adhesive ability and fast hemostatic capacity. FOM scaffold could promote fibroblasts migration and cell proliferation with electrical stimulation. Additionally, FOM scaffold demonstrated the significant anti-inflammatory and multidrug resistant infection therapy, meanwhile promoting fibroblasts proliferation, granulation tissue formation, collagen deposition, re-epithelialization to accelerate MDR-infected wound healing. This work firstly demonstrated the important role of multifunctional [email protected]2 nanocomposites in infected-wound healing/skin reconstruction. This study provided an efficient multimodal therapy on MDR infection-impaired skin via the optimization of the structure and multifunctional properties of biomaterials.
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