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基于TiCT MXene纳米片的导电抗菌止血多功能支架促进耐多药细菌感染伤口愈合

Conductive Antibacterial Hemostatic Multifunctional Scaffolds Based on TiCT MXene Nanosheets for Promoting Multidrug-Resistant Bacteria-Infected Wound Healing.

作者信息

Zhou Li, Zheng Hua, Liu Zongxu, Wang Shenqiang, Liu Zhao, Chen Fang, Zhang Hepeng, Kong Jie, Zhou Fengtao, Zhang Qiuyu

机构信息

Key Laboratory of Special Functional and Smart Polymer Materials of Ministry of Industry and Information Technology, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an 710129, China.

Research and Development Institute of Northwestern Polytechnical University in Shenzhen, Shenzhen 518057, China.

出版信息

ACS Nano. 2021 Feb 23;15(2):2468-2480. doi: 10.1021/acsnano.0c06287. Epub 2021 Feb 10.

Abstract

Chronic bacterial-infected wound healing/skin regeneration remains a challenge due to drug resistance and the poor quality of wound repair. The ideal strategy is combating bacterial infection, while facilitating satisfactory wound healing. However, the reported strategy hardly achieves these two goals simultaneously without the help of antibiotics or bioactive molecules. In this work, a two-dimensional (2D) TiCT MXene with excellent conductivity, biocompatibility, and antibacterial ability was applied in developing multifunctional scaffolds (HPEM) for methicillin-resistant (MRSA)-infected wound healing. HPEM scaffolds were fabricated by the reaction between the poly(glycerol-ethylenimine), TiCT MXene@polydopamine (MXene@PDA) nanosheets, and oxidized hyaluronic acid (HCHO). HPEM scaffolds presented multifunctional properties containing self-healing behavior, electrical conductivity, tissue-adhesive feature, antibacterial activity especially for MRSA resistant to many commonly used antibiotics (antibacterial efficiency was 99.03%), and rapid hemostatic capability. HPEM scaffolds enhanced the proliferation of normal skin cells with negligible toxicity. Additionally, HPEM scaffolds obviously accelerated the MRSA-infected wound healing (wound closure ratio was 96.31%) by efficient anti-inflammation effects, promoting cell proliferation, and the angiogenic process, stimulating granulation tissue formation, collagen deposition, vascular endothelial differentiation, and angiogenesis. This study indicates the important role of multifunctional 2D MXene@PDA nanosheets in infected wound healing. HPEM scaffolds with multifunctional properties provide a potential strategy for MRSA-infected wound healing/skin regeneration.

摘要

由于耐药性和伤口修复质量差,慢性细菌感染伤口的愈合/皮肤再生仍然是一个挑战。理想的策略是在促进伤口满意愈合的同时对抗细菌感染。然而,在没有抗生素或生物活性分子帮助的情况下,所报道的策略很难同时实现这两个目标。在这项工作中,具有优异导电性、生物相容性和抗菌能力的二维(2D)TiCT MXene被应用于开发用于耐甲氧西林金黄色葡萄球菌(MRSA)感染伤口愈合的多功能支架(HPEM)。HPEM支架是通过聚(甘油-乙二胺)、TiCT MXene@聚多巴胺(MXene@PDA)纳米片和氧化透明质酸(HCHO)之间的反应制备的。HPEM支架具有多种功能特性,包括自愈行为、导电性、组织粘附特性、抗菌活性,特别是对许多常用抗生素耐药的MRSA(抗菌效率为99.03%)以及快速止血能力。HPEM支架对正常皮肤细胞的增殖有促进作用,且毒性可忽略不计。此外,HPEM支架通过有效的抗炎作用、促进细胞增殖和血管生成过程、刺激肉芽组织形成、胶原蛋白沉积、血管内皮分化和血管生成,明显加速了MRSA感染伤口的愈合(伤口闭合率为96.31%)。本研究表明多功能二维MXene@PDA纳米片在感染伤口愈合中的重要作用。具有多种功能特性的HPEM支架为MRSA感染伤口的愈合/皮肤再生提供了一种潜在策略。

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