State Key Laboratory of Food Nutrition and Safety, College of Food Science and Engineering, Tianjin University of Science and Technology, Tianjin 300457, PR China.
College of Sicence, Huazhong Agricultural University, Wuhan 430070, PR China.
Acta Biomater. 2022 Jun;145:88-105. doi: 10.1016/j.actbio.2022.04.013. Epub 2022 Apr 14.
Hydrogel dressings are highly biocompatible and can maintain a moist wound environment, suggesting constructing an efficient multi-modal antibacterial hydrogel platform is a promising strategy for treating bacterial wound infections. In this work, a composite AgS quantum dot/mSiO NPs hydrogel (NP hydrogel) with antibacterial ability was constructed by incorporating AgS quantum dots (QDs) modified by mesoporous silica (mSiO) into the network structure of 3-(trimethoxylmethosilyl) propyl methacrylate based on free radical polymerization. The NP hydrogel showed outstanding controllable photothermal and photodynamic characteristics under 808 nm near infrared (NIR) light irradiation, with a photothermal conversion efficiency of 57.3%. Additionally, the release of Ag could be controlled by the inherent volume change of the NP hydrogel made of N-isopropylacrylamide (NIPAAm) and acrylamide (AAm) during NIR laser exposure, with the embedded AgS QDs working as a reservoir to release Ag continuously from the hydrogel matrix to achieve bactericidal activity. The synergetic effects between hyperthermia, radical oxygen species, and Ag released under NIR radiation endowed the NP hydrogel with prominent antibacterial properties against Escherichia coli (E. coli) and methicillin-resistant Staphylococcus aureus (MRSA), with an inhibition rate of 99.7% and 99.8%, respectively. In vivo wound healing experiments indicated that the NP hydrogel could enhance bacterial clearance, increase collagen coverage area and up-regulate VEGF expression, exhibiting high biocompatibility. Overall, this study proposed an efficient and highly biocompatible multi-modal therapeutic nanohydrogel, opening up a new way for developing broad-spectrum antibacterial wound dressings to treat bacterial wound infections. STATEMENT OF SIGNIFICANCE: Bacterial wound infection is still one of the most difficult medical problems. In this work, a stimulating NIR-responsive hydrogel encapsulating functional AgS QDs was prepared, which showed high photothermal conversion efficiency (57.3%) and outstanding antibacterial ability under 808 nm NIR laser, killing 99.7% and 99.8% of E. coli and MRSA in 4 min, respectively. During NIR light irradiation, the release rate of Ag could be regulated by the intrinsic volume transition of the hydrogel, leading to remarkable antibacterial properties in vitro and in vivo under the combined action of hyperthermia, radical oxygen species and Ag released. This study proposed a novel multi-modal therapeutic nanohydrogel, opening up a new way for developing broad-spectrum antibacterial wound dressings to treat bacterial wound infections.
水凝胶敷料具有高度的生物相容性,并能维持湿润的伤口环境,这表明构建高效的多模式抗菌水凝胶平台是治疗细菌感染性伤口的一种有前途的策略。在这项工作中,通过将修饰有介孔硅(mSiO)的 AgS 量子点(QD)掺入基于自由基聚合的 3-(三甲氧基甲硅烷基)丙基甲基丙烯酸酯的网络结构中,构建了具有抗菌能力的复合 AgS 量子点/mSiO NPs 水凝胶(NP 水凝胶)。NP 水凝胶在 808nm 近红外(NIR)光照射下表现出出色的可控光热和光动力特性,光热转换效率为 57.3%。此外,Ag 的释放可以通过由 N-异丙基丙烯酰胺(NIPAAm)和丙烯酰胺(AAm)组成的 NP 水凝胶的固有体积变化来控制,在 NIR 激光照射下,嵌入的 AgS QD 作为储库,将 Ag 从水凝胶基质中持续释放出来,从而实现杀菌活性。高热、活性氧和 NIR 辐射下释放的 Ag 的协同作用赋予了 NP 水凝胶对大肠杆菌(E. coli)和耐甲氧西林金黄色葡萄球菌(MRSA)的显著抗菌性能,对它们的抑制率分别为 99.7%和 99.8%。体内伤口愈合实验表明,NP 水凝胶可以增强细菌清除能力,增加胶原覆盖面积并上调 VEGF 表达,表现出高度的生物相容性。总的来说,本研究提出了一种高效且高度生物相容的多模式治疗纳米水凝胶,为开发广谱抗菌伤口敷料以治疗细菌感染性伤口开辟了新途径。