College of Animal and Veterinary Sciences, Southwest Minzu University, Chengdu, Sichuan 610041, China.
Yancheng Technician College Jiangsu Province, Yancheng, Jiangsu 224005, China.
ACS Biomater Sci Eng. 2024 Nov 11;10(11):7206-7216. doi: 10.1021/acsbiomaterials.4c01262. Epub 2024 Oct 19.
Infection with drug-resistant bacteria and the formation of biofilms are the main factors contributing to wound healing insufficiency. Antibacterial agents with enzyme-like properties have exhibited considerable potential for efficient eradication of drug-resistant microorganisms due to their superior sensitivities and minimal side effects. In this work, we prepared a kind of Fe-centered single-atom nanozyme (Fe-SAzyme) with high biocompatibility and stability via a facile one-pot hydrothermal method, which was suitable for the treatment of wounds infected with drug-resistant bacteria. The Fe-SAzyme exhibited remarkable peroxidase-like catalytic activities, catalyzing the conversion of hydrogen peroxide (HO) to highly toxic hydroxyl radicals (OH), which could not only damage bacterial cells but also inhibit, disrupt, and eradicate the formation of bacterial biofilms. Thus, Fe-SAzyme demonstrated a broad-spectrum antibacterial performance capable of effectively eliminating multidrug-resistant bacteria. The coexistence of ferrous (Fe) and ferric (Fe) ions in Fe-SAzyme conferred the nanozyme with anti-inflammatory activity, effectively suppressing excessive inflammation. Meanwhile, Fe-SAzyme could significantly downregulate inflammatory cytokines tumor necrosis factor-α and interleukin-1β and upregulate growth factors VEGF and epidermal growth factor, which can prevent bacterial infection, mitigate inflammation, promote fibroblast proliferation, and improve wound closure. Thus, Fe-SAzyme had shown favorable therapeutic efficiency in promoting bacteria-infected wound healing. This study provides Fe-SAzyme as a promising candidate for the development of new strategies to treat multidrug-resistant bacterial infections.
耐药菌感染和生物膜的形成是导致伤口愈合不良的主要因素。具有酶样特性的抗菌剂由于其较高的敏感性和最小的副作用,在有效根除耐药微生物方面显示出了巨大的潜力。在这项工作中,我们通过简便的一锅水热法制备了一种具有高生物相容性和稳定性的 Fe 中心单原子纳米酶(Fe-SAzyme),适用于治疗耐药菌感染的伤口。Fe-SAzyme 表现出显著的过氧化物酶样催化活性,可将过氧化氢(HO)催化转化为高毒性的羟基自由基(OH),不仅可以破坏细菌细胞,还可以抑制、破坏和消除细菌生物膜的形成。因此,Fe-SAzyme 表现出广谱的抗菌性能,能够有效消除多药耐药菌。Fe-SAzyme 中存在的亚铁(Fe)和三价铁(Fe)离子赋予纳米酶抗炎活性,有效抑制过度炎症。同时,Fe-SAzyme 可以显著下调炎症细胞因子肿瘤坏死因子-α和白细胞介素-1β,并上调生长因子 VEGF 和表皮生长因子,从而可以预防细菌感染、减轻炎症、促进成纤维细胞增殖,并改善伤口闭合。因此,Fe-SAzyme 在促进细菌感染性伤口愈合方面显示出了良好的治疗效果。本研究为开发治疗多药耐药菌感染的新策略提供了 Fe-SAzyme 作为一种有前途的候选物。