Senior Department of General Surgery, The First Medical Center of Chinese PLA General Hospital, Beijing 100853, China.
School of Light Industry, Beijing Technology and Business University, 11 Fucheng Road, Haidian District, Beijing 100048, PR China.
J Colloid Interface Sci. 2023 Dec 15;652(Pt B):1712-1725. doi: 10.1016/j.jcis.2023.08.192. Epub 2023 Sep 1.
Developing an effective strategy to combat multi-drug-resistant (MDR) bacteria and promote wound healing without overuse of antibiotics remains an important and challenging goal. Herein, we established a synergistic reactive oxygen species (ROS) and reactive nitrogen species (RNS)-mediated nanocatalytic therapy, which was consisted of a multifunctional Cu single-atom nanozyme loaded with the l-arginine (l-Arg@Cu-SAzymes) and a low level of hydrogen peroxide (HO) as a trigger. l-Arg@Cu-SAzymes can possess excellent dual enzyme-like activities: catalase (CAT)-like activity that decompose HO into O, and subsequent oxidase (OXD)-like activity that convert O to cytotoxic superoxide anion radical (•O). Meanwhile, l-Arg@Cu-SAzymes can also be triggered by HO to release nitric oxide (NO), which can continue to react with •O to generate more lethal peroxynitrite (ONOO). Collectively, the synergistic ROS and RNS mediated by l-Arg@Cu-SAzymes endow the treatment system with an outstanding antibacterial ability against MDR bacteria and reduce the inflammation at the wound site. Furthermore, l-Arg@Cu-SAzymes-mediated NO and O release promote the cell proliferation, collagen synthesis, and the angiogenesis, as well as facilitate macrophage polarization to reparative M2 phenotype, thereby accelerating wound closure and tissue remodeling. Therefore, l-Arg@Cu-SAzymes-based synergistic nanocatalytic therapy can be regarded as a promising strategy for MDR bacterial infected wounds treatment, owing to their potent antibacterial efficacy and enhanced tissue remodeling effects.
开发一种有效的策略来对抗多药耐药(MDR)细菌并促进伤口愈合而不过度使用抗生素仍然是一个重要且具有挑战性的目标。在此,我们建立了一种协同的活性氧(ROS)和活性氮(RNS)介导的纳米催化治疗策略,该策略由负载 l-精氨酸(l-Arg@Cu-SAzymes)的多功能 Cu 单原子纳米酶和低水平的过氧化氢(HO)组成,作为触发物。l-Arg@Cu-SAzymes 具有出色的双酶样活性:CAT 样活性可将 HO 分解为 O,随后氧化酶(OXD)样活性将 O 转化为细胞毒性超氧阴离子自由基(•O)。同时,l-Arg@Cu-SAzymes 也可以被 HO 触发释放一氧化氮(NO),NO 可以继续与•O 反应生成更致命的过氧亚硝酸根(ONOO)。总之,l-Arg@Cu-SAzymes 介导的 ROS 和 RNS 的协同作用赋予了该治疗系统对 MDR 细菌的出色抗菌能力,并减少了伤口部位的炎症。此外,l-Arg@Cu-SAzymes 介导的 NO 和 O 的释放促进了细胞增殖、胶原合成和血管生成,并促进了巨噬细胞向修复性 M2 表型极化,从而加速伤口闭合和组织重塑。因此,基于 l-Arg@Cu-SAzymes 的协同纳米催化治疗可以被视为治疗 MDR 细菌感染伤口的一种有前途的策略,因为它具有强大的抗菌功效和增强的组织重塑效果。