College of Food Science and Engineering, Northwest A&F University, Yangling 712100, Shaanxi, China.
Nanoscale. 2022 Aug 18;14(32):11693-11702. doi: 10.1039/d2nr02828j.
The antibacterial strategy using cutting-edge metal-organic framework (MOF)-based nanozymes can effectively solve the problem caused by antibiotic resistance to protect human health and the environment; however it has been significantly limited by the complicated modification method and non-ideal catalytic activity. Herein, we report a facile dimensionality-reduction strategy to improve the catalytic activity of MOF-based nanozymes. By reducing the dimensionality of two-dimensional Co-TCPP(Fe) (Co-Fe NSs) to zero-dimensional Co-TCPP(Fe) (Co-Fe NDs), the peroxidase-like activity of the prepared bimetallic Co-Fe NDs was almost tripled. Consequently, the bimetallic Co-Fe NDs can highly efficiently catalyze the lower-concentration HO into reactive oxygen species (ROS), resulting in a favorable antibacterial effect against methicillin-resistant (MRSA). Meanwhile, Co-Fe NDs can effectively promote wound healing and water environment disinfection with good biocompatibility. This work reveals the potential of a zero-dimensional bimetallic MOF-based nanozyme in resisting drug-resistant bacteria and holds great promise for future clinical and environmental applications.
利用先进的金属有机骨架(MOF)基纳米酶的抗菌策略可以有效地解决抗生素耐药性引起的问题,从而保护人类健康和环境;然而,它受到复杂的修饰方法和不理想的催化活性的显著限制。在此,我们报告了一种简便的维度降低策略,以提高 MOF 基纳米酶的催化活性。通过将二维 Co-TCPP(Fe)(Co-Fe NSs)的维度降低到零维 Co-TCPP(Fe)(Co-Fe NDs),制备的双金属 Co-Fe NDs 的过氧化物酶样活性几乎增加了两倍。因此,双金属 Co-Fe NDs 可以高效地催化较低浓度的 HO 生成活性氧物种(ROS),从而对耐甲氧西林金黄色葡萄球菌(MRSA)产生有利的抗菌作用。同时,Co-Fe NDs 具有良好的生物相容性,可有效促进伤口愈合和水环境消毒。这项工作揭示了零维双金属 MOF 基纳米酶在抗耐药菌方面的潜力,为未来的临床和环境应用提供了广阔的前景。