Li Liangyu, Zhang Yueqin, Liu Yumeng, Wu Yaojuan, Wang Xiao, Cao Lidong, Feng Xia
Department of Nursing, Zhejiang Provincial People's Hospital, Affiliated People's Hospital, Hangzhou Medical College Hangzhou China.
School of Public Health, Hangzhou Medical College Hangzhou China.
RSC Adv. 2024 Sep 18;14(40):29428-29438. doi: 10.1039/d4ra05487c. eCollection 2024 Sep 12.
Despite tremendous efforts, bacterial infection and contamination remain a major clinical challenge to modern humans. Nanozyme materials with stimuli-responsive properties are expected to be powerful tools for the next generation of antibacterial therapy. Here, MoS nanosheet was firstly prepared by liquid phase exfoliation method, and Pt-MoS hybrid biomaterial was then successfully synthesized by a simple self-reduction method. The Pt decoration significantly improves the photothermal effect of MoS nanosheet under 808 nm NIR laser irradiation. Besides, benefiting from the formation of heterogeneous structure, the Pt-MoS has significantly enhanced peroxidase mimetic catalytic activity, which can kill bacteria through catalysis of HO to generate antimicrobial hydroxyl radicals. Moreover, the temperature rise brought about by NIR laser stimulation further amplifies the nanozyme activity of the composites. After treatment by the synergistic platform, both and can be effectively inhibited, demonstrating its broad-spectrum antibacterial properties. In addition, the developed antibacterial Pt-MoS nanozyme have the excellent biocompatibility, which makes them well suited for infection elimination in biological systems. Overall, this work shows great potential for rationally combining the multiple functions of MoS-based nanomaterials for synergistic antibacterial therapy. In the future, the Pt-MoS nanozyme may find wider applications in areas such as personal healthcare or surface disinfection treatment of medical devices.
尽管付出了巨大努力,但细菌感染和污染仍然是现代人类面临的重大临床挑战。具有刺激响应特性的纳米酶材料有望成为下一代抗菌治疗的有力工具。在此,首先通过液相剥离法制备了MoS纳米片,然后通过简单的自还原法成功合成了Pt-MoS杂化生物材料。Pt修饰显著提高了MoS纳米片在808 nm近红外激光照射下的光热效应。此外,得益于异质结构的形成,Pt-MoS具有显著增强的过氧化物酶模拟催化活性,可通过催化HO生成抗菌羟基自由基来杀死细菌。此外,近红外激光刺激引起的温度升高进一步放大了复合材料的纳米酶活性。经过协同平台处理后, 和 均可得到有效抑制,证明了其广谱抗菌性能。此外,所开发的抗菌Pt-MoS纳米酶具有优异的生物相容性,使其非常适合用于生物系统中的感染消除。总体而言,这项工作显示了合理结合基于MoS的纳米材料的多种功能用于协同抗菌治疗的巨大潜力。未来,Pt-MoS纳米酶可能会在个人医疗保健或医疗设备表面消毒处理等领域找到更广泛的应用。