Key Laboratory of Industrial Fermentation Microbiology of the Ministry of Education, Tianjin Key Laboratory of Industrial Microbiology, College of Biotechnology, Tianjin University of Science and Technology, Tianjin, 300457, China.
Tianjin Engineering Research Center of Civil Aviation Energy Environment and Green Development, School of Transportation Science and Engineering, Civil Aviation University of China, Tianjin, 300300, China.
Small. 2024 Jun;20(23):e2309366. doi: 10.1002/smll.202309366. Epub 2023 Dec 27.
Nanocatalytic-based wound therapeutics present a promising strategy for generating reactive oxygen species (ROS) to antipathogen to promote wound healing. However, the full clinical potential of these nanocatalysts is limited by their low reactivity, limited targeting ability, and poor biodegradability in the wound microenvironment. Herein, a bio-organic nanozyme is developed by encapsulating a FeZn-based bimetallic organic framework (MOF) (MIL-88B-Fe/Zn) in platelet membranes (PM@MIL-88B-Fe/Zn) for antimicrobial activity during wound healing. The introduction of Zn in MIL-88B-Fe/Zn modulates the electronic structure of Fe thus accelerating the catalytic kinetics of its peroxidase-like activity to catalytically generate powerful ROS. The platelet membrane coating of MOF innovatively enhanced the interaction between nanoparticles and the biological environment, further developing bacterial-targeted therapy with excellent antibacterial activity against both gram-positive and gram-negative bacteria. Furthermore, this nanozyme markedly suppressed the levels of inflammatory cytokines and promoted angiogenesis in vivo to effectively treat skin surface wounds and accelerate wound healing. PM@MIL-88B-Fe/Zn exhibited superior biodegradability, favourable metabolism and non-toxic accumulation, eliminating concerns regarding side effects from long-term exposure. The high catalytic reactivity, excellent targeting features, and biodegradability of these nanoenzymes developed in this study provide useful insights into the design and synthesis of nanocatalysts/nanozymes for practical biomedical applications.
基于纳米催化的伤口治疗策略为产生反应性氧物种 (ROS) 以抗菌提供了一种有前途的方法,从而促进伤口愈合。然而,这些纳米催化剂的全部临床潜力受到其在伤口微环境中的低反应性、有限的靶向能力和较差的生物降解性的限制。在此,通过将 FeZn 基双金属有机骨架 (MOF) (MIL-88B-Fe/Zn) 封装在血小板膜 (PM@MIL-88B-Fe/Zn) 中,开发了一种生物有机纳米酶,用于在伤口愈合过程中发挥抗菌活性。MIL-88B-Fe/Zn 中 Zn 的引入调节了 Fe 的电子结构,从而加速了其过氧化物酶样活性的催化动力学,以催化产生强大的 ROS。MOF 的血小板膜涂层创新性地增强了纳米颗粒与生物环境之间的相互作用,进一步发展了具有革兰氏阳性和革兰氏阴性细菌的靶向细菌治疗的抗菌活性。此外,这种纳米酶还显著抑制了炎症细胞因子的水平,并促进了体内血管生成,从而有效治疗皮肤表面伤口并加速伤口愈合。PM@MIL-88B-Fe/Zn 表现出优异的生物降解性、良好的代谢和无毒积累,消除了对长期暴露副作用的担忧。本研究中开发的这些纳米酶的高催化反应性、优异的靶向特性和生物降解性为实用的生物医学应用中纳米催化剂/纳米酶的设计和合成提供了有用的见解。