Corrosion and Protection Center, Northeastern University, Shenyang, 110819, P. R. China.
College of Life and Health Sciences, Northeastern University, Shenyang, 110819, P. R. China.
Adv Mater. 2024 Nov;36(45):e2407409. doi: 10.1002/adma.202407409. Epub 2024 Sep 5.
Surface coatings are designed to mitigate pervasive biofouling herald, a new era of surface protection in complex biological environments. However, existing strategies are plagued by persistent and recurrent biofilm attachment, despite the use of bactericidal agents. Herein, a chiral metal-organic framework (MOF)-based coating with conformal microstructures to enable a new anti-biofouling mode that involves spontaneous biofilm disassembly followed by bacterial eradication is developed. A facile and universal metal-polyphenol network (MPN) is designed to robustly anchor the MOF nanoarmor of biocidal Cu ions and anti-biofilm d-amino acid ligands to a variety of substrates across different material categories and surface topologies. Incorporating a diverse array of chiral amino acids endows the resultant coatings with widespread signals for biofilm dispersal, facilitating copper-catalyzed chemodynamic reactions and inherent mechano-bactericidal activities. This synergistic mechanism yields unprecedented anti-biofouling efficacy elucidated by RNA-sequencing transcriptomics analysis, enhancing broad-spectrum antibacterial activities, preventing biofilm formation, and destroying mature biofilms. Additionally, the chelation-directed amorphous/crystalline coatings can activate photoluminescent properties to inhibit the settlement of microalgae biofilms. This study provides a distinctive perspective on chirality-enhanced antimicrobial behaviors and pioneers a rational pathway toward developing next-generation anti-biofouling coatings for diverse applications.
表面涂层旨在减轻普遍存在的生物污垢,这是在复杂生物环境中表面保护的新时代。然而,尽管使用了杀菌剂,现有的策略仍然存在持续和反复的生物膜附着问题。在此,开发了一种基于手性金属有机骨架(MOF)的涂层,具有共形微观结构,能够实现一种新的抗生物污垢模式,涉及自发的生物膜解体,然后是细菌根除。设计了一种简单且通用的金属-多酚网络(MPN),将杀菌的 Cu 离子和抗生物膜 d-氨基酸配体的 MOF 纳米装甲牢固地锚定在各种基材上,跨越不同的材料类别和表面拓扑结构。将各种手性氨基酸掺入其中,使所得涂层具有广泛的生物膜分散信号,促进铜催化的化学动力学反应和固有机械杀菌活性。这种协同机制通过 RNA 测序转录组学分析阐明了前所未有的抗生物污垢功效,增强了广谱抗菌活性,防止生物膜形成,并破坏成熟的生物膜。此外,螯合导向的无定形/结晶涂层可以激活光致发光特性来抑制微藻生物膜的沉降。本研究提供了一个关于手性增强抗菌行为的独特视角,并为开发用于各种应用的下一代抗生物污垢涂层开辟了一条合理途径。