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含联吡啶配体的铜锌金属有机框架对革兰氏阳性和革兰氏阴性细菌菌株均表现出较强的抗菌活性。

Copper and Zinc Metal-Organic Frameworks with Bipyrazole Linkers Display Strong Antibacterial Activity against Both Gram+ and Gram- Bacterial Strains.

机构信息

ChIP Research Center, School of Science and Technology, University of Camerino, Via Madonna delle Carceri, 62032 Camerino, MC, Italy.

ChIP Research Center, School of Pharmacy, University of Camerino, Via Madonna delle Carceri, 62032 Camerino, MC, Italy.

出版信息

Molecules. 2023 Aug 21;28(16):6160. doi: 10.3390/molecules28166160.

Abstract

Here, we report a new synthetic protocol based on microwave-assisted synthesis (MAS) for the preparation of higher yields of zinc and copper in MOFs based on different bis(pyrazolyl)-tagged ligands ([M(BPZ)] where M = Zn(II), Cu(II), HBPZ = 4,4'-bipyrazole, [M(BPZ-NH)] where M = Zn(II), Cu(II); HBPZ-NH = 3-amino-4,4'-bipyrazole, and [M(MeBPZPh)] where M = Zn(II), x = 1; Cu(II), x = 2; HMeBPZPh = bis-4'-(3',5'-dimethyl)-pyrazolylbenzene) and, for the first time, a detailed study of their antibacterial activity, tested against Gram-negative () and Gram-positive () bacteria, as representative agents of infections. The results show that all MOFs exert a broad-spectrum activity and strong efficiency in bacterial growth inhibition, with a mechanism of action based on the surface contact of MOF particles with bacterial cells through the so-called "chelation effect" and reactive oxygen species (ROS) generation, without a significant release of Zn(II) and Cu(II) ions. In addition, morphological changes were elucidated by using a scanning electron microscope (SEM) and bacterial cell damage was further confirmed by a confocal laser scanning microscopy (CLSM) test.

摘要

在这里,我们报告了一种新的基于微波辅助合成(MAS)的合成方案,用于制备更高产率的基于不同双(吡唑基)标记配体([M(BPZ)],其中 M = Zn(II),Cu(II),HBPZ = 4,4'-联吡唑,[M(BPZ-NH)],其中 M = Zn(II),Cu(II);HBPZ-NH = 3-氨基-4,4'-联吡唑,和 [M(MeBPZPh)],其中 M = Zn(II),x = 1;Cu(II),x = 2;HMeBPZPh = 双-4'-(3',5'-二甲基)-吡唑基苯)的金属有机骨架(MOFs),这是首次对其抗菌活性进行了详细研究,测试了它们对革兰氏阴性()和革兰氏阳性()细菌的抗菌活性,作为感染的代表性制剂。结果表明,所有 MOFs 都表现出广谱活性和对细菌生长抑制的强效率,其作用机制基于 MOF 颗粒通过所谓的“螯合效应”和活性氧物种(ROS)生成与细菌细胞的表面接触,而没有显著释放 Zn(II)和 Cu(II)离子。此外,通过使用扫描电子显微镜(SEM)阐明了形态变化,并通过共聚焦激光扫描显微镜(CLSM)测试进一步证实了细菌细胞的损伤。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/83a4/10459509/2c26c597846b/molecules-28-06160-sch001.jpg

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