Department of Chemical and Biochemical Engineering, Rutgers, The State University of New Jersey, 98 Brett Road, Piscataway, New Jersey 08854, United States.
Department of Biochemistry and Microbiology, Rutgers, The State University of New Jersey, 76 Lipman Drive, New Brunswick, New Jersey 08901, United States.
ACS Appl Mater Interfaces. 2023 Apr 12;15(14):17459-17469. doi: 10.1021/acsami.2c19899. Epub 2023 Mar 28.
The development of materials that can more efficiently administer antimicrobial agents in a controlled manner is urgently needed due to the rise in microbial resistance to traditional antibiotics. While new classes of antibiotics are developed and put into widespread usage, existing, inexpensive compounds can be repurposed to fight bacterial infections. Here, we present the synthesis of amine-functionalized SBA-15 mesoporous silica nanomaterials with physisorbed rafoxanide (RFX), a commonly used salicylanilide anthelmintic, and anchored Cu(II) ions that exhibit enhanced antimicrobial efficacy against the pathogenic bacterium . The synthesized nanomaterials are structurally characterized by a combination of physicochemical, thermal, and optical methods. Additionally, release studies are carried out in vitro to determine the effects of pH and the synthetic sequence used to produce the materials on Cu(II) ion release. Our results indicate that SBA-15 mesoporous silica nanocarriers loaded with Cu(II) and RFX exhibit 10 times as much bactericidal action against wild-type as the nanocarrier loaded with only RFX. Furthermore, the synthetic sequence used to produce the nanomaterials could significantly affect (enhance) their bactericidal efficacy.
由于微生物对传统抗生素的耐药性不断上升,迫切需要开发能够更有效地以受控方式管理抗菌剂的材料。虽然新型抗生素不断被开发并广泛使用,但现有的廉价化合物可以被重新用于对抗细菌感染。在这里,我们介绍了胺功能化 SBA-15 介孔硅纳米材料的合成,该材料物理吸附了雷佛奴尔(RFX),一种常用的柳氮磺胺吡啶类驱虫药,以及固定的 Cu(II)离子,对病原菌表现出增强的抗菌功效。合成的纳米材料通过物理化学、热和光学方法的组合进行结构表征。此外,还进行了体外释放研究,以确定 pH 值和用于生产材料的合成顺序对 Cu(II)离子释放的影响。我们的结果表明,负载 Cu(II)和 RFX 的 SBA-15 介孔硅纳米载体对野生型 的杀菌作用是仅负载 RFX 的纳米载体的 10 倍。此外,用于生产纳米材料的合成顺序可能会显著影响(增强)它们的杀菌功效。