Agnihotri Shekhar, Bajaj Geetika, Mukherji Suparna, Mukherji Soumyo
Centre for Research in Nanotechnology and Science, Indian Institute of Technology-Bombay, Powai, Mumbai 400076, India.
Nanoscale. 2015 Apr 28;7(16):7415-29. doi: 10.1039/c4nr06913g.
Silver-based hybrid nanomaterials are gaining interest as potential alternatives for conventional antimicrobial agents. Herein, we present a simple, facile and eco-friendly approach for the deposition of silver nanoparticles (AgNPs) on ZnO nanorods, which act as a nanoreactor for in situ synthesis and as an immobilizing template in the presence of arginine. The presence of arginine enhanced the stability of ZnO deposition on the glass substrate by hindering the dissolution of zinc under alkaline conditions. Various Ag/ZnO hybrid nanorod (HNR) samples were screened to obtain a high amount of silver immobilization on the ZnO substrate. Ag/ZnO HNRs displayed potent antibacterial ability and could achieve 100% kill for both Escherichia coli and Bacillus subtilis strains under various test conditions. The hybrid material mediated its dual mode of antibacterial action through direct contact-killing and release of silver ions/nanoparticles and showed superior bactericidal performance compared to pure ZnO nanorods and colloidal AgNPs. No significant decline in antibacterial efficacy was observed even after the same substrate was repeatedly reused multiple times. Interestingly, the amount of Ag and Zn release was much below their maximal limit in drinking water, thus preventing potential health hazards. Immobilized AgNPs showed no cytotoxic effects on the human hepatocarcinoma cell line (HepG2). Moreover, treating cells with the antibacterial substrate for 24 hours did not lead to significant generation of reactive oxygen species (ROS). The good biocompatibility and bactericidal efficacy would thus make it feasible to utilize this immobilization strategy for preparing new-generation antibacterial coatings.
银基杂化纳米材料作为传统抗菌剂的潜在替代品正受到关注。在此,我们提出了一种简单、便捷且环保的方法,用于在ZnO纳米棒上沉积银纳米颗粒(AgNPs),ZnO纳米棒在精氨酸存在下作为原位合成的纳米反应器以及固定模板。精氨酸的存在通过在碱性条件下阻碍锌的溶解,增强了ZnO在玻璃基板上沉积的稳定性。筛选了各种Ag/ZnO杂化纳米棒(HNR)样品,以在ZnO基板上获得大量的银固定。Ag/ZnO HNRs表现出强大的抗菌能力,在各种测试条件下对大肠杆菌和枯草芽孢杆菌菌株均能实现100%杀灭。该杂化材料通过直接接触杀灭以及银离子/纳米颗粒的释放介导其双重抗菌作用模式,并且与纯ZnO纳米棒和胶体AgNPs相比显示出卓越的杀菌性能。即使同一基板多次重复使用后,抗菌效果也未观察到明显下降。有趣的是,Ag和Zn的释放量远低于其在饮用水中的最大限量,从而防止了潜在的健康危害。固定化的AgNPs对人肝癌细胞系(HepG2)没有细胞毒性作用。此外,用抗菌基板处理细胞24小时不会导致活性氧(ROS)的大量产生。因此,良好的生物相容性和杀菌效果将使利用这种固定化策略制备新一代抗菌涂层成为可能。