Photocatalytic Nanocomposite Based on Titanate Nanotubes Decorated with Plasmonic Nanoparticles for Enhanced Broad-Spectrum Antibacterial Activity.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Mostafa Fytory, Shaimaa A Khalid, Ayman H Zaki, Wolfgang Fritzsche, Hassan M E Azzazy
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Abstract

Infections resulting from microorganisms pose an ongoing global public health challenge, necessitating the constant development of novel antimicrobial approaches. Utilizing photocatalytic materials to generate reactive oxygen species (ROS) presents an appealing strategy for combating microbial threats. In alignment with this perspective, sodium titanate nanotubes were prepared by scalable hydrothermal method using TiO2 and NaOH. Ag, Au, and Ag/Au-modified titanate nanotubes (TNTs) were prepared by a cost-effective and simple ion-exchange method. All samples were characterized by XRD, FT-IR, HRTEM, and DLS techniques. HRTEM images indicated that the tubular structure was preserved in all TNTs even after the replacement of Na+ with Ag+ and/or Au3+ ions. The antibacterial activity in dark and sunlight conditions was evaluated using different bacterial strains, Staphylococcus aureus, Escherichia coli, and Pseudomonas aeruginosa. The results showed that while a low bacterial count (∼log 5 cells per well) was used for inoculation, the TNTs exhibited no antibacterial activity against the three bacterial strains, regardless of whether they were tested under light or dark conditions. However, the plasmonic nanoparticle-decorated TNTs showed remarkable activity in the dark. Additionally, Ag/Au-TNTs demonstrated significantly higher activity in the dark compared with either Ag-TNTs or Au-TNTs alone. Notably, under dark conditions, the Au/Ag-TNTs achieved log reductions of up to 4.5 for P. aeruginosa, 5 for S. aureus, and 3.7 for E. coli. However, when exposed to sunlight, Au/Ag-TNTs resulted in a complete reduction (log reduction ∼9) for P. aeruginosa and E. coli. The combination of two plasmonic nanoparticles (Ag/Au) decorated on the surface of TNTs showed synergetic bactericidal activity under both dark and light conditions. Ag/Au-TNTs could be explored to design surfaces that are responsive to visible light and exhibit antimicrobial properties.

基于钛酸纳米管与等离子纳米粒子装饰的光催化纳米复合材料可增强广谱抗菌活性
微生物引起的感染对全球公共卫生构成了持续的挑战,因此需要不断开发新的抗菌方法。利用光催化材料产生活性氧(ROS)是一种极具吸引力的抗微生物威胁的策略。根据这一观点,采用 TiO2 和 NaOH,通过可扩展的水热法制备了钛酸钠纳米管。此外,还采用经济有效且简单的离子交换法制备了银纳米管、金纳米管和银/金修饰的钛酸钠纳米管(TNTs)。所有样品均通过 XRD、FT-IR、HRTEM 和 DLS 技术进行了表征。HRTEM 图像表明,即使用 Ag+ 和/或 Au3+ 离子取代 Na+ 后,所有 TNT 中的管状结构仍得以保留。利用不同的细菌菌株(金黄色葡萄球菌、大肠杆菌和铜绿假单胞菌)对黑暗和阳光条件下的抗菌活性进行了评估。结果表明,虽然接种时细菌数量较少(每孔接种 5 个细胞),但无论在光照还是黑暗条件下进行测试,TNT 对这三种细菌菌株都没有抗菌活性。然而,经过质子纳米粒子装饰的 TNT 在黑暗条件下却表现出显著的活性。此外,与单独的 Ag-TNTs 或 Au-TNTs 相比,Ag/Au-TNTs 在黑暗条件下的活性明显更高。值得注意的是,在黑暗条件下,Au/Ag-TNTs 对铜绿假单胞菌、金黄色葡萄球菌和大肠杆菌的抑制对数值分别高达 4.5、5 和 3.7。然而,当暴露在阳光下时,Au/Ag-TNTs 能完全减少铜绿假单胞菌和大肠杆菌的感染(对数值减少 ∼9)。在 TNTs 表面装饰两种质子纳米粒子(Ag/Au)的组合在黑暗和光照条件下均显示出协同杀菌活性。Ag/Au-TNTs可用于设计对可见光有反应并具有抗菌特性的表面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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