Synthesis of novel metal silica nanoparticles exhibiting antimicrobial potential and applications to combat periodontitis

抗菌剂 介孔二氧化硅 牙周炎 材料科学 细菌生长 银纳米粒子 纳米材料 化学 纳米技术 纳米颗粒 微生物学 介孔材料 细菌 牙科 医学 生物 有机化学 催化作用 遗传学
作者
Muhammad Zohaib Nawaz,Huda Ahmed Alghamdi,Mehvish Zahoor,Fizzah Rashid,Atheer Ahmed Alshahrani,Nuha Alghamdi,Arivalagan Pugazhendhi,Daochen Zhu
出处
期刊:Environmental Research [Elsevier BV]
卷期号:241: 117415-117415 被引量:20
标识
DOI:10.1016/j.envres.2023.117415
摘要

Periodontitis is a severe form of gum disease caused by bacterial plaque that affects millions of people and has substantial worldwide health and economic implications. However, current clinical antiseptic and antimicrobial drug therapies are insufficient because they frequently have numerous side effects and contribute to widespread bacterial resistance. Recently, nanotechnology has shown promise in the synthesis of novel periodontal therapeutic materials. Nanoparticles are quickly replacing antibiotics in the treatment of bacterial infections, and their potential application in dentistry is immense. The alarming increases in antimicrobial resistance further emphasize the importance of exploring and utilizing nanotechnology in the fight against tooth diseases particularly periodontitis. We developed 16 different combinations of mesoporous silica nanomaterials in this study by ageing, drying, and calcining them with 11 different metals including silver, zinc, copper, gold, palladium, ruthenium, platinum, nickel, cerium, aluminium, and zirconium. The antibacterial properties of metal-doped silica were evaluated using four distinct susceptibility tests. The agar well diffusion antibacterial activity test, which measured the susceptibility of the microbes being tested, as well as the antibacterial efficacy of mesoporous silica with different silica/metal ratios, were among these studies. The growth kinetics experiment was used to investigate the efficacy of various metal-doped silica nanoparticles on microbial growth. To detect growth inhibitory effects, the colony-forming unit assay was used. Finally, MIC and MBC tests were performed to observe the inhibition of microbial biofilm formation. Our findings show that silver- and zinc-doped silica nanoparticles synthesized using the sol-gel method can be effective antimicrobial agents against periodontitis-causing microbes. This study represents the pioneering work reporting the antimicrobial properties of metal-loaded TUD-1 mesoporous silica, which could be useful in the fight against other infectious diseases too.
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