Almosa Naif
Department of Paediatric Dentistry and Orthodontics, College of Dentistry, King Saud University, Riyadh 11545, Saudi Arabia.
Dent J (Basel). 2025 Feb 20;13(3):89. doi: 10.3390/dj13030089.
Many novel solutions for a range of dental problems are emerging as a result of the quick development of nanotechnology and nanocomplex synthetic techniques. The effectiveness, quality, and negative consequences of these advancements are occasionally debatable, though. This systematic review sought to better summarize the existing additions of nanoparticles to dental adhesive systems in order to improve their performance and properties, evaluate their quality, and examine the results that have been published. The present systematic review was carried out according to PRISMA guidelines. The search was carried out on PubMed central, Cochrane collaboration, Science direct and Scopus scientific engines. Selected MeSH keywords (nanoparticles, adhesive resin, enamel demineralization) were used for data extraction. A total of 13 full-text original articles were included in the final analysis, and these articles were based on adding nanoparticles to the adhesive resin to evaluate their effects on enamel demineralization. The literature search resulted in a total of 13 original studies/articles up until November 2024. The text articles comprised in vitro studies with robust inclusion and exclusion criteria. The review included various types of adhesives and nanoparticles, with amorphous calcium phosphate (ACP) being the most common. Other nanoparticles included polydopamine-Ag, bioactive glass, and silver. Most studies assessed the effects of nanoparticles on adhesive shear bond strength (SBS), microbial growth, and microhardness. Only three studies investigated the effects of nanoparticles on microhardness using Vickers tests. The review found that adding nanoparticles to orthodontic dental adhesives enhances their antibacterial and anticariogenic properties without affecting the shear bond strength. This could prevent enamel demineralization during orthodontic therapy. Future research could benefit from these positive properties, necessitating an interdisciplinary approach.
由于纳米技术和纳米复合合成技术的快速发展,一系列针对各种牙科问题的新颖解决方案正在涌现。然而,这些进展的有效性、质量和负面影响偶尔也会存在争议。本系统综述旨在更好地总结纳米颗粒在牙科粘接系统中的现有应用,以改善其性能和特性,评估其质量,并审视已发表的研究结果。本系统综述是根据PRISMA指南进行的。检索在PubMed中心、Cochrane协作网、Science direct和Scopus科学引擎上进行。使用选定的医学主题词(纳米颗粒、粘接树脂、牙釉质脱矿)进行数据提取。最终分析共纳入13篇全文原始文章,这些文章基于向粘接树脂中添加纳米颗粒以评估其对牙釉质脱矿的影响。截至2024年11月,文献检索共得到13项原始研究/文章。这些文本文章包括具有严格纳入和排除标准的体外研究。该综述涵盖了各种类型的粘接剂和纳米颗粒,其中无定形磷酸钙(ACP)最为常见。其他纳米颗粒包括聚多巴胺-银、生物活性玻璃和银。大多数研究评估了纳米颗粒对粘接剪切强度(SBS)、微生物生长和显微硬度的影响。只有三项研究使用维氏试验研究了纳米颗粒对显微硬度的影响。该综述发现,在正畸牙科粘接剂中添加纳米颗粒可增强其抗菌和防龋性能,而不影响剪切强度。这可以预防正畸治疗期间的牙釉质脱矿。未来的研究可以从这些积极特性中受益,这需要一种跨学科的方法。