UWA Dental School, University of Western Australia, 17 Monash Avenue, Nedlands, WA, 6009, Australia; Dental Health Department, College of Applied Medical Sciences, King Saud University, Riyadh, 11433, Saudi Arabia.
UWA Dental School, University of Western Australia, 17 Monash Avenue, Nedlands, WA, 6009, Australia.
J Mech Behav Biomed Mater. 2022 Oct;134:105421. doi: 10.1016/j.jmbbm.2022.105421. Epub 2022 Aug 24.
The aim of this study is to develop a novel 3D printed denture base resin material modified with mesoporous silica nanocarrier loaded with silver (Ag/MSN) to enhance mechanical and antimicrobial properties. Acrylate resin-based was incorporated with various proportion of Ag/MSN (0.0-2.0 wt%). Specimens with different geometry were printed and characterized accordingly for the effect of modification on properties such as: mechanical and physical properties, chemical composition and degree of conversion, as well as biological response in term of biocompatibility and antimicrobial against oral fibroblast and candida biofilm (C. albicans), respectively. The consecutive addition of Ag/MSN improved significantly surface hardness and crack propagation resistance, while flexural strength remained similar to control; however, a negligible decrease was observed with higher concentrations ≥1 wt%. No significant difference was noticed with water sorption, while water solubility had a remarkable trend of reduction associated with filler content. The surface roughness significantly increased when concentration of Ag/MSN was ≥1.0 wt%. A significant reduction in C. albicans biofilm mass, as the inhibition proficiency was correlated with the proportion of the filler. With respect to the amount of Ag/MSN, the modification was compatible toward fibroblast cells. The sequential addition of Ag/MSN enhanced significantly the mechanical and antimicrobial properties of the 3D printed resin-based material without affecting adversely compatibility. The acrylic resin denture base material has susceptibility of microbial adhesion which limits its application. Silver loaded MSN showed a significant performance to enhance antimicrobial activity against C. albicans which is the main cause of denture stomatitis. The proposed invention is a promise technique for clinical application to provide an advanced prosthesis fabrication and serve as long-term drug delivery.
本研究旨在开发一种新型 3D 打印义齿基托树脂材料,该材料用载银介孔硅纳米载体(Ag/MSN)进行改性,以提高机械性能和抗菌性能。基于丙烯酸酯树脂的材料与不同比例的 Ag/MSN(0.0-2.0wt%)混合。打印具有不同几何形状的样本,并对其进行相应的特性分析,以评估改性对以下特性的影响:机械性能和物理性能、化学成分和转化率,以及生物相容性和抗口腔成纤维细胞和念珠菌生物膜(白色念珠菌)的抗菌性。连续添加 Ag/MSN 可显著提高表面硬度和抗裂扩展性能,而弯曲强度与对照相比保持相似;然而,当浓度≥1wt%时,观察到轻微下降。吸水率没有显著差异,而溶解度与填料含量呈显著下降趋势。当 Ag/MSN 浓度≥1.0wt%时,表面粗糙度显著增加。白色念珠菌生物膜质量显著减少,抑制效率与填料的比例相关。就 Ag/MSN 的用量而言,改性对成纤维细胞是兼容的。连续添加 Ag/MSN 可显著提高 3D 打印树脂基材料的机械性能和抗菌性能,而不会对其兼容性产生不利影响。丙烯酸树脂义齿基托材料容易受到微生物附着的影响,限制了其应用。载银 MSN 表现出显著的增强抗菌活性的性能,对抗白色念珠菌,白色念珠菌是导致义齿口炎的主要原因。本发明是一种有前途的临床应用技术,可提供先进的义齿制作并作为长期药物输送。