Institute of Biomaterials and Biomedical Engineering, University of Toronto, Ontario, Canada.
Faculty of Dentistry, University of Toronto, Ontario, Canada.
Dent Mater. 2018 May;34(5):711-725. doi: 10.1016/j.dental.2018.01.021.
Two leading causes contributing to dental restoration replacement are the marginal breakdown at the composite/dentin interface and secondary caries mediated by bacteria. The objective of the present study was to synthesize oligomers which incorporated enhanced bio-stability but would also be able to generate antimicrobial function if they underwent degradation.
Stability was incorporated into the oligomers by generating structural features that would physically hinder the availability of hydrolytically sensitive groups in the oligomers. As a proof-of concept for the antibacterial feature, antimicrobial function was achieved by covalently incorporating Ciprofloxacin (CF) into the backbone of cross-linking divinyl oligomers (referred to as EDV and HLH-CFPEG). The hydrolytic stability of the oligomers was studied in simulated human salivary esterase and compared to the commercial monomer 2,2-bis[4(2-hydroxy-3-methacryloxypropoxy)-phenyl]propane (BisGMA).
Both drug oligomers were found to be significantly more stable than BisGMA. Upon degradation, both drug oligomers released CF differentially in free form. Polymer synthesis from resin formulations containing 15wt% HLH-CFPEG showed a high degree of vinyl group conversion and gel content, and under hydrolytic conditions showed the release of CF during a 28-day monitoring study period.
HLH-CFPEG can be used in dental resin adhesive systems for local delivery of CF to the marginal interface. Minimizing the growth of Streptococcus mutans at the marginal site can improve longevity by reducing esterase activity derived specifically from S. mutans.
导致牙科修复体更换的两个主要原因是复合树脂/牙本质界面的边缘破裂和细菌介导的继发龋。本研究的目的是合成具有增强生物稳定性的低聚物,如果它们发生降解,也能够产生抗菌功能。
通过生成物理上阻碍低聚物中水解敏感基团可用性的结构特征,将稳定性纳入低聚物中。作为抗菌功能的概念验证,通过将环丙沙星(CF)共价结合到交联二乙烯基低聚物(称为 EDV 和 HLH-CFPEG)的主链中,实现了抗菌功能。研究了低聚物在模拟人唾液酯酶中的水解稳定性,并与商业单体 2,2-双[4(2-羟基-3-甲基丙烯酰氧基丙氧基)-苯基]丙烷(BisGMA)进行了比较。
两种药物低聚物都比 BisGMA 稳定得多。在降解过程中,两种药物低聚物都以游离形式不同程度地释放 CF。含有 15wt%HLH-CFPEG 的树脂配方合成的聚合物显示出很高的乙烯基转化率和凝胶含量,在水解条件下,在 28 天的监测研究期间释放 CF。
HLH-CFPEG 可用于牙科树脂粘接系统,以将 CF 局部递送至边缘界面。通过减少源自 S. mutans 的酯酶活性,最大限度地减少边缘部位变形链球菌的生长,可以通过减少边缘部位的细菌生长来提高修复体的耐久性。