Yan Huiyi, Yang Hongye, Li Kang, Yu Jian, Huang Cui
The State Key Laboratory Breeding Base of Basic Science of Stomatology (Hubei-MOST) & Key Laboratory for Oral Biomedical Ministry of Education, School & Hospital of Stomatology, Wuhan University, Wuhan 430079, China.
Molecules. 2017 Jul 21;22(7):1225. doi: 10.3390/molecules22071225.
One of the primary causes for the failure of glass ionomer cement (GIC) is secondary caries. To enhance the anti-microbial performance of GIC without affecting its mechanical properties, chlorhexidine (CHX) was encapsulated in expanded-pore mesoporous silica nanoparticles (pMSN) to synthesize CHX@pMSN. CHX@pMSN was added at three mass fractions (1%, 5%, and 10% ()) to GIC powder as the experimental groups. Pure GIC was set as the control group. The mechanical and anti-biofilm properties of GIC from each group were tested. The results demonstrated that CHX was successfully encapsulated on/into pMSN, and the encapsulating efficiency of CHX was 44.62% in CHX@pMSN. The anti-biofilm ability was significantly enhanced in all experimental groups ( < 0.001) compared with that in the control group. CHX was continuously released, and anti-biofilm ability was maintained up to 30 days. In addition, the mechanical properties (compressive strength, surface hardness, elastic modulus, water sorption, and solubility) of 1% () group were maintained compared with those in the control group ( > 0.05). In conclusion, adding 1% () CHX@pMSN to GIC led to conspicuous anti-biofilm ability and had no adverse effect on the mechanical properties of this restorative material. This study proposes a new strategy for preventing secondary caries by using CHX@pMSN-modified GIC.
玻璃离子水门汀(GIC)失效的主要原因之一是继发龋。为了在不影响其机械性能的情况下提高GIC的抗菌性能,将氯己定(CHX)包裹在扩孔介孔二氧化硅纳米颗粒(pMSN)中合成CHX@pMSN。将CHX@pMSN以三种质量分数(1%、5%和10%())添加到GIC粉末中作为实验组。将纯GIC设为对照组。测试了每组GIC的机械性能和抗生物膜性能。结果表明,CHX成功包裹在pMSN上/内,CHX在CHX@pMSN中的包裹效率为44.62%。与对照组相比,所有实验组的抗生物膜能力均显著增强(<0.001)。CHX持续释放,抗生物膜能力维持长达30天。此外,1%()组的机械性能(抗压强度、表面硬度、弹性模量、吸水率和溶解度)与对照组相比保持不变(>0.05)。总之,向GIC中添加1%()CHX@pMSN可显著提高抗生物膜能力,且对这种修复材料的机械性能没有不利影响。本研究提出了一种使用CHX@pMSN改性GIC预防继发龋的新策略。