Steinebrunner Lars, Wolfart Stefan, Bössmann Klaus, Kern Matthias
Department of Prosthodontics, Propaedeutics and Dental Materials, Dental School, Christian-Albrechts-University, Kiel, Germany.
Int J Oral Maxillofac Implants. 2005 Nov-Dec;20(6):875-81.
Microbial leakage and colonization between implants and their abutments may cause inflammatory reactions in the peri-implant tissues. This study evaluated microbial leakage at the implant-abutment interface with a new in vitro model.
Bacterial leakage was tested during dynamic loading in a 2-axis chewing simulator. The authors theorized that dynamic loading would decrease the stability of the implant-abutment connections and thereby lead to bacterial penetration along the gap. Five different implant systems with 8 standard implant-abutment combinations for single molar crowns were tested. The internal aspects of the implants were inoculated with a bacterial suspension and connected to the superstructure with the recommended torque. The specimens were immersed in a nutrient solution and loaded with 1,200,000 cycles of 120 N in the chewing simulator.
Statistically significant differences (P < or = .05) between implant systems with respect to number of chewing cycles until bacterial penetration were found.
The degree of penetration in a specific implant system presumably is a multifactorial condition dependent on the precision of fit between the implant and the abutment, the degree of micromovement between the components, and the torque forces used to connect them.
It was concluded that the newly developed test model is a sensitive tool for the detection of differences between current implant systems with respect to their ability to prevent bacterial penetration at the implant-abutment interface under dynamic loading conditions.
种植体与其基台之间的微生物渗漏和定植可能会导致种植体周围组织发生炎症反应。本研究使用一种新的体外模型评估种植体-基台界面处的微生物渗漏情况。
在两轴咀嚼模拟器的动态加载过程中测试细菌渗漏情况。作者推测动态加载会降低种植体-基台连接的稳定性,从而导致细菌沿间隙渗透。对五种不同的种植系统进行了测试,这些种植系统包含用于单颗磨牙冠的8种标准种植体-基台组合。在种植体内部接种细菌悬液,并以推荐扭矩连接到上部结构。将标本浸入营养液中,并在咀嚼模拟器中以120 N的力加载1200000次循环。
发现不同种植系统在细菌渗透前的咀嚼循环次数方面存在统计学显著差异(P≤0.05)。
特定种植系统中的渗透程度可能是一个多因素情况,取决于种植体与基台之间的适配精度、部件之间的微动程度以及用于连接它们的扭矩力。
得出的结论是,新开发的测试模型是一种灵敏的工具,可用于检测当前种植系统在动态加载条件下防止细菌在种植体-基台界面渗透能力方面的差异。