Paul Susan, Padmanabhan T V, Swarup Shailee
Department of Prosthodontics and Implantology, Faculty of Dental Sciences, Sri Ramachandra University, Porur, Chennai, Tamil Nadu, India.
Indian J Dent Res. 2013 Jan-Feb;24(1):8-13. doi: 10.4103/0970-9290.114913.
The aim of this study was to evaluate the microstrain exhibited by bone around immediately loaded, platform-switched, and non-platform-switched implants under vertical and angled loading using a finite element analysis (FEA) and also to evaluate whether platform-switched implants evoke a better response than non-platform-switched implants on a mechanical basis.
Three-dimensional finite element study was undertaken to model and analyze an immediate loaded situation. FEA was chosen for this study since it is useful in determining the stress and strain around the dental implant. Bone responses to vertical and angulated loads on straight and angulated abutments (platform-switched and non-platform-switched abutments) were evaluated.
Non-platform-switched abutments tend to exhibit a lower tensile stress and compressive stress but higher microstrain value (conducive to higher chance of bone resorption) than platform-switched abutments. Ideal bone remodeling values of microstrain (50-3000 μm) were exhibited by platform-switched straight abutments under vertical load and angled load (with an abutment-implant diameter difference of 1 mm).
In spite of the obvious advantages, the practice of immediate loading is limited due to apprehension associated with compromised bone response and a higher rate of bone loss around an immediately loaded implant. The mechanical basis for the concept of "platform switching" in immediately loaded situation is analyzed in this context. The results of this limited investigation indicated that the ideal values of microstrain (50-3000 microstrain) can be exhibited by platform switching of dental implants (with an abutment-implant diameter difference of 1 mm) and can be considered as a better alternative for prevention of crestal bone loss when compared to non-platform-switched implants.
本研究旨在通过有限元分析(FEA)评估垂直和倾斜加载下即刻加载、平台转换和非平台转换种植体周围骨组织所表现出的微应变,并从力学角度评估平台转换种植体是否比非平台转换种植体引发更好的反应。
进行三维有限元研究以模拟和分析即刻加载情况。本研究选择有限元分析是因为它有助于确定牙种植体周围的应力和应变。评估了直基台和斜基台(平台转换和非平台转换基台)上垂直和倾斜载荷下的骨反应。
与平台转换基台相比,非平台转换基台往往表现出较低的拉应力和压应力,但微应变值较高(有利于更高的骨吸收几率)。在垂直载荷和倾斜载荷下(基台 - 种植体直径差为1mm),平台转换直基台表现出微应变的理想骨重塑值(50 - 3000μm)。
尽管即刻加载有明显优势,但由于担心骨反应受损以及即刻加载种植体周围骨丢失率较高,即刻加载的应用受到限制。在此背景下分析了即刻加载情况下“平台转换”概念的力学基础。这项有限研究的结果表明,牙种植体的平台转换(基台 - 种植体直径差为1mm)可表现出微应变的理想值(50 - 3000微应变),与非平台转换种植体相比,可被视为预防牙槽嵴骨丢失的更好选择。