Chongqing Key Laboratory of Oral Diseases and Biomedical Sciences, Chongqing Municipal Key Laboratory of Oral Biomedical Engineering of Higher Education, Stomatological Hospital of Chongqing Medical University, Chongqing, China.
Beijing Advanced Innovation Center for Biomedical Engineering, Beihang University, Beijing, China.
J Esthet Restor Dent. 2022 Oct;34(7):1085-1095. doi: 10.1111/jerd.12935. Epub 2022 Jun 8.
This study intended to ascertain the dimensional effects of labial bone thickness and height on the mechanobiological stimuli distribution of maxillary anterior labial bone through biomechanical analysis.
Twelve 3D finite element models of an anterior maxillary region with an implant were computer-simulated, including four levels of labial bone thicknesses (2, 1.5, 1.0, and 0.5 mm) and three levels of labial bone heights (normal, reduced by 1/3, reduced by 1/2). A 45° buccolingual oblique load of 100 N was applied to the implant restoration.
Equivalent stress and principal strain mainly concentrated on crestal bone around the implant neck. The maximum equivalent stress in bone decreased as labial bone mass decreased, while the maximum principal strain and the displacement of dental implant increased as labial bone mass decreased. No significant difference of these three indicators was observed, when the labial bone thickness changed in the range of 2.0-1.0 mm with sufficient labial bone height.
In terms of biomechanics, the thickness of labial bone plate was recommended ≥1 mm. Sufficient labial bone height was warranted to prevent the stability of the implants from being seriously affected. The labial bone heights were more effective than thicknesses on the mechanobiological stimuli response of the dental implant-bone system.
For this 3D finite element study, the biomechanical responses under different bone mass conditions were explored, in order to predict the process of bone remodeling and provide valid clinical recommendations for the decision-making process regarding the choices of tissue augmentation for some specific esthetic implantation cases for future clinical applications.
本研究旨在通过生物力学分析,确定唇侧骨厚度和高度对上颌前唇侧骨力学刺激分布的维度影响。
计算机模拟了 12 个带有种植体的上前牙区的 3D 有限元模型,包括唇侧骨厚度(2、1.5、1.0 和 0.5mm)的四个水平和唇侧骨高度(正常、减少 1/3 和减少 1/2)的三个水平。在种植体修复体上施加 100N 的 45°颊舌向斜向载荷。
等效应力和主应变主要集中在种植体颈部周围的牙槽嵴骨。随着唇侧骨量的减少,骨内最大等效应力减小,而随着唇侧骨量的减少,最大主应变和牙种植体的位移增加。当唇侧骨厚度在 2.0-1.0mm 范围内且唇侧骨高度充足时,这三个指标没有显著差异。
从生物力学角度来看,唇侧骨板的厚度建议≥1mm。保证唇侧骨有足够的高度,以防止种植体的稳定性受到严重影响。唇侧骨高度比厚度对牙种植体-骨系统的力学刺激反应更有效。
对于这项 3D 有限元研究,探讨了不同骨量条件下的生物力学响应,以便预测骨重塑过程,并为某些特定美学种植病例的组织增强决策过程提供有效的临床建议,以用于未来的临床应用。