Xiaohan Jin, Xue Tian, Victoria Lee Zhi Hui, Yikan Zheng, Jinlin Song, Xianglong Han
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引用次数: 0
摘要
背景:在使用透明矫治器(CA)进行间隙关闭时,经常会出现后牙中侧倾倒的情况。在这项研究中,我们提出了一种新的CA改良方法,通过局部加厚矫治器来形成增强结构,并研究其在前牙牵引过程中的生物力学效应:本研究采用了两种方法。首先,构建了一个有限元(FE)模型,其中包括牙槽骨、拔出的上颌第一前磨牙、牙周韧带(PDL)、附着体和矫治器。第二种方法涉及实验模型--使用多轴传感器的测量设备和真空热成型矫治器。实验分为两组:(1) 对照组使用普通 CA,(2) 增强结构组使用部分增厚的 CA:FE 模型显示,增强型结构改善了前牙牵引时的生物力学。具体来说,PDL面积较小的第二前磨牙承受的牵引力和力矩较小,使其不容易向中线倾斜。同样,臼齿由于其 PDL 面积较大,即使受到较大的力,也能抵御移动。后牙的作用力更接近阻力中心,从而减小了倾覆力矩。犬齿受到较大的牵引力和力矩,导致前牙充分牵引。实验模型显示出与 FE 模型相似的力变化趋势:增强型结构使拔牙间隙关闭时的力分布更符合生物力学的最佳原则,同时减少了后牙的中倾和锚定损失,并使前牙得到更好的牵引。因此,增强型结构减轻了与拔牙病例相关的过山车效应,为透明矫治器治疗中的锚固加固提供了新的可能性。
The effect of enhanced structure in the posterior segment of clear aligners during anterior retraction: a three-dimensional finite element and experimental model analysis.
Background: Mesial tipping of posterior teeth occurs frequently during space closure with clear aligners (CAs). In this study, we proposed a new modification of CA by localized thickening of the aligner to form the enhanced structure and investigate its biomechanical effect during anterior retraction.
Methods: Two methods were employed in this study. First, a finite element (FE) model was constructed, which included alveolar bone, the first premolars extracted maxillary dentition, periodontal ligaments (PDL), attachments and aligners. The second method involved an experimental model-a measuring device using multi-axis transducers and vacuum thermoforming aligners. Two groups were formed: (1) The control group used common CAs and (2) the enhanced structure group used partially thickened CAs.
Results: FE model revealed that the enhanced structure improved the biomechanics during anterior retraction. Specifically, the second premolar, which had a smaller PDL area, experienced a smaller protraction force and moment, making it less likely to tip mesially. In the same vein, the molars could resist movement due to their larger PDL area even though they were applied larger forces. The resultant force of the posterior tooth was closer to the center of resistance, reducing the tipping moment. The canine was applied a larger retraction force and moment, resulting in sufficient retraction of anterior teeth. The experimental model demonstrated a similar trend in force variation as the FE model.
Conclusions: Enhanced structure allowed force distribution more in accordance with optimal principles of biomechanics during the extraction space closure while permitting less mesial tipping and anchorage loss of posterior teeth and better retraction of anterior teeth. Thus, enhanced structure alleviated the roller coaster effect associated with extraction cases and offered a new possibility for anchorage reinforcement in clear aligner therapy.
期刊介绍:
Progress in Orthodontics is a fully open access, international journal owned by the Italian Society of Orthodontics and published under the brand SpringerOpen. The Society is currently covering all publication costs so there are no article processing charges for authors.
It is a premier journal of international scope that fosters orthodontic research, including both basic research and development of innovative clinical techniques, with an emphasis on the following areas:
• Mechanisms to improve orthodontics
• Clinical studies and control animal studies
• Orthodontics and genetics, genomics
• Temporomandibular joint (TMJ) control clinical trials
• Efficacy of orthodontic appliances and animal models
• Systematic reviews and meta analyses
• Mechanisms to speed orthodontic treatment
Progress in Orthodontics will consider for publication only meritorious and original contributions. These may be:
• Original articles reporting the findings of clinical trials, clinically relevant basic scientific investigations, or novel therapeutic or diagnostic systems
• Review articles on current topics
• Articles on novel techniques and clinical tools
• Articles of contemporary interest