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Optimization of Loading Condition for Maxillary Molar Intrusion with Midpalatal Miniscrews by Using Finite Element Analysis

Title: Optimization of Loading Condition for Maxillary Molar Intrusion with Midpalatal Miniscrews by Using Finite Element Analysis
Authors: Ornnicha Pooktuantong; Takeshi Ogasawara; Masayoshi Uezono; Pintu-on Chantarawaratit; Keiji Moriyama
Source: Applied Sciences ; Volume 11 ; Issue 24 ; Pages: 11749
Publisher Information: Multidisciplinary Digital Publishing Institute
Publication Year: 2021
Collection: MDPI Open Access Publishing
Subject Terms: orthodontics; biomechanics; finite element analysis; anterior open bite; maxillary molar intrusion; midpalatal miniscrew; hook position; counter load; tipping movement
Description: An anterior open bite is one of the most difficult malocclusions in orthodontic treatment. For such malocclusion, orthodontic miniscrew insertion into both buccal and palatal alveolar regions has been indicated for molar intrusion, but it involves a risk of tooth root injury. To solve the problem, a midpalatal miniscrew-attached extension arm (MMEA) is adopted. However, this method causes palatal tipping of the molar because intrusive loads were applied only from the palatal side. Currently, a transpalatal arch is added to avoi0d tipping movement, but it induces the patient’s discomfort. Hence, the objective of this study was to evaluate the loading conditions for maxillary molar intrusion without tipping movement, only by MMEA through finite element (FE) analysis. FE models of maxillary right first molar and surrounding tissues were created. Three hook positions of MMEA were set at 6.0 mm perpendicular intervals in the occluso-apical direction along the mucosal contour. An intrusive unit load was applied from the palatal side of the molar, and various counter loads were applied from the buccal side. An optimal counter load for molar intrusion without palatal tipping was observed in each hook position. In conclusion, an ideal maxillary molar intrusion can be achieved only by MMEA with an optimal counter load.
Document Type: text
File Description: application/pdf
Language: English
Relation: Applied Dentistry and Oral Sciences; https://dx.doi.org/10.3390/app112411749
DOI: 10.3390/app112411749
Availability: https://doi.org/10.3390/app112411749
Rights: https://creativecommons.org/licenses/by/4.0/
Accession Number: edsbas.EADD83F8
Database: BASE