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Biomechanical effects of Teuscher activator in hyperdivergent Class II malocclusion treatment: A finite element analysis

BACKGROUND: In orthodontic treatment, the combination of an activator with a headgear is commonly used in treatment of the hyperdivergent Class II malocclusion. However, the distribution of stresses transmitted to the maxilla by these appliances has been little studied. This study aimed to compare t...

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Autores principales: Jorge, Marta, Vaz, Mário, Lopes, Jorge, Ustrell-Torrent, Josep-Maria, Farahani, Behzad, Ponces, Maria-João
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Medicina Oral S.L. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8601694/
https://www.ncbi.nlm.nih.gov/pubmed/34824699
http://dx.doi.org/10.4317/jced.58722
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author Jorge, Marta
Vaz, Mário
Lopes, Jorge
Ustrell-Torrent, Josep-Maria
Farahani, Behzad
Ponces, Maria-João
author_facet Jorge, Marta
Vaz, Mário
Lopes, Jorge
Ustrell-Torrent, Josep-Maria
Farahani, Behzad
Ponces, Maria-João
author_sort Jorge, Marta
collection PubMed
description BACKGROUND: In orthodontic treatment, the combination of an activator with a headgear is commonly used in treatment of the hyperdivergent Class II malocclusion. However, the distribution of stresses transmitted to the maxilla by these appliances has been little studied. This study aimed to compare the biomechanical effects of stresses transmitted to the maxilla and teeth by a Teuscher activator (TA) for different lines of action of extraoral force, using finite element analysis. MATERIAL AND METHODS: A tridimensional finite element model of the maxilla and teeth was created based on the true geometry of a human skull. The (TA) and the face bow were designed in 3D computer-aided design and fixed in the maxilla model. To study the effects of mechanical stress transmitted to the maxilla in the treatment of hyperdivergent Class II malocclusion with (TA) combined with extraoral forces, five different finite element models were used, considering the centers of resistance of the maxilla and dentition. RESULTS: The results showed that stresses increased progressively when the force line of action moved in posteroanterior direction. Von Mises equivalent stress was lower in Model 1 (0°) than in Model 5 (60°). In Models 1 (0°) and 2 (15°), molars suffered greater distal displacement and incisors showed extrusion. In Model 3 (30°), the force line of action promoted a distal displacement of molars and incisors. In Models 4 (45°) and 5 (60°), the whole maxillary anterior sector showed counterclockwise displacement. CONCLUSIONS: Different force lines of action influence the intensity and distribution of orthodontic and orthopedic forces in the maxilla. The extraoral force’s line of action used in Model 3 (30°) is the most compatible with the objectives of the hyperdivergent Class II malocclusion treatment in growing patients. Key words:Class II, Headgear, Early treatment, FEA.
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spelling pubmed-86016942021-11-24 Biomechanical effects of Teuscher activator in hyperdivergent Class II malocclusion treatment: A finite element analysis Jorge, Marta Vaz, Mário Lopes, Jorge Ustrell-Torrent, Josep-Maria Farahani, Behzad Ponces, Maria-João J Clin Exp Dent Research BACKGROUND: In orthodontic treatment, the combination of an activator with a headgear is commonly used in treatment of the hyperdivergent Class II malocclusion. However, the distribution of stresses transmitted to the maxilla by these appliances has been little studied. This study aimed to compare the biomechanical effects of stresses transmitted to the maxilla and teeth by a Teuscher activator (TA) for different lines of action of extraoral force, using finite element analysis. MATERIAL AND METHODS: A tridimensional finite element model of the maxilla and teeth was created based on the true geometry of a human skull. The (TA) and the face bow were designed in 3D computer-aided design and fixed in the maxilla model. To study the effects of mechanical stress transmitted to the maxilla in the treatment of hyperdivergent Class II malocclusion with (TA) combined with extraoral forces, five different finite element models were used, considering the centers of resistance of the maxilla and dentition. RESULTS: The results showed that stresses increased progressively when the force line of action moved in posteroanterior direction. Von Mises equivalent stress was lower in Model 1 (0°) than in Model 5 (60°). In Models 1 (0°) and 2 (15°), molars suffered greater distal displacement and incisors showed extrusion. In Model 3 (30°), the force line of action promoted a distal displacement of molars and incisors. In Models 4 (45°) and 5 (60°), the whole maxillary anterior sector showed counterclockwise displacement. CONCLUSIONS: Different force lines of action influence the intensity and distribution of orthodontic and orthopedic forces in the maxilla. The extraoral force’s line of action used in Model 3 (30°) is the most compatible with the objectives of the hyperdivergent Class II malocclusion treatment in growing patients. Key words:Class II, Headgear, Early treatment, FEA. Medicina Oral S.L. 2021-11-01 /pmc/articles/PMC8601694/ /pubmed/34824699 http://dx.doi.org/10.4317/jced.58722 Text en Copyright: © 2021 Medicina Oral S.L. https://creativecommons.org/licenses/by/2.5/This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Jorge, Marta
Vaz, Mário
Lopes, Jorge
Ustrell-Torrent, Josep-Maria
Farahani, Behzad
Ponces, Maria-João
Biomechanical effects of Teuscher activator in hyperdivergent Class II malocclusion treatment: A finite element analysis
title Biomechanical effects of Teuscher activator in hyperdivergent Class II malocclusion treatment: A finite element analysis
title_full Biomechanical effects of Teuscher activator in hyperdivergent Class II malocclusion treatment: A finite element analysis
title_fullStr Biomechanical effects of Teuscher activator in hyperdivergent Class II malocclusion treatment: A finite element analysis
title_full_unstemmed Biomechanical effects of Teuscher activator in hyperdivergent Class II malocclusion treatment: A finite element analysis
title_short Biomechanical effects of Teuscher activator in hyperdivergent Class II malocclusion treatment: A finite element analysis
title_sort biomechanical effects of teuscher activator in hyperdivergent class ii malocclusion treatment: a finite element analysis
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8601694/
https://www.ncbi.nlm.nih.gov/pubmed/34824699
http://dx.doi.org/10.4317/jced.58722
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