Literature DB >> 24173364

Numerical simulation and biomechanical analysis of an orthodontically treated periodontally damaged dentition.

A Kettenbeil1, S Reimann, C Reichert, L Keilig, A Jäger, C Bourauel.   

Abstract

BACKGROUND AND
OBJECTIVE: Once periodontitis has been completely resolved, one common follow-up method is to carry out orthodontic treatment to take advantage of the residual bone, i.e., via tooth intrusion. In this study, the biomechanical behavior of teeth in a reduced periodontium was studied by numerically simulating upper-incisor intrusion accomplished with various orthodontic mechanics.
MATERIALS AND METHODS: Using the finite element method, a patient-customized 3D model of a periodontally reduced dentition was generated in order to simulate tooth movement. The morphology of this upper-jaw model was derived from cone-beam computed tomography (CBCT) datasets of four patients. Material parameters were adopted from previous investigations, including teeth (E=20 GPa), periodontal ligament (PDL) (bilinear elastic; E1=0.05 MPa; E2=0.20 MPa; ε12=7%), and bone (homogeneous, isotropic; E=2 GPa). Two intrusion scenarios were used, the first drawing from Burstone's segmented-arch technique to intrude four splinted incisors at a time, and the second one using cantilevers to intrude single incisors. The aforementioned PDL material parameters were varied in several ways to simulate different biological and biomechanical states of PDL. All simulations were recalculated with an idealized, periodontally intact model to assess the effect of bone loss by way of comparison.
RESULTS: Single-tooth intrusion via cantilever mechanics was accompanied by less rotation than the segmented-arch approach. Both intrusion systems involved significantly greater degrees of tooth displacement and PDL load in the periodontally reduced model.
CONCLUSION: Periodontally reduced dentitions are associated with an increased load on periodontal tissue. This can be counteracted by reducing orthodontic force levels and by selecting mechanics that do not harm the tissue. In so doing, the use of numerical methods may greatly facilitate individualized computer-aided treatment-planning strategies.

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Year:  2013        PMID: 24173364     DOI: 10.1007/s00056-013-0182-8

Source DB:  PubMed          Journal:  J Orofac Orthop        ISSN: 1434-5293            Impact factor:   1.938


  19 in total

1.  [Comparison of mechanical properties of orthodontic nickel-titanium wires].

Authors:  D Kayser; C Bourauel; B Braumann; A Jäger
Journal:  Biomed Tech (Berl)       Date:  2002-12       Impact factor: 1.411

2.  Simulation of orthodontic tooth movements. A comparison of numerical models.

Authors:  C Bourauel; D Freudenreich; D Vollmer; D Kobe; D Drescher; A Jäger
Journal:  J Orofac Orthop       Date:  1999       Impact factor: 1.938

3.  Rationale of the segmented arch.

Authors:  C J BURSTONE
Journal:  Am J Orthod       Date:  1962-11

4.  The finite element method: a tool to study orthodontic tooth movement.

Authors:  P M Cattaneo; M Dalstra; B Melsen
Journal:  J Dent Res       Date:  2005-05       Impact factor: 6.116

5.  Orthodontic treatment of periodontally involved teeth after tissue regeneration.

Authors:  Carlo Ghezzi; Silvia Masiero; Maurizio Silvestri; Gianfranco Zanotti; Giulio Rasperini
Journal:  Int J Periodontics Restorative Dent       Date:  2008-12       Impact factor: 1.840

Review 6.  Guided tissue regeneration associated with orthodontic therapy.

Authors:  P R Diedrich
Journal:  Semin Orthod       Date:  1996-03       Impact factor: 0.970

7.  The mechanics of the segmented arch techniques.

Authors:  C J Burstone
Journal:  Angle Orthod       Date:  1966-04       Impact factor: 2.079

8.  Bio-Oss collagen and orthodontic movement for the treatment of infrabony defects in the esthetic zone.

Authors:  Daniele Cardaropoli; Stefania Re; William Manuzzi; Lorena Gaveglio; Giuseppe Cardaropoli
Journal:  Int J Periodontics Restorative Dent       Date:  2006-12       Impact factor: 1.840

9.  Orthodontic movement into bone defects augmented with bovine bone mineral and fibrin sealer: a reentry case report.

Authors:  Stefania Re; Giuseppe Corrente; Roberto Abundo; Daniele Cardaropoli
Journal:  Int J Periodontics Restorative Dent       Date:  2002-04       Impact factor: 1.840

10.  Periodontal tissue response to orthodontic movement of teeth with infrabony pockets.

Authors:  J L Wennström; B L Stokland; S Nyman; B Thilander
Journal:  Am J Orthod Dentofacial Orthop       Date:  1993-04       Impact factor: 2.650

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  5 in total

1.  Effect of material variation on the biomechanical behaviour of orthodontic fixed appliances: a finite element analysis.

Authors:  Spyridon N Papageorgiou; Ludger Keilig; Istabrak Hasan; Andreas Jäger; Christoph Bourauel
Journal:  Eur J Orthod       Date:  2015-07-14       Impact factor: 3.075

2.  Influence of tooth dimension on the initial mobility based on plaster casts and X-ray images : A numerical study.

Authors:  Martin Hartmann; Cornelius Dirk; Susanne Reimann; Ludger Keilig; Anna Konermann; Andreas Jäger; Christoph Bourauel
Journal:  J Orofac Orthop       Date:  2017-01-13       Impact factor: 1.938

3.  Biomechanical analysis of occlusal modes on the periodontal ligament while orthodontic force applied.

Authors:  Ming-Tzu Tsai; Heng-Li Huang; Shih-Guang Yang; Kuo-Chih Su; Lih-Jyh Fuh; Jui-Ting Hsu
Journal:  Clin Oral Investig       Date:  2021-03-04       Impact factor: 3.606

4.  Torque differences due to the material variation of the orthodontic appliance: a finite element study.

Authors:  Spyridon N Papageorgiou; Ludger Keilig; Vaska Vandevska-Radunovic; Theodore Eliades; Christoph Bourauel
Journal:  Prog Orthod       Date:  2017-02-27       Impact factor: 2.750

5.  Effects of Periodontal Splints on Biomechanical Behaviors in Compromised Periodontal Tissues and Cement Layer: 3D Finite Element Analysis.

Authors:  Yuchen Liu; Ming Fang; Ruifeng Zhao; Hengyan Liu; Min Tian; Sheng Zhong; Shizhu Bai
Journal:  Polymers (Basel)       Date:  2022-07-12       Impact factor: 4.967

  5 in total

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