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Year 2025, Volume: 59 Issue: 3, 179 - 185, 08.10.2025
https://doi.org/10.26650/eor.20251481061

Abstract

References

  • Hedayati Z, Shomali M. Maxillary anterior en masse retraction using different antero-posterior position of mini screw: a 3D finite element study. Prog Orthod 2016;17:1-7. google scholar
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  • Antoszewska-Smith J, Sarul M, Lyczek J, Konopka T, Kawala B. Effectiveness of orthodontic miniscrew implants in anchorage reinforcement during en-masse retraction: a systematic review and meta-analysis. Am J Orthod Dentofacial Orthop 2017;151:440-55. google scholar
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  • Bittencourt LP, Raymundo MV, Mucha JN. The optimal position for insertion of orthodontic miniscrews. Rev Odonto Cienc 2011;26:133-8. google scholar
  • Paulsen F, Waschke J. Sobotta Atlas of Anatomy, Vol. 2, English/Latin: Internal Organs: Elsevier Health Sciences; 2023. google scholar
  • Tominaga JY, Ozaki H, Chiang P-C, Sumi M, Tanaka M, Koga Y Effect of bracket slot and archwire dimensions on anterior tooth movement during space closure in sliding mechanics: a 3-dimensional finite element study. Am J Orthod Dentofacial Orthop 2014;146:166-74. google scholar
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  • Song JW, Lim JK, Lee KJ, Sung SJ, Chun YS, Mo SS. Finite element analysis of maxillary incisor displacement during en-masse retraction according to orthodontic mini-implant position 2016; 46:242-52 google scholar
  • Bohara P, Kumar M, Sharma H, Jayprakash PK, Misra V, Savana K. Stress distribution and displacement of maxillary anterior teeth during en-masse intrusion and retraction: a FEM study. J Indian Orthod Soc 2017;51:152-9. google scholar
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  • Ozaki H, Tominaga J-y, Hamanaka R, Sumi M, Chiang P-C, Tanaka M, et al. Biomechanical aspects of segmented arch mechanics combined with power arm for controlled anterior tooth movement: A three-dimensional finite element study. J Dent Biomech 2015;6. google scholar
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Three-dimensional finite element analysis of the effects of different force vectors on tooth movement in miniscrew-assisted en masse retraction

Year 2025, Volume: 59 Issue: 3, 179 - 185, 08.10.2025
https://doi.org/10.26650/eor.20251481061

Abstract

Purpose: This study evaluates the effects of different force directions on tooth movement in miniscrew-assisted en masse retraction using finite element analysis (FEA).

Materials and Methods: A three-dimensional (3D) finite element model was constructed to simulate en masse retraction in sliding mechanics. A retraction force of 200 g was applied from the anterior retraction hook (ARH) to a miniscrew, and force vectors were resolved along the X, Y, and Z axes. Six different configurations were analysed by varying the ARH (5 mm and 8 mm) and miniscrew heights (6 mm, 8 mm, and 12 mm). Displacement values of anterior and posterior teeth were examined to assess movement patterns in mesiodistal, buccopalatal, and vertical directions.

Results: The analysis revealed that increasing the retraction hook length enhanced mesiodistal tipping of anterior teeth, while higher miniscrew placement reduced mesiodistal tipping of posterior teeth. On the buccopalatal plane, anterior teeth exhibited greater palatal movement when the miniscrew height was reduced, whereas an increased retraction hook height intensified palatal tipping of anterior teeth. Posterior teeth displayed more palatal tipping with a low retraction hook, and greater miniscrew height increased posterior palatal tipping when the hook length remained constant. On the vertical plane, a higher retraction hook induced more intrusion in anterior teeth. Additionally, when a low retraction hook was used, an increase in miniscrew height further enhanced anterior intrusion.

Conclusion: The force direction in en masse retraction should be optimized based on the desired movement in vertical, horizontal, and buccopalatal dimensions. According to the FEA findings, the low hook–low miniscrew combination resulted in maximum palatal crown tipping, while a high miniscrew position was beneficial for torque control by reducing palatal tipping. The low hook–high miniscrew configuration generated significant anterior intrusion, making it a suitable strategy for deep bite correction.

References

  • Hedayati Z, Shomali M. Maxillary anterior en masse retraction using different antero-posterior position of mini screw: a 3D finite element study. Prog Orthod 2016;17:1-7. google scholar
  • Becker K, Pliska A, Busch C, Wilmes B, Wolf M, Drescher D. Efficacy of orthodontic mini implants for en masse retraction in the maxilla: a systematic review and meta-analysis. Int J Implant Dent 2018;4:1-12. google scholar
  • Antoszewska-Smith J, Sarul M, Lyczek J, Konopka T, Kawala B. Effectiveness of orthodontic miniscrew implants in anchorage reinforcement during en-masse retraction: a systematic review and meta-analysis. Am J Orthod Dentofacial Orthop 2017;151:440-55. google scholar
  • Mohammed S, Desai H. Basic concepts of finite element analysis and its applications in dentistry: An overview. J Oral Hyg Health 2014:1-5. google scholar
  • Cattaneo P, Dalstra M, Melsen B. The finite element method: a tool to study orthodontic tooth movement. J Dent Res 2005;84:428-33. google scholar
  • Bittencourt LP, Raymundo MV, Mucha JN. The optimal position for insertion of orthodontic miniscrews. Rev Odonto Cienc 2011;26:133-8. google scholar
  • Paulsen F, Waschke J. Sobotta Atlas of Anatomy, Vol. 2, English/Latin: Internal Organs: Elsevier Health Sciences; 2023. google scholar
  • Tominaga JY, Ozaki H, Chiang P-C, Sumi M, Tanaka M, Koga Y Effect of bracket slot and archwire dimensions on anterior tooth movement during space closure in sliding mechanics: a 3-dimensional finite element study. Am J Orthod Dentofacial Orthop 2014;146:166-74. google scholar
  • Tominaga JY, Tanaka M, Kog, Y, Gonzales C, Kobayashi M, Yoshida N Optimal loading conditions for controlled movement of anterior teeth in sliding mechanics: A 3D finite element study. Angle Orthod 79: 1102-1107 google scholar
  • Kojima Y, Kawamura J, Fukui H. Finite element analysis of the effect of force directions on tooth movement in extraction space closure with miniscrew sliding mechanics. Am J Orthod Dentofacial Orthop 2012;142:501-8. google scholar
  • Parashar A, Aileni KR, Rachala MR, Shashidhar NR, Mallikaıjun V, Parik N. Torque loss in en-masse retraction of maxillary anterior teeth using miniimplants with force vectors at different levels: 3D FEM study. J Clin Diagn Res 2014;8:ZC77. google scholar
  • Song JW, Lim JK, Lee KJ, Sung SJ, Chun YS, Mo SS. Finite element analysis of maxillary incisor displacement during en-masse retraction according to orthodontic mini-implant position 2016; 46:242-52 google scholar
  • Bohara P, Kumar M, Sharma H, Jayprakash PK, Misra V, Savana K. Stress distribution and displacement of maxillary anterior teeth during en-masse intrusion and retraction: a FEM study. J Indian Orthod Soc 2017;51:152-9. google scholar
  • Chetan S, Keluskar KM, Vasisht VN, Revankar S. En-masse retraction of the maxillary anterior teeth by applying force from four different levels-a finite element study. J Clin Diagn Res 2014;8:ZC26. google scholar
  • Ozaki H, Tominaga J-y, Hamanaka R, Sumi M, Chiang P-C, Tanaka M, et al. Biomechanical aspects of segmented arch mechanics combined with power arm for controlled anterior tooth movement: A three-dimensional finite element study. J Dent Biomech 2015;6. google scholar
  • Nanda RS, Tosun YS. Biomechanics in orthodontics. Principles and practice Hanover Park IL: Quintessence Publishing Co. 2010:38-9. google scholar
There are 16 citations in total.

Details

Primary Language English
Subjects Orthodontics and Dentofacial Orthopaedics
Journal Section Original Research Articles
Authors

İpek Şavkan 0000-0002-8144-1320

Gülnaz Marşan 0000-0003-3278-3372

Beyza Tağrikuu 0000-0002-8106-6364

Publication Date October 8, 2025
Submission Date May 9, 2024
Acceptance Date October 11, 2024
Published in Issue Year 2025 Volume: 59 Issue: 3

Cite

EndNote Şavkan İ, Marşan G, Tağrikuu B (October 1, 2025) Three-dimensional finite element analysis of the effects of different force vectors on tooth movement in miniscrew-assisted en masse retraction. European Oral Research 59 3 179–185.