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March 22, 2026PLoS ONE2 citationsOpen Access

Effects of attachment designs on clear aligner tooth movement: A finite element analysis

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KAKhaled AlsharifPNPeter NganGGGuoqiang Guan

Key Points

  • This research aims to assess how different attachment designs affect tooth movement in clear aligners.
  • Developed a subject-specific 3D maxillary model from CBCT imaging.
  • Analyzed five attachment shapes in single and dual configurations.
  • Assessed orthodontic movements: mesialization, intrusion, extrusion, and rotation.
  • Utilized finite-element simulation to evaluate displacement and stress.
  • Measured PDL strain and localized bone stress.
  • Examined load distribution and movement efficiency of attachments.
  • Flat-shaped attachments induced the greatest crown displacement and higher PDL strain (up to 0.390 mm/mm).
  • Localized bone stress reached 7.11 MPa, particularly at root apex and alveolar crest.
  • Curved attachments provided better load distribution but reduced movement efficiency.
  • Dual attachments improved root engagement and bodily displacement across all movements.
  • Rotational control was most affected by attachment geometry, with flat designs allowing greater angular movement.

Abstract

This study investigates the impact of different attachment shapes and configurations on the displacement, stress, and strain profiles of maxillary first molar during clear aligner-based orthodontic treatment. A subject-specific 3D maxillary model was developed from CBCT imaging, incorporating cortical and trabecular bone, periodontal ligament (PDL), teeth, attachments, and aligner geometry. Five attachment shapes square, rectangle, trapezoid, ellipse, and semicircle were analyzed in single and dual (buccal-lingual) configurations across four clinically relevant movements: mesialization, intrusion, extrusion, and rotation. Finite-element simulation results indicated that flat-shaped attachments (rectangular and trapezoidal) generated the greatest crown displacement but induced higher PDL strain (up to 0.390 mm/mm) and localized bone stress (7.11 MPa), particularly at the root apex and alveolar crest. Curved attachments provided more diffused load distribution but significantly reduced movement efficiency. Dual attachments improved root engagement and bodily displacement in all movement types, mitigating undesired tipping and enhancing force symmetry, albeit with elevated strain. Rotational control was most influenced by attachment geometry, with flat designs producing greater angular movement. Overall, attachment shape and placement exert a substantial influence on orthodontic biomechanics during aligner therapy. The findings underscore the need for evidence-based attachment protocols tailored to specific movement goals and patient risk profiles. These insights can guide clinicians toward optimizing clear aligner treatments for improved movement precision, minimized biological risk, and enhanced treatment outcomes in complex orthodontic cases.

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Cite This Study

Alsharif et al. (2026) studied this question.

synapsesocial.com/papers/69bf393dc7b3c90b18b43a8ehttps://doi.org/10.1371/journal.pone.0327076
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