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Related Experiment Video

Updated: Dec 12, 2025

The Establishment of a Murine Mandibular Molar Extraction Socket Healing Model
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Computer-guided palatal canine disimpaction: a technical note.

Federica Altieri, Gabriella Padalino, Rosanna Guarnieri

    International Journal of Computerized Dentistry
    |August 14, 2020
    PubMed
    Summary

    This study introduces a minimally invasive method for disimpacting palatal canines using computer-guided orthodontic miniscrews. This technique enhances treatment effectiveness and reduces risks associated with conventional methods.

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    Advanced science (Weinheim, Baden-Wurttemberg, Germany)·2025

    Area of Science:

    • Orthodontics
    • Dental Implantology
    • Computer-Aided Design/Computer-Aided Manufacturing (CAD/CAM)

    Background:

    • Palatal canine impaction presents a treatment challenge.
    • Conventional methods for canine disimpaction can have biomechanical side effects and risks to adjacent structures.

    Purpose of the Study:

    • To present a minimally invasive, computer-guided approach for palatal canine impaction using orthodontic miniscrews.
    • To detail the methodology involving CAD/CAM technology and 3D printing for precise miniscrew placement.

    Main Methods:

    • Utilized CAD/CAM technology to integrate dental arch STL files with maxillary DICOM images.
    • Employed specialized software to identify optimal miniscrew insertion points based on palatal vault anatomy.
    • Designed and 3D-printed surgical guides for accurate virtual-to-physical transfer of miniscrew positions.
    Keywords:
    CAD/CAMcanine impactionminiscreworthodonticssurgical templateTADs

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    Main Results:

    • Miniscrew insertion and palatal canine disimpaction were successfully performed in a single surgical procedure.
    • The computer-guided approach facilitated precise placement of miniscrews.

    Conclusions:

    • Computer-guided skeletal anchorage offers a minimally invasive solution for palatal canine impaction.
    • This technique reduces biomechanical side effects and minimizes damage to adjacent anatomical structures, improving treatment efficacy.
    • Further controlled clinical trials are warranted to fully assess the benefits of this technique.