Pull-Out Strength of Orthodontic Miniscrews in the Temporal Bone

Author:

Menke Christian1ORCID,Kluge Marcel2,Welke Bastian3,Lenarz Thomas4,Majdani Omid5,S. Rau Thomas4ORCID

Affiliation:

1. Department of Pediatric Kidney, Liver and Metabolic Diseases, Hannover Medical School, Hannover, Germany

2. Otojig GmbH, Hannover, Germany

3. Laboratory for Biomechanics and Biomaterials, Department of Orthopaedic Surgery, Hannover Medical School, Hannover, Germany

4. Department of Otolaryngology and Cluster of Excellence, “Hearing4all,” Hannover Medical School, Hannover, Germany

5. Department of Otolaryngology, Medizincampus Wolfsburg der Universitätsmedizin Göttingen, Wolfsburg, Germany

Abstract

Background Minimally invasive cochlear implant surgery by using a microstereotactic frame demands solid connection to the bone. We aimed to determine the stability of commercially available orthodontic miniscrews to evaluate their feasibility for frame’s fixation. In addition, which substitute material most closely resembles the mechanical properties of the human temporal bone was evaluated. Methods Pull-out tests were carried out with five different types of orthodontic miniscrews in human temporal bone specimens. Furthermore, short fiber filled epoxy (SFFE), solid rigid polyurethane (SRPU50), bovine femur, and porcine iliac bone were evaluated as substitute materials. In total, 57 tests in human specimens and 180 tests in the substitute materials were performed. Results In human temporal bone, average pull-out forces ranged from 220 N to 285 N between screws. Joint stiffness in human temporal bone ranged between 14 N/mm and 358 N/mm. Statistically significant differences between the tested screws were measured in terms of stiffness and elastic energy. One screw type failed insertion due to tip breakage. No significant differences occurred between screws in maximum pull-out force. The average pull-out values of SFFE were 14.1 N higher compared to human specimen. Conclusion Orthodontic miniscrews provided rigid fixation when partially inserted in human temporal bone, as evidenced by pull-out forces and joint stiffness. Average values exceeded requirements despite variations between screws. Differences in stiffness and elastic energy indicate screw-specific interface mechanics. With proper insertion, orthodontic miniscrews appear suitable for microstereotactic frame anchoring during minimally invasive cochlear implant surgery. However, testing under more complex loading is needed to better predict clinical performance. For further pull-out tests, the most suitable substitute material is SFFE.

Funder

Deutsche Forschungsgemeinschaft

Publisher

SAGE Publications

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