Bridging Plate Development for Treatment of Segmental Bone Defects of the Canine Mandible

Author:

de Freitas Elisângela Perez1,Rahal Sheila Canevese1,Shimano Antonio Carlos2,da Silva Jorge Vicente Lopes3,Noritomi Pedro Yoshito3,El-Warrak Alexander Oliveira1,Melchert Alessandra4

Affiliation:

1. Department of Veterinary Surgery and Anesthesiology, School of Veterinary Medicine and Animal Science, Universidade Estadual Paulista (UNESP), Botucatu, Brazil

2. Department of Biomechanics, Medical School, São Paulo University (USP), Ribeirão Preto, Brazil

3. Product Development Division, Renato Archer Research Center (CTI), Campinas, Brazil

4. Department of Veterinary Clinical, School of Veterinary Medicine and Animal Science, Universidade Estadual Paulista (UNESP), Botucatu, Brazil

Abstract

With regard to the canine mandible, a mistaken concept of application is to assume that systemic plate-bone resistance is provided by the implant so that biomechanical position could be ignored. Because the alveolar border of the mandible is a tensile zone, the plate would ideally be positioned near this area while avoiding important structures. The aim of this study was to develop 2 bridging plates for the treatment of a segmental bone defect of the canine mandible using monocortical screws to avoid damage to the tooth roots and remaining neurovascular structures. Computed tomography images of the heads of 4 dogs (rottweiler, Doberman, boxer, and miniature poodle breeds) were used as models to develop the project. The images were reconstructed in 3-dimensional (3D) format. For each dog breed, 6 mandible prototypes were produced, each with a segmental bone defect in the right mandible. The mandibular reconstruction was performed with pure titanium bridging plate and locking screws. One plate model was developed for medium- and large-breed dogs and another for small-breed dogs. Mechanical testing showed the plate-mandible system resists the bite forces in all dog breeds. All safety factors were greater than 1 in the platemandible system for medium- and large-breed dogs and greater than 10 in the plate-mandible system for small-breed dogs. Thus, bridging plates designed with differentiated geometry and monocortical locking screws showed mechanical resistance to support simulated induced bone model defects and were able to support at least 5 times the value of bite force for each evaluated dog.

Publisher

SAGE Publications

Subject

General Veterinary

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