Development and characterization of a rabbit alveolar bone nonhealing defect model
- 29 October 2007
- journal article
- research article
- Published by Wiley in Journal of Biomedical Materials Research Part A
- Vol. 86A (1) , 182-194
- https://doi.org/10.1002/jbm.a.31639
Abstract
The aim of this study was to develop an easily accessible and reproducible, nonhealing alveolar bone defect in the rabbit mandible. Twenty-four adult male New Zealand white rabbits underwent unilateral mandibular defect surgery. Two types of defect in the premolar/molar region were compared: (1) a 10-mm “full thickness” cylindrical defect removing both cortical plates and the intervening trabecular bone and tooth roots; (2) a 10-mm “partial thickness” cylindrical defect removing only the lateral bony cortex, trabecular bone, and tooth roots. Both types of defect were examined at 0, 8, and 16 weeks using histology and/or microcomputed tomography to determine the quality and quantity of bone formation. The partial thickness defect displayed significant bone fill at 8 weeks (86.9% ± 10.8%), and complete regeneration of bony contours and bridging by 16 weeks. In contrast, the full thickness defect was never able to bridge itself and displayed no significant difference in bone regeneration between the 8-week (61.5% ± 3.7%) and 16-week (55.1% ± 18.5%) time points. These results indicate that a nonhealing defect can be created with a 10-mm bicortical cylindrical ostectomy placed in the premolar/molar region of the rabbit mandible, demonstrating the potential of this animal model as a test bed for mandibular biomaterials and tissue-engineering constructs. © 2007 Wiley Periodicals, Inc. J Biomed Mater Res, 2008Keywords
This publication has 23 references indexed in Scilit:
- Methods: A Comparative Analysis of Radiography, Microcomputed Tomography, and Histology for Bone Tissue EngineeringTissue Engineering, 2005
- Biocompatibility and degradation of poly(DL‐lactic‐co‐glycolic acid)/calcium phosphate cement compositesJournal of Biomedical Materials Research Part A, 2005
- Effect of Transforming Growth Factor β2on Marrow-Infused Foam Poly(Propylene Fumarate) Tissue-Engineered Constructs for the Repair of Critical-Size Cranial Defects in RabbitsTissue Engineering, 2005
- Effect of varied release kinetics of the osteogenic thrombin peptide TP508 from biodegradable, polymeric scaffolds on bone formation in vivoJournal of Biomedical Materials Research Part A, 2005
- In vivo degradation of porous poly(propylene fumarate)/poly(DL-lactic-co-glycolic acid) composite scaffoldsBiomaterials, 2005
- Growth factor-loaded scaffolds for bone engineeringJournal of Controlled Release, 2004
- Skeletal tissue engineering—from in vitro studies to large animal modelsBiomaterials, 2004
- In VivoEvaluation of Gene Therapy Vectors inEx Vivo-Derived Marrow Stromal Cells for Bone Regeneration in a Rat Critical-Size Calvarial Defect ModelHuman Gene Therapy, 2003
- Tissue EngineeringAnnals of the New York Academy of Sciences, 2002
- The Critical Size Defect as an Experimental Model To Test Bone Repair MaterialsThe Journal of Craniofacial Surgery, 1990