Biocompatibility and biodegradation of a bone composite containing tricalcium phosphate and genipin crosslinked gelatin
- 30 April 2004
- journal article
- research article
- Published by Wiley in Journal of Biomedical Materials Research Part A
- Vol. 69A (4) , 709-717
- https://doi.org/10.1002/jbm.a.30045
Abstract
A biodegradable composite (GGT) containing tricalcium phosphate ceramic particles and genipin crosslinked gelatin was developed for use as a bone substitute. The objective of this study was to assess the biocompatibility and the osteoconductivity of the GGT composite on new bone formation in vitro. Additionally, biodegradation and biocompatibility of the GGT composite in animals were investigated. Results of the GGT composites cocultured with osteoblasts showed that the concentration of genipin used as a crosslinking agent should be in vivo degradation studies, we found that when the concentration of genipin in the composite <0.5 wt % was not enough to fully crosslink the gelatin, it results in a rapid degradation of the gelatin–genipin mixture. However, we also found that the foreign body capsule surrounding the GGT composite containing 1.0 wt % of the genipin was much thicker than that in the other three groups, that is, the composites containing 0.05, 0.1, and 0.5 wt % of the genipin. We therefore concluded that the ideal concentration of genipin used in the GGT was 0.5 wt %. Finally, we examined the organ culture units, which were maintained in cultured medium for 5 weeks. Morphology of tissue was observed and the quantitative evaluation of the regenerated bone was determined. We found that the GGT composites containing 0.5 wt % of the genipin had an excellent biocompatibility and could produce osteoconduction for the regenerating bone tissues. © 2004 Wiley Periodicals, Inc. J Biomed Mater Res 69A: 709–717, 2004Keywords
This publication has 12 references indexed in Scilit:
- In vitro evaluation of degradation and cytotoxicity of a novel composite as a bone substituteJournal of Biomedical Materials Research Part A, 2003
- Evaluation of a novel malleable, biodegradable osteoconductive composite in a rabbit cranial defect modelMaterials Chemistry and Physics, 1998
- Prevascularized bone graft cultured in sintered porous β-Ca2P2O7 with 5 wt% Na4P2O7·10H2O addition ceramic chamberBiomaterials, 1996
- Morphological changes in cultured human periodontal ligament cells exposed to dental materialsBiomaterials, 1995
- In vitro biocompatibility testing of polymers for orthopaedic implants using cultured fibroblasts and osteoblastsBiomaterials, 1995
- Sintered porous DP-bioactive glass and hydroxyapatite as bone substituteBiomaterials, 1994
- Behaviour of fetal rat osteoblasts cultured in vitro on bioactive glass and nonreactive glassesBiomaterials, 1992
- Bone graft and bone graft substitutes: A review of current technology and applicationsJournal of Applied Biomaterials, 1991
- The influence of surface area on the in vitro cytotoxicity of a range of dental materialsJournal of Biomedical Materials Research, 1987
- Biodegradable Bone Repair MaterialsClinical Orthopaedics and Related Research, 1986