Experimental Vertebroplasty Using Osteoconductive Granular Material
- 1 May 2000
- journal article
- research article
- Published by Wolters Kluwer Health in Spine
- Vol. 25 (9) , 1070-1076
- https://doi.org/10.1097/00007632-200005010-00006
Abstract
Osteoporotic human cadaveric thoracic vertebral bodies and vertebral bodies from mature sheep were used as model systems to assess coral resorption and new bone formation after injection of coral granules. To evaluate the use of natural coral exoskeleton, an osteoconductive material, for the filling of vertebral bodies. Percutaneous injection of polymethylmetacrylate (PMMA) is often proposed for prophylactically stabilizing osteoporotic vertebral bodies at risk for fracture or augmentation of vertebral bodies that have already fractured. Recently, the possibility of using osteoconductive materials in granular formulation was assessed in pilot studies. As a first step, the possibility of injecting coral granules percutaneously within osteoporotic human cadaveric thoracic vertebral bodies was assessed. As a second step, cavities were drilled into vertebral bodies of 10 mature ewes and were either left empty (control group) or filled with coral alone (CC) or coral supplemented with fibrin sealant (CC+FS). Quantitative evaluation of coral resorption and new bone formation was made 2 months and 4 months after implantation. The distribution of coral granules injected into human cadaveric thoracic vertebral bodies was homogenous as assayed radiographically. In the experimental animal model, osteogenesis was increased in cavities filled with coral in comparison with cavities left empty at both 2 months and 4 months (P < 0.005 and P < 0.02, respectively). Surprisingly, supplementation of coral with a fibrin sealant had no positive influence on osteogenesis (P < 0.0008 at 2 months;P < 0.002 at 4 months). In addition, it led to an increase in coral resorption by as soon as 2 months (P < 0.0008). These results demonstrate the osteoconductivity of coral in granular form for vertebral filling. Interestingly, interconnectivity between adjacent bone trabeculae and newly formed bone was restored; however, its mechanical significance remains to be determined. Further investigations are needed to evaluate the efficacy of coral in osteopenic animals and in relieving pain.Keywords
This publication has 10 references indexed in Scilit:
- PERCUTANEOUS VERTEBROPLASTY WITH POLYMETHYLMETHACRYLATERadiologic Clinics of North America, 1998
- Percutaneous vertebroplasty: state of the art.RadioGraphics, 1998
- Addition of fibrin sealant to ceramic promotes bone repair: Long-term study in rabbit femoral defect modelJournal of Biomedical Materials Research, 1998
- Future DirectionsSpine, 1997
- Bone graft and bone graft substitutes: A review of current technology and applicationsJournal of Applied Biomaterials, 1991
- Apatite–Wollastonite containing glass ceramic granule–fibrin mixture as a bone graft filler: Use with low granular densityJournal of Biomedical Materials Research, 1990
- Comparison of coral resorption and bone apposition with two natural corals of different porositiesJournal of Biomedical Materials Research, 1989
- Apatite–wollastonite containing glass ceramic–fibrin mixture as a bone defect fillerJournal of Biomedical Materials Research, 1988
- Experimental investigation into reparative osteogenesis with fibrin adhesiveArchives of orthopaedic and trauma surgery, 1988
- The use of coral as a bone graft substituteJournal of Biomedical Materials Research, 1987