THE EFFECTS OF IMPLANT STIFFNESS ON THE BYPASSED BONE-MINERAL DENSITY AND FACET FUSION STIFFNESS OF THE CANINE SPINE

被引:44
作者
CRAVEN, TG [1 ]
CARSON, WL [1 ]
ASHER, MA [1 ]
ROBINSON, RG [1 ]
机构
[1] UNIV KANSAS,MED CTR,ORTHOPED SURG SECT,3901 RAINBOW BLVD,KANSAS CITY,KS 66160
关键词
BIOMECHANICS; BONE MINERAL; FUSION; LOAD SHARING; STIFFNESS;
D O I
10.1097/00007632-199408000-00003
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Study Design. Effects of spinal implant stiffness and removal/retention on bypassed bone mineral density and column/fusion stiffness were studied in dogs. Methods. After facet fusion and bicortical peripedicle screw placement, one group of eight dogs received 6.35 mm and another 4.76 mm rod instrumentation at L3-L5. At 12 weeks, four in each group had implants removed. Bone mineral density was analyzed by dual energy x-ray absorptiometry at 1 to 24 weeks. Axial compressive stiffness of the L3-L5 construct, spinal column, fused facets, and instrumentation were measured. Percent load through the vertebral column was predicted. Results. Five observations were made for this canine model. First, stiffer implants resulted in more bypassed bone mineral loss at 6 and 12 weeks, plateauing and not different at 24 weeks. Second, after implant removal, a significant and similar rebound in bone mineral density occurred. Third, 4.76 mm rod instrumentation (initially 71% load through column) resulted in stiffer posterior fusions and vertebral columns than 6.35 mm rod instrumentation (initially 57% load through column). Fourth, marked stiffening of the anterior-middle columns (apparently disks) occurred. Fifth, percent load borne by the vertebral column increased with time. Conclusions. There appears to be a range of percent load through the vertebral column that creates optimum fusion/column stiffening while limiting bone stress shielding effects. The 6.35 mm rod constructs were predicted to allow greater than 70% axial load through the adult human thoracic/lumbar spine, implying biologic responses similar to 4.76 mm rods in dogs.
引用
收藏
页码:1664 / 1673
页数:10
相关论文
共 32 条
[1]  
Akeson W.H., Woo S.-Y., Rutherford L., Coutts R.D., Gonsalves M., Amiel D., The effects of rigidity of internal fixation plates on long bone remodeling, Acta Orthop Scand, 47, pp. 241-249, (1976)
[2]  
Ashton-Miller J.A., Mcglashen K. Analysis of Loads on the Canine Lumbar Spine: An Experimental and Theoretical Study, pp. 258-259, (1989)
[3]  
Carter D.R., Vasu R., Harris W.H., The plated femur: Relationships between the changes in bone stresses and bone loss, Acta Orthop Scand, 52, pp. 241-248, (1981)
[4]  
Carter D.R., Vasu R., Spengler D.M., Dueland R.T., Stress fields in the unplated and plated canine femur calculated from in vivo strain measurements, J Biomech, 14, pp. 63-70, (1981)
[5]  
Carter D.R., Shimaoka E.E., Harris W.H., El G., Caler W.E., McCarthy J.C., Changes in long-bone structural properties during the first 8 weeks of plate implantation, J Orthop Res, 2, pp. 80-89, (1984)
[6]  
Claes L., The mechanical and morphological properties of bone beneath internal fixation plates of differing rigidity, J Orthop Res, 7, pp. 170-177, (1989)
[7]  
Cole T.K., Burkhardt D., Ghosh P., Ryan M., Taylor T., Effects of spinal fusion on the proteoglycans of the canine intervertebral disc, J Orthop Res, 3, pp. 277-291, (1985)
[8]  
Dalenberg D.D., Asher M.A., Robinson R.G., Jayaraman G., The effect of a stiff spinal implant and its loosening on bone mineral content in canines, Spine, 18, pp. 1862-1866, (1993)
[9]  
Duffield R.C., Carson W.L., Chen L.Y., Voth B., Longitudinal element size effect on load sharing, internal loads, and fatigue life of tri-level spinal implant constructs, Spine, 18, pp. 1695-1703, (1993)
[10]  
Engh C.A., Bobyn J.D., The influence of stem size and extent of porous coating on femoral bone resorption after primary cementless total hip arthroplasty, Clin Orthop, 231, pp. 7-28, (1988)