Tsubota Ken-ichi, Adachi Taiji, Tomita Yoshihiro
Computer and Information Division, Advanced Computing Center, The Institute of Physical and Chemical Research (RIKEN), 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.
Ann Biomed Eng. 2003 Jun;31(6):733-40. doi: 10.1114/1.1574028.
Computational simulation of trabecular surface remodeling was conducted to investigate the effects of a spinal fixation screw on trabecular structural changes in a vertebral body. By using voxel-based finite elements, computational models of the bone and screw were constructed in two structural scales of a vertebral body with an implanted screw and a bone-screw interface. In the vertebral body, the implantation of the fixation screw caused changes in the mechanical environment in cancellous bone, leading to trabecular structural changes at the cancellous level. The effects of the screw on trabecular orientation were greater in the regions above and below the screw than in those in front of the screw. In the case of the bone-screw interface, trabecular structural changes depended on the direction of load applied to the screw. It was suggested that the bone resorption predicted in the pull-out loading case is a candidate cause of the loosening of the screw. The results indicate that the effects of the implanted screw on trabecular structural changes are more important for longer-term fixation.
进行了小梁表面重塑的计算模拟,以研究脊柱固定螺钉对椎体小梁结构变化的影响。通过使用基于体素的有限元,在植入螺钉的椎体和骨-螺钉界面的两个结构尺度上构建了骨骼和螺钉的计算模型。在椎体中,固定螺钉的植入导致松质骨力学环境的变化,从而导致松质骨水平的小梁结构变化。螺钉对小梁方向的影响在螺钉上方和下方的区域比在螺钉前方的区域更大。在骨-螺钉界面的情况下,小梁结构变化取决于施加在螺钉上的载荷方向。有人提出,拔出加载情况下预测的骨吸收是螺钉松动的一个可能原因。结果表明,植入螺钉对小梁结构变化的影响对于长期固定更为重要。