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Biomechanical analysis and modeling of different vertebral growth patterns in adolescent idiopathic scoliosis and healthy subjects

机译:青少年特发性脊柱侧凸和健康受试者不同椎骨生长方式的生物力学分析和建模

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Background The etiology of AIS remains unclear, thus various hypotheses concerning its pathomechanism have been proposed. To date, biomechanical modeling has not been used to thoroughly study the influence of the abnormal growth profile (i.e., the growth rate of the vertebral body during the growth period) on the pathomechanism of curve progression in AIS. This study investigated the hypothesis that AIS progression is associated with the abnormal growth profiles of the anterior column of the spine. Methods A finite element model of the spinal column including growth dynamics was utilized. The initial geometric models were constructed from the bi-planar radiographs of a normal subject. Based on this model, five other geometric models were generated to emulate different coronal and sagittal curves. The detailed modeling integrated vertebral body growth plates and growth modulation spinal biomechanics. Ten years of spinal growth was simulated using AIS and normal growth profiles. Sequential measures of spinal alignments were compared. Results (1) Given the initial lateral deformity, the AIS growth profile induced a significant Cobb angle increase, which was roughly between three to five times larger compared to measures utilizing a normal growth profile. (2) Lateral deformities were absent in the models containing no initial coronal curvature. (3) The presence of a smaller kyphosis did not produce an increase lateral deformity on its own. (4) Significant reduction of the kyphosis was found in simulation results of AIS but not when using the growth profile of normal subjects. Conclusion Results from this analysis suggest that accelerated growth profiles may encourage supplementary scoliotic progression and, thus, may pose as a progressive risk factor.
机译:背景技术AIS的病因仍不清楚,因此提出了有关其发病机制的各种假设。迄今为止,尚未使用生物力学模型来彻底研究异常生长曲线(即生长期中椎体的生长速率)对AIS曲线进展的致病机理的影响。这项研究调查了假说,AIS进展与脊柱前柱的异常生长状况有关。方法采用包括生长动力学在内的脊柱有限元模型。初始几何模型是根据正常对象的双平面X射线照片构建的。基于此模型,还生成了其他五个几何模型来模拟不同的冠状和矢状曲线。详细的模型集成了椎体生长板和生长调节脊柱生物力学。使用AIS和正常生长情况模拟了十年的脊柱生长。比较了脊柱排列的顺序测量。结果(1)考虑到初始的横向变形,AIS生长轮廓导致Cobb角显着增加,与使用正常生长轮廓的测量相比,其Cobb角显着增大了三到五倍。 (2)在没有初始冠状曲率的模型中没有横向变形。 (3)较小的后凸畸形本身并不会增加横向畸形。 (4)在AIS的模拟结果中发现驼背明显减少,但在使用正常受试者的生长曲线时却没有。结论该分析的结果表明,加速的生长曲线可能会促进脊柱侧弯的补充发展,因此可能构成进行性危险因素。

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