Ayturk Ugur M, Garcia Jose J, Puttlitz Christian M
Department of Mechanical Engineering, Orthopaedic Bioengineering Research Laboratory, and School of Biomedical Engineering, Colorado State University, Fort Collins, CO 80523-1374, USA.
J Biomech Eng. 2010 Jun;132(6):061007. doi: 10.1115/1.4001032.
To date, studies that have investigated the kinematics of spinal motion segments have largely focused on the contributions that the spinal ligaments play in the resultant motion patterns. However, the specific roles played by intervertebral disk components, in particular the annulus fibrosus, with respect to global motion is not well understood in spite of the relatively large literature base with respect to the local ex vivo mechanical properties of the tissue. The primary objective of this study was to implement the nonlinear and orthotropic mechanical behavior of the annulus fibrosus in a finite element model of an L4/L5 functional spinal unit in the form of a strain energy potential where the individual mechanical contributions of the ground substance and fibers were explicitly defined. The model was validated biomechanically under pure moment loading to ensure that the individual role of each soft tissue structure during load bearing was consistent throughout the physiologically relevant loading range. The fibrous network of the annulus was found to play critical roles in limiting the magnitude of the neutral zone and determining the stiffness of the elastic zone. Under flexion, lateral bending, and axial rotation, the collagen fibers were observed to bear the majority of the load applied to the annulus fibrosus, especially in radially peripheral regions where disk bulging occurred. For the first time, our data explicitly demonstrate that the exact fiber recruitment sequence is critically important for establishing the range of motion and neutral zone magnitudes of lumbar spinal motion segments.
迄今为止,研究脊柱运动节段运动学的研究主要集中在脊柱韧带在最终运动模式中所起的作用。然而,尽管关于椎间盘组织局部体外力学性能的文献相对较多,但椎间盘各组成部分,特别是纤维环,在整体运动中所起的具体作用仍未得到很好的理解。本研究的主要目的是以应变能势的形式,在L4/L5功能性脊柱单元的有限元模型中实现纤维环的非线性和正交各向异性力学行为,其中明确界定了基质和纤维的各自力学贡献。该模型在纯力矩加载下进行了生物力学验证,以确保每个软组织结构在承重过程中的单独作用在整个生理相关加载范围内保持一致。研究发现,纤维环的纤维网络在限制中性区大小和确定弹性区刚度方面起着关键作用。在屈曲、侧弯和轴向旋转时,观察到胶原纤维承受了施加在纤维环上的大部分载荷,尤其是在发生椎间盘膨出的外周区域。我们的数据首次明确表明,确切的纤维募集顺序对于确定腰椎脊柱运动节段的运动范围和中性区大小至关重要。