Du Cheng-Fei, Liu Chun-Jie, Huang Yun-Peng, Wang Xin
Tianjin Key Laboratory for Advanced Mechatronic System Design and Intelligent Control School of Mechanical Engineering, Tianjin University of Technology, Tianjin, China; National Demonstration Center for Experimental Mechanical and Electrical Engineering Education, Tianjin University of Technology, Tianjin, China.
Department of Orthopedics, The First Affiliated Hospital of Fujian Medical University, Fuzhou, China.
World Neurosurg. 2020 Feb;134:e878-e884. doi: 10.1016/j.wneu.2019.11.030. Epub 2019 Nov 13.
To determine the effect of spiral nucleus implant parameters on the biomechanical behavior of the lumbar intervertebral disc after nucleus replacement under compressive loading.
A finite element (FE) model of nucleus replacement in the L4-5 intervertebral disc was constructed. The effects of a spiral implant parameters, such as elasticity, size, and friction property, on the biomechanical behavior of the disc under a compressive load were determined. The effect of an implant with a sharp edge on disc biomechanics was also examined. The stress distribution and contact pressure on the endplate and AF, axial stiffness of disc, and annular bulge of the nucleus replacement models were investigated.
Axial stiffness, annular bulge, and contact pressure were all insensitive to friction properties. Insertion of the spiral implant reversed the changes in the AF and endplates due to the removal of the nucleus. There was a positive correlation between axial stiffness and elasticity with implant size. Annular bulge was positively correlated with size but negatively correlated with elasticity. Compared with the base model, the implant with a sharp edge caused a decrease in disc axial stiffness but an increase in contact pressure on the AF in an annular bulge in the sagittal and coronal axis, respectively.
A spiral implant may provide similar biomechanical behavior as a normal disc during compressive loading, with an optimal modulus of approximately 7 MPa. The spiral implant should fully conform to the nucleus cavity during replacement for the best biomechanical results.
确定螺旋核植入参数对腰椎间盘置换术后在压缩载荷下的生物力学行为的影响。
构建L4 - 5椎间盘核置换的有限元(FE)模型。确定螺旋植入物参数,如弹性、尺寸和摩擦特性,对压缩载荷下椎间盘生物力学行为的影响。还研究了带有尖锐边缘的植入物对椎间盘生物力学的影响。研究了核置换模型终板和纤维环上的应力分布、接触压力、椎间盘的轴向刚度以及核的环形膨出。
轴向刚度、环形膨出和接触压力对摩擦特性均不敏感。螺旋植入物的插入逆转了因去除髓核而导致的纤维环和终板的变化。轴向刚度和弹性与植入物尺寸呈正相关。环形膨出与尺寸呈正相关,但与弹性呈负相关。与基础模型相比,带有尖锐边缘的植入物分别导致椎间盘轴向刚度降低,但在矢状面和冠状面的环形膨出中纤维环上的接触压力增加。
螺旋植入物在压缩载荷下可能提供与正常椎间盘相似的生物力学行为,最佳模量约为7 MPa。为获得最佳生物力学结果,螺旋植入物在置换过程中应完全贴合髓核腔。