不同程度下陷时球形腰椎椎间装置的生物力学评价

Steven A. Rundell MS , Jorge E. Isaza MD , Steven M. Kurtz PhD
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引用次数: 13

摘要

背景dulf Fernström在椎间盘切除术后植入不锈钢球轴承,或用于疼痛的椎间盘疾病,并将此过程称为椎间盘置换术。目前,球形体间间隔器在临床上是可用的,但缺乏相关的生物力学测试。目前研究的主要目的是评估球形体间植入物的生物力学。据推测,与完整的情况相比,植入球形体间植入物并联合下沉到椎体中,将导致相似的活动范围(RoM)和小关节面接触力(fcf)。本研究的第二个目的是确定使用聚醚醚酮(PEEK)与钴铬(CoCr)植入物对椎体应变的影响。我们假设材料选择对椎体应变的影响可以忽略不计,因为两种材料的弹性模量都大大大于环。方法建立L3-L4的有限元模型,并利用已有的ROM、椎间盘压力和骨应变进行验证。虚拟植入一个球形体间装置进行了0,2和4毫米的下沉。模型在压缩、屈曲、伸展、轴向旋转和侧弯中进行锻炼。报告了ROM、椎体有效应变(von Mises)和ffs。结果与CoCr种植体相比,PEEK种植体的最大应变值略低。对于这两种材料,随着下沉的增加,下垫骨所经历的峰值应变减小。所有程度的下沉导致的ROM和ffs与完整模型相似。结论简单的球形种植体设计能够维持节段性ROM,并提供最小的fcf差异。无论种植体是PEEK还是CoCr,在种植体附近的骨中都会产生大面积的von Mises应变最大值。
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Biomechanical evaluation of a spherical lumbar interbody device at varying levels of subsidence

Background

Ulf Fernström implanted stainless steel ball bearings following discectomy, or for painful disc disease, and termed this procedure disc arthroplasty. Today, spherical interbody spacers are clinically available, but there is a paucity of associated biomechanical testing. The primary objective of the current study was to evaluate the biomechanics of a spherical interbody implant. It was hypothesized that implantation of a spherical interbody implant, with combined subsidence into the vertebral bodies, would result in similar ranges of motion (RoM) and facet contact forces (FCFs) when compared with an intact condition. A secondary objective of this study was to determine the effect of using a polyetheretherketone (PEEK) versus a cobalt chrome (CoCr) implant on vertebral body strains. We hypothesized that the material selection would have a negligible effect on vertebral body strains since both materials have elastic moduli substantially greater than the annulus.

Methods

A finite element model of L3-L4 was created and validated by use of ROM, disc pressure, and bony strain from previously published data. Virtual implantation of a spherical interbody device was performed with 0, 2, and 4 mm of subsidence. The model was exercised in compression, flexion, extension, axial rotation, and lateral bending. The ROM, vertebral body effective (von Mises) strain, and FCFs were reported.

Results

Implantation of a PEEK implant resulted in slightly lower strain maxima when compared with a CoCr implant. For both materials, the peak strain experienced by the underlying bone was reduced with increasing subsidence. All levels of subsidence resulted in ROM and FCFs similar to the intact model.

Conclusions

The results suggest that a simple spherical implant design is able to maintain segmental ROM and provide minimal differences in FCFs. Large areas of von Mises strain maxima were generated in the bone adjacent to the implant regardless of whether the implant was PEEK or CoCr.

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