腰椎椎弓根螺钉动态稳定装置的生物力学评价:系统综述

Cédric Y. Barrey MD , Ravi K. Ponnappan MD , Jason Song MD , Alexander R. Vaccaro MD, PhD, FACS
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引用次数: 0

摘要

本研究是对已发表的生物力学研究的系统回顾,涉及基于椎弓根螺钉的后路动态稳定装置(PDS),特别关注通过功能性脊柱单元(FSU)的运动学和负荷传递。方法通过PubMed在线数据库检索1990 - 2008年的相关文献,检索关键词为“生物力学”、“腰椎动态稳定”、“Graf系统”、“Dynesys”和“后路动态植入”。引文仅限于描述目前临床使用的基于椎弓根螺钉的PDS装置的生物力学的论文。描述临床经验、放射学和体内试验的研究被排除在综述之外。测量的参数包括FSU的运动学(运动范围(ROM),中立区(NZ)和旋转中心的位置)以及通过磁盘,facet和仪表的负载传递。结果共发现27篇文献涉及腰椎椎弓根螺钉动态稳定内固定的生物力学评价。9项体外实验研究和4项有限元分析符合纳入标准。Dynesys种植体是研究最多的椎弓根螺钉PDS系统。体外尸体研究主要集中在运动学上比较完整脊柱和固定脊柱的ROM,而有限元分析允许分析固定脊柱和相邻水平的载荷传递。结论生物力学研究表明,椎弓根螺钉为基础的PDS装置在卸载椎间盘时限制了椎间运动。植入物的设计和手术技术对固定脊柱节段的生物力学行为有重要影响。此类装置的后路放置导致非生理性椎间运动,并伴有旋转轴的后路移位。生物力学研究表明,所研究的动态装置和刚性稳定系统在相邻水平上的差异可能不像报道的那么大。最后,需要对半刚性装置进行进一步的研究,以进一步评估其与软稳定PDS系统相比的生物力学性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biomechanical Evaluation of Pedicle Screw-Based Dynamic Stabilization Devices for the Lumbar Spine: A Systematic Review

Study Design

This study is a systematic review of published biomechanical studies involving pedicle screw-based posterior dynamic stabilization devices (PDS) with a special focus on kinematics and load transmission through the functional spine unit (FSU).

Methods

A literature search was performed via the PubMed online database from 1990 to 2008 using the following key words: “biomechanics,” “lumbar dynamic stabilization,” “Graf system,” “Dynesys,” and “posterior dynamic implant.” Citations were limited to papers describing biomechanics of pedicle screw-based PDS devices currently available for clinical use. Studies describing clinical experience, radiology, and in vivo testing were excluded from the review. Parameters measured included kinematics of the FSU (range of motion (ROM), neutral zone (NZ), and location of the center of rotation) and load transmission through the disk, facets, and instrumentation.

Results

A total of 27 publications were found that concerned the biomechanical evaluation of lumbar pedicle screw-based dynamic stabilization instrumentation. Nine in vitro experimental studies and 4 finite element analyses satisfied the inclusion criteria. The Dynesys implant was the most investigated pedicle screw-based PDS system. In vitro cadaveric studies mainly focused on kinematics comparing ROM of intact versus instrumented spines whereas finite element analyses allowed analysis of load transmission at the instrumented and adjacent levels.

Conclusion

Biomechanical studies demonstrate that pedicle screw-based PDS devices limit intervertebral motion while unloading the intervertebral disk. The implant design and the surgical technique have a significant impact on the biomechanical behavior of the instrumented spinal segment. The posterior placement of such devices results in non-physiologic intervertebral kinematics with a posterior shift of the axis of rotation. Biomechanical studies suggest that the difference at the adjacent level between investigated dynamic devices and rigid stabilization systems may not be as high as reported. Finally, additional investigations of semirigid devices are needed to further evaluate their biomechanical properties compared to soft stabilization PDS systems.

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