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动态后路稳定对小关节接触力的影响:一项体外研究。

The effect of dynamic posterior stabilization on facet joint contact forces: an in vitro investigation.

作者信息

Niosi Christina A, Wilson Derek C, Zhu Qingan, Keynan Ory, Wilson David R, Oxland Thomas R

机构信息

Mechanical Engineering and Orthopaedics, University of British Columbia and Vancouver Coastal Health Research Institute, Vancouver, British Columbia, Canada.

出版信息

Spine (Phila Pa 1976). 2008 Jan 1;33(1):19-26. doi: 10.1097/BRS.0b013e31815e7f76.

Abstract

STUDY DESIGN

Facet contact forces in the lumbar spine were measured during flexibility tests using thin film electroresistive sensors in intact cadaveric spine specimens and in injured specimens stabilized with a dynamic posterior system.

OBJECTIVE

The purpose of this study was to investigate the effect of the Dynesys system on the loading in the facet joints.

SUMMARY OF BACKGROUND DATA

The Dynesys, a posterior nonfusion device, aims to preserve intersegmental kinematics and reduce facet loads. Recent biomechanical evidence showed that overall motion is less with the Dynesys than in the intact spine, but no studies have shown its effect on facet loads.

METHODS

Ten human cadaveric lumbar spine specimens (L2-L5) were tested by applying a pure moment of +/-7.5 N m in 3 directions of loading with and without a follower preload of 600 N. Test conditions included an intact specimen and an injured specimen stabilized with 3 Dynesys spacer lengths. Bilateral facet contact forces were measured during flexibility tests using thin film electroresistive sensors (Tekscan 6900).

RESULTS

Implanting the Dynesys significantly increased peak facet contact forces in flexion (from 3 N to 22 N per side) and lateral bending (from 14 N to 24 N per side), but had no significant effect on the magnitude of the peak forces in extension and axial rotation. Peak facet loads were significantly lower with the long spacer compared with the short spacer in flexion and lateral bending.

CONCLUSION

Implantation of the Dynesys did not affect peak facet contact forces in extension or axial rotation compared with an intact specimen, but did alter these loads in flexion and lateral bending. The spacer length affected the compression of the posterior elements, with a shorter spacer typically producing greater facets loads than a longer one.

摘要

研究设计

在柔韧性测试过程中,使用薄膜电阻传感器对完整尸体脊柱标本以及用动态后路系统固定的损伤标本的腰椎小关节接触力进行测量。

目的

本研究旨在调查Dynesys系统对小关节负荷的影响。

背景数据总结

Dynesys是一种后路非融合装置,旨在保留节段间运动学并减少小关节负荷。最近的生物力学证据表明,与完整脊柱相比,Dynesys系统的整体运动较少,但尚无研究表明其对小关节负荷的影响。

方法

对10个人类尸体腰椎标本(L2-L5)进行测试,在有和没有600N随动预负荷的情况下,在3个加载方向上施加±7.5N·m的纯力矩。测试条件包括一个完整标本和一个用3种Dynesys间隔器长度固定的损伤标本。在柔韧性测试过程中,使用薄膜电阻传感器(Tekscan 6900)测量双侧小关节接触力。

结果

植入Dynesys系统显著增加了前屈(从每侧3N增加到22N)和侧屈(从每侧14N增加到24N)时的小关节接触力峰值,但对后伸和轴向旋转时的峰值力大小没有显著影响。与短间隔器相比,长间隔器在前屈和侧屈时的小关节负荷峰值显著更低。

结论

与完整标本相比,植入Dynesys系统对后伸或轴向旋转时的小关节接触力峰值没有影响,但在前屈和侧屈时确实改变了这些负荷。间隔器长度影响后部元件的压缩,较短的间隔器通常比较长的间隔器产生更大的小关节负荷。

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