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脊柱侧弯最佳手术矫正的生物力学基础。

Biomechanical basis of optimal scoliosis surgical correction.

作者信息

Ghista D N, Viviani G R, Subbaraj K, Lozada P J, Srinivasan T M, Barnes G

机构信息

McMaster University, Hamilton, Ontario, Canada.

出版信息

J Biomech. 1988;21(2):77-88. doi: 10.1016/0021-9290(88)90001-2.

Abstract

For an optimal approach to surgical correction of scoliosis, it was deemed desirable to biomechanically simulate the set of corrective forces applied by alternative internal fixation systems, so as to determine and apply the internal fixation system producing the best correction under safe levels of forces applied by the fixation systems to the spinal structures. To this end, we have developed, and presented here, (1) a spinal finite-element model relating the applied corrective forces to the corrected spinal configurations, (2) a method for determining the stiffness of the patient's spine prior to surgery, (3) computerized finite-element analysis simulation of alternative internal correction-fixation systems, so as to determine the most efficacious system, (4) instrumentations for surgically implementing the recommendations of the surgical simulation analysis and (5) comparisons of the model-simulated and surgically-obtained corrected spinal configurations. These procedures together constitute the biomechanical foundations of scoliosis surgical correction.

摘要

为了以最佳方式进行脊柱侧弯的手术矫正,人们认为有必要从生物力学角度模拟不同内固定系统所施加的一组矫正力,以便确定并应用在固定系统对脊柱结构施加的安全力水平下能产生最佳矫正效果的内固定系统。为此,我们已开发并在此展示:(1)一个将所施加的矫正力与矫正后的脊柱形态相关联的脊柱有限元模型;(2)一种在手术前确定患者脊柱刚度的方法;(3)对不同内固定矫正系统进行计算机化有限元分析模拟,以确定最有效的系统;(4)用于通过手术实施手术模拟分析建议的器械;(5)模型模拟的矫正脊柱形态与手术获得的矫正脊柱形态的比较。这些步骤共同构成了脊柱侧弯手术矫正的生物力学基础。

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