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脊柱侧弯柔性多体模型的患者特异性力学特性

Patient-specific mechanical properties of a flexible multi-body model of the scoliotic spine.

作者信息

Petit Y, Aubin C E, Labelle H

机构信息

Ecole Polytechnique, Department of Mechanical Engineering, Montreal, Quebec, Canada.

出版信息

Med Biol Eng Comput. 2004 Jan;42(1):55-60. doi: 10.1007/BF02351011.

Abstract

The flexibility of the scoliotic spine is an important biomechanical parameter to take into account in the planning of surgical instrumentation. The objective of the paper was to develop a method to characterise in vivo the mechanical properties of the scoliotic spine using a flexible multi-body model. Vertebrae were represented as rigid bodies, and intervertebral elements were defined at every level using a spherical joint and three torsion springs. The initial mechanical properties of motion segments were defined from in vitro experimental data reported in the literature. They were adjusted using an optimisation algorithm to reduce the discrepancy between the simulated and the measured Ferguson angles in lateral bending of three spine segments (major or compensatory left thoracic, right thoracic and left lumbar scoliosis curves). The flexural rigidity of the spine segments was defined in three categories (flexible, nominal, rigid) according to the estimated mechanical factors (alpha). This approach was applied with ten scoliotic patients undergoing spinal correction. Personalisation of the model resulted in an increase of the initial flexural rigidity for seven of the ten lumbar segments (1.38 < or = alpha < or = 10.0) and four of the ten right thoracic segments (1.74 < or = alpha < or = 5.18). The adjustment of the mechanical parameters based on the lateral bending tests improved the model's ability to predict the spine shape change described by the Ferguson angles by up to 50%. The largest differences after personalisation were for the left lumbar segments in left bending (4 degrees +/- 3 degrees). The in vivo identification of the mechanical properties of the scoliotic spine will improve the ability of biomechanical models adequately to predict the surgical correction, which should help clinicians in the planning of surgical instrumentation manoeuvres.

摘要

脊柱侧弯脊柱的柔韧性是手术器械规划中需要考虑的一个重要生物力学参数。本文的目的是开发一种方法,使用灵活的多体模型在体内表征脊柱侧弯脊柱的力学性能。椎体被表示为刚体,每个层面的椎间元件使用球形关节和三个扭转弹簧来定义。运动节段的初始力学性能根据文献报道的体外实验数据来定义。通过优化算法对其进行调整,以减少三个脊柱节段(主要或代偿性左胸弯、右胸弯和左腰弯脊柱侧弯曲线)侧弯时模拟的和测量的弗格森角之间的差异。根据估计的力学因素(α),将脊柱节段的抗弯刚度分为三类(柔性、标称、刚性)。该方法应用于十名接受脊柱矫正的脊柱侧弯患者。模型的个性化导致十个腰段中的七个(1.38≤α≤10.0)和十个右胸段中的四个(1.74≤α≤5.18)的初始抗弯刚度增加。基于侧弯试验对力学参数的调整使模型预测由弗格森角描述的脊柱形状变化的能力提高了50%。个性化后最大的差异出现在左腰段的左侧弯曲(4°±3°)。在体内识别脊柱侧弯脊柱的力学性能将提高生物力学模型充分预测手术矫正的能力,这将有助于临床医生进行手术器械操作的规划。

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