刚柔结合的多体分析揭示了腰椎减压稳定短节固定中椎弓根螺钉载荷的减少。

IF 3 2区 医学 Q3 ENGINEERING, BIOMEDICAL
Simone Borrelli, Giovanni Putame, Stefano Marone, Andrea Ferro, Alberto L. Audenino, Mara Terzini
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引用次数: 0

摘要

背景:椎体转移患者的脊髓压迫通常需要手术减压并脊柱固定。最近的研究报道了由于机械并发症而增加的种植失败,引起了对当前临床实践的关注。长节段固定(Lf)通常用于增强机械稳定性和降低椎弓根螺钉失效的严重程度。该研究探讨了在疲劳相关位移域中,参与固定的椎体水平的数量如何影响椎弓根螺钉锚固的载荷。方法:采用刚性-柔性多体入路,采用非线性T12-S1模型模拟L3后路减压手术后的两种固定类型:Lf跨越减压部位(L1、L2、L4和L5)上下两个节段,Sf仅涉及邻近椎体。根据拉拔、剪力和弯矩估计杆-椎弓根螺钉锚固的内部反应。分析的运动范围(屈曲:22°,伸展:8°,侧向弯曲:12°,轴向旋转:5°)局限于“经济锥体”,代表小位移体积,假设载荷循环交换。结果:Lf比Sf表现出高达5倍的反应,且剪切力分布不均匀:中间螺钉出现屏蔽,而末端螺钉过载(~400 N,与实验疲劳强度相当)。拔出力保持在安全范围内(< 150 N)。结论:刚性-柔性多体方法有效地估计了动态条件下种植体-脊柱结构的内部载荷。研究结果强调了Lf的长期影响,表明涉及更多的椎体水平会对椎弓根螺钉产生不利的负荷,可能会影响植入物的耐用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combined Rigid-Flexible Multibody Analysis Reveals Reduced Pedicle Screw Loads in Short-Segment Fixation for Decompressed Lumbar Spine Stabilization

Background

Spinal cord compression in patients with vertebral metastases often requires surgical decompression with spinal fixation. Recent studies reported increased implant failures due to mechanical complications, raising concerns about current clinical practices. Long-segment fixation (Lf) is commonly employed to enhance mechanical stability and reduce the severity of pedicle screw failure. The study investigates how the number of vertebral levels involved in fixation affects the loads on pedicle screw anchorages in a fatigue-related displacement domain.

Method

Using a rigid-flexible multibody approach, a non-linear T12–S1 model was employed to simulate two fixation types following L3 posterior decompression surgery: Lf spanning two levels above and below the decompression site (L1, L2, L4, and L5) and a short-segment fixation (Sf) involving only adjacent vertebrae. Internal reactions at the rod-pedicle screw anchorages were estimated in terms of pullout, shear forces, and bending moments. The range of motion analysed (flexion: 22°, extension: 8°, lateral bending: 12°, axial rotation: 5°) was confined to the “Cone of Economy”, representing a small-displacement volume where loads are assumed cyclically exchanged.

Results

Lf exhibited up to fivefold higher reactions than Sf, with a heterogeneous shear force distribution: middle screws appeared shielded, while extremity screws were overloaded (~400 N, comparable to experimental fatigue strength). Pullout forces remained within safe limits (< 150 N).

Conclusions

The rigid-flexible multibody approach effectively estimated internal loads in the implant-spine constructs under dynamic conditions. The findings highlight the long-term implications of Lf, demonstrating that involving more vertebral levels triggers adverse loads on pedicle screws, potentially compromising implant durability.

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来源期刊
Annals of Biomedical Engineering
Annals of Biomedical Engineering 工程技术-工程:生物医学
CiteScore
7.50
自引率
15.80%
发文量
212
审稿时长
3 months
期刊介绍: Annals of Biomedical Engineering is an official journal of the Biomedical Engineering Society, publishing original articles in the major fields of bioengineering and biomedical engineering. The Annals is an interdisciplinary and international journal with the aim to highlight integrated approaches to the solutions of biological and biomedical problems.
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