治疗椎间盘退行性疾病的定制棘间垫系统的生物力学研究:有限元分析

IF 1.4 3区 医学 Q4 ENGINEERING, BIOMEDICAL Clinical Biomechanics Pub Date : 2024-05-18 DOI:10.1016/j.clinbiomech.2024.106270
Gaiping Zhao , Zhehua Jiang , Eryun Chen , Tong Ma , Jie Wu , Chengli Song , Weiqi Li
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引用次数: 0

摘要

背景为治疗椎间盘退行性疾病,开发了一种基于解剖学参数并结合经椎间隙螺钉的新型椎间隙固定系统。方法在 L1-S1 腰椎有限元模型的 L4/L5 节段手术植入新型系统、Coflex 和 DIAM 装置,以评估各种运动时的运动范围、椎间盘的压力分布、棘突和植入物的峰值应力。结果 L4/L5 手术节段的运动范围分别减少了 29.13%、61.27%、77.35% 和 33.33%,椎间盘的峰值应力分别减少了 36.82%、67.31%、73.00% 和 69.57%。与Coflex相比,新型系统在屈曲、伸展、侧弯和轴向旋转时的峰值应力分别降低了36.82%、67.31%、73.00%、69.57%,与DIAM相比,分别降低了34.53%、57.86%、75.81%、25.21%、36.22%、67.31%、75.01%、71.40%。在相同条件下,新型系统的棘突最大应力分别为 29.93 MPa、24.66 MPa、14.45 MPa、24.37 MPa,Coflex 和 DIAM 的最大应力分别为 165.3 MPa、109 MPa、84.79 MPa、47.66 MPa 和 52.59 MPa、48.78 MPa、50.27 MPa、44.16 MPa。释义与其他椎间隙装置相比,新型椎间隙固定系统具有良好的稳定性,能有效分散椎间盘的负荷,降低棘突骨折的风险。个性化设计的新型椎间孔固定系统可作为治疗椎间盘退行性疾病的可行方案。
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Biomechanical investigation of a customized interspinous spacer system in the treatment of degenerative disc diseases: A finite element analysis

Background

A novel interspinous fixation system based on anatomical parameters and incorporating transfacetopedicular screws, was developed to treat degenerative disc diseases. The biomechanical characteristics of the novel system were evaluated using finite element analysis in comparison to other classical interspinous spacers.

Methods

The L1-S1 lumbar spine finite element models were surgically implanted with the novel system, Coflex and DIAM devices at the L4/L5 segment to assess the range of motion, the pression distribution of intervertebral disc, the peak stresses on the spinous process and implant during various motions.

Findings

Range of motions of the L4/L5 surgical segment were reduced by 29.13%, 61.27%, 77.35%, 33.33%, and the peak stresses of intervertebral disc were decreased by 36.82%, 67.31%, 73.00%, 69.57% for the novel system in flexion, extension, lateral bending, and axial rotation when compared with the Coflex, and they were declined by 34.53%, 57.86%, 75.81%, 25.21%; 36.22%, 67.31%, 75.01%, 71.40% compared with DIAM. The maximum stresses of the spinous process were 29.93 MPa, 24.66 MPa, 14.45 MPa, 24.37 MPa in the novel system, and those of Coflex and DIAM were 165.3 MPa, 109 MPa, 84.79 MPa, 47.66 MPa and 52.59 MPa, 48.78 MPa, 50.27 MPa, 44.16 MPa during the same condition.

Interpretation

Compared to other interspinous spacer devices, the novel interspinous fixation system demonstrated excellent stability, effectively distributing load on the intervertebral disc, and reducing the risk of spinous process fractures. The personalized design of the novel interspinous fixation system could be a viable option for treating degenerative disc diseases.

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来源期刊
Clinical Biomechanics
Clinical Biomechanics 医学-工程:生物医学
CiteScore
3.30
自引率
5.60%
发文量
189
审稿时长
12.3 weeks
期刊介绍: Clinical Biomechanics is an international multidisciplinary journal of biomechanics with a focus on medical and clinical applications of new knowledge in the field. The science of biomechanics helps explain the causes of cell, tissue, organ and body system disorders, and supports clinicians in the diagnosis, prognosis and evaluation of treatment methods and technologies. Clinical Biomechanics aims to strengthen the links between laboratory and clinic by publishing cutting-edge biomechanics research which helps to explain the causes of injury and disease, and which provides evidence contributing to improved clinical management. A rigorous peer review system is employed and every attempt is made to process and publish top-quality papers promptly. Clinical Biomechanics explores all facets of body system, organ, tissue and cell biomechanics, with an emphasis on medical and clinical applications of the basic science aspects. The role of basic science is therefore recognized in a medical or clinical context. The readership of the journal closely reflects its multi-disciplinary contents, being a balance of scientists, engineers and clinicians. The contents are in the form of research papers, brief reports, review papers and correspondence, whilst special interest issues and supplements are published from time to time. Disciplines covered include biomechanics and mechanobiology at all scales, bioengineering and use of tissue engineering and biomaterials for clinical applications, biophysics, as well as biomechanical aspects of medical robotics, ergonomics, physical and occupational therapeutics and rehabilitation.
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