评估不同过盈配合无骨水泥股骨假体的稳定性。

IF 2.3 3区 医学 Q2 ORTHOPEDICS
Esther Sánchez, Christoph Schilling, Thomas M Grupp, Alexander Giurea, Nico Verdonschot, Dennis Janssen
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引用次数: 0

摘要

与骨水泥假体相比,无骨水泥全膝关节置换术具有保留骨和更容易翻修手术等优点。然而,实现良好压合固定所需的最佳过盈配合,对于初级和长期稳定性都至关重要,仍然不确定。本研究采用有限元分析研究了两种干涉配合(350µm和700µm)在不同载荷条件下对无水泥股骨假体骨-种植体界面微运动、间隙行为和塑性变形的影响。利用配对的尸体股骨建立有限元模型,结合微ct和光学扫描。微动量化为剪切位移,间隙量化为法向位移。通过量化经历总等效塑性应变的骨体积来评估骨反应。模型与实验结果有适度的相关性,预测位移变异性为35%。虽然高过盈配合种植体略微减少了微动和间隙,但这些差异没有统计学意义(p = 0.252和p = 0.759)。高过盈配合植入物表现出更大的塑性变形(+15.7%,p = 0.031),特别是在股骨后髁处。这些发现表明,虽然增加的过盈配合并不能提高初级稳定性,但它可能会导致骨骼的可塑性增强,从而可能导致更多的损伤。因此,优化过盈配合对于平衡种植体固定和减少骨损伤至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessing Implant Stability in Cementless Femoral Components With Different Interference Fits.

Cementless total knee arthroplasty implants offer advantages over cemented implants, such as bone preservation and easier revision procedures. However, the optimal interference fit required to achieve a good press-fit fixation, essential for both primary and long-term stability, remains uncertain. This study uses finite element analysis to investigate the effects of two interference fits (350 µm and 700 µm) on micromotions, gap behavior, and plastic deformation at the bone-implant interface of a cementless femoral component under various loading conditions. Finite element models were developed using paired cadaveric femurs, incorporating microCT and optical scans. Micromotions were quantified as shear displacement, while gaps were quantified as normal displacement. Bone response was assessed by quantifying the volume of bone experiencing total equivalent plastic strain. The models showed moderate correlation with experimental results, predicting 35% of displacement variability. Although high interference fit implants slightly reduced micromotions and gaps, these differences were not statistically significant (p = 0.252 and p = 0.759, respectively). The high interference fit implants exhibited significantly greater plastic deformation (+15.7%, p = 0.031), particularly at the posterior femoral condyles. These findings suggest that while an increased interference fit does not enhance primary stability, it may lead to more plasticity in the bone, potentially leading to more damage. Thus, optimizing the interference fit is crucial to balance implant fixation and minimize bone damage.

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来源期刊
Journal of Orthopaedic Research®
Journal of Orthopaedic Research® 医学-整形外科
CiteScore
6.10
自引率
3.60%
发文量
261
审稿时长
3-6 weeks
期刊介绍: The Journal of Orthopaedic Research is the forum for the rapid publication of high quality reports of new information on the full spectrum of orthopaedic research, including life sciences, engineering, translational, and clinical studies.
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