Optimal Implant Positioning Following Total Knee Arthroplasty Using Predictive Dynamic Simulation.

IF 1.7 4区 医学 Q4 BIOPHYSICS
Behzad Danaei, John McPhee
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Abstract

In this paper, a novel method is proposed for the determination of the optimal subject-specific placement of knee implants based on predictive dynamic simulations of human movement following total knee arthroplasty (TKA). Two knee implant models are introduced. The first model is a comprehensive 12-degree-of-freedom (DoF) representation that incorporates volumetric contact between femoral and tibial implants, as well as patellofemoral contact. The second model employs a single-degree-of-freedom equivalent kinematic (SEK) approach for the knee joint. A cosimulation framework is proposed to leverage both knee models in our simulations. The knee model is calibrated and validated using patient-specific data, including knee kinematics and ground reaction forces. Additionally, quantitative indices are introduced to evaluate the optimality of implant positioning based on three criteria: balancing medial and lateral load distributions, ligament balancing, and varus/valgus alignment. The knee implant placement is optimized by minimizing the deviation of the indices from their user-defined desired values during predicted sit-to-stand motion. The method presented in this paper has the potential to enhance the results of knee arthroplasty and serve as a valuable instrument for surgeons when planning and performing this procedure.

利用预测性动态模拟进行全膝关节置换术后的最佳植入物定位。
本文提出了一种新方法,根据全膝关节置换术(TKA)后人体运动的预测动态模拟,确定特定受试者的最佳膝关节植入位置。本文介绍了两个膝关节植入物模型。第一个模型是一个全面的 12 自由度(DoF)表示法,包含股骨和胫骨假体之间的体积接触以及髌骨与股骨的接触。第二个模型采用膝关节单自由度等效运动学(SEK)方法。我们提出了一个协同仿真框架,以便在仿真中利用这两个膝关节模型。利用患者的特定数据(包括膝关节运动学和地面反作用力)对膝关节模型进行校准和验证。此外,我们还引入了定量指标,根据平衡内侧和外侧负荷分布、韧带平衡和外翻/内翻对齐这三个标准来评估植入物定位的优化程度。在预测坐立运动过程中,通过最大限度地减少这些指数与用户定义的理想值之间的偏差,来优化膝关节植入物的位置。本文介绍的方法有望提高膝关节置换术的效果,并可作为外科医生计划和实施该手术时的重要工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.40
自引率
5.90%
发文量
169
审稿时长
4-8 weeks
期刊介绍: Artificial Organs and Prostheses; Bioinstrumentation and Measurements; Bioheat Transfer; Biomaterials; Biomechanics; Bioprocess Engineering; Cellular Mechanics; Design and Control of Biological Systems; Physiological Systems.
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