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首页> 外文期刊>Journal of Orthopaedic Translation >Finite element analysis of biomechanical effects of total ankle arthroplasty on the foot
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Finite element analysis of biomechanical effects of total ankle arthroplasty on the foot

机译:全踝关节置换术对脚的生物力学影响的有限元分析

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Background Total ankle arthroplasty is gaining popularity as an alternation to ankle arthrodesis for end-stage ankle arthritis. Owing to the complex anatomical characteristics of the ankle joint, total ankle arthroplasty has higher failure rates. Biomechanical exploration of the effects of total ankle arthroplasty on the foot and ankle is imperative for the precaution of postoperative complications. The objectives of this study are (1) to investigate the biomechanical differences of the foot and ankle between the foot with total ankle arthroplasty and the intact foot?and (2) to investigate the performance of the three-component ankle prosthesis. Methods To understand the loading environment of the inner foot, comprehensive finite element models of an intact foot and a foot with total ankle arthroplasty were developed to simulate the stance phase of gait. Motion analysis on the model subject was conducted to obtain the boundary and loading conditions. The model was validated through comparison of plantar pressure and joint contact pressure between computational prediction and experimental measurement. A pressure mapping system was used to measure the plantar pressure during balanced standing and walking in the motion analysis experiment, and joint contact pressure at the talonavicular joint was measured in a cadaver foot. Results Plantar pressure, stress distribution in bones and implants and joint contact loading in the two models were compared, and motion of the prosthesis was analysed. Compared with the intact foot model, averaged contact pressure at the medial cuneonavicular joint increased by 67.4% at the second-peak instant. The maximum stress in the metatarsal bones increased by 19.8% and 31.3% at the mid-stance and second-peak instants, respectively. Force that was transmitted in three medial columns was 0.33, 0.53 and 1.15 times of body weight, respectively, at the first-peak, mid-stance?and second-peak instants. The range of motion of the prosthetic ankle was constrained in the frontal plane. The lateral side of the prosthesis sustained higher loading than the medial side. Conclusion Total ankle arthroplasty resulted in great increase of contact pressure at the medial cuneonavicular joint, making it sustain the highest contact pressure among all joints in the foot. The motion of the prosthesis was constrained in the frontal plane, and asymmetric loading was distributed in the bearing component of the ankle prosthesis in the mediolateral direction. The translational potential of this article Biomechanical variations resulted from total ankle arthroplasty may contribute to negative postoperative outcomes. The exploration of the biomechanical performance in this study might benefit the surgeons in the determination of surgical protocols to avoid complications. The analysis of the performance of the ankle prosthesis could enhance the knowledge of prosthetic design.
机译:背景技术作为终末期踝关节炎的一种替代踝关节置换术,全踝关节置换术正变得越来越流行。由于踝关节的复杂解剖学特征,全踝关节置换术的失败率更高。为了预防术后并发症,必须对脚踝进行全踝关节置换术的生物力学研究。这项研究的目的是(1)研究具有全踝关节置换术的脚和完整的脚之间的脚和踝的生物力学差异,以及(2)研究三组分踝假体的性能。方法为了了解内足的负荷环境,建立了完整脚和全踝关节置换脚的综合有限元模型,以模拟步态的站立阶段。对模型主体进行运动分析,以获取边界条件和载荷条件。通过比较计算预测值和实验测量值之间的足底压力和关节接触压力来验证该模型。在运动分析实验中,使用压力映射系统测量平衡站立和行走时的足底压力,并在尸体脚中测量距骨眼关节的关节接触压力。结果比较了两种模型的足底压力,骨骼和植入物的应力分布以及关节接触负荷,并分析了假体的运动情况。与完整脚模型相比,在第二个峰值瞬间,内侧楔形眼球关节的平均接触压力增加了67.4%。在站立和第二高峰时刻,peak骨的最大应力分别增加了19.8%和31.3%。在第一峰值,中间姿态和第二峰值瞬间,在三个内侧柱中传递的力分别是体重的0.33、0.53和1.15倍。假肢踝关节的运动范围被限制在额骨平面中。假体的外侧承受的载荷要高于内侧。结论全踝关节置换术导致楔形眼内侧关节的接触压力大大增加,使其在足部所有关节中保持最高的接触压力。假体的运动被限制在额骨平面中,并且不对称的载荷分布在踝假体的支撑组件中的内侧。本文的翻译潜力由全踝关节置换术引起的生物力学变化可能会导致术后不良结果。在这项研究中对生物力学性能的探索可能有利于外科医生确定避免并发症的手术方案。对踝关节假体性能的分析可以增强对假体设计的了解。

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