Design and biomechanical analysis of patientspecific porous tantalum prostheses for knee joint revision surgery.

IF 6.8 3区 医学 Q1 ENGINEERING, BIOMEDICAL International Journal of Bioprinting Pub Date : 2023-01-01 DOI:10.18063/ijb.735
Shilong Mao, Yang Liu, Fuyou Wang, Peng He, Xianzhe Wu, Xingshuang Ma, Yanfeng Luo
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Abstract

Artificial joint revision surgery, as an increasingly common surgery in orthopedics, often requires patient-specific prostheses to repair the bone defect. Porous tantalum is a good candidate due to its excellent abrasion and corrosion resistance and good osteointegration. Combination of 3D printing technology and numerical simulation is a promising strategy to design and prepare patient-specific porous prostheses. However, clinical design cases have rarely been reported, especially from the viewpoint of biomechanical matching with the patient's weight and motion and specific bone tissue. This work reports a clinical case on the design and mechanical analysis of 3D-printed porous tantalum prostheses for the knee revision of an 84-year-old male patient. Particularly, standard cylinders of 3D-printed porous tantalum with different pore size and wire diameters were first fabricated and their compressive mechanical properties were measured for following numerical simulation. Subsequently, patientspecific finite element models for the knee prosthesis and the tibia were constructed from the patient's computed tomography data. The maximum von Mises stress and displacement of the prostheses and tibia and the maximum compressive strain of the tibia were numerically simulated under two loading conditions by using finite element analysis software ABAQUS. Finally, by comparing the simulated data to the biomechanical requirements for the prosthesis and the tibia, a patient-specific porous tantalum knee joint prosthesis with a pore diameter of 600 μm and a wire diameter of 900 μm was determined. The Young's modulus (5719.32 ± 100.61 MPa) and yield strength (172.71 ± 1.67 MPa) of the prosthesis can produce both sufficient mechanical support and biomechanical stimulation to the tibia. This work provides a useful guidance for designing and evaluating a patient-specific porous tantalum prosthesis.

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膝关节翻修手术患者专用多孔钽假体的设计与生物力学分析。
人工关节翻修手术作为骨科中越来越常见的手术,往往需要患者特异性的假体来修复骨缺损。多孔钽具有优异的耐磨损、耐腐蚀性能和良好的骨整合性,是一种很好的候选材料。将3D打印技术与数值模拟相结合是设计和制备患者特异性多孔假体的一种很有前途的策略。然而,临床设计案例很少有报道,特别是从生物力学与患者体重、运动和特定骨组织匹配的角度来看。这项工作报告了一个临床病例的设计和力学分析的3d打印多孔钽假体膝关节翻修的84岁男性患者。首先制备了不同孔径和线径的3d打印多孔钽标准圆柱体,并对其压缩力学性能进行了测量,进行了数值模拟。随后,根据患者的计算机断层扫描数据构建了膝关节假体和胫骨的特定有限元模型。利用有限元分析软件ABAQUS对两种载荷条件下假体和胫骨的最大von Mises应力和位移以及胫骨的最大压缩应变进行数值模拟。最后,通过将模拟数据与假体和胫骨的生物力学要求进行比较,确定了孔径为600 μm、丝径为900 μm的患者专用多孔钽膝关节假体。该假体的杨氏模量(5719.32±100.61 MPa)和屈服强度(172.71±1.67 MPa)可为胫骨提供足够的机械支撑和生物力学刺激。这项工作为设计和评估患者特异性多孔钽假体提供了有用的指导。
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来源期刊
CiteScore
6.90
自引率
4.80%
发文量
81
期刊介绍: The International Journal of Bioprinting is a globally recognized publication that focuses on the advancements, scientific discoveries, and practical implementations of Bioprinting. Bioprinting, in simple terms, involves the utilization of 3D printing technology and materials that contain living cells or biological components to fabricate tissues or other biotechnological products. Our journal encompasses interdisciplinary research that spans across technology, science, and clinical applications within the expansive realm of Bioprinting.
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