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验证用于评估全膝关节置换术中植入物旋转对尸体标本生物力学影响的机器人测试台。

Validation of a Robotic Testbench for Evaluating Biomechanical Effects of Implant Rotation in Total Knee Arthroplasty on a Cadaveric Specimen.

机构信息

Department of Orthopedics and Sports Orthopedics, Klinikum rechts der Isar, School of Medicine, 81675 Munich, Germany.

Munich Institute of Robotics and Machine Intelligence, Department of Electrical and Computer Engineering, Technical University of Munich, 80992 Munich, Germany.

出版信息

Sensors (Basel). 2023 Aug 27;23(17):7459. doi: 10.3390/s23177459.

Abstract

In this study, we developed and validated a robotic testbench to investigate the biomechanical compatibility of three total knee arthroplasty (TKA) configurations under different loading conditions, including varus-valgus and internal-external loading across defined flexion angles. The testbench captured force-torque data, position, and quaternion information of the knee joint. A cadaver study was conducted, encompassing a native knee joint assessment and successive TKA testing, featuring femoral component rotations at -5°, 0°, and +5° relative to the transepicondylar axis of the femur. The native knee showed enhanced stability in varus-valgus loading, with the +5° external rotation TKA displaying the smallest deviation, indicating biomechanical compatibility. The robotic testbench consistently demonstrated high precision across all loading conditions. The findings demonstrated that the TKA configuration with a +5° external rotation displayed the minimal mean deviation under internal-external loading, indicating superior joint stability. These results contribute meaningful understanding regarding the influence of different TKA configurations on knee joint biomechanics, potentially influencing surgical planning and implant positioning. We are making the collected dataset available for further biomechanical model development and plan to explore the 6 Degrees of Freedom (DOF) robotic platform for additional biomechanical analysis. This study highlights the versatility and usefulness of the robotic testbench as an instrumental tool for expanding our understanding of knee joint biomechanics.

摘要

在这项研究中,我们开发并验证了一个机器人测试平台,以研究三种全膝关节置换术(TKA)配置在不同加载条件下的生物力学兼容性,包括在定义的屈曲角度下的内翻-外翻和内外加载。该测试平台捕获了膝关节的力-扭矩数据、位置和四元数信息。进行了一项尸体研究,包括对原生膝关节的评估和随后的 TKA 测试,其中股骨组件相对于股骨的髁间轴旋转-5°、0°和+5°。原生膝关节在内外翻加载下表现出更好的稳定性,+5°外旋 TKA 的偏差最小,表明生物力学兼容性。机器人测试平台在所有加载条件下都表现出了很高的精度。研究结果表明,在内外加载下,外旋+5°的 TKA 配置显示出最小的平均偏差,表明关节稳定性更好。这些结果对不同 TKA 配置对膝关节生物力学的影响有了更深入的了解,可能会影响手术计划和植入物定位。我们正在提供收集到的数据集,用于进一步的生物力学模型开发,并计划探索 6 自由度(DOF)机器人平台进行额外的生物力学分析。本研究强调了机器人测试平台的多功能性和实用性,它是扩展我们对膝关节生物力学理解的重要工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/932c/10490644/6b9aa832a8ce/sensors-23-07459-g001.jpg

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