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Musculoskeletal Multibody Simulation Analysis on the Impact of Patellar Component Design and Positioning on Joint Dynamics after Unconstrained Total Knee Arthroplasty

机译:无约束全膝关节置换术后of骨组件设计和位置对关节动力学影响的肌肉骨骼多体仿真分析

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摘要

Patellofemoral (PF) disorders are considered a major clinical complication after total knee replacement (TKR). Malpositioning and design of the patellar component impacts knee joint dynamics, implant fixation and wear propagation. However, only a limited number of studies have addressed the biomechanical impact of the patellar component on PF dynamics and their results have been discussed controversially. To address these issues, we implemented a musculoskeletal multibody simulation (MMBS) study for the systematical analysis of the patellar component’s thickness and positioning on PF contact forces and kinematics during dynamic squat motion with virtually implanted unconstrained cruciate-retaining (CR)-TKR. The patellar button thickness clearly increased the contact forces in the PF joint (up to 27%). Similarly, the PF contact forces were affected by superior–inferior positioning (up to 16%) and mediolateral positioning (up to 8%) of the patellar button. PF kinematics was mostly affected by the mediolateral positioning and the thickness of the patellar component. A medialization of 3 mm caused a lateral patellar shift by up to 2.7 mm and lateral patellar tilt by up to 1.6°. However, deviations in the rotational positioning of the patellar button had minor effects on PF dynamics. Aiming at an optimal intraoperative patellar component alignment, the orthopedic surgeon should pay close attention to the patellar component thickness in combination with its mediolateral and superior–inferior positioning on the retropatellar surface. Our generated MMBS model provides systematic and reproducible insight into the effects of patellar component positioning and design on PF dynamics and has the potential to serve as a preoperative analysis tool.
机译:knee股(PF)疾病被认为是全膝关节置换(TKR)后的主要临床并发症。 tell骨组件的位置不正确和设计会影响膝关节动力学,植入物固定和磨损传播。但是,只有有限的研究解决了component骨组件对PF动力学的生物力学影响,并且对它们的结果进行了有争议的讨论。为了解决这些问题,我们进行了肌肉骨骼多体模拟(MMBS)研究,系统地分析了动态下蹲运动中virtually骨组件的厚度以及在PF接触力和运动学上的位置以及虚拟植入的无约束交叉保持(CR)-TKR。 tell骨的按钮厚度明显增加了PF关节中的接触力(最高达到27%)。同样,PF接触力受the骨钮的上下位置(最多16%)和内侧位置(最多8%)的影响。 PF运动学主要受me骨外侧位置和the骨组件厚度的影响。 3 mm的中转引起a骨外侧移位最大2.7 mm和lateral骨外侧倾斜最大1.6°。但是,tell骨按钮旋转位置的偏差对PF动力学影响很小。为了实现最佳的术中pa骨组件对准,整形外科医生应密切注意the骨组件的厚度以及其在pat骨后表面的中外侧和上下位置。我们生成的MMBS模型为systematic骨组件定位和设计对PF动态的影响提供了系统且可重现的洞察力,并且有可能用作术前分析工具。

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