College of Mechanical Engineering, Chongqing Key Laboratory of Manufacturing Equipment Mechanism Design and Control, Chongqing Technology and Business University, Chongqing, 400067, China.
Center for Joint Surgery, Southwest Hospital, Army Medical University (Third Military Medical University), Chongqing, China.
Med Eng Phys. 2022 Feb;100:103747. doi: 10.1016/j.medengphy.2021.103747. Epub 2021 Dec 24.
Aberrant knee biomechanical environment caused by the component mal-alignment of unicompartmental knee arthroplasty (UKA) could lead to knee pain and even early prosthetic failure. This study aims at quantifying the effects of the coronal mal-alignment of femoral and tibial components on biomechanics of knee joint during walking. A subject-specific musculoskeletal multibody model of UKA was established based on a model validated in our previous study. In this model, both of femoral and tibial components were re-aligned with the coronal angle ranging from 9° of varus to 9° of valgus at 3° increment, respectively. It was shown that the valgus mal-alignment of femoral component and the varus mal-alignment of tibial component caused a clearly increased trend in the contact force and valgus rotation of tibiofemoral joint, and in the medial collateral ligament and anterior cruciate ligament force, with the most remarkable alterations in the 9° condition. However, component mal-alignment had no effect on the biomechanical environment of patellofemoral joint. It is then advisable that surgeons should be concerned with coronal component position on UKA because of adverse biomechanical effects. Specifically, more than 9° of mal-alignment could lead to more detrimental effects.
单间膝关节置换术后(UKA)由于组件对线不良导致膝关节生物力学环境异常,可能导致膝关节疼痛甚至早期假体失效。本研究旨在定量评估股骨和胫骨组件冠状对线不良对步行时膝关节生物力学的影响。基于我们之前研究中验证的模型,建立了 UKA 的特定于个体的肌肉骨骼多体模型。在该模型中,股骨和胫骨组件分别在冠状面上以 3°的增量从 9°的内翻到 9°的外翻进行重新对线。结果表明,股骨组件的外翻对线不良和胫骨组件的内翻对线不良导致胫股关节的接触力和外翻旋转以及内侧副韧带和前交叉韧带力明显增加趋势,在 9°时变化最显著。然而,组件对线不良对髌股关节的生物力学环境没有影响。因此,外科医生应该关注 UKA 上的冠状面组件位置,因为这会产生不良的生物力学影响。具体来说,超过 9°的对线不良可能会导致更不利的影响。