Musculoskeletal Research Laboratory, Department of Orthopaedics & Traumatology, The Chinese University of Hong Kong, Hong Kong SAR, China.
CAS Key Laboratory of Human-Machine Intelligence-Synergy Systems, Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences, Shenzhen, China.
Clin Biomech (Bristol). 2023 May;105:105985. doi: 10.1016/j.clinbiomech.2023.105985. Epub 2023 May 9.
Component alignment is essential to improve knee function and survival in total knee arthroplasty. However, it is still unclear whether the conformity design of tibiofemoral component can mitigate abnormal knee biomechanics caused by component malrotation. The purpose of this study was to investigate whether the sagittal/coronal conformity design of the tibial component could change the effect of the tibial component malrotation on knee biomechanics in total knee arthroplasty.
A developed patient-specific musculoskeletal multi-body dynamics model of total knee arthroplasty was used to investigate the effects of the sagittal/coronal conformity of the tibial component on knee contact forces and kinematics caused by tibial component malrotation during the walking gait.
Medial and lateral contact forces, internal-external rotation, and anterior-posterior translation were significantly affected by tibial component malrotation after total knee arthroplasty during the walking gait. The lower sagittal conformity of the tibial component can mitigate the abnormal internal-external rotation caused by tibial component malrotation in total knee arthroplasty, the higher coronal conformity of the tibial component can mitigate the abnormal medial-lateral translation caused by tibial component malrotation in total knee arthroplasty.
This study highlights the importance of the tibiofemoral conformity designs on knee biomechanics caused by component malrotation in total knee arthroplasty. The optimization of the tibiofemoral conformity designs should be thoroughly considered in the design of new implants and in the planning of surgical procedures.
在全膝关节置换术中,组件对线对于改善膝关节功能和延长假体生存率至关重要。然而,目前仍不清楚胫骨组件的面/冠状适配设计是否可以减轻组件旋转不良引起的异常膝关节生物力学。本研究旨在探讨胫骨组件的矢状/冠状适配设计是否可以改变胫骨组件旋转不良对全膝关节置换术后膝关节生物力学的影响。
使用已开发的特定于患者的全膝关节置换术肌肉骨骼多体动力学模型,研究胫骨组件的矢状/冠状适配对行走步态中胫骨组件旋转不良引起的膝关节接触力和运动学的影响。
全膝关节置换术后行走步态中,胫骨组件旋转不良会显著影响内外侧接触力、内外旋转和前后平移。胫骨组件较低的矢状适配度可以减轻胫骨组件旋转不良引起的异常内外旋转,胫骨组件较高的冠状适配度可以减轻胫骨组件旋转不良引起的异常内外旋转。
本研究强调了胫骨组件对线设计对全膝关节置换术后组件旋转不良引起的膝关节生物力学的重要性。在新假体设计和手术规划中,应充分考虑胫骨组件的面/冠状适配设计的优化。