Patellar motion and dysfunction of its stabilizers in a biomechanical model of the knee joint

A. Yurova, A. I. Tyagunova, F. B. Loginov, Yu. V. Vassilevski, A. Lychagin, E. B. Kalinsky, E. V. Larina, N.  V. Gorohova, K. A. Devyatyarov, O. N. Bogdanov, I. Kovalenko, K. V. Chesnokova, M. A. Dergachev, E. Y. Mychka, O. N. Kosukhin
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Abstract

Aim. To develop a biomechanical model of the knee joint, including a detailed representation of the patellofemoral segment for the normal anatomy of bones, joints, ligaments and muscles, and study patellar movement during passive knee flexion.Materials and methods. The architecture of the biomechanical model was developed using an open source software system for biomechanical modeling OpenSim. Patellofemoral joint with 6 degrees of freedom, patellar stabilizers – medial patellofemoral ligament (MPFL), medial patellotibial ligament (MPTL), lateral retinaculum (LR), and patellar contact surfaces (facets) were included in the model. Gmsh and Paraview were used to generate the contact surfaces. Simulations of knee passive flexion with consistent patellar stabilizers exclusion were carried out to identify their influence on patellar movement.Results. The presented biomechanical model provides a detailed analysis of the normal dynamics of the patella and the role of different anatomical structures in its functioning and can be used for further experiments investigating of the patellar movement. The experiment involving all ligaments is consistent with the physiological norm. Disabling MPTL has minimal effects on patellar tilt and translation, which aligns with its small size. In contrast, deactivating MPFL results in increased lateral tilt and translation of the patella. Additionally, deactivation of LR components 1 and 2 induces more medial tilt and translation. Deactivating LR components 3 and 4 leads to further lateral translation and slight additional medial tilt.Conclusion. Computational results show that all ligaments contribute to the normal movement of the patella. These findings highlight the importance of stabilizing structures in maintaining patellar stability during knee flexion.
膝关节生物力学模型中的髌骨运动及其稳定器功能障碍
目的开发膝关节生物力学模型,包括髌股关节节段的详细表示,以了解骨骼、关节、韧带和肌肉的正常解剖结构,并研究膝关节被动屈曲时的髌骨运动。生物力学模型的结构是使用开源生物力学建模软件系统 OpenSim 开发的。模型包含 6 个自由度的髌股关节、髌骨稳定器--髌股内侧韧带(MPFL)、髌胫内侧韧带(MPTL)、外侧韧带(LR)和髌骨接触面(切面)。Gmsh 和 Paraview 用于生成接触面。在髌骨稳定器排除一致的情况下进行膝关节被动屈曲模拟,以确定它们对髌骨运动的影响。所提出的生物力学模型详细分析了髌骨的正常动态以及不同解剖结构在其功能中的作用,可用于进一步研究髌骨运动的实验。涉及所有韧带的实验与生理常态一致。禁用 MPTL 对髌骨倾斜和平移的影响极小,这与 MPTL 的小尺寸是一致的。相反,停用 MPFL 会导致髌骨的侧倾和平移增加。此外,LR 成分 1 和 2 失活会导致更多的内侧倾斜和平移。LR 成分 3 和 4 失活会导致进一步的外侧平移和轻微的内侧倾斜。计算结果表明,所有韧带都有助于髌骨的正常运动。这些发现强调了稳定结构在膝关节屈曲时保持髌骨稳定性的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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