Jang Jaeho, Pietrosimone Brian G, Blackburn J Troy, Tennant Joshua N, Franz Jason R, Wikstrom Erik A
Department of Kinesiology, University of Texas at El Paso, El Paso, TX, United States.
MOTION Science Institute, Department of Exercise & Sport Science, University of North Carolina at Chapel Hill, NC, United States.
Gait Posture. 2025 Mar;117:65-71. doi: 10.1016/j.gaitpost.2024.12.008. Epub 2024 Dec 9.
Structural malalignments, such as talar malalignments and hindfoot varus, are hypothesized to contribute to early ankle joint degeneration by altering joint contact force (JCF). These malalignments, common in individuals with chronic ankle instability (CAI), can modify the articular geometry of the ankle joint, potentially leading to abnormal joint loading patterns. This study leverages musculoskeletal modeling and simulation to conceptualize the effects of increasing severity of these malalignments on ankle JCF during walking.
Using a theoretical framework based on biomechanical principles, how do increasing talar malalignments and rearfoot varus, as seen in CAI patients, influence ankle JCF during walking?
A conceptual musculoskeletal modeling approach was employed to simulate the effects of structural alterations on ankle JCF in uninjured individuals. Using an instrumented treadmill, musculoskeletal modeling was used to estimate the effects of increasing talar positional malalignments and/or rearfoot varus, both in isolation and in combination, on ankle JCF during the stance phase of walking. Variables included peak, impulse, and loading rates for compressive, posterior shear, and lateral shear JCF.
Anterior translation and internal rotation of the talus significantly increased lateral shear JCF, while an increase in rearfoot varus decreased lateral shear JCF (p < 0.01). However, combining modifications of the talus and rearfoot varus had no significant effects on ankle JCF.
This conceptual analysis highlights the effectiveness of musculoskeletal modeling in providing theoretical insights into how CAI-related structural malalignments affect ankle joint loading during walking. Talar positional malalignments increase lateral shear loading, whereas rearfoot varus reduces lateral shear loading. The effects of these structural alterations on lateral shear JCF counterbalance each other, highlighting the need to consider other factors of CAI to more accurately reflect the ankle JCF in those with CAI.
结构排列不齐,如距骨排列不齐和后足内翻,被认为会通过改变关节接触力(JCF)导致早期踝关节退变。这些排列不齐在慢性踝关节不稳(CAI)患者中很常见,会改变踝关节的关节几何形状,可能导致异常的关节负荷模式。本研究利用肌肉骨骼建模和模拟来构想这些排列不齐严重程度增加对步行时踝关节JCF的影响。
基于生物力学原理的理论框架,CAI患者中出现的距骨排列不齐和后足内翻加重如何影响步行时的踝关节JCF?
采用概念性肌肉骨骼建模方法模拟结构改变对未受伤个体踝关节JCF的影响。使用仪器化跑步机,通过肌肉骨骼建模来估计距骨位置排列不齐增加和/或后足内翻单独或联合出现时对步行支撑相期间踝关节JCF的影响。变量包括压缩、后向剪切和侧向剪切JCF的峰值、冲量和负荷率。
距骨向前平移和内旋显著增加侧向剪切JCF,而后足内翻增加则降低侧向剪切JCF(p<0.01)。然而,距骨和后足内翻的联合改变对踝关节JCF没有显著影响。
这一概念分析突出了肌肉骨骼建模在提供关于CAI相关结构排列不齐如何影响步行时踝关节负荷的理论见解方面的有效性。距骨位置排列不齐增加侧向剪切负荷,而后足内翻则降低侧向剪切负荷。这些结构改变对侧向剪切JCF的影响相互抵消,凸显了需要考虑CAI的其他因素以更准确反映CAI患者的踝关节JCF。