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主成分分析(PCA)得出的步态运动学变化对膝骨关节炎人群内侧膝关节接触力估计值的影响。

The impact of PCA derived gait kinematic variations on estimated medial knee contact forces in a knee osteoarthritis population.

作者信息

Di Raimondo Giacomo, Willems Miel, Killen Bryce Adrian, Havashinezhadian Sara, Turcot Katia, Vanwanseele Benedicte, Jonkers Ilse

机构信息

Department of Movement Sciences, Katholieke Universiteit Leuven, 3001, Heverlee, Belgium.

Department of Kinesiology, Université Laval, Québec, QC, G1V 0A6, Canada.

出版信息

Sci Rep. 2025 May 26;15(1):18342. doi: 10.1038/s41598-025-90804-8.

Abstract

Osteoarthritis (OA) is a prevalent musculoskeletal condition leading to functional limitations, especially among the elderly. Current treatments focus on pain relief and functional improvement, however there is a lack of approaches which slow disease progression. A promising approach focusses on reducing knee joint loading, as excessive loading contributes to knee OA progression. This study explores kinematic variations in the knee OA population, utilizing principal component analysis (PCA) to examine gait variations (primitives) in both healthy individuals and those with knee osteoarthritis (KOA) and their implications for knee joint loading. The KOA population exhibited 14 modes of variation representing 95% of the cumulative variance, compared to 20 in the healthy population, indicating lower variability with KOA. The relation between identified gait primitives and knee loading parameters, revealed complex relationships. Surprisingly, modes with the largest kinematic variations did not consistently correspond to the highest variations in knee loading parameters revealing degrees of freedom which may have a larger role in determining joint loading. Moreover, potential gait-retraining strategies for KOA, associating specific kinematic combinations with altered knee loading were identified. The results showed a good agreement with previously applied strategies. However, this study highlights the importance of analyzing whole-body kinematics for effective gait retraining, as opposed to focusing on one single joint variation. The study's insights contribute to understanding the intricate interplay between gait pattern variations and knee joint loading changes in healthy and KOA populations, offering practical applications for guiding interventions and estimating loading parameters.

摘要

骨关节炎(OA)是一种常见的肌肉骨骼疾病,会导致功能受限,在老年人中尤为常见。目前的治疗重点是缓解疼痛和改善功能,然而,缺乏能够减缓疾病进展的方法。一种有前景的方法是关注减轻膝关节负荷,因为过度负荷会促使膝关节OA病情发展。本研究探讨了膝关节OA患者群体的运动学变化,利用主成分分析(PCA)来检查健康个体和膝关节骨关节炎(KOA)患者的步态变化(基元)及其对膝关节负荷的影响。与健康人群的20种变化模式相比,KOA患者群体表现出14种变化模式,占累积方差的95%,这表明KOA患者的变异性较低。已识别的步态基元与膝关节负荷参数之间的关系揭示了复杂的联系。令人惊讶的是,运动学变化最大的模式并不总是与膝关节负荷参数的最高变化相对应,这揭示了在确定关节负荷方面可能发挥更大作用的自由度。此外,还确定了针对KOA的潜在步态再训练策略,即将特定的运动学组合与改变的膝关节负荷联系起来。结果与先前应用的策略显示出良好的一致性。然而,本研究强调了分析全身运动学以进行有效步态再训练的重要性,而不是只关注单个关节的变化。该研究的见解有助于理解健康人群和KOA人群中步态模式变化与膝关节负荷变化之间的复杂相互作用,为指导干预措施和估计负荷参数提供实际应用。

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