Landry Scott C, McKean Kelly A, Hubley-Kozey Cheryl L, Stanish William D, Deluzio Kevin J
School of Biomedical Engineering, Dalhousie University, Halifax, Canada.
J Biomech. 2007;40(8):1754-61. doi: 10.1016/j.jbiomech.2006.08.010. Epub 2006 Nov 7.
Osteoarthritis (OA) is a chronic disorder resulting in degenerative changes to the knee joint. Three-dimensional gait analysis provides a unique method of measuring knee dynamics during activities of daily living such as walking. The purpose of this study was to identify biomechanical features characterizing the gait of patients with mild-to-moderate knee OA and to determine if the biomechanical differences become more pronounced as the locomotor system is stressed by walking faster. Principal component analysis was used to compare the gait patterns of a moderate knee OA group (n=41) and a control group (n=43). The subjects walked at their self-selected speed as well as at 150% of that speed. The two subject groups did not differ in knee joint angles, stride length, and stride time or walking speed. Differences in the magnitude and shape of the knee joint moment waveforms were found between the two groups. The OA group had larger adduction moment magnitudes during stance and this higher magnitude was sustained for a longer portion of the gait cycle. The OA group also had a reduced flexion moment and a reduced external rotation moment during early stance. Increasing speed was associated with an increase in the magnitude of all joint moments. The fast walks did not, however, increase or bring out any biomechanical differences between the OA and control groups that did not exist at the self-selected walks.
骨关节炎(OA)是一种导致膝关节退行性改变的慢性疾病。三维步态分析提供了一种独特的方法来测量日常生活活动(如行走)期间的膝关节动力学。本研究的目的是识别表征轻度至中度膝关节OA患者步态的生物力学特征,并确定随着运动系统因更快行走而受到压力时,生物力学差异是否会变得更加明显。主成分分析用于比较中度膝关节OA组(n = 41)和对照组(n = 43)的步态模式。受试者以他们自己选择的速度以及该速度的150%行走。两组受试者在膝关节角度、步长、步幅时间或行走速度方面没有差异。发现两组之间膝关节力矩波形的大小和形状存在差异。OA组在站立期间内收力矩大小更大,并且在步态周期的更长部分保持这种较高的大小。OA组在早期站立期间还具有减小的屈曲力矩和减小的外旋力矩。速度增加与所有关节力矩大小的增加相关。然而,快速行走并没有增加或凸显出OA组和对照组之间在自选行走时不存在的任何生物力学差异。