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不同膝关节角度下髌腱力矩臂长度的变化:一项体内生物力学研究。

Changes of the Patellar Tendon Moment rm Length in Different Knee Angles: A Biomechanical in Vivo Study.

作者信息

Hosseinzadeh Somayeh, Barzegari Ali, Taghipour Mohammad, Mehr Aein Raheleh, Gholinia Hemmat

机构信息

Faculty of Sports sciences, University of Mazandaran, Babolsar, Iran.

Mobility Impairment Research Center, Babol University of Medical Sciences, Iran.

出版信息

Arch Bone Jt Surg. 2020 Sep;8(5):641-645. doi: 10.22038/abjs.2020.42551.2158.

Abstract

Patellar tendon moment arm length (PTma) changes at different knee flexion angles have not been determined in in vivo studies. We aimed to determine PTma in four different knee angles using Magnetic Resonance Imaging (MRI) to predict in vivo changes in the moment arm length from different knee angles during running. PTma was measured as the perpendicular distance from muscle-tendon line of action to the knee joint axis of rotation at 0° (full extension), 20°, 40°, and 60° flexion of knee by using MRI method. Repeated measure ANOVA method was applied to compare the moment arm length among four degrees of knee flexion (). A regression analysis was used to predict the PTma during different knee joint angles. The PTma in the four angles at 0°, 20°, 40°, and 60° of knee flexion were 42.55±4.20, 39.91±2.98, 37.73±2.87, and 36.18±2.90 mm, respectively (). The regression analysis provided an equation to predict the PTma from different knee joint angles during running. PTma values decreased from knee extension to flexion in a linear manner. These findings have important implications for estimating PTma using a regression equation model from different knee joint angles.

摘要

在体内研究中,尚未确定髌腱力臂长度(PTma)在不同膝关节屈曲角度下的变化情况。我们旨在使用磁共振成像(MRI)确定四个不同膝关节角度下的PTma,以预测跑步过程中不同膝关节角度下力臂长度的体内变化。通过MRI方法,将PTma测量为在膝关节0°(完全伸展)、20°、40°和60°屈曲时,肌肉-肌腱作用线到膝关节旋转轴的垂直距离。应用重复测量方差分析方法比较四个膝关节屈曲度之间的力臂长度。使用回归分析来预测不同膝关节角度下的PTma。膝关节屈曲0°、20°、40°和60°时四个角度的PTma分别为42.55±4.20、39.91±2.98、37.73±2.87和36.18±2.90毫米()。回归分析提供了一个方程,用于预测跑步过程中不同膝关节角度下的PTma。PTma值从膝关节伸展到屈曲呈线性下降。这些发现对于使用来自不同膝关节角度的回归方程模型估计PTma具有重要意义。

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