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模拟轴移试验过程中前交叉韧带、外侧副韧带和前外侧关节囊复合体的原位力。

In situ force in the anterior cruciate ligament, the lateral collateral ligament, and the anterolateral capsule complex during a simulated pivot shift test.

作者信息

Bell Kevin M, Rahnemai-Azar Ata A, Irarrazaval Sebastian, Guenther Daniel, Fu Freddie H, Musahl Volker, Debski Richard E

机构信息

Orthopaedic Robotics Laboratory, Department of Orthopaedic Surgery and Bioengineering, University of Pittsburgh, 300 Technology Drive, Pittsburgh, 15219, Pennsylvania.

Department of Orthopaedic Surgery, University of Pittsburgh, Kaufman Building Suite 1011, 3471 Fifth Avenue, Pittsburgh, 15213, Pennsylvania.

出版信息

J Orthop Res. 2018 Mar;36(3):847-853. doi: 10.1002/jor.23676. Epub 2017 Aug 29.

Abstract

The role of the anterolateral capsule complex in knee rotatory stability remains controversial. Therefore, the objective of this study was to determine the in situ forces in the anterior cruciate ligament (ACL), the anterolateral capsule, the lateral collateral ligament (LCL), and the forces transmitted between each region of the anterolateral capsule in response to a simulated pivot shift test. A robotic testing system applied a simulated pivot shift test continuously from full extension to 90° of flexion to intact cadaveric knees (n = 7). To determine the magnitude of the in situ forces, kinematics of the intact knee were replayed in position control mode after the following procedures were performed: (i) ACL transection; (ii) capsule separation; (iii) anterolateral capsule transection; and (iii) LCL transection. A repeated measures ANOVA was performed to compare in situ forces between each knee state (*p < 0.05). The in situ force in the ACL was significantly greater than the forces transmitted between each region of the anterolateral capsule at 5° and 15° of flexion but significantly lower at 60°, 75°, and 90° of flexion. This study demonstrated that the ACL is the primary rotatory stabilizer at low flexion angles during a simulated pivot shift test in the intact knee, but the anterolateral capsule plays an important secondary role at flexion angles greater than 60°. Furthermore, the contribution of the "anterolateral ligament" to rotatory knee stability in this study was negligible during a simulated pivot shift test. © 2017 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 36:847-853, 2018.

摘要

前外侧关节囊复合体在膝关节旋转稳定性中的作用仍存在争议。因此,本研究的目的是确定在模拟轴移试验中,前交叉韧带(ACL)、前外侧关节囊、外侧副韧带(LCL)的原位力,以及前外侧关节囊各区域之间传递的力。一个机器人测试系统对完整的尸体膝关节(n = 7)从完全伸展到屈曲90°连续施加模拟轴移试验。为了确定原位力的大小,在进行以下操作后,以位置控制模式回放完整膝关节的运动学:(i)ACL横断;(ii)关节囊分离;(iii)前外侧关节囊横断;以及(iii)LCL横断。进行重复测量方差分析以比较每个膝关节状态下的原位力(*p < 0.05)。ACL的原位力在屈曲5°和15°时显著大于前外侧关节囊各区域之间传递的力,但在屈曲60°、75°和90°时显著更低。本研究表明,在完整膝关节模拟轴移试验中,ACL在低屈曲角度时是主要的旋转稳定器,但前外侧关节囊在屈曲角度大于60°时起重要的次要作用。此外,在模拟轴移试验中,本研究中“前外侧韧带”对膝关节旋转稳定性的贡献可忽略不计。© 2017骨科学研究协会。由威利期刊公司出版。《矫形外科学研究》36:847 - 853,2018。

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