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前交叉韧带、前外侧复合体和外侧半月板后根在前外侧旋转性膝关节不稳中的作用:一项生物力学研究。

Role of the Anterior Cruciate Ligament, Anterolateral Complex, and Lateral Meniscus Posterior Root in Anterolateral Rotatory Knee Instability: A Biomechanical Study.

机构信息

Klinikum rechts der Isar, Technical University of Munich, Munich, Germany.

Imperial College London, London, UK.

出版信息

Am J Sports Med. 2023 Apr;51(5):1136-1145. doi: 10.1177/03635465231161071. Epub 2023 Mar 14.

Abstract

BACKGROUND

Injuries to the anterior cruciate ligament (ACL), Kaplan fibers (KFs), anterolateral capsule/ligament (C/ALL), and lateral meniscus posterior root (LMPR) have been separately linked to anterolateral instability.

PURPOSE

To investigate the contributions of the ACL, KFs, C/ALL, and LMPR to knee stability and to measure instabilities resulting from their injury.

STUDY DESIGN

Controlled laboratory study.

METHODS

Ten fresh-frozen human knees were tested robotically to determine restraints of knee laxity at 0° to 90° of flexion. An 88-N anterior-posterior force (anterior and posterior tibial translation), 5-N·m internal-external rotation, and 8-N·m valgus-varus torque were imposed and intact kinematics recorded. The kinematics were replayed after sequentially cutting the structures (order varied) to calculate their contributions to stability. Another 10 knees were tested in a kinematics rig with optical tracking to measure instabilities after sequentially cutting the structures across 0° to 100° of flexion. One- and 2-way repeated-measures analyses of variance with Bonferroni correction were used to find significance ( < .05) for the robotic and kinematics tests.

RESULTS

The ACL was the primary restraint for anterior tibial translation; other structures were insignificant (<10% contribution). The KFs and C/ALL resisted internal rotation, reaching 44% ± 23% (mean ± SD; < .01) and 14% ± 13% ( < .05) at 90°. The LMPR resisted valgus but not internal rotation. Anterior tibial translation increased after ACL transection ( < .001) and after cutting the lateral structures from 70° to 100° ( < .05). Pivot-shift loading increased anterolateral rotational instability after ACL transection from 0° to 40° ( < .05) and further after cutting the lateral structures from 0° to 100° ( < .01).

CONCLUSION

The anterolateral complex acts as a functional unit to provide rotatory stability. The ACL is the primary stabilizer for anterior tibial translation. The KFs are the most important internal rotation restraint >30° of flexion. Combined KFs + C/ALL injury substantially increased anterolateral rotational instability while isolated injury of either did not. LMPR deficiency did not cause significant instability with the ACL intact.

CLINICAL RELEVANCE

This study is a comprehensive biomechanical sectioning investigation of the knee stability contributions of the ACL, anterolateral complex, and LMPR and the instability after their transection. The ACL is significant in controlling internal rotation only in extension. In flexion, the KFs are dominant, synergistic with the C/ALL. LMPR tear has an insignificant effect with the ACL intact.

摘要

背景

前交叉韧带(ACL)、Kaplan 纤维(KF)、前外侧囊/韧带(C/ALL)和外侧半月板后根(LMPR)的损伤分别与前外侧不稳定有关。

目的

研究 ACL、KF、C/ALL 和 LMPR 对膝关节稳定性的贡献,并测量其损伤导致的不稳定。

研究设计

对照实验室研究。

方法

对 10 个新鲜冷冻的人膝关节进行机器人测试,以确定 0°至 90°屈曲时膝关节松弛度的限制。施加 88-N 的前后向力(胫骨前后平移)、5-N·m 的内外旋和 8-N·m 的外翻内翻扭矩,并记录完整的运动学。在连续切割结构(顺序不同)后,重新播放运动学以计算它们对稳定性的贡献。另外 10 个膝关节在运动学夹具中进行了光学跟踪测试,以测量在连续切割结构(0°至 100°屈曲)后膝关节的不稳定。使用单因素和双因素重复测量方差分析(Bonferroni 校正)来确定机器人和运动学测试的显著性(<0.05)。

结果

ACL 是胫骨前向平移的主要限制因素;其他结构无显著影响(<10%)。KF 和 C/ALL 抵抗内旋,在 90°时达到 44%±23%(均值±标准差;<0.01)和 14%±13%(<0.05)。LMPR 抵抗外翻但不抵抗内旋。ACL 切断后胫骨前向平移增加(<0.001),在 70°至 100°时切断外侧结构后增加(<0.05)。ACL 切断后,前外侧旋转不稳定增加(<0.05),从 0°到 40°进一步增加(<0.05),然后从 0°到 100°进一步增加(<0.01)。

结论

前外侧复合体作为一个功能单位提供旋转稳定性。ACL 是胫骨前向平移的主要稳定因素。KF 在 30°以上的屈曲时是最重要的内旋限制因素。KF+C/ALL 联合损伤显著增加前外侧旋转不稳定,而单独损伤任何一个都不会。ACL 完整时,LMPR 缺失不会导致明显的不稳定。

临床相关性

本研究是对 ACL、前外侧复合体和 LMPR 对膝关节稳定性的贡献以及它们切断后的不稳定进行的全面生物力学分段研究。ACL 在伸展时仅对控制内旋有重要作用。在屈曲时,KF 是主要的,与 C/ALL 协同作用。ACL 完整时,LMPR 撕裂的影响不大。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f8b1/10068405/7737c7a16adb/10.1177_03635465231161071-fig1.jpg

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