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内侧副韧带和后斜韧带的长度变化模式与其功能和手术的关系。

Length-change patterns of the medial collateral ligament and posterior oblique ligament in relation to their function and surgery.

机构信息

The Biomechanics Group, Department of Mechanical Engineering, Imperial College London, London, SW7 2AZ, UK.

Department of Orthopaedic Sports Medicine, Technical University of Munich, Hospital Rechts Der Isar, Munich, Germany.

出版信息

Knee Surg Sports Traumatol Arthrosc. 2020 Dec;28(12):3720-3732. doi: 10.1007/s00167-020-06050-0. Epub 2020 Jun 1.

Abstract

PURPOSE

To define the length-change patterns of the superficial medial collateral ligament (sMCL), deep MCL (dMCL), and posterior oblique ligament (POL) across knee flexion and with applied anterior and rotational loads, and to relate these findings to their functions in knee stability and to surgical repair or reconstruction.

METHODS

Ten cadaveric knees were mounted in a kinematics rig with loaded quadriceps, ITB, and hamstrings. Length changes of the anterior and posterior fibres of the sMCL, dMCL, and POL were recorded from 0° to 100° flexion by use of a linear displacement transducer and normalised to lengths at 0° flexion. Measurements were repeated with no external load, 90 N anterior draw force, and 5 Nm internal and 5 Nm external rotation torque applied.

RESULTS

The anterior sMCL lengthened with flexion (p < 0.01) and further lengthened by external rotation (p < 0.001). The posterior sMCL slackened with flexion (p < 0.001), but was lengthened by internal rotation (p < 0.05). External rotation lengthened the anterior dMCL fibres by 10% throughout flexion (p < 0.001). sMCL release allowed the dMCL to become taut with valgus rotation (p < 0.001). The anterior and posterior POL fibres slackened with flexion (p < 0.001), but were elongated by internal rotation (p < 0.001).

CONCLUSION

The structures of the medial ligament complex react differently to knee flexion and applied loads. Structures attaching posterior to the medial epicondyle are taut in extension, whereas the anterior sMCL, attaching anterior to the epicondyle, is tensioned during flexion. The anterior dMCL is elongated by external rotation. These data offer the basis for MCL repair and reconstruction techniques regarding graft positioning and tensioning.

摘要

目的

确定浅层内侧副韧带(sMCL)、深层 MCL(dMCL)和后斜韧带(POL)在膝关节屈伸过程中的长度变化模式,并在施加前向和旋转负荷时测量这些变化模式,将这些发现与它们在膝关节稳定性中的功能相关联,并与 MCL 修复或重建相关联。

方法

将 10 个尸体膝关节安装在带有加载股四头肌、ITB 和腘绳肌的运动学装置中。使用线性位移传感器记录 sMCL、dMCL 和 POL 的前纤维和后纤维在 0°至 100°屈曲时的长度变化,并将其归一化为 0°屈曲时的长度。在没有外部负载、90 N 前向拉力、5 Nm 内旋和 5 Nm 外旋扭矩的情况下,重复进行测量。

结果

前 sMCL 在屈曲时变长(p < 0.01),并在外旋时进一步变长(p < 0.001)。后 sMCL 在屈曲时松弛(p < 0.001),但在内旋时变长(p < 0.05)。整个屈曲过程中,dMCL 的前纤维向外旋延长 10%(p < 0.001)。释放 sMCL 可使 dMCL 在外翻旋转时变紧(p < 0.001)。前、后 POL 纤维在屈曲时松弛(p < 0.001),但在内旋时伸长(p < 0.001)。

结论

内侧韧带复合体的结构对膝关节屈伸和施加的负荷反应不同。附着于内侧上髁后方的结构在伸展时处于紧张状态,而附着于上髁前方的前 sMCL 在屈曲时处于紧张状态。dMCL 在外旋时伸长。这些数据为 MCL 修复和重建技术提供了有关移植物定位和张紧的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4908/7669796/3f260edc6077/167_2020_6050_Fig1_HTML.jpg

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