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肩锁关节前下束在肩部抬高和水平内收过程中对关节功能起重要作用:有限元模型。

Anteroinferior bundle of the acromioclavicular ligament plays a substantial role in the joint function during shoulder elevation and horizontal adduction: a finite element model.

机构信息

Department of Orthopedic Surgery, Clinica Universidad de los Andes, Av. Plaza 2501, Las Condes, 7620157, Santiago, Chile.

Department of Orthopedic Surgery, Hospital Militar de Santiago, Santiago, Chile.

出版信息

J Orthop Surg Res. 2022 Feb 5;17(1):73. doi: 10.1186/s13018-022-02966-0.

Abstract

BACKGROUND

Postoperative acromioclavicular (AC) ligament deficiency has been identified as a common cause of failure after isolated coracoclavicular reconstruction. The two-bundle arrangement of the acromioclavicular ligament has recently been reported in histological and anatomical research. In addition, a clear structural advantage of the superoposterior bundle (SPB) over the less consistent anteroinferior bundle (AIB) was also found. However, the current understanding of the function of the acromioclavicular ligament in joint stability is based on uniaxial bone loading experiments and sequential ligament sectioning. Consequently, these rigid biomechanics models do not reproduce the coupled physiological kinematics, neither in the normal joint nor in the postoperative condition. Therefore, our goal was to build a quasi-static finite element model to study the function of the acromioclavicular ligament based on its biomechanical performance patterns using the benefits of computational models.

METHODS

A three-dimensional bone model is reconstructed using images from a healthy shoulder. The ligament structures were modeled according to the architecture and dimensions of the bone. The kinematics conditions for the shoulder girdle were determined after the osseous axes aligned to simulate the shoulder elevation in the coronal plane and horizontal adduction. Three patterns evaluated ligament function. The peak von Mises stress values were recorded using a clock model that identified the stress distribution. In addition, the variation in length and displacement of the ligament during shoulder motion were compared using a two-tailed hypotheses test. P values < 0.01 were considered statistically significant.

RESULTS

The peak von Mises stress was consistently observed in the AIB at 2:30 in coronal elevation (4.06 MPa) and horizontal adduction (2.32 MPa). Except in the position 2:00, statistically significant higher deformations were identified in the two bundles during shoulder elevation. The highest ligament displacement was observed on the Y- and Z-axes.

CONCLUSIONS

The AIB has the primary role in restricting the acromioclavicular joint during shoulder motion, even though the two bundles of the AC ligament have a complementary mode of action. During horizontal adduction, the SPB appears to prevent anterior and superior translation.

摘要

背景

术后肩锁关节(AC)韧带缺失已被确定为单纯喙锁重建后失败的常见原因。AC 韧带的两束排列最近在组织学和解剖学研究中有所报道。此外,还发现了后上束(SPB)相对于不太一致的前下束(AIB)的明显结构优势。然而,目前对 AC 韧带在关节稳定性中的功能的理解是基于单轴骨加载实验和连续韧带切断。因此,这些刚性生物力学模型既不能复制正常关节也不能复制术后条件下的关节的耦合生理运动。因此,我们的目标是构建一个准静态有限元模型,以研究 AC 韧带的功能,根据其生物力学性能模式,利用计算模型的优势。

方法

使用来自健康肩部的图像重建三维骨骼模型。根据骨骼的结构和尺寸对韧带结构进行建模。在骨骼轴线对齐以模拟冠状面肩部抬高和水平内收的情况下,确定肩带的运动学条件。评估了三种模式的韧带功能。使用时钟模型记录峰值 von Mises 应力值,以确定应力分布。此外,还使用双侧假设检验比较了肩部运动过程中韧带的长度和位移变化。p 值<0.01 被认为具有统计学意义。

结果

在冠状面抬高(4.06 MPa)和水平内收(2.32 MPa)时,AIB 在 2:30 处始终观察到峰值 von Mises 应力。除了位置 2:00 外,在肩部抬高过程中,两个束在统计学上都有更高的变形。在 Y 和 Z 轴上观察到最高的韧带位移。

结论

AIB 在肩部运动过程中对限制肩锁关节具有主要作用,尽管 AC 韧带的两束具有互补的作用模式。在水平内收时,SPB 似乎可以防止前上移位。

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