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拇指腕掌关节前斜韧带和背桡侧韧带的多向作用。

The multidirectional roles of the anterior oblique ligament and dorsoradial ligament of the thumb carpometacarpal joint.

机构信息

Institute for Biology, Engineering, and Medicine, Brown University, Providence, Rhode Island, USA.

Bioengineering Laboratory, Department of Orthopedics, The Warren Alpert Medical School of Brown University and Rhode Island Hospital, Providence, Rhode Island, USA.

出版信息

J Orthop Res. 2024 Nov;42(11):2390-2399. doi: 10.1002/jor.25922. Epub 2024 Jun 25.

Abstract

The multidirectional biomechanics of the thumb carpometacarpal (CMC) joint underlie the remarkable power and precision of the thumb. Because of the unconfined nature of thumb CMC articulation, these biomechanics are largely dictated by ligaments, notably the anterior oblique ligament (AOL) and the dorsoradial ligament (DRL). However, the rotational and translational stabilizing roles of these ligaments remain unclear, as evidenced by the variety of interventions employed to treat altered pathological CMC biomechanics. The purpose of this study was to determine the effects of sectioning the AOL (n = 8) or DRL (n = 8) on thumb CMC joint biomechanics (rotational range-of-motion [ROM] and stiffness, translational ROM) in 26 rotational directions, including internal and external rotation, and in eight translational directions. Using a robotic musculoskeletal simulation system, the first metacarpal of each specimen (n = 16) was rotated and translated with respect to the trapezium to determine biomechanics before and after ligament sectioning. We observed the greatest increase in rotational ROM and decrease in rotational stiffness in flexion directions and internal rotation following DRL transection and in extension directions following AOL transection. The greatest increase in translational ROM was in dorsal and radial directions following DRL transection and in volar directions following AOL transection. These data suggest the AOL and DRL play complementary stabilizing roles, primarily restraining translations in the direction of and rotations away from the ligament insertion sites. These findings may inform future interventions or implant designs for pathological CMC joints.

摘要

拇指腕掌(CMC)关节的多向生物力学是拇指强大而精准运动功能的基础。由于拇指 CMC 关节的自由活动性质,这些生物力学在很大程度上由韧带决定,尤其是前斜韧带(AOL)和背侧桡侧韧带(DRL)。然而,这些韧带的旋转和平移稳定作用仍不清楚,这从治疗改变的 CMC 生物力学的各种干预措施中就可以看出。本研究的目的是确定切断 AOL(n=8)或 DRL(n=8)对 26 个旋转方向(包括内旋和外旋)和 8 个平移方向拇指 CMC 关节生物力学(旋转活动范围[ROM]和刚度、平移 ROM)的影响。使用机器人运动系统,对每个标本的第一掌骨(n=16)相对于梯形骨进行旋转和平移,以确定韧带切断前后的生物力学。我们观察到 DRL 切断后在屈曲方向和内旋时旋转 ROM 增加最大,旋转刚度降低最大,而 AOL 切断后在伸展方向旋转 ROM 增加最大。DRL 切断后在背侧和桡侧方向,以及 AOL 切断后在掌侧方向平移 ROM 增加最大。这些数据表明 AOL 和 DRL 发挥互补的稳定作用,主要限制韧带插入部位的平移和旋转。这些发现可能为病理性 CMC 关节的未来干预或植入物设计提供信息。

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