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腕横韧带的掌侧/背侧压缩力学性能。

Volar/dorsal compressive mechanical behavior of the transverse carpal ligament.

机构信息

Department of Orthopaedics and Rehabilitation, University of Iowa, Iowa City, IA, USA.

出版信息

J Biomech. 2012 Apr 30;45(7):1180-5. doi: 10.1016/j.jbiomech.2012.01.048. Epub 2012 Feb 28.

DOI:10.1016/j.jbiomech.2012.01.048
PMID:22381735
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3327765/
Abstract

Mechanical insult to the median nerve caused by contact with the digital flexor tendons and/or carpal tunnel boundaries may contribute to the development of carpal tunnel syndrome. Since the transverse carpal ligament (TCL) comprises the volar boundary of the carpal tunnel, its mechanics in part govern the potential insult to the median nerve. Using unconfined compression testing in combination with a finite element-based optimization process, nominal stiffness measurements and first-order Ogden hyperelastic material coefficients (μ and α ) were determined to describe the volar/dorsal compressive behavior of the TCL. Five different locations on the TCL were tested, three of which were deep to the origins of the thenar and hypothenar muscles. The average (± standard deviation) low-strain and high-strain TCL stiffness values in compression sites outside the muscle attachment region were 3.6 N/mm (±2.7) and 28.0 N/mm (±20.2), respectively. The average stiffness values at compression sites with muscle attachments were notably lower, with low-strain and high-strain stiffness values of 1.2 N/mm (±0.5) and 9.7 N/mm (±4.8), respectively. The average Ogden coefficients for the muscle attachment region were 51.6 kPa (±16.5) for μ and 16.5 (±2.0) for α, while coefficients for the non-muscle attachment region were 117.8 kPa (±86.8) for μ and 17.2 (±1.6) for α. These TCL compressive mechanical properties can help inprove computational models, which can be used to provide insight into the mechanisms of median nerve injury leading to the onset of carpal tunnel syndrome symptoms.

摘要

正中神经受到来自屈肌腱和/或腕管边界的接触性机械性损伤可能导致腕管综合征的发生。由于腕横韧带(TCL)构成了腕管的掌侧边界,其力学特性在一定程度上决定了正中神经受到损伤的可能性。本研究采用无约束压缩测试与基于有限元的优化过程相结合的方法,确定了名义刚度测量值和一阶Ogden 超弹性材料系数(μ 和 α ),以描述 TCL 的掌侧/背侧压缩行为。测试了 TCL 的五个不同部位,其中三个部位位于大鱼际和小鱼际肌肉的起点深部。在肌肉附着区域以外的压缩部位,TCL 的低应变和高应变的平均(±标准差)刚度值分别为 3.6 N/mm(±2.7)和 28.0 N/mm(±20.2)。在有肌肉附着的压缩部位,平均刚度值明显较低,低应变和高应变的刚度值分别为 1.2 N/mm(±0.5)和 9.7 N/mm(±4.8)。肌肉附着区域的平均 Ogden 系数为 μ 51.6 kPa(±16.5)和 α 16.5(±2.0),而非肌肉附着区域的系数分别为 μ 117.8 kPa(±86.8)和 α 17.2(±1.6)。这些 TCL 压缩力学特性有助于改进计算模型,为理解导致腕管综合征症状发生的正中神经损伤机制提供帮助。

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引用本文的文献

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Finite element analysis for transverse carpal ligament tensile strain and carpal arch area.腕横韧带拉伸应变和腕管面积的有限元分析
J Biomech. 2018 May 17;73:210-216. doi: 10.1016/j.jbiomech.2018.04.005. Epub 2018 Apr 12.
2
Biomechanical role of the transverse carpal ligament in carpal tunnel compliance.腕横韧带在腕管顺应性中的生物力学作用。
J Wrist Surg. 2014 Nov;3(4):227-32. doi: 10.1055/s-0034-1394136.
3
In vivo study of transverse carpal ligament stiffness using acoustic radiation force impulse (ARFI) imaging.基于声辐射力脉冲(ARFI)成像的腕横韧带刚性的体内研究。

本文引用的文献

1
Transverse mechanical properties of collagen fibers from nanoindentation.从纳米压痕测试中获取胶原纤维的横向力学性能。
J Mater Sci Mater Med. 2011 Jun;22(6):1375-81. doi: 10.1007/s10856-011-4320-9. Epub 2011 May 10.
2
Carpal tunnel and transverse carpal ligament stiffness with changes in wrist posture and indenter size.腕管和横腕韧带的僵硬与手腕姿势和压头大小的变化有关。
J Orthop Res. 2011 Nov;29(11):1682-7. doi: 10.1002/jor.21442. Epub 2011 Apr 25.
3
Apparent transverse compressive material properties of the digital flexor tendons and the median nerve in the carpal tunnel.
PLoS One. 2013 Jul 5;8(7):e68569. doi: 10.1371/journal.pone.0068569. Print 2013.
4
Biomechanical interaction between the transverse carpal ligament and the thenar muscles.腕横韧带与大鱼际肌的生物力学相互作用。
J Appl Physiol (1985). 2013 Jan 15;114(2):225-9. doi: 10.1152/japplphysiol.01273.2012. Epub 2012 Dec 6.
腕管内指屈肌腱和正中神经的表观横向压缩力学性能。
J Biomech. 2011 Mar 15;44(5):863-8. doi: 10.1016/j.jbiomech.2010.12.005. Epub 2010 Dec 30.
4
Biomechanics of the transverse carpal arch under carpal bone loading.腕骨负荷下腕横弓的生物力学
Clin Biomech (Bristol). 2010 Oct;25(8):776-80. doi: 10.1016/j.clinbiomech.2010.05.011. Epub 2010 Jun 26.
5
Comparison of transverse carpal ligament and flexor retinaculum terminology for the wrist.腕部腕横韧带和屈肌支持带术语的比较。
J Hand Surg Am. 2010 May;35(5):746-53. doi: 10.1016/j.jhsa.2010.01.031. Epub 2010 Mar 25.
6
Comparative study of carpal tunnel compliance in the human, dog, rabbit, and rat.比较研究人类、狗、兔和鼠腕管顺应性。
J Orthop Res. 2010 May;28(5):652-6. doi: 10.1002/jor.21037.
7
The role of the transverse carpal ligament in carpal stability: an in vitro study.腕横韧带在腕关节稳定性中的作用:一项体外研究。
Acta Orthop Belg. 2009 Aug;75(4):467-71.
8
Carpal tunnel expansion by palmarly directed forces to the transverse carpal ligament.向腕横韧带施加掌侧方向的力以扩张腕管。
J Biomech Eng. 2009 Aug;131(8):081011. doi: 10.1115/1.3148469.
9
Effects of dividing the transverse carpal ligament on the mechanical behavior of the carpal bones under axial compressive load: a finite element study.横腕韧带切开对轴向压缩载荷下腕骨力学行为的影响:一项有限元研究。
Med Eng Phys. 2009 Mar;31(2):188-94. doi: 10.1016/j.medengphy.2008.08.001. Epub 2008 Sep 18.
10
The quantification of the origin area of the deep forearm musculature on the interosseous ligament.前臂深层肌肉在骨间韧带上的起始区域的量化。
Bull NYU Hosp Jt Dis. 2008;66(1):9-13.