Literature DB >> 27569760

Planar biaxial extension of the lumbar facet capsular ligament reveals significant in-plane shear forces.

Amy A Claeson1, Victor H Barocas2.   

Abstract

The lumbar facet capsular ligament (FCL) articulates with six degrees of freedom during spinal motions of flexion/extension, lateral bending, and axial rotation. The lumbar FCL is composed of highly aligned collagen fiber bundles on the posterior surface (oriented primarily laterally between the rigid articular facets) and irregularly oriented elastin on the anterior surface. Because the FCL is a capsule, it has multiple insertion sites across the lumbar facet joint, which, along with its material structure, give rise to complicated deformations in vivo. We performed planar equibiaxial mechanical tests on excised healthy cadaveric lumbar FCLs (n=6) to extract normal and shear reaction forces, and fit sample-specific two-fiber-family finite element models to the experimental force data. An eight-parameter anisotropic, hyperelastic model was used. Shear forces at maximum extension (mean values of 1.68N and 3.01N in the two directions) were of comparable magnitude to the normal forces perpendicular to the aligned collagen fiber bundles (4.67N) but smaller than normal forces in the fiber direction (16.11N). Inclusion of the experimental shear forces in the model optimization yielded fits with highly aligned fibers oriented at a specific angle across all samples, typically with one fiber population aligned nearly horizontally and the other at an oblique angle. Conversely, models fit to only the normal force data resulted in a broad range of fiber angles with low specificity. We found that shear forces generated through planar equibiaxial extension aided the model fit in describing the anisotropic nature of the FCL surface.
Copyright © 2016 Elsevier Ltd. All rights reserved.

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Year:  2016        PMID: 27569760      PMCID: PMC5154816          DOI: 10.1016/j.jmbbm.2016.08.019

Source DB:  PubMed          Journal:  J Mech Behav Biomed Mater        ISSN: 1878-0180


  38 in total

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Authors:  Carlos Bonifasi-Lista; Spencer P Lake; Michael S Small; Jeffrey A Weiss
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  9 in total

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4.  Asymmetric in-plane shear behavior of isolated cadaveric lumbar facet capsular ligaments: Implications for subject specific biomechanical models.

Authors:  Emily A Bermel; Seema Thakral; Amy A Claeson; Arin M Ellingson; Victor H Barocas
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Review 7.  Load transfer, damage, and failure in ligaments and tendons.

Authors:  Jared L Zitnay; Jeffrey A Weiss
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8.  In Situ Lumbar Facet Capsular Ligament Strains Due to Joint Pressure and Residual Strain.

Authors:  Elizabeth Gacek; Arin M Ellingson; Victor H Barocas
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9.  Through-thickness regional variation in the mechanical characteristics of the lumbar facet capsular ligament.

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  9 in total

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