Literature DB >> 22578739

Shear strength of the human lumbar spine.

Daniel M Skrzypiec1, Anke Klein, Nicholas E Bishop, Felix Stahmer, Klaus Püschel, Helmut Seidel, Michael M Morlock, Gerd Huber.   

Abstract

BACKGROUND: Shear loading is recognised as a risk factor for lower back pain. Previous studies of shear loading have either not addressed the influence of age, bone mineral density, axial height loss due to creep or were performed on animal specimens.
METHODS: Intact human lumbar motion segments (L2-3) were tested in shear using a modified materials testing machine, while immersed in a Ringer bath at 37°C. Vertebrae were rigidly embedded in neutral posture (0° flexion) and subjected to a constant axial compression load of 500 N. Shear was applied to three groups: 'Young-No-Creep' (20-42 years), 'Young-Creep' (22-38 years, creep 1000 N for 1h) and 'Old-No-Creep' (44-64 years). Failure was induced by up to 15 mm of anterior shear displacement at a rate of 0.5mm/s. The trabecular and apophyseal joint bone mineral densities were evaluated from computed tomography images of the intact lumbar spines.
FINDINGS: Peak shear force correlated positively with trabecular bone mineral density for specimens tested without axial creep. No significant differences were observed with respect to age. During shear overload specimens increased in height in the axial direction.
INTERPRETATION: Trabecular bone mineral density can be used to predict the peak force of lumbar spine in shear in neutral posture.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2012        PMID: 22578739     DOI: 10.1016/j.clinbiomech.2012.04.003

Source DB:  PubMed          Journal:  Clin Biomech (Bristol, Avon)        ISSN: 0268-0033            Impact factor:   2.063


  2 in total

1.  Relationships of low back outcomes to internal spinal load: a prospective cohort study of professional drivers.

Authors:  Massimo Bovenzi; Marianne Schust; Gerhard Menzel; Andrea Prodi; Marcella Mauro
Journal:  Int Arch Occup Environ Health       Date:  2014-09-14       Impact factor: 3.015

2.  Failure of the human lumbar motion-segments resulting from anterior shear fatigue loading.

Authors:  Daniel M Skrzypiec; Katrin Nagel; Kay Sellenschloh; Anke Klein; Klaus Püschel; Michael M Morlock; Gerd Huber
Journal:  Ind Health       Date:  2016-01-30       Impact factor: 2.179

  2 in total

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