Literature DB >> 28965042

Effects of axial compression and rotation angle on torsional mechanical properties of bovine caudal discs.

Semih E Bezci1, Eric O Klineberg2, Grace D O'Connell3.   

Abstract

The intervertebral disc is a complex joint that acts to support and transfer large multidirectional loads, including combinations of compression, tension, bending, and torsion. Direct comparison of disc torsion mechanics across studies has been difficult, due to differences in loading protocols. In particular, the lack of information on the combined effect of multiple parameters, including axial compressive preload and rotation angle, makes it difficult to discern whether disc torsion mechanics are sensitive to the variables used in the test protocol. Thus, the objective of this study was to evaluate compression-torsion mechanical behavior of healthy discs under a wide range of rotation angles. Bovine caudal discs were tested under a range of compressive preloads (150, 300, 600, and 900N) and rotation angles (± 1, 2, 3, 4, or 5°) applied at a rate of 0.5°/s. Torque-rotation data were used to characterize shape changes in the hysteresis loop and to calculate disc torsion mechanics. Torsional mechanical properties were described using multivariate regression models. The rate of change in torsional mechanical properties with compression depended on the maximum rotation angle applied, indicating a strong interaction between compressive stress and maximum rotation angle. The regression models reported here can be used to predict disc torsion mechanics under axial compression for a given disc geometry, compressive preload, and rotation angle.
Copyright © 2017 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Axial rotation; Biomechanics; Compression; Disc geometry; Intervertebral disc; Structure-function; Torsion

Mesh:

Year:  2017        PMID: 28965042     DOI: 10.1016/j.jmbbm.2017.09.022

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


  6 in total

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Authors:  Olivia M Torre; Thomas W Evashwick-Rogler; Phillip Nasser; James C Iatridis
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2.  Effects of Level, Loading Rate, Injury and Repair on Biomechanical Response of Ovine Cervical Intervertebral Discs.

Authors:  Rose G Long; Ivan Zderic; Boyko Gueorguiev; Stephen J Ferguson; Mauro Alini; Sibylle Grad; James C Iatridis
Journal:  Ann Biomed Eng       Date:  2018-06-20       Impact factor: 3.934

3.  Multi-laminate annulus fibrosus repair scaffold with an interlamellar matrix enhances impact resistance, prevents herniation and assists in restoring spinal kinematics.

Authors:  Ryan Borem; Allison Madeline; Ricardo Vela; Sanjitpal Gill; Jeremy Mercuri
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4.  Radial variation in biochemical composition of the bovine caudal intervertebral disc.

Authors:  Semih E Bezci; Benjamin Werbner; Minhao Zhou; Katerina G Malollari; Gabriel Dorlhiac; Carlo Carraro; Aaron Streets; Grace D O'Connell
Journal:  JOR Spine       Date:  2019-09-02

Review 5.  From Mechanobiology to Mechanical Repair Strategies: A Bibliometric Analysis of Biomechanical Studies of Intervertebral Discs.

Authors:  Dian Zhang; Minshan Feng; Wei Liu; Jie Yu; Xu Wei; Kexin Yang; Jiawen Zhan; Wei Peng; Mingyi Luo; Tao Han; Zhefeng Jin; He Yin; Kai Sun; Xunlu Yin; Liguo Zhu
Journal:  J Pain Res       Date:  2022-07-28       Impact factor: 2.832

6.  Finite element analysis after rod fracture of the spinal hybrid elastic rod system.

Authors:  Jui-Yang Hsieh; Chen-Sheng Chen; Shao-Ming Chuang; Jyh-Horng Wang; Po-Quang Chen; Yi-You Huang
Journal:  BMC Musculoskelet Disord       Date:  2022-08-26       Impact factor: 2.562

  6 in total

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