Literature DB >> 20887032

The micromechanical role of the annulus fibrosus components under physiological loading of the lumbar spine.

Ugur M Ayturk1, Jose J Garcia, Christian M Puttlitz.   

Abstract

To date, studies that have investigated the kinematics of spinal motion segments have largely focused on the contributions that the spinal ligaments play in the resultant motion patterns. However, the specific roles played by intervertebral disk components, in particular the annulus fibrosus, with respect to global motion is not well understood in spite of the relatively large literature base with respect to the local ex vivo mechanical properties of the tissue. The primary objective of this study was to implement the nonlinear and orthotropic mechanical behavior of the annulus fibrosus in a finite element model of an L4/L5 functional spinal unit in the form of a strain energy potential where the individual mechanical contributions of the ground substance and fibers were explicitly defined. The model was validated biomechanically under pure moment loading to ensure that the individual role of each soft tissue structure during load bearing was consistent throughout the physiologically relevant loading range. The fibrous network of the annulus was found to play critical roles in limiting the magnitude of the neutral zone and determining the stiffness of the elastic zone. Under flexion, lateral bending, and axial rotation, the collagen fibers were observed to bear the majority of the load applied to the annulus fibrosus, especially in radially peripheral regions where disk bulging occurred. For the first time, our data explicitly demonstrate that the exact fiber recruitment sequence is critically important for establishing the range of motion and neutral zone magnitudes of lumbar spinal motion segments.

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Year:  2010        PMID: 20887032     DOI: 10.1115/1.4001032

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  6 in total

1.  Elastic resistance of the spine: Why does motion preservation surgery almost fail?

Authors:  Alessandro Landi
Journal:  World J Clin Cases       Date:  2013-07-16       Impact factor: 1.337

2.  Needle puncture in rabbit functional spinal units alters rotational biomechanics.

Authors:  Robert A Hartman; Kevin M Bell; Bichun Quan; Yao Nuzhao; Gwendolyn A Sowa; James D Kang
Journal:  J Spinal Disord Tech       Date:  2015-04

3.  Sheep cervical spine biomechanics: a finite element study.

Authors:  Nicole A DeVries Watson; Anup A Gandhi; Doug C Fredericks; Joseph D Smucker; Nicole M Grosland
Journal:  Iowa Orthop J       Date:  2014

4.  Biomechanical study of oblique lumbar interbody fusion (OLIF) augmented with different types of instrumentation: a finite element analysis.

Authors:  Xin-Yi Cai; Han-Ming Bian; Chao Chen; Xin-Long Ma; Qiang Yang
Journal:  J Orthop Surg Res       Date:  2022-05-14       Impact factor: 2.677

5.  Biomechanical response of lumbar facet joints under follower preload: a finite element study.

Authors:  Cheng-Fei Du; Nan Yang; Jun-Chao Guo; Yun-Peng Huang; Chunqiu Zhang
Journal:  BMC Musculoskelet Disord       Date:  2016-03-15       Impact factor: 2.362

6.  Biomechanical Effect of L4 -L5 Intervertebral Disc Degeneration on the Lower Lumbar Spine: A Finite Element Study.

Authors:  Xin-Yi Cai; Meng-Si Sun; Yun-Peng Huang; Zi-Xuan Liu; Chun-Jie Liu; Cheng-Fei Du; Qiang Yang
Journal:  Orthop Surg       Date:  2020-05-31       Impact factor: 2.071

  6 in total

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