Literature DB >> 12571486

Finite element analysis of cervical spinal instability under physiologic loading.

Hong-Wan Ng1, Ee-Chon Teo, Kim-Kheng Lee, Tian-Xia Qiu.   

Abstract

The definition of cervical spinal instability has been a subject of considerable debate and has not been clearly established. Stability of the motion segment is provided by ligaments, facet joints, and disc, which restrict range of movement. Moreover, permanent damage to one of the stabilizing structures alters the roles of the other two. Although many studies have been conducted to investigate cervical injuries, to date there are only limited finite element investigations reported in the literature on the biomechanical response of the cervical spine in these respects. A comprehensive, geometric, nonlinear finite element model of the lower cervical spine has been successfully developed and validated under compression, anterior-posterior shear, and sagittal moments. Injury studies were done by varying each spinal component independently from the validated model. Seven analyses were conducted for each injury simulation (model without ligaments, model without facets, model without facets and ligaments, and model without disc nucleus). Results indicate that the role of the ligaments in resisting anterior and posterior shear and flexion and axial rotation moments is important. Under other physiologic loading (anterior-posterior shear, flexion-extension, lateral bending, and axial rotation), the disc nucleus is responsible for the initial stiffness of the cervical spine. The results also highlight the importance of facets in resisting compression at higher loads, anterior shear, extension, lateral bending, and torsion. The results provide new insight through injury simulation into the role of the various spinal components in providing cervical spinal stability. These findings seem to correlate well with experimental results as well as with common clinical experience.

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Year:  2003        PMID: 12571486     DOI: 10.1097/00024720-200302000-00010

Source DB:  PubMed          Journal:  J Spinal Disord Tech        ISSN: 1536-0652


  7 in total

1.  Do Modic changes affect cervical sagittal alignment and motion in symptomatic patients?

Authors:  Tong Tong; Xian-Da Gao; Jia Li; Jing-Tao Zhang; Rui-Jie Niu; Zhao Liu; Yong Shen
Journal:  Eur Spine J       Date:  2017-04-18       Impact factor: 3.134

Review 2.  Spinal facet joint biomechanics and mechanotransduction in normal, injury and degenerative conditions.

Authors:  Nicolas V Jaumard; William C Welch; Beth A Winkelstein
Journal:  J Biomech Eng       Date:  2011-07       Impact factor: 2.097

3.  Comparison of biomechanical properties of single- and two-segment fusion for Denis type B spinal fractures.

Authors:  Yun-shan Su; Dong Ren; Peng-cheng Wang
Journal:  Orthop Surg       Date:  2013-11       Impact factor: 2.071

4.  Biomechanical effects of different lateral mass injury patterns on subaxial cervical fracture dislocations after anterior cervical surgery: a finite element study.

Authors:  Junsong Yang; Qingda Li; Peng Liu; Liang Yan; Tuanjiang Liu; Jijun Liu; Qinpeng Zhao; Baorong He; He Zhao; Bing Qian; Yuanting Zhao; Dingjun Hao
Journal:  Am J Transl Res       Date:  2022-09-15       Impact factor: 3.940

5.  Post-laminectomy kyphosis in patients with cervical ossification of the posterior longitudinal ligament : does it cause neurological deterioration?

Authors:  Won-Sang Cho; Chun Kee Chung; Tae-Ahn Jahng; Hyun Jib Kim
Journal:  J Korean Neurosurg Soc       Date:  2008-06-20

6.  Clinical Predictors of Surgical Outcomes and Imaging Features in Single Segmental Cervical Spondylotic Myelopathy with Lower Cervical Instability.

Authors:  Kuan Lu; Xianda Gao; Tong Tong; Dechao Miao; Wenyuan Ding; Yong Shen
Journal:  Med Sci Monit       Date:  2017-07-30

7.  Three-dimensional analysis of cervical spine segmental motion in rotation.

Authors:  Xiong Zhao; Zi-Xiang Wu; Bao-Jun Han; Ya-Bo Yan; Yang Zhang; Wei Lei
Journal:  Arch Med Sci       Date:  2013-05-27       Impact factor: 3.318

  7 in total

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