Literature DB >> 24964955

Cervical ossification of the posterior longitudinal ligament: Biomechanical analysis of the influence of static and dynamic factors.

Norihiro Nishida, Tsukasa Kanchiku, Yoshihiko Kato, Yasuaki Imajo, Yuichiro Yoshida, Syunichi Kawano, Toshihiko Taguchi.   

Abstract

OBJECTIVE: Cervical myelopathy due to ossification of the posterior longitudinal ligament (OPLL) is induced by static factors, dynamic factors, or a combination of both. We used a three-dimensional finite element method (3D-FEM) to analyze the stress distributions in the cervical spinal cord under static compression, dynamic compression, or a combination of both in the context of OPLL.
METHODS: Experimental conditions were established for the 3D-FEM spinal cord, lamina, and hill-shaped OPLL. To simulate static compression of the spinal cord, anterior compression at 10, 20, and 30% of the anterior-posterior diameter of the spinal cord was applied by the OPLL. To simulate dynamic compression, the OPLL was rotated 5°, 10°, and 15° in the flexion direction. To simulate combined static and dynamic compression under 10 and 20% anterior static compression, the OPLL was rotated 5°, 10°, and 15° in the flexion direction.
RESULTS: The stress distribution in the spinal cord increased following static and dynamic compression by cervical OPLL. However, the stress distribution did not increase throughout the entire spinal cord. For combined static and dynamic compression, the stress distribution increased as the static compression increased, even for a mild range of motion (ROM).
CONCLUSION: Symptoms may appear under static or dynamic compression only. However, under static compression, the stress distribution increases with the ROM of the responsible level and this makes it very likely that symptoms will worsen. We conclude that cervical OPLL myelopathy is induced by static factors, dynamic factors, and a combination of both.

Entities:  

Keywords:  Cervical myelopathy; Dynamic factor; Finite element method; Ossification of the posterior longitudinal ligament; Static factor

Mesh:

Year:  2014        PMID: 24964955      PMCID: PMC4535801          DOI: 10.1179/2045772314Y.0000000221

Source DB:  PubMed          Journal:  J Spinal Cord Med        ISSN: 1079-0268            Impact factor:   1.985


  22 in total

1.  Gray matter of the bovine cervical spinal cord is mechanically more rigid and fragile than the white matter.

Authors:  K Ichihara; T Taguchi; Y Shimada; I Sakuramoto; S Kawano; S Kawai
Journal:  J Neurotrauma       Date:  2001-03       Impact factor: 5.269

2.  Pathogenesis of myelopathy in patients with ossification of the posterior longitudinal ligament.

Authors:  Shunji Matsunaga; Makoto Kukita; Kyoji Hayashi; Reiko Shinkura; Chihaya Koriyama; Takashi Sakou; Setsuro Komiya
Journal:  J Neurosurg       Date:  2002-03       Impact factor: 5.115

3.  Mechanism of the spinal cord injury and the cervical spondylotic myelopathy: new approach based on the mechanical features of the spinal cord white and gray matter.

Authors:  Kazuhiko Ichihara; Toshihiko Taguchi; Itsuo Sakuramoto; Shunichi Kawano; Shinya Kawai
Journal:  J Neurosurg       Date:  2003-10       Impact factor: 5.115

4.  Spinal canal size in ossification of the posterior longitudinal ligament of the cervical spine.

Authors:  Izumi Koyanagi; Hiroyuki Imamura; Shin Fujimoto; Kazutoshi Hida; Yoshinobu Iwasaki; Kiyohiro Houkin
Journal:  Surg Neurol       Date:  2004-10

5.  Biomechanical study of the effect of degree of static compression of the spinal cord in ossification of the posterior longitudinal ligament.

Authors:  Yoshihiko Kato; Tsukasa Kanchiku; Yasuaki Imajo; Kotaro Kimura; Kazuhiko Ichihara; Syunichi Kawano; Daisuke Hamanaka; Kentaro Yaji; Toshihiko Taguchi
Journal:  J Neurosurg Spine       Date:  2010-03

6.  Elasticity of the spinal cord, pia, and denticulate ligament in the dog.

Authors:  A R Tunturi
Journal:  J Neurosurg       Date:  1978-06       Impact factor: 5.115

7.  Trauma-induced myelopathy in patients with ossification of the posterior longitudinal ligament.

Authors:  Shunji Matsunaga; Takashi Sakou; Kyoji Hayashi; Yasuhiro Ishidou; Masataka Hirotsu; Setsuro Komiya
Journal:  J Neurosurg       Date:  2002-09       Impact factor: 5.115

Review 8.  Stretch-associated injury in cervical spondylotic myelopathy: new concept and review.

Authors:  Fraser C Henderson; Jennian F Geddes; Alexander R Vaccaro; Eric Woodard; K Joel Berry; Edward C Benzel
Journal:  Neurosurgery       Date:  2005-05       Impact factor: 4.654

9.  Etiology of cervical myelopathy induced by ossification of the posterior longitudinal ligament: determining the responsible level of OPLL myelopathy by correlating static compression and dynamic factors.

Authors:  Yoshikazu Azuma; Yoshihiko Kato; Toshihiko Taguchi
Journal:  J Spinal Disord Tech       Date:  2010-05

10.  Canal diameter, anteroposterior compression ratio, and spondylotic myelopathy of the cervical spine.

Authors:  H Ogino; K Tada; K Okada; K Yonenobu; T Yamamoto; K Ono; H Namiki
Journal:  Spine (Phila Pa 1976)       Date:  1983 Jan-Feb       Impact factor: 3.468

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  6 in total

1.  Cervical ossification of the posterior longitudinal ligament: factors affecting the effect of posterior decompression.

Authors:  Norihiro Nishida; Tsukasa Kanchiku; Yoshihiko Kato; Yasuaki Imajo; Hidenori Suzuki; Yuichiro Yoshida; Junji Ohgi; Xian Chen; Toshihiko Taguchi
Journal:  J Spinal Cord Med       Date:  2016-01-20       Impact factor: 1.985

2.  Comparison of clinical outcomes between laminoplasty, posterior decompression with instrumented fusion, and anterior decompression with fusion for K-line (-) cervical ossification of the posterior longitudinal ligament.

Authors:  Masao Koda; Makondo Mochizuki; Hiroaki Konishi; Atsuomi Aiba; Ryo Kadota; Taigo Inada; Koshiro Kamiya; Mitsutoshi Ota; Satoshi Maki; Kazuhisa Takahashi; Masashi Yamazaki; Chikato Mannoji; Takeo Furuya
Journal:  Eur Spine J       Date:  2016-04-13       Impact factor: 3.134

3.  The endoplasmic reticulum stress response participates in connexin 43-mediated ossification of the posterior longitudinal ligament.

Authors:  Lei Shi; Guodong Shi; Tiefeng Li; Yibin Luo; Deyu Chen; Jinhao Miao; Yu Chen
Journal:  Am J Transl Res       Date:  2019-07-15       Impact factor: 4.060

4.  Impacts of postoperative changes of segmental mobility on neurological improvement after laminoplasty for cervical ossification of the posterior longitudinal ligament.

Authors:  Atsunori Ohnishi; Hironobu Sakaura; Yamagishi Akira; Tetsuo Ohwada
Journal:  Medicine (Baltimore)       Date:  2021-08-06       Impact factor: 1.817

5.  Evaluating the differences between 1D, 2D, and 3D occupying ratios in reflecting the JOA score in cervical ossification of the posterior longitudinal ligament.

Authors:  Seong Bae An; Jong Joo Lee; Tae Woo Kim; Nam Lee; Dong Ah Shin; Seong Yi; Keung Nyun Kim; Do Heum Yoon; Yoon Ha
Journal:  Quant Imaging Med Surg       Date:  2019-06

6.  Clinical outcome of laminoplasty for cervical ossification of the posterior longitudinal ligament with K-line (-) in the neck neutral position but K-line (+) in the neck extension position: A retrospective observational study.

Authors:  Jun Li; Yan Zhang; Ning Zhang; Zheng-Kuan Xv; Hao Li; Gang Chen; Fang-Cai Li; Qi-Xin Chen
Journal:  Medicine (Baltimore)       Date:  2017-06       Impact factor: 1.889

  6 in total

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