Literature DB >> 31997017

Segmental coupling effects during correction of three-dimensional lumbar deformity using lateral lumbar interbody fusion.

Hiroto Yamaguchi1,2, Hidetoshi Nojiri3, Kei Miyagawa1, Nozomu Inoue4, Kazuo Kaneko1.   

Abstract

PURPOSE: Lateral lumbar interbody fusion (LLIF) has been performed to correct spinal deformity associated with lumbar degenerative disease. Although its usefulness has been studied, there are no reports of quantitative evaluation in three dimensions. Our purpose is to quantitate 3D deformity of the patients with lumbar degenerative disease and correction of the deformity by LLIF using patient-specific 3D CT models.
METHODS: We measured the disc height and 3D alignment of the lumbar spine in 28 patients with degenerative disease undergoing LLIF using patient-specific 3D CT models created preoperatively and 3 months after surgery. The 3D alignment was calculated as wedge, lordosis and axial rotation angles at each motion segment. The disc height and the rotational angles were compared between before and after LLIF.
RESULTS: A strong positive correlation was found between the wedge angle and the axial rotation angles (r = 0.718, P < 0.001) in the patients with lumbar degenerative disease preoperatively. The wedge and axial rotation angles decreased after surgery (P < 0.001 and P < 0.001, respectively). A positive correlation was found between the corrected wedge angle and the corrected axial rotation angle (r = 0.46, P < 0.001).
CONCLUSION: The present study demonstrated positive correlations between the wedge deformity and the axial rotational deformity in the patients with lumbar degenerative disease. The axial rotational deformity was simultaneously corrected with LLIF only by leveling the intervertebral wedge deformity via cage insertion without additional correction procedure. These slides can be retrieved under Electronic Supplementary Material.

Entities:  

Keywords:  3D alignment; Degenerative lumbar scoliosis; In vivo 3D CT analysis; Lateral lumbar interbody fusion (LLIF); Lumbar intervertebral deformity

Mesh:

Year:  2020        PMID: 31997017     DOI: 10.1007/s00586-020-06310-0

Source DB:  PubMed          Journal:  Eur Spine J        ISSN: 0940-6719            Impact factor:   3.134


  19 in total

1.  Effect of indirect neural decompression through oblique lateral interbody fusion for degenerative lumbar disease.

Authors:  Shunsuke Fujibayashi; Richard A Hynes; Bungo Otsuki; Hiroaki Kimura; Mitsuru Takemoto; Shuichi Matsuda
Journal:  Spine (Phila Pa 1976)       Date:  2015-02-01       Impact factor: 3.468

2.  A radiographic assessment of the ability of the extreme lateral interbody fusion procedure to indirectly decompress the neural elements.

Authors:  Leonardo Oliveira; Luis Marchi; Etevaldo Coutinho; Luiz Pimenta
Journal:  Spine (Phila Pa 1976)       Date:  2010-12-15       Impact factor: 3.468

3.  Evaluation of indirect decompression of the lumbar spinal canal following minimally invasive lateral transpsoas interbody fusion: radiographic and outcome analysis.

Authors:  E H Elowitz; D S Yanni; M Chwajol; R M Starke; N I Perin
Journal:  Minim Invasive Neurosurg       Date:  2012-01-25

Review 4.  Indirect decompression in spinal surgery.

Authors:  Hiroyuki Yoshihara
Journal:  J Clin Neurosci       Date:  2017-07-05       Impact factor: 1.961

Review 5.  Lateral transpsoas lumbar interbody fusion: outcomes and deformity correction.

Authors:  Nader S Dahdaleh; Zachary A Smith; Laura A Snyder; Randall B Graham; Richard G Fessler; Tyler R Koski
Journal:  Neurosurg Clin N Am       Date:  2014-04       Impact factor: 2.509

6.  A study of vertebral rotation.

Authors:  C L Nash; J H Moe
Journal:  J Bone Joint Surg Am       Date:  1969-03       Impact factor: 5.284

7.  An in vivo study of the axial rotation of the human thoracolumbar spine.

Authors:  G G Gregersen; D B Lucas
Journal:  J Bone Joint Surg Am       Date:  1967-03       Impact factor: 5.284

8.  Clinical and stereoradiographic analysis of adult spinal deformity with and without rotatory subluxation.

Authors:  E Ferrero; R Lafage; V Challier; B Diebo; P Guigui; K Mazda; F Schwab; W Skalli; V Lafage
Journal:  Orthop Traumatol Surg Res       Date:  2015-07-17       Impact factor: 2.256

9.  Characterization of articulation of the lumbar facets in the human cadaveric spine using a facet-based coordinate system.

Authors:  Mithulan Jegapragasan; Daniel J Cook; Dave A Gladowski; Adam S Kanter; Boyle C Cheng
Journal:  Spine J       Date:  2011-04       Impact factor: 4.166

10.  The Influence of Lordotic cages on creating Sagittal Balance in the CMIS treatment of Adult Spinal Deformity.

Authors:  Neel Anand; Ryan B Cohen; Jason Cohen; Babak Kahndehroo; Sheila Kahwaty; Eli Baron
Journal:  Int J Spine Surg       Date:  2017-06-30
View more
  2 in total

1.  Localization of the Lumbar Plexus in the Psoas Muscle: Considerations for Avoiding Lumbar Plexus Injury during the Transpsoas Approach.

Authors:  Hidetoshi Nojiri; Takatoshi Okuda; Kei Miyagawa; Nozomu Kobayashi; Tatsuya Sato; Takeshi Hara; Yukoh Ohara; Hiroyuki Kudo; Tatsuo Sakai; Kazuo Kaneko
Journal:  Spine Surg Relat Res       Date:  2020-08-20

2.  Analysis of rotational deformity correction by lateral lumbar interbody fusion with two-staged anterior-posterior combined corrective fusion surgery for adult degenerative kyphoscoliosis.

Authors:  Tetsutaro Abe; Masashi Miyazaki; Shozo Kanezaki; Masashi Hirakawa; Tatsuya Iwasaki; Hiroshi Tsumura
Journal:  Medicine (Baltimore)       Date:  2022-09-16       Impact factor: 1.817

  2 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.