Literature DB >> 17549527

Kinematics of the lumbar spine in trunk rotation: in vivo three-dimensional analysis using magnetic resonance imaging.

Ryutaro Fujii1, Hironobu Sakaura, Yoshihiro Mukai, Noboru Hosono, Takahiro Ishii, Motoki Iwasaki, Hideki Yoshikawa, Kazuomi Sugamoto.   

Abstract

In vivo three-dimensional (3D) kinematics of the lumbar spine has not been well evaluated by the conventional methods because of their methodological limitations, while 3D intervertebral motions have been quantitatively determined by cadaver studies. We thus developed a novel 3D analyzing system for the relative motions of individual vertebrae using 3D magnetic resonance imaging (MRI) and analyzed in vivo 3D intervertebral motions of the lumbar spine during trunk rotation. Ten healthy volunteers underwent 3D MRI of the lumbar spine in nine positions with 15 degrees increments during trunk rotation (0 degrees , 15 degrees , 30 degrees , 45 degrees , and maximum). Relative motions of the lumbar spine were calculated by automatically superimposing a segmented 3D MRI of the vertebra in the neutral position over images of each position using the voxel-based registration method. These 3D motions were represented with 6 degrees of freedom by Euler angles and translations on the coordinate system. The mean axial rotation of ten healthy volunteers of each lumbar spinal segment in 45 degrees trunk rotation to each side ranged from 1.2 degrees to 1.7 degrees . Coupled flexion with axial rotation was observed at the segments from L1/2 to L5/S1. Coupled lateral bending of the segments from L1/2 to L4/5 was in the opposite direction of the trunk rotation, while that of T12/L1 and L5/S1 was in the same direction. The direction of the coupled lateral bending in the present study was different from that in the previous cadaver study only at L4/5. This difference might result from the non-load state of the supine position in the current study and/or the non-physiological state in the cadaver study. Our system has two limitations: (1) the study was conducted with each volunteer in the supine position, and (2) because the rotation device regulated trunk rotation, trunk rotation might not have been physiological. In vivo 3D intervertebral motions of the lumbar spine during trunk rotation were evaluated using our novel motion analysis system. These data may be useful for the optimal orthopaedic management of lumbar spinal disorders.

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Year:  2007        PMID: 17549527      PMCID: PMC2223353          DOI: 10.1007/s00586-007-0373-3

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


  13 in total

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2.  Assessment of spinal kinematics using open interventional magnetic resonance imaging.

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4.  Using cineradiography for continuous dynamic-motion analysis of the lumbar spine.

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5.  The use of interventional open MRI to assess the kinematics of the lumbar spine in patients with spondylolisthesis.

Authors:  Alison H McGregor; Lisa Anderton; Wady M W Gedroyc; Jonathon Johnson; Sean P F Hughes
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6.  Kinematics of the cervical spine in lateral bending: in vivo three-dimensional analysis.

Authors:  Takahiro Ishii; Yoshihiro Mukai; Noboru Hosono; Hironobu Sakaura; Ryutaro Fujii; Yoshikazu Nakajima; Shinichi Tamura; Motoki Iwasaki; Hideki Yoshikawa; Kazuomi Sugamoto
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7.  Three-dimensional movements of the whole lumbar spine and lumbosacral joint.

Authors:  I Yamamoto; M M Panjabi; T Crisco; T Oxland
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8.  How does posture affect coupling in the lumbar spine?

Authors:  M Panjabi; I Yamamoto; T Oxland; J Crisco
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9.  Kinematics of the upper cervical spine in rotation: in vivo three-dimensional analysis.

Authors:  Takahiro Ishii; Yoshihiro Mukai; Noboru Hosono; Hironobu Sakaura; Yoshikazu Nakajima; Yoshinobu Sato; Kazuomi Sugamoto; Hideki Yoshikawa
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10.  Mechanical behavior of the human lumbar and lumbosacral spine as shown by three-dimensional load-displacement curves.

Authors:  M M Panjabi; T R Oxland; I Yamamoto; J J Crisco
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  19 in total

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Authors:  Guoan Li; Shaobai Wang; Peter Passias; Qun Xia; Gang Li; Kirkham Wood
Journal:  Eur Spine J       Date:  2009-03-20       Impact factor: 3.134

6.  A phased rehabilitation protocol for athletes with lumbar intervertebral disc herniation.

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7.  Development and Validation of a Musculoskeletal Model of the Fully Articulated Thoracolumbar Spine and Rib Cage.

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8.  Investigation of coupled bending of the lumbar spine during dynamic axial rotation of the body.

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Journal:  Eur Spine J       Date:  2013-04-28       Impact factor: 3.134

9.  Functional and quantitative magnetic resonance myelography of symptomatic stenoses of the lumbar spine.

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10.  Validity of the Digital Inclinometer and iPhone When Measuring Thoracic Spine Rotation.

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