Nucleus pulposus deformation in response to lumbar spine lateral flexion: an in vivo MRI investigation

被引:0
作者
Peter J. Fazey
Hiroshi Takasaki
Kevin P. Singer
机构
[1] The University of Western Australia,The Centre for Musculoskeletal Studies, School of Surgery
[2] Shinoro Orthopedic,undefined
来源
European Spine Journal | 2010年 / 19卷
关键词
Lumbar spine; Lateral flexion; Nucleus pulposus; Deformation; MRI;
D O I
暂无
中图分类号
学科分类号
摘要
Whilst there are numerous studies examining aspects of sagittal plane motion in the lumbar spine, few consider coronal plane range of motion and there are no in vivo reports of nucleus pulposus (NP) displacement in lateral flexion. This study quantified in vivo NP deformation in response to side flexion in healthy volunteers. Concomitant lateral flexion and axial rotation range were also examined to evaluate the direction and extent of NP deformation. Axial T2- and coronal T1-weighted magnetic resonance images (MRI) were obtained from 21 subjects (mean age, 24.8 years) from L1 to S1 in the neutral and left laterally flexed position. Images were evaluated for intersegmental ranges of lateral flexion and axial rotation. A novel methodology derived linear pixel samples across the width of the disc from T2 images, from which the magnitude and direction of displacement of the NP was determined. This profiling technique represented the relative hydration pattern within the disc. The NP was displaced away from the direction of lateral flexion in 95/105 discs (p < 0.001). The extent of NP displacement was associated strongly with lateral flexion at L2–3 (p < 0.01). The greatest range of lateral flexion occurred at L2–3, L3–4 and L4–5. Small intersegmental ranges of axial rotation occurred at all levels, but were not associated with NP displacement. The direction of NP deformation was highly predictable in laterally flexed healthy lumbar spines; however, the magnitude of displacement was not consistent with the degree of intersegmental lateral flexion or rotation.
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页码:1115 / 1120
页数:5
相关论文
共 76 条
[1]  
Pearcy M(1984)Three-dimensional x-ray analysis of normal movement in the lumbar spine Spine 9 294-297
[2]  
Portek I(1997)Validity and reliability of measures obtained from the OSI CA-6000 Spine Motion Analyzer for lumbar spinal motion Man Ther 2 206-215
[3]  
Shepherd J(2005)Inter- and intra-rater reliability of a back range of motion instrument Arch Phys Med Rehabil 86 2347-2353
[4]  
Schuit D(1998)Three-dimensional measurement of lumbar spine kinematics for fast bowlers in cricket Clin Biomech 13 574-583
[5]  
Petersen C(1984)Axial rotation and lateral bending in the normal lumbar spine measured by three-dimensional radiography Spine 9 582-587
[6]  
Johnson R(1991)Functional radiographic diagnosis of the lumbar spine. Flexion-extension and lateral bending Spine 16 562-571
[7]  
Levine P(1998)Lumbar intradiscal pressure measured in the anterior and posterolateral annular regions during asymmetrical loading Clin Biomech 13 495-505
[8]  
Knecht H(2009)Disc prolapse: evidence of reversal with repeated extension Spine 34 344-350
[9]  
Goldberg D(1985)The influence of spine geometry on the coupling between lateral bending and axial rotation Eng Med 14 167-171
[10]  
Kachingwe AF(2007)Does the evidence support the existence of lumbar spine coupled motion? A critical review of the literature J Orthop Sports Phys Ther 37 169-178