Skip to main content
Top
Published in: European Spine Journal 7/2011

01-07-2011 | Original Article

Geometry of the vertebral bodies and the intervertebral discs in lumbar segments adjacent to spondylolysis and spondylolisthesis: pilot study

Authors: Ella Been, Ling Li, David J. Hunter, Leonid Kalichman

Published in: European Spine Journal | Issue 7/2011

Login to get access

Abstract

The objective is to evaluate the geometric parameters of vertebral bodies and intervertebral discs in spinal segments adjacent to spondylolysis and spondylolisthesis. This pilot cross-sectional study was an ancillary project to the Framingham Heart Study. The presence of spondylolysis and spondylolisthesis as well as measurements of spinal geometry were identified on CT imaging of 188 individuals. Spinal geometry measurements included lordosis angle, wedging of each lumbar vertebra and intervertebral disc. Last measurements were used to calculate ΣB, the sum of the lumbar L1–L5 body wedge angles; and ΣD, the sum of the lumbar L1–L5 intervertebral disc angles. Using Wilcoxon–Mann–Whitney test we compared the geometric parameters between individuals with no pathology and ones with spondylolysis (with no listhesis) at L5 vertebra, ones with isthmic spondylolisthesis at L5–S1 level, and ones with degenerative spondylolisthesis at L5–S1 level. Spinal geometry in individuals with spondylolysis or listhesis at L5 shows three major patterns: In spondylolysis without listhesis, spinal morphology is similar to that of healthy individuals; In isthmic spondylolisthesis there is high lordosis angle, high L5 vertebral body wedging and very high L4–5 disc wedging; In degenerative spondylolisthesis, spinal morphology shows more lordotic wedging of the L5 vertebral body, and less lordotic wedging of intervertebral discs. In conclusion, there are unique geometrical features of the vertebrae and discs in spondylolysis or listhesis. These findings need to be reproduced in larger scale study.
Literature
1.
go back to reference Izumi Y, Kumano K (2001) Analysis of sagittal lumbar alignment before and after posterior instrumentation: risk factor for adjacent unfused segment. Eur J Orthop Surg Traumatol 1:9–13CrossRef Izumi Y, Kumano K (2001) Analysis of sagittal lumbar alignment before and after posterior instrumentation: risk factor for adjacent unfused segment. Eur J Orthop Surg Traumatol 1:9–13CrossRef
2.
go back to reference Lazennec JY, Ramare S, Arafati N, Laudet CG, Gorin M, Roger B, Hansen S, Saillant G, Maurs L, Trabelsi R (2000) Sagittal alignment in lumbosacral fusion: relations between radiological parameters and pain. Eur Spine J 9:47–55PubMedCrossRef Lazennec JY, Ramare S, Arafati N, Laudet CG, Gorin M, Roger B, Hansen S, Saillant G, Maurs L, Trabelsi R (2000) Sagittal alignment in lumbosacral fusion: relations between radiological parameters and pain. Eur Spine J 9:47–55PubMedCrossRef
3.
go back to reference Boulay C, Tardieu C, Hecquet J, Benaim C, Mouilleseaux B, Marty C, Prat-Pradal D, Legaye J, Duval-Beaupere G, Pelissier J (2006) Sagittal alignment of spine and pelvis regulated by pelvic incidence: standard values and prediction of lordosis. Eur Spine J 15:415–422. doi:10.1007/s00586-005-0984-5 PubMedCrossRef Boulay C, Tardieu C, Hecquet J, Benaim C, Mouilleseaux B, Marty C, Prat-Pradal D, Legaye J, Duval-Beaupere G, Pelissier J (2006) Sagittal alignment of spine and pelvis regulated by pelvic incidence: standard values and prediction of lordosis. Eur Spine J 15:415–422. doi:10.​1007/​s00586-005-0984-5 PubMedCrossRef
4.
go back to reference Meyerding HW (1932) Spondyloptosis. Surg Gynaecol Obstet 54:371–377 Meyerding HW (1932) Spondyloptosis. Surg Gynaecol Obstet 54:371–377
5.
go back to reference Vialle R, Levassor N, Rillardon L, Templier A, Skalli W, Guigui P (2005) Radiographic analysis of the sagittal alignment and balance of the spine in asymptomatic subjects. J Bone Joint Surg Am 87:260–267. doi:10.2106/JBJS.D.02043 PubMedCrossRef Vialle R, Levassor N, Rillardon L, Templier A, Skalli W, Guigui P (2005) Radiographic analysis of the sagittal alignment and balance of the spine in asymptomatic subjects. J Bone Joint Surg Am 87:260–267. doi:10.​2106/​JBJS.​D.​02043 PubMedCrossRef
6.
go back to reference Mac-Thiong JM, Wang Z, de Guise JA, Labelle H (2008) Postural model of sagittal spino-pelvic alignment and its relevance for lumbosacral developmental spondylolisthesis. Spine (Phila Pa 1976) 33:2316–2325. doi:10.1097/BRS.0b013e318186b236 CrossRef Mac-Thiong JM, Wang Z, de Guise JA, Labelle H (2008) Postural model of sagittal spino-pelvic alignment and its relevance for lumbosacral developmental spondylolisthesis. Spine (Phila Pa 1976) 33:2316–2325. doi:10.​1097/​BRS.​0b013e318186b236​ CrossRef
8.
go back to reference Rosenberg NJ (1975) Degenerative spondylolisthesis. Predisposing factors. J Bone Joint Surg Am 57:467–474PubMed Rosenberg NJ (1975) Degenerative spondylolisthesis. Predisposing factors. J Bone Joint Surg Am 57:467–474PubMed
9.
go back to reference Saraste H, Brostrom LA, Aparisi T (1984) Prognostic radiographic aspects of spondylolisthesis. Acta Radiol Diagn (Stockh) 25:427–432 Saraste H, Brostrom LA, Aparisi T (1984) Prognostic radiographic aspects of spondylolisthesis. Acta Radiol Diagn (Stockh) 25:427–432
10.
go back to reference Saraste H, Brostrom LA, Aparisi T (1984) Radiographic assessment of anatomic deviations in lumbar spondylolysis. Acta Radiol Diagn (Stockh) 25:317–323 Saraste H, Brostrom LA, Aparisi T (1984) Radiographic assessment of anatomic deviations in lumbar spondylolysis. Acta Radiol Diagn (Stockh) 25:317–323
11.
go back to reference Huang KY, Lin RM, Lee YL, Li JD (2009) Factors affecting disability and physical function in degenerative lumbar spondylolisthesis of L4–5: evaluation with axially loaded MRI. Eur Spine J 18:1851–1857. doi:10.1007/s00586-009-1059-9 PubMedCrossRef Huang KY, Lin RM, Lee YL, Li JD (2009) Factors affecting disability and physical function in degenerative lumbar spondylolisthesis of L4–5: evaluation with axially loaded MRI. Eur Spine J 18:1851–1857. doi:10.​1007/​s00586-009-1059-9 PubMedCrossRef
12.
go back to reference Feinleib M, Kannel WB, Garrison RJ, McNamara PM, Castelli WP (1975) The Framingham Offspring Study. Design and preliminary data. Prev Med 4:518–525PubMedCrossRef Feinleib M, Kannel WB, Garrison RJ, McNamara PM, Castelli WP (1975) The Framingham Offspring Study. Design and preliminary data. Prev Med 4:518–525PubMedCrossRef
13.
go back to reference Splansky GL, Corey D, Yang Q, Atwood LD, Cupples LA, Benjamin EJ, D’Agostino RB Sr, Fox CS, Larson MG, Murabito JM, O’Donnell CJ, Vasan RS, Wolf PA, Levy D (2007) The third generation cohort of the National Heart, Lung, and Blood Institute’s Framingham Heart Study: design, recruitment, and initial examination. Am J Epidemiol 165:1328–1335. doi:10.1093/aje/kwm021 PubMedCrossRef Splansky GL, Corey D, Yang Q, Atwood LD, Cupples LA, Benjamin EJ, D’Agostino RB Sr, Fox CS, Larson MG, Murabito JM, O’Donnell CJ, Vasan RS, Wolf PA, Levy D (2007) The third generation cohort of the National Heart, Lung, and Blood Institute’s Framingham Heart Study: design, recruitment, and initial examination. Am J Epidemiol 165:1328–1335. doi:10.​1093/​aje/​kwm021 PubMedCrossRef
14.
go back to reference Kalichman L, Kim DH, Li L, Guermazi A, Berkin V, Hunter DJ (2009) Spondylolysis and spondylolisthesis: prevalence and association with low back pain in the adult community-based population. Spine (Phila Pa 1976) 34:199–205. doi:10.1097/BRS.0b013e31818edcfd CrossRef Kalichman L, Kim DH, Li L, Guermazi A, Berkin V, Hunter DJ (2009) Spondylolysis and spondylolisthesis: prevalence and association with low back pain in the adult community-based population. Spine (Phila Pa 1976) 34:199–205. doi:10.​1097/​BRS.​0b013e31818edcfd​ CrossRef
16.
go back to reference Krupski W, Majcher P, Tatara MR (2004) Computed tomorgaphy diagnostic of lumbar spondylolysis. Ortop Traumatol Rehabil 6:652–657. 15748 [pii] Krupski W, Majcher P, Tatara MR (2004) Computed tomorgaphy diagnostic of lumbar spondylolysis. Ortop Traumatol Rehabil 6:652–657. 15748 [pii]
17.
go back to reference Teplick JG, Laffey PA, Berman A, Haskin ME (1986) Diagnosis and evaluation of spondylolisthesis and/or spondylolysis on axial CT. AJNR Am J Neuroradiol 7:479–491PubMed Teplick JG, Laffey PA, Berman A, Haskin ME (1986) Diagnosis and evaluation of spondylolisthesis and/or spondylolysis on axial CT. AJNR Am J Neuroradiol 7:479–491PubMed
19.
go back to reference De Carvalho DE, Soave D, Ross K, Callaghan JP (2010) Lumbar spine and pelvic posture between standing and sitting: a radiologic investigation including reliability and repeatability of the lumbar lordosis measure. J Manipulative Physiol Ther 33:48–55. doi:10.1016/j.jmpt.2009.11.008 PubMedCrossRef De Carvalho DE, Soave D, Ross K, Callaghan JP (2010) Lumbar spine and pelvic posture between standing and sitting: a radiologic investigation including reliability and repeatability of the lumbar lordosis measure. J Manipulative Physiol Ther 33:48–55. doi:10.​1016/​j.​jmpt.​2009.​11.​008 PubMedCrossRef
20.
go back to reference Kimura S, Steinbach GC, Watenpaugh DE, Hargens AR (2001) Lumbar spine disc height and curvature responses to an axial load generated by a compression device compatible with magnetic resonance imaging. Spine (Phila Pa 1976) 26:2596–2600CrossRef Kimura S, Steinbach GC, Watenpaugh DE, Hargens AR (2001) Lumbar spine disc height and curvature responses to an axial load generated by a compression device compatible with magnetic resonance imaging. Spine (Phila Pa 1976) 26:2596–2600CrossRef
22.
go back to reference Hefti F, Brunazzi M, Morscher E (1994) Natural course in spondylolysis and spondylolisthesis. Orthopade 23:220–227PubMed Hefti F, Brunazzi M, Morscher E (1994) Natural course in spondylolysis and spondylolisthesis. Orthopade 23:220–227PubMed
25.
go back to reference Natarajan RN, Andersson GB (1999) The influence of lumbar disc height and cross-sectional area on the mechanical response of the disc to physiologic loading. Spine (Phila Pa 1976) 24:1873–1881CrossRef Natarajan RN, Andersson GB (1999) The influence of lumbar disc height and cross-sectional area on the mechanical response of the disc to physiologic loading. Spine (Phila Pa 1976) 24:1873–1881CrossRef
26.
go back to reference Urban JPG, Winlove CP (2007) Pathophysiology of the intervertebral disc and the challenges for MRI. J Magn Reson Imaging 25:419–432PubMedCrossRef Urban JPG, Winlove CP (2007) Pathophysiology of the intervertebral disc and the challenges for MRI. J Magn Reson Imaging 25:419–432PubMedCrossRef
27.
go back to reference Chen YL (1999) Geometric measurements of the lumbar spine in Chinese men during trunk flexion. Spine (Phila Pa 1976) 24:666–669CrossRef Chen YL (1999) Geometric measurements of the lumbar spine in Chinese men during trunk flexion. Spine (Phila Pa 1976) 24:666–669CrossRef
Metadata
Title
Geometry of the vertebral bodies and the intervertebral discs in lumbar segments adjacent to spondylolysis and spondylolisthesis: pilot study
Authors
Ella Been
Ling Li
David J. Hunter
Leonid Kalichman
Publication date
01-07-2011
Publisher
Springer-Verlag
Published in
European Spine Journal / Issue 7/2011
Print ISSN: 0940-6719
Electronic ISSN: 1432-0932
DOI
https://doi.org/10.1007/s00586-010-1660-y

Other articles of this Issue 7/2011

European Spine Journal 7/2011 Go to the issue