3D kinematic characteristics of lumbar facet joints in sitting position
- PMID: 35962832
- DOI: 10.1007/s00276-022-03005-7
3D kinematic characteristics of lumbar facet joints in sitting position
Abstract
Background: Recognizing the kinematic characteristics of lumbar facet joints is important for the prevention and treatment of lumbar degenerative diseases. Previous studies have been conducted in either the supine or standing position, and there are no measurements regarding the kinematic characteristics of the lumbar facet joints while sitting. The aim of this study was to measure and analyze lumbar facet joint motion characteristics while sitting.
Methods: Ten subjects (5 males and 5 females) performed the movements of flexion-extension, left bending-right bending, and left rotation-right rotation in a sitting position. Dual Fluoroscopic Image System and computed tomography technique were used to measure the displacement and rotation angle of the lumbar facet joints of the subjects for analysis. The movement characteristics of L3-S1 were measured.
Results: When the subjects were in sitting position, the lumbar vertebra mainly changed in Z-axis and α, β angle when they performed flexion-extension activities. The displacement of the left facet joint was 4.65 ± 1.99 mm at L3-4, 1.89 ± 2.99 mm at L4-5, and 0.80 ± 2.27 mm at L5-S1 in the Z-axis, and the displacement of the right facet joint was 3.20 ± 2.61 mm at L3-4, 1.71 ± 3.00 mm at L4-5, and 0.31 ± 1.69 mm at L5-S1 in the Z-axis. The rotation in the α angle was 6.00 ± 4.49° at L3-4, 3.51 ± 5.24° at L4-5, and 0.97 ± 4.13° at L5-S1, which was significant different. The rotation in the β angle was 2.30 ± 2.94°at L3-4, 0.16 ± 2.06° at L4-5, and 0.35 ± 1.74°at L5-S1, which was significant different. When the lumbar spine performed the activity of left bending-right bending, there were changes in rotation mainly in the Z-axis and β angle. The displacement of left facet joint in the Z-axis was 1.34 ± 2.84 mm at L3-4, 2.11 ± 0.88 mm at L4-5, and 0.72 ± 0.81 mm at L5-S1; the rotation in the β angle was 5.66 ± 2.70°at L3-4, 7.89 ± 2.59° at L4-5, and 1.28 ± 2.07° at L5-S1; when the lumbar spine performed the activity of left rotation-right rotation, there were changes in the β angle. The rotation of β angle was 4.09 ± 2.86° at L3-4, 2.14 ± 3.38° at L4-5, and 0.63 ± 1.85° at L5-S1.
Conclusion: The lumbar facet joint motion in sitting position is different in each mode of motion. The horizontal displacement and rotation are predominant during flexion and extension activities, while there are different rotation in bending and rotation. The study shows the coupled motion of the lumbar facet joints while sitting, providing a new perspective on the kinematics of the lumbar spine and the etiology of lumbar degenerative diseases.
Keywords: DFIS; Kinematic; Lumbar facet joints; Sitting.
© 2022. The Author(s), under exclusive licence to Springer-Verlag France SAS, part of Springer Nature.
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References
-
- Auerbach JD, Wills BP, McIntosh TC, Balderston RA (2007) Evaluation of spinal kinematics following lumbar total disc replacement and circumferential fusion using in vivo fluoroscopy. Spine (Phila Pa 1976) 32:527–536. https://doi.org/10.1097/01.brs.0000256915.90236.17 - DOI
-
- Degulmadi D (2020) Answer to the letter to the editor of A. P. Patel concerning “Age- and sex-related changes in facet orientation and tropism in lower lumbar spine: an MRI study of 600 patients” by D. Degulmadi et al. (2019) Eur Spine J 28:961-966. Eur Spine J 29:1464–1465. https://doi.org/10.1007/s00586-020-06414-7 - DOI - PubMed
-
- Kettler A, Marin F, Sattelmayer G, Mohr M, Mannel H, Durselen L, Claes L, Wilke HJ (2004) Finite helical axes of motion are a useful tool to describe the three-dimensional in vitro kinematics of the intact, injured and stabilised spine. Eur Spine J 13:553–559. https://doi.org/10.1007/s00586-004-0710-8 - DOI - PubMed - PMC
-
- Kotani Y, Abumi K, Shikinami Y, Takada T, Kadoya K, Shimamoto N, Ito M, Kadosawa T, Fujinaga T, Kaneda K (2002) Artificial intervertebral disc replacement using bioactive three-dimensional fabric: design, development, and preliminary animal study. Spine (Phila Pa 1976) 27:929–935. https://doi.org/10.1097/00007632-200205010-00008 - DOI
-
- Kozanek M, Wang S, Passias PG, Xia Q, Li G, Bono CM, Wood KB, Li G (2009) Range of motion and orientation of the lumbar facet joints in vivo. Spine (Phila Pa 1976) 34:E689–E696. https://doi.org/10.1097/BRS.0b013e3181ab4456 - DOI
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