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大学・研究所にある論文を検索できる 「Age-related degenerative changes and sex-specific differences in osseous anatomy and intervertebral disc height of the thoracolumbar spine」の論文概要。リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

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Age-related degenerative changes and sex-specific differences in osseous anatomy and intervertebral disc height of the thoracolumbar spine

Machino, Masaaki Nakashima, Hiroaki Ito, Keigo Katayama, Yoshito Matsumoto, Tomohiro Tsushima, Mikito Ando, Kei Kobayashi, Kazuyoshi Imagama, Shiro 名古屋大学

2021.08

概要

The aim of this study was to determine age-related changes and sex-specific differences in sagittal alignment, range of motion (ROM), and intervertebral disc height of the thoracolumbar spine in healthy subjects. Lateral neutral and flexion–extension radiographs of the thoracolumbar spine of 627 asymptomatic subjects (307 males and 320 females; average age, 49.6 ± 16.5 years) were evaluated. We included at least 50 males and 50 females in each decade of life between the 20s and the 70s. Intervertebral disc height from T10/T11 to L5/S1, local lordotic alignment, and ROM from T10–T11 to L5–S1 were measured. T10–L2 kyphosis and T12–S1 lordosis as well as flexion, extension, and total ROM were measured. T10–L2 kyphosis did not markedly change with age in subjects of either sex but a sudden increase was noted in the 70s females. T12–S1 lordosis increased with age in both sexes, except the 70s. Flexion, extension, and total ROM at T10–L2 and T12–S1 decreased with age in most subjects. The levels from L3–L4 to L5–S1 were conspicuous as mobile segments. Intervertebral disc height gradually increased from T10/T11 to L4/L5; the shortest was at T10/T11 and the longest at L3/L4 or L4/L5 in all subjects. Age-related decreases in intervertebral disc height were most prominent at L4/L5 in middle-aged and elderly individuals of both sexes. Normative values of sagittal alignment, ROM, and intervertebral disc height at each segmental level were established in both sexes and all age groups in healthy subjects.

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参考文献

1. Sullivan MS, Dickinson CE, Troup JD. The influence of age and gender on lumbar spine sagittal plane range of motion: a study of 1126 healthy subjects. Spine 1994;19:682-6.

2. Bible JE, Biswas D, Miller CP, Whang PG, Grauer JN. Normal functional range of motion of the lumbar spine during 15 activities of daily living. J Spinal Disord Tech 2010;23:106-12.

3. Reid PC, Morr S, Kaiser MG. State of the union: a review of lumbar fusion indications and techniques for degenerative spine disease. J Neurosurg Spine 2019 Jul 1;31(1):1-14.

4. Nakashima H, Kanemura T, Satake K, Ito K, Tanaka S, Ouchida J, et al. Patient-reported quality of life following posterior lumbar interbody fusion or indirect decompression using lateral lumbar interbody fusion. Spine (Phila Pa 1976) 2020 Sep 15;45(18):E1172-8.

5. Jackson RP, Peterson MD, McManus AC, Hales C. Compensatory spinopelvic balance over the hip axis and better reliability in measuring lordosis to the pelvic radius on standing lateral radiographs of adult volunteers and patients. Spine 1998;23:1750-67.

6. Barrey C, Roussouly P, Le Huec JC, D’Acunzi G, Perrin G. Compensatory mechanisms contributing to keep the sagittal balance of the spine. Eur Spine J 2013;22:S834-41.

7. Scott-Young M, McEntee L, Zotti M, et al. Patient-reported outcome measures after multilevel lumbar total disc arthroplasty for the treatment of multilevel degenerative disc disease. Spine (Phila Pa 1976) 2020 Jan 1;45(1):18-25.

8. Formica C, Zanirato A, Divano S, Basso M, Cavagnaro L, Alessio Mazzola M, et al. Total disc replacement for lumbar degenerative disc disease: single centre 20 years experience. Eur Spine J 2020 Jul;29(7):1518-26.

9. Vialle R, Levassor N, Rillardon L, Templier A, Skalli W, Guigui P. Radiographic analysis of the sagittal alignment and balance of the spine in asymptomatic subjects. J Bone Joint Surg Am 2005;87:260-7.

10. Kuntz C 4th, Levin LS, Ondra SL, Shaffrey CI, Morgan CJ. Neutral upright sagittal spinal alignment from the occiput to the pelvis in asymptomatic adults: a review and resynthesis of the literature. J Neurosurg Spine 2007;6:104-12.

11. Asai Y, Tsutsui S, Oka H, Yoshimura N, Hashizume H, Yamada H, et al. Sagittal spino-pelvic alignment in adults: The Wakayama Spine Study. PLoS One 2017;12(6):e0178697.

12. Machino M, Ando K, Kobayashi K, Nakashima H, Morozumi M, Tanaka S, et al. Differences of lumbopelvic sagittal parameters among community-dwelling middle-age and elderly individuals: Relations with locomotor physical function. J Clin Neurosci 2020 Mar;73:80-4.

13. Machino M, Ando K, Kobayashi K, Nakashima H, Kanbara S, Ito S, et al. Influence of Global spine sagittal balance and spinal degenerative changes on locomotive syndrome risk in a middle-age and elderly community-living population. Biomed Res Int 2020 Sep 23;2020:3274864.

14. Yukawa Y, Kato F, Suda K, Yamagata M, Ueta T, Yoshida M. Normative data for parameters of sagittal spinal alignment in healthy subjects: an analysis of gender specific differences and changes with aging in 626 asymptomatic individuals. Eur Spine J 2018;27:426-32.

15. Yukawa Y, Matsumoto T, Kollor H, Minamide A, Hashizume H, Yamada H, et al. Local sagittal alignment of the lumbar spine and range of motion in 627 asymptomatic Subjects: Age-related changes and sex-based differences. Asian Spine J 2019 Mar 26;13(4):663-71.

16. Yukawa Y, Kato F, Suda K, Yamagata M, Ueta T. Age-related changes in osseous anatomy, alignment, and range of motion of the cervical spine. Part I: Radiographic data from over 1,200 asymptomatic subjects. Eur Spine J. 2012 Aug;21(8):1492–8.

17. Kato F, Yukawa Y, Suda K, Yamagata M, Ueta T. Normal morphology, age-related changes and abnormal findings of the cervical spine. Part II: magnetic resonance imaging of over 1,200 asymptomatic subjects. Eur Spine J. 2012 Aug;21(8):1499–507.

18. Machino M, Yukawa Y, Imagama S, Ito K, Katayama Y, Matsumoto T, et al. Age-related and degenerative changes in the osseous anatomy, alignment, and range of motion of the cervical spine: a comparative study of radiographic data from 1016 patients with cervical spondylotic myelopathy and 1230 asymptomatic subjects. Spine (Phila Pa 1976) 2016 Mar;41(6):476-82.

19. Oe S, Togawa D, Nakai K, Yamada T, Arima H, Banno T, et al. The Influence of Age and Sex on Cervical Spinal Alignment Among Volunteers Aged Over 50. Spine 2015 Oct 1;40(19):1487-94.

20. Banno T, Togawa D, Arima H, Hasegawa T, Yamato Y, Kobayashi S, et al. The cohort study for the determination of reference values for spinopelvic parameters (T1 pelvic angle and global tilt) in elderly volunteers. Eur Spine J 2016 Nov;25(11):3687-93.

21. Schwab FJ, Blondel B, Bess S, Hostin R, Shaffrey CI, Smith JS, et al. Radiographical spinopelvic parameters and disability in the setting of adult spinal deformity: a prospective multicenter analysis. Spine 2013;38:E803-12

22. Glassman SD, Berven S, Bridwell K, Horton W, Dimar JR. Correlation of radiographic parameters and clinical symptoms in adult scoliosis. Spine 2005;30:682-8.

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