Literature DB >> 12616157

Prediction of osteoporotic spinal deformity.

Tony S Keller1, Deed E Harrison, Christopher J Colloca, Donald D Harrison, Tadeusz J Janik.   

Abstract

STUDY
DESIGN: A biomechanical model was developed from full-spine lateral radiographs to predict osteoporotic spinal deformity in elderly subjects.
OBJECTIVE: To investigate the biomechanics of age-related spinal deformity and concomitant height loss associated with vertebral osteoporosis. SUMMARY OF BACKGROUND DATA: Vertebral bone loss and disc degeneration associated with aging causes bone and disc structures to weaken and deform as a result of gravity and postural stresses.
METHODS: An anatomically accurate sagittal-plane, upright-posture biomechanical model of the anterior spinal column (C2-S1) was created by digitizing lateral full-spine radiographs of 20 human subjects with a mean height of 176.8 cm and a mean body weight of 76.6 kg. Body weight loads were applied to the model, after which intervertebral disc and vertebral body forces and deformation were computed and the new spine geometry was calculated. The strength and stiffness of the vertebral bodies were reduced according to an osteopenic aging model and modulus reduction algorithm, respectively.
RESULTS: The most osteopenic model (L3 F(ult) = 750 N) produced gross deformities of the spine, including anterior wedge-like fracture deformities at T7 and T8. In this model, increases in thoracic kyphosis and decreases in vertebral body height resulted in a 25.2% decrease in spinal height (C2-S1), an 8.6% decrease in total body height, and a 15.1-cm anterior translation of the C2 spine segment centroid. The resulting deformity qualitatively resembled deformities observed in elderly individuals with osteoporotic compression fractures.
CONCLUSIONS: These predictions suggest that postural forces are responsible for initiation of osteoporotic spinal deformity in elderly subjects. Vertebral deformities are exacerbated by anterior translation of the upper spinal column, which increases compressive loads in the thoracolumbar region of the spine.

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Mesh:

Year:  2003        PMID: 12616157     DOI: 10.1097/01.BRS.0000048651.92777.30

Source DB:  PubMed          Journal:  Spine (Phila Pa 1976)        ISSN: 0362-2436            Impact factor:   3.468


  34 in total

Review 1.  The vertebral fracture cascade in osteoporosis: a review of aetiopathogenesis.

Authors:  A M Briggs; A M Greig; J D Wark
Journal:  Osteoporos Int       Date:  2007-01-06       Impact factor: 4.507

2.  Evidence-based protocol for structural rehabilitation of the spine and posture: review of clinical biomechanics of posture (CBP) publications.

Authors:  Paul A Oakley; Donald D Harrison; Deed E Harrison; Jason W Haas
Journal:  J Can Chiropr Assoc       Date:  2005-12

3.  Validation of a computer analysis to determine 3-D rotations and translations of the rib cage in upright posture from three 2-D digital images.

Authors:  Deed E Harrison; Tadeusz J Janik; Rene Cailliet; Donald D Harrison; Martin C Normand; Denise L Perron; Joseph R Ferrantelli
Journal:  Eur Spine J       Date:  2006-03-18       Impact factor: 3.134

4.  Gravitational forces and sagittal shape of the spine. Clinical estimation of their relations.

Authors:  J Legaye; G Duval-Beaupere
Journal:  Int Orthop       Date:  2007-07-25       Impact factor: 3.075

Review 5.  [Stabilization of the osteoporotic spine from a biomechanical viewpoint].

Authors:  C-E Heyde; A Rohlmann; U Weber; R Kayser
Journal:  Orthopade       Date:  2010-04       Impact factor: 1.087

6.  The effect of osteoporotic vertebral fracture on predicted spinal loads in vivo.

Authors:  Andrew M Briggs; Tim V Wrigley; Jaap H van Dieën; Bev Phillips; Sing Kai Lo; Alison M Greig; Kim L Bennell
Journal:  Eur Spine J       Date:  2006-07-04       Impact factor: 3.134

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

Authors:  Alexander G Bruno; Mary L Bouxsein; Dennis E Anderson
Journal:  J Biomech Eng       Date:  2015-06-09       Impact factor: 2.097

8.  Variability of tissue mineral density can determine physiological creep of human vertebral cancellous bone.

Authors:  Do-Gyoon Kim; Daniel Shertok; Boon Ching Tee; Yener N Yeni
Journal:  J Biomech       Date:  2011-04-08       Impact factor: 2.712

9.  Effects of an exercise and manual therapy program on physical impairments, function and quality-of-life in people with osteoporotic vertebral fracture: a randomised, single-blind controlled pilot trial.

Authors:  Kim L Bennell; Bernadette Matthews; Alison Greig; Andrew Briggs; Anne Kelly; Margaret Sherburn; Judy Larsen; John Wark
Journal:  BMC Musculoskelet Disord       Date:  2010-02-17       Impact factor: 2.362

10.  Vertebroplasty and Kyphoplasty Can Restore Normal Spine Mechanics following Osteoporotic Vertebral Fracture.

Authors:  Jin Luo; Michael A Adams; Patricia Dolan
Journal:  J Osteoporos       Date:  2010-06-20
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