Literature DB >> 9166390

Age-related changes in vertebral height ratios and vertebral fracture.

T Sone1, T Tomomitsu, M Miyake, N Takeda, M Fukunaga.   

Abstract

Because no gold standard for the definition of vertebral fracture exists, there has been controversy about whether mild vertebral deformities are truly fractures or simply normal variation in vertebral size and shape. The aim of this study was to assess the associations of mild variations of vertebral height ratios to definite vertebral fractures. In 479 Japanese women (aged 53.9 +/- 9.1 years) who visited our institute for a medical checkup, we performed lateral lumbar radiographs and morphometric parameters were derived by measuring the anterior (Ha), middle (Hm) and posterior (Hp) height of each vertebral body from T12 to L4. Vertebral height ratios, Ha/Hp, Hm/Hp or Hp/Hp' of adjacent vertebrae that were more than 3 SD different from vertebra-specific means of normative data were considered to indicate fractures. Forty-five women were diagnosed with at least one fracture. After excluding the subjects with vertebral fracture, we examined the associations of the variations in vertebral height ratios with age, anthropometric parameters and lumbar bone mineral density (BMD) measured by dual-energy X-ray absorptiometry. Vertebral height ratios, especially Hm/Hp in postmenopausal women, tended to decrease with age and were positively associated with BMD. No significant correlation was observed between anthropometric parameters and vertebral height ratios. Aged-related decrease in vertebral height ratios (Ha/Hp and Hm/Hp, each averaged from T12 to L4) was significant even after the correction for BMD. Mean values of height ratios of non-fractured vertebrae adjusted for age and BMD were significantly lower in postmenopausal women with vertebral fracture than in those without vertebral fracture. Logistic regression analysis showed that BMD and height ratios of non-fractured vertebrae were independent predictors of vertebral fracture risk. The results suggest that older women, and women with at least one obvious (3 SD) fracture, tend to have mild deformities which do not qualify using the 3 SD definition. These mild deformities may represent real consequences of osteoporosis, because they are more pronounced among women with obvious fracture.

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Year:  1997        PMID: 9166390     DOI: 10.1007/bf01623685

Source DB:  PubMed          Journal:  Osteoporos Int        ISSN: 0937-941X            Impact factor:   4.507


  17 in total

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2.  Classification of vertebral fractures.

Authors:  R Eastell; S L Cedel; H W Wahner; B L Riggs; L J Melton
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3.  Vertebral fracture or vertebral deformity.

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4.  Epidemiology of vertebral fractures in women.

Authors:  L J Melton; S H Kan; M A Frye; H W Wahner; W M O'Fallon; B L Riggs
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7.  Vertebral measurements for assessment of osteoporosis.

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8.  Change in vertebral shape in spinal osteoporosis.

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9.  Bone mass, bone structure and vertebral fractures in osteoporotic patients.

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  10 in total

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2.  The ratio of anterior and posterior vertebral heights reinforces the utility of DXA in assessment of vertebrae strength.

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5.  Corrigendum to how to define an osteoporotic vertebral fracture.

Authors: 
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Review 6.  Identification of vertebral fractures: an update.

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7.  Increased variability of bone tissue mineral density resulting from estrogen deficiency influences creep behavior in a rat vertebral body.

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8.  How to define an osteoporotic vertebral fracture?

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Review 9.  Vertebral dimensions as risk factor of vertebral fracture in osteoporotic patients: a systematic literature review.

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Journal:  Osteoporos Int       Date:  2007-03-06       Impact factor: 4.507

10.  Effects of Scan Resolutions and Element Sizes on Bovine Vertebral Mechanical Parameters from Quantitative Computed Tomography-Based Finite Element Analysis.

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  10 in total

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