4.5 Article

Risk-equivalent T-score adjustment for using lumbar spine trabecular bone score (TBS): the Manitoba BMD registry

期刊

OSTEOPOROSIS INTERNATIONAL
卷 29, 期 3, 页码 751-758

出版社

SPRINGER LONDON LTD
DOI: 10.1007/s00198-018-4405-0

关键词

Bone densitometry; DXA; Fracture prediction; Osteoporosis; Trabecular bone score

资金

  1. Arthritis Research UK [17702, 21231] Funding Source: Medline
  2. Medical Research Council [MC_U147585819, MC_U147585827, MC_UP_A620_1014, G0400491, MC_U147585824, MC_UU_12011/1] Funding Source: Medline
  3. Versus Arthritis [17702, 21231] Funding Source: Medline
  4. Department of Health [HTA/10/33/04] Funding Source: Medline
  5. MRC [G0400491, MC_U147585819, MC_U147585827, MC_UP_A620_1015] Funding Source: UKRI
  6. Medical Research Council [U1475000002, MC_UP_A620_1015, U1475000001] Funding Source: researchfish
  7. National Institute for Health Research [NF-SI-0513-10085, NF-SI-0508-10082] Funding Source: researchfish

向作者/读者索取更多资源

Lumbar spine trabecular bone score (TBS) can be used to modify the output from the fracture risk assessment tool, FRAX, to enhance fracture prediction. An alternative approach for using TBS in clinical practice, based upon an adjustment to the bone mineral density (BMD) T-score, may be helpful in regions where intervention guidelines and/or reimbursement are primarily based on BMD T-score. Introduction The aim of this study is to develop an approach for using TBS in clinical practice based upon a risk-equivalent adjustment to the BMD T-score. Methods We identified 45,185 women age 40 years and older with baseline spine and hip DXA, TBS, and FRAX probabilities including femoral neck BMD. Incident major osteoporotic fractures (MOF, n = 3925) were identified from population-based health services data (mean follow-up 7.4 years comprising 335,910 person-years). Cox proportional hazards models adjusted for age and BMI were first used to estimate the risk for MOF from BMD T-score alone, then after including TBS and a multiplicative age interaction term. From the parameter estimates, we developed a TBS offset to the BMD T-score based upon change in TBS that would give the same risk as a unit change in BMD T-score for the femoral neck, total hip, and lumbar spine. Results All BMD measurements, TBS, and the age interaction term independently predicted MOF (p < 0.001). Measures of risk stratification and model fit were improved for the T BS-adjusted BMD T-score versus the unadjusted BMD T-score (p < 0.001). There was a high level of agreement betweenMOF probability estimated from TBS-adjusted MOF FRAX probability and FRAX probability using the risk-equivalent femoral BMD T-score: MOF probability r(2) = 0.98, slope = 1.02, intercept = -0.3; hip probability r(2) = 0.95, slope = 1.07, intercept = 0.0. Conclusions The BMD-independent effect of lumbar spine TBS on fracture risk can be estimated as a simple offset to the BMD T-score.

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