Fracture risk assessment in diabetes mellitus
Weiwei Chen1, Min Mao1, Jin Fang1
1Department of Endocrinology, Wuxi No.9 People's Hospital Affiliated to Soochow University, Wuxi, China.
Abstract:
Growing evidence suggests that diabetes mellitus is associated with an increased risk of fracture. Bone intrinsic factors (such as accumulation of glycation end products, low bone turnover, and bone microstructural changes) and extrinsic factors (such as hypoglycemia caused by treatment, diabetes peripheral neuropathy, muscle weakness, visual impairment, and some hypoglycemic agents affecting bone metabolism) probably contribute to damage of bone strength and the increased risk of fragility fracture. Traditionally, bone mineral density (BMD) measured by dual x-ray absorptiometry (DXA) is considered to be the gold standard for assessing osteoporosis. However, it cannot fully capture the changes in bone strength and often underestimates the risk of fracture in diabetes. The fracture risk assessment tool is easy to operate, giving it a certain edge in assessing fracture risk in diabetes. However, some parameters need to be regulated or replaced to improve the sensitivity of the tool. Trabecular bone score, a noninvasive tool, indirectly evaluates bone microstructure by analyzing the texture sparsity of trabecular bone, which is based on the pixel gray level of DXA. Trabecular bone score combined with BMD can effectively improve the prediction ability of fracture risk. Quantitative computed tomography is another noninvasive examination of bone microstructure. High-resolution peripheral quantitative computed tomography can measure volume bone mineral density. Quantitative computed tomography combined with microstructure finite element analysis can evaluate the mechanical properties of bones. Considering the invasive nature, the use of microindentation and histomorphometry is limited in clinical settings. Some studies found that the changes in bone turnover markers in diabetes might be associated with fracture risk, but further studies are needed to confirm this. This review focused on summarizing the current development of these assessment tools in diabetes so as to provide references for clinical practice. Moreover, these tools can reduce the occurrence of fragility fractures in diabetes through early detection and intervention.
Insights
Diabetes increases fracture risk due to bone health changes. New tools like Trabecular Bone Score and quantitative computed tomography show promise in assessing fracture risk beyond traditional bone density measurements.
Area of Science:
- Endocrinology
- Orthopedics
- Gerontology
Background:
- Diabetes mellitus is linked to a higher incidence of fractures.
- Both intrinsic (glycation, low turnover, microstructural changes) and extrinsic (neuropathy, muscle weakness, medications) factors contribute to bone fragility in diabetes.
- Traditional bone mineral density (BMD) via DXA often underestimates fracture risk in diabetic patients.
Purpose of the Study:
- To review current assessment tools for fracture risk in diabetes.
- To provide references for clinical practice and improve early detection and intervention.
- To highlight limitations of traditional methods and emerging non-invasive techniques.
Main Methods:
- Review of existing literature on bone assessment tools in diabetes.
- Analysis of non-invasive techniques: Trabecular Bone Score (TBS), quantitative computed tomography (QCT), and high-resolution peripheral QCT (HR-pQCT).
- Discussion of limitations of invasive methods (microindentation, histomorphometry) and the Fracture Risk Assessment Tool (FRAX).
Main Results:
- BMD alone is insufficient for accurate fracture risk assessment in diabetes.
- TBS combined with BMD improves fracture risk prediction.
- QCT and HR-pQCT offer detailed bone microstructure and mechanical property evaluation.
- FRAX requires parameter adjustments for better sensitivity in diabetic populations.
Conclusions:
- Emerging non-invasive tools like TBS and QCT enhance fracture risk assessment in diabetes.
- Integrating advanced imaging and microstructure analysis can improve early detection.
- These tools are crucial for timely intervention to reduce fragility fractures in diabetic individuals.
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