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Microarchitecture Parameters Describe Bone Structure and Its Strength Better Than BMD
Author(s) -
Tomasz Topoliński,
Adam Mazurkiewicz,
Stanisław Jung,
Artur Cichański,
Krzysztof Nowicki
Publication year - 2012
Publication title -
the scientific world journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.453
H-Index - 93
eISSN - 2356-6140
pISSN - 1537-744X
DOI - 10.1100/2012/502781
Subject(s) - fractal dimension , bone mineral , fractal , volume (thermodynamics) , materials science , microarchitecture , compression (physics) , fractal analysis , biomedical engineering , mathematics , osteoporosis , composite material , computer science , medicine , mathematical analysis , physics , pathology , quantum mechanics , operating system
and Hypothesis . Some papers have shown that bone mineral density (BMD) may not be accurate in predicting fracture risk. Recently microarchitecture parameters have been reported to give information on bone characteristics. The aim of this study was to find out if the values of volume, fractal dimension, and bone mineral density are correlated with bone strength. Methods . Forty-two human bone samples harvested during total hip replacement surgery were cut to cylindrical samples. The geometrical mesh of layers of bone mass obtained from microCT investigation and the volumes of each layer and fractal dimension were calculated. The finite element method was applied to calculate the compression force F causing ε = 0.8% strain. Results . There were stronger correlations for microarchitecture parameters with strength than those for bone mineral density. The values of determination coefficient R 2 for mean volume and force were 0.88 and 0.90 for mean fractal dimension and force, while for BMD and force the value was 0.53. The samples with bigger mean bone volume of layers and bigger mean fractal dimension of layers (more complex structure) presented higher strength. Conclusion . The volumetric and fractal dimension parameters better describe bone structure and strength than BMD.

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