High-resolution peripheral quantitative computed tomography (HR-pQCT) is a promising clinical tool that permits separate measurements of trabecular and cortical bone compartments at the distal radius and tibia. It has an isotropic voxel size of 82 μm, which is high enough to assess the fine microstructural details of trabecular architecture. HR-pQCT images can also be used for building microstructural finite element (μFE) models to estimate the mechanical competence of whole bone segments. Melton et al. showed that derived bone strength parameters (axial rigidity and fall load to failure load ratio) are additional to BMD and bone geometry and microstructure as determinants of forearm fracture risk prediction [1]. Boutroy et al. found that the proportion of the load carried by trabecular bone versus cortical bone is associated with wrist fracture independently of BMD and microarchitecture [2]. These clinical studies demonstrate that HR-pQCT based μFE analyses can provide measurements of mechanical properties that independently associate with fracture risk. However, microstructure of one skeletal site may be different from that of another site. It is unclear whether and to what extent these peripheral measurements reflect the bone strength of the proximal femur and vertebral bodies, the sites of frequent osteoporotic fractures. Currently, central quantitative computed tomography (cQCT) is the most commonly used clinical imaging modality to quantify the structural and mechanical properties of the proximal femur and lumbar spine. We therefore evaluated relationships between the stiffness of the distal radius and tibia estimated by HR-pQCT-based FEA with that of the proximal femur and lumbar spine which was estimated from cQCT-based FEA in the same human subjects.
Skip Nav Destination
ASME 2009 Summer Bioengineering Conference
June 17–21, 2009
Lake Tahoe, California, USA
Conference Sponsors:
- Bioengineering Division
ISBN:
978-0-7918-4891-3
PROCEEDINGS PAPER
Relationships Between Stiffness of Human Distal Tibia, Distal Radius, Proximal Femur, and Vertebral Body Assessed by HR-pQCT and cQCT Based Finite Element Analyses
X. Sherry Liu,
X. Sherry Liu
Columbia University, New York, NY
Search for other works by this author on:
Perry T. Yin,
Perry T. Yin
Columbia University, New York, NY
Search for other works by this author on:
Joan M. Lappe,
Joan M. Lappe
Creighton University, Omaha, NE
Search for other works by this author on:
Robert R. Recker,
Robert R. Recker
Creighton University, Omaha, NE
Search for other works by this author on:
Elizabeth Shane,
Elizabeth Shane
Columbia University, New York, NY
Search for other works by this author on:
X. Edward Guo
X. Edward Guo
Columbia University, New York, NY
Search for other works by this author on:
X. Sherry Liu
Columbia University, New York, NY
Adi Cohen
Columbia University, New York, NY
Perry T. Yin
Columbia University, New York, NY
Joan M. Lappe
Creighton University, Omaha, NE
Robert R. Recker
Creighton University, Omaha, NE
Elizabeth Shane
Columbia University, New York, NY
X. Edward Guo
Columbia University, New York, NY
Paper No:
SBC2009-205457, pp. 37-38; 2 pages
Published Online:
July 19, 2013
Citation
Liu, XS, Cohen, A, Yin, PT, Lappe, JM, Recker, RR, Shane, E, & Guo, XE. "Relationships Between Stiffness of Human Distal Tibia, Distal Radius, Proximal Femur, and Vertebral Body Assessed by HR-pQCT and cQCT Based Finite Element Analyses." Proceedings of the ASME 2009 Summer Bioengineering Conference. ASME 2009 Summer Bioengineering Conference, Parts A and B. Lake Tahoe, California, USA. June 17–21, 2009. pp. 37-38. ASME. https://doi.org/10.1115/SBC2009-205457
Download citation file:
4
Views
Related Proceedings Papers
Related Articles
Fracture Prediction for the Proximal Femur Using Finite Element Models: Part I—Linear Analysis
J Biomech Eng (November,1991)
Evaluation and Prediction of Human Lumbar Vertebrae Endplate Mechanical Properties Using Indentation and Computed Tomography
J Biomech Eng (October,2018)
Factors Affecting the Pullout Strength of Cancellous Bone Screws
J Biomech Eng (August,1996)
Related Chapters
Introduction and Definitions
Handbook on Stiffness & Damping in Mechanical Design
High Resolution ToF-SIMS Imaging of Deuterium Permeation and Cracking in Duplex Stainless Steels
International Hydrogen Conference (IHC 2016): Materials Performance in Hydrogen Environments
Simple Structural Elements
Introduction to Plastics Engineering