Ultrasonic characterization of human trabecular bone microstructure
- 1. Bone and Cartilage Research Unit, University of Kuopio, POB 1627, 70211 Kuopio (Finland)
- 2. Department of Applied Physics, University of Kuopio, POB 1627, 70211, Kuopio (Finland)
- 3. Erasmus Orthopaedic Research Laboratory, ErasmusMC EE1614, PO Box 1738, 3000 DR Rotterdam (Netherlands)
- 4. Department of Clinical Neurophysiology, Kuopio University Hospital and University of Kuopio, POB 1777, 70211 Kuopio (Finland)
- 5. Department of Clinical Physiology and Nuclear Medicine, Kuopio University Hospital and University of Kuopio, POB 1777, 70211 Kuopio (Finland)
Description
New quantitative ultrasound (QUS) techniques involving ultrasound backscattering have been introduced for the assessment of bone quality. QUS parameters are affected by the transducer characteristics, e.g. frequency range, wave and pulse length. Although frequency-dependent backscattering has been studied extensively, understanding of the ultrasound scattering phenomenon in trabecular bone is still limited. In the present study, the relationships between QUS parameters and the microstructure of human trabecular bone were investigated experimentally and by using numerical simulations. Speed of sound (SOS), normalized broadband ultrasound attenuation (nBUA), average attenuation, integrated reflection coefficient (IRC) and broadband ultrasound backscatter (BUB) were measured for 26 human trabecular bone cylinders. Subsequently, a high-resolution microCT system was used to determine the microstructural parameters. Moreover, based on the sample-specific microCT data, a numerical model for ultrasound propagation was developed for the simulation of experimental measurements. Experimentally, significant relationships between the QUS parameters and microstructural parameters were demonstrated. The relationships were dependent on the frequency, and the strongest association (r = 0.88) between SOS and structural parameters was observed at a centre frequency of 5 MHz. nBUA, average attenuation, IRC and BUB showed somewhat lower linear correlations with the structural properties at a centre frequency of 5 MHz, as compared to those determined at lower frequencies. Multiple regression analyses revealed that the variation of acoustic parameters could best be explained by parameters reflecting the amount of mineralized tissue. A principal component analysis demonstrated that the strongest determinants of BUB and IRC were related to the trabecular structure. However, other structural characteristics contributed significantly to the prediction of the acoustic parameters as well. The two-dimensional numerical model introduced in the present study demonstrated good agreement with the experimental measurements. However, further studies with the simulation model are warranted to systematically investigate the relation between the structural parameters and ultrasound scattering
Availability note (English)
Available online at http://stacks.iop.org/0031-9155/51/1633/pmb6_6_019.pdf or at the Web site for the journal Physics in Medicine and Biology (ISSN 1361-6560) http://www.iop.org/Additional details
Identifiers
- URL
- http://stacks.iop.org/0031-9155/51/1633/pmb6_6_019.pdf;
- DOI
- 10.1088/0031-9155/51/6/019;
- PII
- S0031-9155(06)09589-3;
Publishing Information
- Journal Title
- Physics in Medicine and Biology
- Journal Volume
- 51
- Journal Issue
- 6
- Journal Page Range
- p. 1633-1648
- ISSN
- 0031-9155
- CODEN
- PHMBA7
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 37053177
- Subject category
- S60: APPLIED LIFE SCIENCES;
- Descriptors DEI
- A CENTERS; ATTENUATION; BACKSCATTERING; FREQUENCY DEPENDENCE; MHZ RANGE; MICROSTRUCTURE; REGRESSION ANALYSIS; SIMULATION; SKELETON; SOUND WAVES; TRABECULAR BONE
- Descriptors DEC
- ANIMAL TISSUES; BODY; BONE TISSUES; COLOR CENTERS; CONNECTIVE TISSUE; CRYSTAL DEFECTS; CRYSTAL STRUCTURE; FREQUENCY RANGE; MATHEMATICS; ORGANS; POINT DEFECTS; SCATTERING; STATISTICS; VACANCIES