Title :
Sensitivity of QUS parameters to controlled variations of bone strength assessed with a cellular model
Author :
Haiat, Guillaume ; Padilla, Frédéric ; Laugier, Pascal
Author_Institution :
Centre Nat. de la Rech. Sci. (CNRS), Univ. Paris Diderot, Paris
fDate :
7/1/2008 12:00:00 AM
Abstract :
The physical principles underlying quantitative ultrasound (QUS) measurements are not fully understood yet. Therefore, the translation of QUS results into bone strength remains elusive. In the present study, we derive the sensitivity of broadband ultrasonic attenuation (BUA) and speed of sound (SOS) to variations of bone strength. For this purpose, a mechanical cellular model is combined to a multiple regression resulting from the analysis of finite-difference time domain (FDTD) simulations. Specifically, we investigate how QUS variables respond to a variation in strength of 10%, realized either by a change in material properties or a change in bone volume fraction (BV/TV). The results show that except when BV/TV is high, the variations of BUA in response to a variation in strength realized by a pure change of BV/TV exceeds the technique imprecision and thus can be detected. When the variation of strength is realized by changes of compressive or shear stiffness, the response in QUS properties is dominated by the variation in C11, whereas changes in C44, remaining below the precision error, cannot be detected. The interpretation of these data, however, is not straightforward due to sparse description of elastic properties at the tissue level. To overcome the limitation of the cellular model, more realistic computational models such as micro- finite element analysis have to be considered.
Keywords :
bioacoustics; biomechanics; biomedical measurement; biomedical ultrasonics; bone; compressive strength; finite difference time-domain analysis; orthopaedics; regression analysis; ultrasonic absorption; FDTD; bone strength; bone volume fraction; broadband ultrasonic attenuation sensitivity; compressive stiffness; computational model; elastic properties; finite-difference time domain simulation; mechanical cellular model; multiple regression; precision error; quantitative ultrasound measurement; shear stiffness; speed-of-sound variation; Analytical models; Attenuation; Bones; Computational modeling; Finite difference methods; Material properties; TV; Time domain analysis; Ultrasonic imaging; Ultrasonic variables measurement; Bone density; Cellular models; Quantitative ultrasound measurements; Animals; Bone and Bones; Calcification, Physiologic; Compressive Strength; Computer Simulation; Elastic Modulus; Humans; Image Interpretation, Computer-Assisted; Models, Biological; Osteoblasts; Stress, Mechanical; Tensile Strength;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2008.824