The general objective of this project is to improve the clinical utility of ultrasonic techniques for noninvasive diagnosis through the measurement and modelling of intrinsic ultrasonic propagation and scattering properties of tissue and through the development of a new quantitative imaging technique based on the measurement of ultrasonic scattering. The research has six specific aims. The first is to measure ultrasonic scattering as a function of angle and frequency using a ring of transducers and also to measure attenuation as a function of frequency using radiation force. These measurements will employ liver, spleen, pancreas, and breast freshly obtained at autopsy or during surgery. The second is to calculate from the measured scattering and attenuation data and known system parameters intrinsic properties that include the average differential scattering cross section, the power spectrum of compressibility variations, and the power spectrum of density variations. The third is to calculate volume scattering using an analysis of thin sections visualized through a microscope and comparison of this data with ultrasonic scattering from the same tissue. The fourth is to characterize pulse wave propagation in fresh abdominal wall, chest wall, fat, liver, and breast by measurement and modelling of the distortion that ultrasonic pulses undergo as well as by a unified analysis of adaptive compensation techniques that remove pulse distortion and permit the use of larger apertures than may be employed effectively in practice today. The fifth is to measure ultrasonic scattering by renal calculi before, during, and after lithotripsy to describe noninvasively from time and frequency domain analyses the response of these calculi to treatment and also to model the stress response of kidney stones to arbitrarily shaped temporal pulse waveforms for the determination of lithotripsy waveforms that disintegrate calculi most efficiently. The sixth is to develop a new exact technique for the reconstruction of quantitative ultrasonic images from measurements of scattering made around the scattering region without any weak scattering approximation and using an adaptive system in which transmitted signals are modified according to scattering characteristics. This will employ the same transducer ring as the measurements of angular scattering and initially tissue-mimicking phantoms but later scattering data from fresh specimens. The results are expected to provide a foundation for a significant increase in diagnostic utility of ultrasound from intrinsic parameters and images of tissue that can be employed to distinguish between normal and diseased tissue and also to determine the severity of disease in circumstances not currently possible.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Research Project (R01)
Project #
1R01DK045533-01
Application #
3247034
Study Section
Medical Biochemistry Study Section (MEDB)
Project Start
1992-09-30
Project End
1996-09-29
Budget Start
1992-09-30
Budget End
1993-09-29
Support Year
1
Fiscal Year
1992
Total Cost
Indirect Cost
Name
University of Rochester
Department
Type
Schools of Engineering
DUNS #
208469486
City
Rochester
State
NY
Country
United States
Zip Code
14627
Mast, T D; Souriau, L P; Liu, D L et al. (2001) A k-space method for large-scale models of wave propagation in tissue. IEEE Trans Ultrason Ferroelectr Freq Control 48:341-54
Mast, T D; Hinkelman, L M; Metlay, L A et al. (1999) Simulation of ultrasonic pulse propagation, distortion, and attenuation in the human chest wall. J Acoust Soc Am 106:3665-77
Mast, T D; Hinkelman, L M; Orr, M J et al. (1998) The effect of abdominal wall morphology on ultrasonic pulse distortion. Part II. Simulations. J Acoust Soc Am 104:3651-64
Hinkelman, L M; Mast, T D; Metlay, L A et al. (1998) The effect of abdominal wall morphology on ultrasonic pulse distortion. Part I. Measurements. J Acoust Soc Am 104:3635-49
Jansson, T T; Mast, T D; Waag, R C (1998) Measurements of differential scattering cross section using a ring transducer. J Acoust Soc Am 103:3169-79
Mast, T D; Nachman, A I; Waag, R C (1997) Focusing and imaging using eigenfunctions of the scattering operator. J Acoust Soc Am 102:715-25
Liu, D L; Waag, R C (1997) Harmonic amplitude distribution in a wideband ultrasonic wavefront after propagation through human abdominal wall and breast specimens. J Acoust Soc Am 101:1172-83
Hinkelman, L M; Szabo, T L; Waag, R C (1997) Measurements of ultrasonic pulse distortion produced by human chest wall. J Acoust Soc Am 101:2365-73
Mast, T D; Hinkelman, L M; Orr, M J et al. (1997) Simulation of ultrasonic pulse propagation through the abdominal wall. J Acoust Soc Am 102:1177-90
Mast, T D; Waag, R C (1995) Wave space resolution in ultrasonic scattering measurements. J Acoust Soc Am 98:3050-8

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