The objective of this two-year initiative is to develop the basis for a fundamentally new technology for an in situ clinical diagnosis of solid tumors with the expectation of rapid and accurate detection and diagnosis of cancer. The research approach is interdisciplinary (acoustic and electrical engineers, image and signal processor, material scientists, and board-certified veterinary pathologist). Given the important in patient health-care management of obtaining a highly accurate and timely diagnosis of a tumor and the difficulties, processing time, and risks associated with surgical and aspirational biopsies, a technique which would permit the evaluation of tumors in situ would be enormously beneficial medically and cost effective.
The specific aims of this two-year initiative are: (1) to identify ultrasonic image features of tissues and cells that differentiate cytoarchitectural features of normal tissues from selected neoplastic tissues using well-established non-invasive pulse-echo data acquisition schemes and high-definition image formation techniques applicable for the invasive in vivo ultrasonic microprobe geometry, (3) to construct and evaluate invasive in vivo ultrasonic microprobes using two separate construction approaches, and (4) to identify ultrasonic image features of tissues and cells that differentiate cytoarchitectural features of normal tissues from selected neoplastic tissues using the invasive in vivo ultrasonic microprobes. Light microscopic histopathologic evaluation of the identical tissues by a board-certified veterinary pathologist will be used as the gold standard. Three categories of ultrasonic data acquisition are proposed, viz., non- invasive using commercial transducers; invasive microprobe using existing, commercially available materials; and invasive microprobe using newly developed materials. Conventional B-mode and C-mode imaging techniques will be investigated. In addition, it is proposed to adapt signal processing techniques from synthetic aperture radar (SAR) imaging techniques. Also, image formation and enhancement methods will be tested and verified on stimulate data based on a full-fledged statistical model of the ultrasound imaging processing, adopting an enhanced version of the standard fully-developed-speckle model.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Exploratory/Developmental Grants (R21)
Project #
5R21CA079179-02
Application #
2896715
Study Section
Special Emphasis Panel (ZRR1-BRT-4 (02))
Program Officer
Menkens, Anne E
Project Start
1998-07-01
Project End
2001-06-30
Budget Start
1999-07-01
Budget End
2001-06-30
Support Year
2
Fiscal Year
1999
Total Cost
Indirect Cost
Name
University of Illinois Urbana-Champaign
Department
Engineering (All Types)
Type
Schools of Engineering
DUNS #
041544081
City
Champaign
State
IL
Country
United States
Zip Code
61820
Hruska, David P; Sanchez, Jose; Oelze, Michael L (2009) Improved diagnostics through quantitative ultrasound imaging. Conf Proc IEEE Eng Med Biol Soc 2009:1956-9
Oelze, Michael L; O'Brien Jr, William D (2004) Defining optimal axial and lateral resolution for estimating scatterer properties from volumes using ultrasound backscatter. J Acoust Soc Am 115:3226-34
Haun, Mark A; Jones, Douglas L; O'Brien Jr, William D (2004) Overdetermined least-squares aberration estimates using common-midpoint signals. IEEE Trans Med Imaging 23:1205-20
Oelze, Michael L; O'Brien Jr, William D; Blue, James P et al. (2004) Differentiation and characterization of rat mammary fibroadenomas and 4T1 mouse carcinomas using quantitative ultrasound imaging. IEEE Trans Med Imaging 23:764-71
Oelze, Michael L; O'Brien Jr, William D (2002) Frequency-dependent attenuation-compensation functions for ultrasonic signals backscattered from random media. J Acoust Soc Am 111:2308-19
Oelze, Michael L; Zachary, James F; O'Brien Jr, William D (2002) Characterization of tissue microstructure using ultrasonic backscatter: theory and technique for optimization using a Gaussian form factor. J Acoust Soc Am 112:1202-11
Oelze, Michael L; O'Brien Jr, William D (2002) Method of improved scatterer size estimation and application to parametric imaging using ultrasound. J Acoust Soc Am 112:3053-63
Oelze, Michael L; Zachary, James F; O'Brien Jr, William D (2002) Parametric imaging of rat mammary tumors in vivo for the purposes of tissue characterization. J Ultrasound Med 21:1201-10
Haun, Mark A; Jones, Douglas L; O'Brien Jr, William D (2002) Efficient three-dimensional imaging from a small cylindrical aperture. IEEE Trans Ultrason Ferroelectr Freq Control 49:861-70
Topp, K A; Zachary, J F; O'Brien Jr, W D (2001) Quantifying B-mode images of in vivo rat mammary tumors by the frequency dependence of backscatter. J Ultrasound Med 20:605-12