? This proposal describes a research program to develop an experimental prototype ultrawideband stepped frequency microwave-induced thermoacoustic imaging (TAI) system to image a breast phantom. Recent studies have shown that imaging the human breast for cancer detection with microwave-induced thermoacoustic waves is a viable technology. This new technology has many desirable properties of an ideal early breast cancer screener including being noninvasive, safe, comfortable, inexpensive, sensitive (to tumors), and specific (to cancers). Indeed, microwave-induced TAI combines the merits of both microwave stimulation, which provides excellent contrast between cancerous and normal breast tissue, and acoustic imaging, which has the advantage of very fine millimeter range spatial resolution. However, so far the experimental imaging results of real human breast are much poorer than those obtained under rather idealistic experimental setup. The goal of this study is to identify the key problems encountered by the microwaveinduced TAI under the realistic conditions of human breast imaging and propose innovative techniques to mitigate these problems, during Phase I of the fast-track application: 1. develop a prototype ultrawideband stepped-frequency microwave-induced TAI system to image a breast phantom, 2. demonstrate the benefits of multiple frequency stimulation for breast phantom anomaly detection, and 3. demonstrate the merits of using adaptive signal processing algorithms for thermoacoustic image formation and breast phantom anomaly detection. By the completion of this study, we will have developed and evaluated an experimental prototype ultrawideband stepped frequency microwave-induced TAI system to image a breast phantom. We will have obtained sufficient supporting evidence and experience for the Phase II efforts. We finally anticipate that the results of this and subsequent studies will provide new opportunities in a wide range of multidisciplinary studies ranging from electromagnetics and acoustics to adaptive beamforming for thermoacoustic image formation and pattern recognition for early cancer detection. ? ?

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Small Business Technology Transfer (STTR) Grants - Phase I (R41)
Project #
1R41CA107903-01
Application #
6784364
Study Section
Special Emphasis Panel (ZCA1-SRRB-9 (J2))
Program Officer
Nordstrom, Robert J
Project Start
2004-05-01
Project End
2006-04-30
Budget Start
2004-05-01
Budget End
2006-04-30
Support Year
1
Fiscal Year
2004
Total Cost
$99,975
Indirect Cost
Name
Planning Systems, Inc.
Department
Type
DUNS #
072651391
City
Slidell
State
LA
Country
United States
Zip Code
70458
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Guo, Bin; Li, Jian; Zmuda, Henry et al. (2007) Multifrequency microwave-induced thermal acoustic imaging for breast cancer detection. IEEE Trans Biomed Eng 54:2000-10
Wang, Zhisong; Li, Jian; Wu, Renbiao (2005) Time-delay- and time-reversal-based robust Capon beamformers for ultrasound imaging. IEEE Trans Med Imaging 24:1308-22