Mariya Lazebnik et al 2007 Phys. Med. Biol. 52 2637 doi:10.1088/0031-9155/52/10/001
Mariya Lazebnik1, Leah McCartney2, Dijana Popovic2, Cynthia B Watkins1, Mary J Lindstrom3, Josephine Harter4, Sarah Sewall4, Anthony Magliocco5, John H Booske1, Michal Okoniewski2 and Susan C Hagness1
Show affiliationsThe efficacy of emerging microwave breast cancer detection and treatment techniques will depend, in part, on the dielectric properties of normal breast tissue. However, knowledge of these properties at microwave frequencies has been limited due to gaps and discrepancies in previously reported small-scale studies. To address these issues, we experimentally characterized the wideband microwave-frequency dielectric properties of a large number of normal breast tissue samples obtained from breast reduction surgeries at the University of Wisconsin and University of Calgary hospitals. The dielectric spectroscopy measurements were conducted from 0.5 to 20 GHz using a precision open-ended coaxial probe. The tissue composition within the probe's sensing region was quantified in terms of percentages of adipose, fibroconnective and glandular tissues. We fit a one-pole Cole–Cole model to the complex permittivity data set obtained for each sample and determined median Cole–Cole parameters for three groups of normal breast tissues, categorized by adipose tissue content (0–30%, 31–84% and 85–100%). Our analysis of the dielectric properties data for 354 tissue samples reveals that there is a large variation in the dielectric properties of normal breast tissue due to substantial tissue heterogeneity. We observed no statistically significant difference between the within-patient and between-patient variability in the dielectric properties.
87.50.wp Therapeutic applications
87.64.-t Spectroscopic and microscopic techniques in biophysics and medical physics
Issue 10 (21 May 2007)
Received 1 February 2007, in final form 30 March 2007
Published 24 April 2007
Mariya Lazebnik et al 2007 Phys. Med. Biol. 52 2637
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