Related Experiment Video
Updated: Jun 2, 2026

Clinical Imaging of Microwave Mammography
Published on: November 14, 2025
High-resolution computed tomography of single breast cancer microcalcifications in vivo
Kazumasa Inoue1, Fangbing Liu, Jack Hoppin
1Division of Hematology/Oncology and Department of Radiology, Beth Israel Deaconess Medical Center, Boston, MA 02215, USA.
Abstract:
Microcalcification is a hallmark of breast cancer and a key diagnostic feature for mammography. We recently described the first robust animal model of breast cancer microcalcification. In this study, we hypothesized that high-resolution computed tomography (CT) could potentially detect the genesis of a single microcalcification in vivo and quantify its growth over time. Using a commercial CT scanner, we systematically optimized acquisition and reconstruction parameters. Two ray-tracing image reconstruction algorithms were tested: a voxel-driven "fast" cone beam algorithm (FCBA) and a detector-driven "exact" cone beam algorithm (ECBA). By optimizing acquisition and reconstruction parameters, we were able to achieve a resolution of 104 microm full width at half-maximum (FWHM). At an optimal detector sampling frequency, the ECBA provided a 28 microm (21%) FWHM improvement in resolution over the FCBA. In vitro, we were able to image a single 300 microm × 100 microm hydroxyapatite crystal. In a syngeneic rat model of breast cancer, we were able to detect the genesis of a single microcalcification in vivo and follow its growth longitudinally over weeks. Taken together, this study provides an in vivo "gold standard" for the development of calcification-specific contrast agents and a model system for studying the mechanism of breast cancer microcalcification.
More Related Videos
12:23Multi-modal Imaging of Angiogenesis in a Nude Rat Model of Breast Cancer Bone Metastasis Using Magnetic Resonance Imaging, Volumetric Computed Tomography and Ultrasound
Published on: August 14, 2012
08:26Live Imaging of Drug Responses in the Tumor Microenvironment in Mouse Models of Breast Cancer
Published on: March 24, 2013