Literature DB >> 21504703

High-resolution computed tomography of single breast cancer microcalcifications in vivo.

Kazumasa Inoue1, Fangbing Liu, Jack Hoppin, Elaine P Lunsford, Christian Lackas, Jacob Hesterman, Robert E Lenkinski, Hirofumi Fujii, John V Frangioni.   

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 μm full width at half-maximum (FWHM). At an optimal detector sampling frequency, the ECBA provided a 28 μm (21%) FWHM improvement in resolution over the FCBA. In vitro, we were able to image a single 300 μm × 100 μm 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.

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Year:  2011        PMID: 21504703      PMCID: PMC3197732          DOI: 10.2310/7290.2010.00050

Source DB:  PubMed          Journal:  Mol Imaging        ISSN: 1535-3508            Impact factor:   4.488


  18 in total

1.  Microcalcification detection using cone-beam CT mammography with a flat-panel imager.

Authors:  Xing Gong; Aruna A Vedula; Stephen J Glick
Journal:  Phys Med Biol       Date:  2004-06-07       Impact factor: 3.609

2.  A quality assurance phantom for the performance evaluation of volumetric micro-CT systems.

Authors:  Louise Y Du; Joseph Umoh; Hristo N Nikolov; Steven I Pollmann; Ting-Yim Lee; David W Holdsworth
Journal:  Phys Med Biol       Date:  2007-11-15       Impact factor: 3.609

3.  Modeling and measurement of the detector presampling MTF of a variable resolution x-ray CT scanner.

Authors:  Roman Melnyk; Frank A DiBianca
Journal:  Med Phys       Date:  2007-03       Impact factor: 4.071

Review 4.  Microcalcifications associated with breast cancer: an epiphenomenon or biologically significant feature of selected tumors?

Authors:  Maria P Morgan; Michelle M Cooke; Geraldine M McCarthy
Journal:  J Mammary Gland Biol Neoplasia       Date:  2005-04       Impact factor: 2.673

5.  Detection of breast cancer microcalcifications using a dual-modality SPECT/NIR fluorescent probe.

Authors:  Kumar R Bhushan; Preeti Misra; Fangbing Liu; Sanjeev Mathur; Robert E Lenkinski; John V Frangioni
Journal:  J Am Chem Soc       Date:  2008-12-31       Impact factor: 15.419

6.  MicroCT scanner performance and considerations for vascular specimen imaging.

Authors:  Michael Marxen; Michael M Thornton; Cameron B Chiarot; Giannoula Klement; Janet Koprivnikar; John G Sled; R Mark Henkelman
Journal:  Med Phys       Date:  2004-02       Impact factor: 4.071

7.  Quantitative assessment of bone tissue mineralization with polychromatic micro-computed tomography.

Authors:  Andrew J Burghardt; Galateia J Kazakia; Andres Laib; Sharmila Majumdar
Journal:  Calcif Tissue Int       Date:  2008-08-07       Impact factor: 4.333

8.  Humoral bone morphogenetic protein 2 is sufficient for inducing breast cancer microcalcification.

Authors:  Fangbing Liu; Nathalie Bloch; Kumar R Bhushan; Alec M De Grand; Eiichi Tanaka; Stephanie Solazzo; Pawel M Mertyna; Nahum Goldberg; John V Frangioni; Robert E Lenkinski
Journal:  Mol Imaging       Date:  2008 Jul-Aug       Impact factor: 4.488

9.  Near-infrared fluorescence imaging of microcalcification in an animal model of breast cancer.

Authors:  Robert E Lenkinski; Muneeb Ahmed; Atif Zaheer; John V Frangioni; S Nahum Goldberg
Journal:  Acad Radiol       Date:  2003-10       Impact factor: 3.173

10.  Cone beam micro-CT system for small animal imaging and performance evaluation.

Authors:  Shouping Zhu; Jie Tian; Guorui Yan; Chenghu Qin; Jinchao Feng
Journal:  Int J Biomed Imaging       Date:  2009-09-22
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  3 in total

1.  Diagnostic PET Imaging of Mammary Microcalcifications Using 64Cu-DOTA-Alendronate in a Rat Model of Breast Cancer.

Authors:  Bradley J Ahrens; Lin Li; Alexandra K Ciminera; Junie Chea; Erasmus Poku; James R Bading; Michael R Weist; Marcia M Miller; David M Colcher; John E Shively
Journal:  J Nucl Med       Date:  2017-04-27       Impact factor: 10.057

2.  Bisphosphonate-functionalized gold nanoparticles for contrast-enhanced X-ray detection of breast microcalcifications.

Authors:  Lisa E Cole; Tracy Vargo-Gogola; Ryan K Roeder
Journal:  Biomaterials       Date:  2013-12-18       Impact factor: 12.479

Review 3.  A Molecular View of Pathological Microcalcification in Breast Cancer.

Authors:  Tanu Sharma; James A Radosevich; Geeta Pachori; Chandi C Mandal
Journal:  J Mammary Gland Biol Neoplasia       Date:  2016-01-15       Impact factor: 2.673

  3 in total

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