Literature DB >> 22894430

Characterization of the homogeneous tissue mixture approximation in breast imaging dosimetry.

Ioannis Sechopoulos1, Kristina Bliznakova, Xulei Qin, Baowei Fei, Steve Si Jia Feng.   

Abstract

PURPOSE: To compare the estimate of normalized glandular dose in mammography and breast CT imaging obtained using the actual glandular tissue distribution in the breast to that obtained using the homogeneous tissue mixture approximation.
METHODS: Twenty volumetric images of patient breasts were acquired with a dedicated breast CT prototype system and the voxels in the breast CT images were automatically classified into skin, adipose, and glandular tissue. The breasts in the classified images underwent simulated mechanical compression to mimic the conditions present during mammographic acquisition. The compressed thickness for each breast was set to that achieved during each patient's last screening cranio-caudal (CC) acquisition. The volumetric glandular density of each breast was computed using both the compressed and uncompressed classified images, and additional images were created in which all voxels representing adipose and glandular tissue were replaced by a homogeneous mixture of these two tissues in a proportion corresponding to each breast's volumetric glandular density. All four breast images (compressed and uncompressed; heterogeneous and homogeneous tissue) were input into Monte Carlo simulations to estimate the normalized glandular dose during mammography (compressed breasts) and dedicated breast CT (uncompressed breasts). For the mammography simulations the x-ray spectra used was that used during each patient's last screening CC acquisition. For the breast CT simulations, two x-ray spectra were used, corresponding to the x-ray spectra with the lowest and highest energies currently being used in dedicated breast CT prototype systems under clinical investigation. The resulting normalized glandular dose for the heterogeneous and homogeneous versions of each breast for each modality was compared.
RESULTS: For mammography, the normalized glandular dose based on the homogeneous tissue approximation was, on average, 27% higher than that estimated using the true heterogeneous glandular tissue distribution (Wilcoxon Signed Rank Test p = 0.00046). For dedicated breast CT, the overestimation of normalized glandular dose was, on average, 8% (49 kVp spectrum, p = 0.00045) and 4% (80 kVp spectrum, p = 0.000089). Only two cases in mammography and two cases in dedicated breast CT with a tube voltage of 49 kVp resulted in lower dose estimates for the homogeneous tissue approximation compared to the heterogeneous tissue distribution.
CONCLUSIONS: The normalized glandular dose based on the homogeneous tissue mixture approximation results in a significant overestimation of dose to the imaged breast. This overestimation impacts the use of dose estimates in absolute terms, such as for risk estimates, and may impact some comparative studies, such as when modalities or techniques with different x-ray energies are used. The error introduced by the homogeneous tissue mixture approximation in higher energy x-ray modalities, such as dedicated breast CT, although statistically significant, may not be of clinical concern. Further work is required to better characterize this overestimation and potentially develop new metrics or correction factors to better estimate the true glandular dose to breasts undergoing imaging with ionizing radiation.

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Year:  2012        PMID: 22894430      PMCID: PMC3416880          DOI: 10.1118/1.4737025

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  43 in total

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2.  Glandular breast dose for monoenergetic and high-energy X-ray beams: Monte Carlo assessment.

Authors:  J M Boone
Journal:  Radiology       Date:  1999-10       Impact factor: 11.105

3.  Additional factors for the estimation of mean glandular breast dose using the UK mammography dosimetry protocol.

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4.  Cone-beam CT for breast imaging: Radiation dose, breast coverage, and image quality.

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5.  Scatter radiation in digital tomosynthesis of the breast.

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6.  The myth of the 50-50 breast.

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Review 7.  Clinical practice. Breast-cancer screening.

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Authors:  D R Dance
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10.  Radiation doses received in the UK Breast Screening Programme in 2001 and 2002.

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  18 in total

1.  Breast dose in mammography is about 30% lower when realistic heterogeneous glandular distributions are considered.

Authors:  Andrew M Hernandez; J Anthony Seibert; John M Boone
Journal:  Med Phys       Date:  2015-11       Impact factor: 4.071

2.  Prospects for in vivo estimation of photon linear attenuation coefficients using postprocessing dual-energy CT imaging on a commercial scanner: comparison of analytic and polyenergetic statistical reconstruction algorithms.

Authors:  Joshua D Evans; Bruce R Whiting; Joseph A O'Sullivan; David G Politte; Paul H Klahr; Yaduo Yu; Jeffrey F Williamson
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3.  A Monte Carlo model for mean glandular dose evaluation in spot compression mammography.

Authors:  Antonio Sarno; David R Dance; Ruben E van Engen; Kenneth C Young; Paolo Russo; Francesca Di Lillo; Giovanni Mettivier; Kristina Bliznakova; Baowei Fei; Ioannis Sechopoulos
Journal:  Med Phys       Date:  2017-06-13       Impact factor: 4.071

4.  The compressed breast during mammography and breast tomosynthesis: in vivo shape characterization and modeling.

Authors:  Alejandro Rodríguez-Ruiz; Greeshma A Agasthya; Ioannis Sechopoulos
Journal:  Phys Med Biol       Date:  2017-08-07       Impact factor: 3.609

5.  Improvements of an objective model of compressed breasts undergoing mammography: Generation and characterization of breast shapes.

Authors:  Alejandro Rodríguez-Ruiz; Steve Si Jia Feng; Jan van Zelst; Suzan Vreemann; Jessica Rice Mann; Carl Joseph D'Orsi; Ioannis Sechopoulos
Journal:  Med Phys       Date:  2017-04-25       Impact factor: 4.071

6.  Register cardiac fiber orientations from 3D DTI volume to 2D ultrasound image of rat hearts.

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7.  Monte Carlo study on optimal breast voxel resolution for dosimetry estimates in digital breast tomosynthesis.

Authors:  Christian Fedon; Carolina Rabin; Marco Caballo; Oliver Diaz; Eloy García; Alejandro Rodríguez-Ruiz; Gabriel A González-Sprinberg; Ioannis Sechopoulos
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8.  Breast Tissue Classification in Digital Tomosynthesis Images Based on Global Gradient Minimization and Texture Features.

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9.  Dosimetry in x-ray-based breast imaging.

Authors:  David R Dance; Ioannis Sechopoulos
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10.  3D in vivo imaging of rat hearts by high frequency ultrasound and its application in myofiber orientation wrapping.

Authors:  Xulei Qin; Silun Wang; Ming Shen; Xiaodong Zhang; Stamatios Lerakis; Mary B Wagner; Baowei Fei
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2015
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