Literature DB >> 15259643

Classification of breast tissue density by optical transillumination spectroscopy: optical and physiological effects governing predictive value.

Kristina Blyschak1, Michelle Simick, Roberta Jong, Lothar Lilge.   

Abstract

Preventive oncology is in need of a risk assessment technique that can identify individuals at high risk for breast cancer and has the ability to monitor the efficacy of a risk reducing intervention. Optical transillumination spectroscopy (OTS) gives information about breast tissue composition and tissue density. OTS is noninvasive and in contrast to mammography, uses nonionizing radiation. It is safe and can be used frequently on younger women, potentially permitting early risk detection and thus increasing the time available for risk reduction interventions to assert their influence. Before OTS can be used as a risk assessment and/or monitoring technique, its predictive ability needs to be demonstrated and maximized through the construction of various mathematical models relating OTS and breast tissue density, and hence, risk. To establish a correlation between OTS and mammographic density principal components analysis (PCA), using risk classification, is calculated. The PCA scores are presented in three-dimensional cluster plots and a plane of differentiation that separates the high and low tissue densities is used to calculate the predictive value. Stratification of PCA for measurement position on the breast in cranial-caudal projection is introduced. Analysis of PCA scores as a function of the volunteer's age and body mass index (BMI) is examined. A small but significant correlation between the component scores and age or BMI is noted but the correlation is dependent on the tissue density category examined. Correction of the component scores for age and BMI is not recommended, since a priori knowledge of a woman's breast tissue density is required. Stratification for the center and distal measurement positions provide a predictive value for OTS above 96%.

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Year:  2004        PMID: 15259643     DOI: 10.1118/1.1738191

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


  14 in total

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Authors:  David R Busch; Wensheng Guo; Regine Choe; Turgut Durduran; Michael D Feldman; Carolyn Mies; Mark A Rosen; Mitchell D Schnall; Brian J Czerniecki; Julia Tchou; Angela DeMichele; Mary E Putt; Arjun G Yodh
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3.  Blood flow reduction in breast tissue due to mammographic compression.

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4.  Diffuse Optical Monitoring of the Neoadjuvant Breast Cancer Therapy.

Authors:  Regine Choe; Turgut Durduran
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Authors:  Thomas D O'Sullivan; Anaïs Leproux; Jeon-Hor Chen; Shadfar Bahri; Alex Matlock; Darren Roblyer; Christine E McLaren; Wen-Pin Chen; Albert E Cerussi; Min-Ying Su; Bruce J Tromberg
Journal:  Breast Cancer Res       Date:  2013-02-22       Impact factor: 6.466

8.  The association between breast tissue optical content and mammographic density in pre- and post-menopausal women.

Authors:  Kristina M Blackmore; Julia A Knight; Jane Walter; Lothar Lilge
Journal:  PLoS One       Date:  2015-01-15       Impact factor: 3.240

9.  Optical malignancy parameters for monitoring progression of breast cancer neoadjuvant chemotherapy.

Authors:  David R Busch; Regine Choe; Mark A Rosen; Wensheng Guo; Turgut Durduran; Michael D Feldman; Carolyn Mies; Brian J Czerniecki; Julia Tchou; Angela Demichele; Mitchell D Schnall; Arjun G Yodh
Journal:  Biomed Opt Express       Date:  2012-12-14       Impact factor: 3.732

10.  Assessing tumor contrast in radiographically dense breast tissue using Diffuse Optical Spectroscopic Imaging (DOSI).

Authors:  Anaïs Leproux; Amanda Durkin; Montana Compton; Albert E Cerussi; Enrico Gratton; Bruce J Tromberg
Journal:  Breast Cancer Res       Date:  2013       Impact factor: 6.466

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