Literature DB >> 23729641

Application of Raman spectroscopy to identify microcalcifications and underlying breast lesions at stereotactic core needle biopsy.

Ishan Barman1, Narahara Chari Dingari, Anushree Saha, Sasha McGee, Luis H Galindo, Wendy Liu, Donna Plecha, Nina Klein, Ramachandra Rao Dasari, Maryann Fitzmaurice.   

Abstract

Microcalcifications are a feature of diagnostic significance on a mammogram and a target for stereotactic breast needle biopsy. Here, we report development of a Raman spectroscopy technique to simultaneously identify microcalcification status and diagnose the underlying breast lesion, in real-time, during stereotactic core needle biopsy procedures. Raman spectra were obtained ex vivo from 146 tissue sites from fresh stereotactic breast needle biopsy tissue cores from 33 patients, including 50 normal tissue sites, 77 lesions with microcalcifications, and 19 lesions without microcalcifications, using a compact clinical system. The Raman spectra were modeled on the basis of the breast tissue components, and a support vector machine framework was used to develop a single-step diagnostic algorithm to distinguish normal tissue, fibrocystic change (FCC), fibroadenoma, and breast cancer, in the absence and presence of microcalcifications. This algorithm was subjected to leave-one-site-out cross-validation, yielding a positive predictive value, negative predictive value, sensitivity, and specificity of 100%, 95.6%, 62.5%, and 100% for diagnosis of breast cancer (with or without microcalcifications) and an overall accuracy of 82.2% for classification into specific categories of normal tissue, FCC, fibroadenoma, or breast cancer (with and without microcalcifications). Notably, the majority of breast cancers diagnosed are ductal carcinoma in situ (DCIS), the most common lesion associated with microcalcifications, which could not be diagnosed using previous Raman algorithm(s). Our study shows the potential of Raman spectroscopy to concomitantly detect microcalcifications and diagnose associated lesions, including DCIS, and thus provide real-time feedback to radiologists during such biopsy procedures, reducing nondiagnostic and false-negative biopsies. ©2013 AACR.

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Year:  2013        PMID: 23729641      PMCID: PMC3754785          DOI: 10.1158/0008-5472.CAN-12-2313

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   12.701


  30 in total

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Authors:  Jieyue He; Hae-Jin Hu; Robert Harrison; Phang C Tai; Yi Pan
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2.  Comparison of autofluorescence, diffuse reflectance, and Raman spectroscopy for breast tissue discrimination.

Authors:  Shovan K Majumder; Matthew D Keller; Fouad I Boulos; Mark C Kelley; Anita Mahadevan-Jansen
Journal:  J Biomed Opt       Date:  2008 Sep-Oct       Impact factor: 3.170

3.  Biochemical correlation of Raman spectra of normal, benign and malignant breast tissues: a spectral deconvolution study.

Authors:  M V P Chowdary; K Kalyan Kumar; Stanley Mathew; Lakshmi Rao; C Murali Krishna; Jacob Kurien
Journal:  Biopolymers       Date:  2009-07       Impact factor: 2.505

4.  Raman spectroscopy and fluorescence photon migration for breast cancer diagnosis and imaging.

Authors:  R Manoharan; K Shafer; L Perelman; J Wu; K Chen; G Deinum; M Fitzmaurice; J Myles; J Crowe; R R Dasari; M S Feld
Journal:  Photochem Photobiol       Date:  1998-01       Impact factor: 3.421

5.  Development and comparative assessment of Raman spectroscopic classification algorithms for lesion discrimination in stereotactic breast biopsies with microcalcifications.

Authors:  Narahara Chari Dingari; Ishan Barman; Anushree Saha; Sasha McGee; Luis H Galindo; Wendy Liu; Donna Plecha; Nina Klein; Ramachandra Rao Dasari; Maryann Fitzmaurice
Journal:  J Biophotonics       Date:  2012-07-20       Impact factor: 3.207

6.  Development of a spatially offset Raman spectroscopy probe for breast tumor surgical margin evaluation.

Authors:  Matthew D Keller; Elizabeth Vargis; Nara de Matos Granja; Robert H Wilson; Mary-Ann Mycek; Mark C Kelley; Anita Mahadevan-Jansen
Journal:  J Biomed Opt       Date:  2011-07       Impact factor: 3.170

7.  Raman 'optical biopsy' of human breast cancer.

Authors:  Halina Abramczyk; Beata Brozek-Pluska; Jakub Surmacki; Joanna Jablonska-Gajewicz; Radzisław Kordek
Journal:  Prog Biophys Mol Biol       Date:  2011-11-19       Impact factor: 3.667

8.  Histological correlation of microcalcifications in breast biopsy specimens.

Authors:  J M Johnson; R R Dalton; S M Wester; J Landercasper; P J Lambert
Journal:  Arch Surg       Date:  1999-07

9.  Depth profiling of calcifications in breast tissue using picosecond Kerr-gated Raman spectroscopy.

Authors:  Rebecca Baker; Pavel Matousek; Kate Louise Ronayne; Anthony William Parker; Keith Rogers; Nicholas Stone
Journal:  Analyst       Date:  2006-11-28       Impact factor: 4.616

10.  Rapid and accurate determination of tissue optical properties using least-squares support vector machines.

Authors:  Ishan Barman; Narahara Chari Dingari; Narasimhan Rajaram; James W Tunnell; Ramachandra R Dasari; Michael S Feld
Journal:  Biomed Opt Express       Date:  2011-02-15       Impact factor: 3.732

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  26 in total

1.  Biochemical characterization of human gingival crevicular fluid during orthodontic tooth movement using Raman spectroscopy.

Authors:  Gyeong Bok Jung; Kyung-A Kim; Ihn Han; Young-Guk Park; Hun-Kuk Park
Journal:  Biomed Opt Express       Date:  2014-09-10       Impact factor: 3.732

2.  A simple and rapid detection of tissue adhesive-induced biochemical changes in cells and DNA using Raman spectroscopy.

Authors:  Gyeong Bok Jung; Young Ju Lee; Gihyun Lee; Hun-Kuk Park
Journal:  Biomed Opt Express       Date:  2013-10-29       Impact factor: 3.732

3.  Label-Free Raman Spectroscopy Reveals Signatures of Radiation Resistance in the Tumor Microenvironment.

Authors:  Santosh K Paidi; Paola Monterroso Diaz; Sina Dadgar; Samir V Jenkins; Charles M Quick; Robert J Griffin; Ruud P M Dings; Narasimhan Rajaram; Ishan Barman
Journal:  Cancer Res       Date:  2019-02-28       Impact factor: 12.701

4.  Precision biopsy of breast microcalcifications: An improvement in surgical excision.

Authors:  You Peng; Zhong-Yao Luo; Jie Ni; Hai-Dong Cui; Bei Lu; Ai-Zhai Xiang; Jun Zhou; Jin-Wang Ding; Wen-Hui Chen; Jing Zhao; Jian-Hua Fang; Pan Zhao
Journal:  Oncol Lett       Date:  2018-05-22       Impact factor: 2.967

5.  Raman active components of skin cancer.

Authors:  Xu Feng; Austin J Moy; Hieu T M Nguyen; Jason Zhang; Matthew C Fox; Katherine R Sebastian; Jason S Reichenberg; Mia K Markey; James W Tunnell
Journal:  Biomed Opt Express       Date:  2017-05-04       Impact factor: 3.732

6.  Label-Free Raman Spectroscopy Detects Stromal Adaptations in Premetastatic Lungs Primed by Breast Cancer.

Authors:  Santosh Kumar Paidi; Asif Rizwan; Chao Zheng; Menglin Cheng; Kristine Glunde; Ishan Barman
Journal:  Cancer Res       Date:  2016-11-15       Impact factor: 12.701

7.  Raman Spectroscopy Differentiates Each Tissue from the Skin to the Spinal Cord: A Novel Method for Epidural Needle Placement?

Authors:  T Anthony Anderson; Jeon Woong Kang; Tatyana Gubin; Ramachandra R Dasari; Peter T C So
Journal:  Anesthesiology       Date:  2016-10       Impact factor: 7.892

8.  Percutaneous CT-guided needle biopsies of musculoskeletal tumors: a 5-year analysis of non-diagnostic biopsies.

Authors:  Connie Y Chang; Ambrose J Huang; Miriam A Bredella; Martin Torriani; Elkan F Halpern; Daniel I Rosenthal; Dempsey S Springfield
Journal:  Skeletal Radiol       Date:  2015-09-04       Impact factor: 2.199

Review 9.  Clinical instrumentation and applications of Raman spectroscopy.

Authors:  Isaac Pence; Anita Mahadevan-Jansen
Journal:  Chem Soc Rev       Date:  2016-04-07       Impact factor: 54.564

10.  Discerning the differential molecular pathology of proliferative middle ear lesions using Raman spectroscopy.

Authors:  Rishikesh Pandey; Santosh Kumar Paidi; Jeon Woong Kang; Nicolas Spegazzini; Ramachandra Rao Dasari; Tulio Alberto Valdez; Ishan Barman
Journal:  Sci Rep       Date:  2015-08-20       Impact factor: 4.379

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