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PMID: 16731633 Published · ppublish English Journal Article Research Support, N.I.H., Extramural

Imaging breast adipose and fibroglandular tissue molecular signatures by using hybrid MRI-guided near-infrared spectral tomography.

Brooksby B, Pogue BW, Jiang S, Dehghani H, Srinivasan S, Kogel C, Tosteson TD, Weaver J, Poplack SP, Paulsen KD

Abstract

Magnetic resonance (MR)-guided near-infrared spectral tomography was developed and used to image adipose and fibroglandular breast tissue of 11 normal female subjects, recruited under an institutional review board-approved protocol. Images of hemoglobin, oxygen saturation, water fraction, and subcellular scattering were reconstructed and show that fibroglandular fractions of both blood and water are higher than in adipose tissue. Variation in adipose and fibroglandular tissue composition between individuals was not significantly different across the scattered and dense breast categories. Combined MR and near-infrared tomography provides fundamental molecular information about these tissue types with resolution governed by MR T1 images.

MeSH Terms
Adipose Tissue/cytology Aged Breast/cytology Female Hemoglobins/metabolism Humans Image Processing, Computer-Assisted Magnetic Resonance Imaging/methods Middle Aged Spectroscopy, Near-Infrared/methods Tomography/methods
Chemicals
Hemoglobins
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Brooksby Ben
Thayer School of Engineering, Dartmouth College, 8000 Cummings Hall, Hanover, NH 03755, USA.
Pogue Brian W
Jiang Shudong
Dehghani Hamid
Srinivasan Subhadra
Kogel Christine
Tosteson Tor D
Weaver John
Poplack Steven P
Paulsen Keith D
References (34)
34 references, click to expand
  1. Combining near-infrared tomography and magnetic resonance imaging to study in vivo breast tissue: implementation of a Laplacian-type regularization to incorporate magnetic resonance structure.
    J Biomed Opt. 2005 Sep-Oct;10(5):051504 PMID: 16292948
  2. Noninvasive functional optical spectroscopy of human breast tissue.
    Proc Natl Acad Sci U S A. 2001 Apr 10;98(8):4420-5 PMID: 11287650
  3. Near-infrared fluorescent type II quantum dots for sentinel lymph node mapping.
    Nat Biotechnol. 2004 Jan;22(1):93-7 PMID: 14661026
  4. Breast cancer detection based on incremental biochemical and physiological properties of breast cancers: a six-year, two-site study.
    Acad Radiol. 2005 Aug;12(8):925-33 PMID: 16023383
  5. Enhanced frequency-domain optical image reconstruction in tissues through total-variation minimization.
    Appl Opt. 1996 Jul 1;35(19):3447-58 PMID: 21102734
  6. Concurrent MRI and diffuse optical tomography of breast after indocyanine green enhancement.
    Proc Natl Acad Sci U S A. 2000 Mar 14;97(6):2767-72 PMID: 10706610
  7. Near-infrared characterization of disease via vascular permeability probes.
    Acad Radiol. 2006 Jan;13(1):1-3 PMID: 16399027
  8. MRI-guided diffuse optical spectroscopy of malignant and benign breast lesions.
    Neoplasia. 2002 Jul-Aug;4(4):347-54 PMID: 12082551
  9. Physiological and pathological factors of human breast disease that can influence optical diagnosis.
    Ann N Y Acad Sci. 1998 Feb 9;838:171-93 PMID: 9511805
  10. Optical properties of normal and diseased human breast tissues in the visible and near infrared.
    Phys Med Biol. 1990 Sep;35(9):1317-34 PMID: 2236211
  11. The effect of tamoxifen on breast tumour vascularity.
    Breast Cancer Res Treat. 2001 Mar;66(1):9-15 PMID: 11368415
  12. Bulk optical properties of healthy female breast tissue.
    Phys Med Biol. 2002 Aug 21;47(16):2847-61 PMID: 12222850
  13. High-resolution near-infrared tomographic imaging simulations of the rat cranium by use of a priori magnetic resonance imaging structural information.
    Opt Lett. 1998 Nov 1;23(21):1716-8 PMID: 18091894
  14. Spectroscopic time-resolved diffuse reflectance and transmittance measurements of the female breast at different interfiber distances.
    J Biomed Opt. 2004 Nov-Dec;9(6):1143-51 PMID: 15568934
  15. Interpreting hemoglobin and water concentration, oxygen saturation, and scattering measured in vivo by near-infrared breast tomography.
    Proc Natl Acad Sci U S A. 2003 Oct 14;100(21):12349-54 PMID: 14514888
  16. [Novel infrared spectroscopy methods for clinical diagnosis of tumor].
    Guang Pu Xue Yu Guang Pu Fen Xi. 2005 Nov;25(11):1775-8 PMID: 16499041
  17. Intra-tumoural microvessel density in human solid tumours.
    Br J Cancer. 2002 May 20;86(10):1566-77 PMID: 12085206
  18. Near-infrared fluorescence imaging of microcalcification in an animal model of breast cancer.
    Acad Radiol. 2003 Oct;10(10):1159-64 PMID: 14587634
  19. Tomographic optical breast imaging guided by three-dimensional mammography.
    Appl Opt. 2003 Sep 1;42(25):5181-90 PMID: 12962399
  20. Generation of anisotropic-smoothness regularization filters for EIT.
    IEEE Trans Med Imaging. 2002 Jun;21(6):579-87 PMID: 12166853
  21. Spectral priors improve near-infrared diffuse tomography more than spatial priors.
    Opt Lett. 2005 Aug 1;30(15):1968-70 PMID: 16092235
  22. Non-ionizing near-infrared radiation transillumination spectroscopy for breast tissue density and assessment of breast cancer risk.
    J Biomed Opt. 2004 Jul-Aug;9(4):794-803 PMID: 15250768
  23. Optical tomographic reconstruction in a complex head model using a priori region boundary information.
    Phys Med Biol. 1999 Nov;44(11):2703-21 PMID: 10588279
  24. Identifying microcalcifications in benign and malignant breast lesions by probing differences in their chemical composition using Raman spectroscopy.
    Cancer Res. 2002 Sep 15;62(18):5375-80 PMID: 12235010
  25. Characterization of hemoglobin, water, and NIR scattering in breast tissue: analysis of intersubject variability and menstrual cycle changes.
    J Biomed Opt. 2004 May-Jun;9(3):541-52 PMID: 15189092
  26. Noninvasive, infrared monitoring of cerebral and myocardial oxygen sufficiency and circulatory parameters.
    Science. 1977 Dec 23;198(4323):1264-7 PMID: 929199
  27. Sources of absorption and scattering contrast for near-infrared optical mammography.
    Acad Radiol. 2001 Mar;8(3):211-8 PMID: 11249084
  28. Tumor hypoxia: causative factors, compensatory mechanisms, and cellular response.
    Oncologist. 2004;9 Suppl 5:4-9 PMID: 15591417
  29. Approximation of Mie scattering parameters in near-infrared tomography of normal breast tissue in vivo.
    J Biomed Opt. 2005 Sep-Oct;10(5):051704 PMID: 16292956
  30. Near-infrared characterization of breast tumors in vivo using spectrally-constrained reconstruction.
    Technol Cancer Res Treat. 2005 Oct;4(5):513-26 PMID: 16173822
  31. Mammographic densities and breast cancer risk.
    Cancer Epidemiol Biomarkers Prev. 1998 Dec;7(12):1133-44 PMID: 9865433
  32. Imaging tumor angiogenesis by use of combined near-infrared diffusive light and ultrasound.
    Opt Lett. 2003 Mar 1;28(5):337-9 PMID: 12659436
  33. Light scattering in Intralipid-10% in the wavelength range of 400-1100 nm.
    Appl Opt. 1991 Nov 1;30(31):4507-14 PMID: 20717241
  34. Comparison of imaging geometries for diffuse optical tomography of tissue.
    Opt Express. 1999 Apr 12;4(8):270-86 PMID: 19396284
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2006-06-06
Epub
2006-00-26
Pages
8828-33
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC1482663
Subset
IM
Grants
NCI NIH HHS · P30 CA023108 · United States
NCI NIH HHS · R01CA69544 · United States
NCI NIH HHS · P01CA80139 · United States
NCI NIH HHS · R01 CA069544 · United States
NCI NIH HHS · P01 CA080139 · United States
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