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  4. Isotropic 3D Nuclear Morphometry of Normal, Fibrocystic and Malignant Breast Epithelial Cells Reveals New Structural Alterations
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Isotropic 3D Nuclear Morphometry of Normal, Fibrocystic and Malignant Breast Epithelial Cells Reveals New Structural Alterations

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Title
Isotropic 3D Nuclear Morphometry of Normal, Fibrocystic and Malignant Breast Epithelial Cells Reveals New Structural Alterations
Description
Background
Grading schemes for breast cancer diagnosis are predominantly based on pathologists' qualitative assessment of altered nuclear structure from 2D brightfield microscopy images. However, cells are three-dimensional (3D) objects with features that are inherently 3D and thus poorly characterized in 2D. Our goal is to quantitatively characterize nuclear structure in 3D, assess its variation with malignancy, and investigate whether such variation correlates with standard nuclear grading criteria.
Methodology
We applied micro-optical computed tomographic imaging and automated 3D nuclear morphometry to quantify and compare morphological variations between human cell lines derived from normal, benign fibrocystic or malignant breast epithelium. To reproduce the appearance and contrast in clinical cytopathology images, we stained cells with hematoxylin and eosin and obtained 3D images of 150 individual stained cells of each cell type at sub-micron, isotropic resolution. Applying volumetric image analyses, we computed 42 3D morphological and textural descriptors of cellular and nuclear structure.
Principal Findings
We observed four distinct nuclear shape categories, the predominant being a mushroom cap shape. Cell and nuclear volumes increased from normal to fibrocystic to metastatic type, but there was little difference in the volume ratio of nucleus to cytoplasm (N/C ratio) between the lines. Abnormal cell nuclei had more nucleoli, markedly higher density and clumpier chromatin organization compared to normal. Nuclei of non-tumorigenic, fibrocystic cells exhibited larger textural variations than metastatic cell nuclei. At p<0.0025 by ANOVA and Kruskal-Wallis tests, 90% of our computed descriptors statistically differentiated control from abnormal cell populations, but only 69% of these features statistically differentiated the fibrocystic from the metastatic cell populations.
Conclusions
Our results provide a new perspective on nuclear structure variations associated with malignancy and point to the value of automated quantitative 3D nuclear morphometry as an objective tool to enable development of sensitive and specific nuclear grade classification in breast cancer diagnosis.
Date Created
2012-01-05
Contributors
  • Nandakumar, Vivek (Author)
  • Kelbauskas, Laimonas (Author)
  • Hernandez, Kathryn (Author)
  • Lintecum, Kelly (Author)
  • Senechal, Patti (Author)
  • Bussey, Kimberly (Author)
  • Davies, Paul (Author)
  • Johnson, Roger (Author)
  • Meldrum, Deirdre (Author)
  • Ira A. Fulton School of Engineering (Contributor)
  • School of Electrical, Computer and Energy Engineering (Contributor)
  • Biodesign Institute (Contributor)
  • Center for Biosignatures Discovery Automation (Contributor)
  • College of Liberal Arts and Sciences (Contributor)
  • School of Life Sciences (Contributor)
  • Department of Physics (Contributor)
Resource Type
Text
Extent
9 pages
Language
eng
Copyright Statement
In Copyright
Reuse Permissions
Attribution
Primary Member of
ASU Regents' Professors Open Access Works
Identifier
Digital object identifier: 10.1371/journal.pone.0029230
Identifier Type
ISSN (International Standard Serial Number)
Identifier Value
1045-3830
Identifier Type
ISSN (International Standard Serial Number)
Identifier Value
1939-1560
Series
PLOS ONE
Handle
https://hdl.handle.net/2286/R.I.42369
Preferred Citation

Nandakumar, V., Kelbauskas, L., Hernandez, K. F., Lintecum, K. M., Senechal, P., Bussey, K. J., . . . Meldrum, D. R. (2012). Isotropic 3D Nuclear Morphometry of Normal, Fibrocystic and Malignant Breast Epithelial Cells Reveals New Structural Alterations. PLoS ONE, 7(1). doi:10.1371/journal.pone.0029230

Level of coding
minimal
Cataloging Standards
asu1
Note
The article is published at http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0029230
System Created
  • 2017-04-12 04:22:37
System Modified
  • 2021-08-16 02:23:30
  •     
  • 4 years 10 months ago
Additional Formats
  • OAI Dublin Core
  • MODS XML

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