Multiscale iterative voting for differential analysis of stress response for 2D and 3D cell culture models

Three-dimensional (2D) cell culture models have emerged as the basis for improved cell systems biology. However, there is a gap in robust computational techniques for segmentation of these model systems that are imaged through confocal or deconvolution microscopy. The main issues are the volume of d...

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Veröffentlicht in:Journal of microscopy (Oxford) 2011-03, Vol.241 (3), p.315-326
Hauptverfasser: HAN, J, CHANG, H, YANG, Q, FONTENAY, G, GROESSER, T, BARCELLOS-HOFF, M. HELEN, PARVIN, B
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container_end_page 326
container_issue 3
container_start_page 315
container_title Journal of microscopy (Oxford)
container_volume 241
creator HAN, J
CHANG, H
YANG, Q
FONTENAY, G
GROESSER, T
BARCELLOS-HOFF, M. HELEN
PARVIN, B
description Three-dimensional (2D) cell culture models have emerged as the basis for improved cell systems biology. However, there is a gap in robust computational techniques for segmentation of these model systems that are imaged through confocal or deconvolution microscopy. The main issues are the volume of data, overlapping subcellular compartments and variation in scale or size of subcompartments of interest, which lead to ambiguities for quantitative analysis on a cell-by-cell basis. We address these ambiguities through a series of geometric operations that constrain the problem through iterative voting and decomposition strategies. The main contributions of this paper are to (i) extend the previously developed 2D radial voting to an efficient 3D implementation, (ii) demonstrate application of iterative radial voting at multiple subcellular and molecular scales, and (iii) investigate application of the proposed technology to two endpoints between 2D and 3D cell culture models. These endpoints correspond to kinetics of DNA damage repair as measured by phosphorylation of γH2AX, and the loss of the membrane-bound E-cadherin protein as a result of ionizing radiation. Preliminary results indicate little difference in the kinetics of the DNA damage protein between 2D and 3D cell culture models; however, differences between membrane-bound E-cadherin are more pronounced.
doi_str_mv 10.1111/j.1365-2818.2010.03442.x
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subjects 3D cell culture models
Cell Culture Techniques
Cell Line
Epithelial Cells - chemistry
Epithelial Cells - cytology
expectation maximization
E‐cadherin
Humans
Image Processing, Computer-Assisted - methods
ionizing radiation
iterative voting
Microscopy - methods
Organ Culture Techniques
segmentation
Stress, Physiological
γH2AX
title Multiscale iterative voting for differential analysis of stress response for 2D and 3D cell culture models
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