Image analysis and automatic classification of transformed foci

被引:18
作者
Urani, C. [1 ]
Stefanini, F. M. [2 ]
Bussinelli, L. [3 ]
Melchioretto, P. [1 ]
Crosta, G. F. [3 ]
机构
[1] Univ Milano Bicocca, Dept Environm Sci, Appl Cell Biol Unit, I-120126 Milan, Italy
[2] Univ Florence, Dept Stat G Parenti, I-50100 Florence, Italy
[3] Univ Milano Bicocca, Dept Environm Sci, Inverse Problems & Math Morphol Unit, I-120126 Milan, Italy
关键词
Foci; image analysis; neoplastic transformation; quantitative morphology; Random Forest; spectrum enhancement; OPTICAL-SCATTERING PATTERNS; QUANTITATIVE MORPHOLOGY; CELLS; EXPRESSION; DAMAGE; ASSAY;
D O I
10.1111/j.1365-2818.2009.03171.x
中图分类号
TH742 [显微镜];
学科分类号
摘要
Carcinogenesis is a multi-step process involving genetic alterations and non-genotoxic mechanisms. The in vitro cell transformation assay allows the monitoring of the neoplastic phenotype by foci formation in suitable cells (e.g. C3H10T1/2 mouse embryo fibroblasts) showing aberrant morphology of massive build-up, polar and multi-layered densely stained cells. The classification of transformed foci in C3H cells relies on light microscopy scoring by a trained human expert based on standard rules. This procedure is time-consuming and prone, in some cases, to subjectivity, thereby leading to possible over- or under-estimation of the carcinogenic potential of tested compounds. Herewith we describe the in vitro neoplastic transformation induced by B[a]P and CdCl2, and the development of a foci classifier based on image analysis and statistical classification. The image analysis system, which relies on 'spectrum enhancement', is quantitative and extracts descriptors of foci texture and structure. The statistical classification method is based on the Random Forest algorithm. We obtained a classifier trained by using expert's supervision with a 20% classification error. The proposed method could serve as a basis to automate the in vitro cell transformation assay.
引用
收藏
页码:269 / 279
页数:11
相关论文
共 37 条
[1]  
[Anonymous], 1993, Monographs on the evaluation of carcinogenic risk of chemicals to humans, P58
[2]   Cadmium: cellular effects, modifications of biomolecules, modulation of DNA repair and genotoxic consequences (a review) [J].
Bertin, G. ;
Averbeck, D. .
BIOCHIMIE, 2006, 88 (11) :1549-1559
[3]   Random forests [J].
Breiman, L .
MACHINE LEARNING, 2001, 45 (01) :5-32
[4]   Bagging predictors [J].
Breiman, L .
MACHINE LEARNING, 1996, 24 (02) :123-140
[5]  
Breiman L., 2002, MANUAL SETTING USING, V1
[6]   Cell transformation assays as predictors of human carcinogenicity -: The report and recommendations of ECVAM Workshop 39 [J].
Combes, R ;
Balls, M ;
Curren, R ;
Fischbach, M ;
Fusenig, N ;
Kirkland, D ;
Lasne, C ;
Landolph, J ;
LeBoeuf, R ;
Marquardt, H ;
McCormick, J ;
Müller, L ;
Rivedal, E ;
Sabbioni, E ;
Tanaka, N ;
Vasseur, P ;
Yamasaki, H .
ATLA-ALTERNATIVES TO LABORATORY ANIMALS, 1999, 27 (05) :745-767
[7]   Quantitative morphology of cytoskeletal organization: new classifier architectures and applications [J].
Crosta, GF ;
Urani, C ;
Fumarola, L ;
Chieppa, RV .
Imaging, Manipulation, and Analysis of Biomolecules and Cells: Fundamentals and Applications III, 2005, 5699 :373-383
[8]   Estimating structural damage of the cytoskeleton by means of morophological descriptions [J].
Crosta, GF ;
Urani, C ;
Fumarola, L .
BIOPHOTONICS NEW FRONTIER: FROM GENOME TO PROTEOME, 2004, 5461 :78-89
[9]   A cytoskeletal injury classifier based on "spectrum enhancement" and data fusion [J].
Crosta, GF ;
Urani, C ;
Fumarola, L .
IMAGING, MANIPULATION, AND ANALYSIS OF BIOMOLECULES, CELLS, AND TISSUES II, 2004, 5322 :83-94
[10]   FOURIER and fractal analysis of cytoskeletal morphology altered by xenobiotics [J].
Crosta, GF ;
Urani, C ;
Fumarola, L .
MANIPULATION AND ANALYSIS OF BIOMOLECULES, CELLS AND TISSUES, 2003, 4962 :329-340