Identification of cell-of-origin breast tumor subtypes in inflammatory breast cancer by gene expression profiling

被引:88
作者
Van Laere, SJ
Van den Eynden, GG
Van der Auwera, I
Vandenberghe, M
van Dam, P
Van Marck, EA
van Golen, KL
Vermeulen, PB
Dirix, LY
机构
[1] Univ Antwerp, Pathol Lab, Translat Canc Res Grp, Antwerp, Belgium
[2] Gen Hosp Sint Augustinus, Ctr Oncol, Antwerp, Belgium
[3] Univ Michigan, Ctr Comprehens Canc, Dept Internal Med, Div Hematol & Oncol, Ann Arbor, MI 48109 USA
[4] AZ Sint Augustinus, Dept Pathol, B-2610 Antwerp, Belgium
关键词
cell-of-origin subtypes; gene-expression profiling; imflammatory breast cancer; microarray;
D O I
10.1007/s10549-005-9015-9
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Inflammatory breast cancer (IBC) is an aggressive form of locally advanced breast cancer with high metastatic potential. Most patients have lymph node involvement at the time of diagnosis and 1/3 of the patients have distant metastases. In a previous study, we demonstrated that IBC is a distinct form of breast cancer in comparison with non-IBC. The aim of this study was to investigate the presence of the different molecular subtypes in our data set of 16 IBC and 18 non-IBC specimen. Therefore, we selected an 'intrinsic gene set' of 144 genes, present on our cDNA chips and common to the Cyintrinsic gene set' described by Sorlie et al. [PNAS, 2003]. This set of genes was tested for performance in the Norway/Stanford data set by unsupervised hierarchical clustering. Expression centroids were then calculated for the core members of each of the five subclasses in the Norway/Stanford data set and used to classify our own specimens by calculating Spearman correlations between each sample and each centroid. We identified the same cell-of-origin subtypes in IBC as those already described in non-IBC. The classification was in good agreement with immunohistochemical data for estrogen receptor protein expression and cytokeratin 5/6 protein expression. Confirmation was done by an alternative unsupervised hierarchical clustering method. The robustness of this classification was assessed by an unsupervised hierarchical clustering with an alternative gene set of 141 genes related to the cell-of-origin subtypes, selected using a discriminating score and iterative random permutation testing. The contribution of the different cell-of-origin subtypes to the IBC phenotype was investigated by principal component analysis. Generally, the combined ErbB2-overexpressing and basal-like cluster was more expressed in IBC compared to non-IBC, whereas the combined luminal A, luminal B and normal-like cluster was more pronounced in non-IBC compared to IBC. The presence of the same molecular cell-of-origin subtypes in IBC as in non-IBC does not exclude the specific molecular nature of IBC, since gene lists that characterize IBC and non-IBC are entirely different from gene lists that define the different cell-of-origin subtypes, as evidenced by principal component analysis.
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收藏
页码:243 / 255
页数:13
相关论文
共 34 条
[1]  
American Joint Committee on Cancer, 2002, AJCC CANC STAG MAN, P221
[2]   Gene expression profiling identifies molecular subtypes of inflammatory breast cancer [J].
Bertucci, F ;
Finetti, P ;
Rougemont, J ;
Charafe-Jauffret, E ;
Cervera, N ;
Tarpin, C ;
Nguyen, C ;
Xerri, L ;
Houlgatte, M ;
Jacquemier, J ;
Viens, P ;
Birnbaum, D .
CANCER RESEARCH, 2005, 65 (06) :2170-2178
[3]   Gene expression profiling for molecular characterization of inflammatory breast cancer and prediction of response to chemotherapy [J].
Bertucci, F ;
Finetti, P ;
Rougemont, J ;
Charafe-Jauffret, E ;
Nasser, V ;
Loriod, W ;
Camerlo, J ;
Tagett, R ;
Tarpin, C ;
Houvenaeghel, G ;
Nguyen, C ;
Maraninchi, D ;
Jacquemier, J ;
Houlgatte, R ;
Birnbaum, D ;
Viens, P .
CANCER RESEARCH, 2004, 64 (23) :8558-8565
[4]   Inflammatory breast cancer shows angiogenesis with high endothelial proliferation rate and strong E-cadherin expression [J].
Colpaert, CG ;
Vermeulen, PB ;
Benoy, I ;
Soubry, A ;
Van Roy, F ;
van Beest, P ;
Goovaerts, G ;
Dirix, LY ;
Van Dam, P ;
Fox, SB ;
Harris, AL ;
Van Marck, EA .
BRITISH JOURNAL OF CANCER, 2003, 88 (05) :718-725
[5]   EGF controls the in vivo developmental potential of a mammary epithelial cell line possessing progenitor properties [J].
Deugnier, MA ;
Faraldo, MM ;
Janji, B ;
Rousselle, P ;
Thiery, JP ;
Glukhova, MA .
JOURNAL OF CELL BIOLOGY, 2002, 159 (03) :453-463
[6]   Breast cancer, stem/progenitor cells and the estrogen receptor [J].
Dontu, G ;
El-Ashry, D ;
Wicha, MS .
TRENDS IN ENDOCRINOLOGY AND METABOLISM, 2004, 15 (05) :193-197
[7]   Molecular classification of cancer: Class discovery and class prediction by gene expression monitoring [J].
Golub, TR ;
Slonim, DK ;
Tamayo, P ;
Huard, C ;
Gaasenbeek, M ;
Mesirov, JP ;
Coller, H ;
Loh, ML ;
Downing, JR ;
Caligiuri, MA ;
Bloomfield, CD ;
Lander, ES .
SCIENCE, 1999, 286 (5439) :531-537
[8]   STRUCTURE AND EXPRESSION OF C-ERB-2 AND EGF RECEPTOR GENES IN INFLAMMATORY AND NON-INFLAMMATORY BREAST-CANCER - PROGNOSTIC-SIGNIFICANCE [J].
GUERIN, M ;
GABILLOT, M ;
MATHIEU, MC ;
TRAVAGLI, JP ;
SPIELMANN, M ;
ANDRIEU, N ;
RIOU, G .
INTERNATIONAL JOURNAL OF CANCER, 1989, 43 (02) :201-208
[9]   Epithelial-mesenchymal transition -: NF-κB takes center stage [J].
Huber, MA ;
Beug, H ;
Wirth, T .
CELL CYCLE, 2004, 3 (12) :1477-1480
[10]   NF-κB is essential for epithelial-mesenchymal transition and metastasis in a model of breast cancer progression [J].
Huber, MA ;
Azoitei, N ;
Baumann, B ;
Grünert, S ;
Sommer, A ;
Pehamberger, H ;
Kraut, N ;
Beug, H ;
Wirth, T .
JOURNAL OF CLINICAL INVESTIGATION, 2004, 114 (04) :569-581