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Gene expression patterns of breast carcinomas distinguish tumor subclasses with clinical implications

Proceedings of the National Academy of Sciences · 2001 · Vol. 98(19) · pp. 10869–10874
Thérese SørlieCharles M. PerouRobert TibshiraniTurid AasStephanie GeislerHilde JohnsenTrevor HastieMichael B. EisenMatt van de RijnStefanie S. JeffreyThor ThorsenH. QuistJohn C. MatesePatrick O. BrownDavid BotsteinPer Eystein LønningAnne‐Lise Børresen‐Dale

Abstract

The purpose of this study was to classify breast carcinomas based on variations in gene expression patterns derived from cDNA microarrays and to correlate tumor characteristics to clinical outcome. A total of 85 cDNA microarray experiments representing 78 cancers, three fibroadenomas, and four normal breast tissues were analyzed by hierarchical clustering. As reported previously, the cancers could be classified into a basal epithelial-like group, an ERBB2-overexpressing group and a normal breast-like group based on variations in gene expression. A novel finding was that the previously characterized luminal epithelial/estrogen receptor-positive group could be divided into at least two subgroups, each with a distinctive expression profile. These subtypes proved to be reasonably robust by clustering using two different gene sets: first, a set of 456 cDNA clones previously selected to reflect intrinsic properties of the tumors and, second, a gene set that highly correlated with patient outcome. Survival analyses on a subcohort of patients with locally advanced breast cancer uniformly treated in a prospective study showed significantly different outcomes for the patients belonging to the various groups, including a poor prognosis for the basal-like subtype and a significant difference in outcome for the two estrogen receptor-positive groups.

Gene expression and cancer classificationBreast Cancer Treatment StudiesMolecular Biology Techniques and ApplicationsBreast cancerBiologyComplementary DNAMicroarrayGene expressionEstrogen receptorDNA microarrayBasal (medicine)GeneTissue microarray

MeSH terms

AlgorithmsBreast NeoplasmsCarcinoma in SituDNA, NeoplasmFemaleHumansGene ExpressionTumor Suppressor Protein p53FibroadenomaCarcinoma, Ductal, BreastCarcinoma, LobularOligonucleotide Array Sequence AnalysisGene Expression Profiling

Funding

  • Howard Hughes Medical Institute
  • Kreftforeningen
  • Norges Forskningsråd
  • National Cancer Institute
Citations
10,888
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58.44
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24
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100%
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References
Molecular portraits of human breast tumours
Nature · 2000 · 16,173 citations
Cluster analysis and display of genome-wide expression patterns
Proceedings of the National Academy of Sciences · 1998 · 16,353 citations
Significance analysis of microarrays applied to the ionizing radiation response
Proceedings of the National Academy of Sciences · 2001 · 10,653 citations
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