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A taxonomy of epithelial human cancer and their metastases
Olivier Gevaert1, Anneleen Daemen, Bart De Moor
1Bioinformatics, Department of Electrical Engineering (ESAT/SCD), Katholieke Universiteit Leuven, Belgium. olivier.gevaert@esat.kuleuven.be
Background:
Microarray technology has allowed to molecularly characterize many different cancer sites. This technology has the potential to individualize therapy and to discover new drug targets. However, due to technological differences and issues in standardized sample collection no study has evaluated the molecular profile of epithelial human cancer in a large number of samples and tissues. Additionally, it has not yet been extensively investigated whether metastases resemble their tissue of origin or tissue of destination.
Methods:
We studied the expression profiles of a series of 1566 primary and 178 metastases by unsupervised hierarchical clustering. The clustering profile was subsequently investigated and correlated with clinico-pathological data. Statistical enrichment of clinico-pathological annotations of groups of samples was investigated using Fisher exact test. Gene set enrichment analysis (GSEA) and DAVID functional enrichment analysis were used to investigate the molecular pathways. Kaplan-Meier survival analysis and log-rank tests were used to investigate prognostic significance of gene signatures.
Results:
Large clusters corresponding to breast, gastrointestinal, ovarian and kidney primary tissues emerged from the data. Chromophobe renal cell carcinoma clustered together with follicular differentiated thyroid carcinoma, which supports recent morphological descriptions of thyroid follicular carcinoma-like tumors in the kidney and suggests that they represent a subtype of chromophobe carcinoma. We also found an expression signature identifying primary tumors of squamous cell histology in multiple tissues. Next, a subset of ovarian tumors enriched with endometrioid histology clustered together with endometrium tumors, confirming that they share their etiopathogenesis, which strongly differs from serous ovarian tumors. In addition, the clustering of colon and breast tumors correlated with clinico-pathological characteristics. Moreover, a signature was developed based on our unsupervised clustering of breast tumors and this was predictive for disease-specific survival in three independent studies. Next, the metastases from ovarian, breast, lung and vulva cluster with their tissue of origin while metastases from colon showed a bimodal distribution. A significant part clusters with tissue of origin while the remaining tumors cluster with the tissue of destination.
Conclusion:
Our molecular taxonomy of epithelial human cancer indicates surprising correlations over tissues. This may have a significant impact on the classification of many cancer sites and may guide pathologists, both in research and daily practice. Moreover, these results based on unsupervised analysis yielded a signature predictive of clinical outcome in breast cancer. Additionally, we hypothesize that metastases from gastrointestinal origin either remember their tissue of origin or adapt to the tissue of destination. More specifically, colon metastases in the liver show strong evidence for such a bimodal tissue specific profile.
Insights
This study reveals surprising molecular similarities across different epithelial cancers, aiding in classification and identifying a breast cancer survival predictor. Metastases may originate from their tissue or adapt to their destination.
Area of Science:
- Oncology
- Molecular Biology
- Bioinformatics
Background:
- Microarray technology enables molecular characterization of diverse cancer types for personalized therapy and drug discovery.
- Lack of standardized sample collection and technological variations have hindered large-scale molecular profiling of epithelial cancers.
- The origin-versus-destination molecular resemblance of metastases remains underexplored.
Purpose of the Study:
- To perform a large-scale molecular profiling of epithelial human cancers using gene expression data.
- To investigate the molecular similarities and differences between primary tumors and their metastases.
- To identify molecular signatures predictive of clinical outcomes.
Main Methods:
- Unsupervised hierarchical clustering of gene expression profiles from 1566 primary tumors and 178 metastases.
- Correlation of clustering profiles with clinico-pathological data.
- Application of Fisher exact test, Gene Set Enrichment Analysis (GSEA), DAVID functional enrichment analysis, Kaplan-Meier survival analysis, and log-rank tests.
Main Results:
- Identification of distinct molecular clusters for breast, gastrointestinal, ovarian, and kidney cancers.
- Discovery of shared molecular signatures between chromophobe renal cell carcinoma and follicular thyroid carcinoma.
- Observation of an expression signature for squamous cell histology across multiple tissues.
- Confirmation of shared etiopathogenesis between endometrioid ovarian tumors and endometrial tumors.
- Development of a breast tumor signature predictive of disease-specific survival.
- Demonstration that most metastases cluster with their tissue of origin, with colon metastases exhibiting a bimodal distribution (tissue of origin or destination).
Conclusions:
- A molecular taxonomy of epithelial cancers reveals unexpected cross-tissue correlations, impacting cancer classification and guiding pathologists.
- An unsupervised analysis identified a breast cancer signature that predicts clinical outcome.
- Metastases, particularly from gastrointestinal origin, may retain their tissue of origin's molecular profile or adapt to the destination tissue, as evidenced by colon metastases in the liver.
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