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- Significant random signatures reveals new biomarker for breast cancer
Significant random signatures reveals new biomarker for breast cancer
Auteurs
Elnaz Saberi Ansar, Changiz Eslahchii, Mahsa Rahimi, Lobat Geranpayeh, Marzieh Ebrahimi, Rosa Aghdam, Gwenneg Kerdivel
Résumé
Abstract
Background
In 2012, Venet et al. proposed that at least in the case of breast cancer, most published signatures are not significantly more associated with outcome than randomly generated signatures. They suggested that nominal
Methods
In this research, first we show that, using an empirical
Results
First, we applied our method on the breast cancer dataset NKI to achieve a set of significant genes in breast cancer considering significant random signatures. Secondly, prognostic performance of the computed set of significant genes is evaluated using DMFS and RFS datasets. We have observed that the top ranked genes from this set can successfully separate patients with poor prognosis from those with good prognosis. Finally, we investigated the expression pattern of TAT, the first gene reported in our set, in malignant breast cancer vs. adjacent normal tissue and mammospheres.
Conclusion
Applying the method, we found a set of significant genes in breast cancer, including TAT, a gene that has never been reported as an important gene in breast cancer. Our results show that the expression of TAT is repressed in tumors suggesting that this gene could act as a tumor suppressor in breast cancer and could be used as a new biomarker.