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A novel bioinformatic approach reveals cooperation between Cancer/Testis genes in basal-like breast tumors.

Authors :
Laisné M
Rodgers B
Benlamara S
Wicinski J
Nicolas A
Djerroudi L
Gupta N
Ferry L
Kirsh O
Daher D
Philippe C
Okada Y
Charafe-Jauffret E
Cristofari G
Meseure D
Vincent-Salomon A
Ginestier C
Defossez PA
Source :
Oncogene [Oncogene] 2024 May; Vol. 43 (18), pp. 1369-1385. Date of Electronic Publication: 2024 Mar 11.
Publication Year :
2024

Abstract

Breast cancer is the most prevalent type of cancer in women worldwide. Within breast tumors, the basal-like subtype has the worst prognosis, prompting the need for new tools to understand, detect, and treat these tumors. Certain germline-restricted genes show aberrant expression in tumors and are known as Cancer/Testis genes; their misexpression has diagnostic and therapeutic applications. Here we designed a new bioinformatic approach to examine Cancer/Testis gene misexpression in breast tumors. We identify several new markers in Luminal and HER-2 positive tumors, some of which predict response to chemotherapy. We then use machine learning to identify the two Cancer/Testis genes most associated with basal-like breast tumors: HORMAD1 and CT83. We show that these genes are expressed by tumor cells and not by the microenvironment, and that they are not expressed by normal breast progenitors; in other words, their activation occurs de novo. We find these genes are epigenetically repressed by DNA methylation, and that their activation upon DNA demethylation is irreversible, providing a memory of past epigenetic disturbances. Simultaneous expression of both genes in breast cells in vitro has a synergistic effect that increases stemness and activates a transcriptional profile also observed in double-positive tumors. Therefore, we reveal a functional cooperation between Cancer/Testis genes in basal breast tumors; these findings have consequences for the understanding, diagnosis, and therapy of the breast tumors with the worst outcomes.<br /> (© 2024. The Author(s).)

Details

Language :
English
ISSN :
1476-5594
Volume :
43
Issue :
18
Database :
MEDLINE
Journal :
Oncogene
Publication Type :
Academic Journal
Accession number :
38467851
Full Text :
https://doi.org/10.1038/s41388-024-03002-7