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ATR is a MYB regulated gene and potential therapeutic target in adenoid cystic carcinoma
Mattias K Andersson1, Giovanna Mangiapane2, Paloma Tejera Nevado1
1Sahlgrenska Cancer Center, Department of Pathology, University of Gothenburg, Gothenburg, Sweden.
Abstract:
Adenoid cystic carcinoma (ACC) is a rare cancer that preferentially occurs in the head and neck, breast, as well as in other sites. It is an aggressive cancer with high rates of recurrence and distant metastasis. Patients with advanced disease are generally incurable due to the lack of effective systemic therapies. Activation of the master transcriptional regulator MYB is the genomic hallmark of ACC. MYB activation occurs through chromosomal translocation, copy number gain or enhancer hijacking, and is the key driving event in the pathogenesis of ACC. However, the functional consequences of alternative mechanisms of MYB activation are still uncertain. Here, we show that overexpression of MYB or MYB-NFIB fusions leads to transformation of human glandular epithelial cells in vitro and results in analogous cellular and molecular consequences. MYB and MYB-NFIB expression led to increased cell proliferation and upregulation of genes involved in cell cycle control, DNA replication, and DNA repair. Notably, we identified the DNA-damage sensor kinase ATR, as a MYB downstream therapeutic target that is overexpressed in primary ACCs and ACC patient-derived xenografts (PDXs). Treatment with the clinical ATR kinase inhibitor VX-970 induced apoptosis in MYB-positive ACC cells and growth inhibition in ACC PDXs. To our knowledge, ATR is the first example of an actionable target downstream of MYB that could be further exploited for therapeutic opportunities in ACC patients. Our findings may also have implications for other types of neoplasms with activation of the MYB oncogene.
Insights
Activation of the MYB oncogene drives adenoid cystic carcinoma (ACC). Targeting the downstream ATR kinase shows promise for treating MYB-driven ACC, offering new therapeutic avenues for this aggressive cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Adenoid cystic carcinoma (ACC) is an aggressive cancer with limited treatment options for advanced stages.
- MYB oncogene activation is a key driver in ACC pathogenesis.
- The functional impact of diverse MYB activation mechanisms remains unclear.
Purpose of the Study:
- To investigate the functional consequences of MYB activation in ACC.
- To identify actionable therapeutic targets downstream of MYB.
- To evaluate the efficacy of targeting ATR kinase in MYB-driven ACC.
Main Methods:
- Overexpression of MYB or MYB-NFIB in human glandular epithelial cells.
- Analysis of gene expression related to cell cycle, DNA replication, and repair.
- Assessment of ATR kinase expression in ACC patient samples and xenografts.
- Treatment of MYB-positive ACC cells and xenografts with ATR inhibitor VX-970.
Main Results:
- MYB/MYB-NFIB overexpression induced cellular transformation and increased proliferation.
- Upregulation of cell cycle, DNA replication, and repair genes was observed.
- ATR kinase was identified as a downstream target overexpressed in ACC.
- ATR inhibition led to apoptosis and growth inhibition in MYB-positive ACC models.
Conclusions:
- MYB activation drives ACC through specific cellular and molecular pathways.
- ATR kinase is a druggable target downstream of MYB in ACC.
- Targeting ATR offers a potential therapeutic strategy for ACC and other MYB-driven neoplasms.
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