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Identification of TAZ-Dependent Breast Cancer Vulnerabilities Using a Chemical Genomics Screening Approach
He Shen1, Yanmin Chen1, Yin Wan1
1Department of Cancer Genetics and Genomics, Roswell Park Comprehensive Cancer Center, Buffalo, NY, United States.
Abstract:
Breast cancer stem cells (BCSCs) represent a subpopulation of tumor cells that can self-renew and generate tumor heterogeneity. Targeting BCSCs may ameliorate therapy resistance, tumor growth, and metastatic progression. However, the origin and molecular mechanisms underlying their cellular properties are poorly understood. The transcriptional coactivator with PDZ-binding motif (TAZ) promotes mammary stem/progenitor cell (MaSC) expansion and maintenance but also confers stem-like traits to differentiated tumor cells. Here, we describe the rapid generation of experimentally induced BCSCs by TAZ-mediated reprogramming of human mammary epithelial cells, hence allowing for the direct analysis of BCSC phenotypes. Specifically, we establish genetically well-defined TAZ-dependent (TAZDEP) and -independent (TAZIND) cell lines with cancer stem cell (CSC) traits, such as self-renewal, variable resistance to chemotherapeutic agents, and tumor seeding potential. TAZDEP cells were associated with the epithelial to mesenchymal transition, embryonic, and MaSC signature genes. In contrast, TAZIND cells were characterized by a neuroendocrine transdifferentiation transcriptional program associated with Polycomb repressive complex 2 (PRC2). Mechanistically, we identify Cyclin D1 (CCND1) as a critical downstream effector for TAZ-driven tumorigenesis. Overall, our results reveal a critical TAZ-CCND1-CDK4/CDK6 signaling axis, suggesting novel therapeutic approaches to eliminate both BCSCs and therapy-resistant cancer cells.
Insights
Targeting the TAZ protein can reprogram human cells into breast cancer stem cells (BCSCs). This study identifies a TAZ-CCND1-CDK4/CDK6 pathway crucial for BCSCs and therapy resistance.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Breast cancer stem cells (BCSCs) drive tumor heterogeneity and therapy resistance.
- The origin and molecular mechanisms of BCSCs remain poorly understood.
- The transcriptional coactivator TAZ influences mammary stem cell maintenance and tumor cell stemness.
Purpose of the Study:
- To investigate the role of TAZ in the generation and characteristics of BCSCs.
- To establish experimentally induced BCSC models for direct phenotypic analysis.
- To identify molecular pathways involved in TAZ-driven tumorigenesis.
Main Methods:
- Reprogramming human mammary epithelial cells using TAZ.
- Establishing TAZ-dependent (TAZDEP) and TAZ-independent (TAZIND) BCSC lines.
- Analyzing BCSC traits including self-renewal, drug resistance, and tumor seeding.
- Investigating gene expression signatures and signaling pathways.
Main Results:
- TAZ successfully reprogrammed cells to exhibit BCSC traits.
- TAZDEP cells showed epithelial-mesenchymal transition and embryonic/MaSC signatures.
- TAZIND cells displayed neuroendocrine transdifferentiation and PRC2 association.
- Cyclin D1 (CCND1) was identified as a key downstream effector of TAZ.
Conclusions:
- TAZ plays a critical role in inducing BCSC phenotypes.
- Distinct molecular programs are associated with TAZ-dependent and -independent BCSCs.
- A TAZ-CCND1-CDK4/CDK6 signaling axis is implicated in BCSC generation and therapy resistance, offering potential therapeutic targets.
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