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A Data Integration Workflow to Identify Drug Combinations Targeting Synthetic Lethal Interactions
Published on: May 27, 2021
Identification of Lethal Inhibitors and Inhibitor Combinations for Mono-Driver versus Multi-Driver Triple-Negative
Geng Chia Ku1, Abygail G Chapdelaine1, Marina K Ayrapetov1
1Department of Cell and Molecular Biology, University of Rhode Island, 120 Flagg Rd, Kingston, RI 02881, USA.
Abstract:
There are no signaling-based targeted therapies for triple-negative breast cancer. The development of targeted cancer therapy relies on identifying oncogenic signaling drivers, understanding their contributions to oncogenesis and developing inhibitors to block such drivers. In this study, we determine that DU-4475 is a mono-driver cancer cell line relying on BRAF and the mitogen-activated protein kinase pathway for viability and proliferation. It is fully and lethally inhibited by BRAF or Mek inhibitors at low nM concentrations, but it is resistant to inhibitors targeting other signaling pathways. The inhibitory lethality caused by blocking Mek or BRAF is through apoptosis. In contrast, MDA-MB-231 is a multi-driver triple-negative breast cancer cell line dependent on both Src and the KRAS-activated mitogen-activated kinase pathway for proliferation and viability. Blocking each pathway alone only partially inhibits cell proliferation without killing them, but the combination of dasatinib, an Src inhibitor, and trametinib, a Mek inhibitor, achieves synthetic lethality. The combination is highly potent, with an IC50 of 8.2 nM each, and strikingly synergistic, with a combination index of less than 0.003 for 70% inhibition. The synthetic lethality of the drug combination is achieved by apoptosis. These results reveal a crucial difference between mono-driver and multi-driver cancer cells and suggest that pharmacological synthetic lethality may provide a basis for effectively inhibiting multi-driver cancers.
Insights
Triple-negative breast cancer lacks targeted therapies. This study differentiates mono-driver and multi-driver cancers, revealing synthetic lethality as a promising strategy for multi-driver tumors.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Triple-negative breast cancer (TNBC) currently lacks targeted therapies.
- Targeted cancer therapy development requires identifying oncogenic drivers and their inhibitors.
- Understanding cancer cell dependency on specific signaling pathways is crucial.
Purpose of the Study:
- To investigate signaling pathway dependencies in different triple-negative breast cancer cell lines.
- To explore targeted therapy and synthetic lethality approaches for TNBC.
- To differentiate between mono-driver and multi-driver cancer cell vulnerabilities.
Main Methods:
- Characterization of DU-4475 as a mono-driver cell line dependent on BRAF/MAPK pathway.
- Assessment of MDA-MB-231 as a multi-driver cell line dependent on Src and KRAS-MAPK pathways.
- Evaluation of single-agent inhibitors (BRAF, Mek, Src) and drug combinations for anti-cancer effects.
Main Results:
- DU-4475 cells were lethally inhibited by BRAF or Mek inhibitors via apoptosis.
- MDA-MB-231 cells showed partial inhibition with single-pathway blockade.
- A combination of dasatinib (Src inhibitor) and trametinib (Mek inhibitor) induced potent, synergistic synthetic lethality via apoptosis in MDA-MB-231 cells.
Conclusions:
- Mono-driver cancers (e.g., DU-4475) are vulnerable to inhibitors of their single driver pathway.
- Multi-driver cancers (e.g., MDA-MB-231) require combination therapy targeting multiple pathways.
- Pharmacological synthetic lethality offers a potential strategy for treating multi-driver triple-negative breast cancer.
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