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A Data Integration Workflow to Identify Drug Combinations Targeting Synthetic Lethal Interactions
Published on: May 27, 2021
Synthetic Lethal Screens Identify Vulnerabilities in GPCR Signaling and Cytoskeletal Organization in
Bryony J Telford1, Augustine Chen1, Henry Beetham1
1Cancer Genetics Laboratory, Department of Biochemistry, University of Otago, Dunedin, New Zealand.
Abstract:
The CDH1 gene, which encodes the cell-to-cell adhesion protein E-cadherin, is frequently mutated in lobular breast cancer (LBC) and diffuse gastric cancer (DGC). However, because E-cadherin is a tumor suppressor protein and lost from the cancer cell, it is not a conventional drug target. To overcome this, we have taken a synthetic lethal approach to determine whether the loss of E-cadherin creates druggable vulnerabilities. We first conducted a genome-wide siRNA screen of isogenic MCF10A cells with and without CDH1 expression. Gene ontology analysis demonstrated that G-protein-coupled receptor (GPCR) signaling proteins were highly enriched among the synthetic lethal candidates. Diverse families of cytoskeletal proteins were also frequently represented. These broad classes of E-cadherin synthetic lethal hits were validated using both lentiviral-mediated shRNA knockdown and specific antagonists, including the JAK inhibitor LY2784544, Pertussis toxin, and the aurora kinase inhibitors alisertib and danusertib. Next, we conducted a 4,057 known drug screen and time course studies on the CDH1 isogenic MCF10A cell lines and identified additional drug classes with linkages to GPCR signaling and cytoskeletal function that showed evidence of E-cadherin synthetic lethality. These included multiple histone deacetylase inhibitors, including vorinostat and entinostat, PI3K inhibitors, and the tyrosine kinase inhibitors crizotinib and saracatinib. Together, these results demonstrate that E-cadherin loss creates druggable vulnerabilities that have the potential to improve the management of both sporadic and familial LBC and DGC.
Insights
Loss of E-cadherin in cancer creates vulnerabilities targeting G-protein-coupled receptor signaling and cytoskeletal proteins. This synthetic lethal approach identifies new drug targets for lobular breast and gastric cancers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The CDH1 gene encodes E-cadherin, crucial for cell adhesion.
- Mutations in CDH1 are common in lobular breast cancer (LBC) and diffuse gastric cancer (DGC).
- E-cadherin loss as a tumor suppressor makes it an unconventional drug target.
Purpose of the Study:
- To explore synthetic lethal vulnerabilities arising from E-cadherin loss.
- To identify novel therapeutic strategies for LBC and DGC.
Main Methods:
- Genome-wide siRNA screen in isogenic MCF10A cells (with/without CDH1).
- Gene ontology analysis to identify enriched pathways.
- Validation using shRNA, specific antagonists (JAK, pertussis toxin, aurora kinase inhibitors), and a known drug screen.
Main Results:
- G-protein-coupled receptor (GPCR) signaling and cytoskeletal proteins identified as synthetic lethal hits.
- Validation confirmed vulnerabilities to JAK inhibitors, pertussis toxin, and aurora kinase inhibitors.
- Drug screen revealed efficacy of HDAC inhibitors, PI3K inhibitors, and tyrosine kinase inhibitors.
Conclusions:
- E-cadherin loss confers druggable vulnerabilities in cancer cells.
- These findings offer potential new therapeutic avenues for LBC and DGC management.
- Synthetic lethality provides a promising strategy for targeting E-cadherin-deficient tumors.
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