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A Data Integration Workflow to Identify Drug Combinations Targeting Synthetic Lethal Interactions
Published on: May 27, 2021
E-Cadherin/ROS1 Inhibitor Synthetic Lethality in Breast Cancer
Ilirjana Bajrami1,2, Rebecca Marlow3, Marieke van de Ven4
1The Breast Cancer Now Toby Robins Breast Cancer Research Centre, The Institute of Cancer Research, London, United Kingdom.
Abstract:
The cell adhesion glycoprotein E-cadherin (CDH1) is commonly inactivated in breast tumors. Precision medicine approaches that exploit this characteristic are not available. Using perturbation screens in breast tumor cells with CRISPR/Cas9-engineered CDH1 mutations, we identified synthetic lethality between E-cadherin deficiency and inhibition of the tyrosine kinase ROS1. Data from large-scale genetic screens in molecularly diverse breast tumor cell lines established that the E-cadherin/ROS1 synthetic lethality was not only robust in the face of considerable molecular heterogeneity but was also elicited with clinical ROS1 inhibitors, including foretinib and crizotinib. ROS1 inhibitors induced mitotic abnormalities and multinucleation in E-cadherin-defective cells, phenotypes associated with a defect in cytokinesis and aberrant p120 catenin phosphorylation and localization. In vivo, ROS1 inhibitors produced profound antitumor effects in multiple models of E-cadherin-defective breast cancer. These data therefore provide the preclinical rationale for assessing ROS1 inhibitors, such as the licensed drug crizotinib, in appropriately stratified patients.Significance: E-cadherin defects are common in breast cancer but are currently not targeted with a precision medicine approach. Our preclinical data indicate that licensed ROS1 inhibitors, including crizotinib, should be repurposed to target E-cadherin-defective breast cancers, thus providing the rationale for the assessment of these agents in molecularly stratified phase II clinical trials. Cancer Discov; 8(4); 498-515. ©2018 AACR.This article is highlighted in the In This Issue feature, p. 371.
Insights
E-cadherin deficiency in breast cancer cells creates a vulnerability to ROS1 inhibition. This synthetic lethality allows targeting E-cadherin-defective tumors with existing ROS1 inhibitors like crizotinib.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- E-cadherin (CDH1) is frequently inactivated in breast tumors, yet lacks targeted precision medicine strategies.
- CDH1 inactivation presents a potential therapeutic vulnerability in breast cancer.
Purpose of the Study:
- To identify precision medicine strategies targeting E-cadherin-deficient breast tumors.
- To investigate the therapeutic potential of inhibiting ROS1 in the context of E-cadherin loss.
Main Methods:
- CRISPR/Cas9 screening in breast tumor cells to engineer CDH1 mutations.
- Large-scale genetic screens in diverse breast cancer cell lines.
- Testing of clinical ROS1 inhibitors (foretinib, crizotinib) in vitro and in vivo.
Main Results:
- Identified a synthetic lethality between E-cadherin deficiency and ROS1 inhibition.
- This synthetic lethality is robust across molecularly heterogeneous breast cancer cell lines.
- ROS1 inhibitors induced mitotic defects and antitumor effects in E-cadherin-defective models.
Conclusions:
- E-cadherin-defective breast cancers can be targeted by ROS1 inhibitors.
- Clinical ROS1 inhibitors, such as crizotinib, show preclinical efficacy and warrant evaluation.
- Repurposing ROS1 inhibitors offers a precision medicine approach for a subset of breast cancer patients.
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