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A Data Integration Workflow to Identify Drug Combinations Targeting Synthetic Lethal Interactions
Published on: May 27, 2021
EphB4 inhibition defines a druggable synthetic-lethal vulnerability in MYC-driven triple-negative breast cancer
Zhe Sun1, Yuan Zhang2, Meng Ye2,3
1State Key Laboratory of Discovery and Utilization of Functional Components in Traditional Chinese Medicine, Shanghai Frontiers Science Center of TCM Chemical Biology, Institute of Interdisciplinary Integrative Medicine Research and Shuguang Hospital, Shanghai University of Traditional Chinese Medicine, Shanghai, China. sunzhe@shutcm.edu.cn.
Abstract:
The MYC oncoprotein drives aggressive tumor behavior across many cancer types, yet its intrinsically disordered structure has limited direct pharmacologic targeting. Building on our previous kinome-wide CRISPR screen, we identify the receptor tyrosine kinase EphB4 as a druggable synthetic-lethal vulnerability in MYC-driven cancers. Genetic ablation or pharmacologic inhibition of EphB4 selectively triggers robust apoptosis in MYC-activated normal cells and MYC-high triple-negative breast cancer (TNBC) cell lines, while sparing MYC-low counterparts. This apoptotic response is Bcl-2-sensitive and p53-independent, overcoming a major resistance barrier in TNBC. In vivo, EphB4 inhibition markedly suppresses MYC-driven tumor growth. Notably, co-targeting EphB4 and Bcl-2 with ABT-199 yields synergistic apoptosis and induces tumor regression in TNBC models. Mechanistically, EphB4 inhibition leads to the selective transcriptional repression of PSMB5, the β5 catalytic subunit of the proteasome, resulting in the impairment of proteasome activity and the induction of MYC-dependent apoptotic stress. This establishes an unexpected link between EphB4 signaling and proteostasis maintenance, a heightened dependency in MYC-overexpressing cells due to their elevated biosynthetic load. Targeting PSMB5 transcription, rather than its catalytic active site, also provides a potential strategy to circumvent or delay resistance to conventional proteasome inhibitors. Together, these findings define the EphB4-PSMB5 axis as a mechanistically distinct and therapeutically actionable vulnerability in MYC-high TNBC, positioning EphB4 inhibition as a promising approach to treat MYC-driven cancers.
Insights
We discovered that inhibiting EphB4 selectively kills MYC-high cancer cells by disrupting proteasome function. This offers a new therapeutic strategy for MYC-driven cancers like triple-negative breast cancer (TNBC).
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The MYC oncoprotein promotes aggressive cancers but is difficult to target directly due to its disordered structure.
- Identifying synthetic-lethal vulnerabilities in MYC-driven cancers is crucial for developing new therapies.
Purpose of the Study:
- To identify druggable targets that are synthetically lethal with MYC.
- To investigate the therapeutic potential of targeting EphB4 in MYC-driven cancers, particularly triple-negative breast cancer (TNBC).
Main Methods:
- Conducted a kinome-wide CRISPR screen to identify vulnerabilities in MYC-driven cancers.
- Utilized genetic ablation and pharmacologic inhibition of EphB4 in MYC-high and MYC-low cancer cell lines and in vivo models.
- Assessed apoptosis, proteasome activity, and gene expression (PSMB5).
- Investigated combination therapy with EphB4 and Bcl-2 inhibitors (ABT-199).
Main Results:
- EphB4 inhibition selectively induced apoptosis in MYC-activated cells and MYC-high TNBC, sparing MYC-low cells.
- The apoptotic response was Bcl-2-sensitive and p53-independent.
- EphB4 inhibition suppressed MYC-driven tumor growth in vivo.
- Co-targeting EphB4 and Bcl-2 showed synergistic apoptosis and tumor regression in TNBC models.
- Mechanistically, EphB4 inhibition repressed PSMB5 transcription, impairing proteasome activity and causing MYC-dependent stress.
Conclusions:
- The EphB4-PSMB5 axis represents a novel, therapeutically actionable vulnerability in MYC-high TNBC.
- EphB4 inhibition offers a promising strategy for treating MYC-driven cancers by targeting proteostasis.
- Targeting PSMB5 transcription may circumvent resistance to conventional proteasome inhibitors.
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