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CRISPR-SID: Identifying EZH2 as a druggable target for desmoid tumors via in vivo dependency mapping
Thomas Naert1,2, Dieter Tulkens1,2, Tom Van Nieuwenhuysen1
1Department of Biomedical Molecular Biology, Ghent University, Ghent 9052, Belgium.
Abstract:
Cancer precision medicine implies identification of tumor-specific vulnerabilities associated with defined oncogenic pathways. Desmoid tumors are soft-tissue neoplasms strictly driven by Wnt signaling network hyperactivation. Despite this clearly defined genetic etiology and the strict and unique implication of the Wnt/β-catenin pathway, no specific molecular targets for these tumors have been identified. To address this caveat, we developed fast, efficient, and penetrant genetic Xenopus tropicalis desmoid tumor models to identify and characterize drug targets. We used multiplexed CRISPR/Cas9 genome editing in these models to simultaneously target a tumor suppressor gene (apc) and candidate dependency genes. Our methodology CRISPR/Cas9 selection-mediated identification of dependencies (CRISPR-SID) uses calculated deviations between experimentally observed gene editing outcomes and deep-learning-predicted double-strand break repair patterns to identify genes under negative selection during tumorigenesis. This revealed EZH2 and SUZ12, both encoding polycomb repressive complex 2 components, and the transcription factor CREB3L1 as genetic dependencies for desmoid tumors. In vivo EZH2 inhibition by Tazemetostat induced partial regression of established autochthonous tumors. In vitro models of patient desmoid tumor cells revealed a direct effect of Tazemetostat on Wnt pathway activity. CRISPR-SID represents a potent approach for in vivo mapping of tumor vulnerabilities and drug target identification.
Insights
Researchers identified new drug targets for desmoid tumors by using CRISPR/Cas9 genome editing in Xenopus models. This approach revealed EZH2, SUZ12, and CREB3L1 as key dependencies, with EZH2 inhibition showing promise in tumor regression.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Desmoid tumors are driven by Wnt signaling hyperactivation, but lack identified molecular targets.
- Precision medicine requires identifying tumor-specific vulnerabilities linked to oncogenic pathways.
Purpose of the Study:
- To develop and utilize a novel method for identifying drug targets in desmoid tumors.
- To characterize genetic dependencies and potential therapeutic strategies for desmoid tumors.
Main Methods:
- Developed fast, efficient genetic desmoid tumor models in *Xenopus tropicalis*.
- Employed multiplexed CRISPR/Cas9 genome editing and a novel CRISPR-SID methodology.
- Utilized deep-learning algorithms to analyze gene editing outcomes and identify negative selection.
Main Results:
- Identified *EZH2*, *SUZ12* (Polycomb Repressive Complex 2 components), and *CREB3L1* (transcription factor) as genetic dependencies.
- Demonstrated that *in vivo* EZH2 inhibition with Tazemetostat caused partial regression of autochthonous tumors.
- Confirmed Tazemetostat's direct effect on Wnt pathway activity in patient-derived desmoid tumor cells.
Conclusions:
- CRISPR-SID is a potent approach for *in vivo* mapping of tumor vulnerabilities and drug target discovery.
- EZH2, SUZ12, and CREB3L1 are critical dependencies in desmoid tumors.
- Targeting EZH2 represents a promising therapeutic strategy for desmoid tumors.

