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A systems approach identifies MERTK as a therapeutic vulnerability in ZFTA-RELA-driven ependymomas
Marina Chan1, Songli Zhu1, Zachary R Russell1
1Human Biology Division, Fred Hutchinson Cancer Center, Seattle, WA 98109.
Abstract:
Ependymomas (EPN) are rare central nervous system tumors that account for approximately 10% of intracranial tumors in children and 4% in adults. Despite their clinical and molecular heterogeneity, spanning supratentorial, posterior fossa, and spinal subtypes, treatment remains limited to surgery and radiotherapy, with chemotherapy offering minimal benefit. Here, we performed transcriptomic analysis of 370 human ependymoma samples and identified two distinct molecular subgroups: EPN-E1 and EPN-E2. The EPN-E1 cluster is enriched for supratentorial tumors harboring ZFTA-RELA fusions (ZFTA-RELAfus), which occur in over 70% of cases and are associated with poor prognosis. To identify targeted therapies for this aggressive subtype, we validated a ZFTA-RELAfus mouse model that recapitulates the human EPN-E1 transcriptome and used it for target discovery. Through Kinome Regularization, a machine learning-driven polypharmacology approach, we identified MERTK as a critical regulator of tumor cell viability. Genetic depletion or pharmacologic inhibition of Mertk reduced cell growth ex vivo, and treatment with a clinical-grade MERTK inhibitor significantly suppressed tumor proliferation in vivo. Both human EPN-E1 tumors and ZFTA-RELAfus mouse tumors exhibited elevated expression of MERTK and its ligand GAS6, and MERTK inhibition led to suppression of pro-survival signaling pathways including MEK/ERK (Mitogen-Activated Protein Kinase Kinase/Extracellular Signal-Regulated Kinase) and PI3K/AKT (Phosphoinositide 3-Kinase/Protein Kinase B). Notably, over 80% of genes upregulated in ZFTA-RELAfus tumors were downregulated following MERTK inhibition, indicating a strong dependency on this pathway for tumor maintenance. These findings define a signaling vulnerability in ZFTA-RELA-driven ependymomas and support the clinical development of MERTK-targeted therapies for patients with the high-risk EPN-E1 subtype.
Insights
This study identifies MERTK as a key target in aggressive ependymomas (EPN) with ZFTA-RELA fusions. Inhibiting MERTK shows promise for treating these difficult-to-treat central nervous system tumors.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Genomics
Background:
- Ependymomas (EPN) are rare central nervous system tumors with limited treatment options.
- EPN exhibit molecular heterogeneity, with ZFTA-RELA fusions defining a high-risk supratentorial subtype (EPN-E1).
Purpose of the Study:
- To identify novel therapeutic targets for aggressive ZFTA-RELA fusion-driven ependymomas.
- To investigate the role of MERTK signaling in EPN-E1 tumor maintenance and proliferation.
Main Methods:
- Transcriptomic analysis of 370 human ependymoma samples to identify molecular subgroups.
- Validation of a ZFTA-RELA fusion mouse model for target discovery.
- Application of Kinome Regularization (machine learning) to identify MERTK as a therapeutic target.
- Ex vivo and in vivo studies assessing the efficacy of MERTK inhibition.
Main Results:
- Two distinct ependymoma subgroups (EPN-E1 and EPN-E2) were identified.
- MERTK was identified as a critical regulator of EPN-E1 cell viability, with elevated expression in both human and mouse tumors.
- MERTK inhibition suppressed tumor proliferation, downregulated pro-survival pathways (MEK/ERK, PI3K/AKT), and reversed gene expression changes in ZFTA-RELA fusion tumors.
Conclusions:
- MERTK is a crucial signaling vulnerability in ZFTA-RELA fusion-driven ependymomas.
- Targeting MERTK represents a promising therapeutic strategy for patients with the aggressive EPN-E1 subtype.
- Further clinical development of MERTK inhibitors for ependymoma is warranted.
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