YAP/TAZ Transcriptional Coactivators Create Therapeutic Vulnerability to Verteporfin in EGFR-mutant Glioblastoma
Krishanthan Vigneswaran1, Nathaniel H Boyd2, Se-Yeong Oh2
1Department of Neurosurgery, Emory University School of Medicine, Atlanta, Georgia.
Purpose:
Glioblastomas (GBMs), neoplasms derived from glia and neuroglial progenitor cells, are the most common and lethal malignant primary brain tumors diagnosed in adults, with a median survival of 14 months. GBM tumorigenicity is often driven by genetic aberrations in receptor tyrosine kinases, such as amplification and mutation of EGFR.
Experimental Design:
Using a Drosophila glioma model and human patient-derived GBM stem cells and xenograft models, we genetically and pharmacologically tested whether the YAP and TAZ transcription coactivators, effectors of the Hippo pathway that promote gene expression via TEA domain (TEAD) cofactors, are key drivers of GBM tumorigenicity downstream of oncogenic EGFR signaling.
Results:
YAP and TAZ are highly expressed in EGFR-amplified/mutant human GBMs, and their knockdown in EGFR-amplified/mutant GBM cells inhibited proliferation and elicited apoptosis. Our results indicate that YAP/TAZ-TEAD directly regulates transcription of SOX2, C-MYC, and EGFR itself to create a feedforward loop to drive survival and proliferation of human GBM cells. Moreover, the benzoporphyrin derivative verteporfin, a disruptor of YAP/TAZ-TEAD-mediated transcription, preferentially induced apoptosis of cultured patient-derived EGFR-amplified/mutant GBM cells, suppressed expression of YAP/TAZ transcriptional targets, including EGFR, and conferred significant survival benefit in an orthotopic xenograft GBM model. Our efforts led us to design and initiate a phase 0 clinical trial of Visudyne, an FDA-approved liposomal formulation of verteporfin, where we used intraoperative fluorescence to observe verteporfin uptake into tumor cells in GBM tumors in human patients.
Conclusions:
Together, our data suggest that verteporfin is a promising therapeutic agent for EGFR-amplified and -mutant GBM.
Insights
YAP and TAZ coactivators drive glioblastoma (GBM) growth by regulating key genes, including EGFR. The drug verteporfin inhibits YAP/TAZ, showing promise for treating EGFR-mutant GBM and is now in a clinical trial.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Cancer Genetics
Background:
- Glioblastomas (GBMs) are aggressive primary brain tumors with poor prognosis.
- EGFR aberrations are common drivers of GBM tumorigenicity.
- The Hippo pathway effectors YAP and TAZ are implicated in cancer progression.
Purpose of the Study:
- To investigate YAP and TAZ as key drivers of GBM tumorigenicity downstream of oncogenic EGFR signaling.
- To evaluate verteporfin as a therapeutic agent targeting YAP/TAZ-TEAD transcriptional activity in GBM.
Main Methods:
- Utilized a *Drosophila* glioma model and human patient-derived GBM stem cells and xenograft models.
- Genetically and pharmacologically tested YAP and TAZ function in EGFR-driven GBM.
- Assessed the efficacy of verteporfin in vitro and in vivo.
Main Results:
- YAP and TAZ are highly expressed in EGFR-amplified/mutant GBMs and promote proliferation.
- YAP/TAZ-TEAD directly regulates SOX2, C-MYC, and EGFR, creating a survival/proliferation loop.
- Verteporfin induced apoptosis in GBM cells, suppressed target gene expression, and improved survival in xenografts.
- A Phase 0 clinical trial of verteporfin (Visudyne) in GBM patients was initiated.
Conclusions:
- YAP/TAZ-TEAD signaling is a critical driver of EGFR-amplified/mutant GBM.
- Verteporfin demonstrates therapeutic potential for EGFR-driven GBM.
- Clinical investigation of verteporfin for GBM is warranted.
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