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A Novel Combination Approach Targeting an Enhanced Protein Synthesis Pathway in MYC-driven (Group 3) Medulloblastoma
Nagendra K Chaturvedi1, Matthew J Kling2, Connor N Griggs3
1Department of Pediatrics, University of Nebraska Medical Center, Omaha, Nebraska. nchaturvedi@unmc.edu.
Abstract:
The MYC oncogene is frequently amplified in patients with medulloblastoma, particularly in group 3 patients, who have the worst prognosis. mTOR signaling-driven deregulated protein synthesis is very common in various cancers, including medulloblastoma, that can promote MYC stabilization. As a transcription factor, MYC itself is further known to regulate transcription of several components of protein synthesis machinery, leading to an enhanced protein synthesis rate and proliferation. Thus, inhibiting enhanced protein synthesis by targeting the MYC and mTOR pathways together may represent a highly relevant strategy for the treatment of MYC-driven medulloblastoma. Here, using siRNA and small-molecule inhibitor approaches, we evaluated the effects of combined inhibition of MYC transcription and mTOR signaling on medulloblastoma cell growth/survival and associated molecular mechanism(s) in MYC-amplified (group 3) medulloblastoma cell lines and xenografts. Combined inhibition of MYC and mTOR synergistically suppressed medulloblastoma cell growth and induced G1 cell-cycle arrest and apoptosis. Mechanistically, the combined inhibition significantly downregulated the expression levels of key target proteins of MYC and mTOR signaling. Our results with RNA-sequencing revealed that combined inhibition synergistically modulated global gene expression including MYC/mTOR components. In addition, the combination treatment significantly delayed tumor growth and prolonged survival of MYC-amplified medulloblastoma xenografted mice by downregulating expression of MYC and the key downstream components of mTOR signaling, compared with single-agent therapy. Together, our findings demonstrated that dual inhibition of MYC (transcription) and mTOR (translation) of the protein synthesis pathway can be a novel therapeutic approach against MYC-driven medulloblastoma.
Insights
Dual inhibition of MYC transcription and mTOR signaling synergistically suppressed medulloblastoma growth. This combined therapy offers a novel therapeutic approach for MYC-driven medulloblastoma, improving survival in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- MYC oncogene amplification is common in group 3 medulloblastoma, associated with poor prognosis.
- mTOR signaling promotes protein synthesis and MYC stabilization, contributing to cancer progression.
- MYC regulates protein synthesis machinery, enhancing cell proliferation.
Purpose of the Study:
- To evaluate the combined effects of inhibiting MYC transcription and mTOR signaling in MYC-amplified medulloblastoma.
- To investigate the molecular mechanisms underlying the synergistic effects of dual inhibition.
- To assess the therapeutic potential of this combination strategy in preclinical models.
Main Methods:
- Utilized siRNA and small-molecule inhibitors for combined MYC and mTOR pathway targeting.
- Assessed medulloblastoma cell growth, survival, cell-cycle arrest, and apoptosis.
- Performed RNA-sequencing to analyze global gene expression changes.
- Evaluated tumor growth and survival in MYC-amplified medulloblastoma xenografts.
Main Results:
- Combined MYC and mTOR inhibition synergistically suppressed medulloblastoma cell growth and induced apoptosis.
- The combination treatment significantly downregulated key MYC and mTOR signaling target proteins.
- RNA-sequencing revealed synergistic modulation of gene expression, including MYC/mTOR pathway components.
- Dual inhibition significantly delayed tumor growth and prolonged survival in xenograft mouse models.
Conclusions:
- Combined inhibition of MYC transcription and mTOR signaling demonstrates synergistic efficacy against MYC-driven medulloblastoma.
- This dual-targeting strategy represents a promising novel therapeutic approach for this aggressive cancer.
- Targeting both MYC and mTOR pathways concurrently offers a potential treatment for medulloblastoma with MYC amplification.
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