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Defining the MYC-regulated transcriptome and kinome that support KRAS- and ERK-dependent growth of pancreatic cancer
Priya S Hibshman1, Clint A Stalnecker2, Jeffrey A Klomp2
1Department of Cell Biology and Physiology, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, USA.
Abstract:
Of the thousands of genes and substrates identified in KRAS-mutant signaling networks in pancreatic ductal adenocarcinoma (PDAC), more than 200 are transcription factors, implying extensive and complex transcriptional regulation. However, we observed that genetic suppression of the transcription factor MYC alone was sufficient to phenocopy the effect of KRAS suppression in signaling, growth, and metabolic processes in PDAC cells. We determined the gene transcription changes caused by acute suppression of MYC function in KRAS-mutant PDAC cell lines and performed dependency map and pathway analyses on the affected gene sets. The expression of 1685 genes was inhibited upon suppression of MYC, and this gene set may comprise the bulk of the MYC-regulated genes essential for PDAC growth. In contrast, the 1325 genes whose expression was increased may comprise a compensatory response to oncogenic stress, mediated in part by the GTPase RHO. MYC-dependent transcriptional activity was largely ERK dependent, and almost one-third of ERK-regulated genes were also regulated by MYC in PDAC cells. Furthermore, chemical proteomic profiling revealed MYC-regulated protein kinases that can be targeted therapeutically. Together, these data provide a molecular portrait of MYC-dependent signaling that encompasses potentially exploitable mechanisms for treating PDAC.
Insights
MYC transcription factor is crucial for pancreatic ductal adenocarcinoma (PDAC) growth, regulating key signaling and metabolic pathways. Targeting MYC offers a potential therapeutic strategy for PDAC, impacting KRAS-mutant cells.
Area of Science:
- Oncology
- Molecular Biology
- Gene Regulation
Background:
- Pancreatic ductal adenocarcinoma (PDAC) exhibits complex signaling networks with numerous transcription factors.
- KRAS mutations are common in PDAC, driving tumor growth and progression.
- The role of MYC in KRAS-mutant PDAC signaling and metabolism is not fully understood.
Purpose of the Study:
- To investigate the role of MYC in KRAS-mutant PDAC.
- To identify MYC-regulated genes and pathways in PDAC cells.
- To explore MYC as a therapeutic target in PDAC.
Main Methods:
- Genetic suppression of MYC in KRAS-mutant PDAC cell lines.
- Gene transcription analysis (RNA sequencing).
- Dependency map and pathway analyses.
- Chemical proteomic profiling.
Main Results:
- MYC suppression phenocopied KRAS suppression effects on signaling, growth, and metabolism.
- 1685 genes were upregulated and 1325 genes were downregulated upon MYC suppression.
- MYC-dependent transcription was largely ERK dependent.
- MYC-regulated protein kinases were identified as potential therapeutic targets.
Conclusions:
- MYC is a critical regulator of gene expression essential for PDAC growth.
- MYC-dependent signaling pathways are intertwined with KRAS signaling.
- Targeting MYC and its downstream effectors presents a promising therapeutic avenue for PDAC.
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