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Repression of GCN5 expression or activity attenuates c-MYC expression in non-small cell lung cancer
Lisa Maria Mustachio1,2, Jason Roszik3,4, Aimee T Farria1,2,5
1Department of Epigenetics and Molecular Carcinogenesis, The University of Texas MD Anderson Cancer Center Houston, Texas 77030, USA.
Abstract:
Lung cancer causes the highest mortality in cancer-related deaths. As these cancers often become resistant to existing therapies, definition of novel molecular targets is needed. Epigenetic modifiers may provide such targets. Recent reports suggest that the histone acetyltransferase (HAT) module within the transcriptional coactivator SAGA complex plays a role in cancer, creating a new link between epigenetic regulators and this disease. GCN5 serves as a coactivator for MYC target genes, and here we investigate links between GCN5 and c-MYC in non-small cell lung cancer (NSCLC). Our data indicate that both GCN5 and c-MYC proteins are upregulated in mouse and human NSCLC cells compared to normal lung epithelial cells. This trend is observable only at the protein level, indicating that this upregulation occurs post-transcriptionally. Human NSCLC tissue data provided by The Cancer Genome Atlas (TCGA) indicates that GCN5 and c-MYC expression are positively associated with one another and with the expression of c-MYC target genes. Depletion of GCN5 in NSCLC cells reduces c-MYC expression, cell proliferation, and increases the population of necrotic cells. Similarly, inhibition of the GCN5 catalytic site using a commercially available probe reduces c-MYC expression, cell proliferation, and increases the percentage of cells undergoing apoptosis. Our findings suggest that GCN5 might provide a novel target for inhibition of NSCLC growth and progression.
Insights
The histone acetyltransferase GCN5 is upregulated in non-small cell lung cancer (NSCLC) and drives tumor growth by increasing c-MYC. Inhibiting GCN5 may offer a new therapeutic strategy for NSCLC.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Lung cancer is a leading cause of cancer mortality with increasing therapeutic resistance.
- Epigenetic modifiers, such as the SAGA complex's HAT module, are implicated in cancer development.
- GCN5, a component of the SAGA complex, is a coactivator for MYC target genes.
Purpose of the Study:
- To investigate the role of GCN5 and its link with c-MYC in non-small cell lung cancer (NSCLC).
- To explore GCN5 as a potential therapeutic target for NSCLC.
Main Methods:
- Comparative analysis of GCN5 and c-MYC protein levels in normal versus NSCLC cells (mouse and human).
- Analysis of TCGA data for GCN5 and c-MYC expression correlation in human NSCLC tissues.
- Functional studies involving GCN5 depletion and catalytic site inhibition in NSCLC cells.
Main Results:
- GCN5 and c-MYC proteins are upregulated post-transcriptionally in NSCLC cells.
- GCN5 and c-MYC expression positively correlate with each other and with c-MYC target genes in human NSCLC.
- GCN5 depletion or inhibition reduces c-MYC expression, cell proliferation, and induces apoptosis/necrosis in NSCLC cells.
Conclusions:
- GCN5 plays a significant role in NSCLC progression by upregulating c-MYC.
- GCN5 represents a promising novel molecular target for NSCLC therapy.
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