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Mosaic Zebrafish Transgenesis for Functional Genomic Analysis of Candidate Cooperative Genes in Tumor Pathogenesis
Published on: March 31, 2015
The c-Myc oncogene directly induces the H19 noncoding RNA by allele-specific binding to potentiate tumorigenesis
Dalia Barsyte-Lovejoy1, Suzanne K Lau, Paul C Boutros
1Division of Cancer Genomics and Proteomics, Ontario Cancer Institute/Princess Margaret Hospital, University of Toronto, Toronto, Canada.
Abstract:
The product of the MYC oncogene is widely deregulated in cancer and functions as a regulator of gene transcription. Despite an extensive profile of regulated genes, the transcriptional targets of c-Myc essential for transformation remain unclear. In this study, we show that c-Myc significantly induces the expression of the H19 noncoding RNA in diverse cell types, including breast epithelial, glioblastoma, and fibroblast cells. c-Myc binds to evolutionarily conserved E-boxes near the imprinting control region to facilitate histone acetylation and transcriptional initiation of the H19 promoter. In addition, c-Myc down-regulates the expression of insulin-like growth factor 2 (IGF2), the reciprocally imprinted gene at the H19/IGF2 locus. We show that c-Myc regulates these two genes independently and does not affect H19 imprinting. Indeed, allele-specific chromatin immunoprecipitation and expression analyses indicate that c-Myc binds and drives the expression of only the maternal H19 allele. The role of H19 in transformation is addressed using a knockdown approach and shows that down-regulation of H19 significantly decreases breast and lung cancer cell clonogenicity and anchorage-independent growth. In addition, c-Myc and H19 expression shows strong association in primary breast and lung carcinomas. This work indicates that c-Myc induction of the H19 gene product holds an important role in transformation.
Insights
The MYC oncogene drives cancer by upregulating H19 noncoding RNA, a key factor in cell transformation. Targeting H19 expression could be a new strategy for treating MYC-driven cancers.
Area of Science:
- Oncology
- Molecular Biology
- Gene Regulation
Background:
- The MYC oncogene is frequently deregulated in various cancers, acting as a transcription regulator.
- While MYC affects many genes, its specific targets crucial for cancer transformation are not fully understood.
Purpose of the Study:
- To investigate the role of c-Myc in regulating H19 noncoding RNA expression.
- To determine if H19 is essential for cancer cell transformation driven by c-Myc.
Main Methods:
- Challenging diverse cell types with c-Myc overexpression.
- Utilizing allele-specific chromatin immunoprecipitation and expression analyses.
- Employing a knockdown approach to assess H19 function in cancer cells.
Main Results:
- c-Myc significantly induces H19 noncoding RNA expression by binding to E-boxes near the imprinting control region.
- c-Myc independently down-regulates IGF2 expression and does not alter H19 imprinting.
- H19 knockdown markedly reduces clonogenicity and anchorage-independent growth in breast and lung cancer cells.
- A strong association between c-Myc and H19 expression was observed in primary breast and lung carcinomas.
Conclusions:
- c-Myc-induced H19 expression is a critical mechanism in cancer cell transformation.
- H19 plays a significant role in the oncogenic functions of c-Myc.
- This study highlights H19 as a potential therapeutic target in MYC-driven cancers.
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