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Generation of Myospheres From hESCs by Epigenetic Reprogramming
Published on: June 21, 2014
Loss of tumor suppressor IGFBP4 drives epigenetic reprogramming in hepatic carcinogenesis
Ying-Ying Lee1,2, Myth Ts Mok1, Wei Kang3
1School of Biomedical Sciences, The Chinese University of Hong Kong, Hong Kong, China.
Abstract:
Genomic sequencing of hepatocellular carcinoma (HCC) uncovers a paucity of actionable mutations, underscoring the necessity to exploit epigenetic vulnerabilities for therapeutics. In HCC, EZH2-mediated H3K27me3 represents a major oncogenic chromatin modification, but how it modulates the therapeutic vulnerability of signaling pathways remains unknown. Here, we show EZH2 acts antagonistically to AKT signaling in maintaining H3K27 methylome through epigenetic silencing of IGFBP4. ChIP-seq revealed enrichment of Ezh2/H3K27me3 at silenced loci in HBx-transgenic mouse-derived HCCs, including Igfbp4 whose down-regulation significantly correlated with EZH2 overexpression and poor survivals of HCC patients. Functional characterizations demonstrated potent growth- and invasion-suppressive functions of IGFBP4, which was associated with transcriptomic alterations leading to deregulation of multiple signaling pathways. Mechanistically, IGFBP4 stimulated AKT/EZH2 phosphorylation to abrogate H3K27me3-mediated silencing, forming a reciprocal feedback loop that suppressed core transcription factor networks (FOXA1/HNF1A/HNF4A/KLF9/NR1H4) for normal liver homeostasis. Consequently, the in vivo tumorigenicity of IGFBP4-silenced HCC cells was vulnerable to pharmacological inhibition of EZH2, but not AKT. Our study unveils chromatin regulation of a novel liver tumor suppressor IGFBP4, which constitutes an AKT-EZH2 reciprocal loop in driving H3K27me3-mediated epigenetic reprogramming. Defining the aberrant chromatin landscape of HCC sheds light into the mechanistic basis of effective EZH2-targeted inhibition.
Insights
Hepatocellular carcinoma (HCC) epigenetics reveal IGFBP4 as a tumor suppressor. EZH2 silences IGFBP4, creating a vulnerability targeted by EZH2 inhibitors, not AKT inhibitors, in HCC therapy.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Genomic sequencing of hepatocellular carcinoma (HCC) reveals limited actionable mutations, necessitating exploration of epigenetic vulnerabilities for treatment.
- EZH2-mediated H3K27me3 is a key oncogenic modification in HCC, but its role in signaling pathway vulnerability is unclear.
Purpose of the Study:
- To investigate the role of EZH2 and H3K27me3 in HCC pathogenesis and therapeutic vulnerability.
- To elucidate the relationship between EZH2, AKT signaling, and the tumor suppressor IGFBP4 in HCC.
Main Methods:
- Chromatin immunoprecipitation sequencing (ChIP-seq) to analyze Ezh2/H3K27me3 enrichment in HCC.
- Functional characterization of IGFBP4's tumor-suppressive roles.
- Analysis of correlations between EZH2, IGFBP4, and patient survival.
Main Results:
- EZH2 epigenetically silences IGFBP4 in HCC, correlating with poor patient survival.
- IGFBP4 exhibits potent growth- and invasion-suppressive functions.
- A reciprocal feedback loop involving IGFBP4, AKT, and EZH2 regulates H3K27me3 and liver homeostasis transcription factors.
- HCC cells with silenced IGFBP4 are sensitive to EZH2 inhibition but not AKT inhibition.
Conclusions:
- IGFBP4 is a novel liver tumor suppressor regulated by EZH2-mediated epigenetic silencing.
- An AKT-EZH2 reciprocal loop drives H3K27me3-mediated epigenetic reprogramming in HCC.
- Targeting EZH2 offers a potential therapeutic strategy for HCC based on its aberrant chromatin landscape.
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