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Published on: October 24, 2015
Integrating the Epigenome to Identify Drivers of Hepatocellular Carcinoma
Ryan A Hlady1, Aishwarya Sathyanarayan1, Joyce J Thompson1
1Department of Molecular Pharmacology and Experimental Therapeutics, Mayo Clinic, Rochester, MN.
Abstract:
Disruption of epigenetic mechanisms has been intimately linked to the etiology of human cancer. Understanding how these epigenetic mechanisms (including DNA methylation [5mC], hydroxymethylation [5hmC], and histone post-translational modifications) work in concert to drive cancer initiation and progression remains unknown. Hepatocellular carcinoma (HCC) is increasing in frequency in Western countries but lacks efficacious treatments. The epigenome of HCC remains understudied. To better understand the epigenetic underpinnings of HCC, we performed a genome-wide assessment of 5mC, 5hmC, four histone modifications linked to promoter/enhancer function (H3K4me1, H3K27ac, H3K4me3, and H3K27me3), and transcription across normal, cirrhotic, and HCC liver tissue. Implementation of bioinformatic strategies integrated these epigenetic marks with each other and with transcription to provide a comprehensive epigenetic profile of how and when the liver epigenome is perturbed during progression to HCC. Our data demonstrate significant deregulation of epigenetic regulators combined with disruptions in the epigenome hallmarked by profound loss of 5hmC, locus-specific gains in 5mC and 5hmC, and markedly altered histone modification profiles, particularly remodeling of enhancers. Data integration demonstrates that these marks collaborate to influence transcription (e.g., hyper-5hmC in HCC-gained active enhancers is linked to elevated expression) of genes regulating HCC proliferation. Two such putative epigenetic driver loci identified through our integrative approach, COMT and FMO3, increase apoptosis and decrease cell viability in liver-derived cancer cell lines when ectopically re-expressed. Conclusion: Altogether, integration of multiple epigenetic parameters is a powerful tool for identifying epigenetically regulated drivers of HCC and elucidating how epigenome deregulation contributes to liver disease and HCC.
Insights
Epigenetic changes, including DNA methylation (5mC) and hydroxymethylation (5hmC), drive hepatocellular carcinoma (HCC) progression. Our study reveals key epigenetic disruptions and identifies novel therapeutic targets in HCC.
Area of Science:
- Epigenetics and Cancer Biology
- Genomics and Bioinformatics
- Hepatocellular Carcinoma Research
Background:
- Epigenetic mechanisms like DNA methylation (5mC) and hydroxymethylation (5hmC) are implicated in cancer etiology.
- Hepatocellular carcinoma (HCC) is a growing health concern with limited treatment options, and its epigenome is poorly understood.
- Understanding the interplay of epigenetic modifications in HCC initiation and progression is crucial.
Purpose of the Study:
- To comprehensively profile the epigenome in normal, cirrhotic, and HCC liver tissues.
- To integrate genome-wide epigenetic data with transcription to understand HCC development.
- To identify novel epigenetic drivers of HCC.
Main Methods:
- Genome-wide assessment of DNA methylation (5mC), hydroxymethylation (5hmC), and histone modifications (H3K4me1, H3K27ac, H3K4me3, H3K27me3).
- Analysis of gene transcription across normal, cirrhotic, and HCC liver tissues.
- Bioinformatic integration of epigenetic marks and transcription data.
Main Results:
- Significant deregulation of epigenetic regulators and profound loss of 5hmC in HCC.
- Locus-specific gains in 5mC and 5hmC, alongside altered histone modification profiles, particularly enhancer remodeling.
- Integration of epigenetic marks revealed collaborative influence on transcription of HCC proliferation genes, identifying COMT and FMO3 as potential drivers.
Conclusions:
- Integration of multiple epigenetic parameters is effective for identifying HCC drivers.
- Epigenome deregulation, including 5hmC loss and enhancer remodeling, contributes to HCC pathogenesis.
- Ectopic re-expression of identified drivers (COMT, FMO3) impacts liver cancer cell viability.
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