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Published on: March 22, 2017
Epigenome-wide DNA methylation profiling in comparison between pathological and physiological hypertrophy of human
Hangchuan Shi1,2, Si Chen3, Fanju W Meng4
1Department of Clinical and Translational Research, University of Rochester Medical Center, Rochester, NY, United States.
Insights
This study reveals distinct DNA methylation patterns in human heart cells responding to pathological (angiotensin II) and physiological (IGF-1) stimuli. These epigenetic changes in cardiac hypertrophy could help differentiate between disease states.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Molecular Cardiology
Background:
- Cardiac hypertrophy arises from diverse stimuli, yet molecular distinctions, particularly epigenetic regulation via DNA methylation, remain unclear.
- Understanding these differences is crucial for diagnosing and treating heart conditions.
Purpose of the Study:
- To investigate and compare genome-wide DNA methylation patterns in human cardiomyocytes under pathological (angiotensin II) and physiological (IGF-1) hypertrophic conditions.
- To identify specific epigenetic markers and molecular pathways associated with distinct forms of cardiac hypertrophy.
Main Methods:
- Human cardiomyocytes were treated with angiotensin II (pathological) and IGF-1 (physiological) to model cardiac hypertrophy.
- Whole genome DNA methylation was profiled using the MethylationEPIC platform (>850K loci).
- Gene expression analysis (qRT-PCR) and pathway enrichment analyses were performed.
Main Results:
- Significant differential DNA methylation was observed at 194 loci (AngII) and 206 loci (IGF-1).
- Associated gene sets revealed enrichment in the PI3K-Akt pathway for both stimuli and the Hippo pathway for IGF-1.
- Distinct methylation patterns were noted for PI3K-Akt pathway genes like CDK6 and RPTOR, confirmed by differential gene expression.
Conclusions:
- This study provides the first epigenome-wide DNA methylation profiling of human cardiomyocytes under distinct pathological and physiological hypertrophy.
- Identified DNA methylation loci, genes, and pathways offer potential biomarkers to differentiate between pathological and physiological cardiac hypertrophy.
Abstract:
Background: Physiological and pathological stimuli result in distinct forms of cardiac hypertrophy, but the molecular regulation comparing the two, especially at the DNA methylation level, is not well understood. Methods: We conducted an in vitro study using human cardiomyocytes exposed to angiotensin II (AngII) and insulin-like growth factor 1 (IGF-1) to mimic pathologically and physiologically hypertrophic heart models, respectively. Whole genome DNA methylation patterns were profiled by the Infinium human MethylationEPIC platform with >850 K DNA methylation loci. Two external datasets were used for comparisons and qRT-PCR was performed for examining expression of associated genes of those identified DNA methylation loci. Results: We detected 194 loci that are significantly differentially methylated after AngII treatment, and 206 significant loci after IGF-1 treatment. Mapping the significant loci to genes, we identified 158 genes corresponding to AngII treatment and 175 genes to IGF-1 treatment. Using the gene-set enrichment analysis, the PI3K-Akt signaling pathway was identified to be significantly enriched for both AngII and IGF-1 treatment. The Hippo signaling pathway was enriched after IGF-1 treatment, but not for AngII treatment. CDK6 and RPTOR are components of the PI3K-Akt pathway but have different DNA methylation patterns in response to AngII and IGF-1. qRT-PCR confirmed the different gene expressions of CDK6 and PRTOR. Conclusion: Our study is pioneering in profiling epigenome DNA methylation changes in adult human cardiomyocytes under distinct stress conditions: pathological (AngII) and physiological (IGF-1). The identified DNA methylation loci, genes, and pathways might have the potential to distinguish between pathological and physiological cardiac hypertrophy.
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