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.

Frontiers in Genetics
|October 13, 2023
PubMed

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.