Molecular processes mediating hyperhomocysteinemia-induced metabolic reprogramming, redox regulation and growth

Michael Jan1, Ramon Cueto2, Xiaohua Jiang2

  • 1Center for Metabolic Disease Research, Temple University School of Medicine, Philadelphia, PA, United States; Otsuka Pharmaceutical Development & Commercialization, Inc., Princeton, NJ, United States.

Redox Biology
|June 18, 2021
PubMed

Insights

High homocysteine (HHcy) levels cause endothelial cell injury by altering metabolism and activating inflammatory responses. This study reveals key molecular pathways and potential therapeutic targets for cardiovascular disease.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Vascular Biology

Background:

  • Hyperhomocysteinemia (HHcy) is a significant risk factor for cardiovascular disease (CVD) and other degenerative conditions.
  • HHcy impairs endothelial cell (EC) function, promoting vascular injury, but underlying mechanisms require further elucidation.

Purpose of the Study:

  • To investigate the molecular and metabolic effects of HHcy on human aortic ECs.
  • To identify differentially expressed microRNAs (miRNAs) and messenger RNAs (mRNAs) and construct a molecular network.

Main Methods:

  • Human aortic ECs were treated with homocysteine (Hcy 500 μM).
  • Global mRNA and miRNA expression profiling was performed.
  • Bioinformatics analyses including Gene Set Enrichment Analysis (GSEA) and Cytoscape were utilized.
  • miRNA-mRNA interactions were analyzed using an experimentally verified database.

Main Results:

  • Identified 244 significantly differentially expressed (SDE) mRNAs and 45 SDE miRNAs.
  • HHcy induced metabolic reprogramming, including increased glucose uptake and mitochondrial ROS production.
  • HHcy activated inflammatory pathways (inflammasome-pyroptosis, IL-1β, adhesion molecules) and cell degradation systems (autophagy, ubiquitin-proteasome).
  • HHcy caused cell cycle arrest and suppressed proliferation via specific miRNA-mRNA axes (e.g., miR-335/VASH1).

Conclusions:

  • This study elucidates novel molecular and metabolic mechanisms of HHcy-induced endothelial injury.
  • Identified molecular axes and pathways provide potential therapeutic targets for HHcy-related vascular dysfunction and CVD.

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