Homocysteine Metabolites, Endothelial Dysfunction, and Cardiovascular Disease

Hieronim Jakubowski1,2, Łukasz Witucki2

  • 1Department of Microbiology, Biochemistry and Molecular Genetics, International Center for Public Health, New Jersey Medical School, Rutgers University, Newark, NJ 07103, USA.

Insights

Elevated homocysteine (Hcy) and its metabolites, like Hcy-thiolactone, drive endothelial dysfunction and cardiovascular disease (CVD) by promoting inflammation and altering gene expression. Targeting these metabolites may offer new therapeutic strategies for atherosclerosis and stroke.

Area of Science:

  • Cardiovascular Science
  • Biochemistry
  • Molecular Biology

Background:

  • Atherosclerosis and cardiovascular disease (CVD) are leading global causes of mortality, driven by inflammation and endothelial dysfunction.
  • Hyperhomocysteinemia (HHcy), characterized by elevated homocysteine (Hcy) levels, is a significant risk factor for CVD.
  • Endothelial dysfunction, the initial step in atherosclerosis, results from factors disrupting vascular homeostasis, including HHcy.

Purpose of the Study:

  • To elucidate the mechanisms by which Hcy metabolites contribute to endothelial dysfunction, CVD, and stroke.
  • To explore the role of epigenetic modifications in Hcy-induced vascular pathology.
  • To identify potential therapeutic targets for Hcy-related vascular complications.

Main Methods:

  • Review of epidemiological, biochemical, and clinical studies on homocysteine metabolism and CVD.
  • Analysis of the biochemical modifications of proteins by Hcy metabolites (e.g., N-homocysteinylated proteins).
  • Investigation of epigenetic mechanisms, including microRNAs and histone modifications, involved in Hcy-induced vascular damage.

Main Results:

  • Elevated Hcy, Hcy-thiolactone, and N-Hcy-proteins promote endothelial dysfunction, inflammation, and pro-atherogenic changes.
  • Hcy metabolites induce epigenetic alterations, including mTOR signaling upregulation and autophagy inhibition via microRNAs and histone modifications.
  • Cystathionine and Hcy-thiolactone are linked to myocardial infarction and ischemic stroke through effects on blood clotting.

Conclusions:

  • Hcy metabolites are key drivers of endothelial dysfunction and atherosclerosis, contributing to CVD and stroke.
  • Epigenetic dysregulation plays a crucial role in the pathogenesis of Hcy-induced vascular disease.
  • Targeting Hcy metabolism and its downstream effects presents a promising avenue for CVD prevention and treatment.

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