Monoamine oxidases are mediators of endothelial dysfunction in the mouse aorta

Adrian Sturza1, Matthias S Leisegang, Andrea Babelova

  • 1Institut für Kardiovaskuläre Physiologie, Goethe-Universität, Frankfurt, Germany.

Insights

Monoamine oxidases (MAOs) generate hydrogen peroxide (H2O2), contributing to endothelial dysfunction. Inhibiting MAO-A and MAO-B enzymes restored normal vascular function in disease models.

Area of Science:

  • Cardiovascular Biology
  • Enzymology
  • Oxidative Stress

Background:

  • Monoamine oxidases (MAOs) produce hydrogen peroxide (H2O2) as a metabolic byproduct.
  • The role of MAOs in mediating endothelial dysfunction remains largely unexplored.
  • MAO-A and MAO-B enzymes are present in vascular tissues.

Purpose of the Study:

  • To investigate whether MAOs contribute to endothelial dysfunction.
  • To determine the role of MAO-generated H2O2 in vascular impairment.
  • To assess the therapeutic potential of MAO inhibitors in vascular disease models.

Main Methods:

  • Quantitative real-time PCR and Western blot to detect MAO-A and MAO-B expression in mouse aortas and human endothelial cells.
  • Ex vivo and in vivo studies using angiotensin II and lipopolysaccharide models of vascular dysfunction in mice.
  • Measurement of H2O2 formation, reactive oxygen species, cyclic GMP levels, and endothelium-dependent relaxation.

Main Results:

  • MAO-A and MAO-B expression was detected in mouse aortas and human endothelial cells.
  • MAO-A exposure increased H2O2 production and induced endothelial dysfunction ex vivo.
  • In vivo angiotensin II and lipopolysaccharide treatments upregulated vascular MAO expression, impaired endothelium-dependent relaxation, and increased oxidative stress.
  • MAO inhibitors attenuated H2O2 formation and partially restored vascular function, with combined MAO-A and MAO-B inhibition achieving complete restoration.
  • MAO-A exposure reduced cyclic GMP levels, indicating impaired endothelial nitric oxide release.

Conclusions:

  • MAO-A and MAO-B are expressed in the mouse aorta and are induced by angiotensin II and lipopolysaccharide.
  • MAO-generated H2O2 is a key mediator of endothelial dysfunction in these vascular disease models.
  • MAO inhibition represents a potential therapeutic strategy for vascular diseases characterized by oxidative stress and endothelial dysfunction.