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Updated: May 11, 2026

Measurement of Endothelium-Dependent Vasorelaxation in the Mouse Thoracic Aorta Using Tensometric Small Volume Chamber Myography
Published on: August 12, 2022
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.
Abstract:
Monoamine oxidases (MAOs) generate H(2)O(2) as a by-product of their catalytic cycle. Whether MAOs are mediators of endothelial dysfunction is unknown and was determined here in the angiotensin II and lipopolysaccharide-models of vascular dysfunction in mice. Quantitative real-time polymerase chain reaction revealed that mouse aortas contain enzymes involved in catecholamine generation and MAO-A and MAO-B mRNA. MAO-A and -B proteins could be detected by Western blot not only in mouse aortas but also in human umbilical vein endothelial cells. Ex vivo incubation of mouse aorta with recombinant MAO-A increased H(2)O(2) formation and induced endothelial dysfunction that was attenuated by polyethylene glycol-catalase and MAO inhibitors. In vivo lipopolysaccharide (8 mg/kg IP overnight) or angiotensin II (1 mg/kg per day, 2 weeks, minipump) treatment induced vascular MAO-A and -B expressions and resulted in attenuated endothelium-dependent relaxation of the aorta in response to acetylcholine. MAO inhibitors reduced the lipopolysaccharide- and angiotensin II-induced aortic reactive oxygen species formation by 50% (ferrous oxidation xylenol orange assay) and partially normalized endothelium-dependent relaxation. MAO-A and MAO-B inhibitors had an additive effect; combined application completely restored endothelium-dependent relaxation. To determine how MAO-dependent H(2)O(2) formation induces endothelial dysfunction, cyclic GMP was measured. Histamine stimulation of human umbilical vein endothelial cells to activate endothelial NO synthase resulted in an increase in cyclic GMP, which was almost abrogated by MAO-A exposure. MAO inhibition prevented this effect, suggesting that MAO-induced H(2)O(2) formation is sufficient to attenuate endothelial NO release. Thus, MAO-A and MAO-B are both expressed in the mouse aorta, induced by in vivo lipopolysaccharide and angiotensin II treatment and contribute via the generation of H(2)O(2) to endothelial dysfunction in vascular disease models.
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.
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