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Updated: Aug 16, 2026

Ferric Chloride-induced Murine Thrombosis Models
Published on: September 5, 2016
Mechanisms of homocysteine-induced atherothrombosis
1Department of Internal Medicine, The University of Iowa, and Veterans Affairs Medical Center, Iowa City, IA 52242, USA. steven-lentz@uiowa.edu
Insights
High homocysteine levels are linked to vascular diseases. Animal studies suggest elevated homocysteine (hyperhomocysteinemia) may directly cause endothelial dysfunction, promoting atherosclerosis and thrombosis.
Area of Science:
- Cardiovascular Science
- Vascular Biology
- Metabolic Disease
Background:
- Elevated plasma homocysteine is a known risk factor for cardiovascular disease, stroke, and venous thromboembolism.
- The causal role of hyperhomocysteinemia in vascular disease remains uncertain, with ongoing debate on whether it's a cause or merely a marker.
Purpose of the Study:
- To investigate the causal role of hyperhomocysteinemia in vascular disease.
- To define the vascular effects of hyperhomocysteinemia using animal models.
Main Methods:
- Utilized genetic and dietary strategies to induce hyperhomocysteinemia in experimental animals.
- Observed vascular phenotypes including endothelial dysfunction, nitric oxide bioavailability, arterial thrombosis, and atherosclerosis development.
Main Results:
- Hyperhomocysteinemia in animals caused endothelial dysfunction, characterized by reduced nitric oxide bioavailability.
- This dysfunction may stem from nitric oxide inactivation or inhibition by asymmetric dimethylarginine.
- Hyperhomocysteinemia increased susceptibility to arterial thrombosis and accelerated atherosclerosis in models like apolipoprotein E-deficient mice.
Conclusions:
- Animal studies provide strong evidence that homocysteine plays a causal role in atherothrombosis.
- Mechanisms involve homocysteine-induced protein modification and endoplasmic reticulum stress, leading to inflammation and apoptosis.
Abstract:
Elevation of plasma homocysteine level is a risk factor for cardiovascular disease, stroke, and venous thromboembolism. It is still uncertain, however, whether hyperhomocysteinemia is a causative factor or a marker of vascular disease. The strongest evidence that homocysteine plays a causal role in atherothrombosis has been provided by studies using animal models. In the past decade, considerable progress in defining the vascular effects of hyperhomocysteinemia was achieved through the use of genetic and dietary approaches to induce hyperhomocysteinemia in experimental animals. A key vascular phenotype observed in hyperhomocysteinemic animals is endothelial dysfunction, manifested by decreased bioavailability of endothelium-derived nitric oxide. Impairment of endothelial function may be mediated by either accelerated oxidative inactivation of nitric oxide or inhibition of nitric oxide production caused by the endogenous nitric oxide synthase inhibitor, asymmetric dimethylarginine. Hyperhomocysteinemia also increases susceptibility to arterial thrombosis and accelerates the development of atherosclerosis in susceptible models such as the apolipoprotein E-deficient mouse. Mechanisms of atherothrombosis may include homocysteine-induced thiolation or acylation of plasma or endothelial proteins and endoplasmic reticulum stress, which activates signal transduction pathways leading to inflammation and apoptosis.
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