Related Experiment Video
Updated: Jun 25, 2026

Ferric Chloride-induced Murine Thrombosis Models
Published on: September 5, 2016
The pathophysiological hypothesis of homocysteine thiolactone-mediated vascular disease
1Department of Microbiology & Molecular Genetics, UMDNJ-New Jersey Medical School, International Center for Public Health, Newark, NJ 07101, USA. jakubows@umdnj.edu
Insights
Homocysteine (Hcy) metabolite, Hcy-thiolactone, contributes to atherothrombosis by modifying proteins. Genetic or dietary hyperhomocysteinemia elevates Hcy-thiolactone and N-Hcy-proteins, increasing vascular disease risk.
Area of Science:
- Biochemistry
- Vascular Biology
- Metabolic Disorders
Background:
- Homocysteine (Hcy) metabolite, Hcy-thiolactone, is implicated in atherothrombosis.
- Hcy-thiolactone forms via an error in protein biosynthesis, modifying proteins by forming isopeptide bonds with lysine residues.
- This modification of proteins like fibrinogen and lipoproteins alters their function and contributes to disease.
Purpose of the Study:
- To investigate the role of Hcy-thiolactone and N-Hcy-proteins in vascular pathophysiology.
- To determine if hyperhomocysteinemia elevates Hcy-thiolactone and N-Hcy-proteins in vivo.
- To assess the contribution of these metabolites to atherosclerosis.
Main Methods:
- Utilized sensitive chemical and immunohistochemical assays.
- Measured plasma Hcy-thiolactone and N-Hcy-protein levels in human patients with genetic hyperhomocysteinemia (MTHFR/CBS mutations).
- Induced hyperhomocysteinemia in mice via a high-methionine diet and analyzed aortic lesions.
Main Results:
- Plasma Hcy-thiolactone elevated 59-72-fold in human hyperhomocysteinemia patients.
- Plasma N-Hcy-protein levels increased 24-30-fold in MTHFR/CBS-deficient humans and mice.
- Elevated N-Hcy-fibrinogen observed in CBS deficiency, correlating with increased atherothrombosis.
Conclusions:
- Genetic and dietary hyperhomocysteinemia significantly elevate proatherothrombotic metabolites Hcy-thiolactone and N-Hcy-proteins.
- These elevated metabolites contribute to the pathophysiology of the vascular system.
- The Hcy-thiolactone pathway is a key player in hyperhomocysteinemia-induced atherothrombosis.
Abstract:
Accumulating evidence suggests that homocysteine (Hcy) metabolite, the thioester Hcy-thiolactone, plays an important role in atherothrombosis. Hcy-thiolactone is a product of an error-editing reaction in protein biosynthesis which forms when Hcy is mistakenly selected by methionyl-tRNA synthetase. The thioester chemistry of Hcy-thiolactone underlies its ability to from isopeptide bonds with protein lysine residues, which impairs or alters protein's function. Protein targets for the modification by Hcy-thiolactone include fibrinogen, low-density lipoprotein, high-density lipoprotein, albumin, hemoglobin, and ferritin. Pathophysiological consequences of protein N-homocysteinylation include protein and cell damage, activation of an adaptive immune response and synthesis of auto-antibodies against N-Hcy-proteins, and enhanced thrombosis caused by N-Hcy-fibrinogen. Recent development of highly sensitive chemical and immunohistochemical assays has allowed verification of the hypothesis that the Hcy-thiolactone pathway contributes to pathophysiology of the vascular system, in particular of the prediction that conditions predisposing to atherosclerosis, such as genetic or dietary hyperhomocysteinemia, lead to elevation of Hcy-thiolactone and N-Hcy-protein. This prediction has been confirmed in vivo both in humans and in mice. For example, plasma Hcy-thiolactone was found to be elevated 59-72-fold in human patients with hyperhomocysteinemia secondary to mutations in methylenetetrahydrofolate reductase (MTHFR) or cystathionine beta-synthase (CBS) genes. Plasma N-Hcy-protein levels are elevated 24-30-fold in MTHFR- or CBS-deficiency, both in human patients and in mice. Plasma and urinary Hcy-thiolactone and plasma N-Hcy-protein levels are also elevated up to 30-fold in mice fed a hyperhomocysteinemic (1.5% methionine) diet. Furthermore, plasma levels of prothromobogenic N-Hcy-fibrinogen were elevated in human CBS deficiency, which explains increased atherothrombosis observed in CBS-deficient patients. We also observed increased immunohistochemical staining for N-Hcy-protein in aortic lesions from ApoE-deficient mice with hyperhomocysteinemia induced by a high methionine diet, relative to the mice fed a normal chow diet. We conclude that genetic or dietary hyperhomocysteinemia significantly elevates proatherothrombotic metabolites Hcy-thiolactone and N-Hcy-proteins in humans and mice.
Related Concept Videos
Hypertension II: Pathophysiology
Coronary Artery Disease II: Pathophysiology
Atherosclerosis I: Introduction
Hemorrhagic Stroke ll: Pathophysiology
Ischemic Stroke ll: Pathophysiology
Alzheimer Disease ll: Pathophysiology