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Updated: May 1, 2026

Experimental and Imaging Techniques for Examining Fibrin Clot Structures in Normal and Diseased States
Published on: April 1, 2015
Impact of homocysteine-thiolactone on plasma fibrin networks
Valeria Genoud1, Ana María Lauricella, Lucía C Kordich
1Laboratory of Hemostasis and Thrombosis, Department of Biological Chemistry, School of Exact and Natural Sciences, University of Buenos Aires, Buenos Aires, Argentina.
Insights
Homocysteine thiolactone (HTL) slows blood clotting by altering fibrin networks, potentially contributing to prothrombotic effects in hyperhomocysteinemia. This study reveals HTL
Area of Science:
- Biochemistry
- Hematology
- Vascular Biology
Background:
- Hyperhomocysteinemia is a known vascular disease risk factor.
- Homocysteine circulates in various forms, including reactive homocysteine thiolactone (HTL).
- HTL can modify proteins, impacting plasma protein structure and function.
Purpose of the Study:
- To investigate the effects of HTL on plasma fibrin network formation and structure.
- To assess how HTL influences blood coagulation parameters.
- To understand the prothrombotic potential of HTL-induced N-homocysteinylation.
Main Methods:
- Incubation of normal plasma with varying concentrations of HTL (100–1,000 μmol/L).
- Evaluation using global coagulation tests and fibrin formation kinetic assays.
- Analysis of fibrin network architecture via scanning electron microscopy.
Main Results:
- HTL significantly prolonged coagulation tests in a dose-dependent manner (up to 14.5%).
- Fibrin formation kinetics showed increased lag phase and reduced reaction velocity and optical density.
- Electron microscopy revealed denser, more branched fibrin networks with shorter fibers in HTL-treated plasma.
Conclusions:
- HTL induces a slower coagulation process, forming tightly packed fibrin clots.
- These altered fibrin networks may lead to impaired fibrinolysis.
- N-homocysteinylation by HTL is implicated in the prothrombotic risks of hyperhomocysteinemia.
Abstract:
Epidemiologic studies have shown that hyperhomocysteinemia is an independent risk factor for vascular disease. Homocysteine (Hcy) circulates as different species, mostly protein bound, and approximately 1% as its reduced form and the cyclic thioester homocysteine-thiolactone (HTL). Despite the level of plasma thiolactone being markedly low, detrimental effects are related to its high reactivity. HTL reacts with proteins by acylation of free basic amino groups; in particular, the epsilon-amino group of lysine residues forms adducts and induces structural and functional changes in plasma proteins. In order to assess the effects of HTL on plasma fibrin networks, a pool of normal plasma incubated with HTL (100, 500 and 1,000 μmol/L, respectively) was evaluated by global coagulation tests and fibrin formation kinetic assays, and the resulting fibrin was observed by scanning electron microscopy. HTL significantly prolonged global coagulation tests in a concentration-dependent manner with respect to control, and increases were up to 14.5%. Fibrin formation kinetic parameters displayed statistically significant differences between HTL-treated plasma and control in a concentration-dependent way, showing higher lag phase and lower maximum reaction velocity and final network optical density. Electron microscopy analysis of HTL plasma networks revealed a compact architecture, with more branches and shorter fibers than control. We can conclude that HTL induced a slower coagulation process, rendering more tightly packed fibrin clots. Since these features of the networks have been related to impaired fibrinolysis, the N-homocysteinylation reactions would be involved in the prothrombotic effects associated to hyperhomocysteinemia.
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