Skip to main content
Top
Published in: Journal of Thrombosis and Thrombolysis 4/2014

01-11-2014

Impact of homocysteine-thiolactone on plasma fibrin networks

Authors: Valeria Genoud, Ana María Lauricella, Lucía C. Kordich, Irene Quintana

Published in: Journal of Thrombosis and Thrombolysis | Issue 4/2014

Login to get access

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.
Literature
1.
go back to reference Guba SC, Fonseca V, Fink LM (1999) Hyperhomocysteinemia and thrombosis. Semin Thromb Hemost 25:291–309PubMedCrossRef Guba SC, Fonseca V, Fink LM (1999) Hyperhomocysteinemia and thrombosis. Semin Thromb Hemost 25:291–309PubMedCrossRef
2.
go back to reference D´Angelo A, Selhub J (1997) Homocysteine and thrombotic disease. Blood 90:1–11PubMed D´Angelo A, Selhub J (1997) Homocysteine and thrombotic disease. Blood 90:1–11PubMed
3.
go back to reference Van Guldener C, Stehouwer CD (2000) Hyperhomocysteinemia, vascular pathology, and endothelial dysfunction. Semin Thromb Hemost 26:281–289PubMedCrossRef Van Guldener C, Stehouwer CD (2000) Hyperhomocysteinemia, vascular pathology, and endothelial dysfunction. Semin Thromb Hemost 26:281–289PubMedCrossRef
4.
go back to reference Perła-Kaján J, Twardowski T, Jakubowski H (2007) Mechanisms of homocysteine toxicity in humans. Amino Acids 32:561–572PubMedCrossRef Perła-Kaján J, Twardowski T, Jakubowski H (2007) Mechanisms of homocysteine toxicity in humans. Amino Acids 32:561–572PubMedCrossRef
5.
go back to reference Castañon MM, Lauricella AM, Kordich L, Quintana I (2007) Plasma homocysteine cutoff values for venous thrombosis. Clin Chem Lab Med 45:232–236PubMedCrossRef Castañon MM, Lauricella AM, Kordich L, Quintana I (2007) Plasma homocysteine cutoff values for venous thrombosis. Clin Chem Lab Med 45:232–236PubMedCrossRef
6.
go back to reference Refsum H, Smith AD, Ueland PM, Nexo E, Clarke R, McPartlin J, Johnston C, Engbaek F, Schneede J, McPartlin C, Scott JM (2004) Facts and recommendations about total homocysteine determinations: an expert opinion. Clin Chem 50:3–32PubMedCrossRef Refsum H, Smith AD, Ueland PM, Nexo E, Clarke R, McPartlin J, Johnston C, Engbaek F, Schneede J, McPartlin C, Scott JM (2004) Facts and recommendations about total homocysteine determinations: an expert opinion. Clin Chem 50:3–32PubMedCrossRef
7.
go back to reference Jakubowski H, Goldman E (1993) Synthesis of homocysteine thiolactone by methionyl-tRNA synthetase in cultured mammalian cells. FEBS Lett 317:237–240PubMedCrossRef Jakubowski H, Goldman E (1993) Synthesis of homocysteine thiolactone by methionyl-tRNA synthetase in cultured mammalian cells. FEBS Lett 317:237–240PubMedCrossRef
8.
go back to reference Blom HJ (2000) Consequences of homocysteine export and oxidation in the vascular system. Semin Thromb Hemost 26:227–232PubMedCrossRef Blom HJ (2000) Consequences of homocysteine export and oxidation in the vascular system. Semin Thromb Hemost 26:227–232PubMedCrossRef
9.
go back to reference Jakubowski H (1999) Protein homocysteinylation: possible mechanism underlying pathological consequences of elevated homocysteine levels. FASEB J 13:2277–2283PubMed Jakubowski H (1999) Protein homocysteinylation: possible mechanism underlying pathological consequences of elevated homocysteine levels. FASEB J 13:2277–2283PubMed
10.
go back to reference Glushchenko AV, Jacobsen DW (2007) Molecular targeting of proteins by L-homocysteine: mechanistic implications for vascular disease. Antioxid Redox Signal 9(11):1883–1898PubMedCrossRefPubMedCentral Glushchenko AV, Jacobsen DW (2007) Molecular targeting of proteins by L-homocysteine: mechanistic implications for vascular disease. Antioxid Redox Signal 9(11):1883–1898PubMedCrossRefPubMedCentral
11.
go back to reference Jakubowski H (2007) The molecular basis of homocysteine thiolactone-mediated vascular disease. Clin Chem Lab Med 45:1704–1716PubMedCrossRef Jakubowski H (2007) The molecular basis of homocysteine thiolactone-mediated vascular disease. Clin Chem Lab Med 45:1704–1716PubMedCrossRef
12.
go back to reference Yang X, Gao Y, Zhou J, Zhen Y, Yang Y, Wang J, Song L, Liu Y, Xu H, Chen Z, Hui R (2006) Plasma homocysteine thiolactone adducts associated with risk of coronary heart disease. Clin Chim Acta 364:230–234PubMedCrossRef Yang X, Gao Y, Zhou J, Zhen Y, Yang Y, Wang J, Song L, Liu Y, Xu H, Chen Z, Hui R (2006) Plasma homocysteine thiolactone adducts associated with risk of coronary heart disease. Clin Chim Acta 364:230–234PubMedCrossRef
13.
go back to reference Weisel JW (2007) Structure of fibrin: impact on clot stability. J Thromb Haemost 5(suppl 1):116–124PubMedCrossRef Weisel JW (2007) Structure of fibrin: impact on clot stability. J Thromb Haemost 5(suppl 1):116–124PubMedCrossRef
14.
go back to reference Hoffman M (2008) Alterations of fibrinogen structure in human disease. Cardiovasc Hematol Agents Med Chem 6:206–211PubMedCrossRef Hoffman M (2008) Alterations of fibrinogen structure in human disease. Cardiovasc Hematol Agents Med Chem 6:206–211PubMedCrossRef
15.
go back to reference Sauls DL, Wolberg AS, Hoffman M (2003) Elevated plasma homocysteine leads to alterations in fibrin clot structure and stability: implications for the mechanism of thrombosis in hyperhomocysteinemia. J Thromb Haemost 1:300–306PubMedCrossRef Sauls DL, Wolberg AS, Hoffman M (2003) Elevated plasma homocysteine leads to alterations in fibrin clot structure and stability: implications for the mechanism of thrombosis in hyperhomocysteinemia. J Thromb Haemost 1:300–306PubMedCrossRef
16.
go back to reference Lauricella AM, Quintana IL, Kordich LC (2002) Effects of homocysteine thiol group on fibrin networks: another possible mechanism of harm. Thromb Res 107:75–79PubMedCrossRef Lauricella AM, Quintana IL, Kordich LC (2002) Effects of homocysteine thiol group on fibrin networks: another possible mechanism of harm. Thromb Res 107:75–79PubMedCrossRef
17.
go back to reference Rojas AM, Kordich L, Lauricella AM (2009) Homocysteine modifies fibrin clot deformability: another possible explanation of harm. Biorheology 46:379–387PubMed Rojas AM, Kordich L, Lauricella AM (2009) Homocysteine modifies fibrin clot deformability: another possible explanation of harm. Biorheology 46:379–387PubMed
18.
go back to reference Quintana IL, Oberholzer MV, Kordich L, Lauricella AM (2009) Impaired fibrin gel permeability by high homocysteine levels. Thromb Res 127:35–38PubMedCrossRef Quintana IL, Oberholzer MV, Kordich L, Lauricella AM (2009) Impaired fibrin gel permeability by high homocysteine levels. Thromb Res 127:35–38PubMedCrossRef
19.
go back to reference Lauricella AM, Quintana I, Castañon M, Sassetti B, Kordich L (2006) Influence of homocysteine on fibrin network lysis. Blood Coagul Fibrinolysis 17:181–186PubMedCrossRef Lauricella AM, Quintana I, Castañon M, Sassetti B, Kordich L (2006) Influence of homocysteine on fibrin network lysis. Blood Coagul Fibrinolysis 17:181–186PubMedCrossRef
20.
go back to reference Olas B, Kolodziejczyk J, Malinowska J (2010) May modifications of human plasma proteins stimulated by homocysteine and its thiolactone induce changes of hemostatic function of plasma in vitro? Gen Physiol Biophys 29:186–193PubMedCrossRef Olas B, Kolodziejczyk J, Malinowska J (2010) May modifications of human plasma proteins stimulated by homocysteine and its thiolactone induce changes of hemostatic function of plasma in vitro? Gen Physiol Biophys 29:186–193PubMedCrossRef
21.
go back to reference Malinowska J, Nowak P, Olas B (2011) Comparison of the effect of homocysteine in the reduced form, its thiolactone and protein homocysteinylation on hemostatic properties of plasma. Thromb Res 127:214–219PubMedCrossRef Malinowska J, Nowak P, Olas B (2011) Comparison of the effect of homocysteine in the reduced form, its thiolactone and protein homocysteinylation on hemostatic properties of plasma. Thromb Res 127:214–219PubMedCrossRef
23.
go back to reference Wolberg AS, Gabriel DA, Hoffman M (2002) Analyzing fibrin clot structure using a microplate reader. Blood Coagul Fibrinolysis 13:533–539PubMedCrossRef Wolberg AS, Gabriel DA, Hoffman M (2002) Analyzing fibrin clot structure using a microplate reader. Blood Coagul Fibrinolysis 13:533–539PubMedCrossRef
24.
go back to reference Meh DA, Mosesson MW, DiOrio JP, Siebenlist KR, Hernandez I, Amrani DL, Stojanovich L (2001) Disintegration and reorganization of fibrin networks during tissue-type plasminogen activator-induced clot lysis. Blood Coagul Fibrinolysis 12:627–637PubMedCrossRef Meh DA, Mosesson MW, DiOrio JP, Siebenlist KR, Hernandez I, Amrani DL, Stojanovich L (2001) Disintegration and reorganization of fibrin networks during tissue-type plasminogen activator-induced clot lysis. Blood Coagul Fibrinolysis 12:627–637PubMedCrossRef
25.
go back to reference Collet JP, Park D, Lesty C, Soria J, Soria C, Montalescot G, Weisel JW (2000) Influence of fibrin network conformation and fibrin fiber diameter on fibrinolysis speed: dynamic and structural approaches by confocal microscopy. Arterioscler Thromb Vasc Biol 20:1354–1361PubMedCrossRef Collet JP, Park D, Lesty C, Soria J, Soria C, Montalescot G, Weisel JW (2000) Influence of fibrin network conformation and fibrin fiber diameter on fibrinolysis speed: dynamic and structural approaches by confocal microscopy. Arterioscler Thromb Vasc Biol 20:1354–1361PubMedCrossRef
26.
go back to reference Wu JH, Siddiqui K, Diamond SL (1994) Transport phenomena and clot dissolving therapy: an experimental investigation of diffusion-controlled and permeation-enhanced fibrinolysis. Thromb Haemost 72:105–112PubMed Wu JH, Siddiqui K, Diamond SL (1994) Transport phenomena and clot dissolving therapy: an experimental investigation of diffusion-controlled and permeation-enhanced fibrinolysis. Thromb Haemost 72:105–112PubMed
27.
go back to reference Collet JP, Lesty C, Montalescot G, Weisel JW (2003) Dynamic changes of fibrin architecture during fibrin formation and intrinsic fibrinolysis of fibrin-rich clots. J Biol Chem 278:21331–21335PubMedCrossRef Collet JP, Lesty C, Montalescot G, Weisel JW (2003) Dynamic changes of fibrin architecture during fibrin formation and intrinsic fibrinolysis of fibrin-rich clots. J Biol Chem 278:21331–21335PubMedCrossRef
28.
go back to reference Carr ME, Alving BM (1995) Effect of fibrin structure on plasmin-mediated dissolution of plasma clots. Blood Coagul Fibrinolysis 6:567–573PubMedCrossRef Carr ME, Alving BM (1995) Effect of fibrin structure on plasmin-mediated dissolution of plasma clots. Blood Coagul Fibrinolysis 6:567–573PubMedCrossRef
29.
go back to reference Kolev K, Machovich R (2003) Molecular and cellular modulation of fibrinolysis. Thromb Haemost 89:610–621PubMed Kolev K, Machovich R (2003) Molecular and cellular modulation of fibrinolysis. Thromb Haemost 89:610–621PubMed
30.
go back to reference Sauls DL, Lockhart E, Warren ME, Lenkowski A, Wilhelm SE, Hoffman M (2006) Modification of fibrinogen by homocysteine thiolactone increases resistance to fibrinolysis: a potential mechanism of the thrombotic tendency in hyperhomocysteinemia. Biochemistry 45:2480–2487PubMedCrossRef Sauls DL, Lockhart E, Warren ME, Lenkowski A, Wilhelm SE, Hoffman M (2006) Modification of fibrinogen by homocysteine thiolactone increases resistance to fibrinolysis: a potential mechanism of the thrombotic tendency in hyperhomocysteinemia. Biochemistry 45:2480–2487PubMedCrossRef
31.
go back to reference Undas A, Brozek J, Jankowski M, Siudak Z, Szczeklik A, Jakubowski H (2006) Plasma homocysteine affects fibrin clot permeability and resistance to lysis in human subjects. Arterioscler Thromb Vasc Biol 26:1397–1404PubMedCrossRef Undas A, Brozek J, Jankowski M, Siudak Z, Szczeklik A, Jakubowski H (2006) Plasma homocysteine affects fibrin clot permeability and resistance to lysis in human subjects. Arterioscler Thromb Vasc Biol 26:1397–1404PubMedCrossRef
32.
go back to reference Cellai AP, Lami D, Antonucci E, Liotta AA, Rogolino A, Fedi S, Fiorillo C, Becatti M, Cenci C, Marcucci R, Abbate R, Prisco D (2013) Hyperhomocysteinemia in patients with pulmonary embolism is associated with impaired plasma fibrinolytic capacity. J Thromb Thrombolysis. doi:10.1007/s11239-013-0981-1 Cellai AP, Lami D, Antonucci E, Liotta AA, Rogolino A, Fedi S, Fiorillo C, Becatti M, Cenci C, Marcucci R, Abbate R, Prisco D (2013) Hyperhomocysteinemia in patients with pulmonary embolism is associated with impaired plasma fibrinolytic capacity. J Thromb Thrombolysis. doi:10.​1007/​s11239-013-0981-1
Metadata
Title
Impact of homocysteine-thiolactone on plasma fibrin networks
Authors
Valeria Genoud
Ana María Lauricella
Lucía C. Kordich
Irene Quintana
Publication date
01-11-2014
Publisher
Springer US
Published in
Journal of Thrombosis and Thrombolysis / Issue 4/2014
Print ISSN: 0929-5305
Electronic ISSN: 1573-742X
DOI
https://doi.org/10.1007/s11239-014-1063-8

Other articles of this Issue 4/2014

Journal of Thrombosis and Thrombolysis 4/2014 Go to the issue