Thromb Haemost 2012; 108(06): 1208-1219
DOI: 10.1160/TH12-07-0486
Platelets and Blood Cells
Schattauer GmbH

Circulating and platelet-derived microparticles in human blood enhance thrombosis on atherosclerotic plaques

Rosa Suades
1   Cardiovascular Research Center, CSIC-ICCC, Barcelona, Spain
2   Biomedical Research Institute Sant-Pau (IIB-Sant Pau), Barcelona, Spain
3   CIBEROBN-Pathophysiology of Obesity and Nutrition, Barcelona, Spain
,
Teresa Padró
1   Cardiovascular Research Center, CSIC-ICCC, Barcelona, Spain
2   Biomedical Research Institute Sant-Pau (IIB-Sant Pau), Barcelona, Spain
3   CIBEROBN-Pathophysiology of Obesity and Nutrition, Barcelona, Spain
,
Gemma Vilahur
1   Cardiovascular Research Center, CSIC-ICCC, Barcelona, Spain
2   Biomedical Research Institute Sant-Pau (IIB-Sant Pau), Barcelona, Spain
3   CIBEROBN-Pathophysiology of Obesity and Nutrition, Barcelona, Spain
,
Lina Badimon
1   Cardiovascular Research Center, CSIC-ICCC, Barcelona, Spain
2   Biomedical Research Institute Sant-Pau (IIB-Sant Pau), Barcelona, Spain
3   CIBEROBN-Pathophysiology of Obesity and Nutrition, Barcelona, Spain
4   Cardiovascular Research Chair, UAB, Barcelona, Spain
› Author Affiliations
Financial support:This work was supported by Spanish Science Ministry [PNS-SAF2010–16549 to LB], Tercel [RD06/0010/0017 to LB], CIBERObn [CB06/03 to LB], Instituto Carlos III-ISCIII [FIS-PI10–01115 to TP], and Fundación Jesús Serra. RS is a recipient of a predoctoral fellowship from Spanish Health Ministry (PFIS, ISCIII) and GV is a recipient of a contract from the Spanish Science Ministry (RyC).
Further Information

Publication History

Received: 13 July 2012

Accepted after minor revision:07 September 2012

Publication Date:
30 November 2017 (online)

Summary

Plaque rupture followed by thrombosis is the underlying cause of the majority of acute coronary syndromes. Circulating microparticles (cMPs), membrane blebs released into blood by activated cells, have been associated to vascular diseases. Specifically, high levels of platelet-derived microparticles (pMPs) have been found in patients with coronary disease. However, it is unknown whether microparticles have a contributing role to the development of damaged vessel wall-induced arterial thrombi. The aim of this proof of concept study was to investigate whether an increased number of cMPs and pMPs could functionally contribute to blood thrombogenicity on areas of arterial damage. Microparticles were isolated from blood of healthy volunteers and were characterised by flow cytometry. Effects of microparticles on platelet deposition were assessed under controlled flow conditions exposing damaged arterial wall in the Badimon perfusion chamber and collagen type-I in the flat perfusion chamber to human blood. Platelet deposition on damaged arteries was significantly increased in cMP- and pMP-enriched bloods (p<0.05). pMPs also induced increase in platelet (p<0.05) and fibrin (p<0.05) deposition on human atherosclerotic arteries and in platelet adhesion to purified collagen surfaces. pMP-enriched blood induced a dose-dependent shortening of epinephrine/collagen closure time evaluated by PFA-100 (p<0.001), increased lowdose ADP-induced platelet aggregation by LTA (p<0.05), and decreased clotting time by thromboelastography (p<0.01). In conclusion, an increased content of cMPs and pMPs, even in normal blood conditions, enhance platelet deposition and thrombus formation. This study shows for the first time that, beyond biomarkers of cell activation, blood microparticles have functional effects on cardiovascular atherothrombotic disease.

 
  • References

  • 1 Fuster V, Badimon L, Cohen M. et al. Insights into the pathogenesis of acute ischemic syndromes. Circulation 1988; 77: 1213-1220.
  • 2 Viles-Gonzalez JF, Fuster V, Badimon JJ. Atherothrombosis: a widespread disease with unpredictable and life-threatening consequences. Eur Heart J 2004; 25: 1197-1207.
  • 3 Abrams CS, Ellison N, Budzynski AZ. et al. Direct detection of activated platelets and platelet-derived microparticles in humans. Blood 1990; 75: 128-138.
  • 4 Working Group on Vascular Biology. 55th Annual Scientific and Standardization Committee Meeting. ISTH Scientific Subcommittee Minutes, Boston, USA. 2009 Available at http://c.ymcdn.com/sites/www.isth.org/resource/resmgr/yearly_subcommittee_minutes/2009_minutes.pdf.
  • 5 Jy W, Horstman LL, Jimenez JJ. et al. Measuring circulating cell-derived microparticles. J Thromb Haemost 2004; 2: 1842-1851.
  • 6 Burnier L, Fontana P, Kwak BR. et al. Cell-derived microparticles in haemostasis and vascular medicine. Thromb Haemost 2009; 101: 439-451.
  • 7 Chirinos JA, Heresi GA, Velasquez H. et al. Elevation of endothelial microparticles, platelets, and leukocyte activation in patients with venous thromboembolism. J Am Coll Cardiol 2005; 45: 1467-1471.
  • 8 Mallat Z, Benamer H, Hugel B. et al. Elevated levels of shed membrane microparticles with procoagulant potential in the peripheral circulating blood of patients with acute coronary syndromes. Circulation 2000; 101: 841-843.
  • 9 Tan KT, Tayebjee MH, Lynd C. et al. Platelet microparticles and soluble P selectin in peripheral artery disease: relationship to extent of disease and platelet activation markers. Ann Med 2005; 37: 61-66.
  • 10 Vidal C, Spaulding C, Picard F. et al. Flow cytometry detection of platelet procoagulation activity and microparticles in patients with unstable angina treated by percutaneous coronary angioplasty and stent implantation. Thromb Haemost 2001; 86: 784-790.
  • 11 Mause SF, Ritzel E, Liehn EA. et al. Platelet microparticles enhance the vasoregenerative potential of angiogenic early outgrowth cells after vascular injury. Circulation 2010; 122: 495-506.
  • 12 Rautou PE, Leroyer AS, Ramkhelawon B. et al. Microparticles from human atherosclerotic plaques promote endothelial ICAM-1-dependent monocyte adhesion and transendothelial migration. Circulation Res 2011; 108: 335-343.
  • 13 Badimon L, Badimon JJ. Mechanisms of arterial thrombosis in nonparallel streamlines: platelet thrombi grow on the apex of stenotic severely injured vessel wall. Experimental study in the pig model. J Clin Invest 1989; 84: 1134-1144.
  • 14 Badimon L, Badimon JJ, Galvez A. et al. Influence of arterial damage and wall shear rate on platelet deposition. Ex vivo study in a swine model. Arteriosclerosis 1986; 6: 312-320.
  • 15 Spronk HM, van der Voort D, Ten Cate H. Blood coagulation and the risk of atherothrombosis: a complex relationship. Thrombosis J 2004; 2: 12.
  • 16 Owens AP, Mackman N. 3rd. Microparticles in hemostasis and thrombosis. Circulation Res 2011; 108: 1284-1297.
  • 17 Sinauridze EI, Kireev DA, Popenko NY. et al. Platelet microparticle membranes have 50- to 100-fold higher specific procoagulant activity than activated platelets. Thromb Haemost 2007; 97: 425-434.
  • 18 Van der Meijden PE, Van Schilfgaarde M, Van Oerle R. et al. Platelet- and erythrocyte-derived microparticles trigger thrombin generation via factor XIIa. J Thromb Haemost 2012; 10: 1355-1362.
  • 19 Nomura S, Tandon NN, Nakamura T. et al. High-shear-stress-induced activation of platelets and microparticles enhances expression of cell adhesion molecules in THP-1 and endothelial cells. Atherosclerosis 2001; 158: 277-287.
  • 20 Shai E, Varon D. Development, cell differentiation, angiogenesis--microparticles and their roles in angiogenesis. Arterioscl Thromb Vasc Biol 2011; 31: 10-14.
  • 21 Llorente-Cortes V, Otero-Vinas M, Camino-Lopez S. et al. Aggregated low-density lipoprotein uptake induces membrane tissue factor procoagulant activity and microparticle release in human vascular smooth muscle cells. Circulation 2004; 110: 452-459.
  • 22 Del Conde I, Shrimpton CN, Thiagarajan P. et al. Tissue-factor-bearing microvesicles arise from lipid rafts and fuse with activated platelets to initiate coagulation. Blood 2005; 106: 1604-1611.
  • 23 Nieuwland R, Berckmans RJ, McGregor S. et al. Cellular origin and procoagulant properties of microparticles in meningococcal sepsis. Blood 2000; 95: 930-935.
  • 24 Shet AS, Aras O, Gupta K. et al. Sickle blood contains tissue factor-positive microparticles derived from endothelial cells and monocytes. Blood 2003; 102: 2678-2683.
  • 25 Falati S, Liu Q, Gross P. et al. Accumulation of tissue factor into developing thrombi in vivo is dependent upon microparticle P-selectin glycoprotein ligand 1 and platelet P-selectin. J Exp Med 2003; 197: 1585-1598.
  • 26 Thomas GM, Panicot-Dubois L, Lacroix R. et al. Cancer cell-derived microparticles bearing P-selectin glycoprotein ligand 1 accelerate thrombus formation in vivo. J Exp Med 2009; 206: 1913-1927.
  • 27 Berckmans RJ, Nieuwland R, Boing AN. et al. Cell-derived microparticles circulate in healthy humans and support low grade thrombin generation. Thromb Haemost 2001; 85: 639-646.
  • 28 Aatonen M, Gronholm M, Siljander PR. Platelet-derived microvesicles: multitalented participants in intercellular communication. Semin Thromb Hemost 2012; 38: 102-113.
  • 29 Brill A, Dashevsky O, Rivo J. et al. Platelet-derived microparticles induce angiogenesis and stimulate postischemic revascularization. Cardiovasc Res 2005; 67: 30-38.
  • 30 Jayachandran M, Miller VM, Heit JA. et al. Methodology for isolation, identification and characterization of microvesicles in peripheral blood. J Immunol Methods 2012; 375: 207-214.
  • 31 Biro E, Akkerman JW, Hoek FJ. et al. The phospholipid composition and cholesterol content of platelet-derived microparticles: a comparison with platelet membrane fractions. J Thromb Haemost 2005; 3: 2754-2763.
  • 32 Badimon L, Badimon JJ, Turitto VT. et al. Platelet thrombus formation on collagen type I. A model of deep vessel injury. Influence of blood rheology, von Willebrand factor, and blood coagulation. Circulation 1988; 78: 1431-1442.
  • 33 Badimon L, Turitto V, Rosemark JA. et al. Characterization of a tubular flow chamber for studying platelet interaction with biologic and prosthetic materials: deposition of indium 111-labeled platelets on collagen, subendothelium, and expanded polytetrafluoroethylene. The J Lab Clin Med 1987; 110: 706-718.
  • 34 Molins B, Pena E, Padro T. et al. Glucose-regulated protein 78 and platelet deposition: effect of rosuvastatin. Arterioscl Thromb Vasc Biol 2010; 30: 1246-1252.
  • 35 Molins B, Pena E, Vilahur G. et al. C-reactive protein isoforms differ in their effects on thrombus growth. Arterioscl Thromb Vasc Biol 2008; 28: 2239-2246.
  • 36 Fernandez-Ortiz A, Badimon JJ, Falk E. et al. Characterization of the relative thrombogenicity of atherosclerotic plaque components: implications for consequences of plaque rupture. J Am Coll Cardiol 1994; 23: 1562-1569.
  • 37 Rand ML, Wang H, Bang KW. et al. Rapid clearance of procoagulant platelet-derived microparticles from the circulation of rabbits. J Thromb Haemost 2006; 4: 1621-1623.
  • 38 Baumgartner HR. Platelet interaction with collagen fibrils in flowing blood. I. Reaction of human platelets with alpha chymotrypsin-digested subendothelium. Thromb Haemost 1977; 37: 1-16.
  • 39 Arderiu G, Pena E, Aledo R. et al. Tissue factor regulates microvessel formation and stabilization by induction of chemokine (C-C motif) ligand 2 expression. Arterioscl Thromb Vasc Biol 2011; 31: 2607-2615.
  • 40 Galvez A, Badimon L, Badimon JJ. et al. Electrical aggregometry in whole blood from human, pig and rabbit. Thromb Haemost 1986; 56: 128-132.
  • 41 Hartert H. The current importance of thrombelastography. Minerva Medica 1963; 54: 181-182.
  • 42 Sorensen B, Johansen P, Christiansen K. et al. Whole blood coagulation thrombelastographic profiles employing minimal tissue factor activation. J Thromb Haemost 2003; 1: 551-558.
  • 43 van der Zee PM, Biro E, Ko Y. et al. P-selectin- and CD63-exposing platelet microparticles reflect platelet activation in peripheral arterial disease and myocardial infarction. Clin Chem 2006; 52: 657-664.
  • 44 Badimon L, Badimon JJ, Vilahur G. et al. Pathogenesis of the acute coronary syndromes and therapeutic implications. Pathophysiol Haemost Thromb 2002; 32: 225-231.
  • 45 Merten M, Pakala R, Thiagarajan P. et al. Platelet microparticles promote platelet interaction with subendothelial matrix in a glycoprotein IIb/IIIa-dependent mechanism. Circulation 1999; 99: 2577-2582.
  • 46 Keuren JF, Magdeleyns EJ, Bennaghmouch A. et al. Microparticles adhere to collagen type I, fibrinogen, von Willebrand factor and surface immobilised platelets at physiological shear rates. Br J Haematol 2007; 138: 527-533.
  • 47 Kim HK, Kim JE, Han KS. et al. The role of cellular microparticles in platelet-related hemostasis measured using Platelet Function Analyzer-100. Blood Coagul Fibrinolysis 2008; 19: 328-330.
  • 48 Alkhatatbeh MJ, Mhaidat NM, Enjeti AK. et al. The putative diabetic plasma marker, soluble CD36, is non-cleaved, non-soluble and entirely associated with microparticles. J Thromb Haemost 2011; 9: 844-851.
  • 49 Sinning JM, Losch J, Walenta K. et al. Circulating CD31+/Annexin V+ microparticles correlate with cardiovascular outcomes. Eur Heart J 2011; 32: 2034-2041.
  • 50 Holme PA, Orvim U, Hamers MJ. et al. Shear-induced platelet activation and platelet microparticle formation at blood flow conditions as in arteries with a severe stenosis. Arterioscl Thromb Vasc Biol 1997; 17: 646-653.
  • 51 Cramer EM, Norol F, Guichard J. et al. Ultrastructure of platelet formation by human megakaryocytes cultured with the Mpl ligand. Blood 1997; 89: 2336-2346.
  • 52 Ueba T, Haze T, Sugiyama M. et al. Level, distribution and correlates of platelet-derived microparticles in healthy individuals with special reference to the metabolic syndrome. Thromb Haemost 2008; 100: 280-285.
  • 53 Ueba T, Nomura S, Inami N. et al. Plasma level of platelet-derived microparticles is associated with coronary heart disease risk score in healthy men. J Atheroscl Thromb 2010; 17: 342-349.
  • 54 Garcia BA, Smalley DM, Cho H. et al. The platelet microparticle proteome. J Proteome Res 2005; 4: 1516-1521.
  • 55 Vasina EM, Cauwenberghs S, Feijge MA. et al. Microparticles from apoptotic platelets promote resident macrophage differentiation. Cell Death Dis 2011; 2: e211.