Endothelial cell mernbrane-bound thrombomodulin (TM) plays a critical role as a cofactor in the protein C pathway, important in regulating coagulation as well as inflammation. Heterogeneous soluble TM fragments circulate in the plasma and are found at increased levels in various diseases such as cardiovascular disease and diabetes, and in ischemic and/or inflammatory endothelial injuries. The anticoagulant function of these soluble fragments has not been measured in healthy individuals or in patients. Using an immobilized monoclonal antibody against TM and a microtiter plate format, an assay was designed to capture the soluble TM fragments in plasma and measure their cofactor activity in the thrombin-mediated activation of protein C. In addition, soluble TM antigen levels were measured by enzyme-linked immunosorbent assay. Both assays were used to investigate a group of healthy blood donors. TM fragments released into plasma were shown to retain significant cofactor activity, and reference intervals for healthy men and women were established. Furthermore, a statistically significant correlation was observed between soluble TM antigen levels and soluble TM cofactor activity. This notwithstanding, soluble TM activity only accounted for a minor part of all variation in soluble TM antigen levels (R-2 = 22% in men and R-2 = 16% in women).
Background: Elevated plasma levels of total homocysteine (tHcy) are associated with an increased risk of developing occlusive vascular diseases. To better illustrate the relationship between plasma tHcy concentration, oxidative stress, and inflammation in patients with coronary artery disease (CAD), we measured plasma 8-isoprostane-prostaglandin F-2 (Iso-P), plasma malondialdehyde (MDA), and several markers of inflammation. We also aimed to demonstrate the effects of vitamin supplementation on these markers.Methods: A total of 93 patients with ischemic heart disease were investigated. Of these, 34 had plasma tHcy <= 8 mu mol/L, while 59 had plasma tHcy >= 15.0 mu mol/L. The 59 patients were randomized to open therapy with folic acid, 5 mg, pyridoxine, 40 mg, and cyancobalamin, 1 mg once daily for 3 months (n = 29) or to no vitamin treatment (n=30). Blood samples were obtained from both groups before randomization and 3 months later. A sample was also obtained from the remaining 34 patients.Results: Plasma Iso-P, serum amyloid A (S-AA), and plasma intercellular adhesion molecule-1 ICAM-1) concentrations were higher in patients with high plasma tHcy levels than in patients with low to normal tHcy levels. Plasma levels of P-, L-, E-selectins, MDA, C-reactive protein (CRP), and orosomucoid did not differ between the groups. Vitamin therapy reduced plasma tHcy from 17.4 (15.3/20.1) to 9.2 (8.3/ 10.3) mu mol/L (25th and 75th percentiles in parentheses) (p < 0.0001). Plasma levels of Iso-P remained unchanged and, of all inflammatory markers, only the S-AA concentrations were slightly reduced by the vitamin treatment, from 5.3 (2.2/7.0) ng/L at baseline to 4.6 (2.1/6.9) ng/L (p < 0.05) after 3 months of vitamin supplementation.Conclusion: Patients with CAD and high plasma tHcy levels had elevated plasma levels of Iso-P. The increase remained unaffected by plasma tHcy-lowering therapy, suggesting that homocysteine per se does not cause increased lipid peroxidation. Levels of plasma ICAM-1 and S-AA were increased in patients with high plasma tHcy, suggesting an association between homocysteinemia and low-grade inflammation.
Introduction: Endothelial thrombomodulin (TM) plays a critical role in both anticoagulation and antiinflammation. An impaired TM cofactor function or reduced TM gene expression could constitute a prethrombotic abnormality leading to acute coronary events. Mutations in the TM gene occur, but their functional consequences on the expression and activity of the gene are not yet fully understood. Materials and methods: We performed a prospective study investigating the prevalence of TM mutations in the promoter region in 182 patients with acute coronary syndrome as well as in a control group. The patients were followed-up after 30 days and after 2 years for acute myocardial infarction (MI) and mortality. Results and conclusions: We identified 10 point mutations and 2 small deletions: - 1861 C/A, - 1852 C/G, - 1803 G/C, 1752 G/C, - 1213/1212 delTT, - 1089 C/G, - 1088 C/T, - 1083/1082 delCC, 1066 A/C, - 801 C/G, - 651 A/C and - 52 G/A. Two of the mutations, - 1752 G/C and - 1213/1212 delTT, were frequent in the patients as well as in the controls, white all the others were rare. The only significant finding was that both - 1752 G/C and - 1213/1212 delTT were associated with a lower than normal risk of suffering a clinical event among smokers at 30 days and 2 years. We did not gain any support for the hypothesis that TM mutations confer an increased risk of MI or mortality. (C) 2004 Published by Elsevier Ltd.
Objective : Free radicals formed after coronary artery occlusion and reperfusion are assumed to produce myocardial stunning and possibly other forms of reperfusion injury as well. Malondialdehyde (MDA) is an end product in the lipid peroxidation chain reaction and is frequently used as a marker for free oxygen radical production. Increased levels of plasma MDA have been found following successful thrombolytic therapy. The aim of this study was to investigate whether plasma MDA levels also increase after successful primary percutaneous transluminal coronary angioplasty (PTCA) in acute myocardial infarction (AMI). Design : In 23 patients with AMI, treated with primary PTCA, plasma MDA was analysed using a high-performance liquid chromatography method (HPLC). The results obtained with this method were compared with those obtained with a fluorimetric assay of thiobarbituric acid reactive substances (TBARS). This assay measures MDA but with a lower specificity. Results : We found a significant decrease of plasma MDA from baseline 0.99 to 0.87 µmol/l at 30 min and to 0.90 µmol/l at 90 min following the primary PTCA ( p = 0.048 and 0.014, respectively). No significant changes in TBARS method levels were observed. Conclusion : Instead of the expected increase in MDA following reperfusion we found a significant decrease. The results from measurements of MDA and TBARS were significantly incompatible. The results raise serious doubts as to the usefulness of increased plasma levels of MDA as a marker of oxidative stress caused by coronary reperfusion in patients treated with angioplasty.
Sporadic mutations in the thrombomodulin (TM) gene occur in patients with both arterial and venous thrombosis, but the effects of these mutations on expression and function are largely unexplored. Full-length wild-type TM complementary DNA (cDNA) was incorporated into vector pcDNA6 for transfection into COS-7 cells for transient expression. Mutagenesis was performed to create 7 TM mutants with natural mutations either previously identified (Ala25Thr, Gly61Ala, Asp468Tyr, Pro477Ser, Pro483Leu) or reported here (an 11-base pair [bp] deletion, del791-801, leading to STOP306, and a missense mutation, Arg385Ser). Four mutations were found to detrimentally affect the level of expression of the TM protein. Of the missense mutations, 3 had reduced expression compared to wild-type TM (100%), Arg385Ser (50.2% +/- 5%, P <.001), Pro477Ser (76.8% +/- 1%, P <.001), Pro483Leu (82.1% +/- 8%, P <.007). No TM protein expression could be detected on the cell surface for mutation del791-801. The cofactor activity of TM in protein C activation was also evaluated. The Michaelis constant (K(m)) for wild-type thrombin-TM complex was 634 +/- 6 nmol/L. Two mutants, with Arg385Ser and Pro477Ser, had increased (P <.0001) K(m), 2967 +/- 283 nM, and 2342 +/- 219 nM, respectively, demonstrating impaired function of the thrombin-TM complex. This work presents biochemical evidence that certain (but not all) natural mutations in the TM gene reduce expression and impair function of the protein on the cell surface, and helps clarify the suggested contribution that these mutations might make to the risk of thromboembolic disease.
The Ala25-Thr Mutation in the Thrombomodulin Gene Is not Frequent in Swedish Patients Suffering from Ischemic Heart Disease -
It has been suggested that an impaired thrombomodulin (TM) function could constitute an abnormality leading to thromboembolic disease (TED). The TM gene from 51 unrelated American patients with TED and 100 American blood donors was screened for mutations. Four heterozygous point mutations in the TM gene were detected. The mutations are distributed throughout the TM gene and predict amino acid changes 1) Pro483 to Leu, 2) Gly61 to Ala, 3) Asp468 to Tyr (earlier described) and 4) a silent mutation not predicting any amino acid change at Glu163. Family studies reveal that the occurrence of the different TM mutations is associated with a history of TED, but there are indications of multiple risk factors and no perfect co-segregation of the TM defects and TED. Among the controls. three individuals carried heterozygous TM variants predicting either a Pro477-Ser mutation (two cases) or an Asp468-Tyr mutation. Our results thus demonstrate that a previously undocumented abnormality in the protein C anticoagulant pathway, a defect in the TM gene, to a certain extent co-segregates with familial thrombophilia. Further studies are needed to prove the causality of these TM mutations.
Free oxygen radicals are produced after coronary artery occlusion and reperfusion. Polyunsaturated fatty acids are oxidized by free radicals to lipid peroxides. Measurements of plasma malondialdehyde (MDA) formed by the breakdown of lipid peroxides are often used as markers of lipid peroxidation. The effect of intravenous nitroglycerin on plasma MDA levels was studied in 43 patients who received thrombolytic therapy for acute myocardial infarction. Plasma MDA levels in patients were elevated on admission to the hospital compared with healthy controls, and normalized within 48 hours. A greater increase in plasma MDA concentrations after thrombolysis was found in patients with noninvasive signs of reperfusion than in patients judged to have a persistent occlusion. In the 23 patients receiving immediate intravenous nitroglycerin infusion, plasma MDA levels did not change from baseline to 90 minutes (0.92 ± 0.22 and 0.92 ± 0.23 μmol/L, p = 0.99), whereas a significant increase was found in the 20 control patients who did not receive nitroglycerin (from 0.83 ± 0.22 to 1.01 ± 0.30 μmol/L, p = 0.0004) (p = 0.036 for the difference between groups). Successful reperfusion after thrombolytic therapy entails increased lipid peroxidation. Intravenous nitroglycerin reduces lipid peroxidation during myocardial ischemia and reperfusion.
The triglyceride (TG) concentration in plasma is an independent risk factor for coronary heart disease. There is evidence that TG-rich lipoprotein (TGRLP), ie, chylomicrons (CMs), chylomicron remnants (CMRs), and VLDLs associate with factor VII and prothrombin and that the association enhances a platelet factor Xa-mediated prothrombin activation when the CM-prothrombin complex is exposed to platelets. In this study, we examined the association of the vitamin K-dependent coagulation factors VII, IX, X, and prothrombin, as well as the anticoagulation protein C and its cofactor protein S, in plasma lipoproteins obtained from human fasting and postprandial plasma. We also analyzed some other proteins that are related to the coagulation system but not to vitamin K-dependent proteins, including factor V, serum amyloid P component (SAP), C4b binding protein (C4BP), and thrombomodulin (TM), and as a control, Ig G. Human TGRLP (d < 1.006 kg/L), LDL (d = 1.006 to 1.063 kg/L), and HDL (d = 1.063 to 1.210 kg/L) were separated from normal subjects both in fasting and 2 to 3 hours after the ingestion of a meal containing 100 g fat. The different coagulation proteins, SAP, C4BP, TM, and Ig G were determined by SDS-polyacrylamide gel electrophoresis combined with Western blotting, using specific polyclonal or monoclonal antibodies, and were visualized by peroxidase staining. All the vitamin K-dependent proteins associate with TGRLP in both fasting and postprandial plasma, but not with LDL or HDL. Factor V, SAP, TM, and Ig G were not found in any lipoprotein classes. C4BP, which is a regulatory protein of the classic pathway of the complement system and which binds protein S in vivo to regulate blood coagulation, was present in TGRLP, especially postprandial, but not in LDL or HDL. The amounts of prothrombin, protein S, and C4BP in postprandial TGRLP were larger than those in fasting TGRLP. Vitamin K-dependent procoagulation and anticoagulation proteins, as well as C4BP, could be associated with TGRLP in vivo. If the association enhances prothrombin activation, this effect may thus be counteracted by simultaneous binding of protein S.
Endothelial dysfunction and haemostatic imbalance are believed to be important aetiological factors in the development of acute coronary syndromes. Thrombomodulin (TM) is an integral membrane protein crucial for normal endothelial function and activation of the protein C anticoagulant pathway. We have investigated the importance of a common C/T dimorphism in the TM gene (nucleotide 1418) for development of premature myocardial infarction (MI). The C/T dimorphism predicts an Ala455 to Val replacement in the sixth EGF-like domain of TM. The dimorphism was investigated in 97 MI survivors and 159 healthy controls. The C allele was significantly more frequent among patients than controls (p = 0.035). The allele frequency for the C allele was 0.82 in the patients and 0.72 in the control group. The plasma concentration of TM was investigated among healthy controls but was not related to the C/T dimorphism. In conclusion, the association of the C allele with premature MI, suggests that the TM gene and the C/T dimorphism may be aetiological factors involved in the pathogenesis of MI. Possibly, the Ala455 to Val replacement may affect the function of the TM molecule and the activation of the protein C anticoagulant pathway.
SummaryThrombomodulin is an endothelial cell membrane glycoprotein that promotes protein C activation. It has been clearly demonstrated that the anticoagulant functions of the protein C system are important in the prevention of thromboembolic disease. Patients with protein C or protein S deficiency and/or resistance to activated protein C (APC resistance) are at higher risk for developing thromboembolic disease. The first mutation in the thrombomodulin gene was discovered in an American patient suffering from pulmonary embolism at the age of 45 (Öhlin and Marlar 1995). Here we report a case of sagittal sinus thrombosis in a 42-year-old Swedish woman. She was found to carry a heterozygous point mutation changing G127 to A, predicting an Ala25 to a Thr change in the mature thrombomodulin protein. This mutation was also found in her 16-year-old daughter, who so far has not suffered from any thrombotic events. The patient had no other detectable prothrombotic genetic defects associated with the coagulation system. This case supports the hypothesis of an association between mutations in the thrombomodulin gene and venous thrombosis.
Thrombomodulin (TM) is the endothelial cell cofactor for protein C activation. Since deficiencies of other protein C system proteins are known to cause thrombotic disease, then defects in the gene coding for TM could be responsible for inherited thrombophilia. We have searched for mutations in the TM gene among healthy controls as well as patients with thrombophilia and identified eight patients heterozygous for TM mutations that are distributed throughout the TM gene. We have shown that the respective TM mutation co-segregates with thromboembolic disease (TED) in four families. Moreover, we have demonstrated that the C allele in a common C/T dimorphism in the TM gene is significantly more frequent among survivors of premature myocardial infarction (MI) than in matched controls. We suggest that TM defects should be added to the list of risk factors in TED, and after further evaluation possibly be included in a routine laboratory evaluation of thrombophilia.
Thrombomodulin (TM) is an integral endothelial cell membrane protein that functions as a cofactor for thrombin mediated activation of protein C. The anticoagulant functions of the protein C system are important in contributing to a hemostatic balance and prevention of thromboembolic disease. It has been suggested that impaired TM cofactor function could also constitute a prothrombotic abnormality leading to thromboembolic diseases. TM exists not only on the surface of endothelial cells but also as soluble fragment(s) circulating in plasma. The concept of a thrombotic occlusion as the critical event in acute myocardial infarction (AMI) forms the rationale for thrombolytic therapy. After successful reperfusion, patients remain at substantial risk for recurrent infarctions due to rethrombosis. The balance between procoagulant and anticoagulant mechanisms in the postthrombolytic phase have not been studied in detail. We have studied whether the plasma levels of soluble TM are influenced by thrombolytic therapy with streptokinase in patients suffering from AMI. Soluble TM concentrations increased significantly by 24 to 48 h after thrombolytic treatment, simultaneously with an increase in C-reactive protein (CRP, a marker of the inflammatory component of the cell damage) and in thio-barbituric acid reactive substances (TBARS, an indirect marker of lipid peroxidation).
The metabolism in vivo in the rat of 125I-prothrombin-chylomicron complexes was compared to that of free 125I-prothrombin injected in saline or together with chyle chylomicrons. The group that obtained 125I-prothrombin-chylomicron complexes exhibited a faster initial decrease of plasma 125I-prothrombin, a higher radioactivity in the liver and more trichloroacetic acid soluble 125I in plasma than in the other groups that did not differ. In the group injected with 125I-prothrombin-chylomicron complexes, 4% was in the HDL, 0.7% LDL, and 0.8% in VLDL 2 hours after injection. The data thus indicate that although most of the 125I-prothrombin is released during the metabolism of the prothrombin-chylomicron complexes, some is rapidly degraded and some is transferred to plasma lipoproteins and remains circulating for a considerable time period. The observations demonstrate that binding to chylomicrons influences the catabolism of prothrombin in vivo. Since chylomicrons did not influence the clearance of simultaneously injected free 125I-prothrombin, the prothrombin binding to chylomicrons or chylomicron remnants in vivo may, however, be too slow to influence the prothrombin catabolism under normal conditions.
The effects of chylomicron-prothrombin complexes on platelet activation, including platelet aggregation, serotonin release, arachidonic acid release and increases of platelet cytosolic [Ca2+](i) were examined. Furthermore the role of platelet factor Xa on the conversion of chylomicron bound prothrombin to thrombin was studied by using a synthetic inhibitor of factor Xa, TenStop. The chylomicron-prothrombin complexes could induce platelet aggregation and enhance the platelet serotonin release and arachidonic acid release in contrast to native chyle chylomicrons. An increase of platelet [Ca2+](i) was observed during incubation with chylomicron-prothrombin complexes. TenStop inhibited platelet aggregation and serotonin release that were induced by chylomicron-prothrombin complexes in a dose-dependent manner, whereas the TenStop itself did not inhibit the platelet aggregation induced by thrombin and collagen. It is concluded that platelet activation induced by chylomicron-prothrombin complexes is related to the platelet factor Xa that could be the key factor in the conversion of chylomicron bound prothrombin to thrombin. (C) 1995 Academic Press, Inc.
Thrombomodulin (TM) is the anticoagulant endothelial cell membrane-bound protein cofactor in the thrombin-mediated activation of protein C (PC). It has been clearly demonstrated that the anticoagulant and profibrinolytic functions of the PC system are important for the prevention of a thromboembolic disease. Patients with PC, protein S, or PC "'cofactor"' deficiency and/or dysfunction develop thromboembolic diseases. However, the molecular abnormality in at least 20% to 30% of thrombophilic patients cannot be identified by hitherto recognized defects. A putative pathologic lesion in the TM gene could be one of several candidates for these prothrombotic mutations. A directed search strategy for deletions, insertions, or point mutations in the TM gene has not been performed. Therefore, in the present study, we have analyzed the entire TM gene, including the promoter region, by polymerase chain reaction-single-strand conformation polymorphism (PCR-SSCP) in normal healthy volunteers and in patients presenting with a thromboembolic disease. We have identified a patient with a thromboembolic disease and a TM point mutation. In a 45-year-old Hispanic man with a documented pulmonary embolism, PCR-SSCP showed an aberrant band pattern and subsequent DNA sequence analysis showed a heterozygous substitution for G1456 to T. This substitution predicts an Asp468 to a Tyr change in the amino acid sequence that is located between the transmembrane domain and the sixth epidermal growth factor-like domain. The Asp468 to Tyr change would probably lead to significant structural changes not allowing the expression of the TM protein or to a conformational change that is not functional.