[Anticoagulant treatment of patient with the substitute heart valve].
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Biomedical subjects
Publications and source records attributed to R Lassila.
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The molecular differences between native-type collagen type I fibrils (NC) and their pepsinated monomers (PC) were used to uncover receptors involved in platelet-collagen interaction along the adhesion-activation axis. The platelet-depositing capacity of NC and PC under blood flow and their adhesive properties and respective morphologies, aggregation, procoagulant capacity, and tyrosine phosphorylation were compared under different cationic milieus, including or excluding the glycoprotein (GP) Ia/IIa. NC was consistently a more preferable and activating substrate than PC during flow (5 minutes) and in platelet aggregation. In PPACK-treated blood, both NC (3.3-fold) and PC (2.7-fold) increased platelet attachment on elevation of the shear rate from 500 to 1640 s(-1), whereas in citrated blood, adhesion and thrombus growth on PC were negligible under the high shear rate, unlike on NC (1.9-fold increase). The complete lack of platelet deposition on PC in citrated blood could be overcome by restoring physiological Mg(2+) concentration, and in contrast to NC, platelets interacting with PC were highly dependent on Mg(2+) during adhesion, aggregation, and procoagulant response. Monoclonal antibody (mAb 131.7) against GP IV inhibited platelet deposition to NC in citrated blood (2 minutes) by 49%, which was not further increased by coincubation with mAb against GP Ia (6F1). These results stress the importance of GP Ia/IIa in shear-resistant platelet deposition on collagen monomers. In native fibers, however, the preserved quaternary structure with telopeptides activates additional platelet receptors capable of substituting GP Ia/IIa and GP IV.
Various collagen-based materials were used to assess the structural requirements of collagen for inducing the procoagulant response of adhering platelets, as well as the collagen receptors involved. Cross-linked or monomeric collagen-related peptide (CRP), Gly-Cys-Hyp-(Gly-Pro-Hyp)10-Gly-Cys-Hyp-Gly was highly adhesive for platelets in a glycoprotein VI-(GpVI-)dependent manner. Adhesion was followed by a prolonged increase in cytosolic [Ca2+]i, formation of membrane blebs, exposure of phosphatidylserine (PS) and generation of prothrombinase-stimulating activity. Fibrils of type-I collagen were less adhesive but, once adhered, many of the platelets presented a full procoagulant response. Monomeric type-I collagen was unable to support adhesion, unless Mg(2+)-dependent integrin alpha2beta1 interactions were facilitated by omission of Ca2+ ions. With all surfaces, however, post-addition of CaCl2 to adhering platelets resulted in a potent Ca(2+)-influx signal, followed by PS exposure and bleb formation. The procoagulant response elicited by binding to CRP was inhibited by anti-GpVI Fab fragments, but not by impeding integrin alpha2beta1-mediated events. With fibrillar collagen, it was inhibited by blocking either the GpVI- or integrin alpha2beta1-mediated interactions. This suggests that the triple-helical Gly-Pro-Hyp repeat in CRP and analogous sequences in fibrillar collagen stimulate the procoagulant response of adherent platelets by acting as ligands for GpVI. Influx of Ca2+ is required for this response, and adhesion via integrin alpha2beta1 serves to potentiate the signaling effects of GpVI.
Epidemiologic evidence has shown that sympathoadrenal activation plays a triggering role in the onset of acute coronary syndromes. However, its mechanism is not yet clearly understood. The aim of this study was to assess the effect of a sudden increase in epinephrine on platelet deposition on severely damaged vessel wall at shear rate conditions modelling stenotic vessels in the porcine model. The selected epinephrine concentrations (0.5 micromol/l-1 mmol/l) alone or in combination with collagen or ADP did not affect platelet aggregation in vitro either in whole blood or in PRP, although porcine platelets express alpha2-adrenergic receptors as assessed by PCR. In vitro and ex vivo perfusion experiments were performed using the Badimon chamber at high shear rate conditions (1690 s(-1)). In vitro, epinephrine (130 nmol/l) increased platelet deposition on severely damaged vessel wall (exposing tunica media; approximately 1.6-fold, p <0.05) or immobilized collagen (2.2-fold, p <0.01). Ex vivo perfusion experiments were performed from animals that received intravenous epinephrine infusion for one hour at a low (0.3 microg/kg/min; approximately 17 nmol/l in plasma, at 20 min of the infusion) and a high dose (1.0 microg/kg/min; approximately 106 nmol/l in plasma, at 20 min of the infusion). Only the low dose temporarily increased platelet deposition on severely damaged vessel wall during the first 30 min of infusion [2.4-fold (p <0.05) and 4.2-fold (p <0.01) at 10 and 30 min of the infusion respectively] declining afterwards. Thus, in flow conditions typical of atherosclerotic arteries, a sudden physiological release of epinephrine can temporarily enhance platelet deposition on severely damaged vessel wall while an extensive exposure leads to refractoriness.
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Sudden extreme physical stress is associated with an increased risk of myocardial infarction mainly in people with preexisting atherosclerosis. In this study we compared the effect of submaximal exercise on coagulation and fibrinolysis in patients with peripheral arterial occlusive disease (PAOD) with that in healthy control subjects. Fifteen PAOD) patients with intermittent claudication and 15 healthy control subjects, matched for age, sex, medication use, smoking habit, and conditioning, were studied. Thrombin-antithrombin III complex (TAT), D-dimer, tissue plasminogen activator (t-PA) and plasminogen activator inhibitor (PAI)-1 antigens (Ag), t-PA activity, and plasmin-alpha2-antiplasmin complex (PAP), as well as plasma catecholamines, were measured before and after a treadmill exercise test. At rest, fibrinogen (3.3+/-0.5 versus 2.9+/-0.5 g/L [mean+/-SD]; P<.05), D-dimer (392+/-128 versus 271+/-113 ng/mL; P<.05), t-PA Ag (9.1+/-5.1 versus 5.5+/-1.2 ng/mL; P<.02), and PAI-1 Ag (14.9+/-7.1 versus 7.6+/-3.8 ng/mL; P<.002) levels in plasma were markedly higher in the patient group than in the control group. In patients but not in control subjects, exercise of similar intensity elevated circulating concentrations of TAT (from 3.43+/-1.45 to 4.83+/-2.27 ng/mL; P<.05). Exercise caused a parallel increase in D-dimer, t-PA Ag, t-PA activity, PAP, and catecholamines in both groups, whereas PAI-1 Ag remained stable. Plasma lactic acid was significantly higher in patients after exercise and was associated with lower-limb ischemia. Compared with healthy control subjects, patients with PAOD showed higher t-PA Ag, PAI-1 Ag, and D-dimer levels both at rest and after exercise. Notably, submaximal exercise on a treadmill enhanced thrombin formation in patients with PAOD but not in the control subjects. Sudden catecholamine release and local ischemia during exercise may accelerate the preexisting prothrombotic potential of the atherosclerotic vessel wall.
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We studied the effects of stimulated skin mast cells on bleeding time and thrombin generation which was measured using prothrombin fragment F 1+2 (F 1+2) and thrombin-antithrombin-III-complex (TAT). In 10 patients with urticaria pigmentosa (chronic cutaneous mast cell accumulation) the mean bleeding time was significantly prolonged in wounds made on urticaria pigmentosa lesions vs. normal skin (460 +/- 34 vs. 342 +/- 27 s, p = 0.005). In 10 atopic subjects skin incisions were made on prick-tested sites 30, 60, 120 and 240 min after administration of an allergen (acute mast cell stimulation), histamine or vehicle. The mean bleeding time was significantly prolonged at all time points, being maximal at 120 min (60% prolonged) in wounds made on allergen-stimulated skin areas (p < 0.01) compared with histamine or vehicle sites. Administration of allergen or histamine lowered the TAT concentration in the bleeding-time blood. Furthermore, TAT and F 1+2 levels in the bleeding-time blood were lower at 60, 120 and 240 min after allergen or histamine application in comparison with samples collected at 30 min. We conclude that skin mast cells can regulate primary hemostasis by prolonging bleeding time and by inhibiting thrombin generation.
VEGF-C is a recently characterised endothelial growth factor structurally related to vascular endothelial growth factor (VEGF). We studied the expression of VEGF-C and VEGF in the cells of peripheral blood and in the umbilical cord blood CD 34+ cells, representing haematopoietic progenitor cells. Expression of VEGF-C was detected in the CD34+ cells. In peripheral blood VEGF-C mRNA was restricted to platelets and T-cells. In contrast to the expression pattern of VEGF-C, VEGF mRNA was detected in all peripheral blood cell fractions studied, and also in CD34+ cells. VEGF-C mRNA was also detected in fresh bone marrow samples of acute leukaemia patients, but the expression did not show lineage specificity. VEGF-C and VEGF polypeptides were present in platelets and they were released from activated platelets together with the release of beta-thromboglobulin, suggesting that VEGF-C and VEGF reside in the alpha-granules of platelets. VEGF-C and VEGF, released from activated platelets, may have a role in angiogenesis during wound healing, and possibly also in other pathological conditions, such as atherosclerosis, tumour growth, and metastasis formation.
BACKGROUND: Intimal smooth muscle cell proliferation is an underlying pathogenetic mechanism for neointimal hyperplasia and consequent vein graft failure. This study characterizes the expression of tissue-type plasminogen activator (TPA), urokinase-type plasminogen activator (UPA), and plasminogen activator inhibitor-1 (PAI-1) in hyperplastic vein grafts and normal venous tissue. METHODS AND RESULTS: Failing graft and control vein specimens from 14 donors were homogenized, and TPA and PAI-1 were quantified with ELISA. The amount of PAI-1 was seven times higher (4.2+/-2.1 versus 0.6+/-0.6 ng/mg protein, P<.005), but the TPA antigen content was markedly lower (3.1+/-2.1 versus 8.1+/-3.7 ng/mg protein, P<.005) in the stenosed grafts compared with the control veins. Strong immunohistochemical PAI-1 reactivity and in situ hybridization signals for PAI-1 and UPA mRNA were associated with the smooth muscle cells of the thickened intima of the grafts. Functional assays of the graft specimens showed an increased UPA/TPA ratio and a decreased total fibrinolytic activity in comparison with normal veins. CONCLUSIONS: Upregulation of PAI-1 mRNA expression and markedly increased amounts of PAI-1 antigen were detected in the vein grafts after the development of neointima. Furthermore, augmented UPA activity was found in the graft wall, but TPA was clearly depleted. Altogether, our findings imply decreased fibrinolytic potential in the stenosed graft, which may contribute to the graft occlusion.
Decorin is a small dermatan sulfate-rich proteoglycan which binds to collagen type I in vitro and in vivo. In atherosclerotic lesions the contents of low density lipoprotein (LDL), decorin, and collagen type I are increased, and ultrastructural studies have suggested an association between LDL and collagen in the lesions. To study interactions between LDL, decorin, and collagen type I, we used solid phase systems in which LDL was coupled to a Sepharose column, or in which LDL, decorin, or collagen type I was attached to microtiter wells. The interaction between LDL and decorin in the fluid phase was evaluated using a gel mobility shift assay. We found that LDL binds to decorin by ionic interactions. After treatment with chondroitinase ABC, decorin did not bind to LDL, showing that the glycosaminoglycan side chain of decorin is essential for LDL binding. Acetylated and cyclohexanedione-treated LDL did not bind to decorin, demonstrating that both lysine and arginine residues of apoB-100 are necessary for the interaction. When collagen type I was attached to the microtiter plates, only insignificant amounts of LDL bound to the collagen. However, if decorin was first allowed to bind to the collagen, binding of LDL to the decorin-collagen complexes was over 10-fold higher than to collagen alone. Thus, decorin can link LDL with collagen type I in vitro, which suggests a novel mechanism for retention of LDL in collagen-rich areas of atherosclerotic lesions.
Mast cells, the major source of tissue heparin, line the vascular system. On stimulation, rat serosal mast cells release soluble heparin proteoglycans (HEP-PGs) of very high molecular weight (7500(K)). We compared the effects of HEP-PGs and standard heparins (average molecular weights, 15,000 and 5,000) on platelet-collagen interactions in vitro. In contrast with the standard heparins, HEP-PGs completely inhibited collagen-induced platelet aggregation and serotonin release in platelet-rich plasma. The inhibition caused by HEP-PGs depended on its macromolecular structure. In flowing blood, HEP-PGs also inhibited platelet deposition on a collagen-coated surface both at low and high shear rates. Although HEP-PGs did not block glycoprotein (GP) Ia/IIa-mediated platelet adhesion, they attenuated subsequent platelet activation and aggregation, as well as fibrinogen binding to platelets after collagen stimulation. HEP-PGs did not bind to platelets but bound tightly to von Willebrand factor (vWf) and enhanced its binding to collagen. Although platelet adhesion at high shear rate and vWf binding to GP Ib after ristocetin stimulation were not markedly affected, HEP-PGs reduced thrombin-induced aggregation and vWf binding to GP IIb/IIIa. These findings imply that activation of vascular mast cells with ensuing secretion of HEP-PGs may locally attenuate the thrombogenicity of matrix collagen by inhibiting its platelet-activating capacity.
The authors assessed hemostasis and fibrinolysis serially: on admission and on the 1st and 7th days after surgery for subarachnoid hemorrhage (SAH), examining the complications of aneurysm rupture and its surgical repair. Of 32 patients, 25 with SAH were compared with seven control patients who underwent surgery for an unruptured intracranial aneurysm. On admission, patients with SAH had higher thrombin-antithrombin III complex (TAT) levels (13.3 +/- 3.8 vs. 3.8 +/- 0.6 ng/ml, p = 0.01), fibrin degradation product, D-dimer levels (1310 +/- 220 vs. 556 +/- 89 ng/ml, p = 0.0001), and leukocyte counts (14.6 +/- 0.7 vs. 10.6 +/- 1.8 x 10(9) cells/L, p < 0.05) than did control patients. Postoperative D-dimer values (p = 0.007) remained higher in the SAH group. Furthermore, admission D-dimer levels were higher in the patients in poor clinical condition than in those in good condition (2017 +/- 377 vs. 934 +/- 208 ng/ml, p = 0.007), and D-dimer levels were associated with the outcome at 3 months after admission. Additionally, thrombin generation and fibrinolytic markers measured on admission were related to clinical grade, amount of subarachnoid blood seen on computerized tomography (CT) scanning, and patient fatality. Patients with hypodense lesions verified on follow-up CT scanning or with persistent neurological deficits at 3 months had higher prothrombin fragments 1 and 2, TAT, D-dimer, and plasminogen activator inhibitor-1 values on the 1st day postoperatively than did patients without such lesions. In short, in patients with SAH, activation of coagulation and fibrinolysis was strongly associated with clinical state, patient fatality, and outcome at 3 months, and postoperatively this activation correlated with the development of brain infarction.
Hemostatic variables and platelet function were assessed as a part of a genetic study in 15 patients with symptomatic peripheral arterial occlusive disease (PAOD) and 15 healthy siblings from ten families. D-dimer, a degradation product of cross-linked fibrin, was increased in the PAOD group (mean +/- SD) (448 +/- 177 vs. 333 +/- 121 ng/ml, p < 0.05). Ristocetin-induced maximal platelet aggregation (RIPA) was reduced in the PAOD group in response to both a higher (0.75 mg/ml) (67 +/- 28 vs. 87 +/- 14%, p = 0.02) and a lower (0.55 or 0.60 mg/ml) (33 +/- 21 vs. 59 +/- 32%, p = 0.02) concentration of ristocetin. Accordingly, the rate of primary aggregation was smaller, and a larger threshold concentration of ristocetin was needed to cause aggregation. However, ristocetin cofactor activity, von Willebrand factor (vWF) antigen and its multimer distribution, plasma glycocalicin, platelet glycoprotein Ib content and the binding of vWF to frozen and thawed washed platelets were equal in both groups. Thus, the observed reduced RIPA in patients with PAOD is less likely to reflect a down-regulation or blunted binding affinity in the platelet surface glycoprotein Ib.
Our aim was to assess whether the vessel wall trauma induced by balloon inflation during successful elective PTCA results in activation of coagulation and fibrinolysis detectable in circulating blood. In the pilot group (10 patients), when blood was collected under heparinization with adequate anti-Factor Xa activity, catheter-induced thrombin generation was not detected and results obtained from local coronary arterial versus systemic samples did not differ. Locally, von Willebrand factor antigen increased from 73.5 +/- 8.8% to 77.8 +/- 13.1% (p < 0.05) at 5 min after PTCA. In the study group with its 21 patients having adequate heparinization fibrinogen decreased when blood was collected from aorta 15 min after PTCA. In 30% of the patients having the largest calculated area of vessel damage, thrombin-antithrombin III (TAT) complex and prothrombin fragments (F1+2) spiked by at least 25% during PTCA. In all patients the mean TAT values did not increase, but F1+2 (from 0.56 +/- 0.36 to 0.63 +/- 0.39 nmol/l, mean +/- SD, p < 0.05) and D-dimer (from 268 +/- 37 to 325 +/- 45 ng/ml, p < 0.05) rose between 15 to 30 min after PTCA. In conclusion, in every third patient thrombin generation occurs after successful elective PTCA, implying a need for a tighter control than heparin provides.
Platelet-derived microparticles (MP) are reported to express both pro- and anticoagulant activities. Nevertheless, their functional significance has remained unresolved. The present study monitored the generation and fate of MP in an experimental model of thrombosis with costimulation of platelets by collagen and thrombin. When minimally anticoagulated (0.5 micromol/L PPACK) blood was perfused over immobilized fibrillar type I collagen in a flow chamber at a low shear rate (300 s(-1)), endogenous thrombin was generated, as evidenced by thrombin-antithrombin III complex. In contrast to full anticoagulation 150 micromol/L PPACK) and the absence of collagen, large platelet aggregates and fibrin ensued during perfusions over collagen in the presence of thrombin. In these thrombi, MP, defined as GPIIbIIIa- and P-selectin-positive vesicles (<1 micron), were found to align fibrin in immunofluorescence and scanning immunoelectron microscopy. Moreover, in sections of embolectomized thromboemboli from patients GPIIbIIIa- and P-selectin-positive material compatible with MP was detected in a fibrin strand-like pattern. In vitro binding studies showed that MP bound to fibrin and acted there as procoagulants. In summary, we show that MP generated during thrombus formation associate with local fibrin. This adhesive function fibrin could imply a sustained modulatory role for MP in evolving thrombi.
Veins used for arterial bypass grafting undergo wall remodeling when exposed to altered flow, which may affect fibrinolytic mechanisms and subsequently the fate of the graft. Our aim was to study the extent of blood coagulation and fibrinolysis activation in 27 patients with patent grafts two years after femoro-distal bypass surgery. The two matched control groups included 10 and 19 conservatively treated patients having similar degree of arterial insufficiency (mean ankle/brachial blood pressure index) as the bypass group pre- and post-operatively, respectively. Plasma samples for coagulation and fibrinolysis activation were determined using ELISA and chromogenic assays. When compared with the control groups circulating tissue-type plasminogen activator antigen, and especially plasminogen activator inhibitor type-1, PAI-1 antigen and activity were significantly increased, the mean increase ranging between 54% and 140% in the bypass group. Thrombin-antithrombin III complex, fibrinogen, and C-reactive protein, did not differ, while triglycerides were elevated in the bypass group. Ten patients in the bypass group were insulin resistant, but this did not explain the differences in the fibrinolytic parameters between the bypassed and control patients. Patients with peripheral vein grafts had upregulation of PAI-1 in their circulation implying reduced fibrinolytic capacity. Increased PAI-1, a risk factor for venous thrombosis, might reflect developing intimal hyperplasia, and it remains to be studied whether upregulation of PAI-1 in venous grafts associates with graft failure.