Search PubMed⌕ Search

Biomedical subjects

L Badimon

Publications and source records attributed to L Badimon.

At least 127 records · Page 7Linked to original sources

Role of von Willebrand factor in mediating platelet-vessel wall interaction at low shear rate; the importance of perfusion conditions.

We have previously observed that von Willebrand factor (vWF) plays an important role in platelet deposition on subendothelium at low values of wall shear rate (200 to 400 seconds-1). In the present study, we have investigated the mechanism responsible for such a defect in platelet deposition at low shear rates in the absence of vWF. Blood from both normal and von Willebrand's disease (vWD) animals was exposed to de-endothelialized aorta from normal pigs for a range of shear rates (200 to 3,000 seconds-1) and exposure times (three to 30 minutes) in a tubular perfusion chamber. Variations in the method of inhibiting coagulation (none, heparin, citrate, hirudin, and EDTA) and of perfusing blood (in vitro v ex vivo) were compared by determining the influence of wall shear rate and vWF on the deposition of 111In-labeled platelets on subendothelium. Whereas platelet deposition was reduced in the absence of vWF for all experimental variations at high shear rates (greater than 850 seconds-1), a defect was observed at low shear rates only when heparinized blood was exposed by means of an ex vivo perfusion system. Maximum sensitivity of the measurement occurs under ex vivo perfusion conditions due to the reduced ability of platelets to deposit in normal blood when recirculated in vitro. Our results indicate that vWF mediates platelet-vessel wall interaction even at low shear rates and that such effect can only be observed in systems where platelet function is minimally affected by the experimental conditions.

Animals↗

High density lipoprotein plasma fractions inhibit aortic fatty streaks in cholesterol-fed rabbits.

The effects of in vivo administration of high density lipoprotein-very high density lipoprotein (HDL-VHDL) on the development of aortic fatty streaks were studied in cholesterol-fed rabbits. The rabbits received a 0.5% cholesterol-rich diet for 8 weeks. During this period, the HDL-VHDL group was intravenously administered with 50 mg/week of homologous HDL-VHDL protein; the control group received normal saline (0.9% NaCl). HDL-VHDL fraction was obtained at density range 1.063 to 1.25 gm/ml by ultracentrifugation of normal rabbit plasma. Along the study, plasma lipid levels followed a similar profile in both groups. At the completion of the study, atherosclerotic-like lipid-rich lesions covered 37.9 +/- 6% (X +/- SEM) of the intimal aortic surface in the control group, and 14.9 +/- 2.1% in the treated group (p less than 0.001). The values of total and free cholesterol, esterified cholesterol, and phospholipids deposited within vessel wall were significantly lower in the aortas of the HDL-VHDL treated group than those in the control group. Cholesterol accumulation in the livers was also significantly lower (p less than 0.01) in the treated group than in the control. We concluded that administration of homologous HDL-VHDL lipoprotein fraction to cholesterol-fed rabbits, dramatically inhibited the extent of aortic fatty streaks and lowered lipid deposition in the arterial wall and liver without modification of the plasma lipid levels.

Animals↗

Antithrombotic therapy after myocardial reperfusion in acute myocardial infarction.

The problem of post-thrombolytic reocclusion can be approached in several ways. 1) Better thrombolytic agents with longer duration of effects and more powerful properties aimed at enhanced clot lysis and anticoagulation are under study. 2) The combination of high dose heparin and low dose aspirin is proposed for all patients with an acute myocardial infarction treated with thrombolytic agents. 3) Peptide inhibitors of thrombin and monoclonal antibodies against platelet glycoprotein receptors and adhesive macromolecules are potentially effective inhibitors of platelet aggregation and thrombus formation during or after thrombolytic therapy.

Coronary Disease↗

Importance of adequate heparin dosage in arterial angioplasty in a porcine model.

Acute occlusion after a successful angioplasty is a severe complication that has been reported in 2-12% of patients. Therefore, to determine whether there was a relation between the dosage of heparin and the presence of mural thrombosis, we studied in a pig model the relation between the dosage of heparin and acute platelet-thrombus deposition on the site of arterial injury. We retrospectively analyzed the effect of three heparin regimens on platelet deposition in 32 normal pigs (mean weight, 32.7 kg) that underwent bilateral carotid angioplasty and were sacrificed 90 +/- 26 minutes later. Pigs in protocol 1 (n = 7) received an intravenous bolus injection of 4,000 units heparin 10 minutes before angioplasty. Pigs in protocol 2 (n = 11) received two bolus injections of 4,000 units heparin 40 minutes apart; the angioplasty was performed immediately after the second bolus. Pigs in protocol 3 (n = 14) had an initial 4,000-unit bolus injection of heparin followed immediately by an infusion of 4,000 units/hr; angioplasty was performed 20 minutes after starting the infusion. 111In-labeled platelet deposition on deeply injured (torn into the media) arterial segments were 86.3 +/- 68, 56.2 +/- 56.9, and 37.7 +/- 37.7 X 10(6)/cm2 for protocols 1, 2, and 3, respectively.(ABSTRACT TRUNCATED AT 250 WORDS)

Angioplasty, Balloon↗

Platelet thrombus formation on collagen type I. A model of deep vessel injury. Influence of blood rheology, von Willebrand factor, and blood coagulation.

Collagen type I is a major component of atherosclerotic vessel wall that is exposed on deep vessel injury, such as in balloon angioplasty or plaque rupture. Collagen type I from pig Achilles tendon was mounted in a tubular perfusion chamber placed within an extracorporeal circuit (carotid artery to jugular vein). The material was exposed to blood from normal pigs (n = 13), severe homozygous von Willebrand factor (vWF)-deficient pigs (vWF less than 3%) (n = 6), and heterozygous vWF-deficient pigs (vWF = 24%) (n = 2). Thrombus formation was measured by autologous 111In-platelet labeling and by ultrastructural morphology. Heparinized and native blood from these pigs was perfused over the substrate for 3 and 5 minutes at local shear rates from 212 to 3,380/sec. On collagen type I exposed to nonanticoagulated blood, for all exposure times studied, thrombus formation in the absence of vWF was significantly reduced at high shear rate typical of stenotic areas but not at low shear rate typical of unobstructed medium-size arteries. A similar inhibition in thrombus formation due to vWF deficiency was observed in both heparinized and native blood; however, thrombus formation was significantly more reduced (p less than 0.05) in the presence of heparin, presumably due to the lack of stability of the accumulated platelets in the absence of fibrin formation. Intermediate levels of vWF, as in heterozygous von Willebrand's disease (vWD), support platelet deposition to extents not significantly different from normal conditions. Therefore, on collagen type I, both the activation of blood coagulation proteins and the presence of vWF contribute significantly to the platelet-platelet interactions necessary for thrombus formation. The effect of vWF occurs primarily at high shear conditions typical intravascularly of flow at the apex of advanced stenotic lesions; thus, these findings may suggest that the absence of vWF may be protective against the development of acute thrombosis in these regions.

Animals↗

Platelet/vessel wall interactions, rheologic factors and thrombogenic substrate in acute coronary syndromes: preventive strategies.

Thrombosis is an important pathogenetic factor in acute coronary syndromes, including unstable angina, myocardial infarction and sudden death. In all of these conditions, atherosclerotic plaque fissuring is a key inciting event. Minor injury to the vessel wall brings into play interactions between platelets and the wall. Platelet adhesion and aggregation ensue, modulated by a number of factors and substances. More severe injury to the vessel wall exposes the blood to other thrombogenic substances. Platelet deposition is also affected by rheologic (blood flow) factors at the site of injury, depending on the degree of stenosis and the resulting shear rates. The mechanism of unstable angina appears to be related to these factors in the following sequence: mild stenosis and minor injury with plaque fissuring, platelet responses, labile thrombosis, intermittent ischemia and pain at rest. Vasoconstriction may contribute to the symptoms. Although developing from the same origin, infarction may stem from a greater degree of vessel wall damage resulting in more permanent thrombus. Such considerations provide a focus for preventive strategies, including the optimal use of current inhibitors of platelet adhesion and aggregation and the application of peptide receptor blockers and monoclonal antibodies. Also important is control of rheologic factors by preventing stenosis or correcting it with angioplasty and thrombolytic therapy. Further elucidation of the critical role of thrombosis in coronary syndromes will facilitate progress toward the ultimate goal of primary prevention.

Blood Flow Velocity↗

Restenosis after arterial angioplasty: a hemorrheologic response to injury.

Restenosis after arterial angioplasty appears to be a response to deep arterial injury, which is much more thrombogenic than superficial injury (endothelial denudation). Deep arterial injury exposes collagen, elastin and smooth muscle cells to circulating blood, releases tissue thromboplastin and causes immediate platelet-thrombus deposition as a result of activation of platelets and the clotting system, both of which mutually facilitate activation of the other. Regrowth of endothelium also is protective against platelet deposition. Platelet adherence to collagen, and thus to the arterial wall that is deeply injured, increases with shear rate (related inversely to the fourth power of luminal cross-sectional area and directly to blood flow); thus, the effect of shear rate increases the importance of adequate dilatation at the time of the procedure. Therapy that will reduce acute platelet-thrombus deposition appears to be an important factor for reduction of restenosis. Vasoconstriction occurs experimentally after arterial angioplasty in arterial segments proximal and distal to the dilated segment where there has been no necrosis of smooth muscle cells. The vasoconstriction is directly related to the severity of platelet deposition, can be reduced by reducing platelet deposition with low dose aspirin (1 mg/kg daily) and is probably mediated by vasoconstrictor substances from platelets (thromboxane A2, serotonin and other substances). Platelet-membrane receptor inhibitors to these substances reduce the vasoconstriction but do not reduce platelet deposition. Therapeutic intervention should probably involve both anticoagulation and platelet inhibition. Platelet-membrane receptor inhibition to the fibrinogen receptor, factor VIII-von Willebrand factor or both may be necessary acutely to sufficiently reduce acute platelet-thrombus deposition.

Angioplasty, Balloon↗

Is vasospasm related to platelet deposition? Relationship in a porcine preparation of arterial injury in vivo.

Although aggregating platelets can release potent vasoactive substances in vitro, the importance of platelets in mediating naturally occurring or provoked spasm in vivo is not clear. To investigate the possible role of platelets in arterial spasm following arterial injury induced by angioplasty, quantitative platelet deposition of the dilated arterial segment and the degree of vasoconstriction (average percent diameter narrowing just proximal and distal to the dilated segment) produced during angioplasty of the common carotid arteries were studied in 42 heparinized normal pigs that were killed immediately after the angioplasty procedure. Angiographic films of the carotid arteries were taken before and after the dilatation to assess the vasoconstriction. Vasoconstriction was greater (40% vs 19%, p less than .002) when platelet deposition (X 10(6)/cm2) was in excess of 10, and the severity of vasoconstriction in vivo had a close positive exponential correlation (r = .77, p less than .001) with extent of platelet deposition in 24 untreated pigs. Platelet deposition and vasoconstriction were greater with severe arterial wall injury than with mild injury (58.8 versus 6.9, p less than .0001; 37% vs 21%, p less than .001, respectively). After severe injury in 18 pigs pretreated with 1 mg/kg/day aspirin, platelet deposition decreased (from 58.8 to 19.6, p less than .02) and vasoconstriction decreased (from 37% to 21%, p less than .003) relative to control. After mild injury, platelet deposition and vasoconstriction were mild and unchanged by aspirin. Thus, local vasoconstriction is influenced by the degree of platelet deposition.(ABSTRACT TRUNCATED AT 250 WORDS)

Angioplasty, Balloon↗

Role of platelets in atherogenesis: relevance to coronary arterial restenosis after angioplasty.

There is now considerable evidence to suggest that some aspects of early lesion formation and later lesion growth are a reaction to injury. Hemodynamic factors are important in determining the site of injury and may produce injury directly. Injury can lead to atherogenesis in animal models as well as in humans. Superficial injury exposes the subendothelium, allowing platelet adhesion, which at high shear rates is dependent on vWF. Platelet adhesion and degranulation release PDGF, which stimulates smooth muscle cell proliferation, synthetic functions, and vasoconstriction. LDL stimulates smooth muscle cell growth as well as damages endothelium in some experimental systems. Thus, a link is provided between platelet and lipid involvement in atherosclerosis. Direct evidence for a role of platelets in atherogenesis comes from studies in which animals were treated to reduce platelet number or function or in which platelet function is genetically impaired (pigs with von Willebrand's disease). In these models, reduced platelet function is associated with less atherosclerosis. Deeper injury exposes collagen, with subsequent platelet aggregation, thrombin and fibrin generation. The role of reduced production of PGI2 and fibrinolytic agents following severe damage is unknown. Deep injury to the vessel occurs during plaque fissuring, the pathologic process underlying most cases of myocardial infarction, unstable angina, and some cases of sudden death. Angioplasty produces amelioration of many patients' symptoms and is safe. However, acute occlusion occurs occasionally, and restenosis in the first year occurs in some 30 percent of patients treated. Angioplasty damages the arterial wall, with endothelial denudation and intimal and medial splitting. Why does this, and plaque injury, by stimulating platelet deposition, not produce more restenosis? Changes in arterial anatomy are likely to be important: the increase in vessel diameter and in blood flow produce conditions less favorable for thrombotic or arteriosclerotic restenosis.

Angioplasty, Balloon↗

Platelet-vessel wall interactions in the development of restenosis after coronary angioplasty.

Acute occlusion and restenosis of the dilated coronary segment remain serious unsolved complications that can occur after coronary angioplasty. Acute occlusion is seen in approximately 3-5% of patients and restenosis in 13-47% of patients undergoing this procedure. While the causes of these complications are incompletely understood, platelets and their interactions with the vessel wall appear to be important. The mechanism of stenosis dilatation involves a splitting or tearing of the atherosclerotic plaque as well as desquamation of the endothelial layer of the vessel wall. Therefore, superficial as well as deep arterial injury occurs as a result of angioplasty. Acute occlusion and restenosis appear to be the biological response to this injury. Following even subtle injury to the endothelial layer, platelets adhere to the vessel wall and become activated, releasing substances such as platelet derived growth factor which stimulates intimal hyperplasia and re-growth of the atherosclerotic plaque. Deeper injury results in increased platelet deposition and mural thrombus formation. Rheologic factors including oscillatory shear forces and high local shear rates resulting from residual stenosis and intimal dissection further promote platelet activation and thrombus formation. Both the rheologic factors and the thrombogenic properties of the vessel wall and circulating blood promote restenosis and acute occlusion. Studies using animal models have demonstrated that platelet inhibitor drugs used in addition to heparin can reduce the amount of platelet deposition at the time of angioplasty, and may have a favorable effect on the occurrence of acute occlusion.(ABSTRACT TRUNCATED AT 250 WORDS)

Angioplasty, Balloon↗

Platelet deposition on von Willebrand factor-deficient vessels. Extracorporeal perfusion studies in swine with von Willebrand's disease using native and heparinized blood.

Native (nonanticoagulated) and heparinized blood from both normal swine and swine with von Willebrand's disease was exposed to de-endothelialized thoracic aorta from normal pigs under controlled flow conditions. We have shown that these normal de-endothelialized vessel segments do not contain von Willebrand factor (vWF) in the subendothelial surface; thus, the vascular model that we are using here is representative of the conditions in severe von Willebrand's disease. The blood was recirculated for selected periods of time through an extracorporeal circuit (carotid-jugular shunt), containing a tubular perfusion chamber that held the vessel segment. Flow rates and chamber diameters were selected such that the wall shear rates at the vascular segment were 212 to 3380 sec-1. Platelets were labeled with indium 111 and their total deposition determined by a gamma counter; selected areas were also observed by electron microscopy. When native blood was perfused, the deposition of platelets depended on platelet-plasma vWF only at high wall shear rates (1690 sec-1 or greater) typical of the microcirculation, but not at the lower shear rates (212 and 424 sec-1), more characteristic of the larger arteries and veins. In contrast, when heparinized blood was perfused, platelet deposition on the vascular segments depended on the presence of vWF over the entire range of shear conditions studied. These findings demonstrate in an extracorporeal perfusion system that the defect in platelet-vessel wall interaction in swine with von Willebrand's disease is influenced by both the local flow conditions and the level of activation of the coagulation system. In the presence of an intact coagulation system a synergistic interaction between procoagulant moieties and vWF was observed at high shear rates.

6-Ketoprostaglandin F1 alpha↗

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.

A plastic (Plexiglas) chamber for evaluating platelet deposition under controlled hemodynamic conditions has been developed. The perfusion chamber has been designed to retain the cylindrical shape typical of the vasculature, to be flexible enough to accept a variety of biologic and prosthetic materials, and to simulate a broad range of physiologic flow conditions in either an ex vivo or in vitro perfusion system. Three type of surfaces were exposed to blood flowing directly from the carotid artery of a heparinized pig through the perfusion chamber: de-endothelialized pig aorta, collagen strips from rabbit Achilles tendon, and an expanded polytetrafluoroethylene material (Gore-Tex). Platelets, previously radiolabeled with indium 111 and injected into the animal, were quantified on the material surface, and the total number of deposited platelets determined for a range of blood flow rates (5 to 40 ml/min) and exposure times (0.5 to 20 minutes). The deposition rates were correlated with theory for describing the mass transport of platelets to the test surface. At the wall shear rates investigated (105 to 850 sec-1), the deposition of platelets on subendothelium was strongly dependent on the local flow conditions. Values of deposition on Gore-Tex obtained at similar flow conditions (105 to 425 sec-1) were reduced compared with that observed on subendothelium and showed a markedly weaker dependence on the shear rate. In contrast, deposition of platelets on collagen was more than an order of magnitude greater than on subendothelium and showed a dependence on flow only at the lowest flow rate studied (10 ml/min). The results indicate that collagen is much more reactive than subendothelium and Gore-Tex with respect to the growth and stability of platelet aggregates and moreover suggest that flow mechanisms for depositing platelets on various surface may be substantially different.

Animals↗

Electrical aggregometry in whole blood from human, pig and rabbit.

The objective of this study was to characterize and standardize whole blood electrical aggregometry (WBEA) in the pig and rabbit, animal models extensively used in atherosclerosis research, and to compare their platelet response with that of man. Platelet aggregation was studied in blood (WBEA) and platelet rich plasma (optical aggregometry, OA). Dose response curves were obtained for ADP and collagen. The effect of hematocrit on WBEA was also evaluated. Aggregation with ADP and collagen using WBEA was more extensive with human than with pig or rabbit platelets. OA revealed similar differences among species but the time to reach maximal aggregation was markedly shorter. Using WBEA, the extent of aggregation was inversely related to the hematocrit. We conclude that WBEA is a useful technique that may be of particular importance in situations where hyperlipidemic plasma prevents the use of OA, as occurs in some atherosclerosis research animal models.

Adenosine Diphosphate↗