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Biomedical subjects

L Badimon

Publications and source records attributed to L Badimon.

At least 91 records · Page 5Linked to original sources

Exogenous prostacyclin decreases vasoconstriction but not platelet thrombus deposition after arterial injury.

OBJECTIVES: The aim of this study was to examine the in vivo effects of increasing doses of prostacyclin (PGI2) on arterial vasoconstriction, platelet deposition and their interrelation after balloon injury of porcine carotid arteries. BACKGROUND: Extensive platelet deposition and localized vasoconstriction occur acutely after arterial injury in vivo. The platelet deposition and vasoconstriction are directly correlated, and previous studies suggest that platelets may mediate the vasoconstrictive response. However, it is unclear whether vasoconstriction contributes to platelet deposition. METHODS: Seven pigs received an intravenous infusion of PGI2 at 10 ng/kg per min (PGI2 10), 8 pigs at 50 ng/kg per min (PGI2 50) and 4 pigs at 500 ng/kg per min (PGI2 500); 24 pigs with saline infusion served as a control group. RESULTS: Vasoconstriction immediately proximal and distal to the balloon-dilated carotid arterial segment where selective endothelial injury occurred was directly related to indium-111-labeled platelet deposition within the dilated segment in both control pigs and PGI2-treated pigs. However, this relation was such that for any given level of platelet deposition relative to control, PGI2 decreased vasoconstriction in a dose-related manner. None of the treatments (PGI2 10, 50 or 500) decreased quantitative 111In-labeled platelet deposition or the proportion of deeply injured arteries with mural thrombus (91%, 70% or 75%, respectively, p = NS) compared with values in control pigs (81%). Thus, vasoconstriction was directly related to platelet deposition in control and PGI2-treated animals, but vasodilation alone did not decrease platelet deposition. CONCLUSIONS: Intravenous infusion of PGI2 significantly decreases vasoconstriction but not platelet deposition or mural thrombosis after arterial injury by balloon dilation. It is therefore unlikely that vasoconstriction mediates platelet deposition in this model. At hemodynamically tolerated doses, PGI2 infusion probably will not prevent the thrombotic complications associated with angioplasty.

Animals↗

Coronary atherosclerosis. A multifactorial disease.

BACKGROUND: Several of the theories on the pathogenesis of atherosclerosis may be integrated into a single multifactorial one. According to this theory, the most likely sequence of events involved in early atherosclerosis is vascular dysfunction and/or injury, monocyte recruitment and macrophage formation, lipid deposition, vascular smooth muscle cell proliferation (mitogenic factor mediated), and synthesis of extracellular matrix. The interaction of all these factors will configurate the typical characteristic of the atherosclerotic plaque. METHODS AND RESULTS: Accumulating experimental and clinical data suggest two pathways in atherosclerotic progression. In some cases, the very slow process of the pathogenesis of early lesions may be significantly accelerated by means of thrombus formation and organization. Thrombosis is a key process in the pathogenesis of late atherogenesis and in the development of acute ischemic syndromes. CONCLUSIONS: The possibility of retarding human atherosclerosis or even inducing its regression is one of the present therapeutic challenges. Of the different approaches to this question, one approach aims at better control of risk factors, especially plasma lipid levels. Another approach attempts to enhance the removal of lipids from the arterial wall by increasing plasma high density lipoprotein levels. Each of these approaches, by acting on the lipid-rich plaques more prone to rupture, might prevent plaque progression and induce regression to prevent acute coronary events. A third approach, based on the key role of platelet thrombus formation in the conversion of chronic to acute events, would be the use of antithrombotic therapy. This last approach may partially prevent progression of the disease.

Animals↗

Effect of ajoene, the major antiplatelet compound from garlic, on platelet thrombus formation.

Ajoene, (E,Z)-4,5,9-trithiadodeca-1,6,11-triene 9-oxide, is a potent antiplatelet compound isolated from alcoholic extracts of garlic (Allium sativum). Ajoene reversibly inhibits in vitro platelet aggregation as well as release reaction induced by all known agonists. We used a well characterized cylindrical perfusion chamber to study the effect of ajoene on platelet deposition onto physiological substrates such as pig aortic subendothelium and tunica media as a model of mildly and severely damaged vessel wall respectively. Experiments were performed under flow conditions of high and low shear rate that mimic laminar blood flow in small and medium size arteries (1690 sec-1 and 212 sec-1). Our results indicate that ajoene prevents thrombus formation both at low and high shear rate in citrated whole blood. The inhibitory effect of ajoene on platelet-thrombus formation seems to be dependent on its inhibition of fibrinogen binding, since significantly higher concentrations of ajoene are needed to affect von Willebrand factor binding to GPIIb/IIIa receptors. Further, ajoene does not impair Ristocetin-induced platelet agglutination, mediated by GPIb. Our results suggest that ajoene may be useful for the acute prevention of thrombus formation induced by vascular damage.

Adenosine Diphosphate↗

Echocardiographic "smoke" is produced by an interaction of erythrocytes and plasma proteins modulated by shear forces.

OBJECTIVES: This study was designed to determine the blood elements responsible for spontaneous echocardiographic contrast. BACKGROUND: Spontaneous contrast or "smoke" is an echocardiographic image usually found in low flow conditions. Two blood elements, erythrocytes and platelets, have been related to the generation of smoke. METHODS: The echogenicity of porcine blood products was assessed in static and flow conditions and was graded on a digitized videodensity computer program that assigned a score of 0 for black and 100 for white images. Blood elements were circulated from a small tube (4-mm diameter) into a larger cylindric chamber (30-mm diameter) under controlled flow rate conditions. The following blood products were studied: whole blood, platelet-depleted blood, platelet-rich plasma, platelet-poor plasma, erythrocytes suspended in saline solution, adenosine diphosphate (ADP) added to platelet-rich plasma, and saline solution as a control medium. RESULTS: As blood flow was increased in 30 ml/min increments from 0 to 180 ml/min, whole blood echo videodensity (scale 0 to 100) progressively decreased in the larger tube from 38 and 42 to 20, 12, 14, 16 and 14, respectively. When flow increased from 0 to 30 ml/min in the smaller tube, corresponding to a wall shear rate of 0 to 80 s-1, the blood entering the chamber was completely echolucent. The echogenicity of blood products in the larger tube was for static flow (0 ml/min) and high flow (180 ml/min), respectively: platelet-depleted blood = 36 and 14; platelet-rich plasma = 2 and 2; platelet-poor plasma = 0 and 0; erythrocytes in saline solution = 8 and 12; ADP added to platelet-rich plasma = 0 and 15; saline solution = 0 and 0. Because platelets alone were nonechogenic but platelet-depleted blood produced a flow-dependent echogenicity similar to that produced by whole blood, platelets may not be involved in the production of smoke. However, when platelets were aggregated by ADP, they were echogenic but in dense clumps and in a flow-independent pattern not typical of the smokelike images. Erythrocytes suspended in saline solution had an intermediate density image. CONCLUSIONS: Echogenic smoke appears to be due primarily to the interaction of red blood cells and plasma proteins at low flow and low shear rate conditions.

Animals↗

Clinical-pathological correlations of coronary disease progression and regression.

The initiation of atherosclerosis may result from blood flow oscillatory shear stress in certain vascular sites (bending points, bifurcations, etc.) producing chronic minimal injury resulting in functional alteration of the arterial endothelium type I injury; experimentally, this is potentiated by atherogenic risk factors such as hypercholesterolemia, hypertension, immunocomplexes, viral infections, and tobacco smoke. Such minimal injury leads to accumulation of lipid and monocytes (macrophages), and subsequently, toxic products released by the macrophages produce damage of the intimal surface with denuding endothelium type II injury or damage, which attracts platelets; all of these cells release growth factors, prompting migration and proliferation of smooth muscle cells and producing a "fibro-intimal lesion" or the outside of the capsule of a predominant "lipid lesion." The lipid lesions surrounded by a thin capsule tend to be small and rupture easily, causing type III injury or damage; that is, they are soft and weak, contain large numbers of macrophages, which may release collagenase and elastase to form abscesses, and by their location, are under the effect of flow shear forces. After plaque disruption there is thrombus formation; when thrombi are small, they can become organized and contribute to the growth of the atherosclerotic plaque; when thrombi are large and occlusive, they lead to the acute coronary syndromes. New data suggest that, at the time of plaque disruption, certain "thrombogenic" risk factors modulate the degree of thrombogenicity and, thereby, the growth of the plaque versus the various acute coronary syndromes. Aside from the need for better understanding of the basic biology of atherogenesis, emphasis on identifying and modifying the primary atherogenic and thrombogenic risk factors should continue for primary prevention. Also, new approaches should focus on the identification, stabilization, and regression of the small "lipid plaques" prone to rupture (these are not necessarily angiographically apparent), as well as on the use of better and safer antithrombotic agents for prevention of progression.

Cardiovascular Diseases↗

Antithrombotic therapy and progression of coronary artery disease. Antiplatelet versus antithrombins.

Coronary artery disease develops and progresses over decades with lipid incorporation and coalescence into the arterial wall, leading to recurrent plaque disruption, thrombosis, and organization into fibromuscular lesions. The role of thrombin in arterial thrombosis is documented by observations that specific thrombin inhibition can completely prevent intraluminal mural thrombus in vivo, even though other factors that activate platelets are not inhibited. Platelet-rich thrombi associated with deep injury have a high thrombin content and require blood levels of specific thrombin inhibition with hirudin that are eight to 10 times those required to prevent thrombi associated with lesser injury or stasis. Total prevention of mural thrombus in deeply injured arteries is impossible with aspirin or conventional antithrombotic therapy, which can reduce occlusive thrombus. Thus, conventional antithrombotic therapies can reduce clinical events but are not effective in reducing progression of coronary artery disease. Whether newer antithrombins that can totally prevent mural thrombus after deep injury can be developed and administered orally and chronically without high risk of bleeding and will be able to reduce progression of coronary artery disease is unknown. Lesion growth, vascular injury, acute coronary syndromes, and principles of thrombus formation on ruptured plaque are discussed elsewhere in this issue. This article extends these findings and discusses the prevention and treatment of mural thrombosis, the pivotal role of thrombin in arterial thrombosis, and antithrombotic therapy for the prevention and the progression of coronary artery disease.

Aspirin↗

Thrombus formation on ruptured atherosclerotic plaques and rethrombosis on evolving thrombi.

Angiography in patients with unstable angina or myocardial infarction with subtotal coronary occlusion often reveals eccentric stenoses with irregular borders, suggesting ruptured atherosclerotic plaques and thrombosis, as documented by angioscopy and at autopsy. We have simulated and studied these processes in an ex vivo perfusion chamber and in an in vivo swine model. Our results suggest that specific local factors at the time of plaque disruption influence the degree of thrombogenicity, the stability of the growing thrombus, and, therefore, possibly also the various clinical syndromes. These factors can be divided into two groups: local vessel wall-related factors and systemic factors with local action at the area of risk. These factors include the following. 1) Exposed substrate-related effects: Plaque rupture produces a rough surface and stimulates the development of occlusive thrombus in proportion to the degree of damage. 2) Fluid dynamics-related factors: The more severe the stenotic lesion after plaque rupture, the higher the local shear rate, resulting in enhanced platelet deposition and thrombus formation. 3) Vasoconstrictive effects: Vasospasm is an important contributor to the pathogenesis of ischemic heart disease. 4) Systemic factors: There is clinical and experimental evidence to suggest that various systemic factors at the time of plaque rupture may enhance thrombogenicity (i.e., levels of epinephrine, levels of serum cholesterol, impaired fibrinolysis). We have investigated the role of residual thrombus on the process of rethrombosis and found that a residual thrombus is a very thrombogenic surface that may significantly contribute to reocclusion even in heparinized blood. Using recombinant hirudin as a pharmacological tool in our flow studies, we observed that rethrombosis is partially caused by thrombin bound to fibrin in the original thrombus, because the effect is abolished by the specific thrombin inhibitor.

Angina, Unstable↗

Role of high density lipoproteins in the regression of atherosclerosis.

Atherosclerosis is a slowly progressive disease characterized by the accumulation of cholesterol within the vessel wall. Plasma lipoproteins are particles of complex lipid and protein composition that transport lipids in blood. Low density lipoproteins (LDL) and high density lipoproteins (HDL) are the major cholesterol-carrier lipoproteins. LDL seem to be responsible for the delivery of lipids (cholesterol) from the liver to the tissues. Compelling evidence supports the concept that the lipids deposited in the arteriosclerotic lesions are derived primarily from plasma LDL. The term "reverse cholesterol transport" describes the transport of cholesterol from extrahepatic tissues to the liver, where it may be metabolized. Reverse cholesterol transport seems to be the major route for removal of the exchangeable cholesterol deposited in the extrahepatic tissue. It has been postulated that a major role of the plasma HDL particle is to act as a scavenger of tissue cholesterol. The hypothesis that high levels of plasma HDL are protective against coronary artery disease (CAD) was initially proposed by Barr et al in the early 1950s, but it was overlooked until confirmed by the Tromso and Framingham studies in 1977, which showed an inverse relation between HDL plasma levels and incidence of CAD. Similar observations have been made in 15 major experimental studies including eight countries.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Endothelium and atherosclerosis.

PURPOSE: To review the effect of damaged endothelium on the development of atherosclerotic disease. BACKGROUND: Atherosclerotic cardiovascular disease is a complex problem involving lipid deposition, blood pressure, rheologic forces, carbohydrate tolerance and thrombogenic factors. The loss of functional, if not structural, integrity of the vascular endothelium is closely related to the initiation of atherosclerosis. The endothelium contributes to local vascular regulation. Normal endothelial cells are thrombo-resistant; they prevent leukocyte adhesion and control vascular tone by converting angiotensin I into angiotensin II, inactivating bradykinin, norepinephrine, serotonin and ADP, and by secreting vasodilator substances, such as prostacyclin and endothelium-derived relaxing factor (EDRF), and contracting factors such as endothelin. Endothelin is a potent vasoconstrictor peptide that increases intracellular calcium, causing a rapid and transient increase in c-fos and c-myc messenger (m)RNA levels and DNA synthesis in rat vascular smooth muscle cells. In isolated vessel segments, altered endothelial vasoreactivity is usually demonstrated following mechanical trauma to the endothelium. METHODS AND RESULTS: We investigated the function of normal and damaged endothelium in pigs, following superficial balloon injury, which produces a significant alteration in endothelium-dependent coronary vasoreactivity. The anesthetized pigs were given an intracoronary (left anterior descending artery) infusion of acetylcholine. The balloon injury caused a local transient spasm while the distal uninjured vessel did not change. When acetylcholine was given before the balloon injury, the diameter of the left anterior descending artery did not change, even after preconstriction in vivo with prostaglandin (PG) F2 alpha, but acetylcholine given after the balloon angioplasty caused dose-dependent vasoconstriction. It is known that vasoconstriction in arteries can reduce blood flow and increase arterial wall-shear forces, which increase platelet deposition in injured arteries and may precipitate rupture of atherosclerotic plaques. CONCLUSION: The intact endothelium is one of the greatest sources of protection from arterial thrombosis, atherosclerosis and vasoconstriction.

Acetylcholine↗

Thrombin regulation of platelet interaction with damaged vessel wall and isolated collagen type I at arterial flow conditions in a porcine model: effects of hirudins, heparin, and calcium chelation.

The role of thrombin inhibition in platelet vessel wall interaction and thrombus growth was studied under controlled flow conditions. Natural hirudin and recombinant hirudin (r-hirudin), which are specific thrombin inhibitors, were compared with heparinized blood (1.8 +/- 0.2 U/mL) and Ca(2+)-chelated blood in their potential to inhibit platelet interaction and thrombus growth on two biologic vascular surfaces and one immobilized vessel wall component. The substrates were perfused by flowing blood at shear rates typical of patent and stenosed arteries (212 to 1,690/s) for 5 minutes. Platelet deposition was measured by In-111-labeled platelets. We found that both natural and r-hirudin have similar effects on platelet-substrate interaction. As compared with heparin, platelet deposition to mildly damaged vessel wall and digested collagen type I was not reduced by hirudin or citrate. However, hirudin and citrate significantly reduced platelet deposition to severely damaged vessel wall (platelets x 10(6)/cm2: 93 +/- 10 in heparinized blood v 50 +/- 7 in blood treated with 100 U/mL r-hirudin). Therefore, thrombus growth on areas of severe wall damage is in part dependent on local thrombin production at the site of vascular damage. We also found that hirudin added to heparinized blood reduced platelet deposition to severely injured wall but not to subendothelium or collagen-coated slides. Hirudin added to citrated blood did not affect platelet deposition. Our study indicates that local thrombin generation at the site of severe injury will induce platelet activation and deposition even in the presence of average therapeutic heparin levels that inhibit blood coagulation.

Adenosine Diphosphate↗

Acute biologic response to excimer versus thermal laser angioplasty in experimental atherosclerosis.

Vascular injury and platelet accumulation after balloon angioplasty are two potentially important triggers of the process of restenosis that may be minimized by the use of laser energy to ablate atherosclerotic plaque. The type of laser most suitable to achieve these goals remains unknown. Accordingly, angiographic and histologic studies and quantitative platelet deposition analysis were performed on 27 atherosclerotic rabbit iliac arteries randomized to treatment with excimer laser or thermal laser angioplasty. Excimer laser angioplasty was achieved with 35 to 40 mJ/mm2 of 308 nm xenon chloride irradiation delivered through a 4.5F catheter made of 13 concentrically arranged 200 microns fiber optics, at a repetition rate of 25 to 30 Hz and a pulse duration of 135 ns; thermal laser angioplasty was achieved with a 1.7 mm metal probe heated with 10 W of continuous wave argon laser energy. The baseline and post-laser luminal diameters of excimer laser-treated vessels (0.92 +/- 0.28 and 1.56 +/- 0.48 mm, respectively) were similar to those observed in thermal laser-treated vessels (1.05 +/- 0.44 and 1.61 +/- 0.41 mm, respectively). Perforation occurred in 4 (29%) of 14 thermal laser-treated arteries and in 0 of 13 excimer laser-treated arteries (p = 0.04); spasm was observed in only 1 thermal laser-treated vessel. On the basis of a quantitative histologic grading scheme (damage scores of 0 to 4), greater degrees of injury were measured in thermal versus excimer laser-treated vessels (2.4 +/- 1.0 versus 1.3 +/- 0.4, p = 0.009).(ABSTRACT TRUNCATED AT 250 WORDS)

Angioplasty, Laser↗

The role of platelets, thrombin and hyperplasia in restenosis after coronary angioplasty.

Coronary angioplasty has become a successful and widely used treatment for patients with coronary artery disease since its first clinical application in 1977. The primary success rate has improved despite the increase in procedure and case complexity. However, acute reocclusion and late restenosis, which constitute the most important problems after successful angioplasty, continue to occur in about 5% and 35% of patients within 3 to 6 months, respectively. Angioscopic and pathologic observations have suggested that a multifactorial pathophysiologic process accounts for acute reocclusion, involving marked thrombosis, intimal dissection, medial and subintimal hemorrhage, vascular recoil and vasocontriction. In contrast, chronic restenosis involves the development of fibrocellular intimal hyperplasia within a milieu created by vascular injury, platelet activation, thrombin generation and the release of mitogens. Although current pharmacologic approaches, which involve antithrombotic and anticoagulant therapy, have been largely ineffective in eliminating acute reocclusion and chronic restenosis, recent advances in the research in thrombosis, platelet receptors and smooth muscle growth regulation have allowed new therapeutic options to be tested in the experimental setting, with subsequent potential clinical applications in patients.

Angioplasty, Balloon, Coronary↗

Importance of antithrombin therapy during coronary angioplasty.

Angioplasty procedures with balloons, cutters or lasers all may greatly enlarge the arterial lumen, but luminal diameter may decrease because of mural thrombus in 70% to 80%, smooth muscle proliferation, vasoconstriction or recoil. Thrombin binds to arterial wall matrix and fibrin within a thrombus. Heparin dose-dependently decreases platelet and thrombus deposition but does not eliminate these even at high doses. Specific thrombin inhibition started before angioplasty experimentally prevents mural thrombus and limits platelet deposition to a single layer or less. Experimentally, anticoagulant and antifibrin effects occur at lower antithrombin blood levels and lower activated partial thromboplastin times (1.7 times control). Because platelets are so sensitive to thrombin, the higher level of thrombin inhibition required may occur at a specific level (activated partial thromboplastin time greater than or equal to 2 times control); this is not defined in humans. The duration of therapy is not defined in animals or humans. Thrombus and thrombin may be related to cellular proliferation.

Angioplasty, Balloon, Coronary↗

The porcine model for the understanding of thrombogenesis and atherogenesis.

The hypothesis originated by Carl Rokitansky a century ago that thrombosis contributes substantially to atherosclerosis has been rekindled by accumulating experimental and clinical evidence. On the basis of our experience with the experimental porcine model, several important biologic determinants of thrombosis have been identified. The degree of vascular injury seems to be the primary determinant of the thrombotic response. In addition, hemodynamic shear stress and the presence of the von Willebrand factor have important roles in the process of thrombosis. Although there is little evidence that thrombosis is a factor in the initiation of spontaneous, or naturally occurring, atherosclerosis, substantial evidence suggests that thrombosis has an essential role in the progression of spontaneous atherosclerosis and also in the early pathogenic process of the syndromes of accelerated atherosclerosis-namely, heart transplant atherosclerosis, vein graft disease, and coronary restenosis after angioplasty. Advances in the understanding of vascular injury and of the interactions of blood cells with the vascular wall have allowed development of new experimental antithrombotic strategies and subsequent clinical applications in the prevention of these vascular diseases.

Angioplasty, Balloon, Coronary↗

Coronary laser thermal angioplasty in the swine: reduced complications with shorter laser delivery time.

Although laser thermal angioplasty (LTA) with a laser heated metal probe has been tolerated in diseased human coronary arteries, definition of a safety threshold is lacking. Determination of safer operation parameters for coronary LTA using a new "over the wire" 1.3-mm laser probe catheter was attempted in seven normal pigs in which platelets were labeled with indium-111. Argon laser power of 10 watts was used for 1, 2, 3, and 5 seconds. Macroscopic findings, platelet deposition and histologic changes were compared between the laser treated coronary segments and controls, the nonheated laser probe, and the wire alone segments. After 1-second LTA, there was no vessel perforation or occlusive thrombi and only infrequent nonocclusive thrombi; platelet deposition was minimal; and histologic alterations rare and superficial. These findings were comparable to controls, the nonheated laser probe, and the wire alone segments. In contrast, vessels treated for 2, 3, and 5 seconds had more frequent perforation, and occlusive and nonocclusive thrombi that was accompanied by platelet deposition significantly greater than vessels treated with LTA for 1 second. A deep histologic injury was present in most of these segments. Additionally, the safety of laser delivery of 1 second repeated for five times was tested in two additional pigs. On macroscopic and histologic analysis the incidence of vessel perforation, occlusive and nonocclusive thrombi appeared slightly less when compared to the 2-, 3-, and 5-second LTA groups, and more than the 1-second LTA group.(ABSTRACT TRUNCATED AT 250 WORDS)

Angioplasty, Laser↗