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Biomedical subjects

J H Chesebro

Publications and source records attributed to J H Chesebro.

At least 109 records · Page 6Linked to original sources

Selective versus routine predischarge coronary arteriography after therapy with recombinant tissue-type plasminogen activator, heparin and aspirin for acute myocardial infarction. TIMI II Investigators.

To ascertain whether predischarge arteriography is beneficial in patients with acute myocardial infarction treated with recombinant tissue-type plasminogen activator (rt-PA), heparin and aspirin, the outcome of 197 patients in the Thrombolysis in Myocardial Infarction (TIMI) IIA study assigned to conservative management and routine predischarge coronary arteriography (routine catheterization group) was compared with the outcome of 1,461 patients from the TIMI IIB study assigned to conservative management without routine coronary arteriography unless ischemia recurred spontaneously or on predischarge exercise testing (selective catheterization group). The two groups were similar with regard to important baseline variables. During the initial hospital stay, coronary arteriography was performed in 93.9% of the routine catheterization group and 34.7% of the selective catheterization group (p less than 0.001), but the frequency of coronary revascularization (angioplasty or coronary artery bypass surgery) was similar in the two groups (24.4% versus 20.7%, p = NS). Coronary arteriograms showed a predominance of zero or one vessel disease (stenosis greater than or equal to 60%) in both groups (routine catheterization group 73.1%, selective catheterization group 61.3%). During the 1st year after infarction, rehospitalization for cardiac reasons and the interim performance of coronary arteriography were more common in the selective catheterization group (37.9% versus 27.6%, p = 0.007 and 28.6% versus 11.6%, p less than 0.001, respectively); however, the interim rates of death, nonfatal reinfarction and performance of coronary revascularization procedures were similar. At the end of 1 year, coronary arteriography had been performed one or more times in 98.9% of the routine catheterization group and 59.4% of the selective catheterization group (p less than 0.001), whereas death and nonfatal reinfarction had occurred in 10.2% versus 7.0% (p = 0.10) and 8.6% versus 9.0% (p = 0.87), respectively. Because the selective coronary arteriography policy exposes about 40% fewer patients to the small but finite risks and inconvenience of the procedure without compromising the 1 year survival or reinfarction rates, it seems to be an appropriate management strategy.

Aged↗

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↗

Antithrombotic therapy for deep arterial injury by angioplasty. Efficacy of common platelet inhibition compared with thrombin inhibition in pigs.

BACKGROUND: Platelet-thrombus formation is a complication of arterial wall deep injury by balloon angioplasty that may lead to acute arterial occlusion and may contribute to restenosis. METHODS AND RESULTS: Because common platelet-inhibitor drugs with a heparin bolus (100 units/kg) may be effective in inhibiting platelet-thrombus formation after arterial angioplasty, these were compared with a bolus of heparin alone (control), the specific thrombin inhibitor hirudin (1.0 mg/kg), and saline (hirudin control) in normal pigs after angioplasty of the common carotid arteries. In the presence of deep arterial wall injury (injury exposing the media), indium-111-labeled platelet deposition (x 10(6)/cm2) was 68.8 +/- 12.3 and 48.1 +/- 16.9 in the control animals. This was significantly reduced by pretreatment with low-dose aspirin (1 mg/kg/day), by high-dose aspirin (20 mg/kg/day) plus dipyridamole, and especially by thrombin inhibition with hirudin. Treatment regimens with aspirin alone (20 mg/kg/day), dipyridamole alone, or sulfinpyrazone were ineffective. Likewise, the incidence of mural thrombosis was 75% and 80% in deeply injured arteries of controls and was significantly reduced to 46% with aspirin plus dipyridamole, 25% with low-dose aspirin, and 0% with hirudin. The incidence of mural thrombosis was unchanged with high-dose aspirin (69%), dipyridamole (90%), or sulfinpyrazone (92%). This mural thrombosis could not be identified by angiography. In the presence of mild injury (deendothelialization), platelet deposition was low (less than 10 x 10(6)/cm2, a single layer) and was not changed by any therapy, including hirudin. CONCLUSIONS: These therapies do not affect platelet adhesion to deeply or mildly injured artery. These data suggest a greater role for thrombin inhibition than with thromboxane or cyclooxygenase inhibition in the pathogenesis of platelet-rich mural thrombosis after deep injury during angioplasty. Antithrombotic therapy for arterial thrombosis by thrombin inhibition appears promising.

Angioplasty, Balloon↗

Vessel wall-related risk factors in acute vascular events.

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 studied these processes in an ex vivo perfusion chamber, an in vivo swine model, and in human subjects. Our results, and those of other investigators, suggest that specific local risk factors at the time of plaque disruption influence the degree of thrombogenicity and, therefore, the various clinical syndromes. These risk factors can be divided into 2 groups: local vessel wall-related factors, and local (focal action) systemic factors. These risk factors include the following: 1) Rheological factors. It has been demonstrated that the more severe the stenotic lesion after plaque rupture, the higher the local shear rate with enhanced platelet deposition and thrombus formation; platelet deposition and thrombosis are particularly likely if the rupture includes the apex of the stenotic plaque, because of the high shear rate induced. 2) Degree of plaque damage. Plaque rupture produces a rough surface and stimulates an occlusive thrombus, which is enhanced depending on the degree of damage or amount of collagen type I and macrophage-dependent tissue factor exposed. 3) Residual thrombus. After spontaneous or pharmacological reperfusion, the surface of the residual thrombus is very thrombogenic and may contribute to reocclusion; this is partially due to thrombin bound to fibrin in the original thrombus. 4) Systemic factors. There is clinical and experimental evidence to suggest that 3 systemic factors at the time of plaque rupture may enhance thrombogenicity.(ABSTRACT TRUNCATED AT 250 WORDS)

Angina, Unstable↗

Importance of experimental models for the development of clinical trials on thromboatherosclerosis.

Experimental models of vascular injury have enhanced our understanding of the pathophysiological process leading to vascular obstruction in both spontaneous and accelerated atherosclerosis. Based on experimental findings, we present and discuss a pathological classification of vascular injury or damage and its role in the pathogenesis of various vascular diseases. In addition, these animal models have provided insights into the roles of platelets and lipid metabolism in the evolution and progression of atherosclerosis and have suggested potential therapeutic applications. Thus, based on studies in the pig models, antiplatelet agents have been shown for the first time to have a beneficial effect in preventing the formation and progression of coronary atherosclerotic lesions in humans. Similarly, our findings in high density lipoprotein plasma fractions regarding inhibition and even reversal of the process of atherosclerosis in a hypercholesterolemic rabbit model have added new insights to an explosive field of lipoprotein research and provided new avenues of therapeutic strategies. our in vivo and ex vivo pig models of an extracorporeal perfusion chamber mimicking the various coronary conditions have aided in the understanding of the pathophysiology of the acute coronary syndromes and intensified our search for the ideal antithrombotic regimen in these high-risk patients. Finally, a carotid pig model of balloon angioplasty, a dog model of saphenous vein grafting, and a pig model of heart transplantation not only have provided insights into the pathophysiological process of accelerated atherosclerosis but also are allowing development of new antithrombotic and antiproliferative approaches for the prevention of these accelerated vascular diseases. In summary, we are entering an exciting era in vascular research. Significant advances in our understanding of vascular injury or damage as well as the interactions of blood cells and lipids with the vascular wall have allowed us to formulate new experimental strategies with subsequent clinical application in the prevention and progression of these vascular diseases.

Animals↗

Prevention of late ventricular dilatation after acute myocardial infarction by successful thrombolytic reperfusion.

To examine the sequential changes in left ventricular volume after thrombolytic therapy for acute myocardial infarction, gated radionuclide ventriculography was performed within 12 hours of thrombolysis and at 1 and 6 weeks in 34 consecutive patients who received intravenous thrombolytic therapy in the Thrombolysis in Myocardial Infarction Trial. Angiographic confirmation of immediate reperfusion (mean 5.6 hours after onset of symptoms) that persisted at 24 hours was noted in 24 patients; 10 patients were not reperfused. A small (9.5%), but significant (p = 0.05), increase in end-diastolic volume index was noted in the reperfused group between 1 and 6 weeks; however, a marked degree of dilatation (35%) was noted in the non-reperfused group (p = 0.01). The change in left ventricular volume between 1 and 6 weeks differed in the 2 groups for both end-diastolic volume index and end-systolic volume index (p = 0.01 and p = 0.02, respectively). By 6 weeks, both end-diastolic volume index and end-systolic volume index were greater in the nonreperfused group (p less than 0.05). Between the acute and 6-week studies, definite increases in end-diastolic volume index (p less than 0.05) and end-systolic volume index (p less than 0.01) occurred commonly in the nonreperfused group but rarely in the reperfused group. Compared to the nonreperfused group, the reperfused group also had significantly higher ejection fractions at both 1 and 6 weeks (p less than 0.05). The change in end-diastolic volume index between 1 and 6 weeks correlated significantly and inversely with the ejection fraction at 1 week (r = -0.60, p less than 0.001).(ABSTRACT TRUNCATED AT 250 WORDS)

Cardiac Volume↗

New approaches to treatment of myocardial infarction.

Survival of patients with acute transmural infarction is largely related to the size of the myocardial infarction. The goal of thrombolytic therapy in acute myocardial infarction is maximal salvage of myocardium by reestablishment of flow in the occluded infarct-related artery and the establishment and maintenance of a patent infarct-related artery. Results of randomized trials show a significant reduction in mortality in patients who have undergone thrombolysis. A patent infarct-related artery, even in the absence of a change in left ventricular function, is associated with reduced mortality. The Thrombolysis in Myocardial Infarction Trial and the European Cooperative Trial showed that recombinant tissue-type plasminogen activator is superior to streptokinase in reestablishing flow in a totally occluded artery. Experimental and clinical evidence suggests that thrombolysis and thrombosis occur simultaneously, and that lysis appears to increase both thrombin and platelet activity. Effective reduction of thrombosis accelerates thrombolysis. Rethrombosis after thrombolysis is due to anchored residual thrombus, which alters the hemorrheology of blood flow and produces a highly thrombogenic substrate that is largely due to residual fibrin-bound thrombin. Platelet deposition is directly related to severity of residual stenosis and shear rate. Thrombin appears to be the most potent of the 5 potential stimulators of platelet activation during arterial thrombosis. Proper anticoagulation can play an important role in reducing thrombosis. Experimental evidence strongly supports the use of heparin during and after thrombolysis. A recently reported study shows continued reduction of residual stenosis after 1 month of vigorous anticoagulation with intravenous heparin and subsequent oral anticoagulation.(ABSTRACT TRUNCATED AT 250 WORDS)

Heparin↗

Antithrombotic therapy in cardiac disease: an approach based on pathogenesis and risk stratification.

An approach to the management of thrombosis and embolism in various cardiovascular disorders is discussed. This approach is based on current knowledge of pathogenesis and risk of thromboembolism. Rational therapeutic guidelines are formulated along the lines of anatomic location (arterial circulation, cardiac chambers or prosthetic valves), pathophysiology (activation of platelets or the coagulation system, or both), and degree of thromboembolic risk. With clear understanding of these factors, it may be possible to determine the most suitable platelet inhibitor or anticoagulant regimen for the individual patient, and whether these agents should be given singly or in combination.

Anticoagulants↗

Effect of dipyridamole and aspirin on vein graft patency after coronary bypass operations.

Antiplatelet therapy with dipyridamole, 100 mg q.i.d., starting 2 days before surgery, followed by aspirin, 325 mg t.i.d. plus dipyridamole, 75 mg t.i.d., 7 hours after surgery was assessed in the prevention of saphenous vein bypass graft occlusion. Early (less than or equal to 1 month) and late (1 year) occlusions were reduced both on a per patient and a per distal anastomosis basis. Bleeding complications were not increased. Graft occlusion in high-risk situations (low-flow grafts and endarterectomy) was reduced, but not eliminated, by this antiplatelet regimen. The authors recommend this combination of dipyridamole before surgery, adding aspirin after surgery, to prevent coronary artery bypass graft occlusion.

Aspirin↗

Mismatch of left ventricular function and infarct size demonstrated by technetium-99m isonitrile imaging after reperfusion therapy for acute myocardial infarction: identification of myocardial stunning and hyperkinesia.

Quantitation of perfusion defect size using tomographic imaging with technetium-99m-hexakis-2-methoxy isobutyl isonitrile was performed at the time of hospital discharge in 32 patients with a first myocardial infarction who underwent successful coronary reperfusion within 8 h of the onset of chest pain. Reperfusion was accomplished with thrombolysis or primary coronary angioplasty. Radionuclide angiography was performed at discharge and 6 weeks later. There was a close correlation between perfusion defect size and values for ejection fraction and regional wall motion both at discharge (r = -0.80 and -0.75, respectively) and 6 weeks later (r = -0.81 and -0.81, respectively). There was no overall group difference in ejection fraction between the value at discharge and at 6 weeks; however, five patients had a significant increase (greater than or equal to 0.08) and six had a significant decrease (greater than or equal to 0.08) in ejection fraction. In patients with a significant increase at 6 weeks, ejection fraction was significantly lower at discharge than the value predicted from perfusion defect size (0.37 +/- 0.09 measured versus 0.47 +/- 0.13 predicted, p less than 0.05) and it improved at 6 weeks to near predicted values (0.51 +/- 0.07). In patients with a significant decrease at 6 weeks, ejection fraction was significantly higher at discharge than the value predicted from perfusion defect size (0.60 +/- 0.10 measured versus 0.50 +/- 0.10 predicted, p less than 0.05) and it decreased at 6 weeks to near predicted levels (0.51 +/- 0.09). Left ventricular ejection fraction at the time of hospital discharge is a potentially misleading index of the efficacy of reperfusion therapy for myocardial infarction. In a significant minority (34%) of patients this index does not accurately reflect perfusion defect size, apparently because of the effects of myocardial stunning and compensatory hyperkinesia.

Female↗

Syndromes of accelerated atherosclerosis: role of vascular injury and smooth muscle cell proliferation.

Vascular injury represents a critical initiating event in the pathogenesis of various vascular diseases, including atherosclerosis. This review discusses 1) the current understanding and a new pathologic classification of vascular injury; 2) the resultant cellular pathophysiologic responses, specifically, lipid accumulation, platelet aggregation, thrombus formation and smooth muscle cell proliferation; 3) the role of vascular injury in the pathogenesis of spontaneous and accelerated atherosclerosis; and 4) emerging therapeutic approaches in preventing these vascular diseases. The process of type I vascular injury (nondenuding functional injury) followed by lipid accumulation, monocyte and platelet adhesion, smooth muscle cell proliferation and resultant plaque formation represents the prevalent view of the early stages of spontaneous atherogenesis. The syndromes of accelerated atherosclerosis (namely, heart transplant atherosclerosis, coronary vein graft disease and restenosis after percutaneous transluminal coronary angioplasty) appear to share etiologic mechanisms with spontaneous atherosclerosis by means of the "response to injury" hypothesis. However, type II and type III vascular injury (denuding endothelial and intimal injury with or without medial damage) followed by thrombus and its organization by smooth muscle cell proliferation and subsequent fibrosis appear to be responsible for the vascular process. This accelerated and premature occlusive process accounts for significant morbidity and mortality in patients with these conditions. Better understanding of the nature of vascular injury and its pathophysiologic responses in these clinical situations may aid in developing therapeutic strategies for preventing these vascular diseases.

Animals↗

Exploration of the atherosclerotic plaque.

During the past 3 decades we have achieved a better understanding of the atherosclerotic process. It has been described as a series of changes in the intima of arteries consisting of the focal accumulation of lipids, complex carbohydrates, blood and blood products, fibrous tissues, and calcium that are also associated with changes in the media. The process begins with a vascular injury that is complicated by the deposition of cholesterol esters and cholesterol. It is followed by the accumulation of lipid ladened monocytes as well as the initiation of immune mechanisms. The proliferation of smooth muscle cells into the lesion assures its permanence by the synthesis of fibrous tissue. Platelet aggregation, thrombosis and hemorrhage are all key components of plaque progression, that ultimately are associated with vascular occlusion and focal vascular spasm. Calcium plays an important role in the development of hard, ulcerated lesions. Atherosclerotic risk factors are believed to accelerate the progression of atherosclerotic plaques and the control of these risk factors may retard their proliferation and progression.

Arteriosclerosis↗

Reperfusion in acute myocardial infarction.

During the past decade, the general acceptance of the primary role of thrombosis in acute myocardial infarction (AMI) has led to intense interest in the potential efficacy of reperfusion therapy, particularly thrombolytic therapy, in AMI. Accumulating evidence indicates that systemic thrombolytic therapy administered early after the onset of symptoms of AMI can restore infarct-related artery patency, salvage myocardium, and reduce mortality. Recommendations about the proper use of thrombolytic therapy, contraindications, and concomitant therapies (such as aspirin, heparin, nitrates, beta-adrenergic blocking agents, and calcium channel blockers) are reviewed. Although percutaneous transluminal coronary angioplasty (PTCA) is useful for subsets of patients with AMI (for example, patients with anterior infarctions with persistent occlusion of the infarct-related artery after thrombolytic therapy and those with cardiogenic shock), a conservative strategy, including angiography and PTCA only for postinfarction ischemia, is indicated for most patients with AMI in whom initial thrombolytic therapy is apparently successful. The use of PTCA after failed thrombolysis or as direct therapy for AMI seems promising, although further comparisons of PTCA and intravenous thrombolytic therapy are needed. Ongoing studies should help further define the risk-to-benefit ratio of various reperfusion strategies in different subsets of patients, define time limitations for reperfusion therapy, and provide data on therapeutic modalities that will limit reperfusion injury and therefore enhance salvage of myocardium.

Humans↗