Antiplatelet drugs and prevention of macrovascular disease in diabetes mellitus.
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Biomedical subjects
Publications and source records attributed to J A Colwell.
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Diabetes mellitus is a major risk factor for coronary heart disease, peripheral vascular disease, and cardiovascular disease. The prevalence of these complications is increased about two- to four-fold in people with diabetes in the United States, and they contribute substantially to morbidity, mortality, and healthcare costs. The pathogenesis of macrovascular disease in diabetes is multifactorial. Endothelial injury is an early event, followed by macrophage adherence and uptake of lipids to produce a fatty streak. Platelet adherence, aggregation, and release of thromboxane and platelet-derived growth factors may then occur. Quantitative and qualitative alterations of lipoproteins are seen, particularly in uncontrolled insulin-dependent and non-insulin-dependent diabetes. Hyperinsulinemia may be contributory, as may elevated plasma proinsulin levels. Glycation of plasma proteins and of components of the vascular wall occurs, and altered coagulation and/or fibrinolysis may lead to thrombosis. The process is accelerated by hypertension, smoking, and hypercholesterolemia. Gliclazide is an oral sulfonylurea agent that has been reported to have actions on platelet function and fibrinolysis in addition to its effects on glycemia. The evidence for this is reviewed, and recommendations for future studies are made.
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Various parameters of coagulation and fibrinolysis were measured in 13 men (aged 54 +/- 3 yr) with non-insulin-dependent diabetes mellitus (NIDDM) before and after 12-14 wk of exercise training. Subjects exercised for 30 min 3 times/wk at 70% of maximum O2 consumption (VO2max). Training increased VO2max by 12.5% but did not alter body weight, relative body fat, blood pressure, cholesterol, triglycerides, or high-density lipoprotein cholesterol. Slight downward trends were apparent for fasting glucose and insulin, but glycosylated hemoglobin was unchanged. There were no changes in coagulation parameters of plasminogen, hematocrit, or alpha 2-antiplasmin. Plasma fibrinogen (303 +/- 24.2 vs. 256 +/- 12.3 mg/dl) and fibronectin (380 +/- 41.9 vs. 301 +/- 22.2 micrograms/ml) were significantly reduced (P less than 0.02) by exercise conditioning. Three assays of fibrinolytic activity (tissue plasminogen activator, euglobulin lysis time, and an isotopic measure of fibrinolysis) confirmed that neither basal fibrinolysis nor the fibrinolytic responses to venous occlusion and maximal exercise were significantly altered. Exercise conditioning may have antithrombotic effects in NIDDM by reducing plasma fibrinogen and fibronectin. Although the significance of the fall in fibronectin awaits further studies, the reduction in plasma fibrinogen gives a rationale for the use of exercise training in men with NIDDM.
A review of certain aspects of the development of atherosclerosis in diabetes mellitus is presented. Emphasis is on work in the laboratories of the authors and their colleagues, which focused primarily on alterations of platelet and endothelial function and on lipoprotein-cell interactions. These findings are considered within the broad context of other factors that are of importance in the development of atherosclerosis in diabetes mellitus.
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Low-density lipoprotein (LDL) is known to enhance platelet sensitivity to some aggregating agents. In this study, we observed that LDL isolated from patients with insulin-dependent diabetes mellitus (IDDM) enhanced thrombin-induced platelet aggregation to a greater extent than LDL isolated from matched controls (P less than .01). Thromboxane B2 production during aggregation was also significantly more enhanced by LDL isolated from IDDM than by control LDL (P less than .01). There was no difference in the lipid composition (free and esterified cholesterol, total phospholipids, and triglycerides) of LDL isolated from diabetic and control subjects. In contrast, the extent of glycosylation of LDL isolated from diabetic patients was significantly greater than that observed in LDL from normal subjects (P less than .01), and a positive correlation (r = .605, P less than .01) between the degree of LDL glycosylation and the rate of platelet aggregation was observed. LDL glycosylated in vitro enhanced thrombin-, collagen-, and adenosine 5'-diphosphate-induced platelet aggregation to a greater extent than control LDL (P less than .01). Although LDL glycosylated in vitro was taken up by platelets to a greater extent than control LDL (P less than .05), the lipid composition (free cholesterol and phospholipid) of platelets was not significantly changed. We postulate that an increased degree of glycosylation of LDL may enhance its uptake by platelets and lead to increased platelet reactivity to aggregating agents, probably by altering the structure of the platelet membrane. The enhancement of platelet aggregation by LDL may contribute to the accelerated development of atherosclerosis in diabetes mellitus.
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Exercise and physical conditioning may reduce the subsequent risk of major vascular thrombotic events. In view of this, it may be important to examine the effects of exercise on the blood coagulation system. The present paper reviews the effects of physical exercise and conditioning on blood coagulation, platelet function, and fibrinolytic activity. A hypothetical scheme is developed, in which increased blood coagulability and activated platelet function is counterbalanced by increased fibrinolytic activity and endothelial prostacyclin release. Some consideration is given to how this sequence of events may be altered in vascular disease states.
Glycosylation of low density lipoproteins obtained from 16 patients with Type 1 (insulin-dependent) diabetes and from 16 age-, sex-, and race-matched controls, was determined. The diabetic patients were normolipaemic and were in good or fair glycaemic control. Eleven patients performed home blood glucose monitoring. Glycosylation of low density lipoproteins in the diabetic patients was significantly higher (p less than 0.001) than in the control subjects, and was significantly correlated with haemoglobin A1c, (p less than 0.01), glycosylation of plasma proteins, (p less than 0.001), and mean home blood glucose, (p less than 0.01). This study confirms that, in diabetic patients, increased glycosylation of low density lipoprotein occurs to an extent which correlates closely with other commonly used indices of glycaemic control.
This paper review some of the issues faced by the investigators involved in a VA Cooperative Study on Antiplatelet Agents in Diabetic Patients after Amputation for Gangrene. The study was a negative one, and some of the reasons for this are considered. In addition, suggestive results in two subgroups, cerebrovascular disease and unexpected, sudden, or unobserved deaths, were found. The implications and interpretation of these findings are discussed.
Low density lipoproteins (LDL) isolated from poorly controlled diabetic patients are known to be taken up and degraded by fibroblasts at a lower rate than LDL isolated from normal subjects. This aberrant metabolic behavior has been attributed to a diabetic-related abnormality in LDL composition yet to be characterized. The studies reported in this article show that the decrease in uptake and intracellular degradation of LDL from diabetic patients is further enhanced when the cells are exposed to lipoprotein deficient serum (LPDS) isolated from the same poorly controlled diabetic patients. Comparative studies of the composition of LPDS obtained from normal donors and poorly controlled diabetic patients showed an increase in saturated and total unesterified fatty acids (UFA), lecithin, apolipoprotein A1, and immunoreactive insulin in the LPDS from diabetic patients. We postulate that exposure of cells to LPDS obtained from poorly controlled diabetic patients may induce changes in the composition of the fibroblast membrane and alter its fluidity, leading to further decrease in the uptake and degradation of LDL. During poor diabetic control, cell membrane changes, and modification of LDL composition are likely to act either additively or synergistically to induce an abnormal LDL-cell interaction. This abnormal interaction may be a relevant factor to explain the greater incidence of arteriosclerosis in diabetes mellitus.
Serum lipids and lipoproteins and urinary apolipoprotein A (Apo A) were determined in two groups of patients. One group consisted of 11 children (ages ranging from 4 to 14 years) with minimal change glomerular disease. The other group consisted of 13 patients, eight less than 19 years old five adults, with different types of chronic glomerulopathy. Elimination of urinary lysozyme was a feature of chronic glomerulopathies, and creatinine clearances were also significantly lower in this group. Patients with chronic glomerulopathies had significantly lower HDL cholesterol and Apo A concentrations in their sera. In contrast, urinary Apo A concentrations were significantly higher in patients with chronic glomerulopathies, who also showed significantly lower urinary protein selectivities. Lipoprotein electrophoresis of urines containing Apo A showed distinct high-density lipoprotein (HDL) fractions, suggesting that HDL is eliminated in the urine as a result of increased glomerular permeability. This is also supported by a correlation coefficient of 0.77 between the selectivity indices and the ratio of urinary Apo A to total proteinuria. The determination of urinary Apo A appears to give valuable diagnostic information in patients with glomerular disease. According to our results the absence of urinary Apo A is very suggestive of minimal change glomerular disease.
Platelets from diabetic patients show both increased platelet adhesiveness and sensitivity to aggregating agents. Plasma levels of the platelet-active von Willebrand Factor and the closely related factor-VIII antigen are significantly elevated, while factor VIII procoagulant activity is not. This may reflect either intravascular coagulation or disproportionate production or degradation. Plasma factors that enhance ADP-induced platelet aggregation are found in 50% of unselected male diabetics. Activity is clearly demonstrated only when plasma is added immediately prior to adding subthreshold doses of ADP to platelet-rich plasma obtained from control subjects. Systematic investigations of the molecular nature of such factors and their interactions with platelets are in progress. In platelets obtained from diabetic subjects, we have previously found increased sensitivity to the aggregating effects of arachidonic acid, and increased synthesis of immunoreactive prostaglandin E-like material. More recent studies have shown that platelets obtained from diabetic subjects are less sensitive to the antiaggregatory effects of imidazole, a thromboxane synthetase inhibitor. These observations suggest that increased synthesis of the labile aggregating substance thromboxane A2 also occurs in platelets obtained from diabetics. Collectively, these platelet and plasma abnormalities may contribute to accelerated vascular disease of diabetes. Prospective studies using antiplatelet agents are presently underway or in the planning stages in diabetics to explore their potential beneficial effects.
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