Gene/Protein Disease Symptom Drug Enzyme Compound
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Query: UMLS:C0020473 (hyperlipidemia)
15,891 document(s) hit in 31,850,051 MEDLINE articles (0.00 seconds)

Hyperlipidemia may be one of the risk factors in the development of atherosclerotic disease in renal transplant recipients. In the present study, 24 kidney recipients with hyperlipidemia were treated with an HMG-CoA reductase inhibitor, pravastatin (10 mg/day). All recipients had been treated with cyclosporine (CsA), azathioprine (Az), and prednisolone (Pred). The mean total cholesterol (T-chol) level decreased from 323 +/- 7.4 to 261 +/- 7.9 mg/dl at one month after starting treatment (P less than 0.01) and this level did not change during treatment for further 6 months. The mean LDL cholesterol level was also decreased from 205.9 +/- 11.2 to 118.7 +/- 8.1 mg/dl at 3 months after starting treatment (P less than 0.01). On the other hand, pravastatin did not affect the levels of HDL-cholesterol and triglycerides. Pravastatin did not show any effects on the white blood cell, monocyte, and lymphocyte counts, or the hemoglobin concentration (NS). One patient displayed a slight elevation of aspartate aminotransferase and alanine aminotransferase levels, but this was not sufficient to cease treatment. Pravastatin did not adversely affect the renal function or creatinine phosphokinase (CPK) levels. Two recipients developed nausea and vomiting and their treatment was stopped. Pravastatin appears to be a safe and efficacious method of treating hyperlipidemia in renal transplant recipients.
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PMID:The effects of pravastatin on hyperlipidemia in renal transplant recipients. 173 92

The chemical measurements on our Technicon SMAC of lipemic sera before and after clearing lipemia by ultracentrifugation showed that uric acid, creatinine, carbon dioxide, calcium, phosphorus, potassium, and alkaline phosphatase were not affected significantly by lipemia, whereas sodium, urea, glucose, chloride and total protein showed small but significant increases with averages of less than 1.9 percent. Albumin showed a significant decrease of 1.2 percent. In contrast, the results for the enzymes, alanine aminotransferase (ALT), aspartate aminotransferase (AST) and lactate dehydrogenase (LDH) showed striking differences between pre- and post-centrifuged sera in a number of specimens. With lactate dehydrogenase, thirty-two of fifty specimens registered an increase in activity while with the aminotransferases, thirty-five and forty-one out of fifty specimens showed a decrease in aspartate aminotransferase and alanine aminotransferase activities, respectively. Although much of the lipemic interference can be explained by the volume displacement of serum by lipids or by interference by lipemia with colorimetry, the anomalous effects observed with the enzymes indicate the possibility of other, as yet, undetermined factor(s).
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PMID:The effect of hyperlipidemia on Technicon SMAC measurements. 712 23

The long-term efficacy and tolerability of simvastatin, a 3-hydroxy-3-methylglutaryl-co-enzyme A (HMG-CoA) reductase inhibitor, was assessed during a 24-month follow-up period in 168 elderly hypercholesterolemic patients. After completing a 4 week double blind dose ranging study with simvastatin, 47 males and 122 females over 62 years of age with type II hyperlipidemia, a total cholesterol level above 6.5 mmol/l and clinically manifest cardiovascular disease were included in this extended study. A total of 159 patients completed the 12-month follow-up period and 141 patients were monitored over the full 24 months. All patients were started on 10 mg simvastatin once daily and the dosage was increased until the target levels of low density lipoprotein (LDL) cholesterol between 2.3 mmol/l (90 mg/dl) and 3.6 mmol/l (140 mg/dl) were reached. Fifty percent of patients reached the targeted LDL cholesterol goal of < 3.6 mmol/l (140 mg/dl) during the study. At study completion, 65 patients (39%) were taking 40 mg simvastatin per day, 56 patients (33%) 20 mg, 42 patients (25%) 10 mg and 5 patients (3%) only used 5 mg per day. Sixteen patients (9%) received concomitant lipid lowering therapy. Over 2 years, the mean decrease in LDL cholesterol ranged from 36% to 38%, the median decrease in triglycerides was 12% to 19% and the mean increase in high density lipoprotein (HDL) cholesterol ranged from 9% to 10%, respectively. Seven patients discontinued simvastatin because of adverse clinical or laboratory events, but only in two (1.1%) was this considered to be drug-related. Side-effects were mild and most frequently gastrointestinal in nature. Mean changes in asparate aminotransferase (AST) were not significantly different from zero and mean changes in alanine aminotransferase (ALT) and creatine phosphokinase (CPK) showed a small increase. We conclude that simvastatin is an efficacious and well-tolerated treatment for hypercholesterolemia in elderly individuals for extended periods.
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PMID:Long-term efficacy and tolerability of simvastatin in a large cohort of elderly hypercholesterolemic patients. 757 71

Plasminogen activator inhibitor type-1 (PAI-1) is a key determinant of the fibrinolytic capacity. Its activity correlates with most of the characteristic features of insulin resistance syndrome, i.e. obesity, high blood pressure and hyperlipidemia. We measured plasma PAI-1 antigen levels in 131 asymptomatic men (aged 44.2 +/- 11 years) who had been referred for hyperlipidemia. Those taking medication and those with a secondary hyperlipidemia were excluded. We confirmed the correlation between PAI-1 levels and the following variables: body mass index, blood pressure, triglyceride concentration, and blood glucose and insulin levels before and after an oral glucose tolerance test. We also found a significant and independent correlation between PAI-1 and the concentration of the hepatic enzymes glutamyl transferase, alanine aminotransferase and aspartate aminotransferase. Mild liver abnormalities (presumably steatosis) may thus be one of the factors accounting for high plasma PAI-1 levels in hyperlipidemic patients.
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PMID:Relation between plasminogen activator inhibitor-1 and hepatic enzyme concentrations in hyperlipidemic patients. 785 96

This study compared the effects of a 3-hydroxy-3-methylglutaryl-coenzyme A reductase inhibitor, fish oil, and placebo on plasma lipids and lipoproteins in patients with mixed hyperlipidemia. After an initial run-in phase, 32 patients were randomized for 6 weeks to either (1) pravastatin 40 mg/d, n = 10; (2) fish oil (himega 6 g/d, equivalent to 3 g omega-3 fatty acids/d), n = 10; or (3) placebo. After single drug therapy, in the pravastatin group mean total plasma cholesterol (TC), low-density lipoprotein cholesterol (LDL-C), and apolipoprotein (apo) B fell significantly by 23% (P < .001), 30% (p < .001), and 26% (P < .01), respectively. LDL Stokes' diameter did not change. In the fish oil group mean plasma triglycerides (TG) fell 30% (P < .05), LDL Stokes' diameter increased from 25.0 to 25.9 nm (P < .05), and there was a nonsignificant increase in LDL-C. There were no changes in the placebo group. To assess the effect of the combination of pravastatin plus fish oil therapy, all patients, except one woman from the placebo group who developed nausea on fish oil, then took combined therapy of pravastatin 40 mg/d plus fish oil 6 g/d for an additional 12 weeks. In each case, there were no clinically significant episodes of muscle tenderness or elevation of creatine phosphokinase or alanine aminotransferase. After 12 weeks of combined therapy of pravastatin plus fish oil, there were significant reductions in the mean TC, TG, LDL-C, and apoB in the three groups compared with baseline levels.(ABSTRACT TRUNCATED AT 250 WORDS)
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PMID:Effect of pravastatin and omega-3 fatty acids on plasma lipids and lipoproteins in patients with combined hyperlipidemia. 824 Oct 95

Statins are regarded as a well-tolerated class of drugs, particularly when compared with some of the older lipid-modifying agents, which have poor rates of compliance. Despite some early concern, the incidence of lens opacities observed in clinical studies involving statin use is no different from that in a normal ageing population. Similarly, the occurrence of insomnia with lipophilic agents appears to have been overemphasised and is not a clinically significant problem, irrespective of the statin under study. Fluvastatin is the newest representative of this class of agents; it has already been evaluated in thousands of patients who have hyperlipidaemia with and without additional risk factors. In controlled clinical studies, the incidence of the majority of adverse events observed with fluvastatin therapy is no higher than that seen with placebo, with the exception of gastrointestinal disturbances (known to be common to all stains). Nonetheless, the incidence of these effects seen with fluvastatin treatment is noted to be lower than that associated with cholestyramine or fibrate use. Elevations in levels of liver transaminases (aspartate aminotransferase and alanine aminotransferase) have been reported with fluvastatin therapy but have led to discontinuation of treatment with the same frequency as with placebo. Elevations in creatine kinase levels as a cause of discontinuing fluvastatin are not more frequent than with placebo. Drug-related myopathy and rhabdomyolysis have not been reported with fluvastatin therapy, and myalgia does not occur more frequently than with placebo. In terms of drug interactions, fluvastatin does not interfere with the efficacy of antihypertensive agents. In controlled clinical trials, the overall reported discontinuation rate due to adverse events noted with fluvastatin therapy is not significantly distinguishable from the rate associated with placebo.
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PMID:Safety profile of fluvastatin. 1948 70

There is strong evidence that genetic factors contribute to the development of obesity in humans as well as laboratory animals. Another important factor leading to obesity is an increase in energy intake. However, it is difficult to make normal rats obese by controlling daily food intake. There is no report of normal adult male Wistar rats becoming obese and diabetic on a high-fat diet. The aim of the present study was, therefore, to make normal adult Wistar rats obese by infusing high fat and hypercaloric diet through the cannula without disturbing the free movement and to investigate the influence of an increase in the caloric intake on body weight and glucose metabolism. High-fat hypercaloric diet (360 kcal/kg body wt./day; H group) or control diet (180 kcal/kg body wt./day; C group) was continuously infused into the stomach of normal adult male Wistar rats weighing approximately 300 g through gastric cannulas for 27 days. On day 28 after a 24-h fasting, serum concentrations of aspartate aminotransferase, alanine aminotransferase, total cholesterol, triglyceride, phospholipid, and free fatty acids (FFA) were determined, and intragastric glucose loading test (2 g/kg body wt.) was performed. The average weekly body weight gain in the H group was twice as much as that of the C group (40.0 +/- 2.4 vs. 19.4 +/- 1.9 g/week, P < 0.001). Serum levels of triglyceride, phospholipid, total cholesterol, and FFA were significantly elevated in the H group compared to those in the C group. Liver weight in the H group was significantly higher than that in the C group and showed steatosis. Pancreas weight (-13%) as well as protein (-12%), amylase (-53%) and trypsin content (-26%) were all reduced, whereas pancreatic DNA content was significantly increased in the H group compared to those in the C group. Serum glucose and insulin concentrations before and after glucose loading in the H group were significantly higher than those in the C group. Moreover, the insulin response relative to glucose response in the H group was significantly high compared to that in the C group, indicating the presence of insulin resistance. These results indicate that feeding of high-fat hypercaloric diet makes normal Wistar male adult rat obese associated with hyperlipidemia, hyperinsulinemia, and glucose intolerance.
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PMID:High-fat hypercaloric diet induces obesity, glucose intolerance and hyperlipidemia in normal adult male Wistar rat. 879 99

To assess the long-term efficacy and use of fenofibrate together with a 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase inhibitor ("statin") in the treatment of elevated levels of triglycerides and low-density lipoprotein (LDL) cholesterol, we conducted a study that compared a before- and after-case series. The study involved 80 patients with a diagnosis of combined hyperlipidemia and existing coronary artery disease (81% of patients) or outpatients with > or = 3 risk factors for coronary artery disease who had been receiving treatment at a tertiary care center. Fasting biochemical measures were obtained at baseline during monotherapy with a statin consisting of pravastatin 20 mg once daily or simvastatin 10 mg once daily (39 patients) or fenofibrate 300 mg once daily (41 patients), and during a 2-year period of combination therapy. This combination therapy comprised fenofibrate 300 mg once daily or micronized fenofibrate 200 mg once daily taken together with pravastatin 20 mg once daily (63 patients) or simvastatin 10 mg once daily (17 patients). The main outcome measures were: (1) absolute and percent change in total cholesterol, triglycerides, LDL cholesterol, and high-density lipoprotein (HDL) cholesterol; (2) percentage of patients with alanine aminotransferase > or = 2x the upper limits of normal on any occasion; (3) percentage of patients with creatinine kinase > or = 3 times the upper limits of normal on any occasion; (4) absolute changes in alanine aminotransferase and creatinine phosphokinase; and (5) months on combination therapy. Patients receiving combination therapy had a mean total cholesterol (+/- standard error of the mean [SEM]) that was significantly decreased by 26+/-1%, triglycerides by 41+/-3%, and LDL cholesterol by 28+/-2%, and mean HDL cholesterol that was significantly increased by 22+/-6%. These changes correspond to mean absolute changes of total cholesterol: -75+/-5 mg/dL; triglycerides: -94+/-13 mg/dL; LDL cholesterol: -52+/-5 mg/dL; and HDL cholesterol: 5+/-1 mg/dL. During combination treatment, alanine aminotransferase increased by 2+/-2 U/liter (not significant) and creatinine phosphokinase decreased by 4+/-13 U/liter (not significant). During treatment, 8 patients (10%) had transitory isolated elevations in alanine aminotransferase levels > or = 2 times the upper limits of normal and 2 patients (2.5%) had an isolated and transitory elevation of creatinine kinase (> or = 3x but < 6x upper limits of normal) without associated muscle symptoms. Patient-years on combination therapy equaled 220.6 (average 2.06 years per patient). The results demonstrated that combination treatment with fenofibrate and low-dose simvastatin or pravastatin is generally safe and effective for the treatment of combined hyperlipidemia in patients with normal hepatic and renal function.
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PMID:Long-term efficacy and safety of fenofibrate and a statin in the treatment of combined hyperlipidemia. 952 16

Renal dysfunction is one of the most common and threatening complications in heart transplant recipients. Even if ciclosporin seems to play a central role in inducing renal damage, other factors may concur or predispose to renal injury. In order to identify factors responsible for renal dysfunction, we retrospectively studied a cohort of 114 cardiac transplant recipients during a follow-up period of at least 3 years. The patients had a normal renal function before and 0.5 months after heart transplantation. Doubling of baseline serum creatinine or attainment of serum creatinine steadily above 176.8 micromol/l (2.0 mg/dl) was used as criterion to define the end-point renal dysfunction. A series of clinical and laboratory variables were obtained from the patients' charts at different time intervals, and their prognostic value for the occurrence of renal dysfunction was calculated by Cox proportional hazards models. 23 out of 114 patients reached the end point after a median time period of 21 months. High serum triglyceride, alanine aminotransferase, alkaline phosphatase, ciclosporin, urea, glucose, and hemoglobin levels were shown to be associated with the development of renal dysfunction. Four variables, i.e., triglyceride, ciclosporin, urea, and alkaline phosphatase, had an independent prognostic value. Our results confirm a role for ciclosporin in inducing renal dysfunction and identify hyperlipidemia and an increased plasma urea level as risk factors for renal dysfunction in heart transplant recipients.
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PMID:Risk factors for chronic renal dysfunction in cardiac allograft recipients. 1064 4

Preliminary data suggest that fluvastatin may be safely combined with fibrates. The Fluvastatin Alone and in Combination Treatment Study examined the effects on plasma lipids and safety of a combination of fluvastatin and bezafibrate in patients with coronary artery disease and mixed hyperlipidaemia. A total of 333 patients were randomly allocated in this multicentre double-blind trial to receive 40 mg fluvastatin alone (n=80), 400 mg bezafibrate (n=86), 20 mg fluvastatin+400 mg bezafibrate (n=85) or 40 mg fluvastatin+400 mg bezafibrate (n=82) for 24 weeks. Low-density lipoprotein (LDL)-cholesterol decreased >20% in all fluvastatin-containing regimens, with significantly greater decreases compared with bezafibrate alone (P<0.001). Bezafibrate alone and fluvastatin+bezafibrate combinations resulted in greater increases in high-density lipoprotein (HDL)-cholesterol and decreases in triglycerides compared with fluvastatin alone (P<0.001). Fluvastatin (40 mg)+bezafibrate was the most effective for all lipid parameters with a decrease from baseline at endpoint in LDL-cholesterol of 24%, a decrease in triglycerides of 38% and an increase in HDL-cholesterol of 22%. All treatments were well tolerated with no increase in adverse events for combination therapy versus monotherapy, or between combination regimens. No clinically relevant liver (aspartate aminotransferase [ASAT] or alanine aminotransferase [ALAT]) greater than three times the upper limit of normal) or muscular (creatine phosphokinase (CPK) greater than four times the upper limit of normal) laboratory abnormalities were reported. This large study shows 40 mg fluvastatin in combination with 400 mg bezafibrate to be highly effective and superior to either drug given as monotherapy in mixed hyperlipidaemia, and to be safe and well tolerated.
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PMID:Efficacy and safety of a combination of fluvastatin and bezafibrate in patients with mixed hyperlipidaemia (FACT study). 1129 92


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