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Bezafibrate reduces blood glucose in type 2 diabetes mellitus.

The clinical efficacy of bezafibrate was examined with special reference to glucose metabolism in patients with type 2 diabetes mellitus (DM2). In protocol 1, 342 patients with DM2 and hyperlipidemias were randomly divided into 2 groups, 16-week bezafibrate treatment (n = 174) and no bezafibrate treatment (n = 168). In protocol 2, 20 DM2 patients were randomly divided into 2 groups, 8-week bezafibrate treatment (n = 10) and no bezafibrate treatment (n = 10), and a meal tolerance test (MTT) was performed. In protocol 1, bezafibrate treatment significantly reduced the fasting levels of triglyceride (TG) by 50% +/- 1.6%, total cholesterol (TC) by 12% +/- 1.1%, plasma glucose (PG) from 151.3 +/- 3.5 to 128.6 +/- 3.4 mg/dL, and hemoglobin A1c (HbA1c) from 7.2% +/- 0.1% to 6.9% +/- 0.1%, and significantly increased high-density lipoprotein cholesterol (HDL-C) by 20% +/- 0.8%. In protocol 2, fasting TG, PG, and insulin levels were significantly reduced by bezafibrate treatment. Moreover, in the MTT, postprandial increments of TG were significantly blunted after bezafibrate treatment, whereas postprandial PG and insulin levels were not significantly changed. Leptin levels were significantly decreased, while tumor necrosis factor alpha (TNF-alpha) levels were not changed. In conclusion, both hyperglycemia and hyperlipidemia can be improved by bezafibrate treatment in DM2.

Bezafibrate↗

Angiographic assessment of effects of bezafibrate on progression of coronary artery disease in young male postinfarction patients.

BACKGROUND: Bezafibrate has effects on lipid metabolism and haemostatic function. We undertook a double-blind, placebo-controlled intervention trial, the Bezafibrate Coronary Atherosclerosis Intervention Trial (BECAIT), to establish whether bezafibrate (200 mg three times daily) could retard or prevent the progression of atherosclerotic lesions in dyslipidaemic male survivors of myocardial infarction who were younger than 45 years at the time of the event. METHODS: 92 patients completed an initial 3-month period of dietary intervention and were randomly assigned to treatment with bezafibrate or placebo. Dietary intervention continued throughout the trial. Coronary angiography was done at baseline and after 2 and 5 years. 81 patients (42 bezafibrate treated and 39 placebo treated) who underwent baseline angiography and at least one post-treatment angiogram were included in the efficacy analysis. The primary endpoint was change in mean minimum lumen diameter. FINDINGS: The mean minimum lumen diameter decreased from baseline to the last angiographic assessment (2 or 5 years) by 0.06 mm (95% CI 0.15 reduction to 0.01 increase) in the bezafibrate group and by 0.17 mm (0.33 reduction to 0.09 increase) in the placebo group. The treatment effect was therefore 0.13 mm (95% CI 0.10 to 0.15; p=0.049). Parallel treatment effects, although not statistically significant, were observed for the secondary angiographic endpoints (mean segment diameter 0.02 mm [0.01-0.04] and percentage stenosis -3.41% [-4.00 to -2.98]). The cumulative coronary event rate was significantly lower among bezafibrate-treated than among placebo-treated patients (three vs 11 patients; p=0.02). There were significant treatment effects of bezafibrate for serum concentrations of cholesterol (-9%; p<0.001), very-low-density-lipoprotein (VLDL) cholesterol (-35%; p<0.001), serum triglycerides (-31%; p<0.001), VLDL triglycerides (-37%; p<0.001), and plasma fibrinogen (-12%; p=0.001), whereas low-density (LDL) cholesterol concentrations did not change. High density lipoprotein (HDL) cholesterol increased significantly with bezafibrate (9%; p=0.02). INTERPRETATION: The results show that bezfibrate improves dyslipidaemia, lowers plasma fibrinogen, slows the progression of focal coronary atherosclerosis, and reduces coronary events in young survivors of myocardial infarction.

Adult↗

Chemoprevention of radiation-induced mammary tumors in rats by bezafibrate administered together with diethylstilbestrol as a promoter.

Pregnant Wistar-MS strain rats were irradiated with 2.6 Gy of gamma-rays at day 20 of pregnancy. Rats in the control group (n = 48) were then implanted with a diethylstilbestrol (DES) pellet at 35 days after weaning, while being fed a control (MB-1) diet. The incidence of mammary tumors was 89.6% within 1 year. In the experimental group (n = 22), a bezafibrate (0.15%) diet was initiated immediately after weaning, and 35 days after weaning a DES pellet was implanted. Administration of dietary bezafibrate together with DES-implantation continued for a period of 1 year, at which time the experiment was terminated. The incidence (27.3%) of the mammary tumors in the bezafibrate-fed rats was less than one-third of that in the control rats. Compared with the control group, the number of mammary tumors per tumor-bearing rat in the bezafibrate-treated group was reduced. For clarification of the mechanism of the chemopreventive effects of bezafibrate, lipid and hormone concentrations in serum were measured. Bezafibrate-fed rats showed a significant decrease in serum prolactin (56%) and triglyceride (63%) concentrations, and a significant increase in serum estradiol-17beta (3.8-fold), cholesterol ester (2.0-fold) and TSH (2.0-fold) concentrations in comparison with the control rats. The bezafibrate diet inhibited the formation of DES-induced pituitary tumors. However, the development of mammary glands in the bezafibrate-fed rats was stimulated more than that in the control rats treated with DES alone. The present results demonstrate that bezafibrate is effective in preventing mammary tumors induced by radiation together with DES, possibly by reducing prolactin and triglyceride concentrations.

Animals↗

Atherogenic risk reduction in patients with dyslipidaemia. comparison between bezafibrate and lovastatin.

OBJECTIVE: To examine the atherogenic risk-reducing effect of bezafibrate and lovastatin. DESIGN, SETTING, PATIENTS, INTERVENTIONS: Double-blind, randomized clinical trial of male and female patients with moderate hypercholesterolaemia with or without hypertriglyceridaemia. Two months dietary treatment followed by 400 mg sustained release bezafibrate every day or 20 mg lovastatin every day for 6 months. Patients recruited (n = 561) and treated (n = 524) by primary care physicians throughout Austria. MAIN OUTCOME MEASURES: Multifactorial assessment of atherogenic risk profile. RESULTS: Bezafibrate increased high density lipoprotein cholesterol by 16%, lovastatin by 10% (P < 0.05). Bezafibrate decreased low density lipoprotein cholesterol by 20%, lovastatin by 27% (P < 0.001). Bezafibrate decreased total cholesterol by 15%, lovastatin by 18% (P < 0.001). Bezafibrate reduced triglycerides by 29%, lovastatin by 13% (P < 0.001); and fibrinogen by 9.4% and 3.0%, respectively. Fibrinogen reduction as a result of bezafibrate administration was dependent on starting levels. The risk ratio cholesterol:high density lipoprotein cholesterol (baseline both 6.1) reduction was 27% in both groups. The low:high density lipoprotein ratio (baseline: 4.1/4.2) reduction reached 31% and 34% respectively. Coronary events' probability (calculated from multifactorial risk functions) were greatly reduced by both agents (41%/33%). Hypertriglyceridaemic patients had a higher initial global coronary risk and profited more from treatment. Bezafibrate was significantly better tolerated (P < 0.001) than lovastatin; most events were gastrointestinal (6 vs 14, ns) or as a result of creatine phosphokinase elevations (3 vs 12, P < 0.05). CONCLUSIONS: Both treatments significantly reduced the risk parameters for developing coronary heart disease, and calculated multifactorial coronary risk was similarly decreased. When selecting a drug for moderate dyslipidaemia and if haemostatic regulation is disturbed, the additional effect of bezafibrate on elevated fibrinogen levels should be considered.

Adult↗

Lack of effect of bezafibrate and fenofibrate on the pharmacokinetics and pharmacodynamics of repaglinide.

AIMS: Gemfibrozil markedly increases the plasma concentrations and blood glucose-lowering effects of repaglinide, but the effects of other fibrates on repaglinide pharmacokinetics are not known. Our aim was to investigate the effects of bezafibrate and fenofibrate on the pharmacokinetics and pharmacodynamics of repaglinide. METHODS: In a randomized, three-phase cross-over study, 12 healthy subjects received 400 mg bezafibrate, 200 mg fenofibrate or placebo once daily for 5 days. On day 5, a single 0.25 mg dose of repaglinide was ingested 1 h after the last pretreatment dose. The concentrations of plasma repaglinide, bezafibrate and fenofibrate and blood glucose were measured up to 7 h postdose. RESULTS: During the bezafibrate and fenofibrate phases, the total area under the concentration-time curve [AUC(0, infinity )] of repaglinide was 99% (95% confidence interval of the ratio to the control phase 73, 143%) and 99% (85, 127%) of the corresponding value during the placebo (control) phase, respectively. Bezafibrate and fenofibrate had no significant effect on the peak concentration (Cmax) of repaglinide. The mean half-life of repaglinide was 1.3 h in all phases. The blood glucose-lowering effect of repaglinide was not affected by bezafibrate or fenofibrate. The AUC(0,8 h) values for bezafibrate and fenofibrate varied 3.0-fold and 4.4-fold between individual subjects, respectively. Neither bezafibrate nor fenofibrate affected the pharmacokinetic variables of repaglinide. CONCLUSIONS: Bezafibrate and fenofibrate do not affect the pharmacokinetics or pharmacodynamics of repaglinide.

Adult↗

Bezafibrate reduces mRNA levels of adipocyte markers and increases fatty acid oxidation in primary culture of adipocytes.

The molecular mechanisms by which peroxisome proliferator-activated receptor (PPAR) activation by fibrates reduces fat deposition and improves insulin sensitivity are not completely understood. We report that exposure of a rat primary culture of adipocytes for 24 h to the PPAR activator bezafibrate increased the mRNA levels of crucial genes involved in peroxisomal and mitochondrial beta-oxidation. The mRNA levels of the peroxisomal beta-oxidation rate-limiting enzyme acyl-CoA oxidase and of the muscle-type carnitine palmitoyl transferase I (M-CPT-I), which determines the flux of mitochondrial beta-oxidation, increased by 1.6-fold (P < 0.02) and 4.5-fold (P = 0.001), respectively. These changes were accompanied by an increase in the transcript levels of the uncoupling protein-2 (UCP-2; 1.5-fold induction; P < 0.05) and UCP-3 (3.7-fold induction; P < 0.001), mitochondrial proteins that reduce ATP yield and may facilitate the oxidation of fatty acids. Furthermore, bezafibrate increased the mRNA levels of the fatty acid translocase (2-fold induction; P < 0.01), suggesting a higher fatty acid uptake into adipocytes. In agreement with these changes, bezafibrate caused a 1.9-fold induction (P < 0.02) in 9,10-[(3)H]palmitate oxidation. Moreover, bezafibrate reduced the mRNA expression of several adipocyte markers, including PPARgamma (30% reduction; P = 0.05), tumor necrosis factor-alpha (33% reduction; P < 0.05), and the ob gene (26% reduction). In contrast, adipocyte fatty acid binding protein mRNA levels increased (1.5-fold induction; P < 0.01), pointing to a mobilization of fatty acids to mitochondria and peroxisomes. The reduction of the adipocyte markers caused by bezafibrate was accompanied by an increase in the mRNA levels of the preadipocyte marker Pref-1 (1.6-fold induction; P < 0.01). Some of the changes observed in the primary culture of rat adipocytes also were studied in the epididymal white adipose tissue of bezafibrate-treated rats for 7 days. In vivo, M-CPT-I mRNA levels increased (4.5-fold induction; P = 0.001) in epididymal white adipose tissue of bezafibrate-treated rats. Similarly, fatty acid translocase (2.6-fold induction; P = 0.002) and Pref-1 (5.6-fold induction) mRNA levels increased, although differences in the latter were not significant because of huge individual variations. These results indicate that exposure of adipocytes to bezafibrate, independent of its hepatic effects, increases the degradation of fatty acids, reducing their availability to synthesize triglycerides. As a result, some degree of dedifferentiation of adipocytes to preadipocyte-like cells is achieved. These changes may be involved in the reduction in fat depots and in the improvement of insulin sensitivity observed after bezafibrate treatment.

Acyl-CoA Oxidase↗

[Comparative double-blind investigation of bezafibrate and clofibrate in patients with primary hyperlipoproteinaemia].

The lipid-reducing effects of bezafibrate and clofibrate were investigated in a double-blind crossover trial. 3 x 200 mg/d bezafibrate and 3 x 500 mg/d clofibrate were administered for periods of 8 weeks each to 22 patients with primary hyperlipoproteinaemia (9 Type IIb, 13 Type IV). Placebo periods preceded and followed the periods of medication. Compliance was checked by determination of the serum concentrations of bezafibrate and clofibrate. As compared with the pre-therapy value under placebo, cholesterol was reduced by 14% with bezafibrate and 7% with clofibrate in the group as a whole. In Type IIb patients cholesterol was reduced by 16% with bezafibrate as against 10% with clofibrate, and in Type IV patients by 12% with bezafibrate and 6% with clofibrate. A similar response was found in triglyceride reduction: 36% vs. 18% for the group as a whole; 47% vs. 31% for Type IIb; and 29% vs. 9% for Type IV. The difference in triglyceride reduction for the group as a whole was significant at the p less than 0.05 level. Body weight, pulse rate, and blood pressure showed no changes during the entire period of investigation. Fasting blood glucose was somewhat lower under both substances than under the subsequent placebo period while urea-N and creatinine was increased for both as compared with both pre- and post-therapy placebo periods. Under bezafibrate there was an increase in CPK as compared with the second placebo phase. There were no changes in GOT and GPT. Reductions in gamma-GT, alkaline phosphatase, and bilirubin were observed under both bezafibrate and clofibrate, as were slight decreases in haemoglobin, erythrocytes, and leucocytes, and a small increase in thrombocytes. No changes in urinary excretion of protein or glucose were observed. No subjective side effects were reported, either for bezafibrate or for clofibrate.

Bezafibrate↗

[Comparison of clofibrate and bezafibrate in type IIa and type IIb hyperlipoproteinemia].

In a randomized block-trial the comparative efficacy and side-effects of clofibrate (2 X 1 g), placebo and bezafibrate (3 X 150 mg) were tested in groups of 24 patients each with hyperlipoproteinemia type IIa and IIb. Each period of treatment was 2 months. Both bezafibrate and clofibrate as compared to placebo were associated with a significant lowering of triglycerides and cholesterol: triglycerides by 30% in type IIa and a 41% reduction in type IIb, whereas clofibrate lowered triglycerides by 23% in type IIa and 28% in type IIb. Bezafibrate reduced total cholesterol by 18% in type IIa and 12% in type IIb as opposed to clofibrate reducing cholesterol by 16% in type IIa and 8% in type IIb. Bezafibrate compared to clofibrate was shown to be significantly more effective in lowering triglycerides in type IIa correlating to a significant reduction of VLDL- and LDL-triglycerides in this type. Both substances significantly lowered LDL-cholesterol in type IIa; in type IIb only bezafibrate was effective. HDL-cholesterol increased significantly with bezafibrate. The effect of clofibrate raising LDL-cholesterol in dependence on the initial concentration of the VLDL-triglycerides was seen less frequently after bezafibrate and only with higher initial VLDL-concentrations as compared to clofibrate. Patients tolerated both bezafibrate and clofibrate equally well. It should be considered that bezafibrate was not given in the optimal dose of 3 X 200 mg.

Adult↗

Bezafibrate for the secondary prevention of myocardial infarction in patients with metabolic syndrome.

BACKGROUND: A consistent relationship between metabolic syndrome (MS) and myocardial infarction (MI) has been demonstrated. We evaluated the effect of bezafibrate retard, a fibric acid derivative, on the incidence of MI in patients with MS enrolled in the Bezafibrate Infarction Prevention (BIP) study. METHODS: Patients who displayed at least 3 of the following 5 risk factors were considered to have MS: (1) a fasting glucose level of 110 mg/dL (6.11 mmol/L); (2) a triglyceride level of 150 mg/dL (1.70 mmol/L); (3) a high-density lipoprotein cholesterol level less than 40 mg/dL (<1.04 mmol/L) in men or less than 50 mg/dL (<1.30 mmol/L) in women; (4) a systolic blood pressure of 130 mm Hg or diastolic blood pressure of 85 mm Hg; and (5) a body mass index of 28.0 kg/m(2). The study sample for this post hoc subgroup analyses comprised 1470 patients aged 42 to 74 years. The patients received either 400 mg of bezafibrate retard (740 patients) or placebo (730 patients) once a day. The mean follow-up period was 6.2 years for events and 8.1 years for mortality data. RESULTS: New MI was recorded in 193 patients: 82 (11.1%) of the 740 patients in the bezafibrate group vs 111 (15.2%) of the 730 patients in the placebo group (P = .02). Bezafibrate was associated with a reduced risk of any MI and nonfatal MI with hazard ratios (HRs) of 0.71 (95% confidence interval [CI], 0.54-0.95) and 0.67 (95% CI, 0.49-0.91), respectively. The cardiac mortality risk tended to be lower in patients taking bezafibrate (HR, 0.74; 95% CI, 0.54-1.03). In 575 patients with augmented features of MS (4-5 risk factors), the remarkable strengthening of cardiac mortality reduction when taking bezafibrate (HR, 0.44; 95% CI, 0.25-0.80) should be noted. CONCLUSION: Bezafibrate reduces the incidence of MI in patients with MS during long-term follow-up.

Adult↗

Effects of bezafibrate on insulin secretion and peripheral insulin sensitivity in hyperlipidemic patients with and without diabetes.

Although it has been reported that bezafibrate influences carbohydrate metabolism, this possibility has never been properly evaluated in a controlled clinical trial. In this study we attempted to evaluate the effects of bezafibrate on plasma lipoproteins, glucose tolerance, insulin secretion and peripheral insulin sensitivity in a group of hypertriglyceridemic patients with and without diabetes. Sixteen hyperlipidemic patients (10 males and 6 females) participated in the study. Eight had type IIB and 8 type IV hyperlipoproteinemia; 6 of them also had non-insulin dependent diabetes mellitus. The study was performed according to a double blind, crossover design: after 1 month wash-out period in which patients were on diet alone, they underwent, in a random order, a period of placebo therapy and another period in which they received a single daily dose of a long-acting bezafibrate preparation (400 mg) administered in the evening. Each treatment lasted 2 months. Total plasma and VLDL triglyceride concentrations were consistently reduced by bezafibrate (-46%, P less than 0.001; and -50%, P less than 0.001). Total and VLDL-cholesterol were also reduced by bezafibrate. The effects of bezafibrate on lipoproteins were similar in diabetic and non-diabetic subjects. Bezafibrate treatment did not influence fasting blood glucose concentration, glucose tolerance, peripheral insulin sensitivity or insulin secretion. In conclusion, the results of this controlled trial clearly indicate that bezafibrate can be successfully employed to lower plasma lipid levels in patients with non-insulin dependent diabetes mellitus and hyperlipidemia.

Adult↗

Effects of bezafibrate on the expression of endothelial nitric oxide synthase gene and its mechanisms in cultured bovine endothelial cells.

OBJECTIVE: Peroxisome proliferator-activated receptors alpha (PPARalpha) is a target gene for atherosclerosis and cardiovascular diseases. However, effects of PPARalpha on endothelial nitric oxide synthase (eNOS) remain unknown. We investigated the eNOS regulation by bezafibrate, a ligand of PPARalpha, and involved signaling pathways. METHODS AND RESULTS: Firstly, in cultured bovine aorta endothelial cells (BAEC), bezafibrate significantly upregulated eNOS at protein, mRNA levels and NO production, respectively, in a concentration-dependent fashion (50-200muM). Next, the effects of bezafibrate on signal pathways and eNOS mRNA stability in BAEC were investigated. Results showed that bezafibrate induced phosphorylation of MAPK. Inhibitors of PPARalpha, PI3 kinase and MAPK, respectively, markedly attenuate bezafibrate-induced upregulation of eNOS. Bezafibrate incubation increased eNOS mRNA half-life, activated eNOS promoter, enhanced phosphorylation of eNOS ser-1179 site, and decreased phosphorylation of eNOS thr-497 site via activating ERK and Akt. CONCLUSIONS: Bezafibrate can upregulate eNOS expression, enhance phosphorylation of eNOS ser-1179, increase NO production and transcription level and stability of eNOS mRNA through pathway dependent of PPARalpha and nongenomic effects mediated by MAPK and PI3K pathways. Hence, PPARalpha ligands exert direct benefits on vessel endothelial functions through an increase in eNOS expression level and phosphorylation of eNOS ser-1179. This mechanism provides additional anti-atherosclerotic and anti-hypertension benefits of bezafibrate in addition of lipid-lowering effects.

Animals↗

Long-term effect of bezafibrate on pancreatic beta-cell function and insulin resistance in patients with diabetes.

OBJECTIVE: Development of insulin resistance (IR) and the progressive failure of the pancreatic beta-cell function (BCF) may be important in the pathogenesis of type 2 diabetes. Influence of peroxisome proliferator-activated receptors ligand bezafibrate on BCF and IR in patients with diabetes is unknown. The present study was aimed to investigate the long-term effect of bezafibrate on these parameters in diabetic patients enrolled in the Bezafibrate Infarction Prevention (BIP) Study. METHODS: Metabolic and inflammatory parameters were analyzed from stored frozen plasma samples obtained from 351 diabetic patients (168 treated by bezafibrate and 183 by placebo) who completed a 2-year of randomized, double-blind, placebo-controlled study period. The homeostatic indexes of BCF (HOMA-BCF) and IR (HOMA-IR) were calculated according to the homeostasis model of assessment. RESULTS: Both groups displayed similar baseline characteristics. During follow-up, in the placebo group there was 28% rise of HOMA-IR (p<0.001). In contrast, HOMA-IR in patients in the bezafibrate group did not change (p=0.99). The intergroup differences in HOMA-IR percentage changes were in favor of bezafibrate (p=0.01). HOMA-BCF values have significantly decreased by 13.9% (p=0.04) in patients of placebo group, whereas in patients of bezafibrate group HOMA-BCF was stable during follow-up and its alterations (-2.9%) were non-significant (p=0.59). CONCLUSIONS: Diabetic patients from the placebo group demonstrated a progressive declining of BCF and an increasing of IR over 2 years of follow-up. These longitudinal changes were attenuated when patients used bezafibrate.

Aged↗

Effects of bezafibrate and pravastatin on remnant-like lipoprotein particles and lipoprotein subclasses in type 2 diabetes.

The effects of bezafibrate and pravastatin on remnant-like lipoprotein particles (RLPs) and lipoprotein subclasses were compared in type 2 diabetes. Bezafibrate (400 mg/day) and pravastatin (10 mg/day) were given to 27 Japanese diabetics in a randomized crossover design. RLP cholesterol (RLP-C) and RLP triglyceride (RLP-TG) were measured by an immunoseparation technique. LDL and HDL were separated each into three subclasses (large, medium, small) and their cholesterol (C) contents were measured by an HPLC method. RLP-C was reduced more effectively by pravastatin (bezafibrate -16.0% vs. pravastatin -40.6%, P < 0.05), whereas RLP-TG was reduced more effectively by bezafibrate (-55.2% vs. -35.0%, P < 0.05). Further, pravastatin decreased large and small LDL-C levels equally (large; -23.6%; medium; -17.2%, small; -21.0%), while bezafibrate produced a relatively larger reduction in small LDL-C (-12.1; -16.9; -21.5%). Whereas bezafibrate significantly decreased large HDL-C and increased medium and small HDL-C (-49.6; 34.1; 35.8%), pravastatin significantly increased only medium HDL-C (5.2; 9.4; 5.9%). Bezafibrate reduced RLP-C and RLP-TG more effectively in patients with high TG levels, whereas pravastatin's effect was not markedly influenced by the initial TG level. Thus measurements of RLP-C, RLP-TG, and HPLC subclasses revealed that bezafibrate and pravastatin differently influence the lipoprotein status in type 2 diabetes.

Aged↗

Crystal structure of horse carbonmonoxyhemoglobin-bezafibrate complex at 1.55-A resolution. A novel allosteric binding site in R-state hemoglobin.

Bezafibrate, an antilipidemic drug, is known as a potent allosteric effector of hemoglobin. The previously proposed mechanism for the allosteric potency of this drug was that it stabilizes and constrains the T-state of hemoglobin by specifically binding to the large central cavity of the T-state. Here we report a new allosteric binding site of fully liganded R-state hemoglobin for this drug. The high resolution crystal structure of horse carbonmonoxyhemoglobin in complex with bezafibrate reveals that the bezafibrate molecule lies near the surface of the E-helix of each alpha subunit and the complex maintains the quaternary structure of the R-state. Binding is caused by the close fit of bezafibrate into the binding pocket, which is composed of some hydrophobic residues and the heme edge, suggesting the importance of hydrophobic interactions. Upon binding of bezafibrate, the distance between Fe and the N epsilon(2) of distal His E7(alpha 58) is shortened by 0.22 A in the alpha subunit, whereas no significant structural changes are transmitted to the beta subunit. Oxygen equilibrium studies of R-state-locked hemoglobin with bezafibrate in a wet porous sol-gel indicate that bezafibrate selectively lowers the oxygen affinity of one type of subunit within the R-state, consistent with the structural data. These results disclose a new allosteric mechanism of bezafibrate and offer the first demonstration of how the allosteric effector interacts with R-state hemoglobin.

Animals↗

Secondary preventive potential of lipid-lowering drugs. The Bezafibrate Coronary Atherosclerosis Intervention Trial (BECAIT).

Current experience from coronary angiographic trials using different treatment regimens such as lifestyle changes, resins, nicotinic acid and statins, shows that progression of atheroma can be retarded, and that regression can sometimes be induced, by a marked lowering of LDL-cholesterol. Young post-myocardial infarction patients, however, usually exhibit a multiplicity of metabolic risk factors with dyslipidaemias, predominantly hypertriglyceridaemia, and disturbances of glucose-insulin homeostasis and of the haemostatic system. These factors, together coupled with coronary angiographic data showing that the degree of dyslipidaemia is related to the extent and degree of coronary atherosclerosis, and the fact that rapid progression of coronary atherosclerosis was foreseen in this group of patients, resulted in the initiation of the Bezafibrate Coronary Atherosclerosis Intervention Trial (BECAIT) in 1985. BECAIT was a 5-year, double-blind, placebo-controlled study of bezafibrate (200 mg three times daily) and dietary intervention in dyslipidaemic male survivors of myocardial infarction below 45 years of age. The angiographic analysis included 81 patients (42 bezafibrate and 39 placebo) who underwent baseline and at least one post-treatment angiogram, at 2 and 5 years. Changes in mean minimum lumen diameter indicated that there was 0.13 mm less (95% Cl: 0.10; 0.15) disease progression in focal lesions in the bezafibrate group than in the placebo group (P = 0.049). Parallel, but non-statistically significant, treatment effects were observed for mean segment diameter and percent stenosis. Three patients treated with bezafibrate and 11 patients in the placebo group suffered coronary events during the course of the trial (P = 0.02 logrank test). The angiographic effects of bezafibrate were accompanied by statistically significant reductions in serum cholesterol and triglycerides. Furthermore, plasma fibrinogen levels were significantly reduced and HDL-cholesterol concentration increased but there was no net change in LDL-cholesterol. These findings show that bezafibrate slowed the progression of focal coronary atherosclerosis to a degree that is comparable to that achieved with the statins in angiographic trials such as MAAS and REGRESS. Bezafibrate also reduced the occurrence of coronary events in young post-infarction victims. Like BECAIT, analyses of data from the NHLBI type II study, CLAS, POSCH and MARS provide evidence for the role of triglyceride-rich lipoproteins in the progression of coronary artery disease. Retardation of progression of atherosclerosis and a reduction in coronary events is, therefore, possible without reducing LDL-cholesterol.

Adult↗

Bezafibrate reduces heart rate and blood pressure in patients with hypertriglyceridemia.

OBJECTIVE: In hypertriglyceridemic patients, hypertension occurs frequently and may be associated with hyperinsulinemia and elevated plasma levels of free fatty acids (FFA). Besides the lipid-lowering effects, fibrates have been shown to reduce blood pressure in hypertensive patients. The present study was undertaken to investigate the effects of bezafibrate on hemodynamics in relation to insulin, FFA, sympathetic activity, renal sodium absorption, cyclic-GMP (cGMP) and endothelin-1 in hypertriglyceridemic patients. SUBJECTS AND METHODS: Hypertriglyceridemic patients (17) were randomized to receive in a double-blind placebo-controlled study bezafibrate or placebo for 6 weeks. At the end of both treatment periods, blood pressure and heart rate were measured automatically. Plasma insulin, FFA, aldosterone, catecholamines, cGMP, endothelin-1 levels and 24 h urine catecholamines and sodium excretion were assessed. RESULTS: Bezafibrate therapy decreased serum triglycerides (-65%, P < 0.001) and hemodynamic parameters: heart rate decreased from 69 to 66/min (P = 0.009), systolic blood pressure from 137 to 132 mmHg (P = 0.01), diastolic blood pressure from 81 to 79 mmHg (P = 0.07) and mean blood pressure from 102 to 99 mmHg (P = 0.06). Bezafibrate therapy reduced FFA and insulin (-55 and -57% respectively, both P < 0.001), while sympathetic activity and renal sodium absorption were not affected. cGMP increased (+17%, P = 0.008), whereas endothelin-1 levels tended to decrease upon bezafibrate therapy (-10%, P = 0.077) CONCLUSION: Bezafibrate reduces heart rate, blood pressure, insulin and FFA in hypertriglyceridemic patients. The hemodynamic effects cannot be attributed to changes in sympathetic activity or renal sodium absorption. Instead, based on the increase in plasma cGMP levels, the bezafibrate-induced hemodynamic effects are most likely to be caused by bezafibrate-induced improvement of endothelial function.

Absorption↗

Bezafibrate regulates the expression and enzyme activity of 11beta-hydroxysteroid dehydrogenase type 1 in murine adipose tissue and 3T3-L1 adipocytes.

A clinically employed antihyperlipidemic drug, bezafibrate, has been characterized as a PPAR(alpha, -gamma, and -delta) pan-agonist in vitro. Recent extended trials have highlighted its antidiabetic properties in humans. However, the underlying molecular mechanism is not fully elucidated. The present study was designed to explore potential regulatory mechanisms of intracellular glucocorticoid reactivating enzyme, 11beta-HSD1 and anti-diabetic hormone, adiponectin by bezafibrate in murine adipose tissue, and cultured adipocytes. Treatment of db/db mice with bezafibrate significantly ameliorated hyperglycemia and insulin resistance, accompanied by a marked reduction of triglyceride and nonesterified fatty acids. Despite equipotent in lipid-lowering effects, another fibrate, fenofibrate, did not show such beneficial effects on glycemic control. Treatment of bezafibrate caused a marked decrease in the mRNA level of 11beta-HSD1 preferentially in adipose tissue of db/db mice (-47%, P<0.05), concomitant with a significant increase in plasma adiponectin level (+37%, P<0.01). Notably, treatment of bezafibrate caused a marked decrease in the mRNA level (-34%, P<0.01) and enzyme activity (-32%, P<0.01) of 11beta-HSD1, whereas the treatment substantially augmented the expression (+71%, P<0.01) and secretion (+27%, P<0.01) of adiponectin in 3T3-L1 adipocytes. Knockdown of 11beta-HSD1 by siRNA confirmed that 11beta-HSD1 acts as a distinct oxoreductase in adipocytes and validated the enzyme activity assays in the present study. Effects of bezafibrate on regulation of 11beta-HSD1 and adiponectin in murine adipocytes were comparable with those in thiazolidinediones. This is the first demonstration that bezafibrate directly regulates 11beta-HSD1 and adiponectin in murine adipocytes, both of which may contribute to metabolically-beneficial effects by bezafibrate.

11-beta-Hydroxysteroid Dehydrogenase Type 1↗

Angioscopic evaluation of stabilizing effects of an antilipemic agent, bezafibrate, on coronary plaques in patients with coronary artery disease: a multicenter prospective study.

To evaluate the stabilizing effects of an antilipemic agent, bezafibrate, on coronary plaques, we carried out a prospective angioscopic and angiographic open trial. From April 1997 to December 1998, 24 patients underwent coronary angioscopy of plaques in non-targeted vessels during coronary interventions and then again 6 months later. The patients were divided into control (10 patients, 14 plaques) and bezafibrate (14 patients, 21 plaques) groups. Oral administration of bezafibrate (400 mg/day) was started immediately after the intervention and was continued for 6 months. The vulnerability score was determined based on the angioscopic characteristics of plaques and compared before and 6 months later. Six months later, the vulnerability score was reduced (from 1.6 to 0.8; P<0.05) in the bezafibrate group and unchanged (from 1.4 to 1.3; NS) in the control group. In the bezafibrate group, the changes in the vulnerability score were not correlated with those in % stenosis or minimal lumen diameter. The plasma total cholesterol level (T-C) was unchanged, triglyceride level (TG) was decreased, and high density lipoprotein cholesterol level (HDL-C) was increased in the bezafibrate group, but were unchanged in the control group. In the bezafibrate group, T-C and TG were decreased and HDL-C was increased in patients with a reduced vulnerability score but were unchanged in those with an unchanged score. These results indicate that 6 month administration of bezafibrate stabilizes coronary plaques and that the stabilization is not correlated with angiographic changes.

Angioscopy↗