Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Niceritrol”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Changes in the fatty acid composition of the plasma lipid esters during lipid-lowering treatment with diet, clofibrate and niceritrol. Reduction of the proportion of linoleate by clofibrate but not by niceritrol.

The fatty acid composition of the plasma lipid esters has been studied during lipid-lowering treatment of 95 patients with atherosclerotic disease. During the first two months of the trial only a diet was prescribed. During the ensuing two months either clofibrate or niceritrol, a nicotinic acid ester, was added in a randomized order. During the last two months the second drug was added. The combined treatment with diet, clofibrate and niceritrol caused highly significant serum lipid reductions. The fatty acid composition in the plasma lipid esters was determined in samples from each trial period to measure the degree of dietary adherence. During dietary treatment the relative content of saturated and monounsaturated fatty acids secreased and the polyunsaturated fatty acids increased with an increasing ratio between pulyunsaturated and saturated fatty acids (P/S ratio) in the cholesterol esters and triglycerides. Only minor changes were seen in the phospholipids. The changes caused by the diet were partly reversed by clofibrate while niceritrol did not cause any major changes of the fatty acid composition. Clofibrate treatment coincided with increasing amounts of monounsaturated fatty acids, especially oleate (18 : 1), in the cholesterol esters, triglycerides and phospholipids while there were significant reductions of the content of linoleic (18 : 2) acid in both the cholesterol esters and triglycerides. The 18 : 2/18 : 1 ratio decreased significantly in all the lipid esters analyzed. However, the P/S ratio was not significantly affected, partly because the relative content of saturated fatty acids also tended to decrease during clofibrate treatment. It is concluded that addition of clofibrate treatment to patients who are on a diet enriched with polyunsaturated fats is associated with a change from polyunsaturated to monounsaturated fatty acids in the plasma lipid esters but does not significantly effect the ratio between polyunsaturated and saturated fatty acids. The fatty acid changes caused by clofibrate treatment and counteracted by an increased amount of polyunsaturated fat in the diet.

Aged↗

Effect of niceritrol on fibrinolysis and lipoprotein (a) levels in patients with coronary artery disease.

BACKGROUND: Lipoprotein (a) [Lp(a)] is an independent risk factor for coronary artery disease and niceritrol (a prodrug of nicotinic acid) is known to reduce Lp(a) levels. Patients with coronary artery disease often have impairment of the fibrinolytic system. METHODS: To elucidate the effect of niceritrol on fibrinolysis and Lp(a) levels, we examined plasminogen activator inhibitor (PAI) activity, tissue-type plasminogen activator (t-PA) antigen, and serum Lp(a) levels before and after administration of niceritrol to coronary artery disease patients with high baseline Lp(a) levels (> or = 20 mg/dl). Niceritrol was administered to 26 patients for 12 weeks at 750 mg/day. Fasting blood samples were obtained at 0800 h from each patient before treatment, after administration of niceritrol for 12 weeks and 4 weeks after the discontinuation of therapy. RESULTS: There were significant reductions in PAI activity (9.9 +/- 1.8 compared with 5.4 +/- 1.6 IU/ml, P < 0.01), t-PA antigen levels (10.0 +/- 0.5 compared with 8.8 +/- 0.6 ng/ml, P < 0.05), and Lp(a) levels (49.3 +/- 5.9 compared with 42.5 +/- 5.4 mg/dl, P < 0.01) after 12 weeks of niceritrol administration. Four weeks after the discontinuation of niceritrol treatment, all these parameters returned to baseline. CONCLUSIONS: This study demonstrated that niceritrol administration decreases PAI activity and t-PA antigen levels together with Lp(a) levels in patients with coronary artery disease. These observations suggest that niceritrol administration may tend to normalize fibrinolysis in such patients.

Adult↗

The effects on lipids, blood viscosity and platelet aggregation of combined use of niceritrol (Perycit) and a low dose of acetylsalicylic acid.

Forty-six elderly patients (mean age 60 years) suffering from diabetes mellitus (DM), or essential or arteriosclerotic hypertension (HT) were divided into 4 groups. Group 1 served as a control, group 2 was administered 1500 mg niceritrol, group 3 was administered 162 mg acetylsalicylic acid (ASA), and group 4 was administered both 1500 mg niceritrol and 162 mg ASA/day for 8 weeks. Niceritrol lowered serum levels of beta-lipoprotein and total cholesterol and increased HDL cholesterol, usually in 8 weeks. ASA did not affect the lipid-lowering effects of niceritrol. Platelet aggregation induced by epinephrine (1 microgram/ml), collagen (1 microgram/ml), and ADP (2 microM) was depressed in groups 2, 3 and 4. Degrees of depression were higher in groups administered ASA (groups 3 and 4) than in the group administered niceritrol alone (group 2). Plasma fibrinogen levels were lowered in groups administered niceritrol (groups 2 and 4) in 8 weeks. Apparent whole blood viscosity measured at shear rates of 37.6/s and 376/s was improved only in group 4 in 8 weeks, while hematocrit did not change during the study. Because flushing, the most frequent side effect of niceritrol, can be easily controlled by a low dose of ASA, and because the combination of the 2 drugs has some beneficial effects on blood rheology, this combination is considered worthwhile for treatment and prevention of atherosclerosis.

Adult↗

Effect of niceritrol on lipid metabolism of aorta in atherosclerotic rats.

Atherosclerotic lesions were formed in the aorta of rats given a high cholesterol diet containing propylthiouracil (PTU) and vitamin D2 (atherogenic diet) for 8 weeks. The effects of niceritrol (pentaerythritol tetranicotinate), which lower the plasma lipid level, on lipid metabolism in the arterial wall of the atherosclerotic rats were studied. Niceritrol significantly decreased the plasma cholesterol level of atherosclerotic rats, which was 823 mg/100 ml, or about ten times that of control rats. On treatment with niceritrol, the cholesterol level was reduced most in the very low density lipoprotein (VLDL) fraction (d less than 1.006). Heparin-releasable lipoprotein lipase activity in epididymal adipose tissue, lipoprotein lipase activity in post-heparin plasma, and VLDL-triolein hydrolyzing activity in adipose tissue stromal vessels were all higher in niceritrol-treated atherosclerotic rats. Of the enzymes in the arterial wall concerned with cholesterol ester metabolism, acid cholesterol esterase activity was decreased in atherosclerotic rats, while niceritrol treatment increased this activity. The ratio of acyl-CoA cholesterol acyltransferase activity (ACAT) to neutral cholesterol esterase activity was higher in atherosclerotic rats than in control rats, but was lower in niceritrol-treated rats than in atherosclerotic rats. From these results, it is concluded that niceritrol modifies enzyme activities in such a way as to reduce the cholesterol ester content of the arterial wall and lower plasma VLDL and LDL cholesterol levels.

Adipose Tissue↗

[Plasma nicotinic acid levels in hemodialysis patients after the administration of niceritrol].

Lp(a) has recently begun to attract attention as a risk factor of atherosclerotic disease, especially of ischemic heart disease. The Lp(a) concentration in the serum was shown to be important for chronic hemodialysis patients who have high mortality due to cardiovascular disease. Nicotinic acid derivatives, which are recognized for their capacity to lower the serum Lp(a) concentration, are effective against a high Lp(a) concentration in hemodialysis patients. In this study, niceritrol which is a nicotinic acid derivative was tested on hemodialysis patients and healthy controls by investigating the serum nicotinic acid level. Serum nicotinic acid concentration was also measured by the severity of renal dysfunction of patients untreated by niceritrol. The blood nicotinic acid concentration in healthy controls (n = 4) was changed after 2 hrs by the administration of niceritrol from 9.8 +/- 1.4 ng/ml to 192.7 +/- 23.1 ng/ml then slowly decreased. Chronic hemodialysis patients who take niceritrol every day showed the highest nicotinic acid serum concentration (500-1,000 ng/ml) on the day without hemodialysis and the serum level decreased with dialysis for 4 hrs to 25-80%. There was no significant difference in the nicotinic acid level in the serum between healthy controls (n = 10), chronic glomerulonephritis patients (n = 7), chronic renal failure patients (n = 8) and chronic hemodialysis patients (n = 17). Lp(a) concentration in the serum, however, was increased with greater severity of renal dysfunction, The side effect was not observed in any cases administered niceritrol. These data suggest nicotinate derivatives are effective for hemodialysis patients. High nicotinic acid level in the serum after treatment with niceritrol was lowered by dialysis. It is plausible that the nicotinate level in patients without niceritrol treatment did not influence the Lp(a) concentration, because there was no increase in the nicotinate level of the serum even if the patients had renal dysfunction.

Arteriosclerosis↗

Increased compliance of niceritrol treatment by addition of aspirin: relationship between changes in prostaglandins and skin flushing.

The relation of plasma levels of prostaglandins to the occurrence of flushing induced by niceritrol was investigated. Niceritrol increased plasma levels of PGE2 (p less than 0.01) and 6 keto-PGF1 alpha (p less than 0.05) in 10 male subjects and aspirin reduced the level of PGE2 (p less than 0.01). Five of 10 subjects had flushing, and aspirin reduced flushing in 4 subjects. On the basis of the above study, we treated 35 hyperlipidemic patients with niceritrol in combination with aspirin, investigating the effect of the treatment of serum lipids and postheparin lipolytic activity. None of the 12 cases given aspirin from the start of the treatment experienced flushing, whereas 9 of the 23 cases not given aspirin experienced flushing, which was suppressed by adding aspirin in prescription in all cases except one. Niceritrol decreased serum cholesterol, triglyceride and atherogenic index. It also increased HDL2 cholesterol and decreased HDL3 cholesterol. The LPL activity in postheparin plasma increased in all cases after niceritrol treatment. In conclusion, aspirin increased compliance of niceritrol by reducing the occurrence of flushing probably due to the decreased levels of prostaglandins, yielding favorable results for the long-term treatment of hyperlipidemia with a sufficient doses of niceritrol.

6-Ketoprostaglandin F1 alpha↗

Effects of niceritrol (pentaerythritol tetranicotinate) on plasma lipoprotein concentration: increment of high density lipoprotein(HDL) cholesterol and HDL-cholesterol/low density lipoprotein cholesterol ratio in hypo-high density lipoproteinemia.

The purpose of the present study was to investigate the effects of niceritrol on HDL metabolism. In study (A), niceritrol, 750 mg/day was given for initial period of 12 weeks and 1,500 mg/day was prescribed for an additional 12 weeks to 12 subjects. In six of them, the HDL cholesterol (Ch) levels were less than 45 mg/100 ml with normal plasma cholesterol levels and with plasma triglyceride levels of less than 250 mg/100 ml. In the remaining six subjects, HDL-Ch, plasma cholesterol and triglyceride levels were all within normal limits except in one subject having a higher triglyceride level, 213 mg/100 ml. Plasma lipoproteins were fractionated by sequential ultracentrifugation and analyzed for cholesterol, triglyceride (TG), phospholipid(PL), apolipoprotein(Apo) B and Apo A-I, every 4 weeks. Niceritrol decreased plasma-Ch, VLDL-Ch, LDL-Ch, plasma-TG, VLDL-TG, plasma-PL, VLDL-PL and LDL-PL. Niceritrol increased HDL-Ch and the HDL-Ch/LDL-Ch ratio. These effects were more significant for the dose of 1,500 mg/day than 750 mg/day and were more marked in the patients with lower pretreatment HDL-Ch levels. Apo B level at 20 weeks was significantly lower than that before treatment. Initial plasma Apo A-I levels of the patients were approximately one-half of the control plasma. After treatment with niceritrol, Apo A-I concentration tended to increase. In study (B), changes of lipids concentration in HDL2 and HDL3 fraction were investigated in 5 patients during treatment with niceritrol, 1,500 mg/day for 8 weeks. Lipoproteins were analyzed every 2 weeks. HDL2-Ch levels tended to increase without significant changes of HDL3-Ch levels and HDL2-Ch/HDL3-Ch ratio showed a tendency to increase. A significantly but weakly inverse correlation between changes of VLDL-TG and HDL-Ch was observed, suggesting that the increment of HDL might be due partly to promoted lipolysis of TG-rich lipoproteins. However, it was suggested that the effects of niceritrol on lipoprotein synthesis in the liver and HDL catabolism should be considered.

Aged↗

Clinical study of niceritrol on serum lipids in the treatment of hyperlipidemia.

The effects of niceritrol, a nicotinic acid derivative, on the levels of HDL-cholesterol (HDL-Ch) and a mixture of VLDL- and LDL-Ch (VLDL- + LDL-Ch) were studied in hyperlipidemic patients. Serum total cholesterol (sTC) and serum triglyceride (sTG) were significantly reduced during niceritrol administration. Lipoprotein electrophoresis showed that niceritrol increased the alpha:beta ratio. HDL-Ch showed a significant increase of 12.5% by the 16th week of therapy. This increase was more marked in patients with lower pre-treatment HDL-Ch levels and significant in patients whose pre-treatment sTG levels were in excess of 200 mg/dl. Females displayed higher pre-treatment HDL-Ch levels (38.5 mg/dl) than males (30.6 mg/dl). However, niceritrol increased HDL-Ch significantly in both groups. At 16 weeks, the VLDL- + LDL-Ch level showed a significant decrease of 9.2%; the HDL-Ch:VLDL + LDL-Ch and HDL-CH:sTC ratios were significantly increased throughout niceritrol administration. Niceritrol is thought to be effective in preventing the development and progression of atherosclerosis because it raises the level of anti-atherogenic HDL-Ch and lowers the level of atherogenic VLDL- + LDL-Ch.

Cholesterol↗

Long-term effects of niceritrol on serum lipoprotein(a) and lipids in patients with high levels of lipoprotein(a).

The long-term effects of niceritrol on lipoprotein(a) (Lp[a]), lipids, apolipoproteins, and fibrinogen and fibrinolytic factors were evaluated in 20 outpatients who had serum Lp(a) levels higher than 20 mg/dL. The mean ( +/- SE) levels of Lp(a) decreased from 33.6 +/- 2.3 mg/dL to 23.5 +/- 3.5 mg/dL after 12 months of niceritrol treatment (P < 0.01). Serum levels of triglycerides and apolipoprotein E decreased significantly and high-density lipoprotein cholesterol (HDL-C) increased significantly after 12 months (P < 0.05). There were no significant changes overall in fibrinogen and fibrinolytic factors, although fibrinogen concentrations showed a tendency to decrease with treatment. PAI-1 levels decreased significantly (P < 0.05) after 6 months of niceritrol treatment. A significant correlation of percent reduction between Lp(a) and apolipoprotein B levels (P < 0.01) was observed, suggesting that the Lp(a)-lowering effects of niceritrol may be due to niceritrol inhibition of apolipoprotein B synthesis, the major apolipoprotein of Lp(a). The ability of niceritrol to decrease Lp(a) levels and increase HDL-C levels, together with its tendency to lower fibrinogen levels, may help prevent coronary events in patients with high levels of Lp(a).

Aged↗

Antiproteinuric effect of niceritrol, a nicotinic acid derivative, in chronic renal disease with hyperlipidemia: a randomized trial.

PURPOSE: Lipoprotein (a) [Lp(a)] levels increase in patients with renal disease. We administered niceritrol, a nicotinic acid derivative, to patients with chronic renal disease and a high serum Lp(a) level, and studied its effects on lipid metabolism, proteinuria, and renal function. METHODS: Thirty-three patients with chronic renal disease whose serum Lp(a) levels were > or = 15 mg/dL were randomly (but not blindly) assigned to treatment with niceritrol (n = 16) or to an untreated control group (n = 17). Parameters of lipid metabolism, excretion of urinary protein, and renal function were examined for 12 months. RESULTS: Changes in urinary protein excretion, as well as Lp(a) levels, differed significantly between the two groups. The mean (+/- SD) change from baseline in excretion of urinary protein was 0.77 +/- 1.23 g/d in the control group compared with -1.41 +/- 2.26 g/d in the niceritrol group at 12 months (P =0.003). Mean Lp(a) levels increased by 3 +/- 10 mg/dL in the control group compared with a decrease of 10 +/- 13 mg/dL in the niceritrol group at 12 months (P =0.004). The mean creatinine clearance declined by 10 +/- 12 mL/min in the control group, compared with 1 +/- 13 mL/min in the niceritrol group at 12 months (P =0.06). CONCLUSION: Lipid levels improved with niceritrol treatment, whereas the excretion of urinary protein decreased, perhaps slowing the rate of loss of renal function in chronic renal disease.

Chronic Disease↗

Effects of niceritrol on faecal and urinary phosphate excretion in normal rats.

BACKGROUND: Phosphate binders such as aluminium hydroxide and calcium carbonate have several side-effects so that they are not ideal for clinical use. Recently we reported that administration of niceritrol at 750 mg/day to patients with HDL hypocholesterolaemia undergoing dialysis decreased the serum phosphate concentration. To clarify the mechanism of reduction of the serum phosphate concentration by niceritrol in patients undergoing dialysis, the effects of niceritrol on faecal and urinary phosphate excretion were examined in normal rats. METHODS: Niceritrol suspension in 5% gum arabic was administered for 4 days in normal rats. Faeces and urine were collected in metabolic cage and analysed for phosphate content. RESULTS AND CONCLUSIONS: Faecal phosphate excretion significantly increased in the groups with administration of 100 and 500 mg/kg niceritrol, but not in the group with 20 mg/kg. On the other hand, urinary phosphate excretion was not significantly changed in the groups on 20-500 mg/kg. Retention of phosphate was significantly suppressed in the groups on 100 and 500 mg/kg. A increased faecal phosphate excretion by niceritrol is presumably the mechanism by which serum phosphate concentration is reduced in dialysis patients.

Animals↗

New combined therapy of niceritrol and probucol on heterozygous familial hypercholesterolemia.

Seventeen patients with heterozygous familial hypercholesterolemia were sequentially treated with: a low cholesterol, fat restricted diet; diet and probucol (500 mg/day); and diet, probucol and niceritrol (1500 mg/day). Concentrations of plasma cholesterol decreased from 348 + 49 mg/dl on diet alone to 304 + 32 mg/dl, to 256 + 30 mg/dl on diet and probucol, and fell to 212 + 41 mg/dl on the combined regimen with niceritrol. Concentrations of LDL-cholesterol declined 13% on diet, and 26% on diet and probucol; the subsequent addition of niceritrol resulted in a 42% fall from the baseline. Plasma concentrations of apolipoprotein B fell 37% on the combined regimen with niceritrol. As a result, normal levels of cholesterol (less than 230 mg) were achieved in thirteen subjects treated with this new combination therapy. Moreover, atherogenic index improved with the addition of niceritrol. These results suggest even a small dose of niceritrol affords opportunity to maintain normal lipid profile in heterozygous familial hypercholesterolemia when given in combination with probucol.

Adult↗

Effects of fluvastatin, a new inhibitor of HMG-CoA reductase, and niceritrol on serum lipids, lipoproteins and cholesterol ester transfer activity in primary hypercholesterolemic patients.

Effects of a combination therapy of fluvastatin, a new inhibitor of HMG-CoA reductase, and niceritrol on lipid metabolism were investigated measuring a wide range of parameters in 42 patients with primary hypercholesterolemia. After a wash-out period patients were randomly allocated to 1 of the 2 groups, the fluvastatin-preceding group (G-1) and the niceritrol-preceding group (G-2). In G-1 fluvastatin monotherapy (30 mg/day) significantly decreased total cholesterol (TC) and LDL-cholesterol (LDL-C). There was no significant change in HDL-cholesterol (HDL-C), triglyceride (TG) and lipoprotein (a) (Lp(a)). Further effect in HDL-C and TG was observed after the addition of niceritrol (750 mg/day). On the other hand, in G-2, while niceritrol alone (750 mg/day) produced no significant change in TC, LDL-C, HDL-C, TG and Lp(a), the addition of fluvastatin (30 mg/day) reduced TC and LDL-C levels significantly. Cholesterol ester transfer (CET) activity was significantly reduced by niceritrol monotherapy. After the concomitant use of the 2 drugs CET activity was significantly reduced only in G-2. No significant change in lipoprotein lipase and hepatic triglyceride lipase activities were observed in the 2 groups at either point in time. No serious adverse effect was observed in this study. It is concluded that fluvastatin is an effective drug for lowering LDL-cholesterol and causes no adverse alteration in lipid metabolism. Combination with niceritrol at a dose of 750 mg/day dose not appear to augment or attenuate beneficial effects of fluvastatin.

Anticholesteremic Agents↗

A nicotinic acid ester and experimental atherosclerosis: no significant effect of treatment with niceritrol (pentaerythritoltetranicotinate) on cholesterol in aorta of rabbits previously fed with cholesterol-enriched diet.

The influence of niceritrol on cholesterol in serum, liver and inner aorta of 115 rabbits was studied during a period where a cholesterol-enriched diet was given and during two succeeding periods after which cholesterol addition to the diet was discontinued. Niceritrol given together with cholesterol for 6 weeks reduced significantly the concentration of cholesterol in serum and liver, but not in the inner aorta. During 16 weeks decrease of serum cholesterol after discontinuation of cholesterol feeding no significant effect of niceritrol was observed on the decrease in serum and liver cholesterol or on the concentration of cholesterol in inner aorta. When serum cholesterol had normalized 16 weeks after discontinuation of cholesterol feeding, addition of niceritrol to the diet for the following 16 weeks did not significantly affect the concentration of cholesterol in liver and inner aorta. Animals in all groups were injected intravenously with an equal amount of [3H] cholesterol 3 weeks before discontinuing cholesterol feeding. Niceritrol did not significantly affect the amount of accumulated labelled cholesterol in inner aorta. The present results indicated that niceritrol had no significant effects on metabolism of cholesterol in inner aorta of the hypercholesterolemic and previously hypercholesterolemic rabbits.

Animals↗

The anti-platelet effect of niceritrol in patients with arteriosclerosis and the relationship of the lipid-lowering effect to the anti-platelet effect.

A hypolipidemic agent, pentaerythritol tetranicotinate (niceritrol) yields nicotinic acid upon hydrolysis in vivo, but niceritrol is hardly soluble in distilled water, so that the effects of nicotinic acid on platelet aggregation in vitro were studied. Nicotinic acid inhibited in vitro platelet aggregation induced by ADP, collagen and adrenaline. Twenty patients (61.4 +/- 2.4 years (mean +/- S.E.)) with ischemic heart disease, cerebral infarction, transient cerebral ischemic attack and hypercholesterolemia were given niceritrol orally at 750 mg per day for 8 weeks. Significant decreases in ADP-, collagen- and adrenaline-induced platelet aggregation were observed at 4 and 8 weeks after niceritrol treatment. There was a significant correlation between the rates of changes in platelet aggregation and those in plasma total cholesterol or plasma LDL-cholesterol before treatment and 8 weeks following treatment. The results indicate that niceritrol has inhibitory effects on platelet aggregation not only caused by its direct action on platelet but mediated by its secondary action due to decrease in blood lipids.

Adenosine Diphosphate↗

Pentaerythritol tetranicotinate (niceritrol) decreases plasma lipoprotein(a) levels.

We determined the most effective dosage of pentaerythritol tetranicotinate (niceritrol) to reduce plasma lipoprotein(a) [Lp(a)] levels in 44 Japanese patients (16 men and 28 women; mean age, 59.2 +/- 10.8 years) with hyperlipidemia types IIa, IIb, and IV. Patients received oral niceritrol at a dosage of 750 mg (3 tablets)/d for 8 weeks, followed by 1,500 mg (6 tablets)/d for 8 weeks. Administration of niceritrol 750 mg/d for 8 weeks decreased total and low-density lipoprotein (LDL) cholesterol in patients with type IIa hyperlipidemia and decreased triglycerides in patients with type IV hyperlipidemia, but did not affect Lp(a). However, niceritrol 1,500 mg/d for 8 weeks decreased Lp(a) in patients with initial Lp(a) levels greater than 30 mg/dL in addition to decreasing total and LDL cholesterol and triglycerides. These results suggest that the effective dosage of niceritrol to reduce the serum Lp(a) concentration in Japanese hyperlipidemic patients with a high Lp(a) level (> or = 30 mg/dL) is greater than 1,500 mg/d.

Aged↗

Dose-dependent effect of niceritrol on plasma lipoprotein-a.

Lipoprotein-a, Lp(a), is a variant form of low density lipoprotein (LDL) that contains apolipoprotein-a, whose structure has 75-85% homology with plasminogen. Elevated plasma levels of Lp(a) are considered to be one of the independent risk factors for cardiovascular disease. We studied the effects of niceritrol, a nicotinic acid derivative, on plasma Lp(a) levels in 72 patients with hypercholesterolaemia. The dose of niceritrol was increased every 4 weeks, from 750 to 1500 and then to 2250 mg day-1. The final dose was adjusted to obtain a plasma cholesterol level less than 5.69 mmol l-1. Niceritrol led to significant decreases in plasma levels of median Lp(a), from 16.1 mg dl-1 (interquartile intervals, 8.7 to 32.8) to 11.1 mg dl-1 (interquartile intervals, 6.6 to 21), the mean reduction rate being 17.6%. In the group with pretreatment Lp(a) levels of over 20 mg dl-1, Lp(a) decreased by 10.0, 22.0 and 31.8% at the doses of 750, 1500, and 2250 mg day-1, respectively. In the group with levels less than 20 mg dl-1, only the dose of 2250 mg day-1 was effective in the reduction of Lp(a). The results suggest that the reduction of Lp(a) was dependent on the dose of niceritrol and on the pretreatment level of Lp(a). In conclusion, niceritrol is effective, in a dose-dependent manner, for reducing Lp(a) levels.

Aged↗

The effects of different dose regimens of niceritrol of serum lipid concentrations in man.

The lipid-lowering effects of 3 g of the nicotinic acid derivative pentaerythritoltetranicotinate (niceritrol) given either 1 g X 3 or 1.5 g X 2 have been evaluated in 18 subjects with hyperlipoproteinaemia. When 1 g niceritrol was given three times daily, the serum TG concentration fell from 3.14 +/- 0.48 to 1.86 +/- 0.18 mmol/1 (41% reduction) and the serum cholesterol concentration from 282 +/- 9 to 227 +/- 11 mg/100 ml (20% reduction). The same daily dose, given 1.5 g twice, did not significantly lower the serum TG concentration, and serum cholesterol was lowered by only 12%. Niceritrol tablets prepared with a dissolution time of 60 or 90 min had identical lipid-lowering properties. Although patients may find it practical to take niceritrol only twice daily, such a dose regimen has considerably less effect on elevated serum lipids than a thrice-daily regimen.

Administration, Oral↗