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Analgesic effect of naproxen sodium, codeine, a naproxen-codeine combination and aspirin on the postoperative pain of oral surgery.

In a double-blind study, 198 outpatients with pain after oral surgery were randomly assigned to treatment with a single oral dose of naproxen sodium 550 mg, codeine sulfate 60 mg, a combination of naproxen sodium 550 mg with codeine sulfate 60 mg, aspirin 650 mg or placebo. Using a self-rating record, subjects rated their pain and its relief hourly for 12 hours after medication. Orthogonal contrasts for the four treatments making up the factorial component showed that the naproxen effect was significant for every measurement of total and peak analgesia; the codeine effect was significant for total and peak pain relief and patients' overall evaluation. The naproxen-codeine interaction was not statistically significant for any measure, which suggests that the analgesic effect of the combination represents the additive effect of its constituents. Based on pairwise comparisons, aspirin was significantly superior to placebo for most measures of effect, naproxen was significantly superior to both aspirin and codeine for all measures and the combination was significantly superior to naproxen for patients' overall evaluation. No more patients experienced adverse effects with aspirin or naproxen than with placebo, but significantly more patients receiving the codeine-containing treatments experienced adverse effects than those receiving aspirin and naproxen.

Adolescent

Macromolecular prodrugs. XV. Colon-targeted delivery--bioavailability of naproxen from orally administered dextran-naproxen ester prodrugs varying in molecular size in the pig.

The bioavailability of naproxen after oral administration of aqueous solutions of various dextran-naproxen ester prodrugs in pigs was determined. The dextran prodrugs employed ranged in molecular weight from 10,000 to 500,000. As calculated relative to an equivalent oral dose of parent naproxen, the absorption fractions of all the derivatives were close to 100%. Only small interindividual variation of naproxen bioavailability was observed. The naproxen plasma profiles for all the administered prodrugs exhibited a characteristic lag time of naproxen appearance in the blood (2-3 hr). Compared to administration of the prodrugs alone, coadministration of excess of the parent dextran further delayed the absorption of naproxen from the GI tract. The results of the present study demonstrate the potential of dextran prodrugs for colon site-specific delivery of drugs containing a carboxylic acid functional group.

Administration, Oral

Mechanism of action of a new anti-inflammatory agent, naproxen (II). Effects of naproxen on activities of mucopolysaccharase, acid protease and collagenolytic enzymes in inflamed tissues.

In order to elucidate the biochemical anti-inflammatory properties of naproxen, the effects of this compound on activities of mucopolysaccharase [beta-glucuronidase (beta-Gase) and lysozyme (LZ)], acid protease (APase) and collagenolytic enzyme (CL) in inflamed tissues were investigated by means of a proliferative inflammatory model in filter-paper-implanted rats. In the preventive test, naproxen strongly inhibited granuloma formation and exudate accumulation as did indomethacin and prednisolone. Although the inhibitory effects of naproxen on all these enzymes were quite evident, indomethacin failed to inhibit APase activity. Prednisolone did not significantly inhibit LZ and APase activities in granuloma. In the curative test, prednisolone caused a marked decrease in the weight of the granuloma already formed and in the volume of the exudate, but with naproxen and indomethacin there was only a slight decrease. Naproxen and indomethacin induced slight but significant inhibition of LZ and CL activities, while prednisolone showing a weak inhibition of CL activity only. From these results, it may be concluded that anti-inflammatory and anti-rheumatic effects of naproxen are partly attributable to its inhibitory actions on these lysosomal enzymes.

Adenosine Triphosphatases

Efficacy and tolerability of enteric-coated naproxen in the treatment of osteoarthritis and rheumatoid arthritis: a double-blind comparison with standard naproxen followed by an open-label trial.

One hundred and twenty-three patients with osteoarthritis (n = 50) or rheumatoid arthritis (n = 73) were enrolled in a 6-week, double-blind, randomized, controlled, parallel trial comparing enteric-coated naproxen with standard naproxen. Ninety-eight patients subsequently entered a 20-week, open-label trial of enteric-coated naproxen. The study demonstrated that naproxen in both its standard formulation and its new enteric-coated formulation is a highly effective form of therapy for osteoarthritis and rheumatoid arthritis. The tolerability profiles of the two formulations were similar in terms of the types of complaints reported. It is concluded that enteric-coated naproxen is an efficacious and well-tolerated formulation for the treatment of osteoarthritis and rheumatoid arthritis.

Adult

Cyclobenzaprine and naproxen versus naproxen alone in the treatment of acute low back pain and muscle spasm.

Two groups of 20 patients each, with mild to moderate acute low back pain with associated muscle spasm of ten days' duration or less, were treated with a combination of cyclobenzaprine and naproxen or naproxen alone in a randomized, 14-day open-label trial. Cyclobenzaprine was added to the naproxen regimen as an adjunct to rest and physical therapy for relief of muscle spasm associated with acute, painful, musculoskeletal conditions. The clinical characteristics of each study group, including the number of worker's compensation patients, were comparable. Combination therapy was associated with less objective muscle spasm and tenderness and greater motion of the lumbosacral spine (P less than 0.05). There were trends toward faster resolution of functional deficits and pain with combined therapy. Combination therapy was associated with more side effects, due primarily to drowsiness from the cyclobenzaprine. The results of this study demonstrated that patients with muscle spasm associated with acute low back strain benefited from the use of combination therapy consisting of a nonsteroidal anti-inflammatory agent (naproxen) and a muscle relaxant (cyclobenzaprine).

Adult

Low molecular weight proteins as carriers for renal drug targeting: naproxen-lysozyme.

Low molecular weight proteins (LMWPs), such as lysozyme, may be suitable carriers to target drugs to the kidney. In this study the antiinflammatory drug naproxen was covalently bound to lysozyme (1:1). Pharmacokinetics of the conjugate, naproxen-lysozyme (nap-LYSO), were compared to that of an equimolar mixture of uncoupled naproxen with lysozyme in freely moving rats. Similar plasma kinetics and organ distribution for native lysozyme and the drug conjugate were observed (Clp = 1.2 and 1.1 ml/min; t1/2,beta = 85 and 75 min, respectively). In case of the uncoupled naproxen-lysozyme mixture, a monoexponential plasma disappearance of naproxen with a t1/2 of 2.8 hr was observed, coinciding with urinary excretion of naproxen metabolites (mainly 6-desmethylnaproxen sulfate; 6-DMN-S) between 2 and 8 hr after injection. Urinary recovery of total metabolites was 59% of the naproxen dose. In contrast, after injection of covalently bound naproxen, plasma levels of the parent drug were below the detection level, whereas naproxen was recovered as 6-DMN-S in urine over a period from 4 to 30 hr. However, only 8% of the administered dose was recovered as 6-DMN-S in urine, whereas 50% of the dose was recovered as naproxen metabolites in feces. Incubation experiments using purified renal tubular lysosomal lysates revealed that naproxen-lysozyme degradation ultimately results in a stable naproxen amino acid catabolite, naproxen-lysine (nap-lys). Hepatic uptake and biliary excretion of this catabolyte were demonstrated in isolated perfused rat livers. Further, an equipotent pharmacological activity relative to parent naproxen was observed.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Stereoselective (S)- and (R)-naproxen glucuronosyl transferases of rat liver.

Stereoselective glucuronidation of naproxen, one of the 2-arylpropionic acids that are widely used as anti-inflammatory drugs, was investigated in chromatofocusing fractions of solubilized liver microsomes from 3-methylcholanthrene- (MC) and phenobarbital- (PB) treated rats. On chromatofocusing of solubilized microsomes of PB-treated rats, two naproxen glucuronosyltransferase (GT) fractions were separated. The fraction eluting at pH 8.7 preferentially conjugated (S)-naproxen (S/R ratio = 1.6) and the fraction eluting at pH 7.8 mostly conjugated (R)-naproxen (S/R ratio = 0.7). Chromatofocusing of solubilized microsomes from MC-treated rats also resulted in the separation of two naproxen GT fractions, eluting at pH 9.4 (S/R ratio 0.2) and at pH 8.7 (S/R ratio 0.8). These two fractions coincided with the elution of known MC-inducible GT activities assigned to a GT isozyme variously termed 4-nitrophenol GT or GT-I. Interestingly, kidney microsomes, known to contain a high constitutive expression of GT-I, preferentially glucuronidated (R)-naproxen (S/R ratio 0.2). The S/R ratio of 0.8, observed with the pI 8.7 fraction of MC-treated rat liver, may be explained by the presence of a mixture of naproxen GTs, consisting of (R)-naproxen GT (S/R ratio 0.2) and of (S)-naproxen GT (S/R ratio 1.6). The results suggest that naproxen is conjugated by at least 3 GT isozymes in rat liver; these have been operationally designated (S)-naproxen GTPB (S/R ratio 1.6), (R)-naproxen GTPB (S/R ratio 0.7), and (R)-naproxen GTMC (S/R ratio 0.2). The latter isozyme is probably identical to the previously characterized MC-inducible GT-I. Thus, (S)- and (R)-naproxen represent useful substrates to distinguish different GT isozymes.

Adult

Renal disposition and effects of naproxen and its l-enantiomer in the isolated perfused rat kidney.

Renal handling, metabolism and effects on kidney function of naproxen and its l-enantiomer were examined in the isolated perfused rat kidney (IPK). Urinary excretion rate of naproxen was much lower than the filtration rate, indicating extensive reabsorption. Naproxen is accumulated considerably in the IPK. This accumulation is concentration-dependent and is probably the result of active secretion of naproxen. Considerable amounts of desmethyl-naproxen were formed in the IPK. The kinetic behavior of the l-enantiomer of naproxen did not differ from naproxen. Addition of 37.5 to 3750 micrograms naproxen caused a decrease in urinary flow, glomerular filtration rate and fractional excretion of sodium, chloride, potassium, magnesium and calcium. The presence of prostaglandin E2 in the perfusate fully opposed the effects of naproxen on kidney function. Addition of 375 micrograms l-enantiomer of naproxen did not influence kidney function. Addition of very high doses (1 x 10(5) micrograms) of naproxen and its l-enantiomer to the IPK caused diuresis and increased the fractional excretion of sodium, chloride, potassium, glucose and calcium. We conclude that the pharmacokinetic behavior and the metabolism of naproxen in the IPK is probably not stereoselective; that relatively low doses of naproxen exert a specific, stereoselective effect on kidney function caused by inhibition of the prostaglandin E2 synthesis and that high doses of naproxen exert a nonstereoselective effect on kidney function.

Animals

Determination of naproxen and its metabolite O-desmethylnaproxen with their acyl glucuronides in human plasma and urine by means of direct gradient high-performance liquid chromatography.

Naproxen is metabolized in humans by O-demethylation, and by acyl glucuronidation to the 1-O-glucuronide. Naproxen, its metabolite and the conjugates can be measured directly by gradient high-performance liquid chromatographic analysis without enzymic deglucuronidation. The glucuronide conjugates were isolated by preparative chromatography from human urine samples. Mild acidic hydrolysis of one urinary conjugate resulted in naproxen. This conjugate was also formed by alkaline isomerization of isolated naproxen acyl glucuronide, indicating that the structure of this urinary conjugate must have been naproxen isoglucuronide (4-O-glucuronide). Mild acidic hydrolysis of another urinary conjugate resulted in O-desmethylnaproxen. This conjugate was also formed by alkaline isomerisation of isolated O-desmethylnaproxen acyl glucuronide, indicating that the structure of this urinary conjugate must have been O-desmethylnaproxen isoglucuronide (4-O-glucuronide). Calibriation curves were constructed by enzymic deconjugation of samples containing different concentrations of isolated naproxen acyl glucuronide, O-desmethylnaproxen acyl glucuronide, and the isoglucuronides of naproxen and O-desmethylnaproxen by mild acidic hydrolysis. The limit of quantitation of naproxen in plasma is 1.5 microgram/ml. The limits of quantitation in urine are: naproxen, O-desmethylnaproxen, naproxen acyl glucuronide and O-desmethylnaproxen acyl glucuronide, 1 microgram/ml; the isoglucuronide of naproxen and O-desmethylnaproxen, 1.5 microgram/ml. A pharmacokinetic profile of naproxen is shown, and some preliminary pharmacokinetic parameters of naproxen obtained from two human volunteers are given.

Acylation

Effects of sulindac and naproxen on prostaglandin excretion in patients with impaired renal function and rheumatoid arthritis.

PURPOSE: The purpose of the current investigation was to study the influence of sulindac and naproxen on renal function and urinary excretion of the stable hydration product of prostacyclin, 6-keto-PGF1 alpha, in patients with arthritis and impaired renal function. PATIENTS AND METHODS: In a placebo-controlled, double-blind, cross-over design, the effects of 7 days of oral sulindac 200 mg twice a day were compared with naproxen 500 mg in the morning and 250 mg in the evening in 10 patients with polyarthritis and stable impaired renal function. Inulin and para-amino-hippurate sodium were used to calculate glomerular filtration rate and renal plasma flow. The excretion rate of 6-keto-PGF1 alpha was measured in urine collected overnight. After patients ingested drugs in the morning, urine was collected in fractions by spontaneous voiding. Venous blood samples were drawn repeatedly for assay of electrolytes, creatinine, proteins, hormones, and drugs. Grip strength and Ritchie articular index were recorded as indicators of symptomatic antiarthritic effectiveness. RESULTS: Naproxen decreased urine levels of 6-keto PGF1 alpha by 59% (p less than 0.01). Sulindac had no effect on renal prostaglandin excretion. Naproxen reduced the glomerular filtration rate and renal plasma flow by 18% (p less than 0.05) and 13% (p less than 0.05), respectively, while no significant change was observed during the sulindac treatment periods. Serum levels of creatinine and complement factor D were unaffected by either drug. Plasma renin activity decreased during naproxen and sulindac treatments by 38% (p less than 0.05) and 22% (p less than 0.05). No significant change in plasma aldosterone was observed during the two drug treatments, but urinary aldosterone declined significantly (p less than 0.05) by 34% with naproxen. Albuminuria decreased (p less than 0.05) during both naproxen (41%) and sulindac treatment (72%), while the albumin/creatinine clearance ratio decreased by 59% (p less than 0.05) only during treatment with sulindac. N-acetyl-beta-D-glucosaminidase in urine was not changed by either drug. Sulindac and naproxen had no discernible effects on base excess, excretion of water, sodium, or potassium, or on osmolal clearance. However, serum potassium increased slightly but significantly (p less than 0.01) during treatment with naproxen. Sulindac sulfide, the active metabolite of sulindac, could not be traced in the urine from any of the patients. Mean arterial blood pressure declined significantly (p less than 0.05) during sulindac treatment but did not change during treatment with naproxen. Both drugs produced equal clinical improvement as measured by grip strength and the Ritchie articular index. CONCLUSION: The results suggest that when sulindac and naproxen are given in clinical equipotent doses to patients with impaired renal function, sulindac does not affect renal prostaglandin synthesis or renal function, whereas naproxen induces suppression of renal prostaglandin synthesis and a further decrease in renal function.

6-Ketoprostaglandin F1 alpha

Long-term effect of naproxen on cancellous bone in ovariectomized rats.

Previous work shows that at 42 d post-ovariectomy (OX) in aged rats, naproxen, a nonsteriodal anti-inflammatory drug (NSAID) prevents cancellous bone loss. The purpose of this study was to evaluate the effects of naproxen on cancellous bone of aged OX and sham-OX rats, at 90 days post-OX. Six-month-old Sprague-Dawley retired breeder female rats underwent either sham-OX (n = 49) or OX (n = 65). Sham-OX rats were randomized into five groups and OX rats into six groups. The first five groups of both were given ad lib access to water containing 0, 4, 10, 25, or 62.5 mg/l of naproxen sodium. The sixth group of OX rats was given water containing 156.25 mg naproxen sodium/l. After ninety days, the rats were killed following in vivo dual calcein labeling. Terminal serum naproxen was measured by HPLC. In the proximal tibial metaphysis, trabecular bone volume, trabecular thickness, trabecular number, mineralizing surface (double label), osteoclast surface, and bone formation rate were measured. Sham-OX and OX rats were compared by t-test of means. Kruskal-Wallis tests and, as necessary, Dunnett's t-tests, were applied separately to the groups of Sham-OX and OX rats. Dose-related serum levels of naproxen up to 9.4 mcg/ml were achieved in the 156.25 mg/ml group. OX rats had significantly lower bone volume, trabecular thickness, and trabecular number than Sham-OX groups (p less than .001). OX rats had significantly higher mineralizing surface, formation rate, and osteoclast surface than sham-OX rats (p less than .001). No differences related to naproxen treatment existed in sham-OX rats. Naproxen treatment producing a serum level of 9.4 mcg/ml reduced bone volume in OX rats consuming water with 156.25 mg/l (p less than .05). At 90 days post-OX, naproxen, at serum levels of 9.4 mcg/ml or less, did not diminish estrogen-depletion cancellous bone loss in rats. Naproxen lacks lasting ability to halt estrogen-depletion bone loss in aged OX rats.

Animals

Naproxen up to date: a review of its pharmacological properties and therapeutic efficacy and use in rheumatic diseases and pain states.

Naproxen is a propionic acid derivative with analgesic and anti-inflammatory activity which has been widely used in the treatment of rheumatic diseases. Naproxen has been well studied in rheumatoid arthritis and is as effective as aspirin but better tolerated, thus enabling more patients to continue with treatment. For this reason some clinicians now prefer to try propionic acid derivatives, such as naproxen, before aspirin in arthritic patients. In comparative studies with other non-steroidal anti-inflammatory drugs, such as indomethacin, ibuprofen, fenoprofen and others, all drugs were usually of similar overall efficacy although naproxen was sometimes preferred: but as with other non-steroidal anti-inflammatory agents, not all patients will respond to naproxen and in such cases other agents should also be tried until the most satisfactory drug is found for each patient. Naproxen is also effective in degenerative joint diseases of the hip and knee, although further well designed studies are needed to more clearly define its relative place compared with newer drugs such as diclofenac or diflunisal. Results of other comparative studies have shown that naproxen is a suitable alternative to phenylbutazone or indomethacin in ankylosing spondylitis and to aspirin in juvenile rheumatoid arthritis. Naproxen appears to be effective in reducing pain and swelling in acute gout and is an effective analgesic in patients with pain following surgery or trauma and in pain of dysmenorrhoea. Naproxen has generally been better tolerated than aspirin or indomethacin at the dosages used. Because of its relatively long plasma half-life, naproxen can with convenieice be given twice daily, and there is some evidence that once daily dosage is as effective in rheumatoid arthritis.

Animals