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A double-blind study of diflunisal and codeine compared with codeine or diflunisal alone in postoperative pain.

A double-blind, randomized, parallel-group study compared the analgesic efficacy of a single oral dose of 500 mg diflunisal, 60 mg codeine, 500 mg diflunisal plus 60 mg codeine given as separate agents, and placebo in 161 patients with moderate to severe postoperative pain. Standard subjective measures were used to evaluate analgesia. Eight-hour sum of pain intensity differences and total pain relief scores for all active treatments were significantly better than were those for placebo (p less than 0.05). Diflunisal plus codeine performed the best followed by diflunisal, codeine, and placebo. Diflunisal plus codeine was better than placebo from 1 1/2 to 8 hours (p less than 0.01), better than codeine from 1 1/2 to 6 hours (p less than 0.05), and better than diflunisal alone from 1/2 to 1 1/2 hours (p less than 0.05) for most measures of analgesia. Factorial analysis demonstrated a significant early codeine effect and a significant diflunisal effect throughout. No significant treatment group differences were observed regarding adverse effects. Our data demonstrate that diflunisal plus codeine is generally well tolerated and provides analgesia superior to that of diflunisal or codeine alone in the treatment of moderate to severe postoperative pain.

Adult↗

Diflunisal in the treatment of osteoarthrosis: a double-blind study comparing diflunisal with ibuprofen.

A double-blind trial was carried out in 37 patients with osteoarthrosis to compare the efficacy and tolerance of 250 mg diflunisal twice daily with that of 400 mg ibuprofen 3-times daily over an 8-week period. Rating scale assessments were made, at the end of a preceding 1-week, wash-out period on placebo and at regular fixed intervals, of weight-bearing pain, night pain, a specific functional activity, and of the duration of inactivity stiffness. Patients' and physician's overall evaluations of response, taking side-effects into account, were made on completion of the study. The data collected indicated that in 30 patients completing the trial both treatments produced similar overall results and, with the exception of weight-bearing pain which appeared to be improved more in the ibuprofen group, diflunisal provided equal therapeutic benefit with fewer side-effects.

Adult↗

Studies on the reactivity of acyl glucuronides--VIII. Generation of an antiserum for the detection of diflunisal-modified proteins in diflunisal-dosed rats.

Acyl glucuronide metabolites of carboxylic drugs such as the salicylate derivative diflunisal (DF) have been shown to react with proteins to produce covalent adducts. To aid in the study of the formation and distribution of these adducts in both humans and rats, we raised an antiserum against human serum albumin modified by covalent attachment of DF via an amide bond, using a carbodiimide reagent. This antiserum had wide reactivity, reacting with all types of DF-modified proteins tested and with free DF (albeit at a lower affinity). It did not cross-react with other salicylates or other non-steroidal anti-inflammatory drugs. The antiserum has been used in immunoblotting to detect proteins covalently modified by DF in the plasma and livers of rats treated with the drug for 7 days. Although some cross-reactivity was apparent on the blots, a series of DF-modified proteins was found in cytosolic, mitochondrial and mixed membrane fractions of hepatocytes, with molecular weights ranging from 28 to 130 kDa.

Animals↗

Hepatobiliary transport of diflunisal conjugates and taurocholate by the perfused rat liver: the effect of chronic exposure of rats to diflunisal.

Acyl glucuronides are reactive electrophilic metabolites of carboxylate drugs which can form covalent adducts with endogenous macromolecules such as serum albumin and hepatic proteins. Such adducts have been suggested as initiating factors in certain immune and toxic responses to acidic drugs. In the present study, pretreatment of rats with high daily doses (50 mg/kg orally) of the non-steroidal anti-inflammatory drug (NSAID) diflunisal (DF) for 35 days, followed by perfusion of the isolated liver with 3 mg DF for 3 hr, resulted in appreciable concentrations of covalent adducts of DF with hepatic tissue (3.68 microg DF/g liver). Immunoblotting using a rabbit polyclonal DF antiserum showed the major DF-modified bands at about 110, 140 and 200 kDa. A vehicle-pretreated control group achieved adduct concentrations of only 0.37 microg DF/g liver, with the 200 kDa band not detectable in immunoblots. Elimination of DF from perfusate of the isolated perfused rat liver (IPRL) preparation was the same (t1/2 about 3.4 hr) in both DF- and vehicle-pretreated groups. Appearance of the sulfate (DS) conjugate, the major metabolite in perfusate, was also similar. However, higher concentrations of the acyl glucuronide (DAG) and phenolic glucuronide (DPG) conjugates were found in perfusate at later times, though a statistically significant difference in area under the concentration-time curve was found only in the case of DAG. At 3 hr, recoveries of dose as DAG and DPG were significantly higher in perfusate, but not in bile. No significant differences in uptake and biliary excretion of taurocholate were found between the two groups. The finding of higher perfusate concentrations of DAG and DPG could signal a minor compromise to biliary excretion processes for the glucuronides, though whether such a result is simply coincident with or attributable to DAG-derived covalent DF-protein adducts in liver remains indeterminate.

Animals↗

Disposition and covalent binding of diflunisal and diflunisal acyl glucuronide in the isolated perfused rat liver.

Acyl glucuronides are intrinsically reactive metabolites of carboxylate drugs, capable of undergoing hydrolysis, intramolecular rearrangement (isomerization via acyl migration), and intermolecular transacylation reactions. Transacylation with nucleophilic groups located on protein molecules leads to covalent drug-protein adducts. Protein adducts can also form from the rearrangement isomers via a glycation mechanism. In this study, the isolated perfused rat liver preparation was used to separately trace the dispositions of the nonsteroidal anti-inflammatory drug diflunisal (DF), its reactive acyl glucuronide metabolite (DAG), and a mixture of DAG rearrangement isomers (iso-DAG), each administered at 30-microg DF equivalents/ml perfusate (four recirculating perfusions each group). After administration of DF, the drug was eliminated in a log linear manner over 3 hr, with apparent elimination half-life (t1/2) of 2.6 +/- 0.4 hr. The sulfate conjugate (DS), excreted almost exclusively into perfusate, accounted for 14.2% of the dose, with the phenolic glucuronide (DPG) and DAG (11.1 and 7.9% of dose, respectively) excreted primarily in bile. Only a small portion (2.3%) of the dose was recovered as novel "diglucuronides" (D-2G, arising from phenolic glucuronidation of iso-DAG), excreted exclusively in bile. Covalent DF-protein adducts were found in both perfusate (0.98%) and liver (0. 14%). After administration of DAG, rapid hydrolysis occurred (initial DAG t1/2 17.3 +/- 4.2 min). At 3 hr, recoveries (in comparison to DF-dosed perfusions) were similar for DF (51.7%) and DAG (8.3%), significantly decreased for DS (10.6%) and DPG (6.4%), and significantly increased for iso-DAG (0.8%), D-2G (9.1%), and covalent adducts in perfusate (1.49%) and liver (0.30%). After administration of iso-DAG, elimination from perfusate was slower (t1/2 55 +/- 15 min), and hydrolysis to DF was modest by comparison with DAG-dosed perfusions. Recoveries as iso-DAG and D-2G in bile were greatly enhanced (8.2 and 36.4%, respectively). Adduct formation was higher in liver (0.76% of dose) but not in perfusate (1.03%). Immunoblots of liver homogenates revealed drug-modified proteins at ca. 110 and 120 kDa. The results show that (a) DAG undergoes avid systemic deconjugation-conjugation cycling and isomerization to iso-DAG; (b) iso-DAG is more resistant to hydrolysis, is readily taken up by hepatocytes and undergoes novel metabolism (phenolic glucuronidation); and (c) the glycation pathway (i.e. using iso-DAG as substrate) plays a major role in formation of covalent DF-protein adducts in liver.

Animals↗

Influence of renal failure, rheumatoid arthritis and old age on the pharmacokinetics of diflunisal.

The single-dose plasma kinetics of diflunisal was studied in healthy young and old subjects, in patients with rheumatoid arthritis, and in patients with renal failure. The plasma and urine kinetics of the glucuronidated metabolites of diflunisal were studied in the healthy elderly subjects and in the patients with renal failure. In addition, the multiple-dose plasma kinetics of diflunisal was assessed in healthy volunteers and in patients with rheumatoid arthritis. After a single dose of diflunisal the terminal plasma half-life, mean residence time and apparent volume of distribution were higher in elderly subjects than in young adults. No difference was observed in any pharmacokinetic parameter between age-matched healthy subjects and patients with rheumatoid arthritis. The elimination half-life of unchanged diflunisal was correlated with the creatinine clearance (r = +0.89) and its apparent total body clearance exhibited linear dependence on creatinine clearance (r = +0.78). In patients with renal failure, the terminal plasma half-life and mean residence time of diflunisal were prolonged. The renal and apparent total body clearances were lower, the mean apparent volume of distribution was higher and the mean area under the concentration-time curve extrapolated to infinity (AUC) was greater in the renal failure patients than in controls. The plasma concentration of the glucuronidated metabolites rapidly rose to levels above those of unchanged drug in renal patients, whereas they were lower than those of unchanged diflunisal in controls. The AUC (0-96 h) of diflunisal glucuronides in the patients was four-times that in controls, and the terminal elimination half-life of the glucuronides was prolonged in them. The renal excretion and clearance of diflunisal glucuronides were reduced when renal function was impaired. After multiple dosing, the pre-dose steady-state plasma-concentration increased with decreasing creatinine clearance (r = -0.79). When the plasma concentration exceeded 200 mumols.l-1, the elimination half-life was doubled, due to partial saturation of diflunisal conjugation. This finding suggests that lower doses could be used in long-term treatment. Thus, old age and arthritic disease appear to have little influence on the kinetics of diflunisal in the absence of renal functional impairment. Ordinary doses can be given for short term treatment of elderly patients with or without RA. In patients with renal failure, however, reduced doses of diflunisal are recommended.

Adolescent↗

Evaluation of the teratogenicity and pharmacokinetics of diflunisal in cynomolgus monkeys.

This study examined the pharmacokinetics and potential teratogenicity of the nonsteroidal antiinflammatory drug, diflunisal, in cynomolgus monkeys. Pregnant cynomolgus monkeys were administered 0.5% methyl cellulose, 20 mg/kg/day diflunisal, or 80 mg/kg/day diflunisal on Days 25 to 48 of gestation. There was no evidence of maternal toxicity, increased abortion rate, fetal growth retardation, or malformation. These data demonstrate that diflunisal is not teratogenic in cynomolgus monkeys over a dosage range of 20 to 80 mg/kg/day. Peak plasma levels of diflunisal were found 1 hr after oral administration of [14C]diflunisal at a dosage of 60 mg/kg and declined to low levels by 24 hr. The plasma elimination half-life was calculated to be 10.2 hr over the period of 1 to 8 hr postadministration. Intact diflunisal accounted for 96.4% of total plasma radioactivity at 0.5 hr and declined to a value of 74% at 8 hr. Plasma protein binding averaged greater than 99% over a concentration range of 62.5 to 250 micrograms/ml. Urinary excretion of diflunisal and metabolites averaged 66.5% of the dosage over the first 4 days postadministration, compared with 0.8% in the feces. The majority of activity represented conjugates of diflunisal. Embryo concentrations of diflunisal on Days 35 to 37 of gestation were 0.7 and 1.1% of maternal plasma level at 4 hr postadministration of 20 or 60 mg/kg, respectively.

Abnormalities, Drug-Induced↗

Orally administered diflunisal stabilizes transthyretin against dissociation required for amyloidogenesis.

OBJECTIVE: Rate-limiting transthyretin (TTR) tetramer dissociation and monomer misfolding enable misassembly into numerous aggregate morphologies including amyloid, a process genetically linked to and thought to cause amyloid pathology. T119M TTR trans-suppressor subunit inclusion into tetramers otherwise composed of disease-associated subunits ameliorates human amyloidosis by increasing the tetramer dissociation barrier. Diflunisal binding to the 99% unoccupied L-thyroxine binding sites in TTR also increases the tetramer dissociation barrier; hence, we investigated the feasibility of using diflunisal for the treatment of human TTR amyloidosis using healthy volunteers. METHODS: Diflunisal (125, 250 or 500 mg bid) was orally administered to groups of 10 subjects for 7 days to evaluate serum diflunisal concentration, diflunisal binding stoichiometry to TTR, and the extent of diflunisal imposed TTR kinetic stabilization against urea- and acid-mediated TTR denaturation in human serum. The rates of urea-mediated tetramer dissociation and acid-mediated aggregation as a function of diflunisal concentration were also evaluated in vitro, utilizing physiologically relevant concentrations identified by the above experiments. RESULTS: In the 250 mg bid group, 12 h after the 13th oral dose, the diflunisal serum concentration of 146 +/- 39 microM was sufficient to afford a TTR binding stoichiometry exceeding 0.95 +/- 0.13 ( approximately 1.75 corrected). Diflunisal binding to TTR at this dose slowed urea-mediated dissociation and acid-mediated TTR aggregation at least, threefold (p < 0.05) in serum and in vitro, consistent with kinetic stabilization of TTR. CONCLUSION: Diflunisal-mediated kinetic stabilization of TTR should ameliorate TTR amyloidoses, provided that the nonsteroidal anti-inflammatory drug liabilities can be managed clinically.

Adult↗

In vitro drug interaction between diflunisal and indomethacin via glucuronidation in humans.

It was reported that the plasma concentration of indomethacin was increased with concomitant oral dosages of diflunisal in humans. Both indomethacin and diflunisal are glucuronidated in humans. The effects of diflunisal on the indomethacin glucuronidation were thus investigated in vitro using human liver microsomes (HLM) and human intestine microsomes (HIM) in order to assess the drug-drug interaction. The glucuronidation of indomethacin in HLM showed atypical kinetics with Km and Ksi values of 210 and 89.5 microM, respectively, while HIM exhibited Michaelis-Menten kinetics with a Km value of 17.4 microM. Diflunisal inhibited the indomethacin glucuronidation in HLM with IC50 values ranging from 100 to 231 microM. In HIM, inhibition of the indomethacin glucuronidation by diflunisal was more potent with IC50 values of 15.2-48.7 microM. When the clinical dose of diflunisal (250 mg b.i.d.) is taken into consideration, it is expected that the diflunisal concentration in the intestine would be higher than the IC50 values for indomethacin glucuronidation in the intestine. These findings suggest that the clinical drug-drug interaction between diflunisal and indomethacin may be at least partly attributable to the inhibition of indomethacin glucuronidation by diflunisal in the intestine.

Algorithms↗

Diflunisal in rheumatoid arthritis.

In an eight-week double-blind study comparing the new long-acting aspirin derivative, diflunisal, in doses up to 1 g/day with aspirin in doses up to 4 g/day in 16 patients with classical or definite rheumatoid arthritis, diflunisal was more effective in reducing the total articular index (Ritchie) and erythrocyte sedimentation rate and in increasing grip strength. Diflunisal had an earlier effect on erythrocyte sedimentation rate than antiinflammatory doses of aspirin. Patients on diflunisal experienced fewer side effects than patients on aspirin. Ten patients with rheumatoid arthritis who previously participated in the eight-week study comparing diflunisal to aspirin (five patients from each group) were continued on 1 g diflunisal per day for six months. The efficacy of diflunisal therapy persisted during a six-month period, and there were no side effects. The switchover from 4g aspirin to 1g diflunisal a day was accompanied by further improvement in the Ritchie total score, erythrocyte sedimentation rate, and grip strength and by disappearance of side effects. Diflunisal 1 g/day proved to be an efficient and well-tolerated drug in patients with rheumatoid arthritis.

Aged↗

Hepatic disposition and metabolite kinetics of a homologous series of diflunisal esters.

The hepatic disposition and metabolite kinetics of a homologous series of diflunisal O-acyl esters (acetyl, butanoyl, pentanoyl, and hexanoyl) were determined using a single-pass perfused in situ rat liver preparation. The experiments were conducted using 2% BSA Krebs-Henseleit buffer (pH 7.4), and perfusions were performed at 30 mL/min in each liver. O-Acyl esters of diflunisal and pregenerated diflunisal were injected separately into the portal vein. The venous outflow samples containing the esters and metabolite diflunisal were analyzed by high performance liquid chromatography (HPLC). The normalized outflow concentration-time profiles for each parent ester and the formed metabolite, diflunisal, were analyzed using statistical moments analysis and the two-compartment dispersion model. Data (presented as mean +/- standard error for triplicate experiments) was compared using ANOVA repeated measures, significance level P < 0.05. The hepatic availability (AUC'), the fraction of the injected dose recovered in the outflowing perfusate, for O-acetyldiflunisal (C2D = 0.21 +/- 0.03) was significantly lower than the other esters (0.34-0.38). However, RN/fu, the removal efficiency number RN divided by the unbound fraction in perfusate fu, which represents the removal efficiency of unbound ester by the liver, was significantly higher for the most lipophilic ester (O-hexanoyldiflunisal, C6D = 16.50 +/- 0.22) compared to the other members of the series (9.57 to 11.17). The most lipophilic ester, C6D, had the largest permeability surface area (PS) product (94.52 +/- 38.20 mL min-1 g-1 liver) and tissue distribution value VT (35. 62 +/- 11.33 mL g-1 liver) in this series. The MTT of these O-acyl esters of diflunisal were not significantly different from one another. However, the metabolite diflunisal MTTs tended to increase with the increase in the parent ester lipophilicity (11.41 +/- 2.19 s for C2D to 38.63 +/- 9.81 s for C6D). The two-compartment dispersion model equations adequately described the outflow profiles for the parent esters and the metabolite diflunisal formed from the O-acyl esters of diflunisal in the liver.

Algorithms↗

Identification of a hydroxy metabolite of diflunisal in rat and human urine.

1. A new metabolite of diflunisal, a hydroxy derivative, has been identified in rat and human urine following administration of diflunisal. 2. This hydroxy metabolite of diflunisal is excreted in urine of both species as a polar conjugate, most likely a sulphate. 3. Attempts to isolate the polar conjugate in pure form were unsuccessful due to its rapid hydrolysis in the presence of acid, and organic solvents such as diethyl ether. Its breakdown product, however, was more stable and was isolated and purified by semi-preparative h.p.l.c. Unequivocal identification as 3-hydroxy-diflunisal (i.e. hydroxylation in position 3 of the salicylic acid ring) was accomplished by means of FAB-mass spectrometry and n.m.r. spectroscopy. 4. The contribution of this oxidative metabolic pathway to the overall elimination scheme of diflunisal is more important in rat than in man. Gunn rats excrete more of the hydroxy diflunisal conjugate in urine (20-30% of a 50 mg/kg i.v. dose of diflunisal) than Wistar rats. In healthy humans, hydroxylation of diflunisal contributes only to a small extent to the overall biotransformation of diflunisal.

Animals↗

Possible mechanisms for reduced plasma clearance of diflunisal in rat experimental renal failure.

To provide insight into the reported reduction in the plasma clearance of diflunisal in human renal failure, this investigation evaluated several possible mechanisms for this effect in experimental renal failure. Rats with renal failure, induced by uranyl nitrate or by ureteral ligation, had both a lower plasma clearance and an increased apparent volume of distribution, a pattern resembling that seen in human renal failure. Steady-state diflunisal concentration and unbound fraction were determined in studies during a constant infusion of diflunisal to establish the relationships of concentration, protein binding and intrinsic clearance. The infusion studies revealed that the intrinsic clearance of diflunisal, i.e., the ability of enzyme system(s) to metabolize the drug, was decreased in uremia. Also, plasma protein binding of diflunisal was decreased, which may explain the increase in apparent volume of distribution in uremic rats. The decreased intrinsic clearance of diflunisal in uremic rats may be due partly to saturation of biotransformation process(es) by increasing unbound concentration as a consequence of impairment of plasma protein binding of diflunisal, and partly due to the diminished enzyme activity of glucuronidation by renal failure. The lack of an effect of the esterase inhibitor phenylmethylsulfonyl fluoride on the intrinsic clearance of diflunisal in uremic rats suggested that the reduced intrinsic clearance of diflunisal was not attributable to the systemic enzymatic hydrolysis of the ester glucuronide.

Animals↗

High-performance liquid chromatographic method for the simultaneous quantitation of diflunisal and its glucuronide and sulfate conjugates in human urine.

A direct high-performance liquid chromatographic (HPLC) assay was developed to simultaneously quantitate diflunisal and its three known metabolites (i.e., the phenolic and acyl glucuronides and the sulfate conjugate) in human urine. Chromatographically pure standards of the diflunisal conjugates were isolated from urine of volunteers following ingestion of multiple doses of diflunisal (500 mg twice daily). Diflunisal, its three conjugates, and an internal standard (naproxen) were separated on a reversed-phase column using gradient elution. The column eluate was monitored fluorometrically (excitation: 258 nm; emission: 428 nm). Urine samples were diluted with phosphate buffer (pH 5.75) and injected onto the column. The limit of detection was approximately 1 microgram/mL for each conjugate and 0.1 microgram/mL for diflunisal. Due to the presence in most urine samples of significant concentrations of rearrangement products of the biosynthetic 1-O-acyl glucuronide of diflunisal, the acyl glucuronide could not be reliably quantitated by direct injection of diluted urine samples. Instead, diflunisal acyl glucuronide was quantitated indirectly following alkaline hydrolysis of the urine samples. The method has been successfully used to investigate the dose-dependent glucuronidation and sulfation of diflunisal in humans.

Chromatography, High Pressure Liquid↗

Effect of probenecid on the formation and elimination kinetics of the sulphate and glucuronide conjugates of diflunisal.

The effect of probenecid on the pharmacokinetics of diflunisal and its glucuronide and sulphate conjugates was studied in 8 healthy volunteers. Diflunisal 250 mg b.d. was administered p.o. for 15 days and its steady state pharmacokinetics was evaluated on Day 16 after the last dose (control phase). Probenecid 500 mg b.d. was co-administered throughout the entire study period in the treatment phase of the study. The steady state plasma concentration of diflunisal was significantly higher during the probenecid treatment phase as compared to the control phase (104.0 vs. 63.1 micrograms.ml-1). This was the result of a significant decrease in the plasma clearance of diflunisal from 5.8 (control) to 3.4 ml.min-1 (probenecid co-administration). The metabolite formation clearances of both glucuronides were significantly decreased by probenecid, -45% and -54% for the phenolic and acyl glucuronide, respectively. The metabolite formation clearance of the sulphate conjugate was not affected by probenecid coadministration. Steady state plasma concentrations of the sulphate and glucuronide conjugates of diflunisal were 2.5- to 3.1-fold higher during probenecid co-administration, due to a significant reduction in the renal clearance of the three diflunisal conjugates. Probenecid also reduced the plasma protein binding of diflunisal, but only to a minor extent; the unbound plasma fraction of diflunisal at steady state averaged between 5 and 30% higher during probenecid co-administration.

Adolescent↗

Comparison of prophylactic and on-demand diflunisal for pain management of patients having one-visit endodontic therapy.

To determine whether the posttreatment prophylactic use of diflunisal (Dolobid 500) would be more effective than the on-demand use of diflunisal in reducing endodontic posttreatment pain, the current open-label, randomized study was undertaken. After one-visit nonsurgical endodontic therapy, 100 patients with asymptomatic teeth having either vital-inflamed pulp, pulpal necrosis, or pulpal necrosis with periapical radiolucent lesion were randomly given either prophylactic diflunisal (two tablets immediately at the conclusion of the visit, then four tablets to be taken in the schedule of one every 8 to 12 hours for pain if needed) or on-demand diflunisal (same dosage schedule; pills to be taken only if needed). The outcome showed that compared to the on-demand usage, the posttreatment prophylactic administration of diflunisal resulted in a statistically significant reduction in the number of episodes of endodontic posttreatment pain that required analgesic intervention. It appears from the results of this study that the posttreatment prophylactic use of diflunisal is significantly more effective than the on-demand usage of diflunisal in reducing endodontic posttreatment pain for one-visit endodontic therapy with all types of originally asymptomatic endodontic conditions. Further studies are necessary to determine whether pretreatment prophylactic deflunisal would be more effective, and also the effectiveness of prophylactic diflunisal in reducing posttreatment pain in presenting symptomatic cases and for cases treated in multiple visits.

Adolescent↗

The influence of diflunisal on the pharmacokinetics of oxazepam.

Single dose pharmacokinetics of oxazepam, 30 mg, have been studied in six healthy male volunteers in the absence of diflunisal and during continuous treatment with diflunisal 500 mg twice daily. During diflunisal treatment, peak plasma concentration of oxazepam significantly decreased from 387 +/- 18 ng ml-1 (mean +/- s.e. mean) to 241 +/- 10 ng ml-1 and total area under the plasma concentration-time curve (AUC) significantly decreased from 5536 +/- 819 ng ml-1 h to 4643 +/- 562 ng ml-1 h. The AUC of oxazepam glucuronide significantly increased from 4771 +/- 227 ng ml-1 h to 8116 +/- 644 ng ml-1 h and its elimination half-life increased from 10.0 +/- 0.6 h to 13.0 +/- 1.0 h. Renal clearance for oxazepam glucuronide was significantly reduced from 74 +/- 2 ml min-1 to 46 +/- 3 ml min-1. In vitro, diflunisal, at concentrations of 125 to 1000 micrograms ml-1, significantly displaced oxazepam from its plasma protein binding, the free fraction of oxazepam increasing by 28 to 56%. The free fraction of oxazepam glucuronide, ex vivo, increased by 49 +/- 5% (n = 3) during concomitant diflunisal treatment. These data suggest that the observed interaction between oxazepam and diflunisal results from a presystemic displacement of oxazepam from its plasma protein binding sites by diflunisal and from an inhibition of the tubular secretion of oxazepam glucuronide by the glucuronides of diflunisal.

Adult↗

Preparation and clinical application of 2% diflunisal oral ointment for painful lesions of the oral mucosa.

We previously reported the development and clinical efficacy of a 2% aspirin oral ointment and 2% ethenzamide oral ointment as hospital preparations for painful lesions of the oral mucosa. This study investigated methods of preparing a more stable oral ointment with a more effective analgesic action, using diflunisal, another salicylic acid derivative, with an analgesic effect stronger than that of aspirin. A two-percent diflunisal oral ointment was prepared similarly to the aspirin ointment using plastibase and CMC-Na as the ointment base. From the results of spreadability measurement, a CMC-Na content of 20% was considered appropriate. The stability of diflunisal in 2% diflunisal oral ointment stored at 5 degrees C, 20 degrees C and 30 degrees C, was determined using HPLC, and a high stability of diflunisal at room temperature for more than 100 days was confirmed. We also investigated its antinociceptive effect using the Randall-Selitto paw pressure test in rats, which showed that 2% diflunisal oral ointment was as effective as 2% aspirin oral ointment. On clinical application of 2% diflunisal oral ointment to 8 patients with painful oral mucous diseases, it was found to be significantly (p = 0.014) more effective than 2% aspirin oral ointment. The results of this study demonstrated that 2% diflunisal oral ointment is a clinically useful analgesic for painful oral lesions.

Adult↗