Sunday, July 26, 2009

Razadyne



galantamine hydrobromide

Dosage Form: capsules, tablets and oral solution
Razadyne® ER

galantamine HBr

EXTENDED-RELEASE CAPSULES


Razadyne®

galantamine HBr

TABLETS AND ORAL SOLUTION

Razadyne Description


Razadyne® ER/Razadyne® (galantamine hydrobromide) is galantamine hydrobromide, a reversible, competitive acetylcholinesterase inhibitor. Galantamine hydrobromide is known chemically as (4aS,6R,8aS)-4a,5,9,10,11,12-hexahydro-3-methoxy-11-methyl-6H-benzofuro[3a,3,2-ef][2]benzazepin-6-ol hydrobromide. It has an empirical formula of C17H21NO3 •HBr and a molecular weight of 368.27. Galantamine hydrobromide is a white to almost white powder and is sparingly soluble in water. The structural formula for galantamine hydrobromide is:



Razadyne® ER is available in opaque hard gelatin extended-release capsules of 8 mg (white), 16 mg (pink), and 24 mg (caramel) containing galantamine hydrobromide, equivalent to respectively 8, 16 and 24 mg galantamine base. Inactive ingredients include gelatin, diethyl phthalate, ethylcellulose, hypromellose, polyethylene glycol, titanium dioxide and sugar spheres (sucrose and starch). The 16 mg capsule also contains red ferric oxide. The 24 mg capsule also contains red ferric oxide and yellow ferric oxide.


Razadyne® for oral use is available in circular biconvex film-coated immediate-release tablets of 4 mg (off-white), 8 mg (pink), and 12 mg (orange-brown). Each 4, 8, and 12 mg (base equivalent) tablet contains 5.126, 10.253, and 15.379 mg of galantamine hydrobromide, respectively. Inactive ingredients include colloidal silicon dioxide, crospovidone, hypromellose, lactose monohydrate, magnesium stearate, microcrystalline cellulose, propylene glycol, talc, and titanium dioxide. The 4 mg tablets contain yellow ferric oxide. The 8 mg tablets contain red ferric oxide. The 12 mg tablets contain red ferric oxide and FD&C yellow #6 aluminum lake.


Razadyne® is also available as a 4 mg/mL oral solution. The inactive ingredients for this solution are methyl parahydroxybenzoate, propyl parahydroxybenzoate, sodium saccharin, sodium hydroxide and purified water.



CLINICAL PHARMACOLOGY



Mechanism of Action


Although the etiology of cognitive impairment in Alzheimer's disease (AD) is not fully understood, it has been reported that acetylcholine-producing neurons degenerate in the brains of patients with Alzheimer's disease. The degree of this cholinergic loss has been correlated with degree of cognitive impairment and density of amyloid plaques (a neuropathological hallmark of Alzheimer's disease).


Galantamine, a tertiary alkaloid, is a competitive and reversible inhibitor of acetylcholinesterase. While the precise mechanism of galantamine's action is unknown, it is postulated to exert its therapeutic effect by enhancing cholinergic function. This is accomplished by increasing the concentration of acetylcholine through reversible inhibition of its hydrolysis by cholinesterase. If this mechanism is correct, galantamine's effect may lessen as the disease process advances and fewer cholinergic neurons remain functionally intact. There is no evidence that galantamine alters the course of the underlying dementing process.



Pharmacokinetics


Galantamine is well absorbed with absolute oral bioavailability of about 90%. It has a terminal elimination half-life of about 7 hours and pharmacokinetics are linear over the range of 8–32 mg/day.


The maximum inhibition of acetylcholinesterase activity of about 40% was achieved about one hour after a single oral dose of 8 mg galantamine in healthy male subjects.


Absorption and Distribution

Galantamine is rapidly and completely absorbed with time to peak concentration about 1 hour. Bioavailability of the tablet was the same as the bioavailability of an oral solution. Food did not affect the AUC of galantamine but Cmax decreased by 25% and Tmax was delayed by 1.5 hours. The mean volume of distribution of galantamine is 175 L.


The plasma protein binding of galantamine is 18% at therapeutically relevant concentrations. In whole blood, galantamine is mainly distributed to blood cells (52.7%). The blood to plasma concentration ratio of galantamine is 1.2.


Metabolism and Elimination

Galantamine is metabolized by hepatic cytochrome P450 enzymes, glucuronidated, and excreted unchanged in the urine. In vitro studies indicate that cytochrome CYP2D6 and CYP3A4 were the major cytochrome P450 isoenzymes involved in the metabolism of galantamine, and inhibitors of both pathways increase oral bioavailability of galantamine modestly (see PRECAUTIONS, Drug-Drug Interactions). O-demethylation, mediated by CYP2D6 was greater in extensive metabolizers of CYP2D6 than in poor metabolizers. In plasma from both poor and extensive metabolizers, however, unchanged galantamine and its glucuronide accounted for most of the sample radioactivity.


In studies of oral 3H-galantamine, unchanged galantamine and its glucuronide, accounted for most plasma radioactivity in poor and extensive CYP2D6 metabolizers. Up to 8 hours post-dose, unchanged galantamine accounted for 39–77% of the total radioactivity in the plasma, and galantamine glucuronide for 14–24%. By 7 days, 93–99% of the radioactivity had been recovered, with about 95% in urine and about 5% in the feces. Total urinary recovery of unchanged galantamine accounted for, on average, 32% of the dose and that of galantamine glucuronide for another 12% on average.


After i.v. or oral administration, about 20% of the dose was excreted as unchanged galantamine in the urine in 24 hours, representing a renal clearance of about 65 mL/min, about 20–25% of the total plasma clearance of about 300 mL/min.


Razadyne® ER 24 mg Extended-Release Capsules administered once daily under fasting conditions are bioequivalent to Razadyne® Tablets 12 mg twice daily with respect to AUC24h and Cmin. The Cmax and Tmax of the extended-release capsules were lower and occurred later, respectively, compared with the immediate-release tablets, with Cmax about 25% lower and median Tmax occurring about 4.5 – 5.0 hours after dosing. Dose-proportionality is observed for Razadyne® ER Extended-Release Capsules over the dose range of 8 to 24 mg daily and steady state is achieved within a week. There was no effect of age on the pharmacokinetics of Razadyne® ER Extended-Release Capsules. CYP2D6 poor metabolizers had drug exposures that were approximately 50% higher than for extensive metabolizers.


There are no appreciable differences in pharmacokinetic parameters when Razadyne® ER Extended-Release Capsules are given with food compared to when they are given in the fasted state.



Special Populations


CYP2D6 Poor Metabolizers

Approximately 7% of the normal population has a genetic variation that leads to reduced levels of activity of CYP2D6 isozyme. Such individuals have been referred to as poor metabolizers. After a single oral dose of 4 mg or 8 mg galantamine, CYP2D6 poor metabolizers demonstrated a similar Cmax and about 35% AUC∞ increase of unchanged galantamine compared to extensive metabolizers.


A total of 356 patients with Alzheimer's disease enrolled in two Phase 3 studies were genotyped with respect to CYP2D6 (n=210 hetero-extensive metabolizers, 126 homo-extensive metabolizers, and 20 poor metabolizers). Population pharmacokinetic analysis indicated that there was a 25% decrease in median clearance in poor metabolizers compared to extensive metabolizers. Dosage adjustment is not necessary in patients identified as poor metabolizers as the dose of drug is individually titrated to tolerability.


Hepatic Impairment

Following a single 4 mg dose of galantamine tablets, the pharmacokinetics of galantamine in subjects with mild hepatic impairment (n=8; Child-Pugh score of 5–6) were similar to those in healthy subjects. In patients with moderate hepatic impairment (n=8; Child-Pugh score of 7–9), galantamine clearance was decreased by about 25% compared to normal volunteers. Exposure would be expected to increase further with increasing degree of hepatic impairment (see PRECAUTIONS and DOSAGE AND ADMINISTRATION).


Renal Impairment

Following a single 8 mg dose of galantamine tablets, AUC increased by 37% and 67% in moderate and severely renal-impaired patients compared to normal volunteers (see PRECAUTIONS and DOSAGE AND ADMINISTRATION).


Elderly

Data from clinical trials in patients with Alzheimer's disease indicate that galantamine concentrations are 30–40% higher than in healthy young subjects.


Gender and Race

No specific pharmacokinetic study was conducted to investigate the effect of gender and race on the disposition of Razadyne®, but a population pharmacokinetic analysis indicates (n= 539 males and 550 females) that galantamine clearance is about 20% lower in females than in males (explained by lower body weight in females) and race (n= 1029 White, 24 Black, 13 Asian and 23 other) did not affect the clearance of Razadyne®.



Drug-Drug Interactions


(see also PRECAUTIONS, Drug-Drug Interactions)


Multiple metabolic pathways and renal excretion are involved in the elimination of galantamine so no single pathway appears predominant. Based on in vitro studies, CYP2D6 and CYP3A4 were the major enzymes involved in the metabolism of galantamine. CYP2D6 was involved in the formation of O-desmethyl-galantamine, whereas CYP3A4 mediated the formation of galantamine-N-oxide. Galantamine is also glucuronidated and excreted unchanged in urine.


(A) Effect of Other Drugs on the Metabolism of Razadyne®

Drugs that are potent inhibitors for CYP2D6 or CYP3A4 may increase the AUC of galantamine. Multiple dose pharmacokinetic studies demonstrated that the AUC of galantamine increased 30% and 40%, respectively, during coadministration of ketoconazole and paroxetine. As co-administered with erythromycin, another CYP3A4 inhibitor, the galantamine AUC increased only 10%. Population PK analysis with a database of 852 patients with Alzheimer's disease showed that the clearance of galantamine was decreased about 25–33% by concurrent administration of amitriptyline (n = 17), fluoxetine (n = 48), fluvoxamine (n = 14), and quinidine (n = 7), known inhibitors of CYP2D6.


Concurrent administration of H2-antagonists demonstrated that ranitidine did not affect the pharmacokinetics of galantamine, and cimetidine increased the galantamine AUC by approximately 16%.


A multiple dose pharmacokinetic study with concurrent administration of memantine, an N-methyl-D-aspartate (NMDA) receptor antagonist, demonstrated that co-administration of memantine in a dose of 10 mg BID did not affect the pharmacokinetic profile of galantamine (16 mg daily) at steady state.


(B) Effect of Razadyne® on the Metabolism of Other Drugs

In vitro studies show that galantamine did not inhibit the metabolic pathways catalyzed by CYP1A2, CYP2A6, CYP3A4, CYP4A, CYP2C, CYP2D6 and CYP2E1. This indicated that the inhibitory potential of galantamine towards the major forms of cytochrome P450 is very low. Multiple doses of galantamine (24 mg/day) had no effect on the pharmacokinetics of digoxin and warfarin (R- and S- forms). Galantamine had no effect on the increased prothrombin time induced by warfarin.



CLINICAL TRIALS


The effectiveness of Razadyne® ER/Razadyne® (galantamine hydrobromide) as a treatment for Alzheimer's disease is demonstrated by the results of 5 randomized, double-blind, placebo-controlled clinical investigations in patients with probable Alzheimer's disease, 4 with the immediate-release tablet and 1 with the extended-release capsule [diagnosed by NINCDS-ADRDA criteria, with Mini-Mental State Examination scores that were ≥ 10 and ≤ 24]. Doses studied with the tablet formulation were 8–32 mg/day given as twice daily doses. In 3 of the 4 studies with the tablet, patients were started on a low dose of 8 mg, then titrated weekly by 8 mg/day to 24 or 32 mg as assigned. In the fourth study (USA 4-week Dose-Escalation Fixed-Dose Study) dose escalation of 8 mg/day occurred over 4 week intervals. The mean age of patients participating in these 4 Razadyne® trials was 75 years with a range of 41 to 100. Approximately 62% of patients were women and 38% were men. The racial distribution was White 94%, Black 3% and other races 3%. Two other studies examined a three times daily dosing regimen; these also showed or suggested benefit but did not suggest an advantage over twice daily dosing.



Study Outcome Measures


In each study, the primary effectiveness of Razadyne® was evaluated using a dual outcome assessment strategy as measured by the Alzheimer's Disease Assessment Scale (ADAS-cog) and the Clinician's Interview Based Impression of Change that required the use of caregiver information (CIBIC-plus).


The ability of Razadyne® to improve cognitive performance was assessed with the cognitive sub-scale of the Alzheimer's Disease Assessment Scale (ADAS-cog), a multi-item instrument that has been extensively validated in longitudinal cohorts of Alzheimer's disease patients. The ADAS-cog examines selected aspects of cognitive performance including elements of memory, orientation, attention, reasoning, language and praxis. The ADAS-cog scoring range is from 0 to 70, with higher scores indicating greater cognitive impairment. Elderly normal adults may score as low as 0 or 1, but it is not unusual for non-demented adults to score slightly higher.


The patients recruited as participants in each study using the tablet formulation had mean scores on ADAS-cog of approximately 27 units, with a range from 5 to 69. Experience gained in longitudinal studies of ambulatory patients with mild to moderate Alzheimer's disease suggests that they gain 6 to 12 units a year on the ADAS-cog. Lesser degrees of change, however, are seen in patients with very mild or very advanced disease because the ADAS-cog is not uniformly sensitive to change over the course of the disease. The annualized rate of decline in the placebo patients participating in Razadyne® trials was approximately 4.5 units per year.


The ability of Razadyne® to produce an overall clinical effect was assessed using a Clinician's Interview Based Impression of Change that required the use of caregiver information, the CIBIC-plus. The CIBIC-plus is not a single instrument and is not a standardized instrument like the ADAS-cog. Clinical trials for investigational drugs have used a variety of CIBIC formats, each different in terms of depth and structure. As such, results from a CIBIC-plus reflect clinical experience from the trial or trials in which it was used and cannot be compared directly with the results of CIBIC-plus evaluations from other clinical trials. The CIBIC-plus used in the trials was a semi-structured instrument based on a comprehensive evaluation at baseline and subsequent time-points of 4 major areas of patient function: general, cognitive, behavioral and activities of daily living. It represents the assessment of a skilled clinician based on his/her observation at an interview with the patient, in combination with information supplied by a caregiver familiar with the behavior of the patient over the interval rated. The CIBIC-plus is scored as a seven point categorical rating, ranging from a score of 1, indicating "markedly improved," to a score of 4, indicating "no change" to a score of 7, indicating "marked worsening." The CIBIC-plus has not been systematically compared directly to assessments not using information from caregivers (CIBIC) or other global methods.



Immediate-Release Tablets


U.S. Twenty-One Week Fixed-Dose Study

In a study of 21 weeks duration, 978 patients were randomized to doses of 8, 16, or 24 mg of Razadyne® per day, or to placebo, each given in 2 divided doses. Treatment was initiated at 8 mg/day for all patients randomized to Razadyne®, and increased by 8 mg/day every 4 weeks. Therefore, the maximum titration phase was 8 weeks and the minimum maintenance phase was 13 weeks (in patients randomized to 24 mg/day of Razadyne®).



Effects on the ADAS-cog


Figure 1 illustrates the time course for the change from baseline in ADAS-cog scores for all four dose groups over the 21 weeks of the study. At 21 weeks of treatment, the mean differences in the ADAS-cog change scores for the Razadyne®-treated patients compared to the patients on placebo were 1.7, 3.3, and 3.6 units for the 8, 16 and 24 mg/day treatments, respectively. The 16 mg/day and 24 mg/day treatments were statistically significantly superior to placebo and to the 8 mg/day treatment. There was no statistically significant difference between the 16 mg/day and 24 mg/day dose groups.



Figure 1: Time-Course of the Change From Baseline in ADAS-cog Score for Patients Completing 21 Weeks (5 Months) of Treatment

Figure 2 illustrates the cumulative percentages of patients from each of the four treatment groups who had attained at least the measure of improvement in ADAS-cog score shown on the X-axis. Three change scores (10-point, 7-point and 4-point reductions) and no change in score from baseline have been identified for illustrative purposes, and the percent of patients in each group achieving that result is shown in the inset table.


The curves demonstrate that both patients assigned to galantamine and placebo have a wide range of responses, but that the Razadyne® groups are more likely to show the greater improvements.



Figure 2: Cumulative Percentage of Patients Completing 21 Weeks of Double-Blind Treatment With Specified Changes From Baseline in ADAS-cog Scores. The Percentages of Randomized Patients Who Completed the Study Were: Placebo 84%, 8 mg/day 77%, 16 mg/day 78% and 24 mg/day 78%.




























Change in ADAS-cog
Treatment-10-7-40
Placebo3.6%7.6%19.6%41.8%
8 mg/day5.9%13.9%25.7%46.5%
16 mg/day7.2%15.9%35.6%65.4%
24 mg/day10.4%22.3%37.0%64.9%

Effects on the CIBIC-plus


Figure 3 is a histogram of the percentage distribution of CIBIC-plus scores attained by patients assigned to each of the four treatment groups who completed 21 weeks of treatment. The Razadyne®-placebo differences for these groups of patients in mean rating were 0.15, 0.41 and 0.44 units for the 8, 16 and 24 mg/day treatments, respectively. The 16 mg/day and 24 mg/day treatments were statistically significantly superior to placebo. The differences vs. the 8 mg/day treatment for the 16 and 24 mg/day treatments were 0.26 and 0.29, respectively. There were no statistically significant differences between the 16 mg/day and 24 mg/day dose groups.



Figure 3: Distribution of CIBIC-plus Ratings at Week 21

U.S. Twenty-Six Week Fixed-Dose Study

In a study of 26 weeks duration, 636 patients were randomized to either a dose of 24 mg or 32 mg of Razadyne® (galantamine hydrobromide) per day, or to placebo, each given in two divided doses. The 26-week study was divided into a 3-week dose titration phase and a 23-week maintenance phase.



Effects on the ADAS-cog


Figure 4 illustrates the time course for the change from baseline in ADAS-cog scores for all three dose groups over the 26 weeks of the study. At 26 weeks of treatment, the mean differences in the ADAS-cog change scores for the Razadyne®-treated patients compared to the patients on placebo were 3.9 and 3.8 units for the 24 mg/day and 32 mg/day treatments, respectively. Both treatments were statistically significantly superior to placebo, but were not significantly different from each other.



Figure 4: Time-Course of the Change From Baseline in ADAS-cog Score for Patients Completing 26 Weeks of Treatment

Figure 5 illustrates the cumulative percentages of patients from each of the three treatment groups who had attained at least the measure of improvement in ADAS-cog score shown on the X-axis. Three change scores (10-point, 7-point and 4-point reductions) and no change in score from baseline have been identified for illustrative purposes, and the percent of patients in each group achieving that result is shown in the inset table.


The curves demonstrate that both patients assigned to Razadyne® and placebo have a wide range of responses, but that the Razadyne® groups are more likely to show the greater improvements. A curve for an effective treatment would be shifted to the left of the curve for placebo, while an ineffective or deleterious treatment would be superimposed upon, or shifted to the right of the curve for placebo, respectively.



Figure 5: Cumulative Percentage of Patients Completing 26 Weeks of Double-Blind Treatment With Specified Changes From Baseline in ADAS-cog Scores. The Percentages of Randomized Patients Who Completed the Study Were: Placebo 81%, 24 mg/day 68%, and 32 mg/day 58%.























Change in ADAS-cog
Treatment-10-7-40
Placebo2.1%5.7%16.6%43.9%
24 mg/day7.6%18.3%33.6%64.1%
32 mg/day11.1%19.7%33.3%58.1%

Effects on the CIBIC-plus


Figure 6 is a histogram of the percentage distribution of CIBIC-plus scores attained by patients assigned to each of the three treatment groups who completed 26 weeks of treatment. The mean Razadyne®-placebo differences for these groups of patients in the mean rating were 0.28 and 0.29 units for 24 and 32 mg/day of Razadyne®, respectively. The mean ratings for both groups were statistically significantly superior to placebo, but were not significantly different from each other.



Figure 6: Distribution of CIBIC-plus Ratings at Week 26

International Twenty-Six Week Fixed-Dose Study

In a study of 26 weeks duration identical in design to the USA 26-Week Fixed-Dose Study, 653 patients were randomized to either a dose of 24 mg or 32 mg of Razadyne® (galantamine hydrobromide) per day, or to placebo, each given in two divided doses. The 26-week study was divided into a 3-week dose titration phase and a 23-week maintenance phase.



Effects on the ADAS-cog


Figure 7 illustrates the time course for the change from baseline in ADAS-cog scores for all three dose groups over the 26 weeks of the study. At 26 weeks of treatment, the mean differences in the ADAS-cog change scores for the Razadyne®-treated patients compared to the patients on placebo were 3.1 and 4.1 units for the 24 mg/day and 32 mg/day treatments, respectively. Both treatments were statistically significantly superior to placebo, but were not significantly different from each other.



Figure 7: Time-Course of the Change From Baseline in ADAS-cog Score for Patients Completing 26 Weeks of Treatment

Figure 8 illustrates the cumulative percentages of patients from each of the three treatment groups who had attained at least the measure of improvement in ADAS-cog score shown on the X-axis. Three change scores (10-point, 7-point and 4-point reductions) and no change in score from baseline have been identified for illustrative purposes, and the percent of patients in each group achieving that result is shown in the inset table.


The curves demonstrate that both patients assigned to Razadyne® and placebo have a wide range of responses, but that the Razadyne® groups are more likely to show the greater improvements.



Figure 8: Cumulative Percentage of Patients Completing 26 Weeks of Double-Blind Treatment With Specified Changes From Baseline in ADAS-cog Scores. The Percentages of Randomized Patients Who Completed the Study Were: Placebo 87%, 24 mg/day 80%, and 32 mg/day 75%.























Change in ADAS-cog
Treatment-10-7-40
Placebo1.2%5.8%15.2%39.8%
24 mg/day4.5%15.4%30.8%65.4%
32 mg/day7.9%19.7%34.9%63.8%

Effects on the CIBIC-plus


Figure 9 is a histogram of the percentage distribution of CIBIC-plus scores attained by patients assigned to each of the three treatment groups who completed 26 weeks of treatment. The mean Razadyne®-placebo differences for these groups of patients in the mean rating of change from baseline were 0.34 and 0.47 for 24 and 32 mg/day of Razadyne®, respectively. The mean ratings for the Razadyne® groups were statistically significantly superior to placebo, but were not significantly different from each other.



Figure 9: Distribution of CIBIC-plus Rating at Week 26

International Thirteen-Week Flexible-Dose Study

In a study of 13 weeks duration, 386 patients were randomized to either a flexible dose of 24–32 mg/day of Razadyne® or to placebo, each given in two divided doses. The 13-week study was divided into a 3-week dose titration phase and a 10-week maintenance phase. The patients in the active treatment arm of the study were maintained at either 24 mg/day or 32 mg/day at the discretion of the investigator.



Effects on the ADAS-cog


Figure 10 illustrates the time course for the change from baseline in ADAS-cog scores for both dose groups over the 13 weeks of the study. At 13 weeks of treatment, the mean difference in the ADAS-cog change scores for the treated patients compared to the patients on placebo was 1.9. Razadyne® at a dose of 24–32 mg/day was statistically significantly superior to placebo.



Figure 10: Time-Course of the Change From Baseline in ADAS-cog Score for Patients Completing 13 Weeks of Treatment

Figure 11 illustrates the cumulative percentages of patients from each of the two treatment groups who had attained at least the measure of improvement in ADAS-cog score shown on the X-axis. Three change scores (10-point, 7-point and 4-point reductions) and no change in score from baseline have been identified for illustrative purposes, and the percent of patients in each group achieving that result is shown in the inset table.


The curves demonstrate that both patients assigned to Razadyne® and placebo have a wide range of responses, but that the Razadyne® group is more likely to show the greater improvement.



Figure 11: Cumulative Percentage of Patients Completing 13 Weeks of Double-Blind Treatment With Specified Changes from Baseline in ADAS-cog Scores. The Percentages of Randomized Patients Who Completed the Study Were: Placebo 90%, 24–32 mg/day 67%.


















Change in ADAS-cog
Treatment-10-7-40
Placebo1.9%5.6%19.4%50.0%
24 or 32 mg/day7.1%18.8%32.9%65.3%

Effects on the CIBIC-plus


Figure 12 is a histogram of the percentage distribution of CIBIC-plus scores attained by patients assigned to each of the two treatment groups who completed 13 weeks of treatment. The mean Razadyne®-placebo differences for the group of patients in the mean rating of change from baseline were 0.37 units. The mean rating for the 24–32 mg/day group was statistically significantly superior to placebo.



Figure 12: Distribution of CIBIC-plus Ratings at Week 13


Age, Gender and Race


Patient's age, gender, or race did not predict clinical outcome of treatment.



Extended-Release Capsules


The efficacy of Razadyne® ER Extended-Release Capsules was studied in a randomized, double-blind, placebo-controlled trial which was 6 months in duration, and had an initial 4-week dose-escalation phase. In this trial, patients were assigned to one of 3 treatment groups: Razadyne® ER in a flexible dose of 16 to 24 mg once daily; Razadyne® Tablets in a flexible dose of 8 to 12 mg twice daily; and placebo. The primary efficacy measures in this study were the ADAS-cog and CIBIC-plus. On the protocol-specified primary efficacy analysis at Month 6, a statistically significant improvement favoring Razadyne® ER over placebo was seen for the ADAS-cog, but not for the CIBIC-plus. Razadyne® ER showed a statistically significant improvement when compared with placebo on the Alzheimer's Disease Cooperative Study-Activities of Daily Living (ADCS-ADL) scale, a measure of function, and a secondary efficacy measure in this study. The effects of both Razadyne® ER Capsules and Razadyne® Tablets on the ADAS-cog, CIBIC-plus, and ADCS-ADL were similar in this study.



INDICATIONS AND USAGE


Razadyne® ER/Razadyne® (galantamine hydrobromide) is indicated for the treatment of mild to moderate dementia of the Alzheimer's type.



CONTRAINDICATIONS


Razadyne® ER/Razadyne® (galantamine hydrobromide) is contraindicated in patients with known hypersensitivity to galantamine hydrobromide or to any excipients used in the formulation.



WARNINGS



Anesthesia


Galantamine, as a cholinesterase inhibitor, is likely to exaggerate the neuromuscular blocking effects of succinylcholine-type and similar neuromuscular blocking agents during anesthesia.



Cardiovascular Conditions


Because of their pharmacological action, cholinesterase inhibitors have vagotonic effects on the sinoatrial and atrioventricular nodes, leading to bradycardia and AV block. These actions may be particularly important to patients with supraventricular cardiac conduction disorders or to patients taking other drugs concomitantly that significantly slow heart rate. Postmarketing surveillance of marketed anticholinesterase inhibitors has shown, however, that bradycardia and all types of heart block have been reported in patients both with and without known underlying cardiac conduction abnormalities. Therefore all patients should be considered at risk for adverse effects on cardiac conduction.


In randomized controlled trials, bradycardia was reported more frequently in galantamine-treated patients than in placebo-treated patients, but was rarely severe and rarely led to treatment discontinuation. The overall frequency of this event was 2–3% for galantamine doses up to 24 mg/day compared with <1% for placebo. No increased incidence of heart block was observed at the recommended doses.


Patients treated with galantamine up to 24 mg/day using the recommended dosing schedule showed a dose-related increase in risk of syncope (placebo 0.7% [2/286]; 4 mg BID 0.4% [3/692]; 8 mg BID 1.3% [7/552]; 12 mg BID 2.2% [6/273]).



Gastrointestinal Conditions


Through their primary action, cholinomimetics may be expected to increase gastric acid secretion due to increased cholinergic activity. Therefore, patients should be monitored closely for symptoms of active or occult gastrointestinal bleeding, especially those with an increased risk for developing ulcers, e.g., those with a history of ulcer disease or patients using concurrent nonsteroidal anti-inflammatory drugs (NSAIDS). Clinical studies of Razadyne® (galantamine hydrobromide) have shown no increase, relative to placebo, in the incidence of either peptic ulcer disease or gastrointestinal bleeding.


Razadyne® ER/Razadyne®, as a predictable consequence of its pharmacological properties, has been shown to produce nausea, vomiting, diarrhea, anorexia, and weight loss (see ADVERSE REACTIONS).



Genitourinary


Although this was not observed in clinical trials with Razadyne® ER/Razadyne®, cholinomimetics may cause bladder outflow obstruction.



Neurological Conditions


Seizures: Cholinesterase inhibitors are believed to have some potential to cause generalized convulsions. However, seizure activity may also be a manifestation of Alzheimer's disease. In clinical trials, there was no increase in the incidence of convulsions with Razadyne® ER/Razadyne®, compared to placebo.



Pulmonary Conditions


Because of its cholinomimetic action, galantamine should be prescribed with care to patients with a history of severe asthma or obstructive pulmonary disease.



PRECAUTIONS



Information for Patients and Caregivers


Caregivers should be instructed about the recommended dosage and administration of Razadyne® ER/Razadyne® (galantamine hydrobromide). Razadyne® ER Extended-Release Capsules should be administered once daily in the morning, preferably with food (although not required). Razadyne® Tablets and Oral Solution should be administered twice per day, preferably with the morning and evening meals. Dose escalation (dose increases) should follow a minimum of four weeks at prior dose.


Patients and caregivers should be advised that the most frequent adverse events associated with use of the drug can be minimized by following the recommended dosage and administration.


Patients and caregivers should be advised to ensure adequate fluid intake during treatment. If therapy has been interrupted for several days or longer, the patient should be restarted at the lowest dose and the dose escalated to the current dose.


Caregivers should be instructed in the correct procedure for administering Razadyne® Oral Solution. In addition, they should be informed of the existence of an Instruction Sheet (included with the product) describing how the solution is to be administered. They should be urged to read this sheet prior to administering Razadyne® Oral Solution. Caregivers should direct questions about the administration of the solution to either their physician or pharmacist.



Deaths in Subjects with Mild Cognitive Impairment (MCI)


In two randomized placebo controlled trials of 2 years duration in subjects with mild cognitive impairment (MCI), a total of 13 subjects on Razadyne® (n=1026) and 1 subject on placebo (n=1022) died. The deaths were due to various causes which could be expected in an elderly population; about half of the Razadyne® deaths appeared to result from various vascular causes (myocardial infarction, stroke, and sudden death).


Although the difference in mortality between Razadyne® and placebo-treated groups in these two studies was significant, the results are highly discrepant with other studies of Razadyne®. Specifically, in these two MCI studies, the mortality rate in the placebo-treated subjects was markedly lower than the rate in placebo-treated patients in trials of Razadyne® in Alzheimer's disease or other dementias (0.7 per 1000 person years compared to 22–61 per 1000 person years, respectively). Although the mortality rate in the Razadyne®-treated MCI subjects was also lower than that observed in Razadyne®-treated patients in Alzheimer's disease and other dementia trials (10.2 per 1000 person years compared to 23–31 per 1000 person years, respectively), the relative difference was much less. When the Alzheimer's disease and other dementia studies were pooled (n=6000), the mortality rate in the placebo group numerically exceeded that in the Razadyne® group. Furthermore, in the MCI studies, no subjects in the placebo group died after 6 months, a highly unexpected finding in this population.


Individuals with mild cognitive impairment demonstrate isolated memory impairment greater than expected for their age and education, but do not meet current diagnostic criteria for Alzheimer's disease.



Special Populations


Hepatic Impairment

In patients with moderately impaired hepatic function, dose titration should proceed cautiously (see CLINICAL PHARMACOLOGY and DOSAGE AND ADMINISTRATION). The use of Razadyne® in patients with severe hepatic impairment is not recommended.


Renal Impairment

In patients with moderately impaired renal function, dose titration should proceed cautiously (see CLINICAL PHARMACOLOGY and DOSAGE AND ADMINISTRATION). In patients with severely impaired renal function (CLcr < 9 mL/min) the use of Razadyne® is not recommended.



Drug-Drug Interactions


(see also CLINICAL PHARMACOLOGY, Drug-Drug Interactions)


Use With Anticholinergics

Razadyne® has the potential to interfere with the activity of anticholinergic medications.


Use With Cholinomimetics and Other Cholinesterase Inhibitors

A synergistic effect is expected when cholinesterase inhibitors are given concurrently with succinylcholine, other cholinesterase inhibitors, similar neuromuscular blocking agents or cholinergic agonists such as bethanechol.


A) Effect of Other Drugs on Galantamine

In vitro


CYP3A4 and CYP2D6 are the major enzymes involved in the metabolism of galantamine. CYP3A4 mediates the formation of galantamine-N-oxide; CYP2D6 leads to the formation of O-desmethyl-galantamine. Because galantamine is also glucuronidated and excreted unchanged, no single pathway appears predominant.



In vivo


Cimetidine and Ranitidine: Galantamine was administered as a single dose of 4 mg on day 2 of a 3-day treatment with either cimetidine (800 mg daily) or ranitidine (300 mg daily). Cimetidine increased the bioavailability of galantamine by approximately 16%. Ranitidine had no effect on the PK of galantamine.


Ketoconazole: Ketoconazole, a strong inhibitor of CYP3A4 and an inhibitor of CYP2D6, at a dose of 200 mg BID for 4 days, increased the AUC of galantamine by 30%.


Erythromycin: Erythromycin, a moderate inhibitor of CYP3A4 at a dose of 500 mg QID for 4 days, affected the AUC of galantamine minimally (10% increase).


Paroxetine: Paroxetine, a strong inhibitor of CYP2D6, at 20 mg/day for 16 days, increased the oral bioavailability of galantamine by about 40%.


Memantine: Memantine, an N-methyl-D-aspartate receptor antagonist, at a dose of 10 mg BID, had no effect on the pharmacokinetics of galantamine (16 mg/day) at steady state.


B) Effect of Galantamine on Other Drugs

In vitro


Galantamine did not inhibit the metabolic pathways catalyzed by CYP1A2, CYP2A6, CYP3A4, CYP4A, CYP2C, CYP2D6 or CYP2E1. This indicates that the inhibitory potential of galantamine towards the major forms of cytochrome P450 is very low.



In vivo


Warfarin: Galantamine at 24 mg/day had no effect on the pharmacokinetics of R- and S-warfarin (25 mg single dose) or on the prothrombin time. The protein binding of warfarin was unaffected by galantamine.


Digoxin: Galantamine at 24 mg/day had no effect on the steady-state pharmacokinetics of digoxin (0.375 mg once daily) when they were coadministered. In this study, however, one healthy subject was hospitalized for 2nd and 3rd degree heart block and

Nesdonal




Nesdonal may be available in the countries listed below.


In some countries, this medicine may only be approved for veterinary use.

Ingredient matches for Nesdonal



Thiopental

Thiopental Sodium is reported as an ingredient of Nesdonal in the following countries:


  • France

  • Netherlands

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Friday, July 24, 2009

Azathioprin Sandoz




Azathioprin Sandoz may be available in the countries listed below.


Ingredient matches for Azathioprin Sandoz



Azathioprine

Azathioprine is reported as an ingredient of Azathioprin Sandoz in the following countries:


  • Germany

  • Netherlands

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Wednesday, July 22, 2009

Dipivefrin





Dosage Form: ophthalmic solution

Description


Dipivefrin hydrochloride ophthalmic solution is a sterile, isotonic solution. Dipivefrin hydrochloride is a white, crystalline powder, freely soluble in water. It is classified as a sympathomimetic agent and has the following structural formula:



Molecular Formula: C19H29O5N • HCI Molecular weight: 387.90


Chemical Name: [±] -3,4-Dihydroxy-α-[(methylamino)methyl]benzyl alcohol 3,4-dipivalate hydrochloride.


Each mL Contains:


ACTIVE: Dipivefrin hydrochloride 1 mg (0.1%)


INACTIVES: Edetate Disodium, Sodium Chloride, Purified Water, Hydrochloric Acid and/or Sodium Hydroxide may be added to adjust pH (2.5 - 3.5).


PRESERVATIVE ADDED: Benzalkonium Chloride 0.005%.



Clinical Pharmacology


Dipivefrin hydrochloride, is a member of a class of drugs known as prodrugs. Prodrugs are usually not active in themselves and require biotransformation to the parent compound before therapeutic activity is seen. These modifications are undertaken to enhance absorption, decrease side effects and enhance stability and comfort, thus making the parent compound a more useful drug. Enhanced absorption makes the prodrug a more efficient delivery system for the parent drug because less drug will be needed to produce the desired therapeutic response.


Dipivefrin hydrochloride is a prodrug of epinephrine formed by the diesterification of epinephrine and pivalic acid. The addition of pivaloyl groups to the epinephrine molecule enhances its lipophilic character and, as a consequence, its penetration into the anterior chamber.


Dipivefrin hydrochloride is converted to epinephrine inside the human eye by enzyme hydrolysis. The liberated epinephrine, an adrenergic agonist, appears to exert its action by decreasing aqueous production and by enhancing outflow facility. The Dipivefrin hydrochloride prodrug delivery system is a more efficient way of delivering the therapeutic effects of epinephrine, with fewer side effects than are associated with conventional epinephrine therapy.


The onset of action with one drop of Dipivefrin hydrochloride ophthalmic solution occurs about 30 minutes after treatment, with maximum effect seen at about one hour.


Using a prodrug means that less drug is needed for therapeutic effect since absorption is enhanced with the prodrug. Dipivefrin hydrochloride 0.1% was judged less irritating than a 1% solution of epinephrine hydrochloride or bitartrate. In addition, only 8 of 455 patients (1.8%) treated with Dipivefrin reported discomfort due to photophobia, glare or light sensitivity.



Indications and Usage


Dipivefrin Hydrochloride Ophthalmic Solution is indicated as initial therapy for the control of intraocular pressure in chronic open-angle glaucoma. Patients responding inadequately to other antiglaucoma therapy may respond to addition of Dipivefrin.


In controlled and open-label studies of glaucoma, Dipivefrin demonstrated a statistically significant intraocular pressure-lowering effect. Patients using Dipivefrin twice daily in studies with mean durations of 76 to 146 days experienced mean pressure reductions ranging from 20 to 24%.


Therapeutic response to 0.1% Dipivefrin twice-daily is somewhat less than 2% epinephrine twice daily. Controlled studies showed statistically significant differences in lowering of intraocular pressure between 0.1% Dipivefrin and 2% epinephrine. In controlled studies in patients with a history of epinephrine intolerance, only 3% of patients treated with Dipivefrin exhibited intolerance, while 55% of those treated with epinephrine again developed an intolerance.


Therapeutic response to 0.1% Dipivefrin twice-daily is comparable to 2% pilocarpine 4 times-daily. In controlled clinical studies comparing 0.1% Dipivefrin and 2% pilocarpine, there were no statistically significant differences in the maintenance of IOP levels for the two medications.


Dipivefrin hydrochloride does not produce miosis or accommodative spasm which cholinergic agents are known to produce. The blurred vision and night blindness often associated with miotic agents are not present with Dipivefrin therapy. Patients with cataracts avoid the inability to see around lenticular opacities caused by constricted pupil.



Contraindications


Dipivefrin hydrochloride should not be used in patients with narrow angles since any dilation of the pupil may predispose the patient to an attack of angle-closure glaucoma. This product is contraindicated in patients who are hypersensitive to any of its components.



Warnings


NOT FOR INJECTION – FOR TOPICAL EYE USE ONLY.



Precautions



General


APHAKIC PATIENTS: Macular edema has been shown to occur in up to 30% of aphakic patients treated with epinephrine. Discontinuation of epinephrine generally results in reversal of the maculopathy.



Information for patients


To avoid contamination, do not touch tip of container to the eye, eyelid or any surface.



Pregnancy


Pregnancy Category B: Reproduction studies have been performed in rats and rabbits at daily oral doses up to 10 mg/kg body weight (5 mg/kg in teratogenicity studies), and have revealed no evidence of impaired fertility or harm to the fetus due to Dipivefrin. There are, however, no adequate and well-controlled studies in pregnant women. Because animal reproduction studies are not always predictive of human response, this drug should be used during pregnancy only if clearly needed.



Nursing mothers


It is not known whether this drug is excreted in human milk. Because many drugs are excreted in human milk, caution should be exercised when Dipivefrin hydrochloride is administered to a nursing woman.



Pediatric use


Clinical studies for safety and efficacy in pediatric patients have not been done.



Animal Studies


Rabbit studies indicated a dose-related incidence of meibomian gland retention cysts following topical administration of both Dipivefrin and epinephrine.



Adverse Reactions



Cardiovascular Effects


Tachycardia, arrhythmias and hypertension have been reported with ocular administration of epinephrine.



Local Effects


  The most frequent side effects reported with Dipivefrin hydrochloride alone were injection in 6.5% of patients and burning and stinging in 6%. Follicular conjunctivitis, mydriasis and allergic reactions to Dipivefrin have been reported infrequently. Epinephrine therapy can lead to adrenochrome deposits in the conjunctiva and cornea.



Dosage and Administration



Initial Glaucoma Therapy


The usual dosage of Dipivefrin Hydrochloride Ophthalmic Solution 0.1% is one drop in the eye(s) every 12 hours.



Replacement with Dipivefrin Hydrochloride Ophthalmic Solution


When patients are being transferred to Dipivefrin from antiglaucoma agents other than epinephrine, on the first day continue the previous medication and add one drop of Dipivefrin to each eye every 12 hours. On the following day, discontinue the previously used antiglaucoma agent and continue with Dipivefrin. 



Transferring Patients from Conventional Epinephrine Therapy to Dipivefrin Hydrochloride Ophthalmic Solution


In transferring patients from conventional epinephrine therapy to Dipivefrin, simply discontinue the epinephrine medication and institute the Dipivefrin Hydrochloride Ophthalmic Solution regimen 



Addition of Dipivefrin Hydrochloride Ophthalmic Solution


When patients on other antiglaucoma agents require additional therapy, add one drop of Dipivefrin every 12 hours.



Concomitant Therapy


For difficult to control patients, the addition of Dipivefrin hydrochloride ophthalmic solution to other agents such as pilocarpine, carbachol, echothiophate iodide or acetazolamide has been shown to be effective.


Note: Not for injection.



How Supplied


Dipivefrin Hydrochloride Ophthalmic Solution USP, 0.1%, is supplied sterile in plastic dropper bottles as follows:


5 mL - Prod. No. 27807


10 mL - Prod. No. 27809


15 mL - Prod. No. 27811


FOR OPHTHALMIC USE ONLY


DO NOT USE IF IMPRINTED NECKBAND IS NOT INTACT.



Storage


Store between 15°-30°C (59°-86°F).


Store in tight, light-resistant containers.


KEEP OUT OF REACH OF CHILDREN.


Rx only



Manufacturer Information


Bausch & Lomb Incorporated

Tampa, FL 33637

©Bausch & Lomb Incorporated


XO50042 (Folded)

XM10018 (Flat)

R.1/04-62








Dipivefrin HYDROCHLORIDE 
Dipivefrin hydrochloride  solution/ drops










Product Information
Product TypeHUMAN PRESCRIPTION DRUGNDC Product Code (Source)24208-540
Route of AdministrationOPHTHALMICDEA Schedule    


























INGREDIENTS
Name (Active Moiety)TypeStrength
Dipivefrin HYDROCHLORIDE (Dipivefrin)Active1 MILLIGRAM  In 1 MILLILITER
Benzalkonium ChlorideInactive 
Edetate DisodiumInactive 
Hydrochloric AcidInactive 
WaterInactive 
Sodium ChlorideInactive 
Sodium HydroxideInactive 


















Product Characteristics
Color    Score    
ShapeSize
FlavorImprint Code
Contains      






























Packaging
#NDCPackage DescriptionMultilevel Packaging
124208-540-051 BOTTLE In 1 CARTONcontains a BOTTLE, DROPPER
15 mL (MILLILITER) In 1 BOTTLE, DROPPERThis package is contained within the CARTON (24208-540-05)
224208-540-101 BOTTLE In 1 CARTONcontains a BOTTLE, DROPPER
210 mL (MILLILITER) In 1 BOTTLE, DROPPERThis package is contained within the CARTON (24208-540-10)
324208-540-151 BOTTLE In 1 CARTONcontains a BOTTLE, DROPPER
315 mL (MILLILITER) In 1 BOTTLE, DROPPERThis package is contained within the CARTON (24208-540-15)

Revised: 04/2008Bausch & Lomb Incorporated

More Dipivefrin resources


  • Dipivefrin Side Effects (in more detail)
  • Dipivefrin Use in Pregnancy & Breastfeeding
  • Dipivefrin Drug Interactions
  • Dipivefrin Support Group
  • 0 Reviews for Dipivefrin - Add your own review/rating


Compare Dipivefrin with other medications


  • Glaucoma, Open Angle
  • Intraocular Hypertension

Monday, July 20, 2009

Ocam




Ocam may be available in the countries listed below.


Ingredient matches for Ocam



Meloxicam

Meloxicam is reported as an ingredient of Ocam in the following countries:


  • Colombia

International Drug Name Search

Saturday, July 18, 2009

Pentosanpolysulfat




Pentosanpolysulfat may be available in the countries listed below.


Ingredient matches for Pentosanpolysulfat



Pentosan Polysulfate

Pentosan Polysulfate sodium (a derivative of Pentosan Polysulfate) is reported as an ingredient of Pentosanpolysulfat in the following countries:


  • Germany

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Thursday, July 16, 2009

Gervaken




Gervaken may be available in the countries listed below.


Ingredient matches for Gervaken



Clarithromycin

Clarithromycin is reported as an ingredient of Gervaken in the following countries:


  • Mexico

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Wednesday, July 15, 2009

Maltodextrin




Scheme

Ph. Eur.

ATC (Anatomical Therapeutic Chemical Classification)

V06DA

CAS registry number (Chemical Abstracts Service)

0009050-36-6

Therapeutic Category

Pharmaceutic aid

Chemical Name

A mixture of glucose, disaccharides and polysaccharides, obtained by the partial hydrolysis of starch. The degree of hydrolysis, expressed as dextrose equivalent (DE) is not more than 20.

Foreign Names

  • Maltodextrinum (Latin)
  • Maltodextrin (German)
  • Maltodextrine (French)

Generic Names

  • Dextrinmaltose (IS)
  • Polysaccharide-Maltose-D-Glucose-Gemisch (IS)
  • Maltodextrin (PH: BP 2010, USP 30, Ph. Eur. 6)
  • Maltodextrine (PH: Ph. Eur. 6)
  • Maltodextrinum (PH: Ph. Eur. 6)

Brand Name

  • Polycal
    Nutricia, Ireland

International Drug Name Search

Glossary

ISInofficial Synonym
PHPharmacopoeia Name
Ph. Eur.European Pharmacopoeia

Click for further information on drug naming conventions and International Nonproprietary Names.

Sunday, July 12, 2009

Genadine




Genadine may be available in the countries listed below.


Ingredient matches for Genadine



Loratadine

Loratadine is reported as an ingredient of Genadine in the following countries:


  • Taiwan

International Drug Name Search

Tuesday, July 7, 2009

Zovirax Ophthalmic Ointment




Zovirax Ophthalmic Ointment may be available in the countries listed below.


Ingredient matches for Zovirax Ophthalmic Ointment



Acyclovir

Aciclovir is reported as an ingredient of Zovirax Ophthalmic Ointment in the following countries:


  • South Africa

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Saturday, July 4, 2009

Flixonase Aqua




Flixonase Aqua may be available in the countries listed below.


Ingredient matches for Flixonase Aqua



Fluticasone

Fluticasone propionate (a derivative of Fluticasone) is reported as an ingredient of Flixonase Aqua in the following countries:


  • Luxembourg

International Drug Name Search