WO2000076481A1 - Mesalazine controlled release oral pharmaceutical compositions - Google Patents

Mesalazine controlled release oral pharmaceutical compositions Download PDF

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Publication number
WO2000076481A1
WO2000076481A1 PCT/EP2000/005321 EP0005321W WO0076481A1 WO 2000076481 A1 WO2000076481 A1 WO 2000076481A1 EP 0005321 W EP0005321 W EP 0005321W WO 0076481 A1 WO0076481 A1 WO 0076481A1
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WO
WIPO (PCT)
Prior art keywords
compositions
matrix
active ingredient
lipophilic
hydrophilic
Prior art date
Application number
PCT/EP2000/005321
Other languages
French (fr)
Inventor
Roberto Villa
Massimo Pedrani
Mauro Ajani
Lorenzo Fossati
Original Assignee
Cosmo S.P.A.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
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Priority to JP2001502815A priority Critical patent/JP4727875B2/en
Priority to EP00935194A priority patent/EP1198226B1/en
Priority to US10/009,491 priority patent/US6773720B1/en
Priority to DK00935194T priority patent/DK1198226T3/en
Priority to CA002377299A priority patent/CA2377299C/en
Application filed by Cosmo S.P.A. filed Critical Cosmo S.P.A.
Priority to MXPA01012888A priority patent/MXPA01012888A/en
Priority to AU50772/00A priority patent/AU5077200A/en
Priority to DE60001835T priority patent/DE60001835T2/en
Priority to AT00935194T priority patent/ATE235234T1/en
Publication of WO2000076481A1 publication Critical patent/WO2000076481A1/en
Priority to NO20016107A priority patent/NO329402B1/en
Priority to HK02107880.6A priority patent/HK1046247B/en

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Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/60Salicylic acid; Derivatives thereof
    • A61K31/606Salicylic acid; Derivatives thereof having amino groups
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/20Pills, tablets, discs, rods
    • A61K9/28Dragees; Coated pills or tablets, e.g. with film or compression coating
    • A61K9/2806Coating materials
    • A61K9/2833Organic macromolecular compounds
    • A61K9/284Organic macromolecular compounds obtained by reactions only involving carbon-to-carbon unsaturated bonds, e.g. polyvinyl pyrrolidone
    • A61K9/2846Poly(meth)acrylates
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P1/00Drugs for disorders of the alimentary tract or the digestive system
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P1/00Drugs for disorders of the alimentary tract or the digestive system
    • A61P1/04Drugs for disorders of the alimentary tract or the digestive system for ulcers, gastritis or reflux esophagitis, e.g. antacids, inhibitors of acid secretion, mucosal protectants
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P29/00Non-central analgesic, antipyretic or antiinflammatory agents, e.g. antirheumatic agents; Non-steroidal antiinflammatory drugs [NSAID]

Definitions

  • the present invention relates to controlled release oral pharmaceutical compositions containing as active ingredient 5 -ammo salicylic acid, also named mesalazme.
  • Mesalazme is used m the treatment of Chron ' s disease and ulcerative colitis thanks to its antimflammatory activity on the intestinal mucuses.
  • Controlled-release formulations of mesalazme are disclosed WO 95/16451, EP 0 453 001, EP 0 377 477.
  • hydrophilic matrices which the ma component of the matrix structure opposes high resistance to the progress of the solvent, m that the presence of strongly hydrophilic groups m its chains, mainly branched, remarkably increases viscosity inside the hydrated layer.
  • Inert matrices for example, generally entail non- linear, but esponential, release of the active mgredient.
  • Hydrophilic matrices have a linear behaviour until a certain fraction of active ingredient has been released, then they significantly deviate from linear release.
  • Bioerodible matrices are ideal to carry out the so-called “site-release”, but they involve the problem of finding the suitable enzyme or reactive to degradation. Furthermore, they frequently release m situ metabolites that are not wholly toxicologically inert.
  • EP 375,063 discloses a technique for the preparation of multiparticulate granules for the controlled-release of the active ingredient which comprises co-dissolution of polymers or suitable substances to form a inert matrix with the active ingredient and the subsequent deposition of said solution on an inert carrier which acts as the core of the device.
  • the inert carrier is kneaded with the solution containing the inert polymer and the active ingredient, then the organic solvent used for the their dissolution is evaporated off to obtain a solid residue.
  • the resulting structure is a "reservoir", i.e. is not macroscopically homogeneous along all the symmetry axis of the final form.
  • EP 0 453 001 discloses a multiparticulate with "reservoir” structure inserted m a hydrophilic matrix.
  • the basic multiparticulate utilizes two coating membranes to decrease the release rate of the active ingredient, a pH- dependent membrane with the purpose of gastric protection and a pH- independent methacrylic membrane w th the purpose of slowing down the penetration of the aqueous fluid.
  • WO 95/16451 discloses a composition only formed by a hydrophilic matrix coated with a gastro-resistant film for controlling the dissolution rate of mesalazme.
  • the invention provides controlled release oral pharmaceutical compositions containing 5-ammo-sal ⁇ cyl ⁇ c acid as the active ingredient, comprising: a) an inner lipophilic matrix consisting of substances with melting point below 90CC m which the active ingredient is at least partially mglobated; b) an outer hydrophilic matrix m which the lipophilic matrix is dispersed; c) optionally other excipients.
  • compositions of the invention can be ootamed with a method comprising the following steps: a) the active ingredient is first mglobated m a low melting excipient or mixture of excipients, while heating to soften and/or melt the excipient itself, which thereby incorporates the active ingredient by simple dispersion.
  • an inert matrix forms, which can be reduced size to obtain matrix granules containing the active ingredient particles. b) the inert matrix granules are subsequently mixed together with one or more hydrophilic water-swellable excipients .
  • the lipophilic matrix consists of substances selected from unsaturated and/or hydrogenated fatty acids, salts, esters or amides thereof, fatty acids mono-, di- or triglyce ⁇ ds , waxes, ceramides, cholesterol derivatives or mixtures thereof having melting point within the range of 40 to 90 ° C .
  • a fatty acid calcium salt may be incorporated m the lipophilic matrix which is subsequently dispersed m a hydrophilic matrix prepared with algmic acid, thus remarkably increasing the hydrophilic matrix viscosity following penetration of the solvent front until contact with the lipophilic matrix granules dispersed mside .
  • the weight content of the active mgredient the lipophilic matrix usually ranges from 5 to 95%.
  • the inert lipophilic matrix is reduced into granules by an extrusion and/or granulation process, or any other known processes which retain the homogeneous dispersion and matrix structure of the starting mixture.
  • the hydrophilic matrix consists of excipients known as hydrogels, i.e. substances which pass from the dry state to the hydrated one, undergo the so-called "molecular relaxation” , namely a remarkable increase mass and weight following the coordination of a large number of water molecules by the polar groups present m the polymeric chains of the excipients themselves.
  • hydrogels which can be used according to the invention are compounds selected from polymers or copolymers of acrylic or methacrylic acid, alkylvmyl polymers, hydroxyalkyl celluloses, carboxyalkyl celluloses, polysaccharides , dextr s, pectins, starches and derivatives, natural or synthetic gums, algmic acid.
  • the lipophilic matrix granules containing the active ingredient are mixed the with hydrophilic compounds cited above m a weight ratio typically ranging from 100:0.5 to
  • compositions m which the active ingredient is dispersed ooth m the lipophilic and the hydrophilic matrix, said compositions being preferably m the form of tablets, capsules and/or mmitablets.
  • the compression of the mixture of lipophilic matrix, hydrogel- forming compounds and, optionally, active ingredient non mglobated m the lipophilic matrix yields a macroscopically homogeneous structure m all its volume, namely a matrix containing a dispersion of the lipophilic granules m a hydrophilic matrix.
  • the tablets, capsules and/or mmitablets obtainable according to the invention can optionally be subjected to known coating processes with a gastro-resistant film, consisting of for example polymers of methacrylic acids (Eudragit ; ) or cellulose derivatives, such as cellulose acetophthalate .
  • the compositions of the invention can contain a high percentage of active ingredient compared with the total composition weight up to 95%, an advantageous characteristic m the case of mesalazme which requires rather high unitary doses . In terms of dissolution characteristics, the compositions of the invention provide a release profile of the active ingredient more homogeneous than the traditional systems.
  • Example 1 770 g of 5-ammosal ⁇ cyl ⁇ c acid are added m a kneader with 20 g of carnauba wax and 50 g of stearic acid with heating until homogeneous dispersion, then extruded into small granules while cold.
  • the inert matrix granules are loaded into a mixer m which 30 g of Carbopol 971P ⁇ R ' and 65 g of hydroxypropyl methylcellulose are sequentially added.
  • the resulting tablets are film-coated with cellulose acetophthalate or poly ethacrylates and a plasticizer to provide gastric resistance and prevent the early release of product m the stomach.
  • the dissolution profile of these tablets shows the release of an active mgredient amount lower than 30% within the first hour of permanence m simulated enteric juice, an amount lower than 60% at the fourth hour and an amount lower than 90% at the eighth hour, thus proving that the double matrix effectively controls dissolution.
  • the resulting granules are loaded into a mixer m which starch glycolate are sequentially added. After a first mixing step, 11 g of silica colloidal and 11 g of magnesium stearate are added. The final mixture is homogenized, then tabletted to a unitary weight of 1144 mg/tablet .
  • the resulting tablets are then film coated with polymethacrylates or cellulose acetophthalate and plasticizers to provide gastric resistance.
  • 850 g of 5-am ⁇ nosal ⁇ cyl ⁇ c acid are added m granulator/kneader with 9 g of beeswax and 22 g of palmitic acid with heating, until homogeneous dispersion; then worked to a granulate m a high shear granulating device.
  • the resulting granules are then loaded into a mixer which is added succession with 45.5 g of hydroxypropyl methylcellulose, 45.5 g of microcrystallme cellulose, 20 g of sodium starch glycolate, 22 g of colloidal silica and 22 g of magnesium stearate. After homogenization, the final mixture is tabletted to a unitary weight of 975 mg/tablet.
  • the resulting tablets are then film coated with polymethacrylates or acetophthalate of cellulose and plasticizers to provide gastric resistance.
  • 1100 g of 5-ammosal ⁇ cyl ⁇ c acid are added granulator/kneader with 10 g of wax carnauba and 20 g of stearic acid.
  • 10 g of polyacrylamide, 39.5 of microcrystallme cellulose and 22 g of colloidal silica are separately loaded into the homogenizer/granulator to obtain a homogeneous solid mixture, which is placed m the mixer where the active ingredient has been granulated and homogenized.
  • 49.5 g of hydroxypropyl methylcellulose and 12 g of sodium algmate are thoroughly mixed, then added with 5 g of calcium carbonate, 34.5 g of microcrystallme cellulose and 11 g of magnesium stearate.
  • the mixture is homogenized, then tabletted to a final unitary weight of 1194 mg/tablet.
  • the resulting tablets are then film-coated with polymethacrylates or cellulose acetophthalate and plasticizers to provide gastric resistance.
  • the dissolution profile of these tablets after a lag time of permanence m the stomach and partly m the intestine provides the release of no more than 35% withm the first hour, no more than 50% withm two hours, no more than 70% withm four hours, no more than 90% withm eight hours .
  • Example 5 1200 g of 5 -ammosalicylic acid are added m mixer with
  • the resulting granules are loaded into a mixer, then 70 g of hydroxypropyl methylcellulose and 20 g of sodium starch glycolate are sequentially added.
  • the resulting tablets are then film-coated with polymethacrylates or cellulose acetophthalate and plasticizers to provide gastric resistance.
  • the dissolution profile of these tablets after a lag time of permanence in the stomach and partly in the intestine provides the release of no more than 30% within the first hour, no more than 50% within two hours, no more than 70% within four hours, no more than 90% within eight hours.

Abstract

Controlled-release oral pharmaceutical compositions containing as active ingredient 5-amino-salicylic acid, comprising: a) an inner lipophilic matrix consisting of substances with melting point below 90 °C in which the active ingredient is at least partly inglobated; b) an outer hydrophilic matrix in which the lipophilic matrix is dispersed; c) optionally other excipients.

Description

MESALAZINE CONTROLLED RELEASE ORAL PHARMACEUTICAL COMPOSITIONS
The present invention relates to controlled release oral pharmaceutical compositions containing as active ingredient 5 -ammo salicylic acid, also named mesalazme.
BACKGROUND OF THE INVENTION
Mesalazme is used m the treatment of Chron ' s disease and ulcerative colitis thanks to its antimflammatory activity on the intestinal mucuses. Controlled-release formulations of mesalazme are disclosed WO 95/16451, EP 0 453 001, EP 0 377 477.
The preparation of a sustained, controlled, delayed or anyhow modified release form can be carried out according to different known techniques:
1. The use of inert matrices, in which the mam component of the matrix structure opposes some resistance to the penetration of the solvent due to the poor affinity towards aqueous fluids; such property being known as lipophilia .
2. The use of hydrophilic matrices, which the ma component of the matrix structure opposes high resistance to the progress of the solvent, m that the presence of strongly hydrophilic groups m its chains, mainly branched, remarkably increases viscosity inside the hydrated layer.
3. The use of bioerodible matrices, which are capable of being degraded by the enzymes of some biological compartment .
All the procedures listed above suffer, however, from drawbacks and imperfections.
Inert matrices, for example, generally entail non- linear, but esponential, release of the active mgredient.
Hydrophilic matrices have a linear behaviour until a certain fraction of active ingredient has been released, then they significantly deviate from linear release.
Bioerodible matrices are ideal to carry out the so- called "site-release", but they involve the problem of finding the suitable enzyme or reactive to degradation. Furthermore, they frequently release m situ metabolites that are not wholly toxicologically inert.
A number of formulations based on inert lipophilic matrices have been described: Drug Dev. Ind. Pharm. 13 (6), 1001-1022, (1987) discloses a process making use of varying amounts of colloidal silica as a poπzation element for a lipophilic inert matrix m which the active ingredient is incorporated .
The same notion of canalization of an inert matrix is described m US 4,608,248 m which a small amount of a hydrophilic polymer is mixed with the substances forming an inert matrix, m a non sequential compenetration of different matrix materials.
EP 375,063 discloses a technique for the preparation of multiparticulate granules for the controlled-release of the active ingredient which comprises co-dissolution of polymers or suitable substances to form a inert matrix with the active ingredient and the subsequent deposition of said solution on an inert carrier which acts as the core of the device. Alternatively, the inert carrier is kneaded with the solution containing the inert polymer and the active ingredient, then the organic solvent used for the their dissolution is evaporated off to obtain a solid residue. The resulting structure is a "reservoir", i.e. is not macroscopically homogeneous along all the symmetry axis of the final form.
The same "reservoir" structure is also described Chem. Pharm. Bull. 46 (3), 531-533,, (1998) which improves the application through an annealing technique of the inert polymer layer which is deposited on the surface of the pellets .
To the "reservoir" structure also belong the products obtained according to the technique described WO 93/00889 which discloses a process for the preparation of pellets m hydrophilic matrix which comprises: dissolution of the active ingredient with gastro- resistant hydrophilic polymers m organic solvents; drying of said suspension; - subsequent kneading and formulation of the pellets m a hydrophilic or lipophilic matrix without distinction of effectiveness between the two types of application.
EP 0 453 001 discloses a multiparticulate with "reservoir" structure inserted m a hydrophilic matrix. The basic multiparticulate utilizes two coating membranes to decrease the release rate of the active ingredient, a pH- dependent membrane with the purpose of gastric protection and a pH- independent methacrylic membrane w th the purpose of slowing down the penetration of the aqueous fluid. WO 95/16451 discloses a composition only formed by a hydrophilic matrix coated with a gastro-resistant film for controlling the dissolution rate of mesalazme.
When preparing sustained-, controlled- release dosage forms of a medicament topically active m the gastrointestinal tract, it is important to ensure a controlled release from the first phases following administration, i.e. when the inert matrices have the maximum release rate inside the logarithmic phase, namely the higher deviation from linear release. Said object has been attained by the present invention, which also allows to prepare compositions characterized by a high content m active ingredient.
DISCLOSURE OF THE INVENTION
The invention provides controlled release oral pharmaceutical compositions containing 5-ammo-salιcylιc acid as the active ingredient, comprising: a) an inner lipophilic matrix consisting of substances with melting point below 90CC m which the active ingredient is at least partially mglobated; b) an outer hydrophilic matrix m which the lipophilic matrix is dispersed; c) optionally other excipients. DETAILED DISCLOSURE OF THE INVENTION The compositions of the invention can be ootamed with a method comprising the following steps: a) the active ingredient is first mglobated m a low melting excipient or mixture of excipients, while heating to soften and/or melt the excipient itself, which thereby incorporates the active ingredient by simple dispersion.
After cooling at room temperature an inert matrix forms, which can be reduced size to obtain matrix granules containing the active ingredient particles. b) the inert matrix granules are subsequently mixed together with one or more hydrophilic water-swellable excipients .
This way, when the tablet is contacted with biological fluids, a high viscosity swollen layer is formed, which coordinates the solvent molecules and acts as a barrier to penetration of the aqueous fluid itself mside the new structure. Said barrier antagonizes the starting "burst effect" caused by the dissolution of the medicament mglobated mside the inert matrix, which is m its turn mside the hydrophilic matrix. The lipophilic matrix consists of substances selected from unsaturated and/or hydrogenated fatty acids, salts, esters or amides thereof, fatty acids mono-, di- or triglyceπds , waxes, ceramides, cholesterol derivatives or mixtures thereof having melting point within the range of 40 to 90 ° C .
If desired, a fatty acid calcium salt may be incorporated m the lipophilic matrix which is subsequently dispersed m a hydrophilic matrix prepared with algmic acid, thus remarkably increasing the hydrophilic matrix viscosity following penetration of the solvent front until contact with the lipophilic matrix granules dispersed mside .
The weight content of the active mgredient the lipophilic matrix usually ranges from 5 to 95%.
The inert lipophilic matrix is reduced into granules by an extrusion and/or granulation process, or any other known processes which retain the homogeneous dispersion and matrix structure of the starting mixture. The hydrophilic matrix consists of excipients known as hydrogels, i.e. substances which pass from the dry state to the hydrated one, undergo the so-called "molecular relaxation" , namely a remarkable increase mass and weight following the coordination of a large number of water molecules by the polar groups present m the polymeric chains of the excipients themselves.
Examples of hydrogels which can be used according to the invention are compounds selected from polymers or copolymers of acrylic or methacrylic acid, alkylvmyl polymers, hydroxyalkyl celluloses, carboxyalkyl celluloses, polysaccharides , dextr s, pectins, starches and derivatives, natural or synthetic gums, algmic acid.
The lipophilic matrix granules containing the active ingredient are mixed the with hydrophilic compounds cited above m a weight ratio typically ranging from 100:0.5 to
100:20 (lipophilic matrix: hydrophilic matrix) . Part of mesalazme can optionally be mixed with hydrophilic substances to provide compositions m which the active ingredient is dispersed ooth m the lipophilic and the hydrophilic matrix, said compositions being preferably m the form of tablets, capsules and/or mmitablets.
The compression of the mixture of lipophilic matrix, hydrogel- forming compounds and, optionally, active ingredient non mglobated m the lipophilic matrix, yields a macroscopically homogeneous structure m all its volume, namely a matrix containing a dispersion of the lipophilic granules m a hydrophilic matrix.
The tablets, capsules and/or mmitablets obtainable according to the invention can optionally be subjected to known coating processes with a gastro-resistant film, consisting of for example polymers of methacrylic acids (Eudragit ; ) or cellulose derivatives, such as cellulose acetophthalate . The compositions of the invention can contain a high percentage of active ingredient compared with the total composition weight up to 95%, an advantageous characteristic m the case of mesalazme which requires rather high unitary doses . In terms of dissolution characteristics, the compositions of the invention provide a release profile of the active ingredient more homogeneous than the traditional systems. In fact, the immediate penetration of water mside the superficial layer of the hydrophilic matrix and the consequent swelling due to the distension of the polymeric chains of the hydrogels, gives rise to a high viscosity hydrated front which prevents the further penetration of water, linearly slowing down the dissolution process to a well determined point which can be located at about half the thickness until the further penetration of water would cause the disintegration of the hydrophilic layer and therefore the release of the content which, consisting of lipophilic granules, however induces the diffusional mechanism typical of these structures and therefore further slows down the dissolution profile of the active mgredient.
The following examples illustrate the invention m greater detail .
Example 1 770 g of 5-ammosalιcylιc acid are added m a kneader with 20 g of carnauba wax and 50 g of stearic acid with heating until homogeneous dispersion, then extruded into small granules while cold.
The inert matrix granules are loaded into a mixer m which 30 g of Carbopol 971P ^R' and 65 g of hydroxypropyl methylcellulose are sequentially added.
After a first mixing step for homogeneously dispersing the powders, 60 g of microcrystallme cellulose and 5 g of magnesium stearate are added. After mixing, the final mixture is tabletted to unitary weight of 649 mg/tablet or
510 mg/tablet to obtain 500 and 400 mg dosages, respectively.
The resulting tablets are film-coated with cellulose acetophthalate or poly ethacrylates and a plasticizer to provide gastric resistance and prevent the early release of product m the stomach.
The dissolution profile of these tablets shows the release of an active mgredient amount lower than 30% within the first hour of permanence m simulated enteric juice, an amount lower than 60% at the fourth hour and an amount lower than 90% at the eighth hour, thus proving that the double matrix effectively controls dissolution.
Example 2
1000 g of 5-ammosalιcylιc acid are added m a kneader with 10 g of carnauba wax and 20 g of stearic acid with heating until homogeneous dispersion, then extruded into small granules while cold or directly granulated m a high rate mixer.
The resulting granules are loaded into a mixer m which starch glycolate are sequentially added. After a first mixing step, 11 g of silica colloidal and 11 g of magnesium stearate are added. The final mixture is homogenized, then tabletted to a unitary weight of 1144 mg/tablet .
The resulting tablets are then film coated with polymethacrylates or cellulose acetophthalate and plasticizers to provide gastric resistance.
The dissolution profile of these tablets after a lag time of permanence m the stomach and partly m the intestine provides the release of no more than 30% within the first hour, no more than 55% within two hours, no more than 70% withm four hours, no more than 90% within eight hours . Example 3
850 g of 5-amιnosalιcylιc acid are added m granulator/kneader with 9 g of beeswax and 22 g of palmitic acid with heating, until homogeneous dispersion; then worked to a granulate m a high shear granulating device. The resulting granules are then loaded into a mixer which is added succession with 45.5 g of hydroxypropyl methylcellulose, 45.5 g of microcrystallme cellulose, 20 g of sodium starch glycolate, 22 g of colloidal silica and 22 g of magnesium stearate. After homogenization, the final mixture is tabletted to a unitary weight of 975 mg/tablet.
The resulting tablets are then film coated with polymethacrylates or acetophthalate of cellulose and plasticizers to provide gastric resistance.
The dissolution profile of these tablets after a lag time of permanence m the stomach and partly m the intestine provides the release of no more than 30% withm the first hour, no more than 50% withm two hours, no more than 70% withm four hours, no more than 90% withm eight hours . Example 4
1100 g of 5-ammosalιcylιc acid are added granulator/kneader with 10 g of wax carnauba and 20 g of stearic acid. 10 g of polyacrylamide, 39.5 of microcrystallme cellulose and 22 g of colloidal silica are separately loaded into the homogenizer/granulator to obtain a homogeneous solid mixture, which is placed m the mixer where the active ingredient has been granulated and homogenized. 49.5 g of hydroxypropyl methylcellulose and 12 g of sodium algmate are thoroughly mixed, then added with 5 g of calcium carbonate, 34.5 g of microcrystallme cellulose and 11 g of magnesium stearate. The mixture is homogenized, then tabletted to a final unitary weight of 1194 mg/tablet. The resulting tablets are then film-coated with polymethacrylates or cellulose acetophthalate and plasticizers to provide gastric resistance.
The dissolution profile of these tablets after a lag time of permanence m the stomach and partly m the intestine provides the release of no more than 35% withm the first hour, no more than 50% withm two hours, no more than 70% withm four hours, no more than 90% withm eight hours .
Example 5 1200 g of 5 -ammosalicylic acid are added m mixer with
10 g of carnauba wax and 20 g of stearic acid, with heating until homogeneous dispersion, then cold extruded into small granules or directly granulated m the high rate mixer.
The resulting granules are loaded into a mixer, then 70 g of hydroxypropyl methylcellulose and 20 g of sodium starch glycolate are sequentially added.
After a first mixing step, 80 g of sodium carbonate and 5 g of magnesium stearate are added. The final mixture is homogenized, then tabletted to unitary weight of 1375 mg/tablet .
The resulting tablets are then film-coated with polymethacrylates or cellulose acetophthalate and plasticizers to provide gastric resistance. The dissolution profile of these tablets after a lag time of permanence in the stomach and partly in the intestine provides the release of no more than 30% within the first hour, no more than 50% within two hours, no more than 70% within four hours, no more than 90% within eight hours.

Claims

1 Controlled-release oral pharmaceutical compositions containing as active ingredient 5-ammo-salιcylιc acid, comprising: a) an inner lipophilic matrix consisting of substances with melting pomt below 90°C m which the active ingredient is at least partly mglobated; b) an outer hydrophilic matrix m which the lipophilic matrix is dispersed; c) optionally other excipients.
2. Compositions as claimed m claim 1, wherein the lipophilic matrix consists of compounds selected from unsaturated and/or hydrogenated fatty acids, salts, esters or amides thereof, fatty acid mono-, di- or triglyceπds , waxes, ceramides, cholesterol derivatives.
3. Compositions as claimed m claim 1 or 2 , wherein 5- ammosalicylic acid is mglobated m the molten lipophilic matrix by kneading, extrusion and/or granulation.
4. Compositions as claimed m any one of the above claims, wherein the hydrophilic matrix consists of hydrogel -forming compounds .
5. Compositions as claimed m claim 4 wherein the hydrophilic matrix consists of compounds selected from polymers or copolymers of acrylic or methacrylic acid, alkylvmyl polymers, hydroxyalkyl celluloses, carboxyalkyl celluloses, polysacchaπdes , dextrms, pectins, starches and derivatives, algmic acid, natural or synthetic gums.
6. Compositions as claimed m any one of the above claims, comprising a gastro-resistant outer coating.
7. Compositions as claimed m claim 6, wherein the gastro- resistant coating consists of methacrylic acid polymers or cellulose derivatives.
8. Compositions as claimed m any one of the above claims, in the form of tablets, capsules, minitablets, wherein the active ingredient is completely contained inside the lipophilic matrix.
9. Compositions as claimed in any one of claims 1 to 7 , in the form of tablets, capsules, minitablets, wherein the active ingredient is dispersed both in the hydrophilic matrix and the lipophilic matrix.
10. Compositions as claimed in any one of the above claims, wherein the percentage of the active ingredient on the total composition weight ranges from 80 to 95%
11. A process for the preparation of the compositions of claims 1-10, which comprises: a) melt granulation of at least one portion of the active ingredient with the lipophilic excipients with melting point lower than 90 °C; b) mixing the granules from step a) with the hydrophilic excipients and subsequent tabletting or compression.
PCT/EP2000/005321 1999-06-14 2000-06-08 Mesalazine controlled release oral pharmaceutical compositions WO2000076481A1 (en)

Priority Applications (11)

Application Number Priority Date Filing Date Title
AT00935194T ATE235234T1 (en) 1999-06-14 2000-06-08 CONTROLLED RELEASE PHARMACEUTICAL COMPOSITIONS CONTAINING MESALAZINE
EP00935194A EP1198226B1 (en) 1999-06-14 2000-06-08 Mesalazine controlled release oral pharmaceutical compositions
US10/009,491 US6773720B1 (en) 1999-06-14 2000-06-08 Mesalazine controlled release oral pharmaceutical compositions
DK00935194T DK1198226T3 (en) 1999-06-14 2000-06-08 Controlled-release oral pharmaceutical mesalazine compositions
CA002377299A CA2377299C (en) 1999-06-14 2000-06-08 Mesalazine controlled release oral pharmaceutical compositions
JP2001502815A JP4727875B2 (en) 1999-06-14 2000-06-08 Mesalazine controlled release oral pharmaceutical composition
MXPA01012888A MXPA01012888A (en) 1999-06-14 2000-06-08 Mesalazine controlled release oral pharmaceutical compositions.
AU50772/00A AU5077200A (en) 1999-06-14 2000-06-08 Mesalazine controlled release oral pharmaceutical compositions
DE60001835T DE60001835T2 (en) 1999-06-14 2000-06-08 MESALAZINE CONTAINING PHARMACEUTICAL COMPOSITIONS WITH CONTROLLED RELEASE
NO20016107A NO329402B1 (en) 1999-06-14 2001-12-14 Oral pharmaceutical compositions with mesalazine-controlled release and method of preparation thereof.
HK02107880.6A HK1046247B (en) 1999-06-14 2002-10-30 Mesalazine controlled release oral pharmaceutical compositions

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
IT1999MI001316A ITMI991316A1 (en) 1999-06-14 1999-06-14 ORAL PHARMACEUTICAL COMPOSITIONS WITH MODIFIED RELEASE OF MESALAZINE
ITMI99A001316 1999-06-14

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WO2000076481A1 true WO2000076481A1 (en) 2000-12-21

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US8858992B2 (en) * 2003-04-23 2014-10-14 Ferring B.V. High drug load mesalazine sachet
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GB2406517A (en) * 2003-09-30 2005-04-06 Alpharma Ltd Controlled release micropellets of tetracyclines
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