US20040180085A1 - Quickly disintegrating solid preparations - Google Patents

Quickly disintegrating solid preparations Download PDF

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Publication number
US20040180085A1
US20040180085A1 US10/810,898 US81089804A US2004180085A1 US 20040180085 A1 US20040180085 A1 US 20040180085A1 US 81089804 A US81089804 A US 81089804A US 2004180085 A1 US2004180085 A1 US 2004180085A1
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preparation according
particle diameter
mean particle
saccharide
sugar alcohol
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US10/810,898
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Kazuhiro Ohkouchi
Hiroyoshi Koyama
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Takeda Pharmaceutical Co Ltd
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Takeda Pharmaceutical Co Ltd
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Priority to US10/810,898 priority Critical patent/US20040180085A1/en
Publication of US20040180085A1 publication Critical patent/US20040180085A1/en
Priority to US11/167,139 priority patent/US20050238712A1/en
Assigned to TAKEDA PHARMACEUTICAL COMPANY LIMITED reassignment TAKEDA PHARMACEUTICAL COMPANY LIMITED CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: TAKEDA CHEMICAL INDUSTRIES, LTD.
Abandoned legal-status Critical Current

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/33Heterocyclic compounds
    • A61K31/395Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
    • A61K31/41Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having five-membered rings with two or more ring hetero atoms, at least one of which being nitrogen, e.g. tetrazole
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/33Heterocyclic compounds
    • A61K31/395Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
    • A61K31/41Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having five-membered rings with two or more ring hetero atoms, at least one of which being nitrogen, e.g. tetrazole
    • A61K31/425Thiazoles
    • A61K31/4261,3-Thiazoles
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/0012Galenical forms characterised by the site of application
    • A61K9/0053Mouth and digestive tract, i.e. intraoral and peroral administration
    • A61K9/0056Mouth soluble or dispersible forms; Suckable, eatable, chewable coherent forms; Forms rapidly disintegrating in the mouth; Lozenges; Lollipops; Bite capsules; Baked products; Baits or other oral forms for animals
    • 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
    • A61K9/2004Excipients; Inactive ingredients
    • A61K9/2013Organic compounds, e.g. phospholipids, fats
    • A61K9/2018Sugars, or sugar alcohols, e.g. lactose, mannitol; Derivatives thereof, e.g. polysorbates
    • 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
    • A61K9/2004Excipients; Inactive ingredients
    • A61K9/2022Organic macromolecular compounds
    • A61K9/205Polysaccharides, e.g. alginate, gums; Cyclodextrin
    • A61K9/2054Cellulose; Cellulose derivatives, e.g. hydroxypropyl methylcellulose
    • 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
    • A61K9/2004Excipients; Inactive ingredients
    • A61K9/2022Organic macromolecular compounds
    • A61K9/205Polysaccharides, e.g. alginate, gums; Cyclodextrin
    • A61K9/2059Starch, including chemically or physically modified derivatives; Amylose; Amylopectin; Dextrin
    • 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
    • A61K9/2072Pills, tablets, discs, rods characterised by shape, structure or size; Tablets with holes, special break lines or identification marks; Partially coated tablets; Disintegrating flat shaped forms
    • A61K9/2077Tablets comprising drug-containing microparticles in a substantial amount of supporting matrix; Multiparticulate tablets

Definitions

  • the present invention relates to solid preparations that disintegrate quickly in the presence of saliva or a small amount of water in the oral cavity, particularly those useful as intraorally disintegrating solid preparations.
  • an intraorally disintegrating tablet preparation is described in the International Publication No. WO93/12769, which is obtained by suspending a drug, lactose, and mannitol in aqueous agar solution, filling the resulting suspension in a molding pocket or the like, and drying the molding under reduced pressure.
  • This molding shows quick disintegration but is more fragile than usual tablets so that it is readily cracked, chipped, etc. and a long time is required for its production; thus the process for production is poor in productivity.
  • D-mannitol is known to produce a very high friction (binding) at the surface of the mortar wall during compression molding.
  • pulverization is undesirable not only because it strengthens the friction at the surface of the mortar wall but also from the viewpoint of handling because it reduces fluidity during the production of the tablet preparation (Summary of lectures at the 14 th Symposium on Particulate Preparations and Designs, p.115 (1997), Handbook of Pharmaceutical Excipients 2 nd Ed., p.294 (1994), The Pharmaceutical Press).
  • the inventors have conducted extensive studies on intraorally disintegrating tablet preparations that can be industrially produced with common installations without requiring any special manufacturing technique. As the result of the studies, the inventors found that an intraorally disintegrating tablet preparation that has a practically not problematic hardness, disintegrates quickly, and has no problem in productivity can be obtained by dry tabletting even under a low compression pressure when an active ingredient is combined with a relatively coarse powder of a saccharide or a sugar alcohol, a disintegrating agent, and a cellulose compound. As a result of further studies, the inventors have completed the present invention. That is, the invention relates to:
  • a quickly disintegrating solid preparation comprising a) an active ingredient, b) a saccharide or a sugar alcohol with the mean particle diameter of 30 ⁇ m to 300 ⁇ m (not less than 30 ⁇ m and not more 300 ⁇ m), c) a disintegrating agent, and d) a cellulose compound;
  • the saccharide is one or more saccharides selected from the group consisting of glucose, fructose, lactose, sucrose, and trehalose;
  • sugar alcohol is one or more sugar alcohols selected from the group consisting of D-mannitol, erythritol, xylitol, maltitol, and sorbitol;
  • disintegrating agent is one or more disintegrating agents selected from the group consisting of carmellose calcium, carboxymethylstarch sodium, croscarmellose sodium, and crospovidone;
  • a quickly disintegrating solid preparation containing a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 ⁇ m to below 90 ⁇ m (not less than 5 ⁇ m and below 90 ⁇ m), b-2) a saccharide or a sugar alcohol with the mean particle diameter of 90 ⁇ m to 500 ⁇ m (not less than 90 ⁇ m and not more than 500 ⁇ m), c) a disintegrating agent, and d) a cellulose compound;
  • saccharide is one or more saccharides selected from the group consisting of glucose, fructose, lactose, sucrose, and trehalose;
  • sugar alcohol is one or more sugar alcohols selected from the group consisting of D-mannitol, erythritol, xylitol, maltitol, and sorbitol;
  • Active ingredients used in the present invention may be in any form, i.e. solid, crystal, oil, or solution, and one or more agents selected from the group consisting of, for example, alimentary roborants, antipyretic analgesic antiphlogistics, psychotropic agents, anxiolytics, anti-depressants, hypnotic sedatives, antispasmodics, central nervous system acting drugs, cerebral metabolism improving agents, cerebral circulation improving agents, antiepileptics, sympathomimetics, digestives, antacids, antiulcer agents, antitussive expectorants, antiemetics, respiratory stimulants, bronchodilators, antiallergic agents, dental stomatic agents, anti-histamines, cardiacs, antiarrhythmic agents, diuretics, hypotensive agents, angiotonics, coronary vasodilators, peripheral vasodilators, antihyperlipemic drugs, cholagogues, antibiotics, chemotherapeutics, ant
  • Alimentary roborants include vitamins such as vitamin A, vitamin D, vitamin E (d- ⁇ -tocopherol acetate, etc.), vitamin B1 (dibenzoyl thiamine, fursultiamine hydrochloride, etc.), vitamin B2 (riboflavin butyrate, etc.), vitamin B6 (pyridoxine hydrochloride, etc.), vitamin C (ascorbic acid, sodium L-ascorbate, etc.), and vitamin B12 (hydroxocobalamin acetate, cyanocobalamin, etc.), minerals such as calcium, magnesium, iron, etc., protein, amino acids, oligosaccharides, crude drugs, and the like.
  • vitamins such as vitamin A, vitamin D, vitamin E (d- ⁇ -tocopherol acetate, etc.), vitamin B1 (dibenzoyl thiamine, fursultiamine hydrochloride, etc.), vitamin B2 (riboflavin butyrate, etc.), vitamin B6 (pyridoxine hydro
  • Antipyretic analgesic antiphlogistics include aspirin, acetaminophen, ethenzamide, ibuprofen, diphenhydramine hydrochloride, chlorpheniramine dl-maleate, dihydrocodeine phosphate, noscapine, methylephedrine hydrochloride, phenylpropanolamine hydrochloride, caffeine, anhydrous caffeine, serrapeptase, lysozyme chloride, tolfenamic acid, mefenamic acid, diclofenac sodium, flufenamic acid, salicylamide, aminopyrine, ketoprofen, indometacin, bucolome, pentazocine, and the like.
  • Psychotropic agents include chlorpromazine, reserpine, and the like.
  • Anxiolytics include alprazolam, chlordiazepoxide, diazepam, and the like.
  • Antidepressants include imipramine, maprotilline hydrochloride, amphetamine, and the like.
  • Hypnotic sedatives include estazolam, nitrazepam, diazepam, perlapine, phenobarbital sodium, and the like.
  • Antispasmodics include scopolamine hydrobromide, diphenhydramine hydrochloride, papaverine hydrochloride, and the like.
  • Central nervous system acting agents include citicoline, and the like.
  • Cerebral metabolism improving agents include meclofenoxate hydrochloride, and the like. Cerebral circulation improving agents include vinpocetine, and the like. Antiepileptics include phenytoin, carbamazepine, and the like. Sympathomimetics include isopreterenol hydrochloride, and the like.
  • Digestives include stomachic digestives such as diastase, saccharated pepsin, scopolia extract, cellulase AP3, lipase AP, cinnamon oil, etc., and drugs for controlling intestinal function such as berberine chloride, antibiotics-resistant lactic acid bacteriae, lactobacillus bifidus, etc.
  • Antacids include magnesium carbonate, sodium bicarbonate, magnesium aluminometasillicate, synthetic hydrotalcite, precipitated calcium carbonate, magnesium oxide, and the like.
  • Anti-ulcer agents include lansoprazole, omeprazol, rabeprazole, famotidine, cimetidine, ranitidine hydrochloride, and the like.
  • Antitussive expectorants include chloperastine hydrochloride, dextromethorphane hydrobromide, theophylline, potassium guaiacolsulfonate, guaifenesin, codeine phosphate, and the like.
  • Antiemetics include difenidol hydrochloride, metoclopramide, and the like.
  • Respiratory stimulants include levallorphan tartrate, and the like.
  • Bronchodilators include theophylline, salbutamol sulfate, and the like.
  • Antiallergic agents include amlexanox, seratrodast, and the like.
  • Dental stomatic agents include oxytetracycline, triamcinolone acetonide, chlorhexidine hydrochloride, lidocaine, and the like.
  • Antihistamines include diphenhydramine hydrochloride, promethazine, isothipendyl hydrochloride, chlorpheniramine dl-maleate, and the like.
  • Cardiacs include caffeine, digoxin, and the like.
  • Antiarrhythmic agents include procainamide hydrochloride, propranolol hydrochloride, pindolol, and the like.
  • Diuretics include isosorbide, furosemide, hydrochlorothiazide, and the like.
  • Hypotensive agents include derapril hdyrochloride, captopril, hydraladine hydrochloride, labetalol hydrochloride, manidipine hydrochlorodie, candesartan cilexetil, methyldopa, perindopril erbumine, and the like.
  • Angiotonics include phenylepherine hydrochloride, and the like.
  • Coronary vasodilators include carbocromen hydrochloride, molsidomine, verapamil hydrochloride, and the like.
  • Peripheral vasodilators include cinna
  • Antihyperlipemic agents include cerivastatin sodium, simvastain, pravastatin sodium, atorvastatin calcium hydrate, and the like.
  • Cholagogues include dehydrocholic acid, trepibutone, and the like.
  • Antibiotics include cefems such as cefalexin, cefaclor, amoxicillin, pivmecillinam hydrochloride, cefotiam hexetil hydrochloride, cefadroxil, cefixime, cefditoren pivoxil, cefteram pivoxil, cefpodoxime proxetil, etc., synthetic ones such as ampicillin, ciclacillin, nalidixic acid, enoxacin, etc., monobactams such as carumonam sodium, penems, carbapenems, and the like.
  • Chemotherapeutics include sulfamethizole, and the like.
  • Antidiabetic agents include tolbutamide, voglibose, pioglitazone hydrochloride, glibenclamide, troglitazone, and the like.
  • Osteoporosis treating drugs include ipriflavone, and the like.
  • Skeletal muscle relaxants include methocarbamol, and the like.
  • Antispasmodic drugs meclizine hydrochloride, dimenhydrinate, and the like.
  • Antirheumatics include methotrexate, bucillamine, and the like.
  • Hormone drugs include liothyronine sodium, dexamethasone phosphate, predonisolone, oxendolone, leuprorelin acetate, and the like.
  • Alkaloid narcotics include opium, morphine hydrochloride, ipecac, oxycodone hydrochloride, opium alkaloids hydrochloride, cocaine hydrochloride, and the like.
  • Sulfa drugs include sulfisomidine, sulfamethizole, and the like.
  • Gout treating drugs include allopurinol, colchicine, and the like.
  • Anticoagulants include dicoumarol, and the like.
  • Antineoplastic drugs include 5-fluorouracil, uracil, mitomycin, and the like.
  • manidipine hydrochloride voglibose, candesartan cilexetil, pioglitazone hydrochloride, etc., particularly manidipine hydrochloride, are used preferably.
  • the active ingredient may be the one diluted with a diluent used generally in the fields of medicine and foods.
  • An active ingredient after treatment for masking the bitterness of the active ingredient may also be used.
  • the amount of the active ingredient varies depending on the nature and dose of the active ingredient, and is 0.01 to 40 parts, preferably 0.01 to 20 parts, per 100 parts by weight of the solid pharmaceutical preparation of the invention.
  • Saccharides used in the invention include glucose, fructose, lactose, sucrose, trehalose, and the like, among which lactose is used preferably.
  • Sugar alcohols used in the invention include D-mannitol, erythritol, xylitol, maltitol, sorbitol, and the like, among which D-mannitol is used preferably.
  • One or more saccharides or one or more sugar alcohols may be used in combination, or a combination of a saccharide and a sugar alcohol may be used.
  • the mean particle diameter of the saccharide or the sugar alcohol is 30 to 300 ⁇ m (measured by, for example, the laser diffraction particle size analyzer, SYMPATEC Co.: HELOS & RODOS, etc.), preferably above 30 ⁇ m, more preferably 31 ⁇ m or more, and further more preferably 35 to 200 ⁇ m.
  • Saccharides or sugar alcohols of such a particle size are commercially available (Lactose 100M and Lactose 200M of DMV, granulated powder lactose Dilactose R and Dilactose S of Freund Industry Co., Ltd., Tablettose and Flowlac 100 of Meggle Japan, Mannit S and Marinecrystal of Towa Chemical Industry Co., Ltd., 1.05980 of Merck Co., Mannidex of Cerestar Japan, Ltd., Trehalose P of Asahi Chemical Industry Co., Ltd., Sorbitol DP-50M and Amalty MR-50 of Towa Chemical Industry Co., Ltd., Pure Fructose S of Kato Kagaku, and the like).
  • Saccharides and sugar alcohols with the mean particle diameter of 5 to 30 ⁇ m are commercially available (Granulac 230 and Solvolac 400 of Meggle Japan, Mannit P, Xylit P, and Amalty MR-100 of Towa Chemical Industry Co., Ltd., Erythritol (fine powder) of Nikken Chemicals Co., Ltd., and the like).
  • Saccharides and sugar alcholos with the mean particle diameter of 200 to 500 ⁇ m are commercially available (Sachelac 80 of Meggle Japan, Trehalose G and Xylitol XC of Asahi Chemical Industry Co., Ltd., Erythritol of Nikken Chemicals Co., Ltd., Anhydrous crystalline glucose TDA-S and Hydrated crystalline glucose TDH of San-ei Sucrochemical Co., Ltd., and the like).
  • saccharides and sugar alcohols with the mean particle diameter of not less than 500 ⁇ m are commercially available (Prismalac 40 of Meggle Japan, Pure Fructose of Kato Kagaku, Amalty MR-20 and Sorbitol DP-10M of Towa Chemical Industry Co., Ltd., and the like).
  • a saccharide or sugar alcohol with the necessary mean particle diameter may be obtained by a method such as pulverization from the commercially available product. Pulverization is performed by using a cutter mill, jet mill, hammer mill, or the like.
  • a saccharide or sugar alcohol with the mean particle diameter of 5 ⁇ m to below 90 ⁇ m (preferably 30 to below 90 ⁇ m) to strengthen the molding may be combined with a saccharide or sugar alcohol with the mean particle diameter of 90 ⁇ m to 500 ⁇ m (preferably 90 ⁇ m to 300 ⁇ m to increase fluidity during manufacturing.
  • a fine powder of a saccharide or sugar alcohol with the mean particle diameter of 5 ⁇ m to below 90 ⁇ m (preferably 30 to below 90 ⁇ m, more preferably 35 to 80 ⁇ m) with a coarse powder of a saccharide or sugar alcohol with the mean particle diameter of 90 ⁇ m to 500 ⁇ m (preferably 90 ⁇ m to 300 ⁇ m, more preferably 90 to 200 ⁇ m) it is recommendable to use one part of a fine powder of a saccharide or sugar alcohol with 0.1 to 10 parts, preferably 0.2 to 5 parts, of a coarse powder of a saccharide or sugar alcohol by weight.
  • the active ingredient is manidipine hydrochloride
  • it is recommendable to use one part of a fine powder of a saccharide or sugar alcohol usually with 0.2 to 3.5 parts, preferably with 0.3 to 2.5 parts, of a coarse powder of a saccharide or sugar alcohol by weight.
  • one or more saccharides or one or more sugar alcohols may be combined, or a fine powder of a saccharide or sugar alcohol may be combined with a coarse powder of the same or a different saccharide or sugar alcohol.
  • a mixture obtained by mixing a fine powder of a saccharide or sugar alcohol with a coarse powder of a saccharide or sugar alcohol may be molded into a quickly disintegrating solid preparation of the invention, or a fine powder of a saccharide or sugar alcohol and a coarse powder of a saccharide or sugar alcohol are divided into two or more groups to prepare granules, followed by molding into the quickly disintegrating solid preparation of the invention.
  • the mixture of a fine powder of a saccharide or sugar alcohol with a coarse powder of a saccharide or sugar alcohol is used as the starting material
  • the mixture has desirably two or more peaks in the particle size distribution and the mean particle diameter of the mixture is desirably 30 ⁇ m to 300 ⁇ m.
  • a desirable combination of a fine powder of a saccharide or sugar alcohol with a coarse powder of a saccharide or sugar alcohol is exemplified by the mixture of D-mannitol with the mean particle diameter of 30 ⁇ m to below 90 ⁇ m with D-mannitol with the mean particle diameter of 90 ⁇ m to 300 ⁇ m.
  • the amount of a saccharide or sugar alcohol used is 40 to 95 parts, preferably 50 to 90 parts, per 100 parts of the solid pharmaceutical preparation by weight.
  • Disintegrating agents used include carmellose calcium, carboxymethyl starch sodium, croscarmellose sodium, crospovidone, and the like, and 0.5 to 15 parts, preferably 1 to 10 parts, thereof is used per 100 parts of the solid pharmaceutical preparation by weight.
  • Disintegrating agents are exemplified by Crospovidone [manufactured by ISP Inc. (USA), BASF (Germany)], Croscarmellose Sodium (FMC- Asahi Chemical Industry Co., Ltd.), Carmellose Calcium (Gotoku Yakuhin Co., Ltd.), and Carboxymethylstarch Sodium (Matsutani Kagaku Co., Ltd., Kimura Sangyo Co., Ltd., etc.).
  • the crospovidone product may be any cross-linked polymer that is 1-ethenyl-2-pyrrolidinone homopolymer, and usually a crospovidone product having a molecular weight of 1,000,000 or more is used.
  • Examples of commercially available crospovidone products are Cross-linked Povidone, Kollidon CL [manufactured by BASF (Germany)], Polyplasdone XL, Xl -10, and INF-10 [manufactured by ISP Inc. (USA)].
  • Cellulose compounds used are crystalline cellulose, powder cellulose, low substituted hydroxypropylcellulose, carmellose, and the like, and 0.5 to 40 parts, preferably 1 to 20 parts, thereof is used for 100 parts of the solid pharmaceutical preparation by weight.
  • Examples of crystalline cellulose products are CEOLUS KG801, Avicel PH101, PH102, PH301, PH302, and PH-F20, Avicel RC-A591NF (all manufactured by Asahi Chemical Industry Co., Ltd.), and the like, including also fine crystalline cellulose.
  • Examples of low substituted hydroxypropylcellulose products are low substituted hydroxylpropylcellulose of which content of hydroxypropoxyl group is 5 to 16% by weight such as Low Substituted Hydroxypropylcellulose LH11, LH21, LH31, LH22, LH32, LH20, LH30, LH32, and LH33 (all manufactured by Shin-Etsu Chemical Co., Ltd.), and the like. These are commercially available.
  • Low substituted hydroxypropylcellulose can be produced by a publicly known procedure, for example the procedure described in Patent Gazette No.57-53100(1982), or a similar procedure.
  • Active ingredients, disintegrating agents, and cellulose compounds may be used in combination of one or more of each.
  • the preparation of the invention may contain a starch product as an excipient such as corn starch, potato starch, wheat starch, rice starch, partially gelatinized starch, gelatinized starch, porous starch, and the like, and various additives used for production of general pharmaceutical preparations, in their respective suitable amounts, unless they interfere with the effect of the invention.
  • a starch product as an excipient such as corn starch, potato starch, wheat starch, rice starch, partially gelatinized starch, gelatinized starch, porous starch, and the like, and various additives used for production of general pharmaceutical preparations, in their respective suitable amounts, unless they interfere with the effect of the invention.
  • additives include excipients, binders, sour agents, foaming agents, artificial sweeteners, flavoring agents, lubricants, colorants, stabilizers, pH-modifiers, surfactants, and the like.
  • Excipients include inorganic excipients such as anhydrous calcium phosphate, precipitated calcium carbonate, calcium silicate, light anhydrous silicic acid, and the like.
  • Binders include hydroxypropylcellulose, hydroxypropylmethylcellulose, polyvinylpyrrolidone, powdered acacia, gelatin, pullulan, and the like.
  • Sour agents include citric acid, tartaric acid, malic acid, ascorbic acid, and the like.
  • Foaming agents include sodium bicarbonate, sodium carbonate, and the like.
  • Sweeteners include saccharin sodium, dipotassium glycylrrhizinate, aspartame, stevia, thaumatin, and the like.
  • Flavoring agents include lemon oil, orange oil, menthol, and the like.
  • Lubricants include magnesium stearate, sucrose esters of fatty acid, polyethyleneglycol, talc, stearic acid, sodium stearylfumarate, and the like.
  • Colorants include those for food such as Food Yellow No.5, Food Red No.2, Food Blue No.2, and the like, food lake colorants, ferric oxide, and the like.
  • Stabilizers include disodium edetate, tocopherol, cyclodextrin, and the like.
  • pH-Modifiers include citrates, phosphates, carbonates, tartarates, fumarates, acetates, amino acid salts.
  • Surfactants include sodium lauryl sulfate, polysorbate 80, hydrogenated oil, polyoxyethylene(160)polyoxypropylene(30)glycol, and the like.
  • the particle diameter of these substances is not particularly limited, but the particle diameter is preferably not more than 500 ⁇ m not to cause rough feeling in the mouth.
  • These excipients may be used separately or in combination of two or more thereof.
  • a fine granular nucleus may be used for manufacturing of the solid preparation of the invention, and such a nucleus may be coated with active ingredients and additives etc. followed by further coating by a publicly known procedure for masking of the taste/odor, for enteric coating, for making the preparation into a sustained release form, and for other purposes.
  • the solid preparation of the invention can be produced either by compression molding of a mixture comprising a) an active ingredient, b) a saccharide or sugar alcohol with the mean particle diameter of 30 ⁇ m to 300 ⁇ m, c) a disintegrating agent, and d) a cellulose compound, or by compression molding of a mixture comprising a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 ⁇ m to below 90 ⁇ m, b-2) a saccharide or sugar alcohol with the mean particle diameter of 90 ⁇ m to 500 ⁇ m, c) a disintegrating agent, and d) a cellulose compound.
  • [0097] compression molding by mixing a group comprising a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 ⁇ m to below 90 ⁇ m, c) a disintegrating agent, and d) a cellulose compound, and a group comprising b-2) a saccharide or sugar alcohol with the mean particle diameter of 90 ⁇ m to 500 ⁇ m, c) a disintegrating agent, and d) a cellulose compound, followed by addition of a fluidizing agent, lubricant, sweetener, and/or the like in their respective suitable amounts, as needed;
  • [0098] compression molding by mixing a group comprising a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 ⁇ m to below 90 ⁇ m, and c) a disintegrating agent, and a group comprising b-2) a saccharide or sugar alcohol with the mean particle diameter of 90 ⁇ m to 500 ⁇ m, c) a disintegrating agent, and d) a cellulose compound, followed by addition of a cellulose compound, fluidizing agent, lubricant, sweetener, and/or the like in their respective suitable amounts as needed;
  • the concrete procedures for production include the procedure that an active ingredient and the raw materials of the preparation are mixed in a mixer followed by immediate tabletting. Also the procedure that the materials are dry compressed into tablets by the slugging method or roller-compacter method, the procedure for production of granules for tablets by dry tabletting using water, acetone, ethyl alcohol, propyl alcohol, or a mixture thereof, in which a binder, if necessary, has been dispersed or dissolved, and the procedure for production of granules for tablets after dividing the materials into two or more groups may be applicable. For production of tablets from granules for tablets, a cellulose compound, a disintegrating agent, a fluidizing agent, a lubricant, a flavoring agent, a sweetener, and the like may be mixed as needed.
  • Tablets are molded by using, for example, a single tabletting machine, rotary tabletting machine, and the like. Pressure for tabletting is usually 2.5 to 30 kN/cm 2 .
  • the shape of the solid preparation of the invention is not particularly restricted; the tablet may be round, caplet, doughnut, oblong, etc. or a multilayer tablet, a dry-coated tablet, or the like, and may be covered by coating.
  • the tablet may have marks and letters for identification, and a nick on the surface.
  • the resultant quickly disintegrating solid preparation preferably intraorally quickly disintegrating solid preparation, more preferably, intraorally quickly disintegrating tablet of the invention is quickly disintegrated in the oral cavity and has an adequate hardness. It is excellent also in productivity.
  • the time required for intraoral disintegration or dissolution (the time till the tablet is completely disintegrated by the action of the saliva in the oral cavity of healthy adult men and women) of the intraorally quickly disintegrating tablet of the invention varies depending to the size and thickness of the tablet, being normally 5 to 90 seconds, preferably about 5 to 60 seconds.
  • the hardness (measured by the tablet hardness meter) is normally 10 to 200N, preferably about 10 to 150 N.
  • the intraorally disintegrating tablet of the invention like the conventional pharmaceutical preparations containing active ingredients, can be used for treatment and prevention of various diseases as a tablet easy to be taken by patients, aged people, and children who are difficult to swallow the medicine, and as a safe preparation in emergency for general adult people, and is excellent in long-term storage and stability.
  • the preparation may be orally taken without being disintegrated in the oral cavity, or taken with water.
  • the preparation may also be orally taken after being dissolved in water in a cup or the like.
  • Hardness was measured with the tablet hardness meter (Toyama Sangyo Co., Ltd.). Hardness of each of 5 or 10 tablets was measured, and expressed in the mean of the measurements.
  • D-mannitol Towa Chemical Industry Co., Ltd.: Mannit S, mean particle diameter of 130 ⁇ m
  • 50 g of crystalline cellulose Asahi Chemical Industry Co., Ltd.
  • 50 g of corn starch Japan
  • This mixed powder was tabletted into tablets weighing 250 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.5 mm ⁇ , compression pressure of 9.8 kN (1 ton)/cm 2 )
  • a 180 g portion of manidipine hydrochloride, 495 g of D-mannitol (Merck Co.: 1.05980, mean particle diameter of 45 ⁇ m), 225 g of corn starch, 112.5 g of crystalline cellulose, 2 g of light anhydrous silicic acid, and 56.3 g of crospovidone were placed in a fluidized bed granulating dryer (Powrex Co., FD-3SN type), and 540 g of purified water containing 42.8 g of D-mannitol and 1.4 g of yellow ferric oxide was sprayed, followed by granulating and drying processes, to give granules A.
  • a 1003 g portion of granules A, 971 g of granules B, 6.3 g of light anhydrous silicic acid, 4.1 g of aspartame, and 41 g of magnesium stearate were mixed.
  • This mixed powder was tabletted into tablets weighing 250 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.5 mm ⁇ , compression pressure of 4.9, 9.8, and 19.6 kN /cm 2 ).
  • a 760 g portion of granules C, 845 g of granules D, 5.1 g of light anhydrous silicic acid, 3.9 g of aspartame, and 33 g of magnesium stearate were mixed.
  • This mixed powder was tabletted into tablets weighing 210 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.0 mm ⁇ , compression pressure of 9.8 kN/cm 2 ).
  • This mixed powder was tabletted into tablets weighing 250 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.5 mm ⁇ , compression pressure of 9.8 kN/cm 2 ).
  • a 289 g portion of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), 40 g of crystalline cellulose, 40 g of corn starch, and 1.2 g of light anhydrous silicic acid were placed in a fluidized bed granulating dryer (Powrex Co., LAB-1 type), and 120 g of purified water containing 0.4 g of voglibose and 10 mg of Food Yellow No.5 was sprayed, followed by granulating and drying processes, to give granules.
  • This mixed powder was tabletted into tablets weighing 200 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.0 mm ⁇ , compression pressure of 9.8 kN/cm 2 ).
  • a 16 g portion of candesartan cilexetil, 273 g of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), 40 g of crystalline cellulose, 40 g of corn starch, and 1.2 g of light anhydrous silicic acid were placed in a fluidized bed granulating dryer (Powrex Co., LAB-1 type), and 120 g of purified water was sprayed, followed by granulating and drying processes, to give granules.
  • a fluidized bed granulating dryer Powrex Co., LAB-1 type
  • This mixed powder was tabletted into tablets weighing 200 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.0 mm ⁇ , compression pressure of 9.8 kN/cm 2 ).
  • a 660 mg portion of pioglitazone hydrochloride, 2670 mg of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), 500 mg of crystalline cellulose, 500 mg of corn starch, 500 mg of crospovidone, 20 mg of light anhydrous silicic acid, 100 mg of magnesium stearate, and 50 mg of aspartame were mixed in a tablet bottle.
  • This mixed powder was tabletted into tablets weighing 250 mg each (Shimadzu Corporation, Universal testing machine UH-10A, tablet size of 9.5 mm ⁇ , compression pressure of 9.8 kN/cm 2 ).
  • a 900 g portion of manidipine hydrochloride, 1374.8 g of granulated lactose powder (Freund Sangyo.: Dilactose S, mean particle diameter of 80 ⁇ m), 301.5 g of crospovidone, and 211.5 g of corn starch (Japan Corn Starch) were placed in a fluidized bed granulating dryer (Fuji Sangyo Co., Ltd., FD-5S type), and 4500 g of purified water containing 225 g of hydroxypropylcellulose (Nippon Soda Co., Ltd.) and 2.3 g of yellow ferric oxide was sprayed, followed by granulating and drying processes, to give granules G.
  • the granules G were sized at the screen size (1.0 mm ⁇ ) by a power mill (Showa Kagaku Kikai Kosakusho, P-3), to give sized granules G.
  • a 737 g portion of sized granules G, 1815 g of sized granules H, 151.3 g of crystalline cellulose, 5.5 g of aspartame, and 41.3 g of magnesium stearate were mixed. This mixed powder was tabletted into tablets weighing 250 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.5 mm ⁇ , compression pressure of 7.4 kN /cm 2 ).
  • a 44 g portion of manidipine hydrochloride, 442.4 g of trehalose (Asahi Chemical Industry Co., Ltd.: Trehalose P, mean particle diameter of 44 ⁇ m), and 33 g of crospovidone were placed in a fluidized bed granulating dryer (Powrex Co., LAB-1 type), and 231 g of purified water containing 11 g of hydroxypropylcellulose was sprayed, followed by granulating and drying processes, to give granules.
  • a 459.4 g portion of the granules, 27.2 g of crystalline cellulose, 1.0 g of aspartame, and 7.4 g of magnesium stearate were mixed.
  • This mixed powder was tabletted into tablets weighing 250 mg each (Kikusui Seisakusho, Correct 19KAWC, tablet size of 9.5 mm ⁇ , compression pressure of 2.9 kN/cm 2 ).
  • Trehalose (Asahi Chemical Industry Co., Ltd.: Trehalose G, mean particle diameter of 346 ⁇ m) was pulverized with a power mill (Showa Kagaku Kikai Kosakusho, P-3) at the screen size (0.5 mm ⁇ ), to give a powder with the mean particle diameter of 185 ⁇ m.
  • This pulverized trehalose was used in place of the trehalose in Example 9, and processed under the same conditions as those in Example 9, to give tablets.
  • Erythritol (Nikkenn Chemicals Co., Ltd.: mean particle diameter of 474 ⁇ m) was pulverized with a power mill (Showa Kagaku Kikai Kosakusho, P-3) at the screen size (0.5 mm ⁇ ), to give a powder with the mean particle diameter of 178 ⁇ m.
  • Xylitol (Towa Chemical Industry Co., Ltd.: Xylit XC, mean particle diameter of 363 ⁇ m) was pulverized with a power mill (Showa Kagaku Kikai Kosakusho, P-3) at the screen size (0.5 mm ⁇ ), to give a powder with the mean particle diameter of 135 ⁇ m.
  • a 50 g portion of manidipine hydrochloride, the pulverized xylitol, 37.5 g of crospovidone, 15.6 g of crystalline cellulose, and 9.4 g of magnesium stearate were mixed.
  • This mixed powder was tabletted into tablets weighing 250 mg each (Shimadzu Corporation, Universal testing machine UH-10A, tablet size of 9.5 mm ⁇ , compression pressure of 14.7 kN/cm 2 ).
  • This mixed powder was tabletted into tablets weighing 250 mg each (Shimadzu Corporation, Universal testing machine UH-10A, tablet size of 9.5 mm ⁇ , compression pressure of 9.8 kN/cm 2 ).
  • Example 14
  • Erythritol (Nikkenn Chemicals Co., Ltd.: mean particle diameter of 474 ⁇ m) was pulverized with a jet mill (Nippon Pneumatic MFG Co., Ltd., PJM-100SP), to give a powder with the mean particle diameter of 75 ⁇ m.
  • Sorbitol (Sorbitol DP-50M of Towa Chemical Industry Co., Ltd., mean particle diameter of 172 ⁇ m) was pulverized with a jet mill (Nippon Pneumatic MFG Co., Ltd., PJM-100SP), to give a powder with the mean particle diameter of 43 ⁇ m.
  • a 25 g portion of manidipine hydrochloride, the pulverized sorbitol, 18.8 g of crospovidone, 7.8 g of crystalline cellulose, and 4.7 g of magnesium stearate were mixed.
  • This mixed powder was tabletted into tablets weighing 125 mg each (Shimadzu Corporation, Universal testing machine UH-10A, tablet size-of 8.5 mm ⁇ , compression pressure of 2.9 kN/cm 2 ).
  • D-Mannitol with the mean particle diameter of 21 ⁇ m (Merck Co.: 1.05988) was used in place of the D-mannitol in Example 1, and processed under the same conditions as those in Example 1, to give tablets.
  • D-Mannitol with the mean particle diameter of 21 ⁇ m (Merck Co.: 1.05988) was used in place of the D-mannitol in Example 5, and processed under the same conditions as those in Example 5, to give tablets.
  • Trehalose (Asahi Chemical Industry Co., Ltd.: Trehalose G) was pulverized with the atomizer (Fuji Paudal Co., Ltd., KII-2), to give a powder with the mean particle diameter of 19 ⁇ m.
  • This pulverized trehalose was used in place of the trehalose in Example 9, and processed under the same conditions as those in Example 9, to give tablets.

Abstract

Quickly disintegrating solid preparations which contain: a) an active ingredient; b) D-mannitol having an average particle size of 30 μm to 300 μm; c) a disintegrating agent; and d) celluloses.

Description

    TECHNICAL FIELD
  • The present invention relates to solid preparations that disintegrate quickly in the presence of saliva or a small amount of water in the oral cavity, particularly those useful as intraorally disintegrating solid preparations. [0001]
  • BACKGROUND ART
  • For aged people and children who are difficult to swallow drugs, solid preparations that disintegrate or dissolve quickly in the oral cavity have long been developed. For example, an intraorally disintegrating tablet preparation is described in the International Publication No. WO93/12769, which is obtained by suspending a drug, lactose, and mannitol in aqueous agar solution, filling the resulting suspension in a molding pocket or the like, and drying the molding under reduced pressure. This molding shows quick disintegration but is more fragile than usual tablets so that it is readily cracked, chipped, etc. and a long time is required for its production; thus the process for production is poor in productivity. In Japanese Patent Laying-Open No.6-218028(1994) and Japanese Patent Laying-Open No.8-19589(1996), a process for production of a tablet preparation is described, where moist powder after kneading is filled in the tablet molding well for wet shaping followed by drying. The resulting tablet preparation, being porous and having a moderate void fraction, shows quick disintegration. However the industrial productivity of this process for production is poor because a wet material with low fluidity is filled and compressed so that the amount filled in each well varies greatly and a special dryer is necessary. [0002]
  • Then a few processes for production of an intraorally disintegrating tablet preparation by dry tabletting excellent in productivity have also been reported. For example, a process for production of an intraorally disintegrating tablet preparation by dry tabletting using a saccharide with a good moldability and a saccharide with a poor moldability in combination is described in the International Publication No. WO95/20380. Also a process for production of an intraorally disintegrating tablet preparation by dry tabletting using granules obtained by wet or dry granulation using an excipient and erythritol, a sugar alcohol, in combination is described in the International Publication No. WO98/02185. [0003]
  • In addition, a process for production of a tablet preparation that disintegrates quickly in the oral cavity, by combining a saccharide or a sugar alcohol having a mean particle diameter of not more than 30 μm, an active ingredient, and a disintegrating agent is described in the International Publication No. WO97/47287. According to this process, the molding obtained by pulverization of a saccharide or a sugar alcohol, such as D-mannitol or lactose, followed by addition of a disintegrating agent, etc. and compression molding shows quick disintegration, whereas when coarse particles of a saccharide (lactose, mean particle diameter of 80 μm) or a sugar alcohol (D-mannitol, mean particle diameter of 60 μm) before pulverization are used, molding is difficult under a low tabletting pressure and even the molding obtained under a high tabletting pressure does not show a sufficient mechanical hardness. [0004]
  • D-mannitol is known to produce a very high friction (binding) at the surface of the mortar wall during compression molding. In addition, pulverization is undesirable not only because it strengthens the friction at the surface of the mortar wall but also from the viewpoint of handling because it reduces fluidity during the production of the tablet preparation (Summary of lectures at the 14[0005] th Symposium on Particulate Preparations and Designs, p.115 (1997), Handbook of Pharmaceutical Excipients 2nd Ed., p.294 (1994), The Pharmaceutical Press).
  • DISCLOSURE OF THE INVENTION
  • The inventors have conducted extensive studies on intraorally disintegrating tablet preparations that can be industrially produced with common installations without requiring any special manufacturing technique. As the result of the studies, the inventors found that an intraorally disintegrating tablet preparation that has a practically not problematic hardness, disintegrates quickly, and has no problem in productivity can be obtained by dry tabletting even under a low compression pressure when an active ingredient is combined with a relatively coarse powder of a saccharide or a sugar alcohol, a disintegrating agent, and a cellulose compound. As a result of further studies, the inventors have completed the present invention. That is, the invention relates to: [0006]
  • (1) a quickly disintegrating solid preparation comprising a) an active ingredient, b) a saccharide or a sugar alcohol with the mean particle diameter of 30 μm to 300 μm (not less than 30 μm and not more 300 μm), c) a disintegrating agent, and d) a cellulose compound; [0007]
  • (2) the preparation according to the above-mentioned (1), wherein the preparation is an intraorally quickly disintegrating solid preparation; [0008]
  • (3) the preparation according to the above-mentioned (1), wherein the preparation is a tablet preparation; [0009]
  • (4) the preparation according to the above-mentioned (1), wherein 40 to 95 parts of a saccharide or a sugar alcohol is contained in 100 parts of the solid preparation by weight; [0010]
  • (5) the preparation according to the above-mentioned (1), wherein 0.5 to 15 parts of a disintegrating agent is contained in 100 parts of the solid preparation by weight; [0011]
  • (6) the preparation according to the above-mentioned (1), wherein 0.5 to 40 parts of a cellulose compound is contained in 100 parts of the solid preparation by weight; [0012]
  • (7) the preparation according to the above-mentioned (1), wherein the saccharide is one or more saccharides selected from the group consisting of glucose, fructose, lactose, sucrose, and trehalose; [0013]
  • (8) the preparation according to the above-mentioned (1), wherein the saccharide is lactose; [0014]
  • (9) the preparation according to the above-mentioned (1), wherein the sugar alcohol is one or more sugar alcohols selected from the group consisting of D-mannitol, erythritol, xylitol, maltitol, and sorbitol; [0015]
  • (10) the preparation according to the above-mentioned (1), wherein the sugar alcohol is D-mannitol; [0016]
  • (11) the preparation according to the above-mentioned (1), characterized in that D-mannitol with the mean particle diameter of 30 μm to 300 μm is used as the saccharide or sugar alcohol with the mean particle diameter of 30 μm to 300 μm; [0017]
  • (12) the preparation according to the above-mentioned (1), wherein the disintegrating agent is one or more disintegrating agents selected from the group consisting of carmellose calcium, carboxymethylstarch sodium, croscarmellose sodium, and crospovidone; [0018]
  • (13) the preparation according to the above-mentioned (1), wherein the cellulose compound is one or more substances selected from the group consisting of crystalline cellulose, powder cellulose, low substituted hydroxypropylcellulose, and carmellose; [0019]
  • (14) the preparation according to the above-mentioned (1), wherein the active ingredient is manidipine hydrochloride; [0020]
  • (15) the preparation according to the above-mentioned (1), wherein the active ingredient is voglibose; [0021]
  • (16) the preparation according to the above-mentioned (1), wherein the active ingredient is candesartan cilexetil; [0022]
  • (17) the preparation according to the above-mentioned (1), wherein the active ingredient is pioglitazone hydrochloride; [0023]
  • (18) the process for production of the preparation according to the above-mentioned (1), characterized in that a mixture containing a) an active ingredient, b) a saccharide or sugar alcohol with the mean particle diameter of 30 μm to 300 μm (not less than 30 μm and not more than 300 μm), c) a disintegrating agent, and d) a cellulose compound is molded by compression; [0024]
  • (19) a quickly disintegrating solid preparation containing a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 μm to below 90 μm (not less than 5 μm and below 90 μm), b-2) a saccharide or a sugar alcohol with the mean particle diameter of 90 μm to 500 μm (not less than 90 μm and not more than 500 μm), c) a disintegrating agent, and d) a cellulose compound; [0025]
  • (20) the preparation according to the above-mentioned (19), containing 0.1 to 10 parts of the ingredient b-2) per 1 part of the ingredient b-1) by weight; [0026]
  • (21) the preparation according to the above-mentioned (19), characterized in that a mixture of the ingredient b-1) and the ingredient b-2) as the ingredient b-1) and the ingredient b-2); [0027]
  • (22) the preparation according to the above-mentioned (21), wherein the mean particle diameter of the mixture is 30 μm to 300 μm (not less than 30 μm and not more than 300 μm); [0028]
  • (23) the preparation according to the above-mentioned (19), wherein the mean particle diameter of the ingredient b-1) is 30 μm to below 90 μm (not less than 30 μm and below 90 μm); [0029]
  • (24) the preparation according to the above-mentioned (19), wherein the mean particle diameter of the ingredient b-1) is 35 μm to 80 μm (not less than 35 μm and not more than 80 μm); [0030]
  • (25) the preparation according to (19), wherein the mean particle diameter of the ingredient b-2) is 90 μm to 300 μm (not less than 90 μm and not more than 300 μm); [0031]
  • (26) the preparation according to the above-mentioned (19), wherein the mean particle diameter of the ingredient b-2) is 90 μm to 200 μm (not less than 90 μm and not more than 200 μm); [0032]
  • (27) the preparation according to the above-mentioned (19), wherein the saccharide is one or more saccharides selected from the group consisting of glucose, fructose, lactose, sucrose, and trehalose; [0033]
  • (28) the preparation according to the above-mentioned (19), wherein the saccharide is lactose; [0034]
  • (29) the preparation according to the above-mentioned (19), wherein the sugar alcohol is one or more sugar alcohols selected from the group consisting of D-mannitol, erythritol, xylitol, maltitol, and sorbitol; [0035]
  • (30) the preparation according to the above-mentioned (19), wherein the sugar alcohol is D-mannitol; [0036]
  • (31) the preparation according to the above-mentioned (19), characterized in that D-mannitol with the mean particle diameter of 30 μm to 90 μm and D-mannitol with the mean particle diameter of 90 μm to 300 μm are used as the ingredient b-1) and the ingredient b-2), respectively; [0037]
  • (32) the process for production of a preparation according to the above-mentioned (19), characterized in that a mixture containing a) an active ingredient, b-1) a saccharide or a sugar alcohol with the mean particle diameter of 5 μm to below 90 μm (not less than 5 μm and below 90 μm), b-2) a saccharide or a sugar alcohol with the mean particle diameter of 90 μm to 50 μm (not less than 90 μm and not more than 500 μm), c) a disintegrating agent, and d) a cellulose compound is molded by compression; etc. [0038]
  • Active ingredients used in the present invention may be in any form, i.e. solid, crystal, oil, or solution, and one or more agents selected from the group consisting of, for example, alimentary roborants, antipyretic analgesic antiphlogistics, psychotropic agents, anxiolytics, anti-depressants, hypnotic sedatives, antispasmodics, central nervous system acting drugs, cerebral metabolism improving agents, cerebral circulation improving agents, antiepileptics, sympathomimetics, digestives, antacids, antiulcer agents, antitussive expectorants, antiemetics, respiratory stimulants, bronchodilators, antiallergic agents, dental stomatic agents, anti-histamines, cardiacs, antiarrhythmic agents, diuretics, hypotensive agents, angiotonics, coronary vasodilators, peripheral vasodilators, antihyperlipemic drugs, cholagogues, antibiotics, chemotherapeutics, antidiabetic agents, osteoporosis treating drugs, antirheumatics, skeletal muscle relaxants, antispasmodic drugs, hormone drugs, alkaloid narcotics, sulfa drugs, gout treating agents, anticoagulants, antineoplastic agents, and the like are used. [0039]
  • Alimentary roborants include vitamins such as vitamin A, vitamin D, vitamin E (d-α-tocopherol acetate, etc.), vitamin B1 (dibenzoyl thiamine, fursultiamine hydrochloride, etc.), vitamin B2 (riboflavin butyrate, etc.), vitamin B6 (pyridoxine hydrochloride, etc.), vitamin C (ascorbic acid, sodium L-ascorbate, etc.), and vitamin B12 (hydroxocobalamin acetate, cyanocobalamin, etc.), minerals such as calcium, magnesium, iron, etc., protein, amino acids, oligosaccharides, crude drugs, and the like. [0040]
  • Antipyretic analgesic antiphlogistics include aspirin, acetaminophen, ethenzamide, ibuprofen, diphenhydramine hydrochloride, chlorpheniramine dl-maleate, dihydrocodeine phosphate, noscapine, methylephedrine hydrochloride, phenylpropanolamine hydrochloride, caffeine, anhydrous caffeine, serrapeptase, lysozyme chloride, tolfenamic acid, mefenamic acid, diclofenac sodium, flufenamic acid, salicylamide, aminopyrine, ketoprofen, indometacin, bucolome, pentazocine, and the like. [0041]
  • Psychotropic agents include chlorpromazine, reserpine, and the like. Anxiolytics include alprazolam, chlordiazepoxide, diazepam, and the like. Antidepressants include imipramine, maprotilline hydrochloride, amphetamine, and the like. Hypnotic sedatives include estazolam, nitrazepam, diazepam, perlapine, phenobarbital sodium, and the like. Antispasmodics include scopolamine hydrobromide, diphenhydramine hydrochloride, papaverine hydrochloride, and the like. Central nervous system acting agents include citicoline, and the like. Cerebral metabolism improving agents include meclofenoxate hydrochloride, and the like. Cerebral circulation improving agents include vinpocetine, and the like. Antiepileptics include phenytoin, carbamazepine, and the like. Sympathomimetics include isopreterenol hydrochloride, and the like. [0042]
  • Digestives include stomachic digestives such as diastase, saccharated pepsin, scopolia extract, cellulase AP3, lipase AP, cinnamon oil, etc., and drugs for controlling intestinal function such as berberine chloride, antibiotics-resistant lactic acid bacteriae, lactobacillus bifidus, etc. Antacids include magnesium carbonate, sodium bicarbonate, magnesium aluminometasillicate, synthetic hydrotalcite, precipitated calcium carbonate, magnesium oxide, and the like. Anti-ulcer agents include lansoprazole, omeprazol, rabeprazole, famotidine, cimetidine, ranitidine hydrochloride, and the like. [0043]
  • Antitussive expectorants include chloperastine hydrochloride, dextromethorphane hydrobromide, theophylline, potassium guaiacolsulfonate, guaifenesin, codeine phosphate, and the like. Antiemetics include difenidol hydrochloride, metoclopramide, and the like. Respiratory stimulants include levallorphan tartrate, and the like. Bronchodilators include theophylline, salbutamol sulfate, and the like. Antiallergic agents include amlexanox, seratrodast, and the like. [0044]
  • Dental stomatic agents include oxytetracycline, triamcinolone acetonide, chlorhexidine hydrochloride, lidocaine, and the like. [0045]
  • Antihistamines include diphenhydramine hydrochloride, promethazine, isothipendyl hydrochloride, chlorpheniramine dl-maleate, and the like. [0046]
  • Cardiacs include caffeine, digoxin, and the like. Antiarrhythmic agents include procainamide hydrochloride, propranolol hydrochloride, pindolol, and the like. Diuretics include isosorbide, furosemide, hydrochlorothiazide, and the like. Hypotensive agents include derapril hdyrochloride, captopril, hydraladine hydrochloride, labetalol hydrochloride, manidipine hydrochlorodie, candesartan cilexetil, methyldopa, perindopril erbumine, and the like. Angiotonics include phenylepherine hydrochloride, and the like. Coronary vasodilators include carbocromen hydrochloride, molsidomine, verapamil hydrochloride, and the like. Peripheral vasodilators include cinnarizine, and the like. [0047]
  • Antihyperlipemic agents include cerivastatin sodium, simvastain, pravastatin sodium, atorvastatin calcium hydrate, and the like. [0048]
  • Cholagogues include dehydrocholic acid, trepibutone, and the like. [0049]
  • Antibiotics include cefems such as cefalexin, cefaclor, amoxicillin, pivmecillinam hydrochloride, cefotiam hexetil hydrochloride, cefadroxil, cefixime, cefditoren pivoxil, cefteram pivoxil, cefpodoxime proxetil, etc., synthetic ones such as ampicillin, ciclacillin, nalidixic acid, enoxacin, etc., monobactams such as carumonam sodium, penems, carbapenems, and the like. [0050]
  • Chemotherapeutics include sulfamethizole, and the like. [0051]
  • Antidiabetic agents include tolbutamide, voglibose, pioglitazone hydrochloride, glibenclamide, troglitazone, and the like. [0052]
  • Osteoporosis treating drugs include ipriflavone, and the like. [0053]
  • Skeletal muscle relaxants include methocarbamol, and the like. [0054]
  • Antispasmodic drugs meclizine hydrochloride, dimenhydrinate, and the like. [0055]
  • Antirheumatics include methotrexate, bucillamine, and the like. [0056]
  • Hormone drugs include liothyronine sodium, dexamethasone phosphate, predonisolone, oxendolone, leuprorelin acetate, and the like. [0057]
  • Alkaloid narcotics include opium, morphine hydrochloride, ipecac, oxycodone hydrochloride, opium alkaloids hydrochloride, cocaine hydrochloride, and the like. [0058]
  • Sulfa drugs include sulfisomidine, sulfamethizole, and the like. [0059]
  • Gout treating drugs include allopurinol, colchicine, and the like. [0060]
  • Anticoagulants include dicoumarol, and the like. [0061]
  • Antineoplastic drugs include 5-fluorouracil, uracil, mitomycin, and the like. [0062]
  • Among these, manidipine hydrochloride, voglibose, candesartan cilexetil, pioglitazone hydrochloride, etc., particularly manidipine hydrochloride, are used preferably. [0063]
  • The active ingredient may be the one diluted with a diluent used generally in the fields of medicine and foods. An active ingredient after treatment for masking the bitterness of the active ingredient may also be used. [0064]
  • The amount of the active ingredient varies depending on the nature and dose of the active ingredient, and is 0.01 to 40 parts, preferably 0.01 to 20 parts, per 100 parts by weight of the solid pharmaceutical preparation of the invention. [0065]
  • Saccharides used in the invention include glucose, fructose, lactose, sucrose, trehalose, and the like, among which lactose is used preferably. [0066]
  • Sugar alcohols used in the invention include D-mannitol, erythritol, xylitol, maltitol, sorbitol, and the like, among which D-mannitol is used preferably. [0067]
  • One or more saccharides or one or more sugar alcohols may be used in combination, or a combination of a saccharide and a sugar alcohol may be used. [0068]
  • The mean particle diameter of the saccharide or the sugar alcohol (preferably the sugar alcohol, or more preferably D-mannitol) is 30 to 300 μm (measured by, for example, the laser diffraction particle size analyzer, SYMPATEC Co.: HELOS & RODOS, etc.), preferably above 30 μm, more preferably 31 μm or more, and further more preferably 35 to 200 μm. Saccharides or sugar alcohols of such a particle size are commercially available (Lactose 100M and Lactose 200M of DMV, granulated powder lactose Dilactose R and Dilactose S of Freund Industry Co., Ltd., Tablettose and Flowlac 100 of Meggle Japan, Mannit S and Marinecrystal of Towa Chemical Industry Co., Ltd., 1.05980 of Merck Co., Mannidex of Cerestar Japan, Ltd., Trehalose P of Asahi Chemical Industry Co., Ltd., Sorbitol DP-50M and Amalty MR-50 of Towa Chemical Industry Co., Ltd., Pure Fructose S of Kato Kagaku, and the like). Saccharides and sugar alcohols with the mean particle diameter of 5 to 30 μm are commercially available (Granulac 230 and Solvolac 400 of Meggle Japan, Mannit P, Xylit P, and Amalty MR-100 of Towa Chemical Industry Co., Ltd., Erythritol (fine powder) of Nikken Chemicals Co., Ltd., and the like). Saccharides and sugar alcholos with the mean particle diameter of 200 to 500 μm are commercially available (Sachelac 80 of Meggle Japan, Trehalose G and Xylitol XC of Asahi Chemical Industry Co., Ltd., Erythritol of Nikken Chemicals Co., Ltd., Anhydrous crystalline glucose TDA-S and Hydrated crystalline glucose TDH of San-ei Sucrochemical Co., Ltd., and the like). In addition, saccharides and sugar alcohols with the mean particle diameter of not less than 500 μm are commercially available (Prismalac 40 of Meggle Japan, Pure Fructose of Kato Kagaku, Amalty MR-20 and Sorbitol DP-10M of Towa Chemical Industry Co., Ltd., and the like). A saccharide or sugar alcohol with the necessary mean particle diameter may be obtained by a method such as pulverization from the commercially available product. Pulverization is performed by using a cutter mill, jet mill, hammer mill, or the like. [0069]
  • A saccharide or sugar alcohol with the mean particle diameter of 5 μm to below 90 μm (preferably 30 to below 90 μm) to strengthen the molding may be combined with a saccharide or sugar alcohol with the mean particle diameter of 90 μm to 500 μm (preferably 90 μm to 300 μm to increase fluidity during manufacturing. In combination of a fine powder of a saccharide or sugar alcohol with the mean particle diameter of 5 μm to below 90 μm (preferably 30 to below 90 μm, more preferably 35 to 80 μm) with a coarse powder of a saccharide or sugar alcohol with the mean particle diameter of 90 μm to 500 μm (preferably 90 μm to 300 μm, more preferably 90 to 200 μm), it is recommendable to use one part of a fine powder of a saccharide or sugar alcohol with 0.1 to 10 parts, preferably 0.2 to 5 parts, of a coarse powder of a saccharide or sugar alcohol by weight. Particularly when the active ingredient is manidipine hydrochloride, it is recommendable to use one part of a fine powder of a saccharide or sugar alcohol usually with 0.2 to 3.5 parts, preferably with 0.3 to 2.5 parts, of a coarse powder of a saccharide or sugar alcohol by weight. [0070]
  • In combination of a fine powder of a saccharide or sugar alcohol with a coarse powder of a saccharide or sugar alcohol, one or more saccharides or one or more sugar alcohols may be combined, or a fine powder of a saccharide or sugar alcohol may be combined with a coarse powder of the same or a different saccharide or sugar alcohol. In addition, a mixture obtained by mixing a fine powder of a saccharide or sugar alcohol with a coarse powder of a saccharide or sugar alcohol may be molded into a quickly disintegrating solid preparation of the invention, or a fine powder of a saccharide or sugar alcohol and a coarse powder of a saccharide or sugar alcohol are divided into two or more groups to prepare granules, followed by molding into the quickly disintegrating solid preparation of the invention. [0071]
  • When the mixture of a fine powder of a saccharide or sugar alcohol with a coarse powder of a saccharide or sugar alcohol is used as the starting material, the mixture has desirably two or more peaks in the particle size distribution and the mean particle diameter of the mixture is desirably 30 μm to 300 μm. [0072]
  • A desirable combination of a fine powder of a saccharide or sugar alcohol with a coarse powder of a saccharide or sugar alcohol is exemplified by the mixture of D-mannitol with the mean particle diameter of 30 μm to below 90 μm with D-mannitol with the mean particle diameter of 90 μm to 300 μm. [0073]
  • The amount of a saccharide or sugar alcohol used is 40 to 95 parts, preferably 50 to 90 parts, per 100 parts of the solid pharmaceutical preparation by weight. [0074]
  • Disintegrating agents used include carmellose calcium, carboxymethyl starch sodium, croscarmellose sodium, crospovidone, and the like, and 0.5 to 15 parts, preferably 1 to 10 parts, thereof is used per 100 parts of the solid pharmaceutical preparation by weight. [0075]
  • Disintegrating agents are exemplified by Crospovidone [manufactured by ISP Inc. (USA), BASF (Germany)], Croscarmellose Sodium (FMC- Asahi Chemical Industry Co., Ltd.), Carmellose Calcium (Gotoku Yakuhin Co., Ltd.), and Carboxymethylstarch Sodium (Matsutani Kagaku Co., Ltd., Kimura Sangyo Co., Ltd., etc.). [0076]
  • The crospovidone product may be any cross-linked polymer that is 1-ethenyl-2-pyrrolidinone homopolymer, and usually a crospovidone product having a molecular weight of 1,000,000 or more is used. Examples of commercially available crospovidone products are Cross-linked Povidone, Kollidon CL [manufactured by BASF (Germany)], Polyplasdone XL, Xl -10, and INF-10 [manufactured by ISP Inc. (USA)]. [0077]
  • Cellulose compounds used are crystalline cellulose, powder cellulose, low substituted hydroxypropylcellulose, carmellose, and the like, and 0.5 to 40 parts, preferably 1 to 20 parts, thereof is used for 100 parts of the solid pharmaceutical preparation by weight. [0078]
  • Examples of crystalline cellulose products are CEOLUS KG801, Avicel PH101, PH102, PH301, PH302, and PH-F20, Avicel RC-A591NF (all manufactured by Asahi Chemical Industry Co., Ltd.), and the like, including also fine crystalline cellulose. [0079]
  • Examples of low substituted hydroxypropylcellulose products are low substituted hydroxylpropylcellulose of which content of hydroxypropoxyl group is 5 to 16% by weight such as Low Substituted Hydroxypropylcellulose LH11, LH21, LH31, LH22, LH32, LH20, LH30, LH32, and LH33 (all manufactured by Shin-Etsu Chemical Co., Ltd.), and the like. These are commercially available. Low substituted hydroxypropylcellulose can be produced by a publicly known procedure, for example the procedure described in Patent Gazette No.57-53100(1982), or a similar procedure. [0080]
  • Active ingredients, disintegrating agents, and cellulose compounds may be used in combination of one or more of each. [0081]
  • The preparation of the invention may contain a starch product as an excipient such as corn starch, potato starch, wheat starch, rice starch, partially gelatinized starch, gelatinized starch, porous starch, and the like, and various additives used for production of general pharmaceutical preparations, in their respective suitable amounts, unless they interfere with the effect of the invention. Such additives include excipients, binders, sour agents, foaming agents, artificial sweeteners, flavoring agents, lubricants, colorants, stabilizers, pH-modifiers, surfactants, and the like. [0082]
  • Excipients include inorganic excipients such as anhydrous calcium phosphate, precipitated calcium carbonate, calcium silicate, light anhydrous silicic acid, and the like. [0083]
  • Binders include hydroxypropylcellulose, hydroxypropylmethylcellulose, polyvinylpyrrolidone, powdered acacia, gelatin, pullulan, and the like. [0084]
  • Sour agents include citric acid, tartaric acid, malic acid, ascorbic acid, and the like. [0085]
  • Foaming agents include sodium bicarbonate, sodium carbonate, and the like. Sweeteners include saccharin sodium, dipotassium glycylrrhizinate, aspartame, stevia, thaumatin, and the like. [0086]
  • Flavoring agents include lemon oil, orange oil, menthol, and the like. [0087]
  • Lubricants include magnesium stearate, sucrose esters of fatty acid, polyethyleneglycol, talc, stearic acid, sodium stearylfumarate, and the like. [0088]
  • Colorants include those for food such as Food Yellow No.5, Food Red No.2, Food Blue No.2, and the like, food lake colorants, ferric oxide, and the like. [0089]
  • Stabilizers include disodium edetate, tocopherol, cyclodextrin, and the like. [0090]
  • pH-Modifiers include citrates, phosphates, carbonates, tartarates, fumarates, acetates, amino acid salts. [0091]
  • Surfactants include sodium lauryl sulfate, polysorbate 80, hydrogenated oil, polyoxyethylene(160)polyoxypropylene(30)glycol, and the like. [0092]
  • The particle diameter of these substances is not particularly limited, but the particle diameter is preferably not more than 500 μm not to cause rough feeling in the mouth. These excipients may be used separately or in combination of two or more thereof. [0093]
  • A fine granular nucleus may be used for manufacturing of the solid preparation of the invention, and such a nucleus may be coated with active ingredients and additives etc. followed by further coating by a publicly known procedure for masking of the taste/odor, for enteric coating, for making the preparation into a sustained release form, and for other purposes. [0094]
  • The solid preparation of the invention can be produced either by compression molding of a mixture comprising a) an active ingredient, b) a saccharide or sugar alcohol with the mean particle diameter of 30 μm to 300 μm, c) a disintegrating agent, and d) a cellulose compound, or by compression molding of a mixture comprising a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 μm to below 90 μm, b-2) a saccharide or sugar alcohol with the mean particle diameter of 90 μm to 500 μm, c) a disintegrating agent, and d) a cellulose compound. [0095]
  • The procedures for production by dividing the starting materials into two groups are exemplified by: [0096]
  • [1] compression molding by mixing a group comprising a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 μm to below 90 μm, c) a disintegrating agent, and d) a cellulose compound, and a group comprising b-2) a saccharide or sugar alcohol with the mean particle diameter of 90 μm to 500 μm, c) a disintegrating agent, and d) a cellulose compound, followed by addition of a fluidizing agent, lubricant, sweetener, and/or the like in their respective suitable amounts, as needed; [0097]
  • [2] compression molding by mixing a group comprising a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 μm to below 90 μm, and c) a disintegrating agent, and a group comprising b-2) a saccharide or sugar alcohol with the mean particle diameter of 90 μm to 500 μm, c) a disintegrating agent, and d) a cellulose compound, followed by addition of a cellulose compound, fluidizing agent, lubricant, sweetener, and/or the like in their respective suitable amounts as needed; [0098]
  • [3] compression molding by mixing a group comprising a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 μm to below 90 μm, b-2) a saccharide or sugar alcohol with the mean particle diameter of 90 μm to 500 μm, c) a disintegrating agent, and d) a cellulose compound as needed, and a group comprising b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 μm to below 90 μm, b-2) a saccharide or sugar alcohol with the mean particle diameter of 90 μm to 500 μm, c) a disintegrating agent, and d) a cellulose compound, followed by addition of a cellulose compound, fluidizing agent, lubricant, sweetener, and/or the like in their respective suitable amounts as needed. [0099]
  • The concrete procedures for production include the procedure that an active ingredient and the raw materials of the preparation are mixed in a mixer followed by immediate tabletting. Also the procedure that the materials are dry compressed into tablets by the slugging method or roller-compacter method, the procedure for production of granules for tablets by dry tabletting using water, acetone, ethyl alcohol, propyl alcohol, or a mixture thereof, in which a binder, if necessary, has been dispersed or dissolved, and the procedure for production of granules for tablets after dividing the materials into two or more groups may be applicable. For production of tablets from granules for tablets, a cellulose compound, a disintegrating agent, a fluidizing agent, a lubricant, a flavoring agent, a sweetener, and the like may be mixed as needed. [0100]
  • Tablets are molded by using, for example, a single tabletting machine, rotary tabletting machine, and the like. Pressure for tabletting is usually 2.5 to 30 kN/cm[0101] 2. The shape of the solid preparation of the invention is not particularly restricted; the tablet may be round, caplet, doughnut, oblong, etc. or a multilayer tablet, a dry-coated tablet, or the like, and may be covered by coating. The tablet may have marks and letters for identification, and a nick on the surface.
  • The resultant quickly disintegrating solid preparation, preferably intraorally quickly disintegrating solid preparation, more preferably, intraorally quickly disintegrating tablet of the invention is quickly disintegrated in the oral cavity and has an adequate hardness. It is excellent also in productivity. [0102]
  • Namely, the time required for intraoral disintegration or dissolution (the time till the tablet is completely disintegrated by the action of the saliva in the oral cavity of healthy adult men and women) of the intraorally quickly disintegrating tablet of the invention varies depending to the size and thickness of the tablet, being normally 5 to 90 seconds, preferably about 5 to 60 seconds. The hardness (measured by the tablet hardness meter) is normally 10 to 200N, preferably about 10 to 150 N. [0103]
  • Therefore the intraorally disintegrating tablet of the invention, like the conventional pharmaceutical preparations containing active ingredients, can be used for treatment and prevention of various diseases as a tablet easy to be taken by patients, aged people, and children who are difficult to swallow the medicine, and as a safe preparation in emergency for general adult people, and is excellent in long-term storage and stability. [0104]
  • The preparation may be orally taken without being disintegrated in the oral cavity, or taken with water. The preparation may also be orally taken after being dissolved in water in a cup or the like.[0105]
  • THE BEST MODE FOR CARRYING OUT THE INVENTION
  • The invention is explained in more detail with the following Examples and Comparative Examples, though these Examples do not limit the invention. [0106]
  • EXAMPLES
  • The tablet preparations obtained in the Examples and in the Comparative Examples were subjected to the test methods described below for measurement of the hardness and the intraoral disintegration time. Also productivity was assessed based on the observation of fluidity, binding property, and adhesion of powder to the surface of the punch during production of the tablet. [0107]
  • (1) Hardness Test
  • Hardness was measured with the tablet hardness meter (Toyama Sangyo Co., Ltd.). Hardness of each of 5 or 10 tablets was measured, and expressed in the mean of the measurements. [0108]
  • (2) Intraoral Disintegration Time
  • The time till disintegration of the tablet in the presence of saliva alone in the oral cavity was measured in 3 healthy adult men (35, 49, and 51 years old). [0109]
  • Example 1
  • A 40 g portion of manidipine hydrochloride, 303.4 g of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S, mean particle diameter of 130 μm), 50 g of crystalline cellulose (Asahi Chemical Industry Co., Ltd.), 50 g of corn starch (Japan Corn Starch), and 1 g of light anhydrous silicic acid (YKF) were placed in a fluidized bed granulating dryer (Powrex Co., LAB-1 type), and 139 g of purified water containing 18 g of D-mannitol and 0.6 g of yellow ferric oxide (Anstead) was sprayed, followed by granulating and drying processes, to give granules. [0110]
  • To 347 g of the granules, 25 g of crospovidone (ISP Inc.), 1 g of light anhydrous silicic acid, 10 g of magnesium stearate (Taihei Kagaku Sangyo Co. Ltd.), and 1 g of aspartame (Ajinomoto Co. Ltd.) were added, to give a mixed powder. [0111]
  • This mixed powder was tabletted into tablets weighing 250 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.5 mmφ, compression pressure of 9.8 kN (1 ton)/cm[0112] 2)
  • Example 2
  • A 180 g portion of manidipine hydrochloride, 495 g of D-mannitol (Merck Co.: 1.05980, mean particle diameter of 45 μm), 225 g of corn starch, 112.5 g of crystalline cellulose, 2 g of light anhydrous silicic acid, and 56.3 g of crospovidone were placed in a fluidized bed granulating dryer (Powrex Co., FD-3SN type), and 540 g of purified water containing 42.8 g of D-mannitol and 1.4 g of yellow ferric oxide was sprayed, followed by granulating and drying processes, to give granules A. [0113]
  • Separately, 872.1 g of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), 112.5 g of crystalline cellulose, and 56.3 g of crospovidone were placed in a fluidized bed granulating dryer (Powrex Co., FD-3SN type), and 540 g of purified water containing 36.2 g of D-mannitol and 1.4 g of yellow ferric oxide was sprayed, followed by granulating and drying processes, to give granules B. [0114]
  • A 1003 g portion of granules A, 971 g of granules B, 6.3 g of light anhydrous silicic acid, 4.1 g of aspartame, and 41 g of magnesium stearate were mixed. [0115]
  • This mixed powder was tabletted into tablets weighing 250 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.5 mmφ, compression pressure of 4.9, 9.8, and 19.6 kN /cm[0116] 2).
  • Example 3
  • A 90 g portion of manidipine hydrochloride, 416 g of D-mannitol (Merck Co.: 1.05980, mean particle diameter of 45 μm), 189 g of corn starch, 94.5 g of crystalline cellulose, 1.7 g of light anhydrous silicic acid, and 47.3 g of crospovidone were placed in a fluidized bed granulating dryer (Powrex Co., FD-3SN type), and 423 g of purified water containing 33.5 g of D-mannitol and 0.4 g of yellow ferric oxide was sprayed, followed by granulating and drying processes, to give granules C. [0117]
  • Separately, 884 g of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), 105 g of crystalline cellulose, and 52.5 g of crospovidone were placed in a fluidized bed granulating dryer (Powrex Co., FD-3SN type), and 540 g of purified water containing 35.7 g of D-mannitol and 0.4 g of yellow ferric oxide was sprayed, followed by granulating and drying processes, to give granules D. [0118]
  • A 760 g portion of granules C, 845 g of granules D, 5.1 g of light anhydrous silicic acid, 3.9 g of aspartame, and 33 g of magnesium stearate were mixed. [0119]
  • This mixed powder was tabletted into tablets weighing 210 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.0 mmφ, compression pressure of 9.8 kN/cm[0120] 2).
  • Example 4
  • An 80 g portion of manidipine hydrochloride, 220 g of-D-mannitol (Merck Co.: 1.05980, mean particle diameter of 45 μm), 100 g of corn starch, and 1.2 g of light anhydrous silicic acid were placed in a fluidized bed granulating dryer (Powrex Co., LAB-1 type), and 200 g of purified water containing 6 g of hydroxypropylcellulose (Nippon Soda Co., Ltd.) and 0.4 g of yellow ferric oxide was sprayed, followed by granulating and drying processes, to give granules E. [0121]
  • Separately, 400.5 g of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), and 100 g of crystalline cellulose were placed in a fluidized bed granulating dryer (Powrex Co., LAB-1 type), and 180 g of purified water containing 16.1 g of D-mannitol and 0.8 g of yellow ferric oxide was sprayed, followed by granulating and drying processes, to give granules F. [0122]
  • A 203.8 g portion of granules E, 258.8 g of granules F, 25 g of crospovidone, 1.4 g of light anhydrous silicic acid, 1 g of aspartame, and 10 g of magnesium stearate were mixed. [0123]
  • This mixed powder was tabletted into tablets weighing 250 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.5 mmφ, compression pressure of 9.8 kN/cm[0124] 2).
  • Example 5
  • A 289 g portion of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), 40 g of crystalline cellulose, 40 g of corn starch, and 1.2 g of light anhydrous silicic acid were placed in a fluidized bed granulating dryer (Powrex Co., LAB-1 type), and 120 g of purified water containing 0.4 g of voglibose and 10 mg of Food Yellow No.5 was sprayed, followed by granulating and drying processes, to give granules. [0125]
  • To 296 g of the granules, 16 g of crospovidone, 0.32 g of light anhydrous silicic acid, 6.4 g of magnesium stearate, and 0.96 g of aspartame were added, to give a mixed powder. [0126]
  • This mixed powder was tabletted into tablets weighing 200 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.0 mmφ, compression pressure of 9.8 kN/cm[0127] 2).
  • Example 6
  • A 16 g portion of candesartan cilexetil, 273 g of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), 40 g of crystalline cellulose, 40 g of corn starch, and 1.2 g of light anhydrous silicic acid were placed in a fluidized bed granulating dryer (Powrex Co., LAB-1 type), and 120 g of purified water was sprayed, followed by granulating and drying processes, to give granules. [0128]
  • To 296 g of the granules, 16 g of crospovidone, 0.32 g of light anhydrous silicic acid, 6.4 g of magnesium stearate, and 0.96 g of aspartame were added, to give a mixed powder. [0129]
  • This mixed powder was tabletted into tablets weighing 200 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.0 mmφ, compression pressure of 9.8 kN/cm[0130] 2).
  • Example 7
  • A 660 mg portion of pioglitazone hydrochloride, 2670 mg of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), 500 mg of crystalline cellulose, 500 mg of corn starch, 500 mg of crospovidone, 20 mg of light anhydrous silicic acid, 100 mg of magnesium stearate, and 50 mg of aspartame were mixed in a tablet bottle. [0131]
  • This mixed powder was tabletted into tablets weighing 250 mg each (Shimadzu Corporation, Universal testing machine UH-10A, tablet size of 9.5 mmφ, compression pressure of 9.8 kN/cm[0132] 2).
  • Example 8
  • A 900 g portion of manidipine hydrochloride, 1374.8 g of granulated lactose powder (Freund Sangyo.: Dilactose S, mean particle diameter of 80 μm), 301.5 g of crospovidone, and 211.5 g of corn starch (Japan Corn Starch) were placed in a fluidized bed granulating dryer (Fuji Sangyo Co., Ltd., FD-5S type), and 4500 g of purified water containing 225 g of hydroxypropylcellulose (Nippon Soda Co., Ltd.) and 2.3 g of yellow ferric oxide was sprayed, followed by granulating and drying processes, to give granules G. The granules G were sized at the screen size (1.0 mmφ) by a power mill (Showa Kagaku Kikai Kosakusho, P-3), to give sized granules G. [0133]
  • Separately, 2856 g of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), 1650 g of D-mannitol (Merck Co.: 1.05980), and 249 g of crospovidone were placed in a fluidized bed granulating dryer (Fuji Sangyo Co., Ltd., FD-5S type), and 1500 g of purified water containing 150 g of D-mannitol (Towa Chemical Industry Co., Ltd.: Mannit S), 7.5 g of yellow ferric oxide, and 37.5 g of anhydrous citric acid was sprayed, followed by granulating and drying processes, to give granules H. The granules G were sized at the screen size (1.0 mm) by a power mill, to give sized granules H. [0134]
  • A 737 g portion of sized granules G, 1815 g of sized granules H, 151.3 g of crystalline cellulose, 5.5 g of aspartame, and 41.3 g of magnesium stearate were mixed. This mixed powder was tabletted into tablets weighing 250 mg each (Kikusui Seisakusho, Correct 12HUK, tablet size of 9.5 mmφ, compression pressure of 7.4 kN /cm[0135] 2).
  • Example 9
  • A 44 g portion of manidipine hydrochloride, 442.4 g of trehalose (Asahi Chemical Industry Co., Ltd.: Trehalose P, mean particle diameter of 44 μm), and 33 g of crospovidone were placed in a fluidized bed granulating dryer (Powrex Co., LAB-1 type), and 231 g of purified water containing 11 g of hydroxypropylcellulose was sprayed, followed by granulating and drying processes, to give granules. [0136]
  • A 459.4 g portion of the granules, 27.2 g of crystalline cellulose, 1.0 g of aspartame, and 7.4 g of magnesium stearate were mixed. [0137]
  • This mixed powder was tabletted into tablets weighing 250 mg each (Kikusui Seisakusho, Correct 19KAWC, tablet size of 9.5 mmφ, compression pressure of 2.9 kN/cm[0138] 2).
  • Example 10
  • Trehalose (Asahi Chemical Industry Co., Ltd.: Trehalose G, mean particle diameter of 346 μm) was pulverized with a power mill (Showa Kagaku Kikai Kosakusho, P-3) at the screen size (0.5 mmφ), to give a powder with the mean particle diameter of 185 μm. [0139]
  • This pulverized trehalose was used in place of the trehalose in Example 9, and processed under the same conditions as those in Example 9, to give tablets. [0140]
  • Example 11
  • Erythritol (Nikkenn Chemicals Co., Ltd.: mean particle diameter of 474 μm) was pulverized with a power mill (Showa Kagaku Kikai Kosakusho, P-3) at the screen size (0.5 mmφ), to give a powder with the mean particle diameter of 178 μm. [0141]
  • This pulverized erythritol was used in place of the trehalose in Example 9, and processed under the same conditions as those in Example 9, to give tablets. (compression pressure 7.4 kN/cm[0142] 2)
  • Example 12
  • Xylitol (Towa Chemical Industry Co., Ltd.: Xylit XC, mean particle diameter of 363 μm) was pulverized with a power mill (Showa Kagaku Kikai Kosakusho, P-3) at the screen size (0.5 mmφ), to give a powder with the mean particle diameter of 135 μm. [0143]
  • A 50 g portion of manidipine hydrochloride, the pulverized xylitol, 37.5 g of crospovidone, 15.6 g of crystalline cellulose, and 9.4 g of magnesium stearate were mixed. [0144]
  • This mixed powder was tabletted into tablets weighing 250 mg each (Shimadzu Corporation, Universal testing machine UH-10A, tablet size of 9.5 mmφ, compression pressure of 14.7 kN/cm[0145] 2).
  • Example 13
  • A 50 g portion of manidipine hydrochloride, maltitol (LESYS of Towa Chemical Industry Co., Ltd., mean particle diameter of 181 μm), 37.5 g of crospovidone, 15.6 g of crystalline cellulose, and 9.4 g of magnesium stearate were mixed. [0146]
  • This mixed powder was tabletted into tablets weighing 250 mg each (Shimadzu Corporation, Universal testing machine UH-10A, tablet size of 9.5 mmφ, compression pressure of 9.8 kN/cm[0147] 2). Example 14
  • Erythritol (Nikkenn Chemicals Co., Ltd.: mean particle diameter of 474 μm) was pulverized with a jet mill (Nippon Pneumatic MFG Co., Ltd., PJM-100SP), to give a powder with the mean particle diameter of 75 μm. [0148]
  • This pulverized erythritol was used in place of the trehalose in Example 9, and processed under the same conditions as those in Example 9, to give tablets. [0149]
  • Example 15
  • Sorbitol (Sorbitol DP-50M of Towa Chemical Industry Co., Ltd., mean particle diameter of 172 μm) was pulverized with a jet mill (Nippon Pneumatic MFG Co., Ltd., PJM-100SP), to give a powder with the mean particle diameter of 43 μm. [0150]
  • A 25 g portion of manidipine hydrochloride, the pulverized sorbitol, 18.8 g of crospovidone, 7.8 g of crystalline cellulose, and 4.7 g of magnesium stearate were mixed. [0151]
  • This mixed powder was tabletted into tablets weighing 125 mg each (Shimadzu Corporation, Universal testing machine UH-10A, tablet size-of 8.5 mmφ, compression pressure of 2.9 kN/cm[0152] 2).
  • Comparative Example 1
  • D-Mannitol with the mean particle diameter of 21 μm (Merck Co.: 1.05988) was used in place of the D-mannitol in Example 1, and processed under the same conditions as those in Example 1, to give tablets. [0153]
  • Comparative Example 2
  • D-Mannitol with the mean particle diameter of 21 μm (Merck Co.: 1.05988) was used in place of the D-mannitol in Example 5, and processed under the same conditions as those in Example 5, to give tablets. [0154]
  • Comparative Example 3
  • Trehalose (Asahi Chemical Industry Co., Ltd.: Trehalose G) was pulverized with the atomizer (Fuji Paudal Co., Ltd., KII-2), to give a powder with the mean particle diameter of 19 μm. [0155]
  • This pulverized trehalose was used in place of the trehalose in Example 9, and processed under the same conditions as those in Example 9, to give tablets. [0156]
  • The results of measurement of the hardness and the intraoral disintegration time of the tablets obtained in the Examples and Comparative Examples by the above-mentioned test methods, and the results of evaluation of productivity based on the observation of fluidity, binding property, and adhesion of powder to the surface of the punch during production of tablets are summarized in Table 1. [0157]
    TABLE 1
    Productivity, hardness, and intraoral disintegration time
    of tablets
    Intraoral
    Tabletting Fluidity Adhesion disintegration
    pressure during Binding to Hardness time
    (kN/cm2) tabletting property punch (N) (second)
    Example 1 9.8 good absent absent 37 25
    Example 2 4.9 good absent absent 17 17
    9.8 good absent absent 39 16
    19.6 good absent absent 50 20
    Example 3 9.8 good absent absent 24 17
    Example 4 9.8 good absent absent 25 24
    Example 5 9.8 good absent absent 26 19
    Example 6 9.8 good absent absent 26 13
    Example 7 9.8 good absent absent 33 25
    Example 8 7.4 good absent absent 29 22
    Example 9 2.9 good absent absent 21 52
    Example 10 2.9 good absent absent 16 43
    Example 11 7.4 good absent absent 36 31
    Example 12 14.7 good absent absent 16 61
    Example 13 9.8 good absent absent 21 51
    Example 14 2.9 good absent absent 17 38
    Example 15 2.9 good absent absent 16 67
    Comparative 9.8 insufficient present present 49 26
    Example 1
    Comparative 9.8 insufficient present present 33 21
    Example 2
    Comparative 2.9 insufficient present present 25 36
    Example 3
  • Industrial Applicability
  • Quickly disintegrating solid preparations, preferably intraorally quickly disintegrating solid preparations, more preferably intraorally quickly disintegrating tablets of the invention obtained by the processes described above are quickly disintegrated in the oral cavity and have suitable hardness. They are excellent also in productivity. [0158]

Claims (32)

1. A quickly disintegrating solid preparation comprising a) an active ingredient, b) a saccharide or sugar alcohol with the mean particle diameter of 30 μm to 300 μm, c) a disintegrating agent, and d) a cellulose compound.
2. The preparation according to claim 1, which is an intraorally quickly disintegrating solid preparation.
3. The preparation according to claim 1, which is a tablet preparation.
4. The preparation according to claim 1, which contains 40 to 95 parts of a saccharide or sugar alcohol per 100 parts of the solid preparation by weight.
5. The preparation according to claim 1, which contains 0.5 to 15 parts of a disintegrating agent per 100 parts of the solid preparation by weight.
6. The preparation according to claim 1, which contains 0.5 to 40 parts of a cellulose compound per 100 parts of the solid preparation by weight.
7. The preparation according to claim 1, wherein the saccharide is one or more saccharides selected from the group consisting of glucose, fructose, lactose, sucrose, and trehalose.
8. The preparation according to claim 1, wherein the saccharide is lactose.
9. The preparation according to claim 1, wherein the sugar alcohol is one or more sugar alcohols selected from the group consisting of D-mannitol, erythritol, xylitol, maltitol, and sorbitol.
10. The preparation according to claim 1, wherein the sugar alcohol is D-mannitol.
11. The preparation according to claim 1, characterized in that D-mannitol with the mean particle diameter of 30 μm to 300 μm is used as the saccharide or sugar alcohol with the mean particle diameter of 30 μm to 300 μm.
12. The preparation according to claim 1, wherein the disintegrating agent is one or more disintegrating agents selected from the group consisting of carmellose calcium, carboxymethylstarch sodium, croscarmellose sodium, and crospovidone.
13. The preparation according to claim 1, wherein the cellulose compound is one or more cellulose compounds selected from the group consisting of crystalline cellulose, powder cellulose, low substituted hydroxypropylcellulose, and carmellose.
14. The preparation according to claim 1, wherein the active ingredient is manidipine hydrochloride.
15. The preparation according to claim 1, wherein the active ingredient is voglibose.
16. The preparation according to claim 1, wherein the active ingredient is candesartan cilexetil.
17. The preparation according to claim 1, wherein the active ingredient is pioglitazone hydrochloride.
18. The procedure for production of the preparation according to claim 1, characterized in that a mixture containing a) an active ingredient, b) a saccharide or sugar alcohol with the mean particle diameter of 30 μm to 300 μm, c) a disintegrating agent, and d) a cellulose compound is subjected to compression molding.
19. A quickly disintegrating solid preparation comprising a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 μm to below 90 μm, b-2) a saccharide or sugar alcohol with the mean particle diameter of 90 μm to 500 μm, c) a disintegrating agent, and d) a cellulose compound.
20. The preparation according to claim 19, which contains 0.1 to 10 parts of the ingredient b-2) per 1 part of the ingredient b-1) by weight.
21. The preparation according to claim 19, characterized in that a mixture of the ingredient b-1) and the ingredient b-2) is used as the ingredient b-1) and the ingredient b-2).
22. The preparation according to claim 21, wherein the mean particle diameter of the mixture is 30 μm to 300 μm.
23. The preparation according to claim 19, wherein the-mean particle diameter of the ingredient b-1) is 30 μm to below 90 μm.
24. The preparation according to claim 19, wherein the mean particle diameter of the ingredient b-1) is 35 μm to 80 μm.
25. The preparation according to claim 19, wherein the mean particle diameter of the ingredient b-2) is 90 μm to 300 μm.
26. The preparation according to claim 19, wherein the mean particle diameter of the ingredient b-2) is 90 μm to 200 μm.
27. The preparation according to claim 19, wherein the saccharide is one or more saccharides selected from the group consisting of glucose, fructose, lactose, sucrose, and trehalose.
28. The preparation according to claim 19, wherein the sugar is lactose.
29. The preparation according to claim 19, wherein the sugar alcohol is one or more sugar alcohols selected from the group consisting of D-mannitol, erythritol, xylitol, maltitol, and sorbitol.
30. The preparation according to claim 19, wherein the sugar alcohol is D-mannitol.
31. The preparation according to claim 19, characterized in that D-mannitol with the mean particle diameter of 30 μm to below 90 μm and D-mannitol with the mean particle diameter of 90 μm to 300 μm are used as the ingredient b-1) and the ingredient b-2), respectively.
32. The procedure for production of the preparation according to claim 19, characterized in that a mixture containing a) an active ingredient, b-1) a saccharide or sugar alcohol with the mean particle diameter of 5 μm to below 90 μm, b-2) a saccharide or sugar alcohol with the mean particle diameter of 90 μm to 500 μm, c) a disintegrating agent, and d) a cellulose compound is subjected to compression molding.
US10/810,898 1999-06-18 2004-03-29 Quickly disintegrating solid preparations Abandoned US20040180085A1 (en)

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Cited By (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20030215508A1 (en) * 2000-04-28 2003-11-20 Davis Robert D. Sustained release of guaifenesin combination drugs
US20040018233A1 (en) * 2000-04-28 2004-01-29 Davis Robert D. Sustained release of guaifenesin
US20040022851A1 (en) * 2000-04-28 2004-02-05 Davis Robert D. Sustained release of guaifenesin combination drugs
US20040110813A1 (en) * 2002-09-24 2004-06-10 Boehringer Ingelheim International Gmbh Solid telmisartan pharmaceutical formulations
WO2005037262A1 (en) * 2003-10-22 2005-04-28 Tubilux Pharma S.P.A. Citicoline-based composition in combination with vitamins for the prevention and treatment of eye pathologies
US20060018964A1 (en) * 2004-07-26 2006-01-26 Astrazeneca Ab Pharmaceutical formulation and process for its preparation
US20080254120A1 (en) * 2007-04-11 2008-10-16 Nipro Corporation Orally-disintegrating tablet and manufacturing method thereof
US20090208584A1 (en) * 2005-06-09 2009-08-20 Tomohiro Yoshinari Solid preparation
WO2010001063A1 (en) * 2008-07-04 2010-01-07 Roquette Freres Orodispersible mannitol
US20100098756A1 (en) * 2007-03-13 2010-04-22 Dainippon Sumitomo Pharma Co., Ltd Oral disintegrating tablet
US20110135722A1 (en) * 2001-07-16 2011-06-09 Bruno Criere Pharmaceutical formulation comprising a proton pump inhibitor and antacids
US20110150993A1 (en) * 2009-12-22 2011-06-23 Fmc Corporation Fine Particle Croscarmellose and Uses Thereof
US7985421B2 (en) 2000-04-28 2011-07-26 Reckitt Benckiser Inc. Sustained release formulations of guaifenesin and additional drug ingredients
KR20120016075A (en) * 2009-04-30 2012-02-22 로께뜨프레르 Compressible and free-flow co-agglomerates of mannitol and granular starch
US20120237602A1 (en) * 2009-12-11 2012-09-20 Yuki Ikeda Press-coated orally-disintegrating tablets
CN105012266A (en) * 2006-09-26 2015-11-04 诺华股份有限公司 Pharmaceutical compositions comprising S1P receptor
CN110548011A (en) * 2006-09-26 2019-12-10 诺华股份有限公司 Pharmaceutical compositions comprising S1P modulators
US11278506B2 (en) 2015-10-09 2022-03-22 Rb Health (Us) Llc Pharmaceutical formulation

Families Citing this family (88)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20020071864A1 (en) * 1999-03-25 2002-06-13 Yuhan Corporation Rapidly disintegrable tablet for oral administration
US6740339B1 (en) * 1999-06-18 2004-05-25 Takeda Chemical Industries, Ltd. Quickly disintegrating solid preparations
WO2001072285A1 (en) * 2000-03-27 2001-10-04 Kyowa Hakko Kogyo Co., Ltd. Easy-to-take granule
WO2002032403A1 (en) * 2000-10-16 2002-04-25 Daiichi Pharmaceutical Co., Ltd. Medicinal compositions quickly disintegrating in the oral cavity and process for producing the same
US6555581B1 (en) 2001-02-15 2003-04-29 Jones Pharma, Inc. Levothyroxine compositions and methods
JP4365095B2 (en) * 2001-03-06 2009-11-18 協和発酵キリン株式会社 Orally disintegrating tablets
CA2440361A1 (en) * 2001-03-06 2002-09-12 Kyowa Hakko Kogyo Co. Ltd. Intraorally rapidly disintegrable preparation
CA2449731A1 (en) * 2001-06-07 2002-12-19 Tanabe Seiyaku Co., Ltd. Functional grain-containing preparations quickly disintegrated in the oral cavity
US20040047904A1 (en) * 2001-11-13 2004-03-11 Motohiro Ohta Amino acid-containing tablets quickly disintegrating in the oral cavity and process for producing the same
US7118765B2 (en) 2001-12-17 2006-10-10 Spi Pharma, Inc. Co-processed carbohydrate system as a quick-dissolve matrix for solid dosage forms
FR2834893B1 (en) * 2002-01-23 2004-02-27 Servier Lab ORODISPERSIBLE PHARMACEUTICAL COMPOSITION OF PERINDOPRIL
JP2003238393A (en) * 2002-02-15 2003-08-27 Otsuka Pharmaceut Co Ltd Tablet with improved tableting property and method for producing the same
GB0204771D0 (en) * 2002-02-28 2002-04-17 Phoqus Ltd Fast disintegrating tablets
ES2199061B1 (en) * 2002-06-10 2005-02-16 Laboratorios Vita, S.A. TROUBLE-BASED TABLETS AND PROCEDURE FOR OBTAINING.
JPWO2003103713A1 (en) * 2002-06-10 2005-10-06 大日本製薬株式会社 Quick disintegrating tablet and method for producing the same
US20050220870A1 (en) * 2003-02-20 2005-10-06 Bonnie Hepburn Novel formulation, omeprazole antacid complex-immediate release for rapid and sustained suppression of gastric acid
JP2006518751A (en) * 2003-02-20 2006-08-17 サンタラス インコーポレイティッド Novel formulation for rapid and sustained suppression of gastric acid, omeprazole antacid complex-immediate release
JP5584509B2 (en) * 2003-02-28 2014-09-03 東和薬品株式会社 Orally disintegrating tablets
JP4551627B2 (en) * 2003-02-28 2010-09-29 東和薬品株式会社 Method for producing orally disintegrating tablets
MXPA06000524A (en) * 2003-07-18 2006-08-11 Santarus Inc Pharmaceutical formulation and method for treating acid-caused gastrointestinal disorders.
MXPA06000529A (en) * 2003-07-18 2006-08-11 Santarus Inc Pharmaceutical composition for inhibiting acid secretion.
US8993599B2 (en) * 2003-07-18 2015-03-31 Santarus, Inc. Pharmaceutical formulations useful for inhibiting acid secretion and methods for making and using them
US7838029B1 (en) * 2003-07-31 2010-11-23 Watson Laboratories, Inc. Mirtazapine solid dosage forms
US7390503B1 (en) 2003-08-22 2008-06-24 Barr Laboratories, Inc. Ondansetron orally disintegrating tablets
JP4575654B2 (en) * 2003-09-05 2010-11-04 エスエス製薬株式会社 Pharmaceutical composition with improved solubility and fluidity
US8349361B2 (en) 2003-10-15 2013-01-08 Fuji Chemical Industry Co., Ltd. Composition for rapid disintegrating tablet in oral cavity
US8647668B2 (en) 2003-10-15 2014-02-11 Fuji Chemical Industry Co., Ltd. Tablet quickly disintegrating in oral cavity
CN100438914C (en) * 2003-10-15 2008-12-03 富士化学工业株式会社 Tablet quickly disintegrating in oral cavity
JP3841804B2 (en) 2003-10-15 2006-11-08 富士化学工業株式会社 Composition for intraorally rapidly disintegrating tablets
US20070292498A1 (en) * 2003-11-05 2007-12-20 Warren Hall Combinations of proton pump inhibitors, sleep aids, buffers and pain relievers
AU2005213472A1 (en) * 2004-02-10 2005-08-25 Santarus, Inc. Combination of proton pump inhibitor, buffering agent, and nonsteroidal anti-inflammatory agent
US8337887B2 (en) * 2004-03-11 2012-12-25 Laboratories Pharmaceutiques Rodael Rapidly disintegrating taste-masked tablet
EA011712B1 (en) 2004-03-29 2009-04-28 Ле Лаборатуар Сервье Process for preparing a solid pharmaceutical composition
MXPA06011820A (en) * 2004-04-16 2006-12-15 Santarus Inc Combination of proton pump inhibitor, buffering agent, and prokinetic agent.
JP2007536378A (en) * 2004-05-10 2007-12-13 ルピン・リミテッド New cefixime pharmaceutical formulation with enhanced bioavailability
US8906940B2 (en) * 2004-05-25 2014-12-09 Santarus, Inc. Pharmaceutical formulations useful for inhibiting acid secretion and methods for making and using them
US8815916B2 (en) * 2004-05-25 2014-08-26 Santarus, Inc. Pharmaceutical formulations useful for inhibiting acid secretion and methods for making and using them
KR100893847B1 (en) * 2004-06-01 2009-04-17 니코메드 파마 에이에스 Chewable, suckable and swallowable tablet containing a caicium-containing compound as an active substance
US20060024361A1 (en) * 2004-07-28 2006-02-02 Isa Odidi Disintegrant assisted controlled release technology
JP5073174B2 (en) * 2005-03-18 2012-11-14 木村産業株式会社 Method for producing tablets containing viable bacteria agent, digestive enzyme agent and both
TWI383809B (en) * 2005-06-29 2013-02-01 Otsuka Pharma Co Ltd Orally disintegrating powder comprising cilostazol
JP4739340B2 (en) * 2005-07-22 2011-08-03 田辺三菱製薬株式会社 Orally disintegrating tablets
WO2007018192A1 (en) 2005-08-10 2007-02-15 Shionogi & Co., Ltd. Orally disintegratable tablet
WO2007029376A1 (en) * 2005-09-02 2007-03-15 Fuji Chemical Industry Co., Ltd. Orally rapidly disintegrating tablet
US7811604B1 (en) 2005-11-14 2010-10-12 Barr Laboratories, Inc. Non-effervescent, orally disintegrating solid pharmaceutical dosage forms comprising clozapine and methods of making and using the same
WO2007074472A2 (en) * 2005-12-27 2007-07-05 Jubilant Organosys Limited Mouth dissolving pharmaceutical composition and process for preparing the same using a high amount of silicon dioxide
CA2634232C (en) 2005-12-28 2013-08-20 Takeda Pharmaceutical Company Limited Method of producing solid preparation disintegrating in the oral cavity
JP5535616B2 (en) * 2006-03-31 2014-07-02 ルビコン リサーチ プライベート リミテッド Direct compressible composite for orally disintegrating tablets
WO2007119792A1 (en) * 2006-04-13 2007-10-25 Toa Pharmaceuticals Co., Ltd. Dry direct compression fast disintegrating tablet
US20080182880A1 (en) * 2006-09-28 2008-07-31 Mailatur Sivaraman Mohan Pioglitazone composition
US20090092658A1 (en) * 2007-10-05 2009-04-09 Santarus, Inc. Novel formulations of proton pump inhibitors and methods of using these formulations
JP5201819B2 (en) * 2006-11-22 2013-06-05 エスエス製薬株式会社 Solid composition
WO2008068727A2 (en) * 2006-12-06 2008-06-12 Ranbaxy Laboratories Limited Pharmaceutical composition comprising candesartan cilexetil
BRPI0719393B8 (en) * 2006-12-07 2021-05-25 Daiichi Sankyo Co Ltd pharmaceutical composition
BRPI0719395C1 (en) * 2006-12-07 2021-05-25 Daiichi Sankyo Co Ltd film coated tablet
TWI428151B (en) * 2006-12-07 2014-03-01 Daiichi Sankyo Co Ltd Solid formulations containing mannitol or lactose
WO2008072532A1 (en) * 2006-12-07 2008-06-19 Daiichi Sankyo Company, Limited Pharmaceutical composition having improved storage stability
EP2101738A2 (en) * 2006-12-21 2009-09-23 Mallinckrodt Inc. Composition of and method for preparing orally disintegrating tablets
EP2170273B1 (en) * 2007-06-06 2014-11-26 Basf Se Pharmaceutical formulation for the production of rapidly disintegrating tablets
EP2044929A1 (en) * 2007-10-04 2009-04-08 Laboratorios del Dr. Esteve S.A. Oral fast distintegrating tablets
EP2209501B1 (en) * 2007-10-12 2011-12-14 AstraZeneca AB Zibotentan composition containing mannitol and microcrystalline cellulose
DE102007052070A1 (en) 2007-10-30 2009-05-07 Tiefenbacher Pharmachemikalien Alfred E. Tiefenbacher Gmbh & Co. Kg candesartancilexetil
EP2233129B1 (en) 2007-12-28 2014-05-07 Sawai Pharmaceutical Co., Ltd. Oral cavity disintegrating tablet and method of producing the same
US20110053942A1 (en) * 2008-02-13 2011-03-03 Dainippon Sumitomo Pharma Co., Ltd. Orally disintegrating tablets
JP5344938B2 (en) * 2009-01-29 2013-11-20 旭化成ケミカルズ株式会社 Disintegrating solid preparation
BRPI1009824B1 (en) 2009-03-09 2020-02-18 Spi Pharma, Inc. SOLID PHARMACEUTICAL FORM UNDERSTANDING A HIGHLY COMPACTABLE AND DURABLE DISPERSION INCLUDING CO-PROCESSED CARBOHYDRATES
JP5466880B2 (en) * 2009-05-20 2014-04-09 京都薬品工業株式会社 Orally disintegrating tablets
WO2010146551A2 (en) * 2009-06-16 2010-12-23 Ranbaxy Laboratories Limited Orally disintegrating compositions comprising antihypertensive agents
GB201003731D0 (en) 2010-03-05 2010-04-21 Univ Strathclyde Immediate/delayed drug delivery
GB201003766D0 (en) * 2010-03-05 2010-04-21 Univ Strathclyde Pulsatile drug release
GB201003734D0 (en) 2010-03-05 2010-04-21 Univ Strathclyde Delayed prolonged drug delivery
CN103781371B (en) * 2011-09-16 2016-08-24 花王株式会社 Solid-like composition
WO2013081563A2 (en) * 2011-10-24 2013-06-06 Mahmut Bilgic Stable tablet formulations
JP5462343B2 (en) * 2011-12-15 2014-04-02 花王株式会社 Solid composition
JP6245677B2 (en) * 2012-01-20 2017-12-13 ニプロ株式会社 Orally disintegrating tablets
ES2763579T3 (en) 2012-01-27 2020-05-29 Univ California Stabilization of biomolecules with sugar polymers
JP2013224265A (en) * 2012-04-19 2013-10-31 Asahi Kasei Chemicals Corp Tablet containing strike-sensitive drug
WO2013172297A1 (en) 2012-05-14 2013-11-21 塩野義製薬株式会社 Preparation containing 6,7-unsaturated-7-carbamoylmorphinan derivative
JP5638030B2 (en) * 2012-06-13 2014-12-10 木村産業株式会社 Tablets containing live bacteria, digestive enzymes and both
US20170042806A1 (en) 2015-04-29 2017-02-16 Dexcel Pharma Technologies Ltd. Orally disintegrating compositions
CN108348460A (en) * 2015-09-11 2018-07-31 安德鲁·吉斯 A kind of oral granule composition
US10076494B2 (en) 2016-06-16 2018-09-18 Dexcel Pharma Technologies Ltd. Stable orally disintegrating pharmaceutical compositions
US20190328674A1 (en) * 2016-06-16 2019-10-31 Towa Pharmaceutical Co., Ltd. Orally disintegrating tablet
JP6498158B2 (en) * 2016-07-11 2019-04-10 ニプロ株式会社 Orally disintegrating tablets
DE102017104472A1 (en) 2017-03-03 2018-09-06 Nordmark Arzneimittel Gmbh & Co. Kg Orodispersible tablet containing burlulipase and pharmaceutical composition prepared therefrom
CN107837240B (en) * 2017-12-12 2020-07-07 佛山德芮可制药有限公司 Manidipine hydrochloride tablet for treating hypertension and preparation method thereof
WO2019131411A1 (en) * 2017-12-27 2019-07-04 物産フードサイエンス株式会社 Erythritol granules for orally disintegrating tablets, method for producing same, and orally disintegrating tablets prepared using same
FR3099881B1 (en) 2019-08-13 2022-08-26 Ethypharm Sa Low dosage opioid orodispersible tablet and process for its preparation.

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5464632A (en) * 1991-07-22 1995-11-07 Laboratoires Prographarm Rapidly disintegratable multiparticular tablet
US6106861A (en) * 1997-07-21 2000-08-22 Laboratoires Prographarm Multiparticulate tablet disintegrating in less than 40 seconds in the mouth
US6740339B1 (en) * 1999-06-18 2004-05-25 Takeda Chemical Industries, Ltd. Quickly disintegrating solid preparations
US6923988B2 (en) * 1999-11-23 2005-08-02 Lipocine, Inc. Solid carriers for improved delivery of active ingredients in pharmaceutical compositions

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1617283A1 (en) 1966-08-24 1972-08-10 American Home Prod Antacid tablet
US20010014340A1 (en) 1996-06-14 2001-08-16 Motohiro Ohta Intrabuccally rapidly disintegrating tablet
EP0839526A3 (en) 1996-10-31 1999-01-07 Takeda Chemical Industries, Ltd. Solid pharmaceutical preparation with fast buccal disintegration or dissolution
US6024981A (en) 1997-04-16 2000-02-15 Cima Labs Inc. Rapidly dissolving robust dosage form
JPH10298062A (en) 1997-04-24 1998-11-10 Pfizer Pharmaceut Co Ltd Rapidly dissolving type tablet in oral cavity
TW580397B (en) * 1997-05-27 2004-03-21 Takeda Chemical Industries Ltd Solid preparation
WO1999059544A2 (en) * 1998-05-18 1999-11-25 Takeda Chemical Industries, Ltd. Orally disintegrable tablets
TW585786B (en) 1998-07-28 2004-05-01 Takeda Chemical Industries Ltd Lansoprazole-containing rapidly disintegrable solid pharmaceutical composition
JP2983973B1 (en) * 1998-10-13 1999-11-29 大正薬品工業株式会社 Oral fast disintegrating solid preparation
JP2000273039A (en) * 1999-01-20 2000-10-03 Taisho Pharmaceut Co Ltd Composition disintegrable in oral cavity
WO2000048575A1 (en) 1999-02-17 2000-08-24 Kyowa Hakko Kogyo Co., Ltd. Tablets and process for producing tablets

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5464632A (en) * 1991-07-22 1995-11-07 Laboratoires Prographarm Rapidly disintegratable multiparticular tablet
US5464632C1 (en) * 1991-07-22 2001-02-20 Prographarm Lab Rapidly disintegratable multiparticular tablet
US6106861A (en) * 1997-07-21 2000-08-22 Laboratoires Prographarm Multiparticulate tablet disintegrating in less than 40 seconds in the mouth
US6740339B1 (en) * 1999-06-18 2004-05-25 Takeda Chemical Industries, Ltd. Quickly disintegrating solid preparations
US6923988B2 (en) * 1999-11-23 2005-08-02 Lipocine, Inc. Solid carriers for improved delivery of active ingredients in pharmaceutical compositions

Cited By (37)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20030215508A1 (en) * 2000-04-28 2003-11-20 Davis Robert D. Sustained release of guaifenesin combination drugs
US20040018233A1 (en) * 2000-04-28 2004-01-29 Davis Robert D. Sustained release of guaifenesin
US20040022851A1 (en) * 2000-04-28 2004-02-05 Davis Robert D. Sustained release of guaifenesin combination drugs
US7985420B2 (en) 2000-04-28 2011-07-26 Reckitt Benckiser Inc. Sustained release of guaifenesin combination drugs
US20110052689A1 (en) * 2000-04-28 2011-03-03 Reckitt Benckiser Inc. Sustained release of guaifenesin
US7838032B2 (en) 2000-04-28 2010-11-23 Reckitt Benckiser Inc. Sustained release of guaifenesin
US7985421B2 (en) 2000-04-28 2011-07-26 Reckitt Benckiser Inc. Sustained release formulations of guaifenesin and additional drug ingredients
US8012504B2 (en) 2000-04-28 2011-09-06 Reckitt Benckiser Inc. Sustained release of guaifenesin combination drugs
US20110135722A1 (en) * 2001-07-16 2011-06-09 Bruno Criere Pharmaceutical formulation comprising a proton pump inhibitor and antacids
US20040110813A1 (en) * 2002-09-24 2004-06-10 Boehringer Ingelheim International Gmbh Solid telmisartan pharmaceutical formulations
US8980870B2 (en) * 2002-09-24 2015-03-17 Boehringer Ingelheim International Gmbh Solid telmisartan pharmaceutical formulations
WO2005037262A1 (en) * 2003-10-22 2005-04-28 Tubilux Pharma S.P.A. Citicoline-based composition in combination with vitamins for the prevention and treatment of eye pathologies
US20060018964A1 (en) * 2004-07-26 2006-01-26 Astrazeneca Ab Pharmaceutical formulation and process for its preparation
US20090208584A1 (en) * 2005-06-09 2009-08-20 Tomohiro Yoshinari Solid preparation
CN105012266A (en) * 2006-09-26 2015-11-04 诺华股份有限公司 Pharmaceutical compositions comprising S1P receptor
CN110548011A (en) * 2006-09-26 2019-12-10 诺华股份有限公司 Pharmaceutical compositions comprising S1P modulators
US8778392B2 (en) 2007-03-13 2014-07-15 Dainippon Sumitomo Pharma Co., Ltd. Oral disintegrating tablet
US9980915B2 (en) 2007-03-13 2018-05-29 Sumitomo Dainippon Pharma Co., Ltd. Oral disintegrating tablet
US20100098756A1 (en) * 2007-03-13 2010-04-22 Dainippon Sumitomo Pharma Co., Ltd Oral disintegrating tablet
US20080254120A1 (en) * 2007-04-11 2008-10-16 Nipro Corporation Orally-disintegrating tablet and manufacturing method thereof
FR2933299A1 (en) * 2008-07-04 2010-01-08 Roquette Freres MANNITOL ORODISPERSIBLE
US9839610B2 (en) 2008-07-04 2017-12-12 Roquette Freres Orodispersible mannitol
WO2010001063A1 (en) * 2008-07-04 2010-01-07 Roquette Freres Orodispersible mannitol
US10105314B2 (en) 2008-07-04 2018-10-23 Roquette Freres Orodispersible mannitol
US20110111037A1 (en) * 2008-07-04 2011-05-12 Roquette Freres Orodispersible mannitol
US9937131B2 (en) * 2009-04-30 2018-04-10 Roquette Freres Compressible and free-flow co-agglomerates of mannitol and granular starch
US20170281550A1 (en) * 2009-04-30 2017-10-05 Roquette Freres Compressible and free-flow co-agglomerates of mannitol and granular starch
CN102413819A (en) * 2009-04-30 2012-04-11 罗盖特公司 Compressible and free-flow co-agglomerates of mannitol and granular starch
KR20120016075A (en) * 2009-04-30 2012-02-22 로께뜨프레르 Compressible and free-flow co-agglomerates of mannitol and granular starch
KR101867621B1 (en) * 2009-04-30 2018-06-15 로께뜨프레르 Compressible and free-flow co-agglomerates of mannitol and granular starch
US20120053249A1 (en) * 2009-04-30 2012-03-01 Roquette Freres Compressible and free-flow co-agglomerates of mannitol and granular starch
EP2424508B1 (en) * 2009-04-30 2020-03-11 Roquette Freres Compressible and free-flow co-agglomerates of mannitol and granular starch
US11364204B2 (en) 2009-04-30 2022-06-21 Roquette Freeres Compressible and free-flow co-agglomerates of mannitol and granual starch
US9278063B2 (en) * 2009-12-11 2016-03-08 Sumitomo Dainippon Pharma Co., Ltd. Press-coated orally-disintegrating tablets
US20120237602A1 (en) * 2009-12-11 2012-09-20 Yuki Ikeda Press-coated orally-disintegrating tablets
US20110150993A1 (en) * 2009-12-22 2011-06-23 Fmc Corporation Fine Particle Croscarmellose and Uses Thereof
US11278506B2 (en) 2015-10-09 2022-03-22 Rb Health (Us) Llc Pharmaceutical formulation

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EP1203580A1 (en) 2002-05-08
US20050238712A1 (en) 2005-10-27
WO2000078292A1 (en) 2000-12-28
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US6740339B1 (en) 2004-05-25
AU5248900A (en) 2001-01-09
EP1203580A4 (en) 2004-06-30

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