Abuse-proofed oral dosage form

Abstract
The present invention relates to an abuse-proofed, oral dosage form with controlled opioid-release for once daily administration, characterised in that it comprises at least one opioid with potential for abuse (A), at least one synthetic or natural polymer (C), optionally delayed-release matrix auxiliary substances, physiologically acceptable auxiliary substances (B), optionally a wax (D) and optionally at least one delayed-release coating, component (C) or (D) in each case exhibiting a breaking strength of at least 500 N, preferably of at least 1000 N.
Description

The present invention relates to an abuse-proofed oral dosage form with controlled opioid release for once daily administration, comprising at least one opioid with potential for abuse (A), at least one synthetic or natural polymer (C), optionally delayed-release matrix auxiliary substances, optionally physiologically acceptable auxiliary substances (B), optionally a wax (D) and optionally a delayed-release coating, component (C) or (D) in each case exhibiting a breaking strength of at least 500 N, preferably of 1000 N.


The name opioids is taken according to the invention to mean compounds which interact with at least one opioid receptor. In particular, with the exception of (1R,2R)-3-(3-dimethylamino-1-ethyl-2-methyl-propyl)phenol, the physiologically acceptable salts or derivatives thereof, opioids are taken to mean those compounds which exhibit a potential for abuse.


Preferably, opioids are used for combatting pain. To this end, analgesics are frequently used in long-term treatment, for example in the case of chronic pain or pain caused by tumours. In long-term treatment, in particular, it is important to enable the patient to enjoy a good quality of life. The measures which improve the quality of life of a patient include dosage forms which allow once daily administration. However, because of the relatively large quantity of opioid, such dosage forms, which provide delayed release of the active ingredient, are particularly attractive to the abuser who wishes to induce the desired state of narcosis or euphoria as quickly as possible.


Since, however, delayed-release dosage forms containing opioids with potential for abuse do not usually give rise to the kick desired by the abuser when taken orally even in abusively high quantities, these dosage forms for example in the form of tablets or capsules are also comminuted, e.g. ground, and sniffed by the abuser for the purpose of abuse or the active ingredients are extracted from the powder obtained in this way by means of an aqueous liquid and the resultant solution is administered parenterally, in particular intravenously, optionally after filtration through cotton wool or cellulose wadding. This type of administration produces even more accelerated increase in opioid levels than with oral or nasal abuse, with the result desired by the abuser, namely the “kick” or “rush”.


U.S. Pat. No. 4,070,494 proposed adding a swellable agent to the dosage form in order to prevent abuse. When water is added to extract the opioid, this agent swells and ensures that the filtrate separated from the gel contains only a small quantity of active ingredient.


The multilayer tablet disclosed in WO 95/20947 is based on a similar approach to preventing parenteral abuse, said tablet containing the opioid with potential for abuse and at least one gel former, each in different layers.


WO 03/015531 A2 discloses another approach to preventing parenteral abuse. A dosage form containing an analgesic opioid and a dye as an aversive agent is described therein. The colour released by tampering with the dosage form is intended to discourage the abuser from using the dosage form which has been tampered with.


Another known option for complicating abuse involves adding to the dosage form an antagonist to the opioid, such as for example naloxone or naltrexone, or compounds which cause a physiological defence response, such as for example ipecacuanha (ipecac) root, or bitter substances.


However, since in most cases of abuse of dosage forms with delayed-release of an opioid, it is still necessary to pulverise the dosage form, it was the object of the present invention to complicate or prevent the pulverisation preceding abuse of the dosage form comprising the means conventionally available for potential abuse and accordingly to provide a dosage form with controlled release of opioids with potential for abuse which ensures the desired therapeutic effect when correctly administered once daily, but from which the opioids cannot be converted into a form suitable for abuse simply by pulverisation.


This object was achieved by the preparation of the abuse-proofed oral dosage form, according to the invention, with controlled release of at least one opioid for once daily administration, which dosage form comprises, in addition to at least one opioid and/or at least one of the physiologically acceptable compounds thereof, preferably salts or derivatives, preferably esters or ethers, with potential for abuse (A), at least one synthetic or natural polymer (C), optionally delayed-release matrix auxiliary substances, optionally physiologically acceptable auxiliary substances (B), optionally a wax (D), and optionally at least one delayed-release coating, component (C) or (D) in each case exhibiting a breaking strength of at least 500 N, preferably of 1000 N.


By using components (C) and optionally (D) with the stated minimum breaking strength, preferably in such quantities that the dosage form also exhibits such a minimum breaking strength, pulverisation of the dosage form with conventional means and thus subsequent abuse, preferably nasal or parenteral abuse, may be complicated considerably or prevented.


Preferably, the components (C) and optionally (D) are present in such quantities that the dosage form exhibits a breaking strength of at least 500 N, preferably of at least 1000 N.


Without sufficient comminution of the dosage form, non-hazardous parenteral, in particular intravenous or nasal administration is impossible or extraction of the active ingredient takes the abuser too long, or no or an inadequate kick is obtained on abusive oral administration, since spontaneous release does not occur.


According to the invention, comminution is taken to mean pulverisation of the dosage form with conventional means which are available to an abuser, such as for example a pestle and mortar, a hammer, a mallet or other usual means for pulverisation by application of force.


The dosage form according to the invention is thus suitable for preventing parenteral, nasal and/or oral abuse of opioids with potential for abuse.


Opioids with potential for abuse are known to the person skilled in the art, as are the dosages thereof to be used and processes for the production thereof, and may be present in the dosage form according to the invention as such, in the form of the corresponding derivatives thereof, in particular esters or ethers, or in each case in the form of corresponding physiologically acceptable compounds, in particular in the form of the salts or solvates thereof, as racemates or stereoisomers. The dosage form according to the invention is also suitable for the administration of a plurality of opioids. Preferably it is used to administer to humans or mammals, preferably to humans, a particular opioid for combatting pain for a duration of at least 24 hours.


The dosage forms according to the invention are very particularly suitable for preventing the abuse of an opioid which is selected from the group consisting of N-{1-[2-(4-Ethyl-5-oxo-2-tetrazolin-1-yl)ethyl]-4-methoxymethyl-4-piperidyl}propionanilide (alfentanil), allylprodine, alphaprodine, anileridine, bemidone, benzylmorphine, bezitramide, 17-cyclopropylmethyl-4,5a-epoxy-7a[(S)-1-hydroxy-1,2,2-trimethyl-propyl]-6-methoxy-6,14-endo-ethanomorphinan-3-ol (buprenorphine), butorphanol, carfentanil, clofedanol, clonitazene, (−)-methyl-[3β-benzoyloxy-2β(1aH,5aH)-tropane carboxylate] (cocaine), 4,5a-epoxy-3-methoxy-17-methyl-7-morphines-6a-ol (codeine), desomorphine, dextromoramide, (+)-(1-benzyl-3-dimethylamino-2-methyl-1-phenylpropyl)propionate (dextropropoxyphene), dezocine, diampromide, diamorphone, 4,5a-epoxy-3-methoxy-17-methyl-6a-morphinanol (dihydrocodeine). 4,5a-epoxy-17-methyl-3,6a-morphinandiol (dihydromorphine), dimenoxadol, dimephetamol, dimethylthiambutene, dioxaphetyl butyrate, dipipanone, dihydromorphone, eptazocine, ethoheptazine, ethylmethylthiambutene, 4,5a-epoxy-3-ethoxy-17-methyl-7-morphinen-6a-ol (ethylmorphine), etonitazene, 4,5-epoxy-7-(1-hydroxy-1-methylbutyl)-6-methoxy-17-methyl-6,14-endo-etheno-morphinan-3-ol (etorphine), fenpipramide, N-(1-phenethyl-4-piperidyl)propionanilide (fentanyl), heroin, 4,5-epoxy-3-methoxy-17-methyl-6-morphinanone (hydrocodone), 4,5a-epoxy-3-hydroxy-17-methyl-6-morphinanone (hydromorphone), hydroxypethidine, isomethadone, hydroxymethylmorphinan,1-[4-(3-hydroxyphenyl)-1-methyl-4-piperidyl]-1-propanone (ketobemidone), (3S,6S)-6-dimethylamino-4,4-diphenytheptan-3-yl acetate (levacetylmethadol), (−)-6-dimethylamino-4,4-diphenol-3-heptanone (levomethadone), (−)-17-methyl-3-morphinanol (levorphanol), levophenacylmorphane, levoxemacin, lofentanil, meperidine, 2-methyl-2-propyltrimethylene dicarbamate, meptazinol, metazocine, methadone, methylmorphine, metapon, 3-methylfentanyl, 4-methylfentanyl, 4,5a-epoxy-17-methyl-7-morphinen-3,6a-diol (morphine), myrophine, nalbuphene, nalorphine, narceine, nicomorphine, 6-dimethylamino-4,4-diphenyl-3-hexanone (normethadone), normorphine, norpipanone, the exudation from plants belonging to the species Papaver somniferum (opium), 4,5a-epoxy-14-hydroxy-3-methoxy-17-methyl-6-morphinanone (oxycodone), oxymorphone, plants and parts of plants belonging to the species Papaver somniferum (including the subspecies setigerum) (Papaver somniferum), papaveretum, 1,2,3,4,5,6-hexahydro-6,11-dimethyl-3-(3-methyl-2-butenyl)-2,6-methano-3-benzazocin-8-ol (pentazocine), ethyl-(1-methyl-4-phenyl-4-piperidinecarboxylate) (pethidine), phenadoxone, phenomorphane, phenazocine, phenoperidine, piminodine, pholcodeine, 1′-(3-cyano-3,3-diphenylpropyl)[1,4′-bipiperidine]-4′-carboxamide (piritramide), proheptazine, promedol, properidine, propoxyphene, methyl {3-[4-methoxycarbonyl-4-(N-phenylpropanamido)piperidino]-propanoate} (remifentanil), N-{4-methoxymethyl-1-[2-(2-thienyl)ethyl]-4-piperidyl}propionanilide (sufentanil), ethyl (2-dimethylamino-1-phenyl-3-cyclohexene-1-carboxylate) (tilidine, cis and trans), tramadol, (1R,2R,4S)-2-(dimethylamino)methyl-4-(p-fluorobenzyloxy)-1-(m-methoxyphenyl)cyclohexanol, (1R,2R)-3-(2-dimethylaminomethyl-cyclohexyl)phenol, (1S,2S)-3(3-dimethylamino-1-ethyl-2-methyl-propyl)phenol, (2R,3R)-1-dimethylamino-3(3-methoxyphenyl)-2-methyl-pentan-3-ol, (1RS,3RS,6RS)-6-dimethylaminomethyl-1-(3-methoxyphenyl)-cyclohexane-1,3-diol, preferably as racemate, 3-(2-dimethylaminomethyl-1-hydroxy-cyclohexyl)phenyl 2-(4-isobutoxy-phenyl)propionate, 3-(2-dimethylaminomethyl-1-hydroxy-cyclohexyl)phenyl 2-(6-methoxy-naphthalen-2-yl)propionate, 3-(2-dimethylaminomethyl-cyclohex-1-enyl)-phenyl 2-(4-isobutyl-phenyl)propionate, 3-(2-dimethylaminomethyl-cyclohex-1-enyl)-phenyl 2-(6-methoxy-naphthalen-2-yl)propionate, (RR-SS)-2-acetoxy-4-trifluoromethyl-benzoic acid 3-(2-dimethylaminomethyl-1-hydroxy-cyclohexyl)-phenyl ester, (RR-SS)-2-hydroxy-4-trifluoromethyl-benzoic acid 3-(2-dimethylaminomethyl-1-hydroxy-cyclohexyl)-phenyl ester, (RR-SS)-4-chloro-2-hydroxy-benzoic acid 3-(2-dimethytaminomethyl-1-hydroxy-cyclohexyl)-phenyl ester, (RR-SS)-2-hydroxy-4-methyl-benzoic acid 3-(2-dimethylaminomethyl-1-hydroxy-cyclohexyl)-phenyl ester, (RR-SS)-2-hydroxy-4-methoxy-benzoic acid 3-(2-dimethylaminomethyl-1-hydroxy-cyclohexyl)-phenyl ester, (RR-SS)-2-hydroxy-5-nitro-benzoic acid 3-(2-dimethylaminomethyl-1-hydroxy-cyclohexyl)-phenyl ester, (RR-SS)-2′,4′-difluoro-3-hydroxy-biphenyl-4-carboxylic acid 3-(2-dimethylaminomethyl-1-hydroxy-cyclohexyl)-phenyl ester together with corresponding stereoisomeric compounds, in each case the corresponding derivatives thereof, in particular amides, esters or ethers, and in each case the physiologically acceptable compounds thereof, in particular the salts and solvates thereof, particularly preferably hydrochlorides.


The dosage form according to the invention is particularly suitable for preventing abuse of an opioid active ingredient selected from among the group comprising oxycodone, hydromorphone, morphine, tramadol and the physiologically acceptable derivatives or compounds thereof, preferably the salts and solvates thereof, preferably the hydrochlorides thereof.


Furthermore, the dosage form according to the invention is particularly suitable for preventing the abuse of an opioid active ingredient selected from among the group comprising (2R,3R)-1-dimethylamino-3(3-methoxyphenyl)-2-methyl-pentan-3-ol, (1RS,3RS,6RS)-6-dimethylaminomethyl-1-(3-methoxy-phenyl)-cyclohexane-1,3-diol, (1R,2R)-3-(2-dimethylaminomethyl-cyclohexyl)phenol, the physiologically acceptable salts thereof, preferably hydrochlorides, physiologically acceptable enantiomers, stereoisomers, diastereomers and racemates and the physiologically acceptable derivatives thereof, preferably ethers, esters or amides.


These compounds and the process for the production thereof are described in EP-A-693475 and EP-A-780369 respectively. The corresponding descriptions are hereby introduced as a reference and are deemed to be part of the disclosure.


The dosage in the delayed-release dosage form is selected such that once daily administration is ensured. The corresponding dosages are known to the person skilled in the art.


In order to achieve the necessary breaking strength of the dosage form according to the invention, at least one synthetic, semi-synthetic or natural polymer (C) is used which has a breaking strength, measured using the method disclosed in the present application, of at least 500 N, preferably of 1000 N. Preferably, at least one polymer is selected for this purpose from among the group comprising polyalkylene oxides, preferably polymethylene oxides, polyethylene oxides, polypropylene oxides, polyolefins, preferably polyethylenes, polypropylenes, polyvinyl chlorides, polycarbonates, polystyrenes, polymethacrylates, the copolymers thereof, and mixtures of at least two of the stated polymer classes or polymers. Particularly preferably, a water-soluble or water-swellable polymer is used. The polymers are distinguished by a molecular weight of at least 0.5 million, preferably of at least 1 million to 15 million, determined by rheological measurement. Particularly preferably suitable are thermoplastic polyalkylene oxides, such as polyethylene oxides, with a molecular weight of at least 0.5 million, preferably of at least 1 million to 15 million, determined by rheological measurement. The polyethylene oxides have a viscosity at 25° C. of 4500 to 17600 cP, measured on a 5 wt. % aqueous solution using a model RVF Brookfield viscosimeter (spindle no. 2/rotational speed 2 rpm), of 400 to 4000 cP, measured on a 2 wt. % aqueous solution using the stated viscosimeter (but with spindle no. 1 or 3/rotational speed 10 rpm) or of 1650 to 10000 cP, measured on a 1 wt. % aqueous solution using the stated viscosimeter (but with spindle no. 2/rotational speed 2 rpm).


The polymers are preferably used as powder to produce the dosage form according to the invention.


Moreover, in addition to the above-stated polymers, at least one natural, semi-synthetic or synthetic wax (D) with a breaking strength, measured using the method disclosed in the present application, of at least 500 N, preferably of 1000 N, may additionally be used to achieve the necessary breaking strength of the dosage form according to the invention. Waxes with a softening point of at least 60° C. are preferred. Carnauba wax and beeswax are particularly preferred. Carnauba wax is very particularly preferred. Carnauba wax is a natural wax which is obtained from the leaves of the carnauba palm and has a softening point of at most 90° C. When additionally using the wax component, the latter is used together with at least one polymer (C), preferably a polyethylene oxide, in such quantities that the dosage form exhibits a breaking strength of at least 500 N, preferably of 1000 N, measured using the method stated in the present application.


The dosage forms according to the invention are distinguished in that, they cannot be pulverised using conventional comminution tools, such as grinders, due to their hardness. Oral, parenteral, in particular intravenous, or nasal abuse is complicated a very great deal thereby, if not ruled out altogether. However, in order to prevent any possible abuse of the dosage forms according to the invention, in a preferred embodiment, the dosage forms according to the invention may contain further abuse-complicating or -preventing agents as auxiliary substances (B).


Thus, the abuse-proofed dosage form according to the invention may comprise, in addition to at least one opioid, at least one polymer (C) and optionally at least one wax (D), at least one of the following components (a)-(f) as auxiliary substances (B):

    • (a) at least one substance which irritates the nasal passages and/or pharynx,
    • (b) at least one viscosity-increasing agent, which, with the assistance of a necessary minimum quantity of an aqueous liquid, preferably as an aqueous extract obtained from the dosage form, forms a gel which preferably remains visually distinguishable when introduced into a further quantity of an aqueous liquid,
    • (c) at least one antagonist for the present opioids with potential for abuse,
    • (d) at least one emetic,
    • (e) at least one dye as an aversive agent,
    • (f) at least one bitter substance.


The components (a) to (f) are each suitable on their own as additional protection of the dosage form according to the invention against abuse. Accordingly, component (a) is preferably suitable for proofing the dosage form against nasal, oral and/or parenteral, preferably intravenous, abuse, component (b) is preferably suitable for proofing against parenteral, particularly preferably intravenous and/or nasal abuse, component (c) is preferably suitable for proofing against nasal and/or parenteral, particularly preferably intravenous, abuse, component (d) is preferably suitable for proofing against parenteral, particularly preferably intravenous, and/or oral and/or nasal abuse, component (e) is suitable as a visual deterrent against oral or parenteral abuse and component (f) is suitable for proofing against oral or nasal abuse. Through the co-use of at least one of the above-stated components, it is possible to complicate abuse even more effectively for the dosage forms according to the invention.


In one embodiment, the dosage form according to the invention may also comprise two or more of components (a)-(f) in a combination, preferably in the combinations (a), (b) and optionally (c) and/or (f) and/or (e) or (a), (b) and optionally (d) and/or (f) and/or (e).


In another embodiment, the dosage form according to the invention may comprise all of components (a)-(f).


If the dosage form according to the invention comprises component (a) as additional protection against abuse, substances which irritate the nasal passages and/or pharynx which may be considered according to the invention are any substances which, when administered via the nasal passages and/or pharynx, bring about a physical reaction which is either so unpleasant for the abuser that he/she does not wish to or cannot continue administration, for example burning, or physiologically counteracts taking of the corresponding opioid(s) and/or opiate(s), for example due to increased nasal secretion or sneezing. These substances which conventionally irritate the nasal passages and/or pharynx may also bring about a very unpleasant sensation or even unbearable pain when administered parenterally, in particular intravenously, such that the abuser does not wish to or cannot continue taking the substance.


Particularly suitable substances which irritate the nasal passages and/or pharynx are those which cause burning, itching, an urge to sneeze, increased formation of secretions or a combination of at least two of these stimuli. Appropriate substances and the quantities thereof which are conventionally to be used are known per se to the person skilled in the art or may be identified by simple preliminary testing.


The substance which irritates the nasal passages and/or pharynx of component (a) is preferably based on one or more constituents or one or more plant parts of at least one hot substance drug.


Corresponding hot substance drugs are known per se to the person skilled in the art and are described, for example, in “Pharmazeutische Biologie—Drogen und ihre Inhaltsstoffe” by Prof. Dr. Hildebert Wagner, 2nd., revised edition, Gustav Fischer Verlag, Stuttgart-New York, 1982, pages 82 et seq. The corresponding description is hereby introduced as a reference and is deemed to be part of the disclosure.


One or more constituents of at least one hot substance drug selected from the group consisting of Allii sativi bulbus (garlic), Asari rhizoma cum herba (Asarum root and leaves), Calami rhizoma (calamus root), Capsici fructus (capsicum), Capsici fructus acer (cayenne pepper), Curcumae longae rhizoma (turmeric root), Curcumae xanthorrhizae rhizoma (Javanese turmeric root), Galangae rhizoma (galangal root), Myristicae semen (nutmeg), Piperis nigri fructus (pepper), Sinapis albae semen (white mustard seed). Sinapis nigri semen (black mustard seed), Zedoariae rhizoma (zedoary root) and Zingiberis rhizoma (ginger root), particularly preferably from the group consisting of Capsici fructus (capsicum), Capsici fructus acer (cayenne pepper) and Piperis nigri fructus (pepper) may preferably be added as component (a) to the dosage form according to the invention.


The constituents of the hot substance drugs preferably comprise o-methoxy(methyl)phenol compounds, acid amide compounds, mustard oils or sulfide compounds or compounds derived therefrom.


Particularly preferably, at least one constituent of the hot substance drugs is selected from the group consisting of myristicin, elemicin, isoeugenol, a-asarone, safrole, gingerols, xanthorrhizol, capsaicinoids, preferably capsaicin, capsaicin derivatives, such as N-vanillyl-9E-octadecenamide, dihydrocapsaicin, nordihydrocapsaicin, homocapsaicin, norcapsaicin and nomorcapsaicin, piperine, preferably trans-piperine, glucosinolates, preferably based on non-volatile mustard oils, particularly preferably based on p-hydroxybenzyl mustard oil, methyimercapto mustard oil or methylsulfonyl mustard oil, and compounds derived from these constituents.


The dosage form according to the invention may preferably contain the plant parts of the corresponding hot substance drugs in a quantity of 0.01 to 30 wt. %, particularly preferably of 0.1 to 0.5 wt. %, in each case relative to the total weight of the dosage unit. If one or more constituents of corresponding hot substance drugs are used, the quantity thereof in a dosage unit according to the invention preferably amounts to 0.001 to 0.005 wt. %, relative to the total weight of the dosage unit. A dosage unit is taken to mean a separate or separable administration unit, such as for example a tablet or a capsule.


Another option for preventing abuse of the dosage form according to the invention consists in adding at least one viscosity-increasing agent as a further abuse-preventing component (b) to the dosage form, which, with the assistance of a necessary minimum quantity of an aqueous liquid, preferably as an aqueous extract obtained from the dosage form, forms a gel which is virtually impossible to administer safely and preferably remains visually distinguishable when introduced into a further quantity of an aqueous liquid


For the purposes of the present application, visually distinguishable means that the opioid- or opiate-containing gel formed with the assistance of a necessary minimum quantity of aqueous liquid, when introduced, preferably with the assistance of a hypodermic needle, into a further quantity of aqueous liquid at 37° C., remains substantially insoluble and cohesive and cannot straightforwardly be dispersed in such a manner that it can safely be administered parenterally, in particular intravenously. The material preferably remains visually distinguishable for at least one minute, preferably for at least 10 minutes.


Increasing the viscosity to a gel makes it more difficult or even impossible for it to be passed through a needle or injected. If the gel remains visually distinguishable, this means that the gel obtained on introduction into a further quantity of aqueous liquid, for example by injection into blood, initially remains in the form of a largely cohesive thread, which, while it may indeed be broken up mechanically into smaller fragments, cannot be dispersed or even dissolved in such a manner that it can safely be administered parenterally, in particular intravenously. In combination with at least one further present component (a), (d) to (f), this additionally leads to unpleasant burning, vomiting, bad flavour and/or visual deterrence.


Intravenous administration of such a gel would most probably result in obstruction of blood vessels, associated with serious damage to the health of the abuser.


In order to verify whether a viscosity-increasing agent is suitable as component (b) for use in the dosage form according to the invention, the opioid(s) and/or opiate(s) is(are) mixed with the viscosity-increasing agent and suspended in 10 ml of water at a temperature of 25° C. If this results in the formation of a gel which fulfils the above-stated conditions, the corresponding viscosity-increasing agent is suitable for additionally preventing or averting abuse of the dosage forms according to the invention.


If component (b) is added to the dosage form obtained by the process according to the invention, preferably one or more viscosity-increasing agents are used, which are selected from the group comprising microcrystalline cellulose with 11 wt. % carboxymethylcellulose sodium (Avicel® RC 591), carboxymethylcellulose sodium (Blanose®, CMC-Na C300P®, Frimulsion BLC-5®, Tylose C300 P®), polyacrylic acid (Carbopol® 980 NF, Carbopol® 981), locust bean flour (Cesagum® LA-200, Cesagum® LID/150, Cesagum® LN-1), pectins, preferably from citrus fruits or apples (Cesapectin® HM Medium Rapid Set), waxy maize starch (C*Gel 04201®), sodium alginate (Frimulsion ALG (E401)®), guar flour (Frimulsion BM®, Polygum 26/1-75®), iota-carrageenan (Frimulsion D021®), karaya gum, gellan gum (Kelcogel F®, Kelcogel LT100®), galactomannan (Meyprogat 150®), tara stone flour (Polygum 43/1®), propylene glycol alginate (Protanal-Ester SD-LB®), sodium-hyaluronate, tragacanth, tara gum (Vidogum SP 200®), fermented polysaccharide welan gum (K1A96), xanthans such as xanthan gum (Xantural 180®). Xanthans are particularly preferred. The names stated in brackets are the trade names by which the materials are known commercially. In general, a quantity of 0.1 to 5 wt. %, relative to the total quantity of the dosage form, of the stated viscosity-increasing agent(s) is sufficient to fulfil the above-stated conditions.


The component (b) viscosity-increasing agents, where provided, are preferably present in the dosage form according to the invention in quantities of =5 mg per dosage unit, i.e. per administration unit.


In a particularly preferred embodiment of the present invention, the viscosity-increasing agents used as component (b) are those which, preferably by extraction from the dosage form with the necessary minimum quantity of aqueous liquid, form a gel which encloses air bubbles. The resultant gels are distinguished by a turbid appearance, which provides the potential abuser with an additional optical warning and discourages him/her from administering the gel parenterally.


The component (C) may also optionally serve as an additional viscosity-increasing agent, which forms a gel with the assistance of a necessary minimum quantity of aqueous liquid.


It is also possible, to arrange the viscosity-increasing component and the other constituents of the dosage form according to the invention spatially separately from one another.


Moreover, in order to discourage and prevent abuse, the dosage form according to the invention may furthermore comprise component (c), namely one or more antagonists for the opioid(s) and/or opiate(s) with potential for abuse, wherein the antagonist is preferably spatially separated from the remaining constituents of the dosage form according to the invention and, when correctly used, do not exert any effect.


Suitable antagonists for preventing the abuse of opioids are known per se to the person skilled in the art and may be present in the dosage form according to the invention as such or in the form of corresponding derivatives, in particular esters or ethers, or in each case in the form of corresponding physiologically acceptable compounds, in particular in the form of the salts or solvates thereof.


The antagonist used is preferably selected from the group comprising naloxone, naltrexone, nalmefene, nalide and nalmexone, in each case optionally in the form of a corresponding physiologically acceptable compound, in particular in the form of a base, a salt or solvate. The corresponding antagonists, where component (c) is provided, are preferably used in a quantity of =1 mg, particularly preferably in a quantity of 3 to 100 mg, very particularly preferably in a quantity of 5 to 50 mg per dosage form, i.e. per administration unit.


The dosage form according to the invention preferably comprises the antagonist component in a conventional therapeutic dose known to the person skilled in the art, particularly preferably in a quantity of twice to three times this dose per administration unit.


If the combination for additional discouragement and prevention of abuse of the dosage form according to the invention comprises component (d), it may comprise at least one emetic, which is preferably present in a spatially separated arrangement from the other components of the dosage form according to the invention and, when correctly used, is intended not to exert its effect in the body.


Suitable emetics for additionally preventing abuse of an opioid are known per se to the person skilled in the art and may be present in the dosage form according to the invention as such or in the form of corresponding derivatives, in particular esters or ethers, or in each case in the form of corresponding physiologically acceptable compounds, in particular in the form of the salts or solvates thereof.


An emetic based on one or more constituents of ipecacuanha (ipecac) root, preferably based on the constituent emetine may preferably be considered for the dosage form according to the invention, as are, for example, described in “Pharmazeutische Biologie—Drogen und ihre Inhaltsstoffe” by Prof. Dr. Hildebert Wagner, 2nd, revised edition, Gustav Fischer Verlag, Stuttgart, New York 1982. The corresponding literature description is hereby introduced as a reference and is deemed to be part of the disclosure.


The dosage form according to the invention may preferably comprise the emetic emetine as component (d), preferably in a quantity of =3 mg, particularly preferably of =10 mg and very particularly preferably in a quantity of =20 mg per dosage form, i.e. administration unit.


Apomorphine may likewise preferably be used as an emetic for additional abuse-proofing, preferably in a quantity of preferably =3 mg, particularly preferably of =5 mg and very particularly preferably of =7 mg per administration unit.


If the dosage form according to the invention contains component (e) as a further abuse-preventing auxiliary substance, the use of such a dye brings about an intense coloration of a corresponding aqueous solution, in particular when the attempt is made to extract the opioid(s) for parenteral, preferably intravenous administration, which coloration may act as a deterrent to the potential abuser. Oral abuse, which conventionally begins by means of aqueous extraction of the opioid(s), may also be prevented by this coloration. Suitable dyes and the quantities required for the necessary deterrence may be found in WO 03/015531, wherein the corresponding disclosure should be deemed to be part of the present disclosure and is hereby introduced as a reference.


If the dosage form according to the invention contains component (f) as a further abuse-preventing auxiliary substance, this addition of at least one bitter substance and the consequent impairment of the flavour of the dosage form additionally prevents oral and/or nasal abuse.


Suitable bitter substances and the quantities effective for use may be found in US-2003/0064099, the corresponding disclosure of which should be deemed to be the disclosure of the present application and is hereby introduced as a reference. Suitable bitter substances are preferably aromatic oils, preferably peppermint oil, eucalyptus oil, bitter almond oil, menthol, fruit aroma substances, preferably aroma substances from lemons, oranges, limes, grapefruit or mixtures thereof, and/or denatonium benzoate (Bitrex®). Denatonium benzoate is particularly preferably used.


To ensure once daily administration, the dosage form according to the invention comprises the opioid (s) and/or opiate(s) with potential for abuse at least in part in delayed-release form, wherein the delayed release of the active ingredient may be achieved with the assistance of conventional materials and processes known to the person skilled in the art, for example by embedding the opioid(s) in a delayed-release matrix or by applying one or more delayed-release coatings. Opioid release must, however, be controlled such that the above-stated conditions are fulfilled in each case, for example that, in the event of correct administration of the dosage form, the opiold(s) are virtually completely released before the optionally present component (c) and/or (d) can exert an impairing effect. In particular, release of the opioid must ensure analgesic action for at least 24 hours.


If release of the opioid(s) from the dosage form according to the invention is controlled with the assistance of at least one delayed-release coating, the delayed-release coating may consist of conventional materials known to the person skilled in the art.


In a preferred embodiment of the dosage form according to the invention, the delayed-release coating is preferably based on a water-insoluble, optionally modified natural and/or synthetic polymer or on a natural, semi-synthetic or synthetic wax or on a fat or a fatty alcohol or on a mixture of at least two of the above-stated components.


To produce a delayed-release coating, the water-insoluble polymers preferably comprise poly(meth)acrylates, particularly preferably poly(C1-4)-alkyl(meth)acrylates, poly(C1-4)-dialkylamino-(C1-4)-alkyl(meth)acrylates and/or the copolymers thereof, very particularly preferably copolymers of ethyl acrylate and methyl methacrylate with a molar ratio of monomers of 2:1 (Eudragit NE30D®), copolymers of ethyl acrylate, methyl methacrylate and trimethylammonium methyl methacrylate chloride with a molar ratio of monomers of 1:2:0.1 (Eudragit RS®), copolymers of ethyl acrylate, methyl methacrylate and trimethylammonium methyl methacrylate chloride with a molar ratio of monomers of 1:2:0.2 (Eudragit RL®) or a mixture of at least two of these above-stated copolymers. These coating materials are commercially obtainable as 30 wt. % aqueous latex dispersions, i.e. as Eudragit RS30D®, Eudragit NE30D® or Eudragit RL30D® and are preferably also used as such as coating material.


Polyvinyl acetates optionally in combination with further auxiliary substances may likewise preferably be used as water-insoluble polymers for the production of a delayed-release coating for the dosage forms according to the invention. These are commercially obtainable as aqueous dispersions containing 27 wt. % of polyvinyl acetate, 2.5 wt. % of povidone and 0.3 wt. % of sodium lauryl sulfate (Kollicoat SR 30 D®).


In a further preferred embodiment, the delayed-release coatings for the dosage form according to the invention are based on water-insoluble cellulose derivatives, preferably alkylcelluloses such as for example ethylcellulose, or cellulose esters, such as for example cellulose acetate. The coatings of ethylcellulose or cellulose acetate are preferably applied from an aqueous pseudolatex dispersion. Aqueous ethylcellulose pseudolatex dispersions are commercially obtainable as 30 wt. % dispersions (Aquacoat®) or as 25 wt. % dispersions (Surelease®).


If the delayed-release coating is based a water-insoluble, optionally modified natural and/or synthetic polymer, the coating dispersion or solution may comprise, in addition to the corresponding polymer, a conventional physiologically acceptable plasticiser known to the person skilled in the art, in order to reduce the necessary minimum film temperature.


Suitable plasticisers are for example lipophilic diesters from an aliphatic or aromatic dicarboxylic acid with C6-C40 and an aliphatic alcohol with C1-C8, such as for example dibutyl phthalate, diethyl phthalate, dibutyl sebacate or diethyl sebacate, hydrophilic or lipophilic esters of citric acid, such as triethyl citrate, tributyl citrate, acetyl tributyl citrate or acetyl triethyl citrate, polyethylene glycols, propylene glycol, esters of glycerol, such as for example triacetin, Myvacet® (acetylated mono- and diglycerides, C23H44O5 to C25H47O7), medium-chain triglycerides (Miglyol®), oleic acid or mixtures of at least two of the stated plasticisers. Aqueous dispersions of Eudragit RS® and optionally Eudragit RL® preferably contain triethyl citrate.


Preferably, a delayed-release coating for the dosage form according to the invention contains plasticisers in quantities of 5 to 50 wt. %, particularly preferably of 10 to 40 wt. % and very particularly preferably of 10 to 30 wt. %, relative to the quantity of polymer used. In individual cases, for example for cellulose acetate, it is also possible to use larger quantities of plasticisers.


Moreover, a delayed-release coating may comprise further conventional auxiliary substances known to the person skilled in the art, such as for example slip agents, preferably talcum or glycerol monostearate, colouring pigments, preferably iron oxides or titanium dioxide, or surfactants, such as for example Tween 80®.


The release profile obtained for the opioid(s) may furthermore be adjusted by conventional options known to the person skilled in the art, such as for example the thickness of the coating or by the use of further auxiliary substances as constituents of the coating. Suitable auxiliary substances are for example hydrophilic or pH-dependent pore formers, such as for example sodium carboxymethylcellulose, cellulose acetate phthalate, hydroxypropylmethylcellulose acetate succinate, lactose, polyethylene glycol or mannitol or water-soluble polymers, such as for example polyvinylpyrrolidone or water-soluble celluloses, preferably hydroxypropylmethylcellulose or hydroxypropylcellulose.


The dosage forms according to the invention for release of the opioid(s) may additionally also comprise a coating which is resistant to gastric juices, which dissolves in pH-dependent manner. This coating makes it possible to ensure that the dosage forms according to the invention pass through the stomach undissolved and the opioid(s) is(are) not released until it(they) reach(es) the intestine.


The coating resistant to gastric juices is preferably based on methacrylic acid/alkyl methacrylate copolymers, preferably methyl methacrylate, such as methacrylic acid or ethylene methacrylate copolymers with a molar ratio of the particular monomers of 1:1 to 1:2, such as Eudragit L®, Eudragit S®, Eudragit L30D-55®, Eudragit FS®.


A delayed-release coating may be applied by conventional methods known to the person skilled in the art, such as for example by spraying of solutions, dispersions or suspensions, by melt methods or by powder application methods. The solutions, dispersions or suspensions may be used in the form of aqueous or organic solutions or dispersions. Aqueous dispersions are preferably used in this connection. Organic solvents which may be used are alcohols, for example ethanol or isopropanol, ketones, such as for example acetone, esters, for example ethyl acetate, wherein alcohols and ketones are preferably used. The coating methods are known from the prior art, for example H. Sucker, Georg Thieme Verlag, 1991, pages 347 et seq.. They are hereby introduced as a reference and are accordingly deemed to be part of the disclosure.


If the dosage form according to the invention is in multiparticulate form, the delayed-release coating is preferably applied in such a manner that the multiparticulate forms containing the opioid(s) are coated, after the production thereof, with the particular polymers and optionally further auxiliary substances from aqueous and/or organic media, preferably from aqueous media, with the assistance of the fluidised bed method and the coating is preferably simultaneously dried at conventional temperatures in the fluidised bed.


A poly(meth)acrylate-based coating is preferably dried at temperatures in the range from 30 to 50° C., particularly preferably from 35 to 45° C. For cellulose-based coatings, such as for example ethylcellulose, drying preferably proceeds at a temperature in the range from 50 to 80° C., particularly preferably in the range from 55 to 65° C. If necessary, drying may additionally be followed by a temperature-controlled treatment in order to obtain a stable release profile.


Delayed release of the active ingredient from the dosage form according to the invention may also be achieved by embedding the opioid(s) in a delayed-release matrix.


Materials which may be used for a delayed-release matrix are preferably physiologically acceptable, hydrophilic polymers, preferably cellulose ethers, cellulose esters and/or acrylic resins. Ethylcellulose, hydroxypropylmethylcellulose, hydroxypropylcellulose, hydroxyethylcellulose, methylcellulose, poly(meth)acrylic acid and/or the derivatives thereof, such as the salts, amides or esters thereof, are particularly preferably used.


Where hydrophobic compounds are used as the delayed-release matrix, fatty acids, fatty alcohols or corresponding esters or ethers or mixtures thereof may be used. Mono- or diglycerides of C12-C30 fatty acids and/or C12-C30 fatty alcohols and/or waxes or mixtures thereof are particularly preferably used as hydrophobic compounds.


It is also possible to use mixtures of the above-stated hydrophilic and hydrophobic matrix materials.


Component (b) as a viscosity-increasing agent may preferably also serve as a material for a delayed-release matrix, if this is permitted by the structure of the dosage form according to the invention.


Component (C) and the optionally present component (D), which serve to obtain the breaking strength of at least 500 N, preferably of 1000 N, which is necessary according to the invention, may optionally also serve as additional delayed-release matrix materials.


Corresponding delayed-release compounds and methods for the delayed release of the dosage forms according to the invention and for the application of coatings which are resistant to gastric juices are known to the person skilled in the art, for example from “Coated Pharmaceutical Dosage Forms—Fundamentals, Manufacturing Techniques, Biopharmaceutical Aspects, Test Methods and Raw Materials” by Kurt H. Bauer, K. Lehmann, Hermann P. Osterwald, Rothgang, Gerhart, 1st edition, 1998, Medpharm Scientific Publishers. The corresponding literature description is hereby introduced as a reference and is deemed to be part of the disclosure.


The dosage form according to the invention may assume multiparticulate form, preferably the form of microtablets, micropellets, granules, spheroids, beads or pellets, optionally packaged in capsules or press-moulded into tablets. The multiparticulate forms preferably have a size or size distribution in the range from 0.1 to 3 mm, particularly preferably in the range from 0.5 to 2 mm. Depending on the desired dosage form, conventional auxiliary substances (B) are optionally also used for the formulation of the dosage form.


In a particularly preferred embodiment, the dosage form according to the invention assumes the form of a tablet, a capsule or is in the form of an oral osmotic therapeutic system (OROS), preferably if at least one further abuse-preventing component (a)-(f) is also present.


The abuse-proofed, solid dosage form according to the invention is preferably produced by mixing components (A), (C) and optionally (D), optionally at least one of the additional abuse-preventing components (a)-(f) and optionally further auxiliary substances (B), in particular the delayed-release matrix compounds, and, with preceding or simultaneous exposure to heat, forming the resultant mixture, optionally after pelletisation, into the dosage form by application of force.


Pelletisation may be performed by a melt method or by wet pelletisation.


Mixing of components (A), (C) and optionally (D) and of the optionally present further components (a)-(f) and optionally the further auxiliary substances (B), in particular the delayed-release matrix compounds, may proceed in a mixer known to the person skilled in the art. The mixer may, for example, be a roll mixer, shaking mixer, shear mixer or compulsory mixer.


The resultant mixture is preferably directly formed into the dosage form according to the invention by application of force with preceding or simultaneous exposure to heat. The mixture may, for example, be formed into tablets by direct tabletting. In direct tabletting with preceding exposure to heat, the material to be press-moulded is heated immediately prior to tabletting at least to the softening temperature of component (C) and then pressed.


The resultant mixture of components (A), (C), optionally (D), the optionally present components (a) to (f) and optionally further auxiliary substances (B), in particular the delayed-release matrix compounds, may also first be pelletised and then formed into the dosage form according to the invention by application of force with preceding or simultaneous exposure to heat.


It is also possible to form the resultant mixture containing one or more opioid(s) with potential for abuse (A) and optionally physiologically acceptable auxiliary substances (B), such as components (a) to (f) and optionally the delayed-release matrix compounds and at least one synthetic or natural polymer (C) and optionally a wax (D), into the dosage form by application of force, optionally to singulate the formed articles and optionally in each case to grade them by size and, after or during heating to at least the softening point of component (C), to expose them to force until the formed articles exhibit a breaking hardness of at least 500 N, preferably of 1000 N, optionally to provide them with a cover, which optionally has delayed-release properties, and optionally to mix all the formed articles together again.


If components (c) and/or (d) and/or (f) are present in the dosage form according to the invention, care must be taken to ensure that they are formulated in such a manner or are present in such a low dose that, when correctly administered, the dosage form is able to bring about virtually no effect which impairs the patient or the efficacy of the opioid(s).


If the dosage form according to the invention contains component (d) and/or (f), the dosage must be selected such that, when correctly orally administered, no negative effect is caused. If, however, the intended dosage of the dosage form is exceeded inadvertently, in particular by children, or in the event of abuse, nausea or an inclination to vomit or a bad flavour are produced. The particular quantity of component (d) and/or (f) which can still be tolerated by the patient in the event of correct oral administration may be determined by the person skilled in the art by simple preliminary testing.


If, however, irrespective of the fact that the dosage form according to the invention is virtually impossible to pulverise, the dosage form containing the components (c) and/or (d) and/or (f) is provided with protection, these components should preferably be used at a dosage which is sufficiently high that, when abusively administered, they bring about an intense negative effect on the abuser. This is preferably achieved by spatial separation of at least the opioid(s) from components (c) and/or (d) and/or (f), wherein the opioid(s) is/are present in at least one subunit (X) and components (c) and/or (d) and/or (f) is/are present in at least one subunit (Y), and wherein, when the dosage form is correctly administered, components (c), (d) and (f) do not exert their effect on taking and/or in the body and the remaining components of the formulation, in particular component (C), are identical.


If the dosage form according to the invention comprises at least 2 of components (c) and (d) or (f), these may each be present in the same or different subunits (Y). Preferably, when present, all the components (c) and (d) and (f) are present in one and the same subunit (Y).


In the case of spatial separation into subunit(s) (X) and subunit(s) (Y) and irrespective of the arrangement of these subunits in the dosage form, a subunit (X) contains the active ingredient in delayed-release form, such that said active ingredient ensures controlled release with once daily administration.


For the purposes of the present invention, subunits are solid formulations, which in each case, apart from conventional auxiliary substances known to the person skilled in the art, contain the oploid(s), at least one polymer (C) and optionally at least one of the optionally present components (a) and/or (b) and/or (e) or in each case at least one polymer (C) and the antagonist(s) and/or emetic(s) and/or component (e) and/or component (f) and optionally at least one of the optionally present components (a) and/or (b) and optionally the delayed-release matrix compounds. Care must here be taken to ensure that each of the subunits is formulated in accordance with the above-stated process.


One substantial advantage of the separated formulation of the opioid(s) from components (c) or (d) or (f) in subunits (X) and (Y) of the dosage form according to the invention is that, when correctly administered, components (c) and/or (d) and/or (f) are hardly released on taking and/or in the body or are released in such small quantities that they exert no effect which impairs the patient or therapeutic success or, on passing through the patient's body, they are only liberated in locations where they cannot be sufficiently absorbed to be effective. When the dosage form is correctly administered, preferably hardly any of components (c) and/or (d) and/or (f) is released into the patient's body or they go unnoticed by the patient.


The person skilled in the art will understand that the above-stated conditions may vary as a function of the particular components (c), (d) and/or (f) used and of the formulation of the subunits or the dosage form. The optimum formulation for the particular dosage form may be determined by simple preliminary testing. What is vital is that each subunit contains the polymer (C) and has been formulated in the stated manner.


Should, contrary to expectations, the abuser succeed in comminuting such a dosage form according to the invention, which comprises components (c) and/or (e) and/or (d) and/or (f) in subunits (Y), for the purpose of abusing the opioid(s) and obtain a powder which is to be extracted with a suitable extracting agent, not only the opioid(s) but also the particular component (c) and/or (e) and/or (f) and/or (d) will be obtained in a form in which it cannot readily be separated from the opioid(s), such that when the dosage form which has been tampered with is administered, in particular by oral and/or parenteral administration, it will exert its effect immediately on taking and/or in the body combined with an additional negative effect on the abuser corresponding to component (c) and/or (d) and/or (f) or, when the attempt is made to extract the active ingredient, the coloration will act as a deterrent and so prevent abuse of the dosage form.


A dosage form according to the invention, in which the opioid(s) is/are spatially separated from components (c), (d) and/or (e), preferably by formulation in different subunits, may be formulated in many different ways, wherein the corresponding subunits may each be present in the dosage form according to the invention in any desired spatial arrangement relative to one another, provided that the above-stated conditions for the release of components (c) and/or (d), on the one hand, and for release of the opioid, namely controlled release for once daily administration, on the other, are fulfilled.


The person skilled in the art will understand that component(s) (a) and/or (b) which are optionally also present may preferably be formulated in the dosage form according to the invention both in the particular subunits (X) and (Y) and in the form of independent subunits (Y′) corresponding to subunits (X) and (Y), provided that neither the abuse-proofing nor the opioid release over 24 hours in the event of correct administration is impaired by the nature of the formulation and the polymer (C) is included in the formulation and formulation is carried out in accordance with the above-stated processes.


In a preferred embodiment of the dosage form according to the invention, subunits (X) and (Y) are present in multiparticulate form, wherein microtablets, microcapsules, micropellets, granules, spheroids, beads or pellets are preferred and the same form, i.e. shape, is selected for both subunit (X) and subunit (Y), such that it is not possible to separate subunits (X) from (Y) by mechanical selection. The multiparticulate forms are preferably of a size in the range from 0.1 to 3 mm, preferably of 0.5 to 2 mm.


The subunits (X) and (Y) in multiparticulate form may also preferably be packaged in a capsule or be press-moulded into a tablet, wherein the final formulation in each case proceeds in such a manner that the subunits (X) and (Y) are also retained in the resultant dosage form.


The multiparticulate subunits (X) and (Y) of identical shape should also not be visually distinguishable from one another so that the abuser cannot separate them from one another by simple sorting. This may, for example, be achieved by the application of identical coatings which, apart from this disguising function, may also incorporate further functions, such as, for example, controlled release of one or more opioid(s) or provision of a finish resistant to gastric juices on the particular subunits.


In a further preferred embodiment of the present invention, subunits (X) and (Y) are in each case arranged in layers relative to one another.


The layered subunits (X) and (Y) are preferably arranged for this purpose vertically or horizontally relative to one another in the dosage form according to the invention, wherein in each case one or more layered subunits (X) and one or more layered subunits (Y) may be present in the dosage form, such that, apart from the preferred layer sequences (X)-(Y) or (X)-(Y)-(X), any desired other layer sequences may be considered, optionally in combination with layers containing components (a) and/or (b).


Another preferred dosage form according to the invention is one in which subunit (Y) forms a core which is completely enclosed by the delayed-release subunit (X), wherein a separation layer (Z) may be present between said layers. Such a structure is preferably also suitable for the above-stated multiparticulate forms, wherein both subunits (X) and (Y) and an optionally present separation layer (Z), which must satisfy the hardness requirement according to the invention, are formulated in one and the same multiparticulate form.


In a further preferred embodiment of the dosage form according to the invention, the subunit (X) forms a core, which is enclosed by subunit (Y), wherein the latter comprises at least one channel which leads from the core to the surface of the dosage form.


The dosage form according to the invention may comprise, between one layer of the subunit (X) and one layer of the subunit (Y), in each case one or more, preferably one, optionally swellable separation layer (Z) which serves to separate subunit (X) spatially from (Y).


If the dosage form according to the invention comprises the layered subunits (X) and (Y) and an optionally present separation layer (Z) in an at least partially vertical or horizontal arrangement, the dosage form preferably takes the form of a tablet, a coextrudate or a laminate.


In one particularly preferred embodiment, the entirety of the free surface of subunit (Y) and optionally at least part of the free surface of subunit(s) (X) and optionally at least part of the free surface of the optionally present separation layer(s) (Z) may be coated with at least one barrier layer (Z′) which prevents release of component (c) and/or (e) and/or (d) and/or (f). The barrier layer (Z′) must also fulfil the hardness conditions according to the invention.


Another particularly preferred embodiment of the dosage form according to the invention comprises a vertical or horizontal arrangement of the layers of subunits (X) and (Y) and at least one push layer (p) arranged therebetween, and optionally a separation layer (Z), in which dosage form the entirety of the free surface of the layer structure consisting of subunits (X) and (Y), the push layer and the optionally present separation layer (Z) is provided with a semipermeable coating (E), which is permeable to a release medium, i.e. conventionally a physiological liquid, but substantially impermeable to the opioid(s) and to component (c) and/or (d) and/or (f), and wherein this coating (E) comprises at least one opening for release of the opioid(s) in the area of subunit (X).


A corresponding dosage form is known to the person skilled in the art, for example under the name oral osmotic therapeutic system (OROS), as are suitable materials and methods for the production thereof, inter alia from U.S. Pat. Nos. 4,612,008, 4,765,989 and U.S. Pat. No. 4,783,337. The corresponding descriptions are hereby introduced as a reference and are deemed to be part of the disclosure.


An osmotic dosage form containing an analgesic opioid and a dye as an aversive agent is likewise known to the person skilled in the art from the prior art (WO 03/015531). The tablet core preferably consists of two layers, an opioid-containing layer and a push layer, wherein the push layer contains the dye as the aversive agent. The corresponding description is hereby introduced as a reference and is deemed to be part of the disclosure.


In a further preferred embodiment of the claimed invention, the subunit (X) of the dosage form according to the invention is in the form of a tablet, the edge face and optionally one of the two main faces of which is covered with a barrier layer (Z′) containing component (c) and/or (d) and/or (f).


The person skilled in the art will understand that the auxiliary substances of the subunit(s) (X) or (Y) and of the optionally present separation layer(s) (Z) and/or of the barrier layer(s) (Z′) used in formulating the dosage form according to the invention will vary as a function of the arrangement thereof in the dosage form according to the invention, the mode of administration and as a function of the particular opioid, of the optionally present components (a) and/or (b) and/or (e) and of component (c) and/or (d) and/or (f), while maintaining release of the active ingredient over 24 hours. The materials which have the requisite properties are in each case known per se to the person skilled in the art.


If release of component (c) and/or (d) and/or (f) from subunit (Y) of the dosage form according to the invention is prevented with the assistance of a cover, preferably a barrier layer, the subunit may consist of conventional materials known to the person skilled in the art, providing that it contains at least one polymer (C) to fulfil the hardness condition of the dosage form according to the invention.


If a corresponding barrier layer (Z′) is not provided to prevent release of component (c) and/or (d) and/or (f), the materials of the subunits should be selected such that release of the particular component (c) and/or (d) from subunit (Y) is virtually ruled out.


The materials which are stated below to be suitable for production of the barrier layer may preferably be used for this purpose. Preferred materials are those which are selected from the group comprising alkylcelluloses, hydroxyalkylcelluloses, glucans, scleroglucans, mannans, xanthans, copolymers of poly[bis(p-carboxyphenoxy)propane:sebacic acid], preferably in a molar ratio of 20:80 (marketed under the name Polifeprosan 20®), carboxymethylcelluloses, cellulose ethers, cellulose esters, nitrocelluloses, polymers based on (meth)acrylic acid and the esters thereof, polyamides, polycarbonates, polyalkylenes, polyalkylene glycols, polyalkylene oxides, polyalkylene terephthalates, polyvinyl alcohols, polyvinyl ethers, polyvinyl esters, halogenated polyvinyls, polyglycolides, polysiloxanes and polyurethanes and the copolymers thereof.


Particularly suitable materials may be selected from the group comprising methylcellulose, ethylcellulose, hydroxypropylcellulose, hydroxypropylmethylcellulose, hydroxybutylmethylcellulose, cellulose acetate, cellulose propionate (of low, medium or high molecular weight), cellulose acetate propionate, cellulose acetate butyrate, cellulose acetate phthalate, carboxymethylcellulose, cellulose triacetate, sodium cellulose sulfate, polymethyl methacrylate, polyethyl methacrylate, polybutyl methacrylate, polyisobutyl methacrylate, polyhexyl methacrylate, polyisodecyl methacrylate, polylauryl methacrylate, polyphenyl methacrylate, polymethyl acrylate, polyisopropyl acrylate, polyisobutyl acrylate, polyoctatdecyl acrylate, polyethylene, low density polyethylene, high density polyethylene, polypropylene, polyethylene glycol, polyethylene oxide, polyethylene terephthalate, polyvinyl alcohol, polyvinyl isobutyl ether, polyvinyl acetate and polyvinyl chloride.


Particularly suitable copolymers may be selected from the group comprising copolymers of butyl methacrylate and isobutyl methacrylate, copolymers of methyl vinyl ether and maleic acid of high molecular weight, copolymers of methyl vinyl ether and maleic acid monoethyl ester, copolymers of methyl vinyl ether and maleic anhydride and copolymers of vinyl alcohol and vinyl acetate.


Further materials which are suitable for formulating the barrier layer are starch-filled polycaprolactone (WO98/20073), aliphatic polyesteramides (DE 19 753 534 A1, DE 19 800 698 A1, EP 0 820 698 A1), aliphatic and aromatic polyester urethanes (DE 19822979), polyhydroxyalkanoates, in particular polyhydroxybutyrates, polyhydroxyvalerates, casein (DE 4 309 528), polylactides and copolylactides (EP 0 980 894 A1). The corresponding descriptions are hereby introduced as a reference and are deemed to be part of the disclosure.


The above-stated materials may optionally be blended with further conventional auxiliary substances known to the person skilled in the art, preferably selected from the group consisting of glyceryl monostearate, semi-synthetic triglyceride derivatives, semi-synthetic glycerides, hydrogenated castor oil, glyceryl palmitostearate, glyceryl behenate, polyvinylpyrrolidone, gelatine, magnesium stearate, stearic acid, sodium stearate, talcum, sodium benzoate, boric acid and colloidal silica, fatty acids, substituted triglycerides, glycerides, polyoxyalkylene glycols and the derivatives thereof.


If the dosage form according to the invention comprises a separation layer (Z′), said layer, like the uncovered subunit (Y), may preferably consist of the above-stated materials described for the barrier layer. The person skilled in the art will understand that release of the opioid(s) and/or opiate(s) or of component (c) and/or (d) from the particular subunit may be controlled by the thickness of the separation layer.


Method for Determining Breaking Strength


In order to verify whether a polymer or a wax may be used as component (C) or (D) respectively, the polymer or wax is press-moulded to form a tablet with a diameter of 10 mm and a height of 5 mm using a force of 150 N at a temperature which at least corresponds to the softening point of the polymer or wax and is determined with the assistance of a DSC diagram of the polymer or wax. Using tablets produced in this manner, breaking strength is determined with the apparatus described below in accordance with the method for determining the breaking strength of tablets published in the European Pharmacopoeia 1997, page 143, 144, method no. 2.9.8. The apparatus used for the measurement is a “Zwick Z 2.5” materials tester, Fmax=2.5 kN, draw max. 1150 mm with the setup comprising a column and a spindle, clearance behind of 100 mm, a test speed of 0.1800 mm/min and testControl software. Measurement was performed using a pressure piston with screw-in inserts and a cylinder (diam. 10 mm), a force transducer, (Fmax. 1 kN, diameter=8 mm, class 0.5 from 10 N, class 1 from 2 N to ISO 7500-1, with manufacturer's test certificate M to DIN 55350-18, Zwick gross force Fmax=1.45 kN) (all apparatus from Zwick GmbH & Co. KG, Ulm, Germany).


The tablets deemed to be resistant to breaking under a specific load include not only those which have not broken but also those which may have suffered plastic deformation under the action of the force.


The breaking strength of the dosage forms according to the invention is determined using the same measurement method.


The invention is explained below with reference to Examples. These explanations are given merely by way of example and do not restrict the general concept of the invention.







EXAMPLE 1

a) Production of an Abuse-Proofed Tablet Containing Oxycodone


The quantities of oxycodone hydrochloride, polyethylene oxide powder and hydroxypropylmethylcellulose (Metholose 90 SH 100 000) as the delayed-release matrix material listed in Table 1 were mixed in a free-fall mixer. The tabletting tool, which consists of die, top punch and bottom punch with a diameter of 10 mm, was heated to 90° C. in a heating cabinet. 600 mg portions of the powder mixture were press-moulded by means of the heated tool, the pressure being maintained for at least 15 seconds.











TABLE 1





Components
Per tablet
Complete batch



















Oxycodone HCl
80.0
mg
40.0
g


Polyethylene oxide, NF, MW 7 000 000
470.0
mg
235.0
g


(Polyox WSR 303, Dow Chemicals)






Hydroxypropylmethylcellulose 100 000
50.0
mg
25.0
g


mPas (Metholose 90 SH 100 000)






Total weight
600.0
mg
300.0
g









The breaking strength of the tablets is determined using the above-described method. No breakage occurred when a force of 500 N was applied. The tablets could not be comminuted using a hammer, nor with the assistance of a pestle and mortar.


In vitro Release from the Tablets Produced According to a)


In vitro release of oxycodone hydrochloride from the tablets produced according to a) was determined in a paddle stirrer apparatus with sinker according to the method described in the European Pharmacopoeia. The temperature of the release medium was 37° C. and the rotational speed of the stirrer 75 min−1. The release medium used was intestinal juice, pH 6.8. The quantity of oxycodone hydrochloride released in each case into the dissolution medium at any one time was determined by spectrophotometry. The percentage released quantity, relative to the total quantity of oxycodone hydrochloride, at each point in time is shown in Table 2.











TABLE 2






Time, minutes
Released quantity, wt %


















30
11



240
40



480
61



720
76



1080
92



1440
97








Claims
  • 1. An abuse-proofed oral dosage form with controlled opioid release for once daily administration, said abuse-proofed oral dosage form being not a product of extrusion, said abuse-proofed oral dosage form comprising at least one opioid with potential for abuse (A) selected from the group consisting of hydrocodone, the stereoisomers thereof, the enantiomers thereof, the diastereomers thereof in any desired mixtures, and the physiologically acceptable compounds thereof, said at least one opioid being present in an amount effective for combatting pain for a duration of one day, said at least one opioid being present in a delayed-release matrix comprising at least one polyethylene oxide having a molecular weight of 0.5 million to 15 million (C), at least one cellulose ether, and optionally delayed release auxiliary substances, optionally physiologically acceptable auxiliary substances (B), optionally a wax (D) and optionally at least one delayed-release coating, said abuse-proofed oral dosage form exhibiting a breaking strength of at least 500 N, and said abuse-proofed oral dosage form not comprising an antagonist for said opioid with potential for abuse.
  • 2. The dosage form of claim 1, wherein said physiologically acceptable compounds thereof are salts, solvates, esters or ethers.
  • 3. A dosage form according to claim 1, in the form of a tablet.
  • 4. A dosage form according to claim 1, wherein said wax (D) is present and is at least one natural, semi-synthetic or synthetic wax with a softening point of at least 60° C.
  • 5. A dosage form according to claim 4, wherein said wax (D) is carnauba wax or beeswax.
  • 6. A dosage form according to claim 1, wherein component (C) and/or component (D) also serves as an additional delayed-release auxiliary substance.
  • 7. A dosage form according to claim 1, comprising said delayed-release coating.
  • 8. A dosage form according to claim 1, comprising at least one of the following components (a)-(e) as an auxiliary substance (B): (a) at least one substance which irritates the nasal passages and/or pharynx, (b) at least one viscosity-increasing agent, which, with the assistance of a necessary minimum quantity of an aqueous liquid, forms a gel which optionally remains visually distinguishable when introduced into a further quantity of an aqueous liquid, (c) at least one emetic, (d) at least one dye as an aversive agent, (e) at least one bitter substance.
  • 9. A dosage form according to claim 8, wherein said viscosity-increasing agent is present and comprises at least one polymer selected from the group consisting of carboxymethylcellulose sodium, polyacrylic acid, locust bean flour, pectin, waxy maize starch, alginate, guar flour, iota-carrageenan, karaya gum, gellan gum, galactomannan, tara stone flour, propylene glycol alginate, hyaluronate, tragacanth, tara gum, fermented polysaccharide welan gum and xanthan.
  • 10. A dosage form according to claim 1, wherein component (C), in addition to increasing the breaking strength of the dosage form, also functions as a viscosity-increasing agent.
  • 11. A dosage form according to claim 1, exhibiting a breaking strength of at least 1000 N.
  • 12. A process for the production of the dosage form of claim 1, which comprises (1) mixing components (A), (C), optionally an auxiliary substance (B) selected from the group consisting of (a) at least one substance which irritates the nasal passages and/or pharynx, (b) at least one viscosity-increasing agent, which, with the assistance of a necessary minimum quantity of an aqueous liquid, forms a gel which optionally remains visually distinguishable when introduced into a further quantity of an aqueous liquid, (c) at least one emetic, (d) at least one dye as an aversive agent, (e) at least one bitter substance, optionally (D) and optionally delayed-release matrix compounds to form a mixture and (2) forming the resultant mixture, optionally after pelletisation, into the dosage form by application of force, with preceding or simultaneous heating to at least the softening point of component (C), of sufficient magnitude and for a sufficient time until the dosage form exhibits a breaking strength of at least 500 N, and optionally applying a delayed-release coating.
  • 13. The process of claim 12, where said pelletisation is performed and is performed by wet method.
  • 14. The process of claim 12, wherein (1) a mixture containing components (A), (C), optionally (B) and optionally (D) and optionally delayed-release matrix compounds is formed into formed articles by application of force, (2) the formed articles obtained are optionally singulated and optionally in each case graded by size and (3) after or during heating to at least the softening point of component (C), the formed articles are exposed to a force of sufficient magnitude and for a sufficient time until the formed articles exhibit a breaking strength of at least 500 N, (4) the formed articles are optionally provided with an optionally delayed-release coating and the formed articles are optionally all mixed together again.
  • 15. The process of claim 14, wherein said breaking strength is at least 1000 N.
  • 16. A dosage form obtained by the process of claim 12.
  • 17. A method of treating pain in a patient in need of such treating, said method comprising administering to said patient a dosage form according to claim 1.
  • 18. A method of treating pain in a patient in need of such treating, said method comprising administering to said patient a dosage form according to claim 16.
  • 19. A dosage form according to claim 1, wherein the at least one cellulose ether is selected from the group consisting of ethylcellulose, hydroxypropylmethylcellulose, hydroxypropylcellulose, hydroxyethylcellulose, and methylcellulose.
  • 20. A dosage form according to claim 1, wherein the at least one cellulose ether is hydroxypropylcellulose.
  • 21. An abuse-proofed oral dosage form in form of a tablet with controlled opioid release for once daily administration, said abuse-proofed oral dosage form being not a product of extrusion, said abuse-proofed oral dosage form comprising: at least one opioid with potential for abuse (A) selected from the group consisting of hydrocodone, the stereoisomers thereof, the enantiomers thereof, the diastereomers thereof in any desired mixtures, and the physiologically acceptable compounds thereof,said at least one opioid being present in an amount effective for combatting pain for a duration of one day,said at least one opioid being present in a delayed-release matrix comprising at least one polyethylene oxide having a molecular weight of 4 million to 15 million (C), at least one cellulose ether being hydroxypropylcellulose, and optionally delayed release auxiliary substances,optionally physiologically acceptable auxiliary substances (B),optionally a wax (D), andoptionally at least one delayed-release coating,said abuse-proofed oral dosage form exhibiting a breaking strength of at least 500 N andsaid abuse-proofed oral dosage form not comprising an antagonist for said opioid with potential for abuse.
  • 22. A dosage form according to claim 1, which is not osmotically-based.
  • 23. A dosage form according to claim 21, which is not osmotically-based.
Priority Claims (1)
Number Date Country Kind
10 2004 032 049.7 Jul 2004 DE national
Parent Case Info

This application is a continuation of U.S. patent application Ser. No. 16/542,808, filed Aug. 16, 2019, now pending, which is a continuation of U.S. patent application Ser. No. 15/878,524, filed Jan. 24, 2018, now abandoned, which is a continuation of U.S. patent application Ser. No. 15/255,534, filed Sep. 2, 2016, now abandoned, which is a continuation of U.S. patent application Ser. No. 15/059,730, filed Mar. 3, 2016, now abandoned, which is a continuation of U.S. patent application Ser. No. 14/795,900, filed Jul. 10, 2015 now abandoned, which is a continuation of U.S. patent application Ser. No. 13/897,746, filed May 20, 2013, now abandoned, which is a continuation of U.S. patent application Ser. No. 10/890,763, filed on Jul. 14, 2004, now abandoned, which claims priority of German Patent Application No, 10 2004 032 049.7, filed on Jul. 1, 2004, the entire contents of which patent applications are incorporated herein by reference.

US Referenced Citations (507)
Number Name Date Kind
2524855 Schnider et al. Oct 1950 A
2806033 Lewenstein et al. Sep 1957 A
2987445 Levesque Jun 1961 A
3332950 Blumberg et al. Jul 1967 A
3370035 Ogura et al. Feb 1968 A
3652589 Flick et al. Mar 1972 A
3658259 Ledergerber et al. Apr 1972 A
3806603 Gaunt et al. Apr 1974 A
3865108 Hartop Feb 1975 A
3941865 Miller et al. Mar 1976 A
3966747 Monkovic et al. Jun 1976 A
3980766 Shaw et al. Sep 1976 A
4002173 Manning et al. Jan 1977 A
4014965 Stube et al. Mar 1977 A
4070494 Hoffmeister et al. Jan 1978 A
4070497 Wismer et al. Jan 1978 A
4175119 Porter Nov 1979 A
4200704 Stanley et al. Apr 1980 A
4207893 Michaels Jun 1980 A
4262017 Kuipers et al. Apr 1981 A
4343789 Kawata et al. Aug 1982 A
4353887 Hess et al. Oct 1982 A
4404183 Kawata et al. Sep 1983 A
4427681 Munshi et al. Jan 1984 A
4427778 Zabriskie Jan 1984 A
4457933 Gordon et al. Jul 1984 A
4462941 Lee et al. Jul 1984 A
4473640 Combie et al. Sep 1984 A
4483847 Augart Nov 1984 A
4485211 Okamoto Nov 1984 A
4529583 Porter Jul 1985 A
4599342 La Hann Jul 1986 A
4603143 Schmidt Jul 1986 A
4612008 Wong et al. Sep 1986 A
4629621 Snipes Dec 1986 A
4667013 Reichle May 1987 A
4690822 Uemura Sep 1987 A
4711894 Wenzel et al. Dec 1987 A
4713243 Schiraldi et al. Dec 1987 A
4744976 Snipes et al. May 1988 A
4764378 Keitn et al. Aug 1988 A
4765989 Wong et al. Aug 1988 A
4774074 Snipes Sep 1988 A
4774092 Hamilton Sep 1988 A
4783337 Wong et al. Nov 1988 A
4806337 Snipes et al. Feb 1989 A
RE33093 Schiraldi et al. Oct 1989 E
4880585 Klimesch et al. Nov 1989 A
4892778 Theeuwes et al. Jan 1990 A
4892889 Kirk Jan 1990 A
4940556 MacFarlane et al. Jul 1990 A
4954346 Sparta et al. Sep 1990 A
4957668 Plackard et al. Sep 1990 A
4957681 Klimesch et al. Sep 1990 A
4960814 Wu et al. Oct 1990 A
4992278 Khanna Feb 1991 A
4992279 Palmer et al. Feb 1991 A
5004601 Snipes Apr 1991 A
5051261 McGinity Sep 1991 A
5073379 Klimesch et al. Dec 1991 A
5082668 Wong et al. Jan 1992 A
5126151 Bodor et al. Jun 1992 A
5139790 Snipes Aug 1992 A
5145944 Steinmann Sep 1992 A
5149538 Granger et al. Sep 1992 A
5169645 Shukla et al. Dec 1992 A
5190760 Baker Mar 1993 A
5198226 MacFarlane et al. Mar 1993 A
5200194 Edgren et al. Apr 1993 A
5200197 Wright et al. Apr 1993 A
5211892 Gueret May 1993 A
5225417 Dappen Jul 1993 A
5227157 McGinity et al. Jul 1993 A
5229164 Pins et al. Jul 1993 A
5273758 Royce Dec 1993 A
5326852 Fujikake Jul 1994 A
5350741 Takada Sep 1994 A
5378462 Boedecker et al. Jan 1995 A
5387420 Mitchell Feb 1995 A
5427798 Ludgwig et al. Jun 1995 A
RE34990 Khanna et al. Jul 1995 E
5458887 Chen et al. Oct 1995 A
5460826 Merrill et al. Oct 1995 A
5472943 Crain et al. Dec 1995 A
5508042 Oshlack et al. Apr 1996 A
5552159 Mueller et al. Sep 1996 A
5556640 Ito et al. Sep 1996 A
5562920 Demmer et al. Oct 1996 A
5591452 Miller et al. Jan 1997 A
5593694 Hayashida et al. Jan 1997 A
5601842 Bartholomaeus Feb 1997 A
5620697 Tormala et al. Apr 1997 A
5679685 Cincotta et al. Oct 1997 A
5681517 Metzger Oct 1997 A
5707636 Rodriguez et al. Jan 1998 A
5741519 Rosenberg et al. Apr 1998 A
5792474 Rauchfuss Aug 1998 A
5801201 Gradums et al. Sep 1998 A
5811126 Krishanamurthy Sep 1998 A
5849240 Miller et al. Dec 1998 A
5866164 Kuczynski Feb 1999 A
5900425 Kanikanti et al. May 1999 A
5908850 Zeitlin et al. Jun 1999 A
5914132 Kelm et al. Jun 1999 A
5916584 O'Donoghue et al. Jun 1999 A
5928739 Pophusen et al. Jul 1999 A
5939099 Grabowski et al. Aug 1999 A
5945125 Kim Aug 1999 A
5948787 Merill et al. Sep 1999 A
5962488 Lang Oct 1999 A
5965161 Oshlack et al. Oct 1999 A
5968925 Knidlberger Oct 1999 A
6001391 Zeidler et al. Dec 1999 A
6009390 Gupta et al. Dec 1999 A
6009690 Rosenberg et al. Jan 2000 A
6051253 Zettler et al. Apr 2000 A
6071970 Mueller et al. Jun 2000 A
6077538 Merrill et al. Jun 2000 A
6090411 Pillay et al. Jul 2000 A
6093420 Baichwal Jul 2000 A
6096339 Ayer et al. Aug 2000 A
6117453 Seth et al. Sep 2000 A
6120802 Breitenbach et al. Sep 2000 A
6133241 Bok et al. Oct 2000 A
6183781 Burke Feb 2001 B1
6235825 Yoshida et al. Feb 2001 B1
6228863 Palermo et al. May 2001 B1
6238697 Kumar et al. May 2001 B1
6245357 Edgren et al. Jun 2001 B1
6248737 Buschmann et al. Jun 2001 B1
6251430 Zhang et al. Jun 2001 B1
6254887 Miller et al. Jul 2001 B1
6261599 Oshlack Jul 2001 B1
6290990 Grabowski et al. Sep 2001 B1
6306438 Oshlack et al. Oct 2001 B1
6309668 Bastin et al. Oct 2001 B1
6318650 Breitenbach et al. Nov 2001 B1
6322811 Verma et al. Nov 2001 B1
6322819 Burnside et al. Nov 2001 B1
6326027 Miller et al. Dec 2001 B1
6335035 Drizen et al. Jan 2002 B1
6337319 Wang Jan 2002 B1
6340475 Shell et al. Jan 2002 B2
6344215 Bettman et al. Feb 2002 B1
6344535 Timmermann et al. Feb 2002 B1
6348469 Seth Feb 2002 B1
6355656 Zeitlin et al. Mar 2002 B1
6375957 Kaiko et al. Apr 2002 B1
6375963 Repka et al. Apr 2002 B1
6384020 Flanner et al. May 2002 B1
6387995 Sojka May 2002 B1
6399100 Clancy et al. Jun 2002 B1
6419954 Chu et al. Jul 2002 B1
6436441 Sako et al. Aug 2002 B1
6455052 Marcussen et al. Sep 2002 B1
6461644 Jackson et al. Oct 2002 B1
6476203 Zhao Nov 2002 B1
6488939 Zeidler et al. Dec 2002 B1
6488962 Berner et al. Dec 2002 B1
6488963 McGinity Dec 2002 B1
6534089 Ayer et al. Mar 2003 B1
6547977 Yan et al. Apr 2003 B1
6547997 Breithenbach et al. Apr 2003 B1
6562375 Sako et al. May 2003 B1
6569506 Jerdee et al. May 2003 B1
6572889 Guo Jun 2003 B1
6592901 Durig et al. Jul 2003 B2
6623754 Guo et al. Sep 2003 B2
6635280 Shell et al. Oct 2003 B2
6696088 Oshlack et al. Feb 2004 B2
6699503 Sako et al. Mar 2004 B1
6723340 Gusler et al. Apr 2004 B2
6723343 Kugelmann Apr 2004 B2
6733783 Oshlack et al. May 2004 B2
6753009 Luber et al. Jun 2004 B2
6821588 Hammer et al. Nov 2004 B1
6946146 Mulye Sep 2005 B2
6979722 Hamamoto et al. Dec 2005 B2
7074430 Miller et al. Jul 2006 B2
7129248 Chapman et al. Oct 2006 B2
7141250 Oshlack et al. Nov 2006 B2
7157103 Sackler Jan 2007 B2
7176251 Bastioli et al. Feb 2007 B1
RE39593 Buschmann et al. Apr 2007 E
7201920 Kumar et al. Apr 2007 B2
7214385 Gruber May 2007 B2
7230005 Shafer et al. Jun 2007 B2
7300668 Pryce et al. Nov 2007 B2
7332182 Sackler Feb 2008 B2
7388068 Falk et al. Jun 2008 B2
7399488 Hirsh et al. Jul 2008 B2
7510726 Kumar et al. Mar 2009 B2
7674799 Chapman et al. Mar 2010 B2
7674800 Chapman et al. Mar 2010 B2
7683072 Chapman et al. Mar 2010 B2
7776314 Bartholomaus et al. Aug 2010 B2
7842307 Oshlack et al. Nov 2010 B2
7851482 Dung et al. Dec 2010 B2
7932258 Petereit et al. Apr 2011 B2
7939543 Kupper May 2011 B2
7968119 Farrell Jun 2011 B2
7994364 Fischer et al. Aug 2011 B2
8075872 Arkenau-Maric Dec 2011 B2
8101630 Kumar et al. Jan 2012 B2
8114383 Bartholomaeus et al. Feb 2012 B2
8114384 Arkenau et al. Feb 2012 B2
8114838 Marchionni Feb 2012 B2
8192722 Arkenau-Maric et al. Jun 2012 B2
8202542 Mehta et al. Jun 2012 B1
8309060 Bartholomeus et al. Nov 2012 B2
8309122 Kao et al. Nov 2012 B2
8323889 Arkenau-Maric et al. Dec 2012 B2
8329216 Kao et al. Dec 2012 B2
8337888 Wright et al. Dec 2012 B2
8383152 Jans et al. Feb 2013 B2
8420056 Arkenau-Maric et al. Apr 2013 B2
8445023 Guimberteau et al. May 2013 B2
8722086 Arkenau-Marie et al. May 2014 B2
8858963 Devarakonda et al. Oct 2014 B1
8895063 Guimberteau et al. Nov 2014 B2
8901113 Leech et al. Dec 2014 B2
9044758 Niwa et al. Jun 2015 B2
9192578 McGinity et al. Nov 2015 B2
9463165 Shimatani et al. Oct 2016 B2
9629807 Arkenau-Maric et al. Apr 2017 B2
9675610 Bartholomaeus et al. Jun 2017 B2
9737490 Barnscheid et al. Aug 2017 B2
9750701 Jans et al. Sep 2017 B2
9855263 Wening et al. Jan 2018 B2
9884022 Deshmukh et al. Feb 2018 B2
9925146 Barnscheid et al. Mar 2018 B2
10058548 Arkenau-Maric et al. Aug 2018 B2
10130591 Bartholomäus et al. Nov 2018 B2
10154966 Barnscheidt et al. Dec 2018 B2
10369109 Bartholomaeus et al. Aug 2019 B2
20010038852 Kolter et al. Nov 2001 A1
20020012701 Kolter et al. Jan 2002 A1
20020015730 Hoffmann et al. Feb 2002 A1
20020187192 Joshi et al. Feb 2002 A1
20020051820 Shell et al. May 2002 A1
20020114838 Ayer et al. Aug 2002 A1
20020132359 Waterman Sep 2002 A1
20020132395 Iyer et al. Sep 2002 A1
20020176888 Bartholomaeus et al. Nov 2002 A1
20020192277 Oshlack et al. Dec 2002 A1
20030008409 Spearman et al. Jan 2003 A1
20030015814 Krull et al. Jan 2003 A1
20030017532 Biswas et al. Jan 2003 A1
20030021546 Sato Jan 2003 A1
20030044458 Wright et al. Mar 2003 A1
20030044464 Ziegler et al. Mar 2003 A1
20030059397 Hughes Mar 2003 A1
20030064099 Oshlack et al. Apr 2003 A1
20030068276 Hughes et al. Apr 2003 A1
20030068370 Sackler et al. Apr 2003 A1
20030068371 Oshlack et al. Apr 2003 A1
20030068375 Wright et al. Apr 2003 A1
20030068392 Sackler Apr 2003 A1
20030069263 Breder et al. Apr 2003 A1
20030077297 Chen et al. Apr 2003 A1
20030077327 Durig et al. Apr 2003 A1
20030091630 Louie-Helm et al. May 2003 A1
20030092724 Huaihung et al. May 2003 A1
20030104052 Berner et al. Jun 2003 A1
20030104053 Gusler et al. Jun 2003 A1
20030118641 Maloney et al. Jun 2003 A1
20030124185 Oshlack et al. Jul 2003 A1
20030125347 Anderson et al. Jul 2003 A1
20030129230 Baichwal et al. Jul 2003 A1
20030133985 Louie-Helm et al. Jul 2003 A1
20030143269 Oshlack et al. Jul 2003 A1
20030152622 Louie-Helm et al. Aug 2003 A1
20030158242 Kugelmann Aug 2003 A1
20030158265 Radhakrishnan et al. Aug 2003 A1
20030175326 Thombre Sep 2003 A1
20030198677 Pryce Lewis et al. Oct 2003 A1
20030215508 Davis et al. Nov 2003 A1
20030224051 Fink et al. Dec 2003 A1
20030232895 Omidian et al. Dec 2003 A1
20040010000 Ayer et al. Jan 2004 A1
20040011806 Luciano et al. Jan 2004 A1
20040049079 Murray et al. Mar 2004 A1
20040052731 Hirsh et al. Mar 2004 A1
20040052844 Hsiao et al. Mar 2004 A1
20040081694 Oshlack Apr 2004 A1
20040091528 Rogers et al. May 2004 A1
20040126428 Hughes et al. Jul 2004 A1
20040131671 Zhang et al. Jul 2004 A1
20040156899 Louie-Helm et al. Aug 2004 A1
20040170567 Sackler Sep 2004 A1
20040170680 Oshlack et al. Sep 2004 A1
20040185105 Berner et al. Sep 2004 A1
20040213845 Sugihara Oct 2004 A1
20040213848 Li et al. Oct 2004 A1
20040253310 Fischer et al. Dec 2004 A1
20050015730 Gunturi et al. Jan 2005 A1
20050031546 Bartholomaeus et al. Feb 2005 A1
20050058706 Bartholomaeus et al. Mar 2005 A1
20050063214 Takashima Mar 2005 A1
20050079138 Chickering, III et al. Apr 2005 A1
20050089475 Gruber Apr 2005 A1
20050089569 Bar-Shalom Apr 2005 A1
20050095291 Oshlack et al. May 2005 A1
20050106249 Hwang et al. May 2005 A1
20050112067 Kumar et al. May 2005 A1
20050127555 Gusik et al. Jun 2005 A1
20050152843 Bartholomaeus et al. Jul 2005 A1
20050181046 Oshlack et al. Aug 2005 A1
20050186139 Bartholomaeus et al. Aug 2005 A1
20050191244 Bartholomaeus et al. Sep 2005 A1
20050191352 Hayes Sep 2005 A1
20050192333 Hinze et al. Sep 2005 A1
20050214223 Bartholomaeus et al. Sep 2005 A1
20050220877 Patel Oct 2005 A1
20050222188 Chapman et al. Oct 2005 A1
20050236741 Arkenau et al. Oct 2005 A1
20050245556 Brogman et al. Nov 2005 A1
20050266084 Li et al. Dec 2005 A1
20050271594 Groenewoud Dec 2005 A1
20060002859 Arkenau et al. Jan 2006 A1
20060002860 Bartholomaus et al. Jan 2006 A1
20060004034 Hinze et al. Jan 2006 A1
20060009478 Friedman et al. Jan 2006 A1
20060017916 Clarke et al. Jan 2006 A1
20060039864 Bartholomaus et al. Feb 2006 A1
20060073102 Huaihung et al. Apr 2006 A1
20060099250 Tian et al. May 2006 A1
20060104909 Vaghefi May 2006 A1
20060182801 Breder et al. Aug 2006 A1
20060188447 Arkenau-Maric et al. Aug 2006 A1
20060193782 Bartholomeus et al. Aug 2006 A1
20060193914 Ashworth et al. Aug 2006 A1
20060194759 Eidelson Aug 2006 A1
20060194826 Oshlack et al. Aug 2006 A1
20060204575 Feng et al. Sep 2006 A1
20060240105 Devane et al. Oct 2006 A1
20060240110 Kiick et al. Oct 2006 A1
20060269603 Brown Miller et al. Nov 2006 A1
20070003616 Arkenau-Maric et al. Jan 2007 A1
20070003617 Fischer et al. Jan 2007 A1
20070020188 Sackler Jan 2007 A1
20070020335 Chen et al. Jan 2007 A1
20070042044 Fischer et al. Feb 2007 A1
20070048228 Arkenau-Maric et al. Mar 2007 A1
20070048373 Chastain et al. Mar 2007 A1
20070065365 Kugelmann et al. Mar 2007 A1
20070092573 Joshi et al. Apr 2007 A1
20070183979 Arkenau-Maric et al. Aug 2007 A1
20070183980 Arkenau-Maric et al. Aug 2007 A1
20070184117 Gregory et al. Aug 2007 A1
20070190142 Breitenbach et al. Aug 2007 A1
20070196396 Pilgaonkar et al. Aug 2007 A1
20070196481 Amidon et al. Aug 2007 A1
20070224129 Guimberteau et al. Sep 2007 A1
20070231268 Emigh et al. Oct 2007 A1
20070259045 Mannion et al. Nov 2007 A1
20070264326 Guimberteau et al. Nov 2007 A1
20070264327 Kumar et al. Nov 2007 A1
20070269505 Soscia et al. Nov 2007 A1
20070292508 Szamosi et al. Dec 2007 A1
20080014228 Darmuzey et al. Jan 2008 A1
20080020032 Crowley et al. Jan 2008 A1
20080063725 Guimberteau et al. Mar 2008 A1
20080069871 Vautgn et al. Mar 2008 A1
20080075669 Soscia et al. Mar 2008 A1
20080075768 Vaughn et al. Mar 2008 A1
20080081290 Wada et al. Mar 2008 A1
20080085304 Baichwal et al. Apr 2008 A1
20080131503 Holm et al. Jun 2008 A1
20080145429 Leyenecker et al. Jun 2008 A1
20080152595 Emigh et al. Jun 2008 A1
20080181932 Bortz et al. Jul 2008 A1
20080207757 Mickle Aug 2008 A1
20080220079 Chen Sep 2008 A1
20080233178 Reidenberg et al. Sep 2008 A1
20080234352 Fischer et al. Sep 2008 A1
20080247959 Bartholomaus et al. Oct 2008 A1
20080248113 Bartholomaus et al. Oct 2008 A1
20080260836 Boyd Oct 2008 A1
20080280975 Badul Nov 2008 A1
20080311049 Arkenau-Maric et al. Dec 2008 A1
20080311187 Ashworth et al. Dec 2008 A1
20080311197 Arkenau-Maric et al. Dec 2008 A1
20080311205 Habib et al. Dec 2008 A1
20080312264 Arkenau-Maric et al. Dec 2008 A1
20080317695 Everaert et al. Dec 2008 A1
20080317854 Arkenau et al. Dec 2008 A1
20090004267 Arkenau-Maric et al. Jan 2009 A1
20090005408 Arkenau-Maric et al. Jan 2009 A1
20090011016 Cailly-Dufestel et al. Jan 2009 A1
20090017121 Berner et al. Jan 2009 A1
20090022798 Rosenberg et al. Jan 2009 A1
20090081287 Wright et al. Mar 2009 A1
20090081290 McKenna et al. Mar 2009 A1
20090087486 Krumme Apr 2009 A1
20090117191 Brown Miller et al. May 2009 A1
20090143478 Richardson et al. Jun 2009 A1
20090155357 Muhuri Jun 2009 A1
20090202634 Jans et al. Aug 2009 A1
20090215808 Yum et al. Aug 2009 A1
20090232887 Odidi et al. Sep 2009 A1
20090253730 Kumar et al. Oct 2009 A1
20090258066 Venkatesh et al. Oct 2009 A1
20090317355 Roth et al. Dec 2009 A1
20090318395 Schramm et al. Dec 2009 A1
20100015223 Cailly-Deufestel et al. Jan 2010 A1
20100035886 Cincotta et al. Feb 2010 A1
20100047345 Crowley et al. Feb 2010 A1
20100092553 Guimberteau et al. Apr 2010 A1
20100098758 Bartholomaus et al. Apr 2010 A1
20100099696 Soscia et al. Apr 2010 A1
20100104638 Dai et al. Apr 2010 A1
20100151028 Ashworth et al. Jun 2010 A1
20100168148 Wright et al. Jul 2010 A1
20100172989 Roth et al. Jul 2010 A1
20100203129 Anderson et al. Aug 2010 A1
20100221322 Bartholomaus et al. Sep 2010 A1
20100239667 Hemmingsen et al. Sep 2010 A1
20100249045 Babul Sep 2010 A1
20100260833 Bartholomaus et al. Oct 2010 A1
20100260844 Scicinski et al. Oct 2010 A1
20100280047 Kolter et al. Nov 2010 A1
20100291205 Downie et al. Nov 2010 A1
20100297229 Sesha Nov 2010 A1
20100316712 Nangia et al. Dec 2010 A1
20110020451 Bartholomaus et al. Jan 2011 A1
20110020454 Lamarca Casado Jan 2011 A1
20110038930 Barnscheid et al. Feb 2011 A1
20110077238 Leech et al. Mar 2011 A1
20110082214 Faure et al. Apr 2011 A1
20110092515 Qiu et al. Apr 2011 A1
20110097404 Oshlack et al. Apr 2011 A1
20110129535 Mantelle Jun 2011 A1
20110135731 Kao et al. Jun 2011 A1
20110159100 Anderson et al. Jun 2011 A1
20110187017 Haupts Aug 2011 A1
20110223244 Liversidge et al. Sep 2011 A1
20110245783 Stinchcomb Oct 2011 A1
20110262496 Desai Oct 2011 A1
20120034171 Arkenau-Maric et al. Feb 2012 A1
20120059065 Barnscheid et al. Mar 2012 A1
20120065220 Barnscheid et al. Mar 2012 A1
20120077879 Vasanthavada et al. Mar 2012 A1
20120107250 Bartholomaus et al. May 2012 A1
20120108622 Wright et al. May 2012 A1
20120135071 Bartholomaus et al. May 2012 A1
20120136021 Barnscheid et al. May 2012 A1
20120141583 Mannion et al. Jun 2012 A1
20120202838 Ghosh et al. Aug 2012 A1
20120225901 Leyendecker et al. Sep 2012 A1
20120231083 Carley et al. Sep 2012 A1
20120251637 Bartholomaus et al. Oct 2012 A1
20120277319 Steigerwald et al. Nov 2012 A1
20120321716 Vachon et al. Dec 2012 A1
20130017262 Mullen et al. Jan 2013 A1
20130022654 Deshmukh et al. Jan 2013 A1
20130028970 Schwier et al. Jan 2013 A1
20130028972 Schwier et al. Jan 2013 A1
20130059010 Henry et al. Mar 2013 A1
20130090349 Geiβler et al. Apr 2013 A1
20130129825 Billoet et al. May 2013 A1
20130129826 Geiβler et al. May 2013 A1
20130171075 Arkenau-Maric et al. Jul 2013 A1
20130209557 Barnscheid Aug 2013 A1
20130225625 Barnscheid et al. Aug 2013 A1
20130251643 Bartholomäus et al. Sep 2013 A1
20130280338 Wenig et al. Oct 2013 A1
20130289062 Kumar et al. Oct 2013 A1
20130303623 Barnscheid Nov 2013 A1
20130330409 Mohammad Dec 2013 A1
20140010874 Sackler Jan 2014 A1
20140034885 Leech Feb 2014 A1
20140079780 Arkenau Maric et al. Mar 2014 A1
20140080858 Bartholomäus et al. Mar 2014 A1
20140080915 Bartholomäus et al. Mar 2014 A1
20140094481 Fleischer et al. Apr 2014 A1
20140112984 Maric et al. Apr 2014 A1
20140112989 Bartholomäus et al. Apr 2014 A1
20140170079 Arkenau Maric et al. Jun 2014 A1
20140186440 Han et al. Jul 2014 A1
20140271848 Guido et al. Sep 2014 A1
20140275143 Devarakonda et al. Sep 2014 A1
20140356426 Barnscheid et al. Dec 2014 A1
20140356428 Barnscheid et al. Dec 2014 A1
20140378498 Devarakonda et al. Dec 2014 A1
20150017250 Wenig et al. Jan 2015 A1
20150030677 Adjei et al. Jan 2015 A1
20150064250 Ghebre-Sellassie et al. Mar 2015 A1
20150079150 Fischer et al. Mar 2015 A1
20150118300 Haswani et al. Apr 2015 A1
20150118302 Haswani et al. Apr 2015 A1
20150118303 Haswani et al. Apr 2015 A1
20150190348 Haksar et al. Jul 2015 A1
20150313850 Krishnamurti et al. Nov 2015 A1
20150374630 Arkenau Maric et al. Dec 2015 A1
20160089439 Rajagopalan Mar 2016 A1
20160175256 Bartholomaeus et al. Jun 2016 A1
20160184297 Arkenau-Maric et al. Jun 2016 A1
20160256456 Caruso et al. Sep 2016 A1
20160263037 Arkenau-Maric et al. Sep 2016 A1
20160346274 Vaka et al. Dec 2016 A1
20160361308 Bartholomaeus et al. Dec 2016 A1
20160367549 Bartholomaeus et al. Dec 2016 A1
20170027886 Bartholomaeus et al. Feb 2017 A1
20170071862 Wening et al. Mar 2017 A1
20170112766 Wenig et al. Apr 2017 A1
20200397704 Bartholomaus et al. Dec 2020 A1
Foreign Referenced Citations (540)
Number Date Country
046994 Dec 2004 AR
045353 Oct 2005 AR
049562 Aug 2006 AR
049839 Sep 2006 AR
053304 May 2007 AR
054222 Jun 2007 AR
054328 Jun 2007 AR
769807 Mar 2001 AU
2003237944 Dec 2003 AU
2003274071 May 2004 AU
2003278133 May 2004 AU
2003279317 May 2004 AU
2004264666 Feb 2005 AU
2004264667 Feb 2005 AU
2004308653 Apr 2005 AU
2005259476 Jan 2006 AU
2005259478 Jan 2006 AU
2006210145 Aug 2006 AU
2006210145 Aug 2006 AU
2009207796 Jul 2009 AU
2009243681 Nov 2009 AU
2009299810 Apr 2010 AU
2006311116 Jan 2013 AU
P10413318 Oct 2006 BR
P10413361 Oct 2006 BR
P10513300 May 2008 BR
P10606145 Feb 2009 BR
0722109 Nov 1965 CA
2082573 May 1993 CA
2577233 Oct 1997 CA
2650637 Oct 1997 CA
2229621 Mar 1998 CA
2317747 Jul 1999 CA
2343234 Mar 2000 CA
2352874 Jun 2000 CA
2414349 Jan 2002 CA
2456322 Feb 2003 CA
2502965 May 2004 CA
2503155 May 2004 CA
2534925 Feb 2005 CA
2534932 Feb 2005 CA
2489855 Apr 2005 CA
2551231 Jul 2005 CA
2572352 Jan 2006 CA
2572491 Jan 2006 CA
2595954 Jul 2006 CA
2229650 Aug 2006 CA
2594713 Aug 2006 CA
2595979 Aug 2006 CA
2625055 Apr 2007 CA
2713128 Jul 2009 CA
2723438 Nov 2009 CA
2595954 Jan 2011 CA
689109 Oct 1998 CH
20162004 May 2005 CL
20172004 May 2005 CL
200403308 Sep 2005 CL
200500952 Nov 2005 CL
200501624 Dec 2005 CL
200501625 Jun 2006 CL
87102755 Oct 1987 CN
1135175 Nov 1996 CN
1980643 Apr 2005 CN
101010071 Jun 2005 CN
1671475 Sep 2005 CN
101022787 Jan 2006 CN
1863513 Nov 2006 CN
1863514 Nov 2006 CN
1917862 Feb 2007 CN
1942174 Apr 2007 CN
101011395 Aug 2007 CN
101027044 Aug 2007 CN
101057849 Oct 2007 CN
101484135 Nov 2007 CN
101091721 Dec 2007 CN
101111232 Jan 2008 CN
101175482 Feb 2008 CN
101370485 Feb 2009 CN
101394839 Mar 2009 CN
101578096 Nov 2009 CN
101652128 Feb 2010 CN
102413835 Apr 2012 CN
102821757 Dec 2012 CN
2530563 Jan 1977 DE
4229085 Mar 1994 DE
4309528 Sep 1994 DE
4446470 Jun 1996 DE
69400215 Oct 1996 DE
19522899 Dec 1996 DE
2808505 Jan 1997 DE
19753534 Jun 1999 DE
19800689 Jul 1999 DE
19800698 Jul 1999 DE
19822979 Dec 1999 DE
69229881 Dec 1999 DE
19855440 Jun 2000 DE
19856147 Jun 2000 DE
19940740 Mar 2001 DE
19960494 Jun 2001 DE
10036400 Jun 2002 DE
69429710 Aug 2002 DE
10250083 Dec 2003 DE
10250084 May 2004 DE
10250087 May 2004 DE
10250088 May 2004 DE
10336400 Mar 2005 DE
10361596 Sep 2005 DE
102004019916 Nov 2005 DE
102004020220 Nov 2005 DE
102004032049 Jan 2006 DE
102004032051 Jan 2006 DE
102004032103 Jan 2006 DE
102005005446 Aug 2006 DE
102005005449 Aug 2006 DE
102007011485 Sep 2008 DE
1658055 Jul 2007 DK
1658054 Oct 2007 DK
1515702 Jan 2009 DK
SP066345 Aug 2006 EC
0008131 Feb 1980 EP
0043254 Jan 1982 EP
0008131 Dec 1982 EP
0177893 Apr 1986 EP
0216453 Apr 1987 EP
0226061 Jun 1987 EP
0228417 Jul 1987 EP
0229652 Jul 1987 EP
0232877 Aug 1987 EP
0239973 Oct 1987 EP
0240906 Oct 1987 EP
0261616 Mar 1988 EP
0261616 Mar 1988 EP
0270954 Jun 1988 EP
0277289 Aug 1988 EP
0293066 Nov 1988 EP
0328775 Aug 1989 EP
0358105 Mar 1990 EP
0228417 Sep 1990 EP
0229652 Oct 1991 EP
0477135 Mar 1992 EP
0277289 Apr 1992 EP
0293066 Apr 1993 EP
0270954 May 1993 EP
0544144 Jun 1993 EP
0583726 Feb 1994 EP
0598606 May 1994 EP
0636370 Feb 1995 EP
0641195 Mar 1995 EP
0647448 Apr 1995 EP
0654263 May 1995 EP
0661045 Jul 1995 EP
0675710 Oct 1995 EP
0682945 Nov 1995 EP
0693475 Jan 1996 EP
0820693 Jan 1996 EP
0696598 Feb 1996 EP
0216453 Mar 1996 EP
0583726 Nov 1996 EP
0756480 Feb 1997 EP
0760654 Mar 1997 EP
0761211 Mar 1997 EP
0780369 Jun 1997 EP
0785775 Jul 1997 EP
0809488 Dec 1997 EP
0820698 Jan 1998 EP
0820753 Jan 1998 EP
0857062 Aug 1998 EP
0864324 Sep 1998 EP
0864326 Sep 1998 EP
0598606 Jun 1999 EP
0675710 Aug 1999 EP
0980894 Feb 2000 EP
0988106 Mar 2000 EP
1014941 Jul 2000 EP
1070504 Jan 2001 EP
1127871 Aug 2001 EP
1138321 Oct 2001 EP
1152026 Nov 2001 EP
1138321 Jan 2002 EP
1166776 Jan 2002 EP
1201233 May 2002 EP
0661045 Jul 2002 EP
1250045 Oct 2002 EP
1251120 Oct 2002 EP
1293127 Mar 2003 EP
1293195 Mar 2003 EP
1293196 Mar 2003 EP
1127871 Sep 2003 EP
1201233 Dec 2004 EP
1251120 Dec 2004 EP
1492506 Jan 2005 EP
1166776 Feb 2005 EP
1502592 Feb 2005 EP
1658054 Feb 2005 EP
1658055 Feb 2005 EP
1515702 Mar 2005 EP
1527775 Apr 2005 EP
1558221 Aug 2005 EP
1558257 Aug 2005 EP
1560585 Aug 2005 EP
1611880 Jan 2006 EP
1658054 May 2006 EP
1138321 Jan 2007 EP
1740161 Jan 2007 EP
1658055 Mar 2007 EP
1765303 Mar 2007 EP
1786403 May 2007 EP
1558221 Jun 2007 EP
1813276 Aug 2007 EP
1842533 Oct 2007 EP
1845955 Oct 2007 EP
1845956 Oct 2007 EP
1859789 Nov 2007 EP
1980245 Oct 2008 EP
1897545 Dec 2008 EP
2131830 Dec 2009 EP
2246063 Nov 2010 EP
2249811 Nov 2010 EP
2273983 Jan 2011 EP
2606879 Dec 2011 EP
2402004 Jan 2012 EP
2336571 Dec 2004 ES
2260042 Nov 2006 ES
2285497 Nov 2007 ES
2288621 Jan 2008 ES
2289542 Feb 2008 ES
2315505 Apr 2009 ES
1147210 Apr 1969 GB
1567727 May 1980 GB
2047095 Nov 1980 GB
2057878 Apr 1981 GB
2238478 Jun 1991 GB
20070456 Jun 2007 HR
20070272 Nov 2007 HR
S 55162714 Dec 1980 JP
S 5659708 May 1981 JP
S56169622 Dec 1981 JP
S62240061 Oct 1987 JP
H0249719 Feb 1990 JP
03-501737 Apr 1991 JP
H0517566 Jan 1993 JP
H06507645 Sep 1994 JP
8-505076 Jun 1996 JP
H09508410 Aug 1997 JP
H1057450 Mar 1998 JP
H10251149 Sep 1998 JP
2000513333 Oct 2000 JP
2002524150 Aug 2002 JP
2002-275175 Sep 2002 JP
2003113119 Apr 2003 JP
2003125706 May 2003 JP
2003526598 Sep 2003 JP
2004143071 May 2004 JP
2004530676 Oct 2004 JP
2005506965 Mar 2005 JP
2005515152 May 2005 JP
2005534664 Nov 2005 JP
2006506374 Feb 2006 JP
2007501201 Jan 2007 JP
2007501202 Jan 2007 JP
2007513147 May 2007 JP
2007533692 Nov 2007 JP
2008024603 Feb 2008 JP
2008504327 Feb 2008 JP
2008528654 Jul 2008 JP
2009523833 Jun 2009 JP
2009524626 Jul 2009 JP
2009531453 Sep 2009 JP
2009536927 Oct 2009 JP
2009537456 Oct 2009 JP
2010505949 Feb 2010 JP
2010527285 Aug 2010 JP
2010534204 Nov 2010 JP
2011504455 Feb 2011 JP
2011506493 Mar 2011 JP
2011510034 Mar 2011 JP
2012515735 Jul 2012 JP
2012528845 Nov 2012 JP
2012-533586 Dec 2012 JP
2013523804 Jun 2013 JP
2013155124 Aug 2013 JP
2013536810 Sep 2013 JP
2014505736 Mar 2014 JP
2014-524925 Sep 2014 JP
2014528437 Oct 2014 JP
6085307 Feb 2017 JP
2013523780 Jun 2017 JP
1020060069832 Jun 2006 KR
20070039041 Apr 2007 KR
20070111510 Nov 2007 KR
20090085312 Aug 2009 KR
20100111303 Oct 2010 KR
20110016921 Feb 2011 KR
2007000008 Mar 2007 MX
2007000009 Mar 2007 MX
2007009393 Aug 2007 MX
2010008138 Aug 2010 MX
2010012039 Nov 2010 MX
20061054 Mar 2006 NO
20070578 Jan 2007 NO
20074412 Nov 2007 NO
528302 Feb 2007 NZ
1699440 Dec 2004 PT
1658054 May 2006 PT
1658055 Jul 2007 PT
1515702 Dec 2008 PT
2131244 Jun 1999 RU
2198197 Feb 2003 RU
2220715 Jan 2004 RU
2328275 May 2004 RU
2396944 Jul 2004 RU
2326654 Sep 2005 RU
2339365 Dec 2007 RU
2354357 Dec 2007 RU
2007103712 Sep 2008 RU
2007103707 Nov 2008 RU
2007132975 Apr 2009 RU
2567723 Nov 2015 RU
1515702 Apr 2009 SI
1699440 Apr 2009 SI
10612003 Jan 2004 SK
1254634 May 2006 TW
WO 1980000841 May 1980 WO
WO 1989005624 Jun 1989 WO
WO 1990003776 Apr 1990 WO
WO 1993006723 Apr 1993 WO
WO 9310765 Jun 1993 WO
WO 1993010758 Jun 1993 WO
WO 1993011749 Jun 1993 WO
WO 1993023017 Nov 1993 WO
WO 1994006414 Mar 1994 WO
WO 1994008567 Apr 1994 WO
WO 1995017174 Jun 1995 WO
WO 1995020947 Aug 1995 WO
WO 1995022319 Aug 1995 WO
WO 1995030422 Nov 1995 WO
WO 1996000066 Jan 1996 WO
WO 1996003979 Feb 1996 WO
WO 1996014058 May 1996 WO
WO 1997000673 Jan 1997 WO
WO 1997033566 Sep 1997 WO
WO 1997049384 Dec 1997 WO
WO 1998035655 Feb 1998 WO
WO 1998020073 May 1998 WO
WO 1998028698 Jul 1998 WO
WO 1998035655 Aug 1998 WO
WO 1998051758 Nov 1998 WO
WO 1999012864 Mar 1999 WO
WO 1999032120 Jul 1999 WO
WO 1999044591 Sep 1999 WO
WO 1999045887 Sep 1999 WO
WO 1999048481 Sep 1999 WO
WO 0015261 Mar 2000 WO
WO 2000013647 Mar 2000 WO
WO 2000033835 Jun 2000 WO
WO 2000040205 Jul 2000 WO
WO 2001008661 Feb 2001 WO
WO 2001012230 Feb 2001 WO
WO 2001015667 Mar 2001 WO
WO 2001052651 Jul 2001 WO
WO 2001058451 Aug 2001 WO
WO 2001097783 Dec 2001 WO
WO 2002026061 Apr 2002 WO
WO 2002026262 Apr 2002 WO
WO 2002026928 Apr 2002 WO
WO 2002035991 May 2002 WO
WO 2002071860 Sep 2002 WO
WO 2002088217 Nov 2002 WO
WO 2002094254 Nov 2002 WO
WO 2003006723 Jan 2003 WO
WO 2003007802 Jan 2003 WO
WO 2003013433 Feb 2003 WO
WO 2003013476 Feb 2003 WO
WO 2003013479 Feb 2003 WO
WO 2003013538 Feb 2003 WO
WO 2003015531 Feb 2003 WO
WO 2003018015 Mar 2003 WO
WO 2003024426 Mar 2003 WO
WO 2003024430 Mar 2003 WO
WO 2003026624 Apr 2003 WO
WO 2003026743 Apr 2003 WO
WO 2003028698 Apr 2003 WO
WO 2003028990 Apr 2003 WO
WO 2003031546 Apr 2003 WO
WO 2003035029 May 2003 WO
WO 2003035053 May 2003 WO
WO 2003035054 May 2003 WO
WO 2003035177 May 2003 WO
WO 2003039561 May 2003 WO
WO 2003049689 Jun 2003 WO
WO 2003053417 Jul 2003 WO
WO 2003068392 Aug 2003 WO
WO 2003070191 Aug 2003 WO
WO 2003092648 Nov 2003 WO
WO 2003094812 Nov 2003 WO
WO 2003105808 Dec 2003 WO
WO 2004004693 Jan 2004 WO
WO 2004043967 Feb 2004 WO
WO 2004026262 Apr 2004 WO
WO 2004026263 Apr 2004 WO
WO 2004026280 Apr 2004 WO
WO 2004037222 May 2004 WO
WO 2004037230 May 2004 WO
WO 2004037259 May 2004 WO
WO 2004037260 May 2004 WO
WO 2004043449 May 2004 WO
WO 2004066910 Aug 2004 WO
WO 2004078212 Sep 2004 WO
WO 2004084869 Oct 2004 WO
WO 2004093801 Nov 2004 WO
WO 2004093819 Nov 2004 WO
WO 2004098567 Nov 2004 WO
WO 2004100894 Nov 2004 WO
WO 2005002553 Jan 2005 WO
WO 2005016313 Feb 2005 WO
WO 2005016314 Feb 2005 WO
WO 2005032524 Apr 2005 WO
WO 2005041968 May 2005 WO
WO 2005053587 Jun 2005 WO
WO 2005053656 Jun 2005 WO
WO 2005055981 Jun 2005 WO
WO 2005060942 Jul 2005 WO
WO 2005063214 Jul 2005 WO
WO 2005065646 Jul 2005 WO
WO 2005066183 Jul 2005 WO
WO 2005079760 Sep 2005 WO
WO 2005102286 Nov 2005 WO
WO 2005102294 Nov 2005 WO
WO 2005102294 Nov 2005 WO
WO 2005105036 Nov 2005 WO
WO 2006002883 Jan 2006 WO
WO 2006002884 Jan 2006 WO
WO 2006002886 Jan 2006 WO
WO 2006002884 Mar 2006 WO
WO 2006024881 Mar 2006 WO
WO 2006039692 Apr 2006 WO
WO 2006058249 Jun 2006 WO
WO 2006082097 Aug 2006 WO
WO 2006082099 Aug 2006 WO
WO 2006105615 Oct 2006 WO
WO 2006128471 Dec 2006 WO
WO 2007005716 Jan 2007 WO
WO 2007008752 Jan 2007 WO
WO 2007014061 Feb 2007 WO
WO 2007048233 May 2007 WO
WO 2007053698 May 2007 WO
WO 2007085024 Jul 2007 WO
WO 2007085024 Jul 2007 WO
WO 2007093642 Aug 2007 WO
WO 2007103105 Sep 2007 WO
WO 2007103286 Sep 2007 WO
WO 2007112273 Oct 2007 WO
WO 2007112285 Oct 2007 WO
WO 2007112286 Oct 2007 WO
WO 2007131357 Nov 2007 WO
WO 2007138466 Dec 2007 WO
WO 2007149438 Dec 2007 WO
WO 2008023261 Feb 2008 WO
WO 2008033523 Mar 2008 WO
WO 2008045060 Apr 2008 WO
WO 2008069941 Jun 2008 WO
WO 2008086804 Jul 2008 WO
WO 2008107149 Sep 2008 WO
WO 2008107149 Sep 2008 WO
WO 2008109462 Sep 2008 WO
WO 2008132707 Nov 2008 WO
WO 2008142627 Nov 2008 WO
WO 2008148798 Dec 2008 WO
WO 2009005803 Jan 2009 WO
WO 2009014534 Jan 2009 WO
WO 2009034541 Mar 2009 WO
WO 2009034541 Mar 2009 WO
WO 2009034541 Mar 2009 WO
WO 2009035474 Mar 2009 WO
WO 2009051819 Apr 2009 WO
WO 2009076764 Jun 2009 WO
WO 2009092601 Jul 2009 WO
WO 2009110005 Sep 2009 WO
WO 2009112273 Sep 2009 WO
WO 2009135680 Nov 2009 WO
WO 2010022193 Feb 2010 WO
WO 2010037854 Apr 2010 WO
WO 2010044842 Apr 2010 WO
WO 2010057036 May 2010 WO
WO 2010066034 Jun 2010 WO
WO 2010069050 Jun 2010 WO
WO 2010083843 Jul 2010 WO
WO 2010083894 Jul 2010 WO
WO 2010088911 Aug 2010 WO
WO 2010105672 Sep 2010 WO
WO 2010140007 Dec 2010 WO
WO 2010140007 Dec 2010 WO
WO 2010141505 Dec 2010 WO
WO 2010149169 Dec 2010 WO
WO 2011008298 Jan 2011 WO
WO 2011009602 Jan 2011 WO
WO 2011009603 Jan 2011 WO
WO 2011009604 Jan 2011 WO
WO 2011059074 May 2011 WO
WO 2011095314 Aug 2011 WO
WO 2011095314 Aug 2011 WO
WO 2011124953 Oct 2011 WO
WO 2011124953 Oct 2011 WO
WO 2011128630 Oct 2011 WO
WO 2011141241 Nov 2011 WO
WO 2011154414 Dec 2011 WO
WO 2012028317 Mar 2012 WO
WO 2012028318 Mar 2012 WO
WO 2012028319 Mar 2012 WO
WO 2012061779 May 2012 WO
WO 2012076907 Jun 2012 WO
WO 2012085657 Jun 2012 WO
WO 2012119727 Sep 2012 WO
WO 2012166474 Dec 2012 WO
WO 2013003845 Jan 2013 WO
WO 2013017234 Feb 2013 WO
WO 2013017242 Feb 2013 WO
WO 2013025449 Mar 2013 WO
WO 2013030177 Mar 2013 WO
WO 2013050539 Apr 2013 WO
WO 2013072395 May 2013 WO
WO 2013084059 Jun 2013 WO
WO 2013127830 Sep 2013 WO
WO 2013127831 Sep 2013 WO
WO 2013128276 Sep 2013 WO
WO 2013156453 Oct 2013 WO
WO 2013158810 Oct 2013 WO
WO 2013167735 Nov 2013 WO
WO 2014032741 Mar 2014 WO
WO 2014059512 Apr 2014 WO
WO 2014140231 Sep 2014 WO
WO 2014190440 Dec 2014 WO
WO 2014191396 Dec 2014 WO
WO 2014191397 Dec 2014 WO
WO 2015004245 Jan 2015 WO
WO 2015023675 Feb 2015 WO
WO 2015048597 Apr 2015 WO
WO 2015103379 Jul 2015 WO
WO 2015120201 Aug 2015 WO
WO 2017178658 Oct 2017 WO
Non-Patent Literature Citations (458)
Entry
Wolff, K et al. “Screening for Drugs of Abuse: Effect of Heat-Treating Urine for Safe Handling of Samples”, Clinical Chemistry, vol. 36, No. 6, 1990.
Mastropietro, D. et al. “Current approaches in tamper-resistant and abuse-deterrent formulations.” Drug Development and Industrial Pharmacy, vol. 39(5), pp. 611-624 (2013).
Hedaya, M. et al. “The Need for Tamper-Resistant and Abuse-Deterrent Formulations,” J. Pharma Care Health Systems, vol. 1, Issue 1 (2014).
Nagar et al., “Orally disintegrating tablets : formulation, preparation techniques and evaluation,” Journal of Applied Pharmaceutical Science 2011; 01(04): 35-45 (2011).
U.S. Appl. No. 60/287,509, filed Dec. 2, 2002, Joshi et al.
U.S. Appl. No. 60/288,211, filed Sep. 2, 2004, Oshlack et al.
U.S. Appl. No. 60/310,514, filed Apr. 3, 2003, Oshlack et al.
U.S. Appl. No. 60/310,534, filed Apr. 10, 2003, Wright et al.
U.S. Appl. No. 60/376,470, filed Jan. 15, 2004, Ayer et al.
U.S. Appl. No. 60/384,442, filed Dec. 4, 2003, Fink et al.
Vosburg, et al., “A comparison among tapentadol tamper-resistant formulations (TRF) and OxyCotin® (non-TRF) In prescription opioid abusers,” 2013; Society for the Study of Addiction; Addiction, vol. 108, pp. 1095-1106.
Heal et al. “Amphetamine, past and present—a pharmacological and clinical perspective,” Journal of Psychology 2013:27(6):479-496 (2013).
Lefnaoui et al., Synthesis and evaluation of the structural and physiochemical properties of carboxymethyl pregelatinized starch as a pharmaceutical excipient, Saudi Pharmaceutical Jourani, Feb. 2015:23:698-711 (2015).
Lopez-Solis et al., Effect of disintegrants with different hygroscopicity on dissolution of Norfloxacin/Pharmatose DCL 11 tablets, International Journal of Pharmaceutics 2001:216:127-135 (2001).
Thumma et al., “Influence of Plasticizers on the Stability of a Prodrug of D9-Tetrahydrocannabinol Incorporated in poly(Ethyelen Oxide) Matrices”, Eur J. Pharm Biopharm. Oct. 2008 (70(2): 605-614.
Martin et al., “Applications of Polyethylene Oxide (POLYOX) in Hydrophilic Matrices,” in Hydrophilic Matrix Tablets for Oral Controlled Release, Springer, New York, 2014, Chapter 5, pp. 123-141.
Gaitondf, B. “General Principles of Drug Action”, 1967, p. 48.
Evekeo, (Amphetamine Sulfate) for treating patients with ADHD website ([online] https://www.evekeo.com.about-evekeo; 2019:5 pages), 2019.
Lurie et al., “Chiral Resolution of Cationic Drugs of Forensic Interest,” (Analytical Chemistry 1994; 66(22): 4019-4026.
Romach et al. “Update on tamper-resistant drug formulations,” Drug and Alcohol Dependence, 130 (2013), 13-23.
Claffey et al, “Amphetamine Adducts of Melanin Intermediates Demonstrated by Matrix-Assisted Laser Desorption Ionization Time-of-Flight Mass Spectrometry,” Chem. Res. Toxicol. 2001, 14, 1339-1344.
Evans, J.C, et. Al. “Optimal tocopherol concentrations to inhibit soybean oil oxidation,” Journal of The American Oil Chemists' Society 79.1 (2002): 47-51.
Quinn, M.E. “Alpha Tocopherol” in Handbook of Pharmaceuical Excipients, Sixth Edition (2009), 31-33.
Pintauro, Nicholas, D., Food Flavoring Processes, Table of Content. Park Ridge, NJ and London, UK, 1976.
Ely et al., “Lithium-Ammonia Reduction of Ephedrine to Methamphetamine: An Unusual Clandestine Synthesis,” Technical Note, 1990, 720-723.
Kunalan et al., “Investigation of the Reaction Impurities Associated with Methylamphetamine Synthesized using the Nagai Method,” Anal. Chem. 2012, 84, 5744-52.
Lee et al., “Analysis of the impurities in the metamphetamine synthesized by thee different methods from ephedrine and pseudoephedrine,” Forensic Science International 161 (2006), 209-215.
Person et al., Structural Determination of the Principal Byproduct of the Lithium-Ammonia Reduction Method of Methamphetamine Manufacture, J Forensic Sci, Jan. 2005, vol. 50, No. 1, 87-95.
Salouros et al., Isolation and Identification of Three By-Products Found in Methylamphetamine Synthesized by the Emde Route2010, 605-615.
Skinner, Harry F., “Methamphetamine Synthesis via Hydriodic Acid/Red Phosphorus Reduction of Ephedrine,” Forensic Science International, 48 (1990), 123-134.
Polyox, 2004, online retrieved on Oct. 15, 2018.
Befort et al., “The Conserved Asparatate Residue in the Third Putative Transmember Domain,” Molecular Pharmacology 1996: 49:216-223 (1996).
Fitzpatrick, J., “The influence of Superdisintegrants on Immediate Release,” By Pharmaceutical Technology Editions [online] retrieved from http://www.pharmatech.com/influence-superdisintegrants-immediate-release; vol. 21, issue 6 (Jun. 1, 2011).
Suzuki, T, “Blood-brain barrier transport of opioid analgesics,” Abstract, Yakugaki Zasshi; 131(10):1445-51 (2011).
Domino E.F. (1991) Nicotine: A Unique Psychoactive Drug. In: Adlkofer F., Thurau K. (eds.) Effects of Nicotine on Biological Systems. APS Advances in Pharmacological Sciences. Birkhaeuser Basel (1991).
BASF the chemical company, Kollicoat IR Technical information, Feb. 2013, p. 1-14 (2013).
Kolar et al., “Treatmen of adults with attention-deficit/hyperactivity disorder,” Neuropsychiatric Disease and Treatment 2008:4(3):389-403.
Rasmussen, N. “America's First Amphetamine Epidemic 1929-1971,” American Journal of Public Health 2008:98(6): 974-985.
Weinhold, et al. “Buprenorphine alone and in combination with naloxone in non-dependent humans.” Drug & Alcohol Dependence 30.3 (1992): 263-274.
Low Substituted Hydroxypropyl Celluslose, Drugs.com, from https://www.drugs.com/inactive/low-susbstitute-hydroxypropyl-cellulose-581.html (2018).
Patrick, K., et al., “Pharmacology of Me+G18thylphenidate, Amphetamine Enantiomers and Pemoline in Attention-Deficit Hyperactivity Disorder,” Human Psychopharmacology, vol. 12, 527-546 (1997).
Jedinger, N., et al., Eur. J. Pharm. Biopharm 87 (2014), 217-226.
European Pharmacopeia, 7th Ed. 2.2.8 and 2.2.10, 27ff. (2010).
Extended European Search Report for Application No. EP 17173240.7, dated Nov. 28, 2017.
Kelly, C. et al., “Methamphetamine Synthesis Inhibition: Dissolving Metal Reductions,” Johns Hopkins Univ. Applied Physics Lab., 2015, 1-10.
Brzeclo, W., et al., “The Advent of a new Pseudoephedrine Product to Combat Methampetamine Abuse,” Am J Drug Alcohol Abuse, 2013: 39(5): 284-290.
Presley, B. et al., “Efficiency of Extraction and Conversion of Pseudoephedrine to Methamphetamine from Tamper-Resistant and Non-Tamper-Resistant Formulations,” Journal of Pharmaceutical and Biomedical Analysis , 2018, 16-22.
Misal, R, et al., “Matrix Tablet: A Promising Technique for Controlled Drug Delivery,” Indo American Journal of Pharmaceutical Research, 2013.
Agarwal, G, et al, “Oral Sustained Release Tablets: An Overview with a Special Emphasis on Matrix Tablet,” American Journal of Advanced Drug Delivery, 2017.
Jamini, M., et al, “Sustained Release Matrix Type Drug Delivery System: A Review,” Journal of Drug Delivery & Therapeutics; 2012, 2(6), 142-148.
Targin(R) Product Monograph. Purdue Pharma. Revised Mar. 1, 2016.
Sprockel, et. al, “A melt-extrusion process for manufacturing matrix drug delivery systems,” Int. Journal of Pharmaceutics 155 (1997) 191-199.
Vezin, W. et al, “Adjustment of precompression force to reduce mixing-time dependence of tablet tensile strength,” J. Pharm. Pharmacol. 1983, 35: 555-558 (Mar. 28, 1983).
Qi et al, “An Investigation into the Crystallisation Behavior of an Amorphous Cryomilled Pharmaceutical Material Above and Below the Glass Transition Temperature,” Journal of Pharmaceutical Sciences, 2009, 196-208.
Patel, Et. Al., “Poloxamers: A pharmaceutical excipient with therapeutic behaviors,” PharmTech, vol. 1, No. 2, pp. 299-300 (Apr. 2009).
Definition Granule, Merriam-Webster, accessed online Jun. 28, 2018 (2018).
Sigma-Aldrich entry for CAS No. 9010-88-2; www.sigmaaldrich.com/catalog/product/aldrich/182249?lang=en@ion=US (downloaded Jun. 2018).
Houston, T.E., et al., “Bite Force and Bite Pressure: Comparison of Humans and Dogs,” http://www.glapbta.com/BFBP.pdf, 2003, pp. 1-7.
King, Remington's Pharmaceutical Sciences 17th ed., Chapter 78, p. 1418-1419 (1985).
Turkington, R., “Amphetamines,” in Chemicals used for Illegal Purposes. A Guide for first Responders to Identify Explosives, Recreational Drugs, and Poisons, 2010, p. 247.
Sumitomo Seika Chemicals, Co., Ltd, “Certificate of Analysis,” Product: Polyethylene Oxide; Grade: PEO-18NF; Feb. 2, 2016.
Sumitomo Seika Chemicals, Co., Ltd, “Certificate of Analysis,” Product: Polyethylene Oxide; Grade: PEO-20NF; Feb. 3, 2016.
Sumitomo Seika Chemicals, Co., Ltd, “Certificate of Analysis,” Product: Polyethylene Oxide; Grade: PEO-20NF; Jan. 23, 2012.
Sumitomo Seika Chemicals, Co., Ltd, “Certificate of Analysis,” Product: Polyethylene Oxide; Grade: PEO-20NF; May 15, 2013.
De Brabander C., et al., “Development and evaluation of sustained release mini-matrices prepared via hot melt extrusion,” Journal of Controlled Release 89 (2003), 235-247.
Pharma Tips ([online] retrieved on Mar. 22, 2018 from http://ww.pharmatips.in/Articles/Pharmaceutics/Tablet/Co-Processed-Directly-Compressed-Adjutants.aspx; May 2011: 10 pages).
European Pharmacopoeia 3.0, 2.9.8 “Resistance to Crushing of Tablets”, 1997, p. 135.
Goodman and Gilman, 1985, 7th edition, chapter 29, 674-715.
Quadros, E. et al., “Evaluation of a novel colonic delivery device in vivo,” STP Pharma Sci. 5, 77-82 (1995).
Theeuwes, Felix et al., Osmotic Systems for Colon-Targeted Drug Delivery in Colonic Drug Absorption and Metabolism (Peter R. Bieck ed., 1993).
Wooten, Marvin R. et al., Intracerebral Hemorrhage and Vasculitis Related to Ephedrine Abuse, 13 Annals of Neurology 337 (1983).
Nickerson, B., Sample Preparation of Pharmaceutical Dosage Forms, Springer, New York (2011); Chapter 1, pp. 3-48.
Polyox Water-Soluble Resins in Pharmaceutical Applications. Dow Chemicals. Published 2004.
Bannwarth, Bernard, “Will Abuse-Deterrent Formulations of Opioid Analgesics be Successful in Achieving Their Purpose?”, Drugs, 2012, vol. 72, pp. 1713-1723.
Furu et al. “use of ADHD drugs in the Nordic countries: a population-based comparison study,” Acta Psychiatrica Scandinavia, May 2010.
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2016/052046 dated Apr. 12, 2016.
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2017/070396 dated Sep. 8, 2017.
COMPAP 90 technical data sheet Mar. 2014; 1 page.
Extended European Search Report for Application No. EP 16182124.4-1455, dated Jan. 17, 2017.
USP Expert Council, US Pharmacopoeia, Chapter 1092, 2007, 1-15.
M. Xu et al., “Evaluation of the coat quality of sustained release pellets by individual pellet dissolution methodology,” Int. J. Pharm. 478 (2015) 318-327.
Dabbagh, et al. “Release of Propranolol Hydrochloride from Matrix Tablets Containing Sodium Carboxymethylcellulose and Hydroxypropylmethylcellulose”; 1999; Pharmaceutical Development and Technology, 4(3), 313-324.
Remington, Chapter 45, pp. 996-1035. (2000) (Full Translation Attached).
Extended European Search Report for Application No. EP 16183922.0-1460, dated Oct. 31, 2016.
Meyer et al., “Awareness Topic: Mitigating the Risks of Ethanol Induced Dose Dumping from Oral Sustained/Controlled Release Dosage Forms,” FDA ACPS Meeting, Oct. 2005, p. 1-4.
Schilling, et al., “Novel application of hot-melt extrusion for the preparation of monolithic matrices containing enteric-coated particles.” International Journal of Pharmaceutics 400 (2010) 24-31.
Fathima, N. et al. “Drug-excipient interaction and its importance in dosage form development,” Journal of Applied Pharmaceutical Science 01 (06); 2011, pp. 66-71.
Starch 1500, Partially Pregelatinized Maize Starch, technical data from Colorcon, Feb. 2016, 6 pages.
Baxter, J.L. et al., “Hydrodynamics-induced variability in the USP apparatus II dissolution test,” International Journal of Pharmaceutics 292 (2005) 17-28.
Bellmann et al., “Development of an advanced in vitro model of the stomach and its evaluation versus human gastric psychology.” Food Research International 88 (2016) 191-198.
Koziolek, M. et al., “Development of a bio-relevant dissolution test device simulating mechanical aspects present in the fed stomach,” European Journal of Pharmaceutical Sciences 57 (2014) 250-256.
Linz et al. “Cebranopadol: A Novel Potent Analgesic Nociception/Orphanin FQ Peptide and Opioid Receptor Agonist,” J Pharmacol. Exp. Ther. 2014; 349: 535-548; available online Apr. 8, 2014.
Tennant, “Simultaneous Use of Stimulants and Opioids,” 2011 [online] retrieved on Jul. 7, 2016 from: http://www.practicalpainmanagement.com/treatments/pharmacological/opioids/simultaneous-use-stimulants-opioids; 7 pages.
Efentakis et al., Effects of Excipients on Swelling and Drug Release from Compressed Matrices, in Drug Development and Industrial Pharmacy 23(1):107-112, Jan. 1997, Abstract.
The Merck Index, 14th Ed. (2006) No. 0006360 Nalefene.
The Merck Index, 14th Ed. (2006) No. 0006362 Naloxone.
The Merck Index, 14th Ed. (2006) No. 0006363 Naltrexone.
The Merck Index, 14th Ed. (2006) No. 0006959 Oxycodone.
Extended European Search Report and Opinion for Application No. EP 15184634.2-1455, dated Mar. 3, 2016.
Alekseeva et al, Chemical-Pharmaceutical Journal, vol. 41, No. 9, 2007, 49-52. (Full translation attached.).
Saleem et al. “Formulation and Evaluation of Tramadol hydrochloride Rectal Suppositories,” Indian J. Pharm Sci. Sep.-Oct. 2008; 70(5), 640-644.
Borquist et al., “Simulation of the release from a multiparticulate system validated by single pellet and dose release experiements,” J. Controlled Release, 97: 453-465 (2004).
Chibuzor et al. “Formulation Development and Evaluation of Drug Release Kinetics from Colon-Targeted Ibuprofen Tablets Based on Eudragit RL 100-Chitosan Interpolyelectrolyte Complexes,” Hindawi Publ. Corporation ISRN Pharmaceutics, vol. 2013, Article ID 838403.
Satish et al. “Formulation and Characterization of Matrix and Triple Layer Matrix Tablets for Controlled Delivery of Tramadol Hydrochloride,” International Journal of Pharmaceutical Sciences; 5(4) (2013) 458-464.
Verhoeven, et al. “Xanthan gum to tailor drug release of sustained-release ethylcellulose mini-matrices prepared via hotmelt extrusion: in vitro and in vivo evaluation,” European Journal of Pharmaceutics and Biopharmaceutics, 63 (2006) 320-330.
Cuesov, Drug Production Technology, Khar'kov, 1999, pp. 351-352. (Full translation attached.).
Sidhu et al., “Watch for nonpsychotropics causing psychiatric side effects,” Current Psychiatry, vol. 7, No. 4, 2008, 61-74.
Verhoeven et al., “Influence of polyethylene glycol/polyethylene oxide on the release characteristics of sustained-release ethylcellulose mini-matrices produced by hot-melt extrusion: in vitro and in vivo evaluations,” European Journal of Pharmaceutics and Biopharmaceutics 72 (2009) 463-470.
Extended European Search Report and Opinion for Application No. EP 15165064.5-1455, dated Oct. 16, 2015.
Extended European Search Report and Opinion for Application No. EP 15165065.2-1455, dated Nov. 2, 2015.
Extended European Search Report and Opinion for Application No. EP 15165067.8-1455, dated Nov. 2, 2015.
Extended European Search Report and Opinion for Application No. EP 15165069.4-1455, dated Nov. 2, 2015.
Extended European Search Report and Opinion for Application No. EP 15165070.2-1455, dated Nov. 2, 2015.
Monolithic: retrieved from internet: http:/merriam-webster.com/dictionary/monolithic. Retrieved on Sep. 2, 2015.
Extended European Search Report and Opinion for Application No. EP 15153679.4-1455, dated Jun. 30, 2015.
West, Anthony R., Solid state chemistry and its applications, Wiley, New York, 1988, pp. 358 and 365.
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2015/060377 dated Jul. 23, 2015.
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2015/061343 dated Jul. 22, 2015.
Bruce et al, Properties of hot-melt extuded tablet formulations for the colonic delivery of 5-aminosalicylic acid, European Journal of Pharmaceutics and Biopharmaceutics, 59(2005) 85-97.
Bingwen et al, 2008, p. 367. (full translation attached).
Eudragit NE40D web page from Evonik website; downloaded Feb. 24, 2015.
Eudragit RS PO web page from Evonik website; downloaded Feb. 24, 2015.
European Pharmacopeia 5.0; Glyceryl behenate monograph; dated Jan. 2005; downloaded Feb. 24, 2015.
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2014/075618 dated Feb. 11, 2015.
Moorman-Li, R. et al, “A Review of Abuse-Deterrent Opioids for Chronic Nonmalignant Pain.” Pharmacy and Therapeutics, vol. 37 No. 7. Jul. 2012, pp. 412-421.
European Search Report and Opinion Application No. 14176277.3-1460, dated Dec. 15, 2014.
Salomies et al., “Determination of Oxycodone Hydrochloride in Oral Solutions by High-Performance Thin-Layer Chromatography/Densitometry,” Journal of AOAC International, 83: 1497-1501 (2000).
Dierickx et al., “Co-extrusion as manufacturing technique for fixed-dose combination mini-matrices,” European Journal of Pharmaceutics and Biopharmaceutics 81 (2012), 683-689.
Oliveira et al., “Production and characterization of laminar coextrudates at room temperature in the absence of solvents,” AAPS Annual Meeting and Exposition, Oct. 14-18, 2012, Chicago, USA.
Quintavalle et al., “Preparation of sustained release co-extrudates by hot-melt extrusion and mathematical modelling of in vitro/in vivo drug release profiles,” European Journal of Pharmaceutical Sciences 33 (2008), 282-293.
European Search Report and Written Opinion for EP Application No. 14169801.9-1455 dated Oct. 20, 2014.
Rosiaux et al. “Ethanol-resistant ethylcellulose/guar gum coatings—Importance for formulation parameters” European Journal of Pharmaceutics and Bioharmaceutics, vol. 85, No. 3, (Jul. 25, 2013). pp. 1250-1258.
Eggleston, “The seat of the emetic action of various drugs,” J. Pharmacol. Exp. Ther. 7, 225-253 (1915).
Evonik Rohm GmbH product brochure: EUDRAGIT acrylic polymers for solid oral dosage forms (2009).
Kondrat, T. , “Technology dosage forms” Moscow 1991, p. 96.
Morissette et al. Advanced Drug Delivery Review 26 (2004), 275-300.
Vippagunta et al. Crystalline Solids, Advanced Drug Delivery Review 48 (2001), 3-26.
Lenindzer, A., “The molecular basis of the structure and functions of cells” Moscow 1974, p. 68.
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2014/064830 dated Aug. 6, 2014.
Polyox, Colorcon, Application Data (Apr. 2009) downloaded from http://www.colorcon.com/literature/marketing/mr/Extended%20Release/POLYOX/English/ads_PEO_Antioxidant.pdf.
PCT Second Written Opinion for PCT Application No. PCT/EP2013/057851 dated Apr. 15, 2014.
Gryczke et al., “Development and evaluation of orally disintegrating tablets (ODTs) containing Ibuprofen granules prepared by hot melt extrusion”, Colloids and surfaces., B, Biointerfaces, Elsevier, Amsteram, NL, vol. 86, No. 2, Apr. 5, 2011, pp. 275-284.
Carbopol 71G, retrieved Mar. 10, 2014 from http://www.lubrizol.com/LifeScience/Products/Carbopol71G-NF.html.
European Search Report and Written Opinion for EP Application No. 13425151.1-1460, dated Mar. 11, 2014.
Li et al, “Characterization of Poly(Ethylene Oxide) as a Drug Carrier in Hot-Melt Extrusion” Drug Development and Industrial Pharmacy, vol. 32, No. 8, Jan. 1, 2006, pp. 991-1002.
European Search Report and Written Opinion for EP Application No. 13197503.9-1460, dated Feb. 18, 2014.
PCT Second Written Opinion for PCT Application No. PCT/EP2013/053893 dated Feb. 21, 2014.
Polyox WSR-303, retrieved Mar. 10, 2014 from URL http://www.dow.com/dowwolff/en/industrial_solutions/polymers/polyethylene.
Application of Opadry II, complete film coating system, on metformin HCl extended release matrices containing Polyox water soluble resin, Colorcon Apr. 2009.
Albertini, B. “New spray congealing atomizer for the microencapsulation of highly concentrated solid and liquid substances” European Journal of Pharmaceutics and Biopharmaceutics 69 (2008) 348-357.
Kolter, K., “Compression Behaviour of Kollidon SR,” APV/ APGI 2002, Florence, Apr. 11, 2002.
Mises à jour cumulatives, Vidal, Jan./Oct. 2002 (full translation attached).
Oxicotin: Balancing Risks and Benefits, United States Senate, Hearing, Feb. 12, 2002.
Oxycodon (Oxygesic): Missbrauch, Abhaengigkeit und toedliche Folgen durch Injection zerstossener Retardtabletten, Deutsches Ärzteblatt, vol. 36, A2326-A2326, Sep. 5, 2003.
Pontier, C. et al, “Use of cycles of compression to characterize the behavior of apatitic phosphate powders,” Journal of the European Ceramic Society 22 (2002), 1205-1216.
Silver, J. Painkiller OxyContin “most commonly abused prescription drug on the streets of Western Pennsylvania”, Pittsburg Post-Gazette, Apr. 8, 2001.
Wikipedia—Dextromethorphan Aug. 12, 2013 (and attached related English-language entry dated Dec. 11, 2013).
European Search Report and Written Opinion for EP Application No. 13176309.9-1460, dated Oct. 9, 2013.
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2009/003290 dated Jul. 9, 2009.
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2013/059728 dated Aug. 6, 2013.
Polyox water soluble resins 2003. http://www.dow.com/webapps/lit/litorder.asp?filepath=polyox/pdfs/noreg/326-00002.pdf.
Foye, W., Principles of Medicinal Chemistry; Analgesics pp. 241-242, at 241 (1989).
Foye, W., Principles of Medicinal Chemistry; Structural Features and Pharmacologic Activity, pp. 63-66 at 65 (1989).
European Search Report and Written Opinion for EP Application No. 13169658.5, dated Aug. 6, 2013.
Remington, The Science and Practice of Pharmacy, 19th ed., vol. II, p. 1457 (1995) (providing a table of DFA-approved commercially marketed salts).
Spassov et al., Stereochemistry of Diastereomeric 3-Dialkylaminopropanols and O-Derivatives, J.f. prakt. Chemie, 323:5, 793-800 (1981).
European Search Report and Written Opinion for EP Application No. 13169659.3, dated Aug. 6, 2013.
Almeida, A. et al., Ethylene vinyl acetate as matrix for oral sustained release dosage forms produced via hot-melt extrusion, European Journal of Pharmaceutics and Biopharmaceutics 77 (2011) 297-305.
Almeida, A. et al., Sustained release from hot-melt extruded matrices based on ethylene vinyl acetate and polyethylene oxide, European Journal of Pharmaceutics and Biopharmaceutics 82 (2012) 526-533.
Hartauer, Kerry J. “Influence of Peroxide Impurities in Povidone and Crospovidone on the Stability of Raloxife” Pharma. Dev. & Tech, 5 (3) 303-310 (2000).
Sreenivasa, B. et al, Design and Evaluation of Ethylene Vinyl Acetate Sintered Matrix Tablets, Indian Journal of Pharmaceutical Sciences, Sep.-Oct. 2003, 65(5): 496-502.
Bauer et al. Lehrbuch der Pharmazeutischen Technologie. Eight Edition 2006. Stuttgart, pp. 343-352.
Marques, Tablet breaking force, 2008.
Polyox water-soluble resins (DOW Mar. 2002); see http://msdssearch.dow.com/PublishedLiteratureDOWCOM/dh_0031/0901b80380031a4a.pdf?filepath=/326-00001.pdf&fromPage=GetDoc).
Ritschel et al. Die Tablette: Handbuch der Entwicklung, Herstellung und Qualitatssicherung. 2nd Edition, 2002, Ch 6, pp. 69-82 and 115-136.
Ritschel et al. Die Tablette: Handbuch der Entwicklung, Herstellung und Qualitatssicherung. 2nd Edition, 2002, Table of content.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 1, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 10, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 11, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 12, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 13, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 14, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 15, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 16, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 18, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 19, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 2, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 20, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 3, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 4, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 5, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 6, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 7, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 8, table of contents.
Swarbrick, Encyclopedia of Pharmaceutical Technology, Informa Healthcare, 1988, 1st edition, vol. 9, table of contents.
Wagner, Pharmazeutische Biologie—Drogen und ihre Inhaltsstoffe—Scharfstoffdrogen, 2nd., revised edition, Gustav Fischer Verlag, Stuttgart—N.Y., 1982, Table of Content.
Zeeshan, F and N. Bukhari, “Development and Evaluation of a Novel Modified-Release Pellet-Based Tablet System for the Delivery of Loratadine and Pseudophedrine Hydrochloride as Model Drugs,” AAPS PharmaSciTech 11(2); 910-916 (available on-line May 22, 2010).
Tikhonov, A. et al, Biopharmacy. The Manual for Students of Pharmaceutical Universities and Departments, 2003, pp. 40-41, Kharkov, Ukraine (Full English translation attached).
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2013/057851 dated Jun. 12, 2013.
Handbuch der Kunststoff-Extrusionstechnik 1, “Grundlagen” in Chapter 1.2 “Klassifizierung von Extrudern”, pp. 3-7. 1989. (Full english translation attached).
Application of a modelling system in the formulation of extended release hydrophilic matrices, Reprinted from Pharmaceutical Technology Europe, Jul. 2006.
Evaluation of Verapamil HCl (240 mg) Extended Release Matrix Formulation Using USP Apparatus III in Biorelevant Dissolution Media, Jul. 2009.
Apicella A.et al., Biomaterials, vol. 14, No. 2, pp. 83-90, 1993.
Formulation of Polyox ER Matrices for a Highly Soluble Active, Colorcon Jul. 2009.
Investigation of a Directly Compressible Metformin HCl 500mg Extended Release Formulation Based on Hypromellose, Colorcon Jul. 2009.
Metformin Hydrochloride 1000 mg Extended Release Tablets, Lubrizol Advanced Materials, Inc., Nov. 20, 2009, Previous Edition Dec. 19, 2008.
Metformin Hydrochloride 750 mg Extended Release Tablets, Lubrizol Advanced Materials, Inc., Sep. 2010.
Pentoxifylline 400 mg Extended Release Tablets, Lubrizol Advanced Materials, Inc., Mar. 3, 2011, Previous Edition Nov. 19, 2009.
Perez-Marcos, B., Usefulness of certain varieties of Carbomer in the formulation of hydrophilic furosemide matrices, International Journal of Pharmaceutics, 67 (1991) 113-121.
Physico-mechanical Characterization of Polyox for Table Manufacture, Colorcon Jul. 2009.
Tramadol Hydrochloride 100 mg Extended Release Tablets, Lubrizol Advanced Materials, Inc., Sep. 2010.
Tranquilan-Aranilla et al., “Kappa-carrageenan-polyethylene oxide hydrogel blends prepared by gamma irradiation,” Radiation Physics and Chemistry vol. 55, pp. 127-131, 1999.
Handbook of Pharmaceutical Excipients, 1986, American Pharmaceutical Association, Washington, DC and London (Table of Content Only).
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2013/053894 dated Mar. 22, 2013.
2.9 Methoden der pharmazeutischen Technologie, European Pharmacopeia, 143-144, 1997. (Full English translation attached).
Encyclopedia of Pharmacological Technology, Informa Healthcare, 1st Ed., 1996, vol. 14 (Table of Content only).
PCT International Search Report and Written Opinion for PCT Application No. PCT/EP2010/004459 dated Dec. 1, 2010.
Henriest D. et al. In vitro and in vivo evaluation of starch-based hot stage extruded double matrix systems. Journal of Controlled Release. 2001, vol. 75, pp. 391-400.
European Search Report and Opinion Application No. 12002708.1-1219, dated Sep. 24, 2012.
European Search Report and Opinion, Application No. 11006253.6-2112, dated Dec. 16, 2011.
European Search Report and Opinion, Application No. 11006254.4-2112, dated Dec. 16, 2011.
European Search Report and Opinion, Application No. 11008131.2-1219, dated Feb. 24, 2012.
European Search Report and Opinion, Application No. 11009129.5-2112, dated Apr. 10, 2012.
European Search Report and Opinion, Application No. 12001296.8-1219, dated Jun. 26, 2012.
European Search Report and Opinion, Application No. 12001301.6-1219, dated Jun. 26, 2012.
European Search Report and Opinion, Application No. 12003743.7-1219, dated Sep. 24, 2012.
Efentakis M et al. “Evaluation of High Molecular Weight Poly(Oxyethylene) (Polyox) Polymer: Studies of Flow Properties and Release Rates of Furosemide and Captopril from controlled-Release hard Gelatin Capsules”, Pharmaceutical Development and Technology, 5 (3), pp. 339-346, 2000.
El-Egakey, Adel et al, “Hot extruded dosage forms Part I Technology and dissolution kinetics of polymeric matrices” Pharmacerutica Acta Helvetiae, vol. 46, pp. 31-53, Mar. 19, 1970.
Bauer et al. Lehrbuch der Pharmazeutischen Technologie. Sixth Edition 1999. Stuttgart, pp. IX-XV, Table of contents. (Full English translation attached).
Wade and Weller, “Handbook of Pharmaceutical Excipients: 2nd Edition”, The American Pharmaceutical Association and The Pharmaceutical Press, Washington and London, Table of Contents pp. v-vi, 1994.
Cawello, “Parameters for Compartment-free Pharmacokinetics—Standardization of Study Design, Data Analysis and Reporting” 1999, pp. XI-XIII (table of contents).
Deighan, C.J. et al., Rhabdomyolysis and acute renal failure resulting from alcohol and drug abuse, Q.J. Med, vol. 93, 2000, pp. 29-33.
Search result conducted on http://www.unitconversion.org/force/newtons-to-kiloponds-convresion.html, on Jul. 5, 2011 (Conversion of 18.8 kiloponds to newtons).
Coppens et al., “Hypromellose, Ethylcellulose, and Polyethylene Oxide Use in Hot Melt Extrusion”; Pharmaceutical Technology, 62-70, Jan. 2005.
Costa et al. “Modeling and comparison of dissolution profiles”; European Journal of Pharmaceutical Sciences 13 (2001) 123-33.
Brown, The Dissolution Procedure: Development and Validation, heading “Study Design”, “Time Points” US Pharmacopoeia (USP), vol. 31(5), General Chapter 1092, pp. 1-15, 2006.
Ritschel et al. Die Tablette: Handbuch der Entwicklung, Herstellung und Qualitatssicherung. 2nd Edition, 2002, Ch 6, pp. 515-519. (Full English translation attached).
Graham N.B., Poly(Ethylene Glycol) Chemistry: Biotechnical and Biomedical Applications, p. 263-291 Chapter 17, 1992.
Hoepfner et al. Fiedler Encyclopedia of Excipients. Sixth Edition, 2007, Aulendorf, Germany; Table of Contents only.
Hong S. et al. Dissolution kinetics and physical characterization of three-layered tablet with poly(ethylene oxide) core matrix capped by Carbopol. Int .J. Pharmacol. 2008, vol. 356, pp. 121-129.
Katz N. et al. “Challenges in the development of prescription opioid abuse-deterrent formulations”, Clin. J. Pain, 23(8): 648-660 (Oct. 2007).
Kim C.-J. “Drug Release from Compressed Hydrophilic Polyox-WSR Tablets” J Pharm. Sciences 1995, 84(3): pp. 303-306.
Bauer, Kurt H., et al., Coated Pharmaceutical Dosage Forms—Fundamentals, Manufacturing Techniques, Biopharmaceutical Aspects, Test Methods and Raw Materials, 1st edition, 1998, CRC Press, Medpharm Scientific Publishers. (Preface, Table of Content, List of Abbreviations, Explanation of Terms only).
Mitchell, “Oral Dosage Forms That Should Not Be Crushed: 2000 Update” Hospital Pharmacy 35(5), 553-557, 2000.
Pharm. Research, Official Journal of the American Association of Pharmaceutical Scientists, Sep. 1989, 6(9), S-98.
Pharm. Research, Official Journal of the American Association of Pharmaceutical Scientists, Oct. 1991, 8(10), S-192.
Wagner, Pharmazeutische Biologie—Drogen und ihre Inhaltsstoffe—Scharfstoffdrogen, 2nd., revised edition, Gustav Fischer Verlag, Stuttgart—N.Y., 1982, pp. 82-92 (Full English Translation attached).
Ravin, L. Preformulation. Chapter 76, pp. 1409-1423, In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Disanto, Anthony. Bioavailability and Bioequivalency Testing. Chapter 77. In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Knevel, Adelbert. Separation. Chapter 78. pp. 1432-1442 In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Phillips, G. Briggs. Sterilization. Chapter 79. pp. 1443-1454, In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Siegel, P. Tonicity, Osmoticity, Osmolality, and Osmolarity. Chapter 80. pp. 1454-1472 In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Giles R. et al. Plastic Packaging Materials. Chapter 81. pp. 1473-1477 In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Lintner, Carl. Stability of Pharmaceutical Products. Chapter 82. pp. 1478-1486 In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Erskine, Jr., Clyde. Quality Assurance and Control. Chapter 83. pp. 1487-1491 In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Nairn, J.G., Solutions, Emulsion, Suspensions and Extractives. Chapter 84. pp. 1492-1517, In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Avis, Kenneth, Parenteral Preparations. Chapter 85. pp. 1518-1541In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Turco et al. Intravenous Admixtures. Chapter 86. pp. 1542-1552, In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Mullins, John. Ophthalmic Preparations. Chapter 87. pp. 1553-1563; In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Block, Lawrence. Medicated Applications. Chapter 88. In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Rippie, E. Powders. Chapter 89, pp. 1585-1602, In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
King et al. Oral Solid Dosage Forms. Chapter 90. pp. 163-1632 In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Porter, S. Coating of Pharmaceutical Dosage Forms. Chapter 91. pp. 1633-1643 In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Longer et al. Sustained-Release Drug Delivery Systems. Chapter 92. pp. 1611-1661 In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Sciarra et al. Aerosols. Chapter 93., pp. 1662-1677, In Remington's Pharmaceutical Sciences, 17th Ed, 1985.
Rowe C et al. Handbook of Pharmaceutical Excipients. Sixth Edition. 2009, Edition Cantor Verlag Aulendorf, pp. V-IX, Table of Contents.
Shivanand P et al., “Factors Affecting Release of KCl From Melt extruded Polyethylene Disks”, Pharmaceutical Research, Oct. 1991, vol. 8, No. 10, p. S-192.
DOW Technical Data, POLYOX WSR Solid Dosage Formulation via Melt Extrusion, Feb. 2003, pp. 1-3.
Scheirs J., et al. “Characterizing the Solid-State Thermal Oxidation of Poly (ethylene oxide) Powder”, pp. 2014-2019, Polymer, vol. 32, No. 11, 1991.
Repka, “Pharmaceutical applications of hot-melt extrusion,” MA, Drug Dev Ind Pharm. Oct. 2007; 33(10):1043. (Abstract).
Varma et al, Factors Affecting Mechanism and Kinetics of Drug Release from Matrix-Based Oral Controlled Drug Delivery Systems, Am. J. Drug Deliv. 2004: 2 (1): 43-57.
Tablet, www.docstoc.com (2011).
Griffith, et al. “Tablet Crushing and the Law: The Implications for Nursing” Professional Nurse 19(1), pp. 41-42, 2003.
Thoma V.K. et al. “Bestimmung der In-vitro-Freigabe von schwach basischen Wirkstoffen aus Ratardarzneiformen”, pp. 299-301, Pharm. Ind. 51, Nr. 3, 1989.
Goodman and Gilman, 1985, 7th edition, chapter 22, 491-530.
Goodman and Gilman, 1985, 7th edition, chapter 23, 533-579.
Waltimo, et al, “Maximal bite force and its association with signs and symptoms of craniomandibular disorders in young Finnish non-patients”, Acta Odontol Scand 53 (1995): 254-258.
Waterman et al., “Stabilization of Pharmaceuticals to Oxidative Degradation”, Pharmaceutical Development and Technology, vol. 7(1), pp. 1-32, (2002).
Yang, et al; “Characterization of Compressibility and Compactibility of Poly(ethylene oxide) Polymers for Modified Release Application by Compaction Simulator”; Journal of Pharmaceutical Sciences, vol. 85, No. 10, pp. 1085-1090, Oct. 1996.
Andre et al., “O-Demethylation of Opiod Derivatives With Methane Sulfonic Acid/Methoinine: Application to the Synthesis of Naloxone and Analogues” Synthetic Comm. 22(16), pp. 2313-2327, 1992.
Arnold C., “Teen Abuse of Painkiller OxyContin on the Rise,” www.npr.org, Dec. 19, 2005.
Augustine, R.L., Catalytic Hydrogenation of a, B-Unsaturated Ketones. III The Effect of Quantity and Type of Catalysts,' J.Org Chem. 28(1), pp. 152-155, Abstract 1963.
Bailey, F.E., et al., “Some properties of poly(ethylene oxide)' in aqueous solution,” Journal of Applied Polymer Science, vol. 1, Issue No. 1, pp. 56-62, 1959.
Baum et al., “The impact of the addition of naloxone on the use and abuse of pentazocine”, Public Health Reports, Jul.-Aug. 1987, vol. 102, No. 4, p. 426-429.
Braun, et al. A study of Bite Force. Part 2: Relationship to Various cephalometric Measurements. Angel Orthodontist, vol. 65 (5) pp. 373-377, 1995.
Caraballo, Journal of Controlled Release, vol. 69, pp. 345-355, 2000.
Committee for Proprietary Medicinal Products. Note for Guidance on the Investigation of Bioavailability and Bioequivalence. 2001. pp. 1-18.
Cornish, P. “Avoid the Crush”: hazards of medication administration in patients with dysphagia or a feeding tube, CMA Media Inc., CMAJ. 172(7), pp. 871-872, 2005.
Crowley M.M. et al., “Stability of polyethylene oxide in matrix tablets prepared by hot-melt extrusion,” Biomaterials 23, 2002, pp. 4241-4248.
Crowley MM, Drug Dev Ind Pharm. Sep. 2007; 33(9):909-26. (Abstract only).
Dachille et al., “High-pressure Phase Transformations in Laboratory Mechanical Mixers and Mortars”, Nature, vol. 186, Apr. 2, 1960, pp. 34 and 71.
Dachille, F. et al., “High-Pressure Phase Transformation in Laboratory Mechanical Mixers and Mortars”, 1960., Nature, vol. 186, pp. 1-2 (abstract).
Davies, et al; European Journal of Pharmaceutics and Biopharmaceutics, 67, 2007, pp. 268-276.
Dean, D.A., E.R. Evans, I.H. Hall, Pharmaceutical Packaging Technology, Taylor & Francis, 1st Edition, Nov. 30, 2000 (Publisher description dated Oct. 22, 2010).
Dejong (Pharmaceutisch Weekblad Scientific Edition) 1987, p. 24-28.
Dexheimer, Terahertz Spectroscopy: Principles and Applications (Optical Science and Engineering Series), CRC; 1 edition 2007. (Table of content only).
Dow Chemical Company, “Using Dow Excipients for Controlled Release of Drugs in Hydrophilic Matrix Systems”, Sep. 2006, pp. 1-36.
Dow Excipients Chem. Of Poly. Water Soluble-Resin 2004, pp. 1-2.
El-Sherbiny I.M. et al “Preparation, characterization, swelling and in vitro drug release behaviour of poly[N-acryloylglycine-chitosan] interplymeric pH and thermally-resposive hydrogels”, European Polymer Journal, vol. 41, pp. 2584-2591, 2005.
Encyclopedia of Pharmaceutical Technology, Third Edition, vol. 1, edited by James Swarbrick PharmaceuTech, Inc., Pinehurst, North Carolina, USA (Table of Contents only), Oct. 25, 2006.
Encyclopedia of Pharmaceutical Technology, Third Edition, vol. 2, edited by James Swarbrick PharmaceuTech, Inc., Pinehurst, North Carolina, USA (Table of Contents only), Oct. 25, 2006.
Encyclopedia of Pharmaceutical Technology, Third Edition, vol. 3 edited by James Swarbrick PharmaceuTech, Inc., Pinehurst, North Carolina, USA (Table of Contents only), Oct. 25, 2006.
Encyclopedia of Pharmaceutical Technology, Third Edition, vol. 4, edited by James Swarbrick PharmaceuTech, Inc., Pinehurst, North Carolina, USA (Table of Contents only), Oct. 25, 2006.
Encyclopedia of Pharmaceutical Technology, Third Edition, vol. 5, edited by James Swarbrick PharmaceuTech, Inc., Pinehurst, North Carolina, USA (Table of Contents only), Oct. 25, 2006.
Encyclopedia of Pharmaceutical Technology, Third Edition, vol. 6, edited by James Swarbrick PharmaceuTech, Inc., Pinehurst, North Carolina, USA (Table of Contents only), Oct. 25, 2006.
European Pharmacopoeia 2.9.40 “Uniformity of Dosage Units”, 2006, pp. 3370-3373.
European Pharmacopoeia 5.0, 2.9.8 “Resistance to Crushing of Tablets”, 2005, p. 235.
European Pharmacopoeia, Third Edition Supplement 2000, Council of Europe, Strasbourg, 2000, pp. 85-107.
European Pharmacopoeia, Third Edition, Council of Europe, Strasbourg, 1997, pp. 127-152.
Evonik Industries, Eudragit Application Guidelines, 10th Edition, 2008, (Table of Contents only).
Fell J.T., et al., “Determinination of Tablet Strength by the Diametral-Compression Test” Journal of Pharmaceutical Sciences, vol. 59, No. 5, May 1970, pp. 688-691.
Follonier N. et al., “Evaluation of hot-melt extrusion as a new technique for the production of polymer-based pellets for sustained release capsules containing high loadings of freely soluble drugs,” Drug Development and Industrial Pharmacy, 20(8), pp. 1323-1339, 1994.
Follonier, N. et al., “Various ways of modulating the release of dltiazem hydrochloride from hot-melt extruded sustained release pellets prepared using polymeric materials” Journal of Controlled Release 36, pp. 243-250, 1995.
Freed et al., “pH Control of Nucleophilic/electrophilic oxidation”, International Journal of Pharmaceutics, vol. 357, pp. 180-188 (2008).
Goodman and Gilman, “The Pharmacological Basis of Therapeutics, Seventh Edition”, MacMillan Publishing Company, Table of Contents. 1985.
Griffin W, “Classification of Surface-Active Agents By HLB” Journal of the Society of Cosmetic Chemists, Atlas Powder Company, 1949, pp. 311-326.
Guidance for Industry—Bioavailability and Bioequivalence—Studies for Orally Administered Drug Products—General Considerations, FDA, BP, Announced in the Federal Register: vol. 68, No. 53/Mar. 19, 2003.
Guidance for Industry—Statistical Approaches to Establishing Bioequivalence, FDA, BP, Jan. 2001.
Hanning C.D.et al. “The Morphone Hydrogel Suppository. A New Sustained release Rectal Preparation”, British Journal of Anaesthesia, 61, pp. 221-227, 1988.
Inert gas—Wikipedia, Dec. 2009, pp. 1-3.
James, A. “The legal and clinical implications of crushing tablet medication”, Nurse Times 100(50), 28-33, 2004.
Janicki S. et al. “Slow-Release Microballs: Method of Preparation”, Acta Pharm. Technol. 33(3) 154-155, 1987.
Jannetto, P. et al, “Oxycodone: Recognition and Pharmacogenomics,” Toxicology News, Mar. 2003, 1-7.
Kalant H. et al., Death in Amphetamine Users: Caues and Rates, CMA Journal, vol. 112 (Feb. 8, 1975): 299-304.
Kim N et al. “Preparation and Evaluation of Eudragit Gels. V. Rectal Gel Preparations for Sustained Release and Avoidance of First-Pass Metabolism of Lidocaine”, Chem. Pharm Bull. 1992, 40(10), 2800-2804.
King, R, “Tablets, Capsules, and Pills” Remington's Pharmaceutical Sciences, pp. 1553-1593, Ch. 89, 1980, 16th Edition.
Lee, Y.- S. et al., Principles of Terahertz Science and Technology (Lecture Notes in Physics), Springer; 1 edition 2008. (Table of Contents Only).
Levina et al., “The Effect of Ultrasonic Vibration on the Compaction Characteristics of Ibuprofen” Drug Development and Industrial Pharmacy, vol. 28, No. 5, pp. 495-514, 2002.
Levina M. et al “The Effect of Ultrasonic Vibration on the Compaction Characteristics of Paracetamol”, Journal of Pharmaceutical Sciences, vol. 89, No. 6, pp. 705-723, Jun. 2000.
Lieberman, Herbert A., Pharmaceutical Dosage Forms, Tablets, Second Edition, Revised and Expanded, 1990. vol. 2 (Cover and Table of Content only).
Liu J. et al., “Properties of Lipophilic Matrix Tables Containing Phenylpropanolamine Hydrochloride Prepared by Hot-Melt Extrusion”, EJPB, 52 (2001), pp. 181-190.
Lockhart H. et al, “Packaging of Pharmaceuticals and Health Care Products”; Blackie Academic & Professional; First Edition 1996. (Table of contents only).
Madorsky S.L. “Thermal degradation of Polyethylene Oxide and Polypropylene Oxide”, Journal of Polymer Science, pp. 183-194 vol. 36, No. 3, Mar. 1959.
Maggi et al., “Dissolution behavior of hydrophilic matrix tablets containing two different polyethylene oxides (PEOs) for the controlled release of a water-soluble drug. Dimensionality study” Biomaterials, 2002, 23, 1113-1119.
Maggi L.et al, “High molecular weight polyethylene oxides (PEOs) as an alternative to HPMC in controlled release dosage form”, 2000, International Journal of Pharmaceutics, 195 pp. 229-238.
Maggi, C.. Therapeutic Potential of Capsaicin-like Molecules. Life Sciences, vol. 51, pp. 1777-1781, 1992.
Mank R. et al., “Darstellung wirkstoffhaltiger Extrusionsformlinge auf der Basis von Thermoplasten. Teil 1: Untersuchung zur Wirkstoffliberation” Pharmazie 44, H. 11, pp. 773-776, 1989. English language translation of relevant paragraph provided.
Mank R., “Darstellung wirkstoffhaltiger Extrusionsformlinge auf der Basis von Thermoplasten. Teil 2: Unersuchungen zur Optimierung der Wirkstofffreigabe” Pharmazie 45, H. 8, pp. 592-593 1990. English language translation of relevant paragraph provided.
Matos, Dr. Rick, Ph.D—Letter Jan. 6, 2011.
McGary, C.W.. JR. “Degradation of Poly(ethylene Oxide)”, Journal of Polymer Science vol. XLVI, 1960, pp. 51-57.
McGinity et al., Hot-Melt Extrusion as a Pharmaceutical Process, American Pharmaceutical Review, vol. 4 (2), pp. 25-36, 2001.
McGinity, J.W.—Letter of Jan. 26, 2009, pp. 1-4.
McNeill M. et al. Properties controlling the diffusion and release of water-soluble solutes from poly(ethylene oxide) hydrogels. 4. Extended constant rate release from partly-coated spheres. Journal Biomat. Sci. Polymer. Ed. 1996, vol. 7, pp. 953-963.
Mesiha M.S. et al “A Screening Study of Lubricants in Wet Powder Passes Suitable for extrusio-spheronization”, Drug Development and Industrial Pharmacy, 19(8), pp. 943-959, 1993.
Miles, R.E. et al., Terahertz Frequency Detection and Identification of Materials and Objects (NATO Science for Peace and Security Series B: Physics and Biophysics), Springer; 1 edition 2007. (Table of contents).
Miller “To crush or not to crush? What to consider before giving medications to a patent with a tube or who has trouble swallowing”, Nursing, pp. 50-52, Feb. 2000.
Moroni A. et al, “Application of Poly(Oxyethylene) Homopolymers in Sustained release Solid formulations” Drug Development and Industrial Pharmacy, 21(12) pp. 1411-1428, 1995.
Munjal M. et al., “Polymeric Systems for Amorphous Delta^—Tetrahydrocannabinol Produced by a Hot-Melt Method. Part II: Effect of Oxidation Mechanisms and Chemical Interactions on Stability” Journal of Pharmaceutical Sciences vol. 95 No. 11, Wiley InterScience, 2006, pp. 2473-2485.
Munsell Color Company, “The Munsell Book of Color: Glossy Collection”, X-Rite, Originally published in 1966, pp. 1-7.
Note for Guidance on Stability Testing, EMEA, Aug. 2003, pp. 1-20.
Note for Guidance on the Investigation of Bioavailability and Bioequivalence, EMEA, London, Jul. 26, 2001 (CPMP/EWP/QWP/1401/98).
Ohnishi N. et al., Effect of the Molecular Weight of Polyethylene Glycol on the Bioavailability of Indomethacin Sustained-Release suppoositories Prepared with Solid Dispersion, Chem. Pharm. Bull, 35(8), pp. 3511-3515, 1987.
Ozeki T. et al. “Control of Medicine Release From Solid Dispersion Through Poly(ethylene oxide)-Carboxyvinylpolymer Interaction”, International Journal of Pharmaceutics, 165, 1998, pp. 239-244.
Ozeki T. et al. “Controlled Release From Solid Dispersion Composed of Poly(ethylene oxide)-Carbopol Interpolymer Complex With Various Cross-Linking Degrees of Carbopol”, Journal of Controlled Release. 63, 2000. pp. 287-295.
Ozeki T. et al., “Control of medicine release from solid dispersion composed of the poly(ethylene oxide)-carboxyviylpolymer interpolymer complex by varying molecular wight of poly(ethylene oxide)” Journal of Controlled Release 58, pp. 87-95, 1999.
Pillay V. et al. A novel approach for constant rate delivery of highly soluble bioactives from a simple monolithic system. Journal of Controlled Release. 2000, vol. 67, pp. 67-78.
Pinto, Joao F. et al., “Evaluation of the Potential Use of Poly(ethylene oxide) as Tablet- and Extrudate-Forming Material,” AAPS PharmSci, 2004; 6 (2), Article 15, pp. 1-10, (http://www.aapspharmsci.org).
Piringer, O.G.and A.L. Baner, Plastic Packaging: Interactions with Food and Pharmaceuticals, Wiley VCH, 2nd Completely Revised Edition, Feb. 13, 2008. (Table of Contents only).
Prapaitrakul W. et al., “Release of Chlorpheniramine Maleate from Fatty Acid Ester Matrix disks Prepared by Melt-extrusion” J. Pharm. Pharmacol. 43, pp. 377-381, 1991.
Proeschel, P.A. et al., “Task-dependence of activity / bite-force Relations and its impact on estimation of chewing force from EMG”; J. Dent. Res., vol. 81, No. 7, pp. 464-468, 2002.
Purdue News, “Purdue Pharma Provides Update on Development of New Abuse-Resistant Pain Medications; FDA Cites Patient Needs As First Priority; New Drug Application Delayed,” www.headaches.about.com, Jun. 18, 2002, pp. 1-6.
Radko S.et al., Applied ad Theoretical Electrophoresis 5, pp. 79-88, 1995.
Repka M. et al., Bioadhesive Properties of Hydroxypropylcellulose Topical Films Produced by Hot-Melt Extrusion, Journal of Controlled Release, 70 (2001), pp. 341-351.
Riippi M. et al., The effect of compression force on surface structure, crushing strength, friability and disintegration time of erythromycin acistrate tablets, Eur J Pharm Biopharm, vol. 46, 1998, pp. 339-345.
Rippie E.G. et al, “Regulation of Dissolution Rate by Pellet Geometry” Journal of Pharmaceutical Sciences, Vo. 58, No. 4, pp. 428-431, Apr. 1969.
Rowe C et al., Handbook of Pharmaceutical Excipients, 7th Edition, 2012, Table of Contents.
Sax et al., Hawley's Condensed Chemical Dictionary, 11th ed., 1987, p. 1233, definition of “wax”.
Schier et al. “Fatality from Administration of Labetalol and Crushed Extended-Release Nifedipine” The Annals of Pharmacotherapy vol. 37, 1420-1423, Oct. 2003.
Schroeder J., et al. Granulierung hydrophober Wirkstoffe im Planetwalzenextruder, Pharm. Ind. 2003, vol. 65, No. 4, 367-372. (Full English translation attached).
Sprockel O.L et al. “Permeability of Cellulose Polymers: Water Vapour Transmission Rates”., J. Pharma. Pharmacol. 42, pp. 152-157, 1990.
Stafford J., überzogene feste Formen, 1991, 347-68. (English translation attached).
Strang, Abuse of buprenorphie (Temgesic) by snorting, Letter to the editor, British Med. J., 302: 969 (1991).
Stringer J. L., et al “Diffusion of small molecular weight drugs in radiation-crosslinked poly(ethyleneoxide) hydrogels”, Journal of Controlled Release 42, pp. 195-202, 1996.
Summers et al; “Influence of Crystal Form on Tensile Strength of Compacts of Pharmaceutical Materials” Journal of Pharmaceutical Sciences, vol. 66, No. 8, Aug. 1977, pp. 1172-1175.
Third Party Observations filed with EPO for Patent EP658055B1, Feb. 2, 2009, pp. 1-8.
Tipler, et al, Physics for Scientists and Engineers, vol. I, 6th Edition, pp. 234-235, 2003.
Tompkins et al., “Human abuse liability assessment of oxycodone combined with ultra-low-dose natrexone,” Psychopharma., 210: 471-480 (2010).
US Pharmacopoeia, Chapter 1217, Aug. 12, 2008.
Waltimo, et al, “A novel bite force recorder and maximal isometric bite force values for healthy young adults”, Scandinavian Journal of Dental Research 1993; 101: 171-175.
Waters et al., “Intravenous Quetiapine-Cocaine Use (“Q-Ball”)”, Letter to the Editor, Am. J. Psychiatry, 164(1): pp. 173-174 (2007).
Weiss, U., “Derivatives of Morphine. | 14-Dihydroxydihydromorphinone,” J. Am. Chem. Soc. 77, pp. 5891-5892, Nov. 20, 1955.
Woodburn, K.R. et al., Vascular complications of injecting drug misuse, Br. J. of Surgery, vol. 83, 1996, pp. 1329-1334.
Wu N, et al. Mathematical modeling and in vitro study of controlled drug release via a highly swellable and dissoluble polymer matrix: polyethylene oxide with high molecular weights, J Control Release. Feb. 16, 2005;102(3):569-581.
Yang et al., “Zero-Order Release Kinetics from a Self-Correcting Floatable Asymmetric Configuration Drug Delivery System”, Journal of Pharmaceutical Sciences, vol. 85, No. 2, Feb. 1996, pp. 170-173.
Yarbrough et al, Letters to Nature “Extraordinary effects of mortar-and -pestle grinding on microstructure of sintered alumina gel”, Nature 322, pp. 347-349 (Abstract only) (Jul. 24, 1986).
Yeh et al., Stability of Morphine in Aqueous Solution III: Kinetics of Morphine Degradation in Aqueous Solution, Wiley Subscription Services, Inc., Journal of Pharmaceutical Sciences, 50(1): 35-42 (1961).
Zhang et al., “Properties of Sustained-Release Tablets Prepared by Hot-Melt Extrusion” Pharmaceutical Development and Technology, 1999, 4(2), 241-250.
John J. Mariani, MD et al. ; “Treatment Strategies for Co-Occurring Adhd and Substance Use Disorders”; NIH Public Access, Author Manuscript; Am. J. Addict, 2007; 16 (Suppl 1): 45-56.
Decision of the United States District Court for the Southern District of New York, in In re Endo Pharmaceuticals Inc. and Grünenthal GmbH v. Amneal Pharmaceuticals, LLC et al., Findings of Fact and Conclusions of Law, District Judge Thomas P. Griesa, New York, New York, Jan. 14, 2015.
Decision of the United States District Court for the Southern District of New York, in In re Oxycontin Antitrust Litigation, Purdue Pharma LP v. Teva Pharmaceuticals, Findings of Fact and Conclusions of Law, District Judge Sidney H. Stein, New York, New York, Jan. 14, 2014.
U.S. Court of Appeals, Federal Circuit, Purdue Pharma L.P. v. Epic Pharma, LLC, 117 USPQ2d 1733 (Fed. Cir. 2016).
Al-Angari, A. et al. “The compaction properties of polyethylene glycols,” J Pharm. Pharmacol. (1985) 37:151-153.
Al-Nasassrah et al. , “The effect of an increase in chain length on the mechanical properties of polyethylene glycols,” European Journal of Pharmaceutics and Biopharmaceutics 46 (1998) 31-38.
Anderson, S.L. et al., “A Model for Antiplasticization in Polystyrene,” Macromolecules 28:2944-54 (1995).
Back, D.M.et al., “Ethylene Oxide Polymers”, in Kirk-Othmer Encyclopedia of Chemical Technology. 2000, John Wiley & Sons, Inc., vol. 10, 673-696.
Bailey, F.E., et al., “High Molecular Weight Polymers of Ethylene Oxide” Solution Properties Industrial and Engineering Chemistry, 1958. 50(1): 8-11.
Balogh, E., “Tastes In and Tastes Of Paprika,” in Taste: Proceedings of the Oxford Symposium on Food and Cookery 28 (Tom Jaine Ed.) 1988, pp. 25-40.
Baumann, T., “Pain Management,” Pharmacotherapy: A Pathophysiologic Approach (J.T. DiPiro et al. eds., McGraw-Hill 4th ed. 1999), Ch. 56, 1014-1026.
Baumrucker, S.J., “OxyContin, the Media, and Law Enforcement”, American Journal of Hospice & Palliative Care, 18:3 (May/Jun. 2001), 154-156.
Choi, S., et al., “Development of a Directly Compressible Poly(Ethylene Oxide) Matrix for the Sustained-Release of Dihydrocodeine Bitartrate”, Drug Development and Industrial Pharmacy, vol. 29, No. 10, pp. 1045-1052, 2003.
Choi, S., et al., “Hydrophilic Matrix Formulations of Dihydrocodeine Bitartrate with Polyethylene Oxide by Direct Compression,” Proceedings of the 29th Annual Meeting of the Controlled Release Society, in collaboration with the Korea Society for Biomaterials, Minneapolis, 1st Edition, 2002, 984-985.
Ciccone, P. E., “Attempted Abuse of Concerta,” Letters to the Editor, J. Am. Acad. Child Adolesc. Psychiatry, 41:7 (Jul. 2002).
Controversies in ADHD: A Breakfast Symposium—Concerta.
Crowley, M. et al., Pharmaceutical Applications of Hot-Melt Extrusion: Part I. Drug Dev. & Indus. Pharmacy (2007) 33:909-926.
Crowley, M. et al., “Properties of Hot-Melt Extruded CPM Tablets Using Hydrophilic Polymers,” poster presentation, (2000).
Crowley, M., “Physicochemical and Mechanical Characterization of Hot-Melt Extruded Dosage Forms.” Dissertation presented to the Faculty of the Graduate School of The University of Texas at Austin. (May 2003).
Crowley, M., et al., “Evaluation of a Hot Melt Extrusion Technique using a Hydrophilic Thermal Polymer and Retardant for the Preparation of Extended Release Chlorpheniramine Maleate Tablets,” in American Association of Pharmaceutical Scientists: Indianapolis, IN (2000).
CROWLEY0000001—CROWLEY0000127 (2015).
Davies, N. “Sustained Release and Enteric Coated NSAIDs: Are They Really GI Safe?” J. Pharm. & Pharmaceut. Sci., 2(1):5-14, 1999.
Declaration of Dr. James W. McGinity, dated Oct. 28, 2009; online, retrieved from: http://www.accessdata.fda.gov/dmgsatfda_docs/labeV2013/021121s032lbl.pdf.
Dimitrov, M, et al., “Study of Verapamil hydrochloride release from compressed hydrophilic Polyox-Wsr tablets.” Int'l J Pharmaceutics (1999) 189:105-111.
Dittmer, D.K., et al., “Glue-Sniffing Neuropathies,” Canadian Family Physician 39:1965-1971 (1993).
Donnelly, C.L., “ADHD Medications: Past and Future,” Behavioral Health Management, May/Jun. 2002, 28 & 30.
Dow, “Material Safety Data Sheet: POLYOX(TM) WSR 30” (effective date: Sep. 18, 2001).
Dow, “POLYOX Water-Soluble Resins: Degradation of Water-Soluble Resins,” Technical Data (Oct. 2002).
Drug Bank “Oxymorphone,” 2015; online, available at: www.dmgbank.ca/chugs/db01192 printed Jul. 1, 2015.
Endo Pharmaceuticals Inc. v. Teva Pharmaceuticals USA, Inc. (S.D.N.Y 2015)—Redacted Version.
FDA News Release, “FDA approves abuse-deterrent labeling for reformulated OxyContin,” Apr. 16, 2013, available at http://www.fda.gov/NewsEvents/Newsroom/Press.Announcements/ucm348252.htm.
FDA, “Notice of Determination that OxyContin Drug Products Covered by NDA 20-553 Were Withdrawn From Sale for Reasons of Safety or Effectiveness.” Federal Register, vol. 78, No. 75, Apr. 18, 2013, 23273-23274.
Final Draft Labeling for Concerta Extended-Release Tablets Attachment to Approval Letter (2000); available at: http://www.accessdata.fda.gov/drugsatfda_docs/label/2000/211211bl.pdf.
Greenhill, L.L., et al., “Practice Parameter for the Use of Stimulant Medications in the Treatment of Children, Adolescents, and Adults,” J. Am. Acad. Child Adolesc. Psychiatry, 41:2 Supplement, 26S-49S (Feb. 2002).
Griffith, D., “Potential new ADHD drug creating lots of big hopes,” Sacramento Bee (California), Oct. 30, 2002.
Huang, H. et al., “Preparation of Controlled Release Oral Dosage Forms by Low Temperature Melt Extrusion,” AAPS PharmSci. 2000 2(S1).
Jaffe, S.L., “Failed Attempts At Intranasal Abuse of Concerta,” Letters to the Editor, J. Am. Acad. Child Adolesc. Psychiatry, 41:1 (Jan. 2002).
Jannsen Pharmaceuticals, Inc. Concerta Labeling Revisioins, Dec. 12, 2013; online, retrieved from: http://www.accessdata.fda.gov/dmgsatfda_docs/labeV2013/021121s032lbl.pdf.
Joint Claim Construction and Prehearing Statement, dated Jul. 11, 2014. Janssen Pharmaceuticals, Inc. and Grünenthal GMBH v. Actavis Elizabeth LLC and Alkem Laboratories Limited, Civil Action No. 2:13-cv-04507 CCC-MF (D.N.J.), Janssen Pharmaceuticals, Inc. and Grünenthal GMBH v. Roxane Laboratories, Inc., Civil Action No. 2:13-cv-06929 CCC-MF (D.N.J.), and Janssen Pharmaceuticals, Inc. and Grünenthal GMBH v. Alkem Laboratories Limited, Civil Action No. 2:13-cv-07803 CCC-MF (D.N.J.).
Kibbe, Coloring Agents, in Handbook of Pharmaceutical Excipients (3d ed. (2000).
Kidokoro, M. et al. , “Properties of Tablets Containing Granulations of Ibuprofen and Acrylic Copolymers Prepared by Thermal Processes,” Pharm Dev. and Tech. , 6:263-275 (2001).
Kinjo, N. et al, “Antiplasticization in the Slightly Plasticized Poly(vinyl chloride),” Polymer Journal 4(2):143-153 (1973).
Larhib, H. et al., “Compressing polyethyelene glycols: the effect of compression pressure and speed,” Int 'l J Pharmaceutics (1997) 147: 199-205.
Lieberman, H., et al., Pharmaceutical Dosage Forms: Tablets, vol. 2, Ch. 5: Granulation Technology and Tablet Characterization (1990), Table of contents and 245-348.
Lyons et al., “Twitch Interpolation in the Assessment of the Maximum Force-Generating Capacity of the Jaw-Closing Muscles in Man,” Arch. Oral. Biol. 41:12, 1161-1168 (1996).
Makki, A, et. Al., Eds., A Dictionary of American Idioms, 4th Ed. Barron's, New York (2004), 342-343.
Markovitz, H., et al. “Calculations Of Entanglement Coupling Spacings In Linear Polymers.” Journal of Physical Chemistry, 1962. 66(8): 1567-1568.
McCrum, N., et al., Principles of Polymer Engineering. 2nd ed., New York: Oxford University Press. 447(1997), Chapter 7, 296-351.
McGinity, J.W. et al., “Melt-Extruded Controlled-Release Dosage Forms” in Pharmaceutical Extrusion Technology, Ghebre-Sellassie, I. and Martin, C., Eds., Marcel Dekker, Inc., New York, 2003, Chapter 10, 183-208.
McQuay, H. et a. “Methods of Therapeutic Trials,” Textbook of Pain 1125-1138 (P.D. Wall & R. Melzack eds., Elsevier 4th ed. 1999), Table of Contents and 1125-1138.
Miura et al., “Comparison of Maximum Bite Force and Dentate Status Between Healthy and Frail Elderly Persons,” J. Oral Rehabilitation, vol. 28 (2001), pp. 592-595.
Miyagawa, Y. et al., “Controlled-release of diclofenac sodium from wax matrix granulate,” Int'l J. Pharmaceutics (1996) 138:215-224.
National Drug Intelligence Center Information Bulletin “OxyContin Diversion and Abuse” Jan. 2001.
Payne, H. et al., Denatonium Benzoate as a Bitter Aversive Additive in Ethylene Glycol and Methanol-Based Automotive Products, SAE Technical Paper 930589, Abstract (1993).
Pilpel, N., et al. “The effect of temperature on the tensile strength and disintegration of paracetamol and oxytetracylcine tablets,” J Pharm Pharmac., 29:389-392 (1977).
Polyox Water-Soluble Resins NF in Pharmaceutical Applications, Dow Chemical Company, Aug. 2002.
Purdue Pharma LP Material Safety Data Sheet, OxyContin Tablets, 10 mg, 15 mg, 20 mg, 30 mg, 40 mg, 60 mg, Version 16—Sep. 10; available at www.purduephruma.com/msdss/oxycontin_msds.pdf.
Rauwendaal, Chris, PHD, Responsive Expert Report of Chris Rauwendaal, Ph.D. Regarding Expert Report of Michael M. Crowley, Ph.D., dated Jul. 17, 2015.
Repka, M. et al. Pharmaceutical Applications of Hot-Melt Extrusion: Part II. Drug Dev. & Indus. Pharmacy (2007) 33:1043-1057.
Saravanan, M. et al., “The Effect of Tablet Formulation and Hardness on in Vitro Release of Cephalexin from Eudragit L100 Based Extended Release Tablets,” Biol. Pharm. Bull. (2002) 25(4):541-545.
Seitz, J.A.; et al., “Evaluation of the Physical Properties of Compressed Tablets 1: Tablet Hardness and Friability,” J. of Pharm. Sci., 54:1353-1357 (1965).
Shah, et al., “Some Effects of Humidity and Heat on the Tableting Properties of Microcrystalline Cellulose Formulations 1,” J. of Pharm. Sci., 57:181-182 (1967).
Singhal, et al., Handbook of Indices of Food Quality and Authenticity (1997), “Capsicum” p. 398-299.
Smith, K.L. et al. “High Molecular Weight Polymers of Ethylene Oxide—Plastic Properties.” Industrial and Engineering Chemistry, 1958. 50(1): 12-16.
Tapentadol Pre-Review Report, Expert Committee on Drug Dependency Thirty-Fifth Meeting Hammamet, Tunisia, Jun. 4-8, 2012, available at http ://www.who.int/medicines/areas/quality_safety/5.2Tapentadolpre-review.pdf.
Tiwari, D., et al., “Evaluation of polyoxyethylene homopolymers for buccal bioadhesive drug delivery device formulations.” AAPS Pharmsci, 1999. 1(3): Article 13.
Wilkins, J.N., “Pharmacotherapy of Schizophrenia Patients with Comorbid Substance Abuse,” Schizophrenia Bulletin, 23:215-228 (1997).
World Health Org., Cancer Pain Relief With a Guide to Opioid Availability (2d ed. 1996).
Yin, T.P., et al., “Viscoelastic Properties Of Polyethylene Oxide In Rubber-Like State.” Journal of Physical Chemistry, 1961. 65(3): 534-538.
Zacny, J. et al. Drug & Alcohol Dependence (2003) 69:215-232.
Zhang, F., “Hot-Melt Extrusion as a Novel Technology to Prepare Sustained-Release Dosage Forms,” Dissertation University of Texas at Austin, Dec. 1999.
Related Publications (1)
Number Date Country
20200397704 A1 Dec 2020 US
Continuations (7)
Number Date Country
Parent 16542808 Aug 2019 US
Child 17010106 US
Parent 15878524 Jan 2018 US
Child 16542808 US
Parent 15255534 Sep 2016 US
Child 15878524 US
Parent 15059730 Mar 2016 US
Child 15255534 US
Parent 14795900 Jul 2015 US
Child 15059730 US
Parent 13897746 May 2013 US
Child 14795900 US
Parent 10890763 Jul 2004 US
Child 13897746 US