Oral aqueous suspension preparations containing carbamate compounds

JP2024519421A5Pending Publication Date: 2025-05-26SK BIOPHARMACEUTICALS CO LTD
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Patent Information

Application Number
JP2023573111
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-05-28
Filing Date
2022-05-27
Publication Date
2025-05-26

AI Technical Summary

Technical Problem

There is a need for suitable oral liquid formulations of carbamate compounds, particularly for children and the elderly, as solid dosage forms like tablets and capsules are challenging for patients with swallowing difficulties, and liquid formulations face issues with solubility, stability, and palatability, necessitating specific combinations of sweeteners, flavoring agents, and preservatives to enhance patient compliance.

Method used

Aqueous suspension formulations containing carbamate compounds, utilizing a combination of poloxamer, smectite clay, and an aqueous carrier, with controlled solubility and stability, and incorporating suitable sweeteners, flavoring agents, and preservatives to mask bitterness and ensure optimal pH for preservative effectiveness.

Benefits of technology

The formulations achieve excellent physical and chemical stability, uniform dispersion of active compounds, and improved patient compliance by addressing solubility, stability, and taste issues, ensuring effective treatment for central nervous system diseases.

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Abstract

The present disclosure relates to an aqueous formulation in the form of a suspension formulation comprising a carbamate compound of formula (1) as an active ingredient, or a pharma-ceutically acceptable salt, solvate or hydrate thereof, a poloxamer, and an aqueous carrier.
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Description

[Technical field]

[0001] The present disclosure relates generally to pharmaceutical compositions and methods of use thereof, and more particularly to a compound of formula (1): [ka] (wherein R1, R2, A1 and A2 are as defined herein), or a pharma- ceutically acceptable salt, solvate or hydrate thereof; and a poloxamer. [Background technology]

[0002] Patent documents 1, 2 and 3 describe a carbamate compound of formula (1) and a method for producing the same, and the disclosures of these patent documents are incorporated herein by reference. In a specific embodiment, the carbamate compound of formula (1) is represented by the following formula (2): [ka] The compound is carbamic acid (R)-1-(2-chlorophenyl)-2-tetrazol-2-yl-ethyl ester having the chemical structure shown below.

[0003] The carbamate compounds of formula (1) are known to be effective anticonvulsants for use in central nervous system disorders.

[0004] The formulations containing the compounds are suitable for repeated administration over a long period of treatment to ensure uniform concentration of the active ingredient in blood.However, solid oral dosage forms such as capsules and tablets are usually intended for adults who can easily swallow large tablets.Therefore, it is necessary to develop formulations that can be easily administered to patients who have difficulty swallowing capsules or tablets, such as pediatric patients and adults who have difficulty swallowing and using the GI tube. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] WO 2006 / 112685 A1 [Patent Document 2] WO 2010 / 150946 A1 [Patent Document 3] WO 2011 / 046380 A2 Summary of the Invention [Problem to be solved by the invention]

[0006] Due to the ease of manufacturing solid dosage forms, tablets and capsules are the preferred dosage forms, and currently, FDA approved cenobamate (in this disclosure, carbamate compound) products are solid dosage forms, i.e., tablets. There is an unmet need for a suitable oral liquid cenobamate formulation as an add-on treatment option, primarily for children and the elderly. Liquid dosage forms pose challenges in terms of solubility and stability in the presence of various excipients and solvents, and physical stability in the case of oral suspensions. This disclosure partially addresses the physical stability issues for oral suspensions. Liquid dosage forms also pose challenges in terms of screening suitable sweeteners and flavoring agents to make the formulation more palatable to the intended subjects. These attributes aim to increase patient compliance. To solve the issue of bitterness of the compound, a specific combination of sweeteners, flavoring agents, and bitterness masking agents needs to be selected by taste testing various combinations. Since the formulation is aqueous, an appropriate preservative is required within the range that is acceptable to children. Also, the buffer system needs to exhibit an optimal pH for preservative effect and overall formulation stability. Thus, in various embodiments, the present disclosure provides an oral aqueous suspension formulation comprising a carbamate compound of formula (1) or (2) as an active ingredient, wherein the formulation has a controlled optimal solubility that allows suspension of undissolved particles in an aqueous buffer system and excellent storage stability of the active ingredient. The possibility of crystal growth and bitter taste due to exceeding the saturation solubility are intended to be overcome by specific formulation strategies. [Means for solving the problem]

[0007] The present disclosure relates to a compound represented by the following formula (1) as an active ingredient: [ka] (wherein R1 and R2 are each independently selected from the group consisting of -H, halo, C1-C8 alkyl, halo-C1-C8 alkyl, C1-C8 thioalkoxy, and C1-C8 alkoxy; and one of A1 and A2 is CH, and the other is N), or a pharma- ceutically acceptable salt, solvate, or hydrate thereof, a poloxamer, and an aqueous carrier, wherein the aqueous formulation is in the form of a suspension formulation.

[0008] The present disclosure also provides an aqueous formulation comprising a carbamate compound of formula (1) or a pharma- ceutically acceptable salt, solvate or hydrate thereof as an active ingredient, a smectite clay, and an aqueous carrier, wherein the formulation is in the form of a suspension formulation.

[0009] The present disclosure also provides the aqueous formulations described herein for use as anticonvulsants.

[0010] In one embodiment, the aqueous formulation is used to treat central nervous system disorders such as anxiety, depression, convulsions, epilepsy, migraine, bipolar disorder, substance abuse, smoking, attention deficit hyperactivity disorder (ADHD), obesity, sleep disorders, neuropathic pain, stroke, cognitive disorders, neurodegeneration and / or muscle spasms. Effect of the Invention

[0011] The aqueous suspension according to the present disclosure has excellent physical and chemical stability during storage, and can uniformly disperse and suspend the active compound in the structured vehicle. The structured vehicle can be formulated to provide a system of aqueous buffers, surfactants, and / or one or more viscosity modifiers to control the viscosity, pH, and / or particle size of the active compound in the formulation. In some embodiments, the formulation of the present invention uses a combination of optional suitable sweeteners, bitterness masking agents, and / or flavoring agents to resolve the bitterness associated with the active compound. In some embodiments, the formulation includes a preservative that has been proven by suitable antimicrobial efficacy testing at a level up to 75% and 85% of the preferred level to have antimicrobial efficacy in the formulation.

[0012] In certain embodiments, poloxamers are included with the active compound in suspension formulations that are compatible with a wide pH range even at low concentrations. In some embodiments, smectite clays exhibit a synergistic effect on the redispersibility / suspendability of suspension formulations with cellulosic viscosity modifiers or xanthan gum. [Brief description of the drawings]

[0013] [Figure 1] FIG. 1 is an image showing the sedimentation pattern of cenobamate with various concentrations of poloxamer 188 in phosphate buffer. [Diagram 2] FIG. 2 is an image showing the sedimentation pattern of cenobamate with poloxamer 188 0.1 mg / mL in citrate buffer. [Diagram 3] FIG. 3 is a PSD histogram of Formulation I (upright configuration, after 6 months of tension under 40° C. / 75% RH storage conditions). [Figure 4] FIG. 4 is a PSD histogram of Formulation II (inverted configuration, after 6 months of tension under 40° C. / 75% RH storage conditions). [Diagram 5] FIG. 5 shows the XRD results of Formulation I at T=0. [Figure 6]FIG. 6 shows the XRD results of Formulation I (after 6 months of tension under upright positioning and 40° C. / 75% RH storage conditions). [Figure 7] FIG. 7 shows the XRD results of Formulation II at T=0. [Figure 8] FIG. 8 shows the XRD results of Formulation II (inverted configuration, T=0, overlay, after 6 months of tension under 40° C. / 75% RH storage conditions). DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0014] The present disclosure will be described in detail below.

[0015] Oral suspensions can be selected as the formulation of choice among oral liquids. Oral suspensions have the advantage that the active ingredient is particulate and is not solubilized beyond its saturation solubility using cosolvents, so there is less chance of crystal growth of the active ingredient compared to solutions. The dosage form requires a smaller amount of the active ingredient in the dissolved state, which helps reduce bitterness.

[0016] The present disclosure relates to a compound represented by the following formula (1) as an active ingredient: [ka] (wherein R1 and R2 are each independently selected from the group consisting of -H, halo, C1-C8 alkyl, halo-C1-C8 alkyl, C1-C8 thioalkoxy, and C1-C8 alkoxy; one of A1 and A2 is CH, and the other is N), or a pharma- ceutically acceptable salt, solvate, or hydrate thereof, a poloxamer, and an aqueous carrier, wherein the aqueous formulation is in the form of a suspension formulation. In one embodiment, the aqueous formulation is an oral formulation.

[0017] In one embodiment, in Formula (1), R1 and R2 are each independently selected from the group consisting of -H, halo, and C1-C8 alkyl.

[0018] In one embodiment, the halo-C1-C8 alkyl is perfluoroalkyl.

[0019] In one embodiment, the carbamate compound of formula (1) is represented by the following formula (2): [ka] The carbamic acid (R)-1-(2-chlorophenyl)-2-tetrazol-2-yl-ethyl ester is represented by the formula:

[0020] Cenobamate, carbamic acid (R)-1-(2-chlorophenyl)-2-tetrazol-2-yl-ethyl ester of formula (2), is an antiepileptic drug for the treatment of partial seizures, which is known to decrease neuronal excitability by blocking the inactivated state of voltage-gated sodium channels and enhancing the presynaptic release of gamma-aminobutyric acid (GABA), thereby increasing the inhibitory effect of the GABA system.

[0021] The term "compound" or "active ingredient" is a concept that includes not only the compound itself, but also all of its isomers, or its pharma- ceutically acceptable salts, solvates, and hydrates. Thus, in the present application, the carbamate compound of formula (1) means not only the compound, but also its isomers, or its pharma- ceutically acceptable salts, solvates, or hydrates. Similarly, the carbamate compound of formula (2) used in the present specification means not only carbamic acid (R)-1-(2-chlorophenyl)-2-tetrazol-2-ylethyl ester, but also its isomers, or its pharma- ceutically acceptable salts, solvates, or hydrates.

[0022] Examples of pharma- ceutically acceptable salts of the carbamate compounds of formula (1) include, independently, acetate, benzenesulfonate, benzoate, bitartrate, calcium acetate, camsylate, carbonate, citrate, edetate, edisylate, estolate, esylate, fumarate, gluceptate, gluconate, glutamate, glycoloyl arsanilate, arsanilate, hexylresorcinate, hydravamine, hydrobromide, hydrochloride, bicarbonate, hydroxynaphthoate, iodide, isethionate, lactate, lactobionate, malate, maleate, mandelate, mesylate, methyl nitrate, methyl sulfate, mucate, napsylate, nitrate, pamoate (embonate), pantothenate, phosphate / diphosphate, polygalacturonate, salicylate, stearate, subacetate, succinate or hemisuccinate, sulfate or hemisulfate, tannate, tartrate, oxalate or hemitartrate, theoclate, procaine, aluminum, ammonium, tetramethylammonium, calcium, lithium, magnesium, potassium, sodium and zinc.

[0023] A person of ordinary skill in the synthesis of compounds should be able to easily prepare the carbamate compounds of formulas (1) and 2 using known compounds or compounds that can be easily prepared therefrom. In particular, methods for preparing the compound of formula (1) are described in detail in Patent Documents 1, 2 and 3, the disclosures of which are incorporated herein by reference. The compound of formula (1) can be chemically synthesized by any of the methods described in the above patent documents, but these methods are merely illustrative, and the order of unit operations, etc. can be selectively changed as necessary. Therefore, the above methods do not limit the scope of the present invention.

[0024] The content of the carbamate compound of formula (1) or (2) in the aqueous suspension formulation for oral use may vary depending on the use of the formulation. In one embodiment, the aqueous suspension formulation for oral use contains the carbamate compound of formula (1) or (2) at a concentration of about 1 mg / mL to about 100 mg / mL. In one embodiment, the aqueous suspension formulation for oral use contains the carbamate compound of formula (1) or (2) at a concentration of about 1 mg / mL to about 50 mg / mL. In one embodiment, the aqueous suspension formulation for oral use contains the carbamate compound of formula (1) or (2) at a concentration of about 5 mg / mL to about 20 mg / mL. In one embodiment, the aqueous suspension formulation for oral use contains the carbamate compound of formula (1) or (2) at a concentration of about 5 mg / mL to about 12 mg / mL. In one embodiment, the aqueous suspension formulation for oral use contains the carbamate compound of formula (1) or (2) at a concentration of about 8 mg / mL to about 12 mg / mL. In one embodiment, the oral aqueous suspension formulation contains the carbamate compound of formula (1) or (2) at a concentration of about 9 mg / mL to about 11 mg / mL.

[0025] In various embodiments, the pharmaceutical composition in suspension form comprises a carbamate compound or a pharma- ceutically acceptable salt thereof, one or more pharma- ceutically acceptable excipients, and an aqueous carrier. The aqueous carrier is selected from the group consisting of water and a mixture of water and a water-miscible organic solvent. In one embodiment, the organic solvent is selected from the group consisting of ethanol, ethylene bromide, butanol, acetone, chloroform, 2-ethylhexanol, methyl ethyl ketone, ethylene chloride, isobutanol, glycerol, methyl isobutyl ketone, dichloromethane, isopropanol, methyl isopropyl ketone, tetrachloroethylene, methanol, mesityl oxide, carbon tetrachloride, propanol, trichloroethylene, propylene glycol, 1,4-dioxane, butyl ether, dimethylformamide, ethyl ether, diisopropyl ether, dimethyl sulfoxide, tetrahydrofuran, tert-butyl methyl ether, pyridine, acetonitrile, ethyl acetate, cyclohexane, toluene, hexane, xylene, other suitable solvents, and combinations thereof. In other embodiments, the aqueous carrier includes water, water buffered to a particular pH with phosphate or carbonate, and combinations of aqueous solvents and one or more organic solvents. In certain embodiments, the aqueous carrier is water. In some embodiments, the aqueous formulation comprises an aqueous carrier in an amount of 40%-99%, 70%-98%, or 90%-95% by weight of the formulation.

[0026] In one embodiment, the poloxamer is an ABA block copolymer consisting of 75-85% polyoxyethylene (PEO) units and 15-25% polyoxypropylene (PPO) units. In one embodiment, the poloxamer is an ABA block copolymer consisting of about 80% polyoxyethylene (PEO) units in the A block and about 20% polyoxypropylene (PPO) units in the B block. In one embodiment, the poloxamer is poloxamer 188 (P188). In one embodiment, the aqueous formulation contains the poloxamer at a concentration of about 0.1 mg / mL to about 1.5 mg / mL. In one embodiment, the aqueous formulation contains the poloxamer at a concentration of about 0.8 mg / mL to about 1.2 mg / mL. In one embodiment, the aqueous formulation contains the poloxamer at a concentration of about 0.1 mg / mL to about 0.5 mg / mL. In some embodiments, poloxamer is added to ensure sufficient spacing of settled particles of active ingredient to allow redispersion of the active ingredient over a wide range of pH and independent of buffer type with minimal effort.

[0027] In one embodiment, the aqueous formulation further comprises a smectite clay. Smectite clay can be added to the aqueous formulation to improve its suspension and viscosity properties. Smectite clay can prevent settling of particles of active ingredient and impart viscosity to the formulation. In one embodiment, the smectite clay is selected from the group consisting of aluminum silicates such as montmorillonite (bentonite, hectorite and their derivatives); magnesium aluminum silicate (various grades available commercially as Veegum® from RT Vanderbilt Company); sodium magnesium silicate (various grades available commercially as Laponite®); organically modified smectites including tetraalkyl and / or trialkylammonium smectites (organically modified clays) such as tetra-18 bentonite, tetra-18 hectorite, stearalkonium bentonite and stearalkonium hectorite, and mixtures thereof. In one embodiment, the smectite clay is purified. In one embodiment, the smectite clay is magnesium aluminum silicate. The smectite clay may be specifically magnesium aluminum silicate IC type, more specifically, the smectite clay may be Veegum HV, Veegum R, Veegum K, or any combination thereof. In one embodiment, the aqueous formulation contains smectite clay at a concentration of about 2.5 mg / mL to about 7.0 mg / mL. In one embodiment, the aqueous formulation contains smectite clay at a concentration of about 4 mg / mL to about 6 mg / mL. A specific grade may be required to increase the viscosity of a suspension with a low solids content, and the grade or amount may need to be changed based on the desired concentration and solids content of the final formulation.

[0028] In one embodiment, the aqueous formulation further comprises a viscosity modifier. The viscosity modifier can be added to reduce the settling rate of particles in the formulation. The viscosity modifier can be used synergistically in combination with one or more excipients to improve the suspendability and redispersibility of the formulation. In one embodiment, the aqueous formulation contains a viscosity modifier at a concentration of about 1 mg / mL to about 25 mg / mL. A viscosity modifier that is believed to have a synergistic effect with the smectite clay can be selected. In one embodiment, the viscosity modifier can be a recrystallization inhibitor, as seen from the PSD data.

[0029] In one embodiment, the viscosity modifier is selected from the group consisting of cellulose or a derivative thereof, and xanthan gum. In one embodiment, the aqueous formulation contains xanthan gum at a concentration of about 1 mg / mL to about 10 mg / mL, about 2 mg / mL to about 6 mg / mL, or about 3 mg / mL to about 5 mg / mL. In one embodiment, the viscosity modifier is cellulose or a derivative thereof. In one embodiment, the cellulose derivative is selected from the group consisting of methylcellulose (MC), ethylcellulose (EC), hydroxyethylcellulose (HEC), hydroxypropylcellulose (HPC), hydroxypropylmethylcellulose (HPMC), carboxymethylcellulose (CMC), microcrystalline cellulose (MCC), cellulose acetate (CA), cellulose acetate phthalate (CAP), cellulose acetate butyrate (CAB), cellulose acetate trimellitate (CAT), hydroxypropylmethylcellulose phthalate (HPMCP), and combinations thereof. In one embodiment, a mixture of carboxymethylcellulose (CMC) and microcrystalline cellulose (MCC) is selected. In one embodiment, the aqueous formulation contains cellulose or a derivative thereof at a concentration of about 1 mg / mL to about 25 mg / mL. In one embodiment, the aqueous formulation contains cellulose or a derivative thereof at a concentration of about 15 mg / mL to about 25 mg / mL or about 15 mg / mL to about 20 mg / mL. In one embodiment, the aqueous formulation contains cellulose or a derivative thereof at a concentration of about 5 mg / mL to about 14 mL or about 8 mg / mL to about 12 mg / mL.

[0030] In one embodiment, the aqueous formulation further comprises a sweetener. In one embodiment, the sweetener is selected from the group consisting of sorbitol, mannitol, maltitol, xylitol and mixtures thereof. In one embodiment, the oral aqueous formulation contains a sweetener at a concentration of about 10 mg / mL to about 30 mg / mL. In one embodiment, the sweetener can function as a recrystallization agent and cryoprotectant to ensure consistency of the formulation. In one embodiment, the formulation comprises a suitable combination of sweetener, bitterness masking agent and flavoring agent evaluated to overcome the bitterness of the active ingredient, if applicable. In one embodiment, the sweetener is selected from the group consisting of sugar alcohols, substituted disaccharide derivatives and salts of glycyrrhizic acid. In this regard, the sweetener is used in combination with flavors such as raspberry, cherry, peppermint, orange, strawberry, grape, black cherry and apple.

[0031] In one embodiment, the aqueous formulation further comprises one or more of a recrystallization inhibitor, a flavoring agent, a bitter taste masking agent, a preservative, and a buffering agent. In one embodiment, the recrystallization inhibitor is polyvinylpyrrolidone (PVP) or hydroxypropyl methylcellulose (HPMC). In one embodiment, the aqueous formulation contains polyvinylpyrrolidone (PVP) at a concentration of about 20 mg / mL to about 40 mg / mL. In one embodiment, the aqueous formulation contains hydroxypropyl methylcellulose (HPMC) at a concentration of about 1 mg / mL to about 5 mg / mL. In one embodiment, the buffering agent is a citrate buffer or a phosphate buffer.

[0032] In one embodiment, the aqueous suspension comprises at least one preservative selected from the group consisting of parahydroxybenzoic acid, benzoic acid, boric acid, sorbic acid, salts thereof and combinations thereof, more preferably sodium benzoate, in a concentration of about 0.5 mg / mL to about 5.0 mg / mL, or about 1.0 mg / mL to about 2.0 mg / mL, or about 1.3 mg / mL to about 1.7 mg / mL. In one embodiment, the aqueous suspension is stable for more than 12 months at 25° C. / 60% RH and 40° C. / 75% RH. In one embodiment, the aqueous suspension is stable for more than 18 months at 25° C. / 60% RH and 40° C. / 75% RH. In one embodiment, the aqueous formulation may include a carbamate compound of formula (1) or (2) within the following particle size distribution ranges of the carbamate compound of formula (1) or (2): D10 is 1-15 μm, 1.4-10 μm, or 1.5-5 μm, more specifically 1-3 μm, 1.5-3 μm, 3-6 μm, 6-9 μm, 9-12 μm, 12-15 μm. In one embodiment, the aqueous formulation may include a carbamate compound of formula (1) or (2) within the following particle size distribution ranges of the carbamate compound of formula (1) or (2): D50 is 1-20 μm, 1-15 μm, or 5-10 μm, more specifically, 1.5-3 μm, 3-6 μm, 4-9 μm, 5-9 μm, 6-9 μm, 9-12 μm, 12-15 μm, 15-18 μm, 18-20 μm. In one embodiment, the aqueous formulation may include a carbamate compound of formula (1) or (2) within the following particle size distribution ranges of the carbamate compound of formula (1) or (2): D90 is 1-60 μm, 5-50 μm, or 10-45 μm, more specifically, 10-15 μm, 10-20 μm, 20-30 μm, 30-45 μm, or 40-50 μm. In one embodiment, the particle size of the carbamate compound of formula (1) or (2) may be controlled by a milling process or other available process. In one embodiment, the aqueous formulation includes a carbamate compound of formula (1) or (2) having a particle size distribution within the above ranges to provide uniformity to the oral aqueous suspension formulation.

[0033] In one embodiment, the particle size of the carbamate compound of formula (1) or (2) that can be used to prepare an aqueous formulation for oral administration is as follows: D10 is 1 to 30 μm, 1.4 to 28 μm, or 1.5 to 27 μm, more specifically, 1.5 to 3 μm, 3 to 6 μm, 6 to 9 μm, 9 to 12 μm, 12 to 15 μm, 15 to 18 μm, 18 to 21 μm, 21 to 24 μm, or 24 to 27 μm. In one embodiment, the particle size of the carbamate compound of formula (1) or (2) that can be used to prepare an aqueous formulation for oral administration is as follows: D50 is 3 to 60 μm, 3.2 to 58 μm, or 3.5 to 55 μm, more specifically, 3.5 to 5.0 μm, 5.0 to 10 μm, 10 to 15 μm, 15 to 20 μm, 20 to 25 μm, 25 to 30 μm, 35 to 40 μm, 40 to 45 μm, 45 to 50 μm, or 50 to 55 μm. In one embodiment, the particle size of the carbamate compound of formula (1) or (2) that can be used to prepare an oral aqueous formulation is as follows: D90 is 5 to 120 μm, 7 to 110 μm, or 8 to 100 μm, more specifically, 10 to 20 μm, 20 to 30 μm, 30 to 40 μm, 40 to 50 μm, 50 to 60 μm, 60 to 70 μm, 70 to 80 μm, 80 to 90 μm, or 90 to 100 μm.

[0034] As used herein, D10, D50 and D90 refer to the median or 10th, 50th and 90th percentiles of a particle size distribution measured by volume, respectively. Thus, the term "D50" is defined as the size in microns below which 50% of the particles lie by volume, and similarly, the term "D90" is defined as the size in microns below which 90% of the particles lie by volume. Particle size can be determined, for example, by laser light scattering using a particle size analyzer such as a proprietary Mie scattering, Cilas 1180, etc.

[0035] In one embodiment, the pH of the aqueous formulation is about 3.5 to about 7.0, about 3.5 to about 6.0, or about 3.5 to about 5.5.

[0036] The resulting oral suspension may be tested with appropriate analytical methods to ensure physical and chemical stability, including, but not limited to, appearance, pH, viscosity, assay and related substances, chiral purity analysis, homogeneity, redispersibility, dissolution, particle size and XRD.

[0037] Wetting agents and viscosity modifiers can be optimized by analyzing the formulation using wetting / dispersibility indicators such as the amount of settling of the powder in water after controlled agitation, redispersibility, wettability, and by visually observing samples for signs of caking, clumping, and dispersibility of the compound. The volume of the settled layer is an indication of the amount of spacing between particles within the settled layer. Proper spacing between particles is essential because particles need to move in order to be uniformly dispersed.

[0038] In one embodiment, the aqueous formulation is used as an anticonvulsant and can be used to treat anxiety, depression, convulsions, epilepsy, migraine, bipolar disorder, substance abuse, smoking, attention deficit hyperactivity disorder (ADHD), obesity, sleep disorders, neuropathic pain, stroke, cognitive disorders, neurodegeneration and / or muscle spasms.

[0039] The dosage of the carbamate compound of formula (1) or (2) for the prevention, alleviation or treatment of the above-mentioned diseases may typically vary depending on the severity of the disease, the body weight and metabolic state of the subject. The "therapeutically effective amount" for an individual patient refers to an amount of the active ingredient sufficient to achieve a therapeutic effect. Specifically, the therapeutically effective amount of the active ingredient is 50-500 mg, 50-400 mg, 50-300 mg, 100-400 mg, 100-300 mg, 50-200 mg, or 100-200 mg when administered once a day to humans in free form. The therapeutically effective amount is preferably 50-400 mg, more preferably 50-200 mg.

[0040] The present disclosure relates to a compound represented by the following formula (1) as an active ingredient: [ka] (wherein R1 and R2 are each independently selected from the group consisting of -H, halo, C1-C8 alkyl, halo-C1-C8 alkyl, C1-C8 thioalkoxy, and C1-C8 alkoxy; one of A1 and A2 is CH and the other is N), or a pharma- ceutically acceptable salt, solvate, or hydrate thereof, a smectite clay, and an aqueous carrier, wherein the aqueous formulation is a suspension formulation. In one embodiment, the aqueous formulation is an oral formulation.

[0041] The carbamate compound and the smectite clay are as described above. In one embodiment, the aqueous formulation further comprises a poloxamer as described above. In one embodiment, the aqueous formulation further comprises one or more excipients as described herein.

[0042] The present invention will be described in more detail below through examples. However, the following examples are intended to illustrate one or more embodiments, and are not intended to limit the scope of the present invention. EXAMPLES

[0043] Preparation Example: Synthesis of carbamic acid (R)-1-(2-chlorophenyl)-2-tetrazol-2-yl-ethyl ester The compound of formula (2) ("cenobamate") was prepared according to the method described in Preparation 50 of International Publication No. WO2010 / 150946.

[0044] Example 1 Poloxamer 188 was evaluated at various concentrations for sedimentation, dispersibility, and wettability of cenobamate-containing dispersions in pure citrate or phosphate buffers at pH 3-7. Approximately one hundred milligrams (100 mg) of cenobamate was dispersed in 10 mL of poloxamer liquid at 0.10, 0.50, 1.00, and 1.50 mg / mL concentrations in pH 4.2 phosphate buffer, and the sedimentation, redispersibility, and wettability of the dispersions were evaluated. Images are shown in Figure 1. Separate samples containing poloxamer 188 at 0.1 mg / mL concentration were also prepared in citrate buffers at different pH levels (pH 3.5, 4.2, and 5.2) and evaluated in a similar manner. Images are shown in Figure 2.

[0045] The volume of the settled layer is an indication of the amount of space between particles within the settled layer. Physical observations showed that these dispersions settled rapidly but formed loosely packed layers that were very easily redispersed after inversion and / or shaking (Figures 1 and 2). Similarly, good wetting of cenobamate was observed in the presence of poloxamer 188, as assessed by the time required for the cenobamate to fall below the surface.

[0046] [Table 1]

[0047] Poloxamer 188 dispersions showed almost immediate aggregation, providing sufficient spacing for settled particles to allow redispersion of the drug substance with minimal effort within the entire pH range of 3.5-5.2, regardless of buffer type. The intended effects were observed after addition of cenobamate to the poloxamer solution, including immediate wetting of most of the substance, rapid and gradual initial settling within the first 30 min to 1 h as measured by the ratio of sediment volume to total volume, efficient redispersion without caking, and rapid dispersion of the substance upon shaking of settled samples for 10 s.

[0048] Example 2 Various combinations of poloxamer 188, viscosity modifier and smectite clay were tested in a half factorial design to evaluate suspension, redispersibility and viscosity.

[0049] To determine the effect of poloxamer, smectite clay and / or viscosity modifier composition on the uniformity, suspension and redispersibility of cenobamate, the following 12 separate laboratory-scale batches were manufactured. The type and concentration of viscosity modifier, smectite clay, and concentration of poloxamer 188 were varied according to Table 2. The remaining formulation components were held constant as presented in Table 3.

[0050] [Table 2]

[0051] [Table 3]

[0052] The homogeneity, suspendability and redispersibility were measured by the following procedures.

[0053] ·Uniformity 1. Shake the bottle by hand. 2. The bottom of the bottle was inverted and inspected for solidification. If the sample formed a cake, this was noted when performing the analytical analysis. 3. Using a syringe and cannula for the cenobamate assay, samples were taken from the top and bottom of the bottle and diluted for analytical analysis as per the test method. 4. The results from the top and bottom of the bottle were compared to determine the absolute difference in uniformity.

[0054] Suspension 1. After sampling for homogeneity, the bottle was sealed and allowed to stand. 2. An additional aliquot for the cenobamate assay was taken from the bottom of the bottle without shaking or mixing the sample. 3. For analytical analysis, dilute according to analytical method. 4. This result was compared to the bottom assay for uniformity to determine the absolute difference in suspendability.

[0055] ·Redispersibility 1. The sample was shaken by hand and immediately transferred to a conical tube. 2. The samples were centrifuged. 3. The samples were removed from the centrifuge and shaken by hand. 4. A sample for the assay was taken from the center of the tube. 5. These results were compared to the average assay to determine the percentage redispersibility.

[0056] Based on Stokes law for the terminal velocity of a sphere falling from a fluid, viscosity measurements and any correlation between suspendability and redispersibility can be predicted. From the data in Table 4, the formulations showed acceptable physical stability. Overall, the average uniformity of the various formulations was found to range from 91.1 to 100.8, with absolute differences (%) ranging from 0.0 to 3.9 for the formulations shortlisted across experimental designs.

[0057] [Table 4]

[0058] Example 3 Based on the results of Examples 1 and 2, the formulations shown in Table 5 were produced.

[0059] [Table 5]

[0060] Example 4 The stability of Formulations I and II was evaluated by testing pH, cenobamate analysis, suspendability, related compound content, solubility, particle size and XRD. The formulations (upright and inverted) were stored at 25°C / 60% RH for 12 months and in a 40°C / 75% RH chamber for 6 months.

[0061] The analysis of cenobamate and related compounds was measured using HPLC method. The suspension property was measured as in Example 2. The dissolution test was performed by USP Apparatus 2 (paddle, 900 mL, 75 rpm, 37°C, 5-45 min). The particle size was measured by Mie scattering method.

[0062] The results showed that formulations I and II (upright / inverted) were stable for at least 6 months at 25°C / 60% RH and 40°C / 75% RH conditions, and stable for 12 months at 25°C / 60% RH. Stability results were provided for the inverted condition indicating more interactions between the formulation and the packaging.

[0063] [Table 6]

[0064] [Table 7]

[0065] [Table 8]

[0066] [Table 9]

[0067] Formulations I and II were stable for 12 months at 25°C / 60% RH and for 6 months at 40°C / 75% RH.

Claims

1. The following formula (1) 【Chemical 1】 (wherein R 1 and R 2 are each independently -H, halo, C 1 -C 8 alkyl, halo-C 1 -C 8 alkyl, C 1 -C 8 thioalkoxy, and C 1 -C 8 alkoxy selected from the group consisting of, one of A 1 and A 2 is CH and the other is N), or a pharmaceutically acceptable salt, solvate or hydrate thereof, a poloxamer, and an aqueous carrier, an aqueous formulation in the form of a suspension formulation.

2. R 1 and R 2 each independently is, -H, halo, and C 1 -C 8 The aqueous formulation according to claim 1, selected from the group consisting of alkyl.

3. The aqueous formulation according to claim 1, wherein the carbamate compound represented by formula (1) is (R)-1-(2-chlorophenyl)-2-tetrazol-2-yl-ethyl carbamate.

4. The pharmaceutically acceptable salts are acetate, benzenesulfonate, benzoate, hydrogen tartrate, calcium acetate, camsylate, carbonate, citrate, edetate, edisylic acid salt, estolate, esylate, fumarate, gluceptate, gluconate, glutamate, glycoloyl arsanilate, hexylresorcinate, hydravamine hydrobromide, hydrochloride, hydrogencarbonate, hydroxynaphthoate, iodide, isethionate, lactate, lactobionate, malate, maleate, mandelate, mesylate, methyl nitrate, methyl sulfate, mucate, napsylate, nitrate, pamoate, pantothenate, phosphate / diphosphate, polygalacturonate, salicylate, stearate, basic acetate, succinate, hemisuccinate, sulfate or hemisulfate, tannate, tartrate, oxalate or hemitartrate, theophylline salt, procaine, aluminum, ammonium, tetramethylammonium, calcium, lithium, magnesium, potassium, sodium and zinc, and are selected from the group consisting of: the aqueous formulation according to claim 1.

5. The aqueous formulation according to claim 1, containing the carbamate compound represented by formula (1) at a concentration of about 1 mg / mL to about 100 mg / mL.

6. The aqueous formulation according to claim 1, wherein the poloxamer is an ABA block copolymer composed of 75-85% poly(ethylene oxide) (PEO) units and 15-25% poly(propylene oxide) (PPO) units.

7. The aqueous formulation according to claim 1, wherein the poloxamer is an ABA block copolymer composed of about 80% PEO units and about 20% PPO units.

8. The aqueous formulation according to claim 7, wherein the poloxamer is poloxamer 188.

9. The aqueous formulation according to claim 1, containing the poloxamer at a concentration of about 0.1 mg / mL to about 1.5 mg / mL.

10. The aqueous formulation according to claim 1, further comprising smectite clay.

11. The aqueous formulation according to claim 10, wherein the smectite clay is selected from the group consisting of aluminum silicate, magnesium aluminum silicate, sodium magnesium silicate, organically modified smectite, and mixtures thereof.

12. The aqueous formulation according to claim 11, wherein the smectite clay is magnesium aluminum silicate.

13. The aqueous formulation according to claim 10, containing smectite clay at a concentration of about 2.5 mg / mL to about 7.0 mg / mL.

14. The aqueous formulation according to claim 1, further comprising a viscosity modifier.

15. The aqueous formulation according to claim 14, wherein the viscosity modifier is selected from the group consisting of cellulose or its derivatives and xanthan gum.

16. The aqueous formulation according to claim 15, wherein the cellulose derivative is selected from the group consisting of methylcellulose (MC), ethylcellulose (EC), hydroxyethylcellulose (HEC), hydroxypropylcellulose (HPC), hydroxypropylmethylcellulose (HPMC), carboxymethylcellulose (CMC), microcrystalline cellulose (MCC), cellulose acetate (CA), cellulose acetate phthalate (CAP), cellulose acetate butyrate (CAB), cellulose acetate trimellitate (CAT), hydroxypropylmethylcellulose phthalate (HPMCP), and combinations thereof.

17. The aqueous formulation according to claim 16, wherein the cellulose derivative is a mixture of CMC and MCC.

18. The aqueous formulation according to claim 14, containing the viscosity modifier at a concentration of about 1 mg / mL to about 25 mg / mL.

19. The aqueous formulation according to claim 15, containing xanthan gum at a concentration of about 1 mg / mL to less than about 10 mg / mL.

20. The aqueous formulation according to claim 15, containing cellulose or its derivative at a concentration of about 5 mg / mL to about 14 mg / mL.

21. The aqueous formulation according to claim 15, containing cellulose or its derivative at a concentration of about 15 mg / mL to about 25 mg / mL.

22. The aqueous formulation according to claim 13, further comprising a sweetening agent.

23. The aqueous formulation according to claim 22, containing the sweetening agent at a concentration of about 10 mg / mL to about 30 mg / mL.

24. The aqueous formulation according to claim 1, further comprising at least one selected from the group consisting of a recrystallization inhibitor, a flavoring agent, a bitterness masking agent, a preservative, and a buffering agent.

25. The aqueous formulation according to claim 24, wherein the recrystallization inhibitor is polyvinylpyrrolidone (PVP) or hydroxypropylmethylcellulose (HPMC).

26. The aqueous formulation according to claim 25, containing PVP at a concentration of about 20 mg / mL to about 40 mg / mL.

27. The aqueous formulation according to claim 25, containing HPMC at a concentration of about 1 mg / mL to about 5 mg / mL.

28. The aqueous formulation according to claim 24, wherein the buffering agent is a citrate buffer or a phosphate buffer.

29. The aqueous formulation according to claim 1, having a pH of 3.5 to 5.

5.

30. The aqueous formulation according to claim 1, wherein the aqueous carrier is water or a mixture of water and a water-miscible organic solvent.

31. The aqueous formulation according to claim 1, wherein the D90 of the compound of formula (1) used for manufacturing the aqueous formulation is 10 to 20 μm, 20 to 30 μm, 30 to 40 μm, 40 to 50 μm, 50 to 60 μm, 60 to 70 μm, 70 to 80 μm, 80 to 90 μm, or 90 to 100 μm.

32. The aqueous formulation according to claim 1, which is for oral administration.

33. The aqueous formulation according to claim 1, containing about 8 mg / mL to 12 mg / mL of senobamate, about 0.1 mg / mL to about 1.5 mg / mL of poloxamer, about 2.5 mg / mL to about 7.0 mg / mL of smectite clay, and water.

34. The following formula (1) [Chemical Formula 2] (wherein R 1 and R 2 are each independently -H, halo, C 1 -C 8 alkyl, halo-C 1 -C 8 alkyl, C 1 -C 8 thioalkoxy, and C 1 -C 8 alkoxy selected from the group consisting of, one of A 1 and A 2 is CH and the other is N), or a pharmaceutically acceptable salt, solvate or hydrate thereof, smectite clay, and an aqueous carrier, an aqueous formulation in the form of a suspension formulation.

35. The aqueous formulation according to any one of claims 1 to 34 for treating a central nervous system disease in a subject.

36. The aqueous formulation according to claim 35, wherein the central nervous system disease is selected from the group consisting of anxiety, depression, epilepsy, epilepsy, migraine, bipolar disorder, drug abuse, smoking, attention deficit hyperactivity disorder (ADHD), obesity, sleep disorder, neuropathic pain, stroke, cognitive impairment, neurodegeneration, and myoclonic seizure.

37. The aqueous formulation according to claim 35, wherein the subject is a pediatric patient or an adult patient with dysphagia.