Composition of 2,4,6-trifluoro-n-[6-(1-methyl-piperidin-4-carbonyl)-pyridin-2-yl]-benzamide

JP2025020117A5Inactive Publication Date: 2025-05-08COLUCID PHARMACEUTICALS INC
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Patent Information

Application Number
JP2024173307
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2009-04-02
Filing Date
2024-10-02
Publication Date
2025-05-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing anti-migraine drugs such as tridents may cause coronary artery contraction, with cardiovascular risk, and many patients report chest symptoms, leading to misdiagnosis and anxiety, requiring the development of an anti-migraine drug without vasoconstriction.

Method used

2,4,6-trifluoro-N-[6-(1-methylpiperidin-4-carbonyl)-pyridin-2-yl]-benzamide (Compound I), a selective 5-HT1F receptor agonist, administered through oral, rectal, intranasal, transdermal, intramuscular and other channels, was developed to treat migraines and avoid vasoconstriction.

Benefits of technology

Compound I effectively relieves migraine, reduces the risk of vasoconstriction, significantly reduces the occurrence of chest symptoms, and provides a safer treatment option.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a pharmaceutical composition and a method for the treatment or prevention of migraine in a mammal in need thereof.SOLUTION: The present invention provides a pharmaceutical composition comprising 2,4,6-trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide and a pharmaceutically acceptable carrier.SELECTED DRAWING: None
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Description

[Technical field]

[0001] Related Applications This application claims priority to U.S. Patent Application No. 61 / 166,097, filed April 2, 2009, the contents of which are incorporated herein by reference. [Background technology]

[0002] 2. Background of the Invention Migraine is a common and highly disabling brain disorder that affects more than 10% of adults worldwide (Non-Patent Document 1). The disease is typically characterized by attacks of severe headache lasting 1-3 days, accompanied by nausea, vomiting, photophobia and phonophobia (migraine without aura), and in one-third of patients, by neurological aura symptoms (migraine with aura) (Non-Patent Document 2). The pathogenesis of migraine is not fully understood. Traditionally, vasodilation was thought to be the key to causing headache in migraine (Non-Patent Document 3). 5-HT 1B Based on the assumption that receptor-mediated cranial vasoconstriction is essential for antimigraine efficacy (Non-Patent Document 4), selective 5-HT 1B / 1D Receptor agonists, triptans (Non-Patent Document 5), have been developed. As a result, triptans also have the risk of causing coronary vasoconstriction (Non-Patent Document 6) and are contraindicated in patients with cardiovascular and cerebrovascular diseases. In addition, many patients using triptans report chest symptoms that may resemble angina pectoris, causing anxiety and diagnostic confusion (Non-Patent Document 7; Non-Patent Document 8). Therefore, new antimigraine treatments that lack vasoconstrictor activity are warranted.

[0003] In recent decades, it has become clear that cranial vasodilation, if it occurs throughout a migraine attack (Non-Patent Document 9), may only be a secondary phenomenon due to activation of the trigeminovascular system (Non-Patent Document 10). Thus, vasoconstriction may not be necessary to treat migraine headaches. Rather, neural inhibition of the trigeminal pathway would provide an attractive alternative non-vascular anti-migraine mechanism. Indeed, LY334370, a neuroactive selective 5-HT1F receptor agonist with no vasoconstrictor activity at clinically relevant concentrations, has been found to be effective in the acute treatment of migraine in early clinical proof-of-concept type studies (Non-Patent Document 11). Unfortunately, the clinical development of LY334370 had to be halted due to compound-specific safety concerns in long-term exposure in animals.

[0004] 2,4,6-Trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide (compound I) is a new, selective and highly potent 5-HT inhibitor. 1F It is a 5-HT receptor agonist with a Ki of 2.21 nM at the human 5-HT1F receptor and a higher 5-HT activity than other 5-HT1 receptor subtypes. 1F The compound I and other selective pyridinoylpiperidine 5-HT4 receptors have a higher affinity than 450-fold (Non-Patent Document 12). 1F have described agonists that are active in neurally mediated preclinical models of migraine and do not cause vasoconstriction (i.e., neutrally active antimigraine drugs (NAANAs)). Experiments in the above-referenced publications demonstrate potent inhibition of c-Fos induction in the trigeminal nucleus caudalis and inhibition of dural plasma protein extravasation following electrical stimulation of the trigeminal ganglion. At concentrations up to 0.1 mM, Compound I did not constrict rabbit saphenous veins, a surrogate assay for potential human coronary vasoconstrictors (Non-Patent Document 12). [Prior art documents] [Patent documents]

[0005] [Patent Document 1] U.S. Patent No. 7,423,050 [Patent Document 2] US Patent Publication No. 20080300407 [Non-patent literature]

[0006] [Non-Patent Document 1] Stovner LI et al., Cephalalgia 2007;27:193-210 [Non-Patent Document 2] Goadsby PJ et al., N Engl J Med 2002;346:257-270 [Non-Patent Document 3] Wolff's Headache and Other Head Pain. Ed Silberstein et al., Oxford University Press, 2001 [Non-Patent Document 4] Humphrey PPA et al., Ann NY Acad Sci 1990;600:587-598 [Non-Patent Document 5] Ferrari MD et al., Lancet 2001:358;1668-1675 [Non-Patent Document 6] MaassenVanDenBrink A et al., Circulation 1998;98:25-30 [Non-Patent Document 7] Welch KMA et al., Cephalalgia 2000;20:687-95 [Non-Patent Document 8] Visser WH et al., Cephalalgia 1996;16:554-559 [Non-Patent Document 9] Schoonman GG et al., Brain 2008;131:192-200 [Non-Patent Document 10] Goadsby PJ et al., N Engl J Med 2002;346:257-270 [Non-Patent Document 11] Goldstein DJ et al., Lancet 2001;358:1230-4 [Non-Patent Document 12] Nelson DL et al., Cephalosporin 2009:29;122 Summary of the Invention [Means for solving the problem]

[0007] Summary of the Invention The present invention relates to 2,4,6-trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide (Compound I) for use in the treatment of migraine:

[0008] [ka] or a pharma- ceutically acceptable salt thereof.

[0009] The present invention relates to a pharmaceutical composition comprising an amount of Compound I or a pharma- ceutically acceptable salt thereof and a pharma- ceutically acceptable excipient or carrier, wherein for oral or rectal administration, said composition comprises 50-400 mg of Compound I or a pharma- ceutically acceptable salt thereof per dose, and for buccal, sublingual, nasal / intranasal, transdermal, subcutaneous, injectable, intravenous or intramuscular administration, said composition comprises up to 200 mg of Compound I or a pharma- ceutically acceptable salt thereof per dose, and wherein further said composition is administered 1, 2 or 3 times daily.

[0010] The present invention relates to pharmaceutical compositions for oral or rectal administration, the amount of Compound I or a pharma- ceutically acceptable salt thereof being between 50 mg and 400 mg per dose.

[0011] The present invention relates to a pharmaceutical composition in which the amount of compound I is 50mg per dose.The present invention relates to a pharmaceutical composition in which the amount of compound I is 100mg per dose.The present invention relates to a pharmaceutical composition in which the amount of compound I is 200mg per dose.The present invention relates to a pharmaceutical composition in which the amount of compound I is 400mg per dose.

[0012] The present invention relates to pharmaceutical compositions for buccal, sublingual, nasal / intranasal, transdermal, subcutaneous, injectable, intravenous or for intramuscular administration, wherein the amount of Compound I or a pharma- ceutically acceptable salt thereof administered is up to 200 mg per dose.

[0013] The present invention relates to a pharmaceutical composition in which the amount of Compound I or a pharma- ceutically acceptable salt thereof administered is 20 mg to 200 mg per dose.The present invention relates to a pharmaceutical composition in which the amount of Compound I or a pharma- ceutically acceptable salt thereof administered is 20 to 60 mg per dose.The present invention relates to a pharmaceutical composition in which the amount of Compound I or a pharma- ceutically acceptable salt thereof administered is 20 to 30 mg per dose.

[0014] The present invention relates to a pharmaceutical composition, the administration of which is intravenous, the amount of Compound I or a pharma- ceutically acceptable salt thereof being administered being up to 200 mg per dose.

[0015] The present invention relates to a pharmaceutical composition in which Compound I or a pharma- ceutically acceptable salt thereof is administered intravenously over a period of about 20 minutes.

[0016] The present invention relates to pharmaceutical compositions comprising the hemisuccinate salt of Compound I.

[0017] The present invention relates to a pharmaceutical composition in which a dose of Compound I or a pharma- ceutically acceptable salt thereof is administered once a day.The present invention relates to a pharmaceutical composition in which a dose of Compound I or a pharma- ceutically acceptable salt thereof is administered twice a day.The present invention relates to a pharmaceutical composition in which a dose of Compound I or a pharma- ceutically acceptable salt thereof is administered three times a day.

[0018] The present invention relates to a method for treating or preventing migraine in a mammal in need thereof, comprising administering to the mammal an effective amount of a pharmaceutical composition, wherein the composition comprises an amount of Compound I or a pharma- ceutically acceptable salt thereof and a pharma- ceutically acceptable excipient or carrier, and wherein for oral or rectal administration, the composition comprises 50-400 mg of Compound I or a pharma- ceutically acceptable salt thereof per dose, and for buccal, sublingual, intranasal / intranasal, transdermal, subcutaneous, injection, intravenous or intramuscular administration, the composition comprises up to 200 mg of Compound I or a pharma- ceutically acceptable salt thereof per dose, and wherein the composition is administered 1, 2 or 3 times daily. The present invention relates to a method comprising administering 2,4,6-trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide hemisuccinate in an amount of 20 mg once daily over 20 minutes by intravenous administration. The invention relates to a method in which said amount of 2,4,6-trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide hemisuccinate is administered to prevent migraine headaches.The invention relates to a method in which the mammal is a human.

[0019] The above and other objects, features and advantages of the present invention will become apparent from the following more particular description of the preferred embodiments of the invention, as illustrated in the accompanying drawings, which are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the invention. [Brief description of the drawings]

[0020] [Figure 1] FIG. 1 is a graph showing the sequence of patient allocation to treatment groups for studies involving administration of Compound I. [Diagram 2] FIG. 2 is a graph showing the dose escalation sequence of Compound I. [Diagram 3] FIG. 3 is a bar graph showing the percentage of patients with a headache response at 2 hours after administration of Compound I. [Figure 4]Figures 4A and 4B are two bar graphs showing migraine relief 2 hours after iv administration of Compound I. In addition to headache relief at 2 hours, 30 mg iv over 20 minutes completely eliminated headache ("no pain") in a greater number of patients than placebo. [Diagram 5] Figure 5 is a graph showing the time course of response with Compound I administered iv. 20 mg and 30 mg iv showed rapid onset of headache relief. [Figure 6] 6A and 6B are two bar graphs showing sustained pain response and rescue medication results with Compound I administered by iv. 30 mg iv reduced headache recurrence within 24 hours and reduced rescue medication use. [Figure 7] FIG. 7 is a graph showing the percentage of patients who reported moderate to severe disability following administration of Compound I (20 minute infusion) following iv administration. [Figure 8] Figure 8 is a bar graph showing the overall impression of how patients felt 2 hours after intravenous administration of Compound I. The 30 mg dose showed an increase in the number of patients who felt fairly well or very well. [Figure 9] 9 is a series of graphs showing secondary endpoints following iv administration of Compound I at 10, 20, and 30 mg. The 30 mg dose reduced the associated symptoms of photophobia, phonophobia, and nausea. [Figure 10] FIG. 10 is a graph showing the plasma concentration time profile of Compound I for 50-400 mg oral solution doses and 30 mg iv infusion. [Figure 11] Figures 11A and 11B are two graphs showing the dose linearity of Compound I. Figure 11A shows the dose linearity of the liquid formulation, AUC∞ (male). Figure 11B shows the dose linearity of the tablet formulation, AUC∞ (male and female). [Figure 12] FIG. 12 is a graph showing the plasma concentration time profile of a 200 mg dose of Compound I administered as an oral solution and as a tablet. [Figure 13]FIG. 13 is a graph depicting the mean Compound I plasma concentration profiles following oral administration of 50 mg and 400 mg tablets to men and women. [Figure 14] Figure 14 is a diagrammatic representation of the PK-PD model. The PK part is Central (Vc) and Periph. (Vp) (rectangles with vertical lines); the hysteresis (delay) is Eff.Comp. (rectangles with horizontal lines); the PD part is the effect (headache score) as shown by the proportional odds model (oval). [Figure 15] Figure 15 is a series of graphs showing the cumulative probability of having a constant headache score versus time after administration of Compound I. The dots represent the observed headache response; the lines represent the predictions from the PK-PD model; and the shaded areas indicate the prediction uncertainty resulting from the uncertainty in the parameter estimates. Doses were administered intravenously. [Figure 16] Figure 16 is a series of graphs showing examples of concentration-time profiles following various oral doses of Compound I. The dots represent plasma concentrations; the lines represent individual predictions from the PK model; the dashed lines represent population predictions from the PK model (predictions for a typical subject in the population). Doses were administered orally. [Figure 17] Figure 17 is a graph showing the percent pain relief 30 minutes after administration of Compound I versus time to select an effective oral dose. The line represents the median prediction of percent pain relief by the PK-PD model; the shaded area indicates the prediction uncertainty resulting from the uncertainty in the parameter estimates. Sumatriptan: The target level should be at least 12% when compared to placebo-corrected pain relief. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0021] Detailed Description of the Invention The present invention relates to 2,4,6-trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide (Compound I):

[0022] [ka] The present invention also relates to a pharmaceutical composition comprising Compound I or a pharma- ceutically acceptable salt thereof and a pharma- ceutically acceptable excipient or carrier. The present invention also relates to a method for treating or preventing migraine in a mammal in need thereof, comprising administering to a mammal in need of such treatment or prevention an effective amount of a pharmaceutical composition as described herein. The present invention also relates to the use of an amount of Compound I or a pharma- ceutically acceptable salt thereof for preparing a medicament for treating migraine in a mammal.

[0023] In particular, the present invention relates to pharmaceutical compositions comprising an amount of Compound I or a pharma- ceutically acceptable salt thereof and a pharma- ceutically acceptable excipient or carrier, wherein for oral or rectal administration, said compositions contain 50 to 400 mg of Compound I or a pharma- ceutically acceptable salt thereof per dose, and for buccal, sublingual, nasal / intranasal, transdermal, subcutaneous, injectable, intravenous or intramuscular administration, said compositions contain up to 200 mg of Compound I or a pharma- ceutically acceptable salt thereof per dose, and further wherein said compositions are administered 1, 2 or 3 times daily.

[0024] The present invention relates to pharmaceutical compositions for oral or rectal administration comprising Compound I or a pharma- ceutically acceptable salt thereof in an amount ranging up to 1000 mg per dose administered one, two or three times daily, and a pharma- ceutically acceptable excipient or carrier.

[0025] In one embodiment, the present invention relates to a pharmaceutical composition for oral or rectal administration comprising compound I or a pharma- ceutically acceptable salt in an amount between 50 mg and 500 mg per dose. In one embodiment, the present invention relates to a pharmaceutical composition for oral or rectal administration comprising compound I or a pharma- ceutically acceptable salt in an amount between 50 mg and 4 ...100 mg and 400 mg per dose. In one embodiment, the present invention relates to a pharmaceutical composition for oral or rectal administration comprising compound I or a pharma- ceutically acceptable salt in an amount between 200 mg and 400 mg per dose. In one embodiment, the present invention relates to a pharmaceutical composition for oral or rectal administration comprising compound I or a pharma- ceutically acceptable salt in an amount between 400 mg and 400 mg per dose.

[0026] In one embodiment, the present invention relates to a pharmaceutical composition comprising an amount of Compound I or a pharma- ceutically acceptable salt, the administration of which is oral. In one embodiment, the present invention relates to a pharmaceutical composition comprising an amount of Compound I or a pharma- ceutically acceptable salt, the administration of which is oral administration of a tablet. In one embodiment, the tablet comprises 50 to 400 mg of Compound I or a pharma- ceutically acceptable salt. In one embodiment, the present invention relates to a pharmaceutical composition comprising an amount of Compound I or a pharma- ceutically acceptable salt, the administration of which is oral administration of a liquid. In one embodiment, the liquid comprises 25 to 400 mg of Compound I or a pharma- ceutically acceptable salt. In one embodiment, the present invention relates to a pharmaceutical composition comprising an amount of Compound I or a pharma- ceutically acceptable salt, the administration of which is rectal.

[0027] The present invention relates to a pharmaceutical composition for buccal, sublingual, nasal / intranasal, transdermal, subcutaneous, injectable, intravenous or intramuscular administration comprising Compound I or a pharma- ceutically acceptable salt thereof in an amount ranging up to 200 mg per dose administered 1, 2 or 3 times daily, and a pharma- ceutically acceptable excipient or carrier.

[0028] In one aspect, the present invention relates to a pharmaceutical composition for buccal, sublingual, nasal / intranasal, transdermal, subcutaneous, injectable, intravenous or intramuscular administration comprising Compound I or a pharma- ceutically acceptable salt thereof in an amount ranging from 20 to 200 mg per dose.

[0029] In one aspect, the present invention relates to a pharmaceutical composition for buccal, sublingual, nasal / intranasal, transdermal, subcutaneous, injectable, intravenous or intramuscular administration comprising Compound I or a pharma- ceutically acceptable salt thereof in an amount ranging from 20 to 100 mg per dose.

[0030] In one aspect, the present invention relates to a pharmaceutical composition for buccal, sublingual, nasal / intranasal, transdermal, subcutaneous, injectable, intravenous or intramuscular administration comprising Compound I or a pharma- ceutically acceptable salt thereof in an amount greater than 20 mg per dose.

[0031] In one aspect, the present invention relates to a pharmaceutical composition for buccal, sublingual, nasal / intranasal, transdermal, subcutaneous, injectable, intravenous or intramuscular administration comprising Compound I or a pharma- ceutically acceptable salt thereof in an amount ranging from 20 to 60 mg per dose.

[0032] In one aspect, the present invention relates to a pharmaceutical composition for buccal, sublingual, nasal / intranasal, transdermal, subcutaneous, injectable, intravenous or intramuscular administration comprising Compound I or a pharma- ceutically acceptable salt thereof in an amount ranging from 20 to 45 mg per dose.

[0033] In one aspect, the present invention relates to a pharmaceutical composition for buccal, sublingual, nasal / intranasal, transdermal, subcutaneous, injectable, intravenous or intramuscular administration comprising Compound I or a pharma- ceutically acceptable salt thereof in an amount ranging from 20 to 30 mg per dose.

[0034] In one aspect, the invention relates to a pharmaceutical composition comprising Compound I or a pharma- ceutically acceptable salt thereof in an amount that is about 10, 15, 20, 25, 30, 45 50, 60, 75, 90 or 100 mg per dose.

[0035] In one embodiment, the present invention relates to a pharmaceutical composition in which the administration of compound I or a pharma- ceutically acceptable salt thereof is intravenous. In one embodiment, the present invention relates to a pharmaceutical composition in which the administration of compound I or a pharma- ceutically acceptable salt thereof is intravenous over a period of time. In one embodiment, the present invention relates to a pharmaceutical composition in which the administration of compound I or a pharma- ceutically acceptable salt thereof is intravenous over a period of about 20 minutes. In one embodiment, the present invention relates to a pharmaceutical composition in which the administration of compound I or a pharma- ceutically acceptable salt thereof is intravenous over a period of 20 minutes.

[0036] In one aspect, the present invention relates to a pharmaceutical composition wherein administration of Compound I or a pharma- ceutically acceptable salt thereof is buccal.

[0037] In one aspect, the invention relates to a pharmaceutical composition, the administration of which is sublingual.

[0038] In one aspect, the present invention relates to a pharmaceutical composition wherein the administration of compound I or a pharma- ceutically acceptable salt thereof is intranasal or intranasal.

[0039] In one aspect, the present invention relates to a pharmaceutical composition wherein administration of Compound I or a pharma- ceutically acceptable salt thereof is transdermal.

[0040] In one aspect, the present invention relates to a pharmaceutical composition wherein the administration of Compound I or a pharma- ceutically acceptable salt thereof is subcutaneous.

[0041] In one aspect, the present invention relates to a pharmaceutical composition wherein administration of Compound I or a pharma- ceutically acceptable salt thereof is by injection.

[0042] In one aspect, the invention relates to a pharmaceutical composition, the administration of which is intramuscular.

[0043] The present invention relates to a pharmaceutical composition comprising a pharma- ceutically acceptable salt of Compound I. In one aspect, the present invention relates to a pharmaceutical composition comprising the hemisuccinate salt of Compound I. In one aspect, the present invention relates to a pharmaceutical composition comprising the monohydrochloride salt of Compound I.

[0044] In one embodiment, the invention relates to a pharmaceutical composition in which a dose of Compound I is administered once a day. In one embodiment, the invention relates to a pharmaceutical composition in which a dose of Compound I is administered twice a day. In one embodiment, the invention relates to a pharmaceutical composition in which a dose of Compound I is administered three times a day.

[0045] The present invention relates to a method of treating or preventing migraine in a mammal in need thereof, comprising administering to a mammal in need of such treatment or prevention an effective amount of a composition described herein. In one aspect, the invention relates to a method wherein the mammal is a human.

[0046] The present invention relates to the use of the compositions described herein for the preparation of a medicament for treating or preventing migraine in a mammal.

[0047] One embodiment of the present invention is the use of 5-HT agonists to treat a variety of disorders associated with reduced neurotransmission of serotonin in mammals. 1F The composition of the present invention is used to increase receptor activation while avoiding vasoconstrictor activity.These disorders include migraine, generalized pain, trigeminal neuralgia, toothache, temporomandibular joint dysfunction pain, anxiety, generalized anxiety disorder, panic disorder, depression, sleep disorder, fatigue syndrome, premenstrual syndrome or late premenstrual syndrome, post-traumatic syndrome, memory loss, dementia including age-related dementia, social phobia, autism, attention deficit hyperactivity disorder, disruptive behavior disorder, impulse control disorder, borderline personality disorder, obsessive-compulsive disorder, premature ejaculation, erectile dysfunction, bulimia, anorexia nervosa, alcoholism, tobacco abuse, mutism and trichotillomania.In one embodiment, the disorder is chronic.The composition of the present invention is also useful as a preventive treatment for migraine.

[0048] When the disorder that can be treated by serotonin agonist is known by established and recognized classification, the classification can be found in various sources.For example, currently, the 4th edition of Diagnostic and Statistical Manual of Mental Disorders (DSM-IV®) (1994, American Psychiatric Association, Washington, DC) provides the diagnostic tool for identifying many disorders described herein.In addition, the International Classification of Diseases, Tenth Revision (ICD-10) provides classification for many disorders described herein.Those skilled in the art will recognize that there are other nomenclatures, nosologies and classification systems for disorders described herein, including those described in DSM-IV and ICD-10, and that terminology and classification systems will evolve with medical and scientific progress.

[0049] 5-HT 1F Use of the compositions of the invention to activate receptors, to inhibit neuropeptide extravasation due to stimulation of the trigeminal ganglion in general or specifically, and / or to treat any of the above disorders are all embodiments of the invention.

[0050] Similarly, 5-HT 1F Use of the compositions of the invention in the manufacture of a medicament for activating receptors, inhibiting neuropeptide extravasation due to stimulation of the trigeminal ganglion in general or specifically, and / or for treating any of the above disorders are all also embodiments of the invention.

[0051] As used herein, the phrase "pharmacologically acceptable" refers to active compounds, substances, compositions, carriers and / or dosage forms that are suitable for use in contact with the tissues of human beings and animals without excessive toxicity, irritation, allergic response or other problem or complication, within the scope of sound medical judgment, and are commensurate with a reasonable benefit / risk ratio.

[0052] The term "Compound I" or "Cmpd I" as used herein means 2,4,6-trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide:

[0053] [ka] "Pharmaceutical formulation" further means that the carriers, solvents, excipients and salts should be compatible with the active ingredients of the formulation (e.g., Compound I). Those skilled in the art will appreciate that the terms "pharmaceutical formulation" and "pharmaceutical composition" are generally interchangeable, and therefore, they are used for purposes of this application.

[0054] The term "acid addition salt" refers to a salt of Compound I prepared by reacting Compound I with a mineral or organic acid. For examples of pharma-ceutically acceptable acid addition salts, see, for example, Berge, SM, Bighley, LD and Monkhouse, DC, J. Pharm. Sci., Vol. 66: No. 1, 1977. Because Compound I is an amine, it is basic in nature and therefore can be reacted with any of a number of inorganic and organic acids to form acid addition salts, e.g., pharma-ceutically acceptable acid addition salts.

[0055] The pharma- ceutically acceptable acid addition salts of the present invention are typically formed by reacting Compound I with an equimolar or excess amount of acid. Alternatively, a hemi-salt can be formed by reacting Compound I with the desired acid in a 2:1 ratio of compound to acid. The reactants are typically mixed in a mutual solvent such as diethyl ether, tetrahydrofuran, methanol, ethanol, isopropanol, benzene, toluene, and the like. The salts usually precipitate out of solution within about 1 hour to about 10 days and can be isolated by filtration or other conventional methods.

[0056] Inorganic acids commonly used to form such salts include hydrochloric acid, hydrobromic acid, hydroiodic acid, sulfuric acid, phosphoric acid, etc. Organic acids commonly used to form such salts include p-toluenesulfonic acid, methanesulfonic acid, oxalic acid, p-bromophenylsulfonic acid, carbonic acid, succinic acid, citric acid, benzoic acid, acetic acid, etc. Thus, examples of such pharma- ceutically acceptable salts include sulfate, pyrosulfate, bisulfate, sulfite, bisulfite, phosphate, monohydrogenphosphate, dihydrogenphosphate, metaphosphate, pyrophosphate, chloride, bromide, iodide, acetate, propionate, decanoate, caprylate, acrylate, formate, isobutyrate, caproate, heptanoate, propiolate, oxalate, malonate, succinate, hemisuccinate, suberate, sebacate, fumarate, maleate, butyrate-1, butylate ... ,4-dioate, hexyne-1,6-dioate, benzoate, chlorobenzoate, methylbenzoate, dinitrobenzoate, hydroxybenzoate, methoxybenzoate, phthalate, sulfonate, xylenesulfonate, phenylacetate, phenylpropionate, phenylbutyrate, citrate, lactate, β-hydroxybutyrate, glycolate, tartrate, methanesulfonate, propanesulfonate, naphthalene-1-sulfonate, naphthalene-2-sulfonate, mandelate, etc. Preferred pharma- ceutically acceptable salts are those formed with hydrochloric acid or succinic acid.

[0057] The term "effective amount" refers to 5-HT 1FBy this is meant an amount of compound I capable of activating receptors and / or inhibiting neuronal protein extravasation.

[0058] The term "suitable solvent" refers to any solvent or mixture of solvents that is inert to the ongoing reaction and that sufficiently solubilizes the reactants to provide a medium in which the desired reaction can be carried out.

[0059] The term "prophylactic treatment" means preventing the development of clinical symptoms of a disorder in a subject who may be or is susceptible to a disorder or condition but has not yet experienced or manifested symptoms, i.e., inhibiting the onset of the disorder or condition. In one aspect, the term "prophylactic treatment" refers to the prophylactic treatment of migraine headaches, i.e., prevention of migraine headaches.

[0060] As used herein, the terms "treat," "treatment," or "treating" refer to the partial or complete alleviation, amelioration, relief, inhibition, reduction in the severity, and / or reduction in the incidence of one or more migraine symptoms or characteristics.

[0061] Preferably, the mammal treated by administration of the compositions of the present invention is a human.

[0062] formulation The type of formulation used to administer Compound I may be dictated by the route of administration and the type of pharmacokinetic profile desired given the patient's condition.

[0063] Formulations suitable for oral, sublingual, nasal or injectable administration are prepared in a manner well known in the pharmaceutical art and contain at least one active compound, see, for example, REMINGTON'S PHARMACEUTICAL SCIENCES (16th ed., 1980).

[0064] In general, the formulation of the present invention includes the active ingredient (compound I), which is usually mixed with or diluted by an excipient, or enclosed in such a carrier, which may be in the form of a capsule, sachet, paper or other container.When an excipient serves as an excipient, it may be a solid, semi-solid or liquid material that acts as a vehicle, carrier or medium for the active ingredient.Thus, the formulation may be in the form of a tablet, pill, powder, lozenge, sachet, cachet, elixir, suspension, emulsion, solution, syrup, aerosol (as a solid or in a liquid medium), ointment containing, for example, up to 10% by weight of the active compound, soft and hard gelatin capsule, gel, suppository, sterile injection solution and sterile packaged powder.

[0065] When preparing a formulation, it may be necessary to grind active compound before mixing with other components to obtain appropriate particle size.If active compound is substantially insoluble, it is usually ground to a particle size of less than 200 mesh.If active compound is substantially water-soluble, in order to obtain substantially uniform distribution in the formulation, the particle size is usually adjusted by grinding, for example, to obtain about 40 mesh.In one embodiment of the present invention, the particle size range is between about 0.1 μm and about 100 μm.

[0066] Some examples of suitable excipients include lactose, dextrose, sucrose, sorbitol, mannitol, starch, gum arabic, calcium phosphate, alginates, tragacanth, gelatin, calcium silicate, microcrystalline cellulose, polyvinylpyrrolidone, cellulose, water, syrup, and methylcellulose.The formulation may additionally include: lubricating agents such as talc, magnesium stearate, and mineral oil; wetting agents; emulsifying and suspending agents; preserving agents such as methyl and propyl hydroxybenzoates; sweetening agents; and flavoring agents.

[0067] The following formulation examples are illustrative only and are not intended to limit the scope of the invention. The term "active ingredient" refers to Compound I.

[0068] Formulation Example 1

[0069] [ka] The above ingredients are mixed and loaded into hard gelatin capsules in 340 mg quantities.

[0070] Formulation Example 2

[0071] [ka] The ingredients are blended and compressed to form tablets each weighing 240 mg.

[0072] Formulation Example 3

[0073] [ka] The active ingredient is mixed with lactose and the mixture is added to a dry powder inhaler device.

[0074] Formulation Example 4

[0075] [ka] The active ingredient, starch, and cellulose are passed through a No. 20 mesh US sieve and thoroughly mixed. The solution of polyvinylpyrrolidone is mixed with the resulting powders which are then passed through a 16 mesh US sieve. The granules so produced are dried at 50°C-60°C and passed through a 16 mesh US sieve. The sodium carboxymethyl starch, magnesium stearate, and talc, previously passed through a No. 30 mesh US sieve, are then added to the granules which are mixed and then compressed in a tablet press to yield tablets each weighing 120 mg.

[0076] Formulation Example 5

[0077] [ka] The active ingredient, cellulose, starch and magnesium stearate are blended, passed through a No. 20 mesh US sieve and filled into a hard gelatin capsule in 150 mg quantities.

[0078] Formulation Example 6

[0079] [ka] The active ingredient, sucrose and xanthan gum are blended and passed through a No. 10 mesh US sieve then mixed with a previously made solution of the microcrystalline cellulose and sodium carboxymethyl cellulose in water. The sodium benzoate, flavor and color are diluted with some of the water and added, with stirring. Sufficient water is then added to produce the required volume.

[0080] Formulation Example 7

[0081] [ka] The active ingredient, cellulose, starch and magnesium stearate are blended, passed through a No. 20 mesh US sieve and filled into a hard gelatin capsule in 425 mg quantities.

[0082] Formulation Example 8

[0083] [ka] Formulation Example 9

[0084] [ka] Glycerol, water, sodium citrate, polyvinyl alcohol and polyvinylpyrrolidone are mixed together by continuous stirring and maintained at a temperature of about 90°C. Once the polymers are in solution, the solution is cooled to about 50-55°C and the active ingredient is gradually mixed in. The homogenous mixture is poured into a mold made from an inert material to produce a drug-containing diffusion matrix having a thickness of about 2-4 mm. This diffusion matrix is ​​then cut to form individual tablets having the appropriate size.

[0085] Formulation Example 9

[0086] [ka] Compound I was dissolved in water containing 20% ​​mannitol and 2% gelatin to obtain a stock solution with a concentration of 50 mg / mL (free base equivalent). The solution was divided into molds, each of which holds 100 μL of solution. The formulation was then frozen at −20° C. for 3 hours and lyophilized.

[0087] Formulation Example 8

[0088] [ka] The compound and mannitol are dissolved in water, and then water is added to obtain the desired final volume. The solution is then sterile filtered and sterile filled into appropriate vials.

[0089] In the method of the present invention, compound I can be administered without any formulation, but compound I is usually administered in the form of a pharmaceutical preparation containing pharmaceutically acceptable additives and at least one active ingredient.These preparations can be administered by various routes, including oral, buccal, rectal, intranasal, transdermal, subcutaneous, intravenous, intramuscular and intranasal.Compound I is effective as both an injectable composition and an oral composition.

[0090] For transdermal administration, a transdermal delivery device ("patch") is required. Such transdermal patches can be used to inject Compound I in a controlled amount continuously or discontinuously. The construction and use of transdermal patches to deliver drugs is well known in the art. See, for example, U.S. Patent No. 5,023,252. Such patches can be constructed for continuous, pulsatile, or immediate response delivery of drugs.

[0091] It is sometimes desirable or necessary to introduce pharmaceutical compositions directly or indirectly into the brain.Direct techniques usually require placing a drug delivery catheter into the recipient's ventricular system to bypass the blood-brain barrier.One such implantable delivery system used to transport biological factors to specific anatomical sites of the body is described in U.S. Patent No. 5,011,472, which is incorporated herein by reference.The delivery of hydrophilic drugs can be increased by intra-arterial infusion of hypertonic solutions, which can temporarily open the blood-brain barrier.

[0092] In one aspect of the present invention, a pharmaceutical formulation is provided that includes at least Compound I as described above in a formulation suitable for buccal and / or sublingual administration, or for nasal administration. This embodiment provides administration of Compound I that avoids problems in the stomach, such as first-pass metabolism by the gastric system and / or through the liver. This route of administration can also reduce adsorption time, resulting in a more rapid onset of therapeutic effect. Compound I may provide a particularly favorable solubility profile that facilitates sublingual / buccal formulations. To deliver a sufficient amount of active ingredient to the limited surface area of ​​the sublingual / buccal mucosa in the relatively short time that the formulation is in contact with that surface area to allow absorption of the active ingredient, such formulations typically require a relatively high concentration of active ingredient. Thus, the very high activity of Compound I combined with its high solubility facilitates its suitability for sublingual / buccal formulations.

[0093] Compound I is preferably formulated in unit dosage form. The term "unit dosage form" refers to physically discrete units suitable as unitary dosages for human subjects and other mammals, each unit containing a predetermined amount of active material calculated to produce the desired therapeutic effect, together with appropriate pharmaceutical excipients as described above.

[0094] The amount of Compound I necessary to be effective will depend on the route of administration selected. EXAMPLES

[0095] The following examples are illustrative and should not be construed in any way as limiting the scope of the invention.

[0096] Example 1 Compound I activity Compound I is a 5-HT lF Useful for increasing activation of 5-HT receptors. lF Increased activation of 5-HT is useful for treating a variety of disorders associated with decreased neurotransmission of serotonin in mammals, such as migraine headaches. lF See U.S. Patent No. 5,708,008, which demonstrates the relationship between receptor activation and migraine. Compound I can be prepared using methods known in the art. The preparation of Compound I is described in U.S. Patent No. 7,423,050 and U.S. Patent Application Publication No. 20080300407. To demonstrate the use of Compound I in the treatment of migraine, Compound I was found to inhibit 5-HT lF The ability of Compound I to bind to 5-HT receptor subtypes was determined. lF The ability to bind to receptor subtypes was measured essentially as described in N. Adham et al., Proceedings of the National 15th Academy of Sciences (USA), 90:408-412, 1993.

[0097] Membrane preparation: Transfected Ltk cells (human 5-HT lFMembranes were prepared from cultures of 100-well platelets (transfected with the receptor sequence). Cells were washed twice with phosphate-buffered saline, scraped off the culture dish into 5 mL of ice-cold phosphate-buffered saline, and centrifuged at 200×g for 5 min at 4° C. The pellet was resuspended in 2.5 mL of ice-cold Tris buffer (20 mM Tris-HCl, pH 7.4 at 23° C., 5 mM EDTA) and homogenized in a Wheaton tissue grinder. The lysate was then centrifuged at 200×g for 5 min at 4° C. to pellet large fragments, which were discarded. The supernatant was collected and centrifuged at 40,000×g for 20 min at 4° C. The resulting pellet was washed once with ice-cold Tris wash buffer and resuspended in a final buffer containing 50 mM Tris-HCl and 0.5 mM EDTA, pH 7.4 at 23° C. The membrane preparation was kept on ice and utilized for radioligand binding assays within 2 h. Protein concentrations were determined by the method of Bradford Anal. Biochem., 72:248-254, 1976.

[0098] Radioligand Binding: 5-HT as reported by Herrick-Davis and Titeler (J. Neurochem., 50:1624-1631, 1988) lD Using some modifications of the assay conditions, but omitting the masking ligand, 3 Radioligand binding studies were performed in 96-well microtiter plates in a total volume of 250 μL of buffer (50 mM Tris, 10 mM MgCl2, 0.2 mM EDTA, 10 μM pargyline, 0.1% ascorbate, pH 7.4 at 37° C.) at 37° C. Twelve different concentrations of [H]5-HT ranging from 0.5 nM to 100 nM were used to bind the radioligand. 3 Saturation studies were performed using 4.5–5.5 nM [H]5-HT. 3Displacement studies were performed using [H]5-HT. Compound concentrations ranging from 6 to 12 were used to complete the binding profile of the drugs in competition experiments. Incubation times were 30 min for both saturation and displacement studies, based on initial investigations that determined equilibrium binding conditions. Nonspecific binding was defined in the presence of 10 μM 5-HT. Binding was initiated by adding 50 μL (10–20 μg) of membrane homogenate. Reactions were terminated by rapid filtration through presoaked (0.5% polyethyleneimine) filters using a 48R Brandel Cell Harvester (Gaithersburg, MD). Filters were subsequently washed for 5 s with ice-cold buffer (50 mM Tris-HCl, pH=7.4 at 4°C), dried, and placed in vials containing 2.5 mL of Readi-Safe (Beckman, Fullerton, CA), and radioactivity was measured using a Beckman LS 5000TA liquid scintillation counter. 3 The efficiency of counting [H]5-HT averaged 45-50%. Binding data were analyzed by computer-assisted nonlinear regression analysis (Accufit and Accucomp, Lunden Software, Chagrin Falls, OH). IC was calculated using the Cheng-Prusoff equation (Biochem. Pharmacol., 22:3099-3108 (1973)). 50 Value K i converted to a value.

[0099] 5-HT 1F Receptor selectivity Compound I is particularly effective in inhibiting other 5-HT receptor subtypes, particularly other receptors of the 5-HT1 subclass, including, but not limited to, 5-HT 1A , 5-HT 1B , 5-HT 1D and 5-HT 1E Compared to receptor subtypes, 5-HT 1F The radioligand receptor binding assay described above was slightly modified to allow for the determination of 5-HT 1FAffinity for these other receptor subtypes can be readily determined by substituting cells transfected with the desired receptor subtype for the cells transfected with the receptor subtype. By determining the binding affinity of Compound I by such an assay, the 5-HT 1F Selective for the receptor, i.e., 5-HT 1F The affinity of Compound I for the receptors in general is higher than that for other receptor subtypes, particularly 5-HT 1B and 5-HT 1D was found to be higher than for any of the receptor subtypes.

[0100] Measurement of cAMP formation As reported by R.L. Weinshank et al., W093 / 14201, 5-HT IF 5-HT, as measured by the ability of serotonin and serotonergic drugs to inhibit forskolin-stimulated cAMP production in receptor-transfected NIH3T3 cells. lF The receptor is functionally coupled to a G-protein. Adenylate cyclase activity was determined using standard techniques. The maximal effect was achieved by serotonin. The inhibition of the test compound was divided by the maximal effect to determine the percent inhibition, E max N. Adham et al., supra; RL Weinshank, et al., Proceedings of the National Academy of Sciences (USA), 89:3630-3634, 1992; and references cited therein.

[0101] Human 5-HT lF Receptor-transfected NIH3T3 cells (estimated B from 1-point competition studies) maxCells were incubated for 20 min at 37° C., 5% CO2 in DMEM, 5 mM theophylline, 10 mM HEPES (4-[2-hydroxyethyl]-1-piperazineethanesulfonic acid) and 10 μM pargyline. Drug dose-effect curves were then conducted by adding six different final concentrations of drug, followed immediately by the addition of forskolin (10 μM). Cells were then incubated for another 10 min at 37° C., 5% CO2. The medium was aspirated and the reaction was stopped by adding 100 mM HCl. To demonstrate competitive antagonism, dose-response curves with 5-HT were measured in parallel using a fixed dose of methiothepin (0.32 μM). Plates were stored at 4°C for 15 minutes, then centrifuged at 500 x g for 5 minutes to pellet cell debris, and the supernatants were aliquoted and stored at -20°C until cAMP formation was assessed by radioimmunoassay (cAMP radioimmunoassay kit Advanced Magnetics, Cambridge, MA). Radioactivity was quantified using a Packard COBRA Auto Gamma counter equipped with data processing software. Compound I was tested, which inhibited 5-HT in the cAMP assay described above. lF It was found to be an agonist of the receptor.

[0102] Protein extravasation assay The following study was performed to determine the ability of Compound I to inhibit protein extravasation, which is also a functional assay for the neuromechanisms of migraine.

[0103] Harlan Sprague-Dawley rats (225-325 g) or guinea pigs (225-325 g) from Charles River Laboratories were anesthetized intraperitoneally with sodium pentobarbital (65 mg / kg or 45 mg / kg, respectively) and placed in a stereotaxic frame (David Kopf Instruments) with the incisor burr set at -3.5 mm for rats or -4.0 mm for guinea pigs. After a midline sagittal craniotomy, two paired holes were drilled on either side of the skull (6 mm posterior, 2.0 and 4.0 mm lateral for rats; 4 mm posterior and 3.2 and 5.2 mm lateral for guinea pigs, all coordinates referenced to bregma). Paired stainless steel stimulating electrodes (Rhodes Medical Systems, Inc.), insulated except at the ends, were lowered through the holes into both hemispheres, positioned 9 mm (rats) or 10.5 mm (guinea pigs) deep from the dura.

[0104] The femoral vein was exposed and one dose of Compound I was injected intravenously (1 mL / kg). Approximately 7 minutes later, a 50 mg / kg dose of Evans Blue fluorescent dye was also injected intravenously. In the blood, Evans Blue complexes with proteins and serves as a marker for protein extravasation. Exactly 10 minutes after Compound I injection, the left trigeminal ganglion was stimulated for 3 minutes with a current intensity of 1.0 mA (5 Hz, 4 ms duration) using a Model 273 potentiostat / galvanostat (EG&G Princeton Applied Research).

[0105] Fifteen minutes after stimulation, the animals were sacrificed and exsanguinated with 20 mL of saline. The top of the skull was removed to facilitate collection of the dura. Membrane samples were excised from both hemispheres, rinsed with water, and spread flat on a microscope slide. Once dry, the tissues were mounted with a coverslip with a 70% glycerol / water solution.

[0106] A fluorescence microscope (Zeiss) equipped with a grating monochromator and spectrophotometer was used to quantitate the amount of Evans Blue dye in each sample. An excitation wavelength of approximately 535 nm was used, and emission intensity at 600 nm was determined. The microscope was equipped with a motorized stage and linked to a personal computer, which facilitated computer-controlled movement of the stage with fluorescence measurements at 25 locations (500 μm apart) on each dural sample. The mean and standard deviation of the measurements were determined by computer.

[0107] Extravasation induced by electrical stimulation of the trigeminal ganglion was an ipsilateral effect (i.e., it occurred only in the dura on the side where the trigeminal ganglion was stimulated). This allowed the other (unstimulated) half of the dura to be used as a control. The ratio of the amount of extravasation in the dura on the stimulated side compared to the dura on the unstimulated side was calculated. Saline controls gave a ratio of approximately 2.0 in rats and approximately 1.8 in guinea pigs. In contrast, a compound that effectively blocks extravasation in the dura on the stimulated side would have a ratio of approximately 1.0. Dose-response curves were generated and the dose that inhibited extravasation by 50% (ID 50 ) was estimated. Compound I was assayed by the above procedure and was found to significantly inhibit neuronal protein extravasation.

[0108] Rabbit saphenous vein contraction Compound I was tested in the rabbit saphenous vein contraction assay to determine its ability to mediate vasoconstriction.

[0109] Male New Zealand White rabbits (3-6 lbs) (Hazleton, Kalamazoo, MI) were sacrificed by injecting a lethal dose of sodium pentobarbital (325 mg) into the ear vein. Tissues were dissected free of connective tissue and cannulated in situ with polyethylene tubing (PE50, OD=0.97 mm) and placed in a Petri dish containing modified Krebs solution (described above). The tips of two L-shaped 30-gauge stainless steel hypodermic needles were slid into the polyethylene tubing. The vessel was gently pushed from the cannula onto the needle. The needles were then separated so that the lower one was attached by thread to a fixed glass rod and the upper one was tied by thread to a transducer.

[0110] The tissue was placed in an organ bath containing 10 mL of modified Krebs solution with the following composition: 118.2 mMol NaCl, 4.6 mMol KCl, 1.6 mMol CaCl2·H2O, 1.2 mMol KH2PO4, 1.2 mMol MgSO4, 10.0 mMol dextrose, and 24.8 mMol NaHCO3. The tissue bath solution was maintained at 37°C and aerated with 95% O2 and 5% CO2. An initial optimal resting force of 1 gm was applied to the saphenous vein. Isometric contractions were recorded as grams of force change on a Beckman Dynograph equipped with a Statham UC-3 transducer and microscale accessory attachments. The tissue was allowed to equilibrate for 1 to 2 hours before exposure to drugs. Cumulative agonist concentration-response curves were performed on the tissue and tissue was not used to perform more than two agonist concentration-response curves. Results were expressed as the mean EC 50 The responses were expressed as a percentage of the maximum tissue contractile response to 67 mM KCl initially administered to each tissue.

[0111] This vasoconstriction assay allows the determination of saphenous vein contraction (EC 50 ) and % Maximum KCl Response (% max Two important parameters are measured: maximum contraction as a function of KCl (EC) and saphenous vein contraction (EC 50) is a measure of the dose required to contract tissue to 50% of the maximum response that a particular compound can mediate. The maximum response that a saphenous vein can exhibit is measured after administration of a high concentration (67 mM) of KCl. % Maximum KCl Contraction is the ratio of the maximum response that a particular compound can mediate divided by the maximum response that the tissue can produce when stimulated with KCl. For the purposes of this application, a compound may be considered to have no significant vasoconstrictor activity if it produces a maximum contraction of 5% or less relative to the contraction produced by a 67 mM KCl positive control at compound concentrations up to 100 μM.

[0112] When Compound I was tested in the saphenous vein assay described above, it was found to have no significant vasoconstrictor properties, which is in contrast to prior art compounds for treating migraine that target the neurovasoconstriction model for migraine treatment, which compounds have been selected based on their strong vasoconstrictor activity, e.g., an EC of 0.66 mM in this assay. 50 and 64.20% max This is in stark contrast to sumatriptan (a known migraine treatment) which has KCl.

[0113] specificity index 5-HT on vasoconstrictor activity 1F Compound I specificity in mediating neuroprotein extravasation can be expressed as the specificity index, which is the ratio of vasoconstriction to efficacy in inhibiting neuroprotein extravasation:

[0114] [ka] The corrected vasoconstriction was calculated by taking into account the maximum contraction to KCl for each individual compound, and was calculated as % max Vascular contraction EC divided by KCl 50 is defined as the value.

[0115] For example, sumatriptan has a 1.03 x 10 -8 Correction of vasoconstriction in EC 50 (EC 50 ÷64.20% maxKCl) and an extravasation inhibition ID of 2.6×10~8mMol / Kg 50 and exhibits a specificity index of 0.40.

[0116] Thus, the procedure for determining the specificity index of any given compound is as follows: 1. Using the radioligand binding method described above, 5-HT 1F measuring the affinity of the compound for the receptor; 2.5-HT 1F Once affinity for the receptor has been established, the compound can be determined to have 5-HT 1F Determine whether the compound is an agonist, partial agonist, or antagonist of the receptor; 3. The compound has an E of at least about 50% max if found to be an agonist or partial agonist exhibiting the above assays, measure the effectiveness of the compound in inhibiting protein extravasation and saphenous vein contraction; 4. Calculate the specificity index as above.

[0117] Compounds exhibiting a specificity index greater than 1 are useful in the methods and uses of the invention, with higher values ​​for the specificity index being preferred. A higher specificity index indicates greater specificity with respect to efficacy in inhibiting neuronal protein extravasation rather than vasoconstriction.

[0118] Example 2 A double-blind, randomized, placebo-controlled, dose-ranging study of oral Compound I in the acute treatment of migraine A study will be conducted to evaluate the efficacy (2 hour headache response) of a range of oral doses of Compound I. Secondary objectives are to investigate the time course and effect of a range of dose levels of Compound I on migraine characteristics including headache response, proportion of pain-free patients, headache recurrence, nausea, photophobia, phonophobia, vomiting, disability, rescue medication use and patient overall impression. The study will investigate the safety and tolerability of a range of doses of Compound I with respect to adverse events, physical examination, vital signs, laboratory assessments and ECG. The study protocol is outlined below: This is a prospective, randomized, double-blind, placebo-controlled, dose-ranging study in subjects with migraine. Patients are asked to treat a single migraine attack at home with the study medication. Each subject's participation in the study consists of a screening visit, including a phone call within 5 days to confirm eligibility, a treatment period of up to 8 weeks during which subjects are asked to treat one migraine attack with one of four dose levels of oral Compound I or a single dose of placebo, and a follow-up visit within 14 days of treating the attack.

[0119] After screening, subjects are randomly assigned to receive oral Compound I (50, 100, 200 or 400 mg) or a matching placebo to be used as the first treatment of a new migraine attack. Subjects are instructed not to treat attacks until all screening assessments are completed and their eligibility is confirmed by phone. Once eligibility is confirmed, subjects are asked to treat the subject's next migraine attack within 4 hours of its onset, provided that the headache severity is at least moderate at that time and does not improve. Subjects record their response over the following 48 hours using a diary card. Subjects are asked not to use rescue medication until at least 2 hours after taking the study medication. Once the attack is treated, subjects contact the clinic to schedule a follow-up visit as soon as possible within 14 days of treatment. Patients are assigned to one of the four dose levels of Compound I or a matching placebo in a 1:1:1:1:1:1 ratio according to a predefined randomization list. At least 340 patients will have one attack treated with the study drug.

[0120] Inclusion / Exclusion Criteria: Inclusion: Subjects will be included in the study only if they meet all of the following criteria: Patients with migraine with or without aura fulfilling IHS diagnostic criteria 1.1 and 1.2.1 (2004); history of migraine for at least 1 year; migraine onset before age 50 years; history of 1 to 8 migraine attacks per month; male or female patients aged 18 to 65 years; female patients of childbearing potential must be using a highly effective form of contraception (e.g., combination oral contraceptives, IUD, abstinence, vasectomy partner); able and willing to give written informed consent; able and willing to complete a migraine diary form to record details of attacks treated with the study medication.

[0121] Exclusions: Subjects will be excluded from the study if they meet any of the following criteria: history of life-threatening or intolerable adverse reactions to any triptan; use of prescription migraine prophylactic medication within 30 days prior to the screening visit and while participating in the study; pregnant or breastfeeding women; women of childbearing potential who are not using highly effective contraception; history or evidence of coronary artery disease, ischemic or hemorrhagic stroke, epilepsy, or any other condition that places the patient at high risk of seizures; history of hypertension (controlled or uncontrolled); history of orthostatic hypotension; in measurements repeated twice at screening. seated BP >160mmHg systolic or >90mmHg diastolic;current use of hemodynamically active cardiovascular medication;history or current evidence of abuse of any drug, prescription or illicit drug, or alcohol within the preceding 3 years;significant renal or hepatic impairment;already participating in this clinical trial;participation in any clinical trial of an experimental drug or device within the preceding 30 days;any medical condition or laboratory test that, in the investigator's judgment, makes the patient unsuitable for the study;known hepatitis B or C or HIV infection;subjects who are employees of the sponsor;relatives of the investigator or staff reporting directly to the investigator;Compound I, other 5-HT 1F Patients with known hypersensitivity to either the receptor agonist or the compound drug excipients; patients treated with the study drug in a prior Colucid study (patients who were screened but not treated in that protocol will not be excluded).

[0122] Evaluation criteria include: Efficacy / Pharmacodynamics: Headache severity (4 point scale: none, mild, moderate, severe); headache recurrence within 48 hours; presence or absence of nausea; phonophobia, photophobia, vomiting; interference with daily living (4 point scale: none, mild, moderate, severe); need for rescue medication within 2 to 48 hours (yes or no); patient's overall impression (7 point scale); time to headache relief and time to pain-free.

[0123] Safety: Physical examination; Adverse events (spontaneously reported); Vital signs; 12-lead ECG; Laboratory parameters; Statistical analysis Efficacy: This multicenter, randomized, double-blind, parallel-group, placebo-controlled clinical study is designed to evaluate the efficacy and safety of oral Compound I in the acute treatment of migraine. The proportion of subjects with headache relief at 2 hours post-dose is the primary efficacy parameter. The primary efficacy analysis tests the null hypothesis that the proportion of subjects with headache relief at 2 hours post-dose is the same in the five study arms against the alternative hypothesis of a positive linear trend in response rates using a Cochran-Armitage test for trend. The primary analysis will be performed in a modified intent-to-treat population defined as all subjects who treat their attacks with study medication using a one-sided test at a significance level of 5%. Patients who do not record headache severity at hour 2 or who use rescue medication before that time point will be excluded from the analysis set.

[0124] Additional efficacy analyses will compare each active dose group to the placebo group using a logistic regression model that includes data from all five treatment groups. Additional analyses will also be based on the per protocol set of subjects. No interim analyses are planned.

[0125] Sample size was estimated assuming a 40% response rate in the placebo arm and a 65% response rate in the highest active dose arm. The Nam (1987) approach was used to estimate the required sample size, assuming that treatment arms were equally spaced and response odds ratios were equal between paired adjacent dose arms. Based on a 1:1:1:1:1 randomization and a one-sided test with a 5% significance level, a total sample size of 330 patients (66 per arm) would be required for 90% power.

[0126] Safety: Adverse events will be summarized and event rates will be expressed by treatment group. Laboratory data will be summarized in terms of change from baseline by treatment group.

[0127] Example 3 Acute treatment of migraine with Compound I administered intravenously Compound I is a novel, highly selective and potent 5-HT antagonist that lacks vasoconstrictor activity. 1F It is an agonist of the receptor. Preclinical and early clinical experiments predict acute antimigraine efficacy of Compound I, which is nonvascular and primarily mediated by neurogenic mechanisms. In a multicenter, placebo-controlled, double-blind, group-sequential, adaptive treatment allocation proof-of-concept and dose-finding study, 130 patients were treated in-hospital during a migraine attack. Patients were assigned in small cohorts to intravenous dose levels of Compound I or placebo. The starting dose was 2.5 mg. Subsequent doses were adjusted upwards or downwards according to the safety and efficacy observed in the preceding cohorts. The primary outcome was headache response, defined as improvement from baseline moderate or severe headache to mild to painless headache at 2 hours after dosing. The study was designed to investigate the overall dose-response relationship, but it was not powered to distinguish between individual doses and placebo, nor to detect differential efficacy with respect to other migraine symptoms.

[0128] Forty-two patients received placebo and 88 received doses of Compound I ranging from 2.5 to 45 mg. Patients were observed in the clinic for 4 hours after treatment and recorded symptoms and adverse events up to 24 hours using a diary card. The study was terminated when the 20 mg dose met predefined efficacy stopping provisions. 54-75% of patients treated with the 10, 20, 30 and 45 mg Compound I dose groups had a 2-hour headache response compared with 45% in the placebo group (p=0.0126 for linear association of response rate with dose level). Patient global impression at 2 hours and lack of need for rescue medication also showed a statistically significant linear correlation with dose.

[0129] Compound I was generally well tolerated. Adverse events were reported by 65% ​​of patients on Compound I and 43% on placebo and were generally mild. Dizziness, paresthesias and heaviness (usually in the extremities) were more common with Compound I. At intravenous doses of 20 mg and above, Compound I proved effective in the acute treatment of migraine. Without wishing to be bound by theory, the non-vascular neurogenic mechanism of action of Compound I may provide an alternative means of treating migraine, especially in patients with contraindications to agents with vasoconstrictor activity.

[0130] method The study was a multinational, multicenter clinical trial conducted at 11 sites in Germany, 4 in Finland, and 3 in the Netherlands. The study was conducted in accordance with the Declaration of Helsinki and internationally recognized standards of Good Clinical Practice. Approval was obtained from the relevant regulatory authorities and an independent ethics committee prior to initiation. All subjects provided written informed consent. The clinical trial government identifier is NCT00384774.

[0131] Study design The study used a prospective, randomized, double-blind, placebo-controlled design with group-sequential adaptive treatment allocation (Olesen J et al., N Engl J Med 2004:350:1104-10; Hall DB et al., Contemporary Clinical Trials 2005;26:349-63). Patients were assigned to Compound I dose levels in small cohorts, with the first 20 cohorts consisting of 6 patients (4 receiving Compound I and 2 receiving placebo) and the next cohort consisting of 5 patients (4 receiving Compound I and 1 receiving placebo). The first cohort was assigned to the 2.5 mg dose level. The dose used in the next cohort depended on the headache response of the preceding cohort (relief of moderate or severe headache to mild or painless at 2 hours): if 2 or less of 4 actively treated patients responded, the dose was increased, if 3 or more of 4 actively treated patients responded, the dose was decreased. Dose adjustment rules were selected to identify doses of Compound I with similar or better efficacy than oral triptans. This dose escalation or reduction sequence was modified if 2 or more of the actively treated patients in any cohort experienced a severe but not serious adverse event, in which case the dose would be reduced in the next cohort regardless of the response rate. The occurrence of a drug-related severe adverse event would result in an automatic interruption of randomization until safety was reviewed. The lowest tolerated dose of Compound I was 1 mg, and the highest was 60 mg. Doses of Compound I or its pharmacologic acceptable salts administered intravenously over 20 minutes were not well tolerated.

[0132] The titration process was terminated for selection of an effective dose if at least five blocks of patients were treated with this dose and at least four blocks met the criterion that the decision rules required dose reduction. Alternatively, the dose selection process could be terminated without selection of an effective dose if five consecutive blocks of patients were treated with the top dose, whereupon the titration rules required dose escalation each time.

[0133] Patient Screening and Selection Patients were initially screened for eligibility at a non-migraine outpatient visit and asked to return within 4 hours of onset of a new moderate or severe migraine attack to be treated with the study medication. At the time of return, eligibility for the study was reconfirmed and patients were randomized. Patients were eligible for the study if they were 18 to 65 years of age and had at least a 1-year history of migraine with or without aura, with migraine onset before age 50 years and fulfilling IHS diagnostic criteria 1.1 and 1.2.1 (2004) (Headache Classification Subcommittee of the International Headache Society. The International Classification of Headache Disorders (2nd ed.). Cephalalgia 2004:24;Suppl 1:1-160). Patients had to experience 1 to 8 migraine attacks per month and were not using migraine prophylactic medications. Patients were in good general health and had no evidence of vascular disease or hypertension. Patients with previous triptan intolerance were excluded. Pregnant or lactating women were excluded, as were women of childbearing potential who were not using a highly reliable form of contraception.

[0134] Study Procedure Upon patient return, instructions for dilution of study drug were obtained from the online randomization system by a pharmacist or other staff member other than the investigator, who prepared the study drug for infusion. Both investigator and pharmacist were blinded to active drug or placebo, only the pharmacist was aware of the dilution. All patients received a 60 ml intravenous infusion over 20 minutes. Efficacy and safety data before and after administration of study drug were immediately entered into an electronic data collection system, allowing headache responses to be used to make dose allocations for subsequent cohorts.

[0135] After completing baseline assessments, Compound I or placebo was infused intravenously over 20 minutes and patients were monitored for safety and efficacy for at least 4 hours. Data was simultaneously entered into an online electronic data collection system. Patients were discharged after 4 hours and continued to record migraine symptoms and adverse events using diary cards for up to 24 hours.

[0136] Symptom assessment Several different symptoms were assessed. Headache severity was measured on a 4-point scale: 0=none, 1=mild, 2=moderate, 3=severe. Concomitant symptoms (nausea, vomiting, photophobia, phonophobia) were recorded as present or absent. Interference with daily activities was recorded on a 4-point scale: 0=no interference, 1=mild interference, 2=moderate interference, 3=severe interference. Data on the patient's overall impression was collected on a 7-point scale: 1=very good, 2=fairly good, 3=slightly better, 4=unchanged, 5=fairly worse, 6=fairly worse, 7=very bad.

[0137] The primary efficacy outcome was headache response, defined as a reduction in headache severity from moderate or severe headache at baseline to mild headache or no headache at 2 hours after the start of study drug infusion (HIS Clinical Trials Subcommittee. Guidelines for Controlled Trials in Migraine: second edition, Cephalosalgia 2000:20:765-786). Secondary efficacy outcomes were: headache response rate at 10, 20, 40, 60, 90, 180, and 240 minutes after the start of study drug infusion; headache freedom rate (reduction from moderate or severe headache at baseline to mild headache or no headache) at 10, 20, 40, 60, 90, 120, 180, and 240 minutes after the start of study drug; moderate or severe headache at baseline to mild headache or no headache at 2 hours after the start of study drug and no recurrence within 24 hours of the start of study drug (moderate to severe headache). sustained response rate, defined as headache at baseline becoming headache-free 2 hours after starting study drug and not recurring within 24 hours of starting study drug (did not become mild, moderate to severe); sustained pain-free rate, defined as headache at baseline becoming moderate or severe and not recurring within 24 hours of starting study drug (did not become mild, moderate to severe); presence of nausea, vomiting, photophobia, and phonophobia throughout the course of the study and the degree of clinical disability; proportion of patients using rescue medication between 2 and 24 hours after starting study drug, and patient global impression at 2 hours after starting study drug.

[0138] statistical methods A target sample size of up to 160 patients, with at least 20 patients treated at the effective dose level and at least 10 patients treated with placebo, was selected to obtain preliminary data suitable for selecting a dose range for further evaluation. When doses were assigned using a group sequential adaptive treatment allocation design, the statistical properties of hypothesis tests for comparing one or more dose levels with placebo were not known. Therefore, no formal statistical tests were used to declare the study "positive" or "negative," and the study was not powered for statistical significance. Additionally, the sample size was not powered for statistical considerations.

[0139] At the end of the study, headache response rates were summarized by dose level. The Mantel-Haenszel test was used to test for dose-response relationships. Because the study was terminated by selection of the effective dose, the Fisher exact test was used to compare headache response rates at the selected doses with placebo. In all analyses, results at each dose level (including placebo) were combined across all blocks in which that dose was used.

[0140] All patients who received any study drug were included in the analysis population. Patients were analyzed according to the treatment and dose level they actually received, which in each case was to which they were randomized. Missing values ​​were not replaced.

[0141] Patient population Overall, 372 patients were screened at 18 centers in Finland, Germany, and the Netherlands, and 130 returned to the clinic for treatment. These 130 patients constituted the analysis population. The treatment groups were generally well matched for demographic and baseline characteristics of the analysis population (Table 1).

[0142] [Table 1] In both treatment arms, the majority of patients were female: the female:male ratio was 6:1 for Compound I and 10:1 for placebo. In both treatment arms, the majority of patients were Caucasian (94.3% for Compound I and 100.0% for placebo). Patients ranged in age from 19 to 63 years, with a mean age of 38.4 years for Compound I and 40.3 years for the placebo group. The sequence of patient allocation to treatment arms is shown in Figure 1.

[0143] Effectiveness Dose escalation was terminated after 130 patients, when a predefined stopping rule based on the results at the primary endpoint identified 20 mg as the effective dose (Figures 2 and 3). A higher percentage of patients had a 2-hour headache response in the 10 mg, 20 mg, 30 mg, and 45 mg Compound I dose groups (54.2% to 75%) compared with placebo (45.2%) (Figure 3). The linear association between response rate and dose level was statistically significant (p=0.0126; Mantel-Haenszel test for trend). Due to insufficient power to compare the individual dose levels, the individual Compound I doses were not statistically significantly different from placebo at the 2-hour time point (Fisher exact test). A similar trend with increasing efficacy and increasing dose was observed for headache resolution at 2 hours after dosing (although not statistically tested). In accordance with these findings, the proportion of patients using rescue medication showed an inverse trend with dose.

[0144] Table 2 shows the percentage of patients in each group who achieved a headache response at time points 10 minutes to 4 hours. Doses of 20 mg and above began to separate from placebo as early as 20 minutes after the start of the infusion.

[0145] [Table 2] The main secondary efficacy parameters are summarized in Table 3. Patient global impression at 2 hours and use of rescue medication up to 24 hours showed significant correlations with dose (p=0.0001 and p=0.006, respectively).

[0146] [Table 3] Tolerability and safety Compound I was generally well tolerated, with no discontinuations due to serious or non-serious adverse events. The most notable adverse event was paresthesia, which was usually mild or transient and resolved rapidly after cessation of intravenous infusion (Table 4). Heaviness and fatigue also appeared to be dose-related. No patients reported triptan-like chest symptoms in association with Compound I infusion. No clinically significant changes were seen in vital signs or ECG parameters or in hematology or clinical chemistry parameters.

[0147] [Table 4] The acute antimigraine efficacy of Compound I was tested. Its effects appear to be largely mediated by primarily neurogenic and non-vascular mechanisms. A relatively novel dose-escalating adaptive study design was used to rapidly and reliably screen for efficacy and tolerability over a wide dose range while minimizing patient exposure to study drug or placebo. A clear dose-related efficacy of Compound I was found in the acute treatment of migraine attacks. The onset of headache relief was evident 20 to 40 minutes after the start of a 20-minute intravenous infusion. Compound I lacks vasoconstrictor activity at clinically relevant doses, confirming that vasoconstriction may not be a prerequisite for antimigraine efficacy, as previously suggested by the results of this study (Goldstein DJ et al., Lancet 2001;358:1230-4; Ho TW et al., Lancet 2008;372:2115-2123). One aspect of the invention includes the treatment and prevention of migraine, especially in specific subpopulations of patients who cannot tolerate or have contraindications to triptans.

[0148] Compound I was well tolerated. There were no clinically significant abnormalities in any of the safety parameters, i.e., heart rate, blood pressure, 12-lead ECG, hematology, biochemistry, and urinalysis, following administration of Compound I. No patient discontinued treatment due to side effects, and no patient reported chest symptoms or discomfort.

[0149] Compound I doses of 20 mg and above were identified as doses of interest for further evaluation. PK / PD modeling using pharmacokinetic data from this study should facilitate selection of an active dose range for evaluation when indicated by the non-parenteral route of administration.

[0150] The study had a high placebo response rate, most likely due to the conditions in which it was conducted: presenting for treatment can raise patient expectations, and studies involving parenteral administration of acute antimigraine treatments have historically often demonstrated higher placebo rates than drugs given orally (Diener HC et al., Cephalalgia 2008;28:1003-1011).

[0151] An adaptive design was used to identify the lowest effective dose. This was achieved with minimal patient exposure to ineffective low doses compared to a parallel group design, where the distribution of patients to dose groups was predefined. Furthermore, the selection of a low starting dose and gradual titration with ongoing safety monitoring ensured that risks to patients were minimized.

[0152] Further data from this study are shown in Figures 4-9. Figures 4A and 4B show that in addition to headache relief at 2 hours after iv administration of Compound I, 30 mg iv over 20 minutes completely eliminated headache ("pain-free") in a significantly greater number of patients than placebo. Numbers in bars are N treated with each dose.

[0153] FIG. 5 is a time course of response showing that 20 and 30 mg iv provide rapid onset of headache relief.

[0154] Figures 6A and 6B show intravenous administration of Compound I sustained pain response and rescue medication. Figure 6A shows that the pain does not worsen or require rescue medication within 24 hours. Figure 6B shows that the patient used rescue medication within 24 hours. 30 mg iv administration reduced headache recurrence within 24 hours and reduced the use of rescue medication. These results indicate the possibility of a good sustained response by the oral route.

[0155] Figure 7 shows the percent of reported disability following intravenous administration of Compound I. Compound I at 30 mg iv reduced the percent of reported moderate or severe disability.

[0156] Figure 8 shows the overall impression of patients after iv administration of Compound I. In particular, Figure 8 shows the percentage of patients who reported feeling "very good" or "fairly good" 2 hours after administration. The numbers in the bars are the N treated with each dose. A 30 mg iv dose of Compound I increased the number of patients who felt fair or very good.

[0157] Figure 9 shows the secondary endpoints (photophobia, phonophobia and nausea) with intravenous administration of Compound I. A dose of 30 mg iv reduced the associated symptoms of photophobia, phonophobia and nausea.

[0158] Example 4 Safety, tolerability, and pharmacokinetics of Compound I given orally The objectives of this study include: 1) to evaluate the safety, tolerability, and pharmacokinetics of oral Compound I over the range of 25-400 mg, using a liquid formulation to avoid solid formulation-dependent effects; 2) to evaluate the relative bioavailability of the tablet formulation compared to the oral liquid; 3) to evaluate the pharmacokinetics of tablet formulations of Compound I over the range of 50-400 mg; and 4) to compare the safety, tolerability, and pharmacokinetics of tablet formulations of Compound I in healthy males and females.

[0159] The study was conducted in accordance with the Declaration of Helsinki and internationally recognized standards of Good Clinical Practice. Prior to initiation, the study was approved by the German regulatory authorities and an independent ethical committee. All subjects provided written informed consent.

[0160] Study design Study 1 - A placebo-controlled, randomized dose escalation study of single oral liquid doses of Compound I 25 to 400 mg in 30 healthy male subjects.

[0161] Study 2-Part 1 was a double-blind, randomized, double-dummy comparison of Compound I 200 mg given as an oral solution and as a tablet formulation; 28 healthy male subjects were given the oral solution and the tablet in a crossover fashion on 2 separate dosing days. Part 2 was a double-blind, randomized, dose comparison; 14 male subjects (13 from Part 1 and 1 new subject) and 14 healthy female subjects were given Compound I 50 mg and 400 mg as a tablet in a crossover fashion on 2 separate dosing days. Doses of Compound I or its pharma- ceutically acceptable salts greater than 400 mg administered orally are not well tolerated.

[0162] Safety assessment The safety and tolerability of Compound I, given orally, was assessed in both studies by adverse events, vital signs, 12-lead digital ECG and blood, clinical chemistry and renal markers.

[0163] Pharmacokinetic analysis Plasma samples were analyzed for Compound I using a certified liquid chromatography with tandem mass spectrometry detection (LC / MS / MS) method. AUC t , AUC ∞ and C max The relative bioavailability of tablet and liquid formulations for α-tocopherol was assessed. A linear mixed-effects model was used to estimate log-transformed PK parameters (AUC t , AUC ∞ and C max) was fitted. Included in the model were treatment, period, and sequence as fixed factors and subjects falling within sequence as chance factors. For relative bioavailability analysis, the tablet formulation was the test and the liquid formulation was the reference. 90% confidence intervals and relative mean in-transformed AUCs for test and reference formulations t , AUC ∞ and C max The ratio was calculated.

[0164] Results: Pharmacokinetics Doses of 50 mg and above achieved plasma levels previously associated with efficacy by the intravenous route for both liquid and tablet formulations. Plasma concentration time profiles of Compound I following oral administration of solution doses of 50-400 mg compared to a 30 mg iv infusion are shown in Figure 10. The pharmacokinetics of orally administered Compound I demonstrated dose linearity from 25 to 400 mg in both men and women (Figures 11A and 11B). The relative bioavailability of the tablet versus the solution was 100% when assessed at the 200 mg dose, with the same C as the solution. max and AUC were achieved, but with a slight delay in tmax (Figure 12). The pharmacokinetic parameters of Compound I were similar following oral administration of the tablet formulation in men and women (Figure 13).

[0165] In summary, no significant differences were observed in the bioavailability of 200 mg of Compound I for the tablet and liquid formulations. Median t after administration of 50 to 400 mg Compound I tablet formulations max ranged from 1.5 to 2.5 hours. AUC t , AUC ∞ and C max Dose proportionality of Compound I at 100 mg / kg was observed in male and female subjects following administration of 50, 200 and 400 mg Compound I tablet formulations. Systemic exposure to Compound I (AUC t , AUC ∞ and C max ) were very similar in women compared to men following administration of the 50 and 400 mg Compound I tablet formulations. AUC t , AUC∞ and C max The differences noted in had no clinical relevance.

[0166] Result: Safety Both doses of the liquid and tablet formulations were well tolerated with no clinically significant effects on vital signs, ECGs or safety tests. Drowsiness, dizziness and paresthesias were the most common adverse events with both formulations, although most reports were mild and none were severe. Interestingly, parasthesiae, the most common drug-related adverse event after intravenous administration of Compound I, was substantially less common after oral administration. Adverse events were similar in both genders, except that fatigue was more common in women (50%) than in men (21%) after the 400 mg dose. A list of treatment-emergent adverse events from Study 2 is shown in Table 5 below:

[0167] [Table 5] Finally, Compound I is orally bioavailable, achieving plasma levels previously associated with acute migraine efficacy following intravenous administration at doses of 50 mg and above. The tablet formulation demonstrated a plasma profile similar to the oral solution, but did not show the expected t associated with tablet disintegration and dissolution. max By oral route, Compound I shows dose proportionality with similar pharmacokinetics in men and women.

[0168] Example 5 Prediction of therapeutically effective doses of Compound I based on the relationship between plasma concentrations and headache response The objective is to predict an oral dose range of Compound I that is at least as effective as sumatriptan in the acute treatment of migraine.

[0169] By way of background, Compound I, a neutral-acting antimigraine drug, inhibits 5-HT 1FIt is a selective agonist at the receptor and, unlike triptans, is not a vasoconstrictor. In a Phase II study with an adaptive dose allocation design, the efficacy of Compound I given as an iv infusion was established (Figure 6A). Population pharmacokinetic-pharmacodynamic (PK-PD) modeling was used to analyze the relationship between plasma concentrations and headache response. In a subsequent Phase I study, the PK of an oral liquid formulation of Compound I was studied. The relationship between plasma levels and headache response was used together with the oral PK of Compound I to predict the oral dose range expected to provide acute migraine relief.

[0170] method Phase II Study (intravenous infusion of Compound I over 20 minutes): Doses: placebo (n=42), 2.5 mg (n=4), 5 mg (n=12), 10 mg (n=24), 20 mg (n=28), 30 mg (n=16), 45 mg (n=4). PK was measured and headache was scored (4-point scale; 0-3, from no headache to severe headache) for 4 hours.

[0171] Phase I Study (Oral Liquid Formulation of Compound): Doses: 25 mg (n=6), 50 mg (n=6), 100 mg (n=14), 200 mg (n=6), 300 mg (n=6) and 400 mg (n=14). PK was monitored for 30 hours.

[0172] Background PK-PD modeling The plasma concentration versus time profile is shown by a compartmental model (Figure 16, top): the drug is assumed to be distributed in one or more interconnected hypothetical compartments, which mimics the drug absorption, distribution and excretion processes. Figure 14 is a schematic representation of the PK-PD model. The PK portion is shown as a rectangle with a vertical line, the hysteresis (lag) is shown as a rectangle with a horizontal line, and the PD portion is shown as an ellipse.

[0173] The target site is often in an organ or peripheral tissue rather than in the plasma. Therefore, distribution to the target site may result in a delay (hysteresis). This is generally explained using the "effect compartment model".

[0174] [ka] [C e : concentration at the effective site; C p :Plasma concentration;K eO : rate constant to describe the delay] The resulting continuous description of concentrations at the target site is related to the effects observed using the PD model. Many PD models have been developed with varying complexity based on physiological and mechanistic assumptions.

[0175] Modeling Steps 1. A population PK-PD model was developed to describe the relationship between plasma concentrations and headache response, which was a categorical response (scores 0 / 1 / 2 / 3, i.e. none / mild / moderate / severe), which was modeled using a proportional odds model: "an estimate of the time course probability of having a given score after administration of placebo (natural time course of attacks) or drug (drug effect on headache)."

[0176] example:

[0177] [ka] The hysteresis (delay) between plasma concentration and effect on headache response is described using an "effect compartment model".

[0178] 2. A population PK model was developed to describe the concentration-time profile of Compound I in plasma after oral administration.

[0179] 3. Using the oral Compound I PK model in combination with the concentration-effect relationship, the minimum effective oral dose of Compound I was predicted as follows: The dose should provide a more rapid onset of headache response and / or a higher response rate than intranasal sumatriptan (20 mg).

[0180] Pain reduction (score 3 / 2 to 1 / 0; placebo corrected) should be at least 12% after 30 minutes.

[0181] Because headache responses in placebo-treated subjects varied between studies, placebo-adjusted pain relief was used.

[0182] Data analysis was performed using NONMEM® version 6.2.

[0183] result: The resulting PK-PD model adequately described the headache scores after all intravenous doses of Compound I (Figure 15). Figure 15 shows the cumulative probability of having a certain headache score versus time. The dots represent the observed headache responses; the lines represent the predictions from the PK-PD model; the shaded areas indicate the prediction uncertainty resulting from the uncertainty in the parameter estimates. The doses were administered intravenously. Figure 16 shows examples of concentration-time profiles after administration of various oral doses. The dots represent the measured plasma concentrations; the lines represent the individual predictions from the PK model; the dashed lines represent the population predictions from the PK model (predictions for a typical subject in the population). The doses were administered orally.

[0184] Figure 17 shows the percent pain relief at 30 minutes post-dose versus time for selecting an effective dose. The line represents the median prediction of percent pain relief by the PK-PD model; the shaded area shows the prediction uncertainty resulting from the uncertainty in the parameter estimates. Intranasal sumatriptan; the target level when compared to placebo-corrected pain relief should be at least 12%. Since the placebo response in Phase II was 18%; the pain relief is at least 30%.

[0185] The PK model adequately described the concentration time profiles following oral administration of various doses of Compound I (Figure 16). The model was used to predict migraine relief at 30 minutes following oral administration of Compound I (Figure 17). Target levels derived from published sumatriptan data are shown in Figure 17. The predicted oral dose range required to achieve the desired therapeutic target is 170 mg or greater.

[0186] Therefore, a PK-PD model was developed that adequately describes the relationship between plasma concentration and response (headache score).Based on this concentration-response relationship, an oral dose-ranging study in migraine using an oral tablet formulation confirmed an effective dose range of 50-400 mg.

[0187] References The entire disclosures of each of the certificates of amendment, patent documents, including patent application documents, scientific articles, government reports, websites and other references mentioned herein are incorporated by reference in their entirety for all purposes.

[0188] equivalent The present invention may be embodied in other specific forms without departing from the spirit or essential characteristics of the present invention.The foregoing embodiments are therefore to be considered in all respects as illustrative rather than restrictive on the invention described herein.The scope of the present invention is therefore indicated by the appended claims rather than by the foregoing description, and all changes that come within the meaning and range of equivalence of the claims are intended to be embraced therein.

Claims

1. A pharmaceutical composition for the treatment of migraine in humans comprising 2,4,6-trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide or a pharma- ceutical acceptable salt thereof, and a pharma- ceutical acceptable excipient or carrier, wherein, for oral administration, each dose contains 125 mg of 2,4,6-trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide or a pharma- ceutical acceptable salt thereof.

2. The pharmaceutical composition of claim 1, comprising the hemisuccinate salt of 2,4,6-trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide.

3. The pharmaceutical composition of claim 1, wherein the amount of 2,4,6-trifluoro-N-[6-(1-methyl-piperidin-4-ylcarbonyl)-pyridin-2-yl]-benzamide or a pharma- ceutically acceptable salt thereof is 125 mg per dose and the composition is orally administered once a day.