Novel gamma-aminobutyric acid receptor modulators for mood disorders

Deuterated GABA NAMs targeting the α5 subunit of GABA receptors offer a fast-acting solution to depression and suicidality, enhancing efficacy and reducing side effects compared to current treatments.

JP7749896B2Active Publication Date: 2025-10-07UNIV OF MARYLAND BALTIMORE +1
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
JP2023127334
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2017-08-28
Filing Date
2023-08-03
Publication Date
2025-10-07
Estimated Expiration
2038-08-28

AI Technical Summary

Technical Problem

Current antidepressants, such as selective serotonin reuptake inhibitors, require 6-8 weeks to achieve efficacy and are only effective in approximately 50% of patients, with many having side effects and no fast-acting alternatives approved by the FDA.

Method used

Development of deuterated negative allosteric modulators (NAMs) targeting the α5 subunit of GABA receptors, which enhance pharmacological efficacy and extend half-life, allowing for rapid antidepressant effects.

Benefits of technology

The deuterated GABA NAMs provide fast-acting antidepressant effects with reduced side effects and increased bioavailability, addressing depression and suicidality in a broader patient population.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007749896000017
    Figure 0007749896000017
  • Figure 0007749896000018
    Figure 0007749896000018
  • Figure 0007749896000019
    Figure 0007749896000019
Patent Text Reader

Abstract

To provide compositions and methods for treatments for depression related disorders.SOLUTION: The present invention relates to novel α5 subunit-selective negative allosteric modulators of GABAA receptors that have been deuterated to improve their medicinal properties by prolonging their half-lives, rendering them useful as fast-acting pharmaceutical treatments for depression related disorders.SELECTED DRAWING: Figure 2
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 62 / 550,826, filed August 28, 2017, the entire contents of which are incorporated herein by reference as if set forth herein.

[0002] Government support This invention was made with government support under Grant No. MH086828 awarded by the National Institutes of Health. The United States Government has certain rights in this invention. [Background technology]

[0003] 1. Field of the Invention The present invention relates to the fields of neurology, psychiatry, pharmacology, and medicine. Specifically, the present invention relates to compositions and methods for treating, preventing, or ameliorating depression and / or other psychiatric and neurological conditions using negative allosteric modulators (NAMs) selective for gamma-aminobutyric acid (GABA) receptors containing the α5 subunit, which are deuterated at key positions to enhance their pharmacological efficacy as fast-acting antidepressant compounds. The deuterated compounds have enhanced properties, particularly because the deuteration is designed to extend their half-life in the human body.

[0004] 2. Background of the invention Gamma-aminobutyric acid A receptor (GABA A GABA is an ionotropic receptor and a ligand-gated ion channel. A GABA R is found in all organisms with a central nervous system. Due to their widespread distribution within the mammalian nervous system, they are involved in virtually all brain functions. A The endogenous ligand for R is gamma-aminobutyric acid (GABA), the major inhibitory neurotransmitter in the central nervous system. AGABA R is a heteropentameric, ligand-gated ion channel. To date, 19 GABA Rs have been identified. A Receptor subunits have been identified. Most GAB A GABA A receptors contain α, β, and γ2 subunits in a 2:2:1 stoichiometry. A The primary activation site of R is the binding site for GABA and for several drugs, including muscimol, gaboxadol, and bicuculline. The interface between the adjacent γ2 and α subunits forms the benzodiazepine site, which is an allosteric modulator of channel gating. The unique properties of the α subunit determine the pharmacological profile of this site. Receptors containing the α1, α2, or α3 subunits are potentiated by the benzodiazepine type 1 agonist zolpidem, whereas receptors containing the α5 subunit are virtually insensitive to zolpidem. Drug binding at this site regulates GABA receptor activity, including positive allosteric modulators that promote function and negative allosteric modulators that reduce function. A Recent studies have shown that the α1 subunit selectively mediates the sedative, anticonvulsant, and amnesic effects of benzodiazepines, while the α2 and α3 subunits mediate the anxiolytic effects. In addition to being anxiolytic agonists of benzodiazepines, GABA can also act as full or partial inverse agonists at the benzodiazepine site to mediate the anxiolytic effects of benzodiazepines. A There are certain drugs, exemplified by the β-carbolines, that reduce receptor function. Partial inverse agonists, in certain embodiments of the present disclosure, offer the advantage of a wider therapeutic concentration range and a lower likelihood of producing anxiety or epileptiform discharges.

[0005] The α5 subunit mRNA is highly expressed in pyramidal cells of the hippocampus and cortex (Allen Brain Atlas) and is involved in the expression of α5-containing GABA receptors. AThe receptors are localized in the dendrites of hippocampal CA1 pyramidal neurons at synaptic and extrasynaptic sites. Because disinhibition promotes the induction of long-term potentiation (LTP), and because of their selective forebrain localization, drugs that selectively inhibit α5-containing receptors are being developed as nootropics. For example, α5-containing GABA receptors A Partial inverse agonists of the receptor have been shown to enhance associative memory acquisition in a hippocampus-dependent learning task.

[0006] α5 subunit-containing GABA in animal models of depressive-like behavior A The antidepressant-like efficacy of partial inverse agonists of the receptor was first demonstrated by Fishel et al. (2015). The acute onset of antidepressant activity demonstrated using established preclinical models, for example, is highly desirable from a clinical perspective, but has not previously been attempted with these compounds. This study focused on the α5 subunit-containing GABA receptor. A This allows partial inverse agonists of the receptor to demonstrate utility as at least a treatment for depression.

[0007] Depressive disorders and their sequelae, such as suicide, are significant problems worldwide. The current gold standard treatment for depression, selective serotonin reuptake inhibitors (SSRIs), typically require administration for 6–8 weeks to achieve efficacy and are effective in only approximately 50% of patients who use them. Currently, no fast-acting antidepressants are approved by the FDA. Those currently in development exhibit numerous side effects that limit their clinical usefulness, including abuse liability and a tendency to induce psychotic-like responses. Alternative medications for depression exist; however, many of these similarly require long-term treatment before efficacy is achieved, and many of these are also ineffective or only partially effective. Therefore, there is a global need to identify novel drugs that can be used to treat depressive disorders and reduce suicide rates.

[0008] Gamma-aminobutyric acid A receptor (GABA AGABA is an ionotropic receptor and a ligand-gated ion channel. Its endogenous ligand is gamma-aminobutyric acid (GABA), the major inhibitory neurotransmitter in the central nervous system. A The primary activation site of R is the binding site for GABA and for several drugs, including muscimol, gaboxadol, and bicuculline. A The second binding site on R is the so-called benzodiazepine receptor site. Drug binding at this site is mediated by GABA receptors. A It can affect (enhance or decrease) the ability of GABA to activate R. A R are found in all organisms with a central nervous system, and because of their widespread distribution within the mammalian nervous system, they are involved in virtually all brain functions. Summary of the Invention

[0009] The present invention relates to compositions and methods for the treatment of certain medical conditions, including depression-related disorders; anxiety-related disorders; attention-related disorders; psychosis-related disorders; personality disorders; eating disorders; cognitive dysfunction (including following traumatic brain injury (TBI) or non-TBI-related cognitive dysfunction); neuropathic pain; chronic muscle or bone pain; diabetic complications resulting in nerve damage; generalized attacks of muscle weakness; recurrent daytime sleep episodes; migraine headaches; addiction; or combinations thereof.

[0010] Specifically, the present invention provides compounds of formula I: [ka] Deuterated GABA A5 -NAM compounds, wherein R1, R2, and R3 are each independently H or D, provided that at least one of R1, R2, and R3 is D, and R4 and R5 are each independently H or D.

[0011] In some embodiments, the present invention provides deuterated ethyl (S)-7-methoxy-9-oxo-11,12,13,13a-tetrahydro-9H-benzo[e]imidazo[5,1-c]pyrrolo[1,2-a][1,4]diazepine-1-carboxylate (L-655,708); 3-bromo-10-(difluoromethyl)-9H-benzo[f]imidazo[1,5-a][1,2,4]triazolo[1,5-d][1,4]diazepine (RO4938581); N-benzyl-6-ethoxy-4-oxo-1H-1, GABA selected from the group consisting of 5-naphthyridine-3-carboxamide (CP-457,920); 3-tert-butyl-7-(5-methylisoxazol-3-yl)-2-(1-methyl-1H-1,2,4-triazol-5-ylmethoxy)pyrazolo(1,5-d)(1,2,4)triazine (MRK-016); and (1,1-dioxidethiomorpholino)(6-((3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methoxy)pyridin-3-yl)methanone (RG-1662). A5 - Concerning NAM compounds. In another embodiment, the present invention relates to a compound selected from the group consisting of (3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methanol; 6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl-methoxy)nicotinonitrile; and 6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)nicotinic acid.

[0012] Preferably, deuterated GABA A5 The -NAM compound is according to formula II. [ka]

[0013] In some embodiments, the present invention also includes deuterated busmisanil-related or busmisanil-derivative compounds discussed herein, which are synthesized by (a) treating (3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methanol with or followed by a deuterium donor with a base or under basic conditions; (b) adding the product of step (a) to 6-chloronicotinonitrile or methyl 6-chloronicotinate; (c) hydrolyzing the product of step (b) to a carboxylic acid; and (d) amide coupling the product of step (c) with thiomorpholine 1,1-dioxide or a salt thereof. The deuterium donor can be DO or CDOD.

[0014] In a further embodiment, the present invention relates to a method of forming a deuterated RG-1662 compound, comprising treating a compound selected from the group consisting of 6-((3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methoxy)nicotinonitrile; 6-((3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methoxy)nicotinamide; and 6-((3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methoxy)nicotinic acid with a base in the presence of a deuterium-containing solvent. Preferably, the deuterium-containing solvent is DO.

[0015] Certain embodiments of the present invention provide a deuterated GABA compound according to claim 1, which has a longer biological half-life when administered to a mammal than a non-deuterated compound of the same structure. A5 - Concerning NAM compounds.

[0016] The present invention also relates, in certain embodiments, to a method of treating a depression-related disorder in a human subject in need thereof, the method comprising administering a therapeutically effective amount of deuterated GABA as described herein. A5 The method includes administering a deuterated GABA compound to a subject. A5The -NAM compound may be administered orally, intradermally, intramuscularly, intraperitoneally, intravenously, by insufflation, or via a skin patch, and may be administered to a subject every 0.5, 1, 2, 3, or 4 days.

[0017] In some embodiments, the method comprises administering deuterated GABA A5 The NAM compound is administered to a subject in combination with one or more additional therapies for the treatment or amelioration of depression. These therapies may include, but are not limited to, administration of an antidepressant selected from the group consisting of monoamine oxidase inhibitors, selective serotonin reuptake inhibitors, serotonin-norepinephrine reuptake inhibitors, triple reuptake inhibitors, CNS acetylcholine function modulators, stimulants, antiglucocorticoids, NMDA-type glutamate receptor antagonists, tricyclic antidepressants, and any combination thereof. The depression-related disorder may be selected from one or more of general depression, major depressive disorder (clinical depression), dysthymia, suicidality, unipolar depression, bipolar depression, psychotic depression, atypical depression, seasonal affective disorder, premenstrual dysphoric disorder, endogenous depression, catatonic depression, posttraumatic stress disorder, postpartum depression, depression resulting from illness or injury, depression resulting from drug or alcohol, treatment-resistant depression, and any combination thereof. Other disorders and conditions included in the definition of depression-related disorders are those in which these symptoms occur as a secondary consequence of some other primary medical condition, such as tumor, trauma, substance abuse disorder, alcoholism, etc. In a preferred method, deuterated GABA A5The -NAM compound is selected from the group consisting of (3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methanol; 6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl-methoxy)nicotinonitrile; 6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)nicotinic acid; and (1,1-dioxidethiomorpholino)(6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)pyridin-3-yl)methadone. Also, in a preferred method, the subject is a human. [Brief explanation of the drawings]

[0018] [Figure 1A-F] 1A-1F show NMR spectroscopic results confirming the chemical identity of intermediate compounds shown by structure, and the final product of the synthetic scheme for producing NCGC-43, as shown in Example 1 below. [Figure 2] FIG. 2 is a graph showing the results of a sucrose preference test under the conditions indicated. [Figure 3] FIG. 3 is a graph showing the results of the social interaction test under the conditions indicated. [Figure 4A] FIG. 4A is a schematic diagram of the open field test. [Figure 4B-E] 4B-4E are bar graphs showing the results of the open field test shown. [Figure 5] FIG. 5 is a graph showing the results of the elevated plus maze test shown. [Figure 6A-D] Figures 6A-6D are graphs showing the results of the forced swim test shown (% immobility time (Figure 6A), immobility latency (Figure 6B), immobility duration (Figure 6C), and immobility episodes (Figure 6D)). [Figure 7] FIG. 7 is a graph showing the dose-response relationship of NCGC-43 in the forced swimming test. DETAILED DESCRIPTION OF THE INVENTION

[0019] 1.Definition Unless otherwise specified, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art. Although various methods and materials similar or equivalent to those described herein can be used to practice or test the present invention, suitable methods and materials are described below. However, one of ordinary skill in the art will understand that the methods and materials used and described are exemplary and may not be the only ones suitable for use in the present invention. Furthermore, because measurements are subject to inherent variation, any temperature, weight, volume, time interval, pH, salinity, molality or molality, concentration, and any other measurement, amount, or numerical expression provided herein are intended to be approximate and not exact or definitive, unless expressly indicated otherwise.

[0020] Unless otherwise defined, all technical and scientific terms used herein are intended to have the same meaning as commonly understood in the art to which this invention pertains and at the time of filing. Although a variety of methods and materials similar or equivalent to those described herein can be used to practice or test the present invention, suitable methods and materials are described below. However, one of ordinary skill in the art will understand that the methods and materials used and described are exemplary and may not be the only ones suitable for use in the present invention. Furthermore, because measurements are subject to inherent variation, it should also be understood that any temperature, weight, volume, time interval, pH, salinity, molality or molality, concentration, and any other measurement, amount, or numerical expression provided herein is intended to be approximate and not intended to be exact or definitive, unless expressly indicated otherwise. Thus, where appropriate to the present invention, it is appropriate to describe various aspects of the present invention using approximate or relative terms and terms of degree commonly used in patent applications, such as dimensions, about, nearly, substantially, essentially, consisting essentially of, comprising, and effective amount, as understood by those of ordinary skill in the art.

[0021] As used herein, the term "about" means ±20% of the stated value, for example, "about 0.125" means 0.125±0.025, and "about 1.0" means 1.0±0.2.

[0022] As used herein, the term "deuterium" refers to a stable isotope of hydrogen having approximately twice the mass of the most common isotope, i.e., having a mass of approximately 2 atomic mass units.

[0023] As used herein, the term "biological half-life" refers to the time it takes for the body to eliminate half of an administered substance through normal elimination.

[0024] The term "treatment" refers to an intervention in a disease, such as administering a pharmaceutical composition to a subject in need thereof. Such treatment includes taking steps to obtain a beneficial or desired result, including alleviating, alleviating, or reversing one or more symptoms of a disease, disorder, or condition; reducing the severity of a disease, disorder, or condition; delaying or slowing the progression of a disease, disorder, or condition; restoring or stabilizing baseline values ​​(statistics) of a disease, disorder, or condition; or enhancing the efficacy of another drug beneficial in treating a disease, disorder, or condition.

[0025] As used herein, the term "depression-related disorder" includes any disorder that causes depression, is related to depression, or is defined by depression, and any disorder or condition that has depressive symptoms.As used herein, this term also includes cognitive, memory, substance abuse, and psychotic disorders.Depressive disorders include, but are not limited to, general depression, major depressive disorder (clinical depression), dysthymia, suicidality, unipolar depression, bipolar depression, psychotic depression, atypical depression, seasonal affective disorder, premenstrual dysphoric disorder, endogenous depression, catatonic depression, post-traumatic stress disorder, postpartum depression, and any combination thereof. Other disorders and conditions included in the definition of depression-related disorders are anxiety-related disorders; anhedonia; attention-related disorders; psychosis-related disorders; personality disorders; sleep disorders; eating disorders; cognitive dysfunction (including after traumatic brain injury (TBI) or non-TBI-related cognitive dysfunction); memory impairment; learning disabilities; neuropathic pain; chronic muscle or bone pain; diabetic neuropathy; generalized attacks of muscle weakness; recurrent daytime sleep episodes; migraine headaches; addictions; or combinations thereof. Other disorders and conditions included in the definition of depression-related disorders are those in which these symptoms occur as a secondary consequence of some other primary medical condition, such as a tumor, substance abuse disorder, or alcoholism.

[0026] As used herein, the term "subject in need" refers to an animal, preferably a mammal, most preferably a human. Laboratory animals, companion and service animals, farm animals, and zoo animals are included in this definition. Preferred animals include mice, rats, rabbits, monkeys, apes, and humans.

[0027] As used herein, the term "therapeutically effective amount" refers to the amount of a therapeutic agent that has the intended therapeutic effect when administered to a subject.The therapeutic effect is the effect of treating the intended disorder or condition, including the improvement of a disease, disorder, or condition, or its symptoms, such as reducing symptoms or delaying the onset or recurrence of a disease, disorder, condition, or symptom.The complete therapeutic effect may not necessarily occur by administering a single dose, but may occur only after administering a series of doses.Therefore, a therapeutically effective amount can be administered by one or multiple administrations.

[0028] 2. Overview In certain embodiments, the condition is a depression-related disorder; an anxiety-related disorder; an attention-related disorder; a psychosis-related disorder; a personality disorder; an eating disorder; a cognitive dysfunction (including after traumatic brain injury (TBI) or non-TBI-related cognitive dysfunction); neuropathic pain; chronic muscle or bone pain; diabetic complications resulting in nerve damage; generalized attacks of muscle weakness; recurrent daytime sleep episodes; migraine; addiction; alcoholism; substance use disorder; or any combination thereof. Specifically, the present invention provides an α5 subunit-containing GABA A The present invention relates to fast-acting deuterated antidepressant compositions that can act as negative allosteric modulators of R.

[0029] 3. Embodiments of the present invention A. General Commentary Embodiments of the present invention relate to compositions and methods for the treatment of one or more medical conditions, particularly including depression and similar conditions. The condition can be of any type, but in certain embodiments, the condition being treated is major depression (major depressive disorder) and / or suicidality. Using the compositions and methods of the present invention, treatment of the medical condition preferably occurs more quickly, successfully treats a larger patient population, and has fewer adverse side effects than currently known treatments for this type of illness.

[0030] In certain embodiments of the present disclosure, one or more α5 subunit-containing GABA APartial inverse agonists at the benzodiazepine binding site of the receptor restore normal function of excitatory synapses, resulting in rapid antidepressant effects and reduced suicidal ideation in unipolar and bipolar depression. Such studies have been conducted, for example, to characterize the effects of acute administration (24 hours) of α5-selective GABA-NAM in rodent models of depression with face validity, construct validity, and predictive validity, such as chronic unpredictable stress (CUS) or chronic multimodal stress (restraint, strobe light, and white noise). α5-subunit-containing GABA A The antidepressant efficacy of partial inverse agonists of the receptor can be tested in vivo in laboratory animals such as mice and rats using, for example, the sucrose preference test and the social exploration test (Amat et al., 2010). Electrophysiological and biochemical analyses can be used in vitro to detect α5 subunit-containing GABA receptors. A It will also be possible to determine the ability of receptor partial inverse agonists to restore the electrophysiological correlates of stress-induced depression. These effects in animal models can be compared to those of ketamine, a glutamate receptor blocker known to have rapid antidepressant efficacy in humans (Zarate et al., 2006).

[0031] In certain embodiments of the present disclosure, patients may undergo standard psychiatric screening according to DSM-IV criteria for a major depressive episode. In certain embodiments, saline containing one or more agonists is administered to the individual slowly (approximately 30-60 minutes), for example, via infusion. Depression-related and other rating tests, such as the Hamilton Depression Rating Scale, the Beck Depression Questionnaire, the Visual Analogue Scale for Addiction "High," and the Brief Psychotic Rating Scale, may be administered repeatedly; as just one example, they may be administered four hours after drug administration and daily for the next seven days. Antidepressant efficacy, as well as psychotropic or anxiogenic responses, may be measured based on changes in test scores, indicating efficacy of a particular compound in certain embodiments.

[0032] Certain embodiments of the present invention provide α5 subunit-containing GABA A Negative allosteric modulators of R are included, which are fast-acting antidepressants that address depression and / or reduce suicidality. Preferably, these modulators are novel deuterated compounds that offer advantages over non-deuterated modulators. These advantages may include long-term bioavailability in treated patients.

[0033] Deuterium is a naturally occurring, stable, non-radioactive isotope of hydrogen. Hydrogen consists of one electron around a nucleus composed of one proton and has a mass of approximately 1.0 atomic mass unit (AMU). While deuterium also has a single electron, its nucleus contains one neutron and one proton, resulting in an atomic mass of approximately 2.0 AMU. When excess deuterium is incorporated into a molecule in place of hydrogen, the molecule is called deuterated, and the deuterated compound resembles an all-hydrogen compound. Generally, deuterated compounds have shapes and sizes that are virtually indistinguishable from their all-hydrogen analogs. Furthermore, deuterium has significantly lower systemic toxicity. Single-celled organisms can often grow under fully deuterated conditions. Furthermore, humans can tolerate high levels of deuterium in biological fluids. Furthermore, deuterated compounds have a long history of safe use as metabolic and pharmacokinetic probes in humans. Therefore, selective deuteration, as described herein, can be used in pharmaceutical compounds and compositions to generate novel drugs that meet unmet medical needs. Several deuterated drugs are in clinical evaluation, the first of which was approved by the FDA for Huntington's disease (Austedo™; deutetrabenazine).

[0034] GABA A α5 negative allosteric modulators have been shown to act as fast-acting antidepressants in several mouse models of depression. AA use patent has been filed for the use of α5 NAM as an antidepressant drug. GABA, which has been shown to be safe (but not efficacious) in Phase 2 clinical trials as a nootropic, has been used to design pharmaceutical compositions for the fast-acting treatment of depression and related conditions. A The α5-selective NAM, (1,1-dioxidethiomorpholino)(6-((3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methoxy)pyridin-3-yl)methanone (known as RG-1662), was used as the lead compound.

[0035] In one embodiment, the present invention relates to compositions and methods of using the compositions for treating and / or ameliorating depression and / or suicidality, and other depression-related disorders in a human subject, the methods comprising administering a therapeutically effective amount of an α5 subunit-containing deuterated GABA A The method comprises administering to the subject a negative allosteric modulator of GABA R. In a more preferred embodiment, the modulator is a GABA receptor that has previously been shown to be safe in a Phase 2 clinical trial. A5 A version of RG-1662, a negative allosteric modulator (NAM), that has been modified by the substitution of deuterium for hydrogen atoms at one or more specific positions that are sites of hydrolysis in the liver to extend its half-life in the human body. [ka]

[0036] B. Compound α-subunit-containing GABA ASelective negative allosteric modulators of R (ethyl (13aS)-7-methoxy-9-oxo-11,12,13,13a-terahydro-9H-imidazo[1,5-a]pyrrolo[2,1-c][1,4]benzodiazepine-1-carboxylate (L-655,708), 3-bromo-10-(difluoromethy)-9H-benzo[f]imidazo[1,5-a][1,4]diazepine (RO4938581), N-benzyl-6-ethoxy-4-oxo-1H-1,5-naphthyridine-3-carboxamide (CP-457,920), 3- tert-Butyl-7-(5-methylisoxazol-3-yl)-2-(1-methyl-1H-1,2,4-triazol-5-ylmethoxy)pyrazolo(1,5-d)(1,2,4)triazine (MRK-016), (1,1-dioxidethiomorpholino)(6-((3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methoxy)pyridin-3-yl)methanone (RG-1662), etc., can be modified by substituting deuterium ions for hydrogen ions at positions in the molecule that are substrates for hydrolysis by degradative liver enzymes. This modification slows the rate of hydrolysis and catabolism of the compounds in the body. This prolongs the bioavailability of the compounds regardless of delivery route, enhancing their clinical utility as fast-acting antidepressants.

[0037] Existing GABA A Selective negative allosteric modulators of the α5 subunit of R are not the most effective because, due to rapid hydrolysis by catalytic liver enzymes, their pharmacokinetic profiles are too rapid (short half-lives), reducing bioavailability at the critical receptor site required to provide therapeutic relief. The introduction of deuterium at one or more sites of metabolic hydrolysis slows the rate of catabolism, thereby increasing bioavailability and therapeutic efficacy, reducing the need for frequent drug administration, and allowing for the use of smaller doses, reducing the potential for side effects and improving compliance.

[0038] The compounds according to the present invention are therefore preferably deuterated. The deuterium content at any particular hydrogen atom in the compound can range from no deuterium (or the natural abundance of deuterium) to a maximum of about 95% deuterium or more. Preferably, hydrogen atoms at sites of hydrolysis during liver metabolism are enriched with deuterium. These sites were first identified in in vitro assays using cultured hepatocytes to specifically induce their chemical substitution. When this deuteration procedure is performed on RG-1662, the compound is referred to herein as NCGC-43.

[0039] Preferred compounds are derived from GR-1662 and are selected from the group consisting of (3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methanol; 6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl-methoxy)nicotinonitrile; 6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)nicotinic acid; and (1,1-dioxidethiomorpholino)(6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)pyridin-3-yl)methadone (NCGC-43). In a preferred embodiment of the present invention, deuterated α5 subunit-selective GABA-NAM compounds are synthesized using the reactions / synthetic methods described in Example 1 and the deuterated compounds are characterized using NMR.

[0040] The compounds according to the present invention are GABA-NAM compounds: [ka] which are preferably deuterated, most preferably at positions in the compound where hepatic metabolism occurs.

[0041] Additionally, the present invention includes the following intermediate compounds: [ka]

[0042] Preferred compounds are: [ka]

[0043] The compounds of the present invention include bases and pharmaceutically acceptable hydrates, solvates, acids or their salts, which may be amorphous or in any crystalline form, or in the form of oils or waxes.Any pharmaceutically acceptable salt can be used conveniently.Generally, these salts are derived from pharmaceutically and biologically acceptable inorganic or organic acids and bases or metals.Examples of such salts include, but are not limited to, acetate, adipate, alginate, ammonium salt, aspartate, benzoate, benzenesulfonate (besylate), bicarbonate, bisulfate, butyrate, citrate, camphorate, camphorsulfonate, carbonate, cyclopentanepropionate, digluconate, dodecyl sulfate, ethanesulfonate, formate, fumarate, glucoheptonate, glycerophosphate, glycolate, hemisulfate, heptanoate, hexanoate, hydrochloride, hydrobromide, hydroiodide, 2-hydroxyethanesulfonate, lactate, magnesium salts, maleate, malonate, methanesulfonate (mesylate), 2-naphthalenesulfonate, nicotinate, nitrate, oxalate, palmoate, pectinate, persulfate, 3-phenylpropionate, phosphate, picrate, pivalate, potassium salts, propionate, salicylate, sodium salts, succinate, sulfate, tartrate, thiocyanate, toluenesulfonate (tosylate), and undecanoate salts.

[0044] The compounds also include any or all stereochemical forms of the therapeutic agents (i.e., R and / or S configuration for each asymmetric center). Thus, single enantiomers, racemic mixtures, and diastereomers of the therapeutic agents are within the scope of the invention. Also within the scope of the invention are stereoisomers and positional isomers of the therapeutic agents. The therapeutic agents of some embodiments are also intended to include compounds that differ only in the presence of one or more isotopically enriched atoms. For example, one or more atoms may be, for example, deuterium, tritium, 13 C. 14 Therapeutic agents substituted with C (or any isotopic label commonly used in the art, e.g., phosphorus, calcium, iodine, chlorine, bromine, or any other element convenient for isotopic labeling) are within the scope of the present invention.

[0045] C. Composition In a preferred method embodiment, the compounds described herein comprise one or more compounds of the present invention described herein, and comprise one or more compounds of the present invention described herein together with additional drugs, such as other types of anti-cancer drugs, and are formulated and administered as pharmaceutical compositions comprising a pharmaceutically acceptable carrier and one or more drugs. Pharmaceutically acceptable carriers refer to any convenient compound or group of compounds that are non-toxic and do not destroy or significantly reduce the pharmacological activity of the therapeutic agent with which they are formulated. Such pharmaceutically acceptable carriers or vehicles include any standard pharmaceutically acceptable solid, liquid, or gaseous carriers, such as those known and described in the art.

[0046] Suitable carriers will depend on the intended route of administration for the pharmaceutical composition, which will be determined by one skilled in the art depending on the convenience, health and condition of the subject being treated, and the site and stage of the condition being treated.

[0047] Such a route may be any that the practitioner deems most effective or convenient, taking into account the patient, the patient's general condition, and the particular condition being treated, etc. For example, routes of administration include, but are not limited to, topical and parenteral, including oral, topical, transdermal, buccal, sublingual, transmucosal delivery, wound dressing, inhalation, insufflation, rectal, vaginal, nasal, wound dressing, intravenous injection, intramuscular injection, intraarterial injection, intrathecal injection, subcutaneous injection, intradermal injection, intraperitoneal injection, direct local injection, etc. Administration may be by transfusion or infusion, and may be by an indwelling agent, an implanted pump, or an external pump, or any device known in the art.

[0048] Thus, pharmaceutical compositions may take forms including, but not limited to, tablets, capsules, caplets, lozenges, dragees, pills, granules, oral solutions, powders for dilution, powders for inhalation, vapors, gases, sterile solutions or other liquids for injection or infusion, transdermal patches, buccal patches, inserts and retainers, rectal suppositories, vaginal suppositories, creams, lotions, oils, ointments, topical coatings (e.g., wound dressings and bandages), suspensions, emulsions, lipid vesicles, and the like.

[0049] Any pharmaceutically acceptable carrier, such as a carrier or excipient, is contemplated for use with the present invention, including, for example, starch (e.g., corn starch, potato starch, rice starch), cellulose (e.g., microcrystalline cellulose, methylcellulose, etc.), sugars (e.g., lactose, sucrose, glucose, fructose, etc.), clays, minerals (e.g., talc, etc.), gums, etc. , flavor enhancers, odorants and fragrances, preservatives, colorants, flavorings, sweeteners, gels, waxes, lipids (e.g., lipid vesicles or nanoparticles), oils, polyethylene glycol, glycerin, propylene glycol, solvents (e.g., water or pharmaceutically acceptable organic solvents), saline solutions (e.g., saline, electrolyte solutions, lactated saline, etc.), emulsifiers, suspending agents, wetting agents, fillers, adjuvants, dispersing agents, binders, pH adjusters and other buffers, antimicrobial agents (e.g., benzyl alcohol, methylparaben, etc.), antioxidants (e.g., ascorbic acid, sodium bisulfite, etc.), chelating agents (e.g., EDTA, etc.), glidants (e.g., colloidal silicon dioxide), and lubricants (e.g., magnesium stearate, etc.). The compound or pharmaceutical composition comprising the compound can be provided in a container such as a blister pack, an ampoule, a bottle, or a prefilled syringe. Sustained-release and sustained-release compositions are also contemplated for use with and in embodiments of the present invention. Thus, suitable carriers may include any known components for achieving delayed, sustained, or sustained release of the active ingredient. Preferably, the pharmaceutical composition comprises a therapeutically effective amount.

[0050] D. Dosage In one embodiment of the present invention, a deuterated α5-selective GABA-NAM, such as NCGC-43, is administered to a human subject in a therapeutically effective amount by any convenient route of administration. Doses of the compound of the present invention are administered to the subject at convenient intervals, such as every 0.5, 1, 2, 3, or more days, weekly, or at any convenient interval, in a multiple dose regimen. The compound can be administered alone as monotherapy, or in combination with one or more other therapies, in the same or separate dosage forms, given simultaneously or at different times, in a single dose or multiple dose regimen.

[0051] Treatment regimens include a series of doses lasting two or more days, including one week, two weeks, several weeks, one month, 30 days, 60 days, 90 days, several months, six months, one year or more, including a single dose or doses for the remainder of the subject's life. Dosage regimens may include, for example, multiple doses per day, one dose per day or week, or chronic infusion administration lasting one hour, several hours, a full day, or more.

[0052] The dosage per administration includes any amount determined by a practitioner and depends on the size of the subject being treated, the subject's health condition, the route of administration, the condition being treated or prevented, etc. Generally, for most subjects, a dosage in the range of about 0.01 mg / kg to about 100 mg / kg is suitable, with a dosage in the range of about 0.1 mg / kg to about 50 mg / kg being preferred, about 0.1 mg / kg to about 10 mg / kg being more preferred, and most preferably about 0.2 mg / kg to about 5 mg / kg being useful. This dosage may be administered weekly, daily, or multiple times per day. Doses of about 0.1 mg, 0.2 mg, 0.25 mg, 0.5 mg, 1 mg, 5 mg, 10 mg, 20 mg, 40 mg, 80 mg, 100 mg, 250 mg, 500 mg, or 1000 mg can be administered.

[0053] Preferably, the therapeutically effective amount is GABA A All GABA receptors are activated to reduce R function by at least 10-75%. AThis results in the presence of the deuterated compound in the cerebrospinal fluid of the subject at a concentration sufficient to bind 10-75% of the R. Additionally, preferred deuterated compositions include analogs and derivatives of the deuterated RG-1662 compound with other deuterium atom substitutions to obtain enhanced bioavailability and increased half-life when administered to a human subject, and have a long half-life when administered for therapeutic purposes to a mammal, such as a human subject.

[0054] In certain embodiments, the methods of the present invention comprise administering a therapeutically effective amount of a deuterated α5 subunit-selective GABA-NAM in combination (sequentially or simultaneously) with another antidepressant, which may include, for example, one or more of a monoamine oxidase inhibitor, a selective serotonin reuptake inhibitor, a serotonin-norepinephrine reuptake inhibitor, a triple reuptake inhibitor, a modulator of CNS acetylcholine function, a stimulant, an antiglucocorticoid, an NMDA-type glutamate receptor antagonist, a tricyclic antidepressant, a drug used to reduce craving and withdrawal in substance abuse disorders or alcoholism, and any combination thereof.

[0055] E. Method RG-1662 is a component of GABA A5 -NAM compounds have potential utility in the treatment of psychiatric and neurological conditions such as Down's syndrome, bipolar disorder, pathological anxiety, and autism spectrum disorder. In this regard, the present invention relates to a method for treating, preventing, or ameliorating at least one symptom in an individual suffering from a depression-related disorder as defined above.

[0056] The subject intended to be " in need " of the method of the present invention refers to any animal, preferably mammal, and most preferably human patient, suffering from depression-related disorders, including any disorder that causes depression, is related to depression, or is defined by depression, and any disorder or condition that has depressive symptoms.As used herein, this term also includes cognitive, memory, and psychotic disorders.Depressive disorders include but are not limited to general depression, major depressive disorder (clinical depression), dysthymia, suicidality, unipolar depression, bipolar depression, psychotic depression, atypical depression, seasonal affective disorder, premenstrual dysphoric disorder, endogenous depression, catatonic depression, post-traumatic stress disorder, postpartum depression, post-traumatic stress disorder, and any combination thereof. Other disorders and conditions included in the definition of depression-related disorders are anxiety-related disorders; anhedonia; attention-related disorders; psychosis-related disorders; personality disorders; sleep disorders; eating disorders; cognitive dysfunction (including those following traumatic brain injury (TBI) or non-TBI-related cognitive dysfunction); memory disorders; learning disorders; neuropathic pain; chronic muscle or bone pain; diabetic neuropathy; generalized attacks of muscle weakness; recurrent daytime sleep episodes; migraine headaches; addiction; or combinations thereof. Other disorders and conditions included in the definition of depression-related disorders are those in which these symptoms occur as a secondary result of some other primary medical condition, such as tumors, substance abuse disorders, or alcoholism. Such subjects are treated by administering NCGC-43 or a composition of the deuterated RG-1662 compound in an amount of about 0.1 mg to about 1000 mg, preferably administered approximately daily, weekly, monthly, or on an as-needed basis. Preferred routes of administration are oral, topical, transdermal, buccal, sublingual, transmucosal delivery, wound dressing, inhalation, insufflation, rectal, vaginal, nasal, wound dressing, intravenous injection, intramuscular injection, intraarterial injection, intrathecal injection, subcutaneous injection, intradermal injection, intraperitoneal injection, direct local injection, etc. Administration can be by transfusion or infusion, and can be by an indwelling agent, an implanted pump, or an external pump, or any device known in the art.

[0057] 4. Working Example The present invention is not limited to the specific processes, compositions, or methods described, as these processes, compositions, or methods may vary. The terminology used in the description is for the purpose of describing particular modes or embodiments only and is not intended to limit the scope of the present invention, which is limited only by the appended claims. Although any methods and materials similar or equivalent to those described herein can be used to practice or test embodiments of the present invention, the preferred methods, devices, and materials are described below. All publications mentioned herein are incorporated by reference; nothing herein should be construed as an admission that the present invention is not entitled to antedate such disclosure by virtue of prior invention.

[0058] Example 1: Chemical synthesis method. [ka]

[0059] NCGC00508843 was synthesized from (3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methanol as follows. Treatment of (3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methanol with sodium deuteroxide in a mixture of heavy water and deuterated methanol at elevated temperature yielded (3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methanol. This was followed by aromatic nucleophilic substitution with 6-chloronicotinonitrile to give 6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)nicotinonitrile. Hydrolysis of the nitrile to the acid in a deuterated solvent also increased deuterium incorporation to 95%. Finally, amide coupling with thiomorpholine 1,1-dioxide yielded NCGC-43.

[0060] The deuterated compound was synthesized from commercially available materials in four steps from RG-1662 to produce (1,1-dioxidethiomorpholino)(6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)pyridin-3-yl)methanone (NCGC00508843; NCGC-43) in 33% overall yield. 1 Determined to be 95% by 1 H NMR. [ka]

[0061] The synthesis of 3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methanol was carried out as follows: 3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methanol (500 mg, 2.4 mmol) was placed in a microwave vial equipped with a stir bar. To this was added 2.0 mL of deuterium oxide, 8.0 mL of CD3OD in DO, and 1.0 mL of 30% NaOD. The vial was sealed and heated to 85°C for 2 hours using microwave irradiation. The vial was then cooled and quenched by addition to aqueous ammonium chloride solution. The compound was extracted into ethyl acetate, and the solvent was removed by rotary evaporation to afford the title product as a white solid in 99% yield (504 mg) without further purification. 1 1 H NMR analysis showed approximately 80% deuterium incorporation. 1 H NMR(400MHz,cdcl3)δ7.91-7.68(m,2H),7.18-6.98(m,2H),4.48(s,2H),2.41-2.36(m,0.6H,80% deuterium incorporation). 13 C NMR(101MHz,cdcl3)δ168.7,163.7(d,J c-F =25l.5Hz, 1C) 161.7, 130.4, 130.3, 125.2, 116.1, 115.9, 113.0, 53.6, 10.7 (m, CD splitting). MS: Predicted: 211.2 (M+H). Measured: 211.1. [ka]

[0062] 6-((3-(4-Fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)nicotinonitrile was synthesized as follows: To a solution of 3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methanol (504 mg, 2.4 mmol) in tetrahydrofuran (THF) (5.0 mL) was added sodium hydride (120 mg, 2.9 mmol, 60% dispersion in mineral oil) at 0 °C. Next, a solution of 6-chloronicotinonitrile (400 mg, 2.9 mmol) in THF (5.0 mL) was added via syringe. The reaction was allowed to warm to room temperature and stirred for 2 hours. The reaction was then quenched by addition to aqueous sodium bicarbonate. The reaction was extracted into ethyl acetate, and the solvent was removed by rotary evaporation. Purification by silica gel chromatography (0% to 100% ethyl acetate in hexanes) gave the title product as a white solid in 75% yield (560 mg). Deuterium incorporation was maintained at approximately 80%. 1 H NMR(400MHz,cdcl3)δ8.47(dd,J=2.3,0.8Hz, 1 H), 7.81(dd, J=8.7, 2.3Hz, 1 H),7.77-7.66(m,2H),7.19-7.05(m,2H),6.84(dd,J=8.7,0.8Hz, 1 H), 5.29 (s, 2H), 2.57-2.51 (m, 0.6H, 80% deuterium incorporation). 13 C NMR(101MHz,cdcl3)δ170.3,164.8,163.8(d,J c-F =250.5Hz,IC)162.0,151.7,141.5,130.3,130.2,125.2(d,J c_p =3.0 Hz, 1C), 117.0, 116.2, 116.0, 112.2, 109.1, 103.3, 57.8, 11.2 (m, CD splitting). MS: Predicted: 313.3 (M+H). Measured: 313.1. [ka]

[0063] 6-((3-(4-Fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)nicotinic acid was synthesized as follows: Deuterium oxide (5.0 ml) and sodium deuteroxide (2.5 g, 18 mmol, 30 wt % in DO) were added to a vial containing a solution of 6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)nicotinonitrile (560 mg, 1.8 mmol) in d4-methanol (7.0 mL). The vial was sealed, and the reaction was heated to 55° C. and stirred for 16 hours. The vial was then cooled and quenched with aqueous hydrochloric acid. The pH was adjusted to 2, and the reaction was extracted with ethyl acetate to give the crude product (560 mg), which was used without further purification. Deuterium incorporation increased to approximately 95% incorporation. [ka]

[0064] (1,1-Dioxidethiomorpholino)(6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)pyridin-3-yl)methanone (NCGC00508843) was synthesized as follows: Crude 6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)nicotinic acid (560 mg, 1.7 mol) was dissolved in dimethylformamide (DMF) (3.0 mL). To this was added thiomorpholine, 1,1-dioxide hydrochloride (350 mg, 2.0 mmol), followed by hexafluorophosphate azabenzotriazole tetramethyluronium (HATU) (770 mg, 2.0 mmol) and trimethylamine (350 mg, 3.4 mmol). The reaction was stirred for 2 hours. This was then poured into water and extracted with diethyl ether (3X). The organic extracts were combined and the solvent removed by rotary evaporation. Purification by silica gel chromatography (0% to 100% ethyl acetate in hexanes) afforded the desired product. The solvent was removed, the compound redissolved in ethanol, and the ethanol removed by rotary evaporation to afford the desired product as a white solid in 45% yield (340 mg). 1 Deuterium incorporation was determined to be 95% by 1 H NMR. 1 H NMR(400MHz,cdcl3)δ8.28(dt,J=2.4,0.8Hz, 1 H),7.80-7.72(m,2H),7.70(ddd,J=8.5,2.4,0.7Hz, l H),7.18-7.08(m,2H),6.82(dt,J=8.6,0.8Hz, l H),5.26(s,2H),4.24-3.95(m,4H),3.12-3.02(m,4H),2.55-2.50(m,0.05H(95% deuterium)). 13 C NMR(101MHz,cd3od)δ171.8,170.7,165.4,165.l(d,J c-F= 247 Hz, 1C) 163.3, 147.5, 139.8, 131.6, 131.5, 125.6, 117.0, 116.8, 112.1, 111.8, 111.0, 58.1, 52.7, 38.9. MS: Predicted: 449.5 (M+H). Found: 449.1. Melting point: 132.3°C. [ka] For NMR spectra of intermediate compounds, see the labeled spectra in Figure 1. If the final compound is not stable as the HCl salt, an alternative salt can be used or the compound can be formulated as the free base.

[0065] Example 2. Preclinical studies of the lack of antidepressant and anxiogenic effects. Figure 2 compares NCGC-43 and ketamine in the sucrose preference test, demonstrating the ketamine-like rapid and sustained antidepressant effects of NCGC-43. For the sucrose preference test, rats were administered an overnight two-bottle choice task (here, sucrose solution consumption is shown as a percentage of total solution consumed) prior to the onset of stress (baseline), immediately following 14 days of chronic multimodal stress, and 24 h, 7 days, and 14 days after injection of NCGC-43 (3 mg / kg, gray), ketamine (20 mg / kg, orange), or vehicle (DMSO solution, blue) during daily chronic multimodal stress. The control group received no stress or drugs (yellow). Chronic stress reduced sucrose preference, a sign of anhedonia, whereas a single injection of ketamine or NCGC-43 restored sucrose preference in a rapid (within 24 hours) and sustained (up to 14 days) manner.

[0066] The effects of NCGC-43 were comparable to those of ketamine, which is known to produce rapid and long-lasting antidepressant effects in humans.

[0067] Figure 3 compares NCGC-43 and ketamine in the social interaction test, demonstrating the ketamine-like rapid and sustained antidepressant effects of NCGC-43. In the social interaction test, rats were given the choice between spending time in a chamber with a newly placed juvenile rat or in a chamber with an empty cage. In the social interaction test, rats were given the choice between spending time in a chamber with a newly placed juvenile rat or in a chamber with an empty cage before stress onset (baseline), immediately after 14 days of chronic multimodal stress, and 24 hours after injection of NCGC-43 (3 mg / kg, gray), ketamine (20 mg / kg, orange), or vehicle (DMSO solution, blue). Social interaction was calculated as the percent of time spent with the novel animal. The control group received no stress or drug (yellow). Chronic stress reduced social interaction, a sign of anhedonia, while a single injection of ketamine or NCGC-43 restored their preference for interacting with novel animals.

[0068] Figure 4 shows the effect of NCGC-43 in the open field test. Figure 4A is a schematic diagram of the open field test. Figure 4B shows that neither chronic stress nor injection of NCGC-43 or vehicle had any significant effect on overall locomotor activity. Figure 4C shows that neither chronic stress nor injection of NCGC-43 or vehicle had any significant effect on the time animals spent in the corners and sides during the test procedure, consistent with no change in the animals' anxiety state under either condition. Figure 4D shows that neither chronic stress nor injection of NCGC-43 or vehicle had any significant effect on the proportion of time animals spent in the center of the chamber versus the corners and sides during the test procedure, consistent with no change in the animals' anxiety state under either condition. Figure 4E shows that neither chronic stress nor injection of NCGC-43 or vehicle had any significant effect on the latency before the animals first entered the center of the chamber, consistent with no change in the animals' anxiety state, whereas NCGC-43 slightly reduced the latency, consistent with a slight anxiolytic effect. Behavioral measurements were performed before stress onset (baseline), immediately after 14 days of chronic multimodal stress, and 24 hours after injection of NCGC-43 (3 mg / kg) or vehicle (DMSO solution).

[0069] Figure 5 shows a comparison of NCGC-43 and ketamine in the elevated plus maze, demonstrating the lack of an anxiolytic response to NCGC-43. In the elevated plus maze test, rats were given the choice of spending time in one of two arms (one closed, one open) of the elevated plus maze immediately after 14 days of chronic multimodal stress and 24 hours after injection of NCGC-43 (3 mg / kg) or ketamine (20 mg / kg). The control group received no stress and vehicle injection (DMSO). A single injection of ketamine increased the percentage of time rats spent in the closed arm, consistent with an increase in anxiety or fear. Neither stress, NCGC-43, nor vehicle injection affected the time spent in the closed arm, consistent with their failure to increase anxiety or fear.

[0070] Figure 6 shows a comparison of NCGC-43 and ketamine in the forced swim test. In the forced swim test, untreated rats and rats subjected to 14 days of chronic multimodal stress were placed in a water-filled tank (5 min) 1 or 24 h after injection of NCGC-43 (3 mg / kg), ketamine (20 mg / kg), or vehicle (DMSO solution). The animals were monitored for the time spent immobile (Figure 6A) and the latency to stop struggling and become immobile (Figure 6B), a behavioral response referred to as the rodent analog of "behavioral despair." Twenty-four hours after NCGC-43 and ketamine injection, there was a decrease in the time spent immobile (Figure 6A) and an increase in the latency to stop struggling and become immobile (Figure 6B) compared to stressed vehicle-treated animals. Both NCGC-43 and ketamine exhibited antidepressant-like responses in this test. Comparison of responses at 1 hour and 24 hours suggests that NCGC-43 exhibits rapid and sustained effects similar to those previously described for ketamine (Zanos et al., 2016). See also Figures 6C and 6D.

[0071] Figure 7 shows the dose-response relationship of NCGC-43 in the forced swim test. We observed that increasing doses of NCGC-43 delivered intraperitoneally had a greater effect on immobility latency, whether measured 1 or 24 hours after injection, with significant efficacy at 1 and 3 mg / kg.

[0072] Example 3. Metabolic stability studies in hepatocytes. The liver is the major metabolic organ in mammals. Busmisanil is metabolized as follows: [ka]

[0073] Table 1 below shows data on the half-life of RG-1662 in vitro in rat and human liver hepatocytes, demonstrating the increased half-life of the deuterated compound. Stability is improved in human hepatocytes compared to rat hepatocytes, with variations occurring between hepatocyte assays. Deuterated RG-1662 compounds are therefore more metabolically stable. A longer half-life also allows for less frequent administration. Preferred compounds are more potent and effective, and are preferably deuterated. Deuteration is preferably performed at the site of metabolism, as incorporation of deuterium atoms at the site of metabolism more readily extends the half-life of the compound. [Table 1]

[0074] In a second study, stability studies showed rapid metabolism in rat hepatocytes and less rapid metabolism in human hepatocytes, with a rat half-life of 0.33 hours and a human half-life of 6 hours. These assays were followed up with metabolite identification studies to confirm the site of hydrolysis.

[0075] References All references cited below and throughout this specification are hereby incorporated by reference in their entirety. 1. Fischelle, et al., Neuropsychopharmacology, 40:2499-2509, 2015. 2. International Application No. PCT / US2015 / 023667. 3.Zanos,et al.,Nature,533:481-486,2016.

Claims

1. Formula I: 【Chemical 1】 (In the formula, R 1 , R 2 , and R 3 is D, and R 4 and R 5 is H) Deuterated GABA A5 - A method for forming a NAM compound, comprising: (a) treating (3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methanol with a base or under basic conditions in the presence of or followed by a deuterium donor; (b) adding the product of step (a) to 6-chloronicotinonitrile or methyl 6-chloronicotinate; (c) hydrolyzing the product of step (b) to a carboxylic acid; and (d) amide coupling the product of step (c) with thiomorpholine 1,1-dioxide or a salt thereof. A method comprising:

2. The deuterium donor is D 2 O or CD 3 OD.

3. Formula I: 【Chemistry 2】 (In the formula, R 1 , R 2 , and R 3 is D, and R 4 and R 5 is H) Deuterated GABA A5 - A method for forming a NAM compound, comprising: In the presence of a deuterium-containing solvent, 6-((3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methoxy)nicotinonitrile; 6-((3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methoxy)nicotinamide; and 6-((3-(4-fluorophenyl)-5-methylisoxazol-4-yl)methoxy)nicotinic acid A method comprising treating a compound selected from the group consisting of:

4. The deuterium-containing solvent is D 2 The method of claim 3, wherein the hydroxyl group is O.

5. Deuterated GABA A5 -NAM compound (1,1-dioxidethiomorpholino)(6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)pyridin-3-yl)methanone.

6. Deuterated GABA A5 10. The method of claim 1, wherein the NAM compound has a longer biological half-life when administered to a mammal than a non-deuterated compound of the same structure.

7. Deuterated GABA A5 - the NAM compound is used in a method for treating a depression-related disorder in a human subject in need thereof; The method of treating comprises administering deuterated GABA to the subject. A5 The method of claim 1, comprising administering a therapeutically effective amount of a NAM compound.

8. Deuterated GABA A5 The method of claim 7, wherein the NAM compound is administered orally, intradermally, intramuscularly, intraperitoneally, intravenously, by insufflation, or with a skin patch.

9. Deuterated GABA A5 8. The method of claim 7, wherein the NAM compound is administered to the subject every 0.5, 1, 2, 3, or 4 days.

10. Deuterated GABA A5 8. The method of claim 7, wherein the NAM compound is administered to the subject in combination with one or more additional therapies for the treatment or amelioration of depression.

11. 11. The method of claim 10, wherein the one or more additional therapies comprise administration of an antidepressant selected from the group consisting of a monoamine oxidase inhibitor, a selective serotonin reuptake inhibitor, a serotonin-norepinephrine reuptake inhibitor, a triple reuptake inhibitor, a modulator of CNS acetylcholine function, a stimulant, an antiglucocorticoid, an NMDA-type glutamate receptor antagonist, a tricyclic antidepressant, and any combination thereof.

12. 8. The method of claim 7, wherein the depression-related disorder is selected from the group consisting of general depression, major depressive disorder (clinical depression), dysthymia, suicidality, unipolar depression, bipolar depression, psychotic depression, atypical depression, seasonal affective disorder, premenstrual dysphoric disorder, endogenous depression, catatonic depression, post-traumatic stress disorder, postpartum depression, depression resulting from illness or injury, depression resulting from drugs or alcohol, treatment-resistant depression, and any combination thereof.

13. 8. The method of claim 7, wherein the depression-related disorder is a secondary consequence of some other primary medical condition, such as a tumor, trauma, substance abuse disorder, alcoholism, etc.

14. Deuterated GABA A5 14. The method of any one of claims 6 to 13, wherein the -NAM compound is (1,1-dioxidethiomorpholino)(6-((3-(4-fluorophenyl)-5-(methyl-d3)isoxazol-4-yl)methoxy)pyridin-3-yl)methanone.

Citation Information

Patent Citations

  • isoxazolopyridine derivatives

    JP2011505401A

  • Method for preparing isoxazolyl-methoxynicotinic acid

    JP2014530831A

  • JPP7403050B