Therapeutic phenethylamine compositions and methods of use thereof

Novel deutero/fluoro-substituted phenethylamines address the limitations of current compounds by improving bioavailability and reducing toxicity, enabling effective treatment of serotonin 5-HT2 receptor disorders through controlled delivery systems.

JP7802769B2Active Publication Date: 2026-01-20CYBIN IRL LTD
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Patent Information

Application Number
JP2023512063
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-30
Filing Date
2021-08-18
Publication Date
2026-01-20
Estimated Expiration
2041-08-18

AI Technical Summary

Technical Problem

Current 2C-X phenethylamine compounds face challenges with low oral bioavailability, slow onset of action, high doses required, rapid metabolism, and adverse psychiatric and cardiovascular effects, limiting their clinical application for treating serotonin 5-HT2 receptor-associated disorders.

Method used

Development of novel phenethylamine compounds with site-specific deuteration/fluorination for improved bioavailability, brain penetration, and enzymatic stability, formulated in single-layer oral tablets and inhalable mist, minimizing toxic metabolites and adverse events.

Benefits of technology

The novel compounds achieve rapid onset, controlled drug exposure, and reduced toxicity, enhancing therapeutic efficacy for serotonin 5-HT2 receptor-related disorders with improved pharmacokinetic properties.

✦ Generated by Eureka AI based on patent content.

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Abstract

Disclosed are deuterated 2C-X phenethylamine compounds, their use in treating diseases associated with the serotonin 5-HT2 receptor, pharmaceutical compositions, e.g., tablet compositions, and kits containing the compounds, methods of delivering the compounds in a mist via inhalation, and methods of treating diseases or disorders associated with the serotonin 5-HT2 receptor, e.g., central nervous system (CNS) disorders or psychological disorders, using the compounds of the invention.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 63 / 067,303, filed August 18, 2020, and U.S. Provisional Patent Application No. 63 / 131,974, filed December 30, 2020, each of which is incorporated by reference in its entirety.

[0002] The present disclosure relates generally to compounds, and in some embodiments, to serotonin 5-HT2 receptor agonists, and to uses in treating diseases associated with the 5-HT2 receptor. [Background technology]

[0003] The "Background" statements provided herein are intended to generally present the context of the present disclosure, and the inventors' work is not expressly or implicitly admitted as prior art to the present invention, to the extent that it is described in the Background section, or to the extent that it is described in a manner that would not qualify as prior art at the time of filing.

[0004] Serotonin 5-HT2 receptors (5-HT2Rs) contain 5-HT 2A , 5-HT 2B , and 5-HT 2CThere are three closely related subtypes of the serotonergic receptor, which is the primary target of the classical serotonergic hallucinogens lysergic acid diethylamide (LSD) and 2,5-dimethoxy-4-bromoamphetamine (DOB). Classic serotonergic hallucinogens and entactogens are being actively investigated by the medical community for the alleviation of many central nervous system (CNS) disorders (Reiff, CM, Richman, EE, Nemeroff, CB, Carpenter, LL, Widge, AS, Rodriguez, CI, Kalin, NH, and McDonald, WM, 2020, Psychedelics and Psychedelic-Assisted Psychotherapy, Am J Psychiatry 177, 391-410). Such studies include, for example, (i) post-traumatic stress disorder (PTSD) (Jerome, L., Feduccia, AA, Wang, JB, Hamilton, S., Yazar-Klosinski, B., Emerson, A., Mithoefer, MC, and Doblin, R., 2020, Long-term follow-up outcomes of MDMA-assisted psychotherapy for treatment of PTSD: a longitudinal pooled analysis of six phase 2 trials, Psychopharmacology (Berl) 237, 2485-2497), (ii) major depressive disorder (MDD), and (iii) treatment-resistant depression (TRD) (Goldberg, SB, Pace, BT, Nicholas, CR, Raison, CL, and Hutson, PR, 2020, The experimental effects of psilocybin on symptoms of anxiety and depression: A meta-analysis, Psychiatry Res 284,112749), (iv) obsessive-compulsive disorder (OCD) (Moreno, FA, Wiegand, CB, Taitano, EK, and Delgado, PL,2006,Safety, tolerability, and efficacy of psilocybin in 9 patients with obsessive-compulsive disorder, J Clin Psychiatry 67,1735-1740), (v) social anxiety disorder (ClinicalTrials.gov, number NCT02008396), (vi) substance use disorders including but not limited to alcohol use disorder, opioid use disorder, amphetamine use disorder, nicotine use disorder, and cocaine use disorder, (vii) anorexia nervosa, (viii) bulimia nervosa (ClinicalTrials.gov, numbers NCT04454684 and NCT04052568), (ix) Alzheimer's disease (ClinicalTrials.gov, number NCT04123314), and (x) cluster headache and migraine (Nichols, DE,2016,Psychedelics, Pharmacol Rev 68,264-355;Johnson,MW,Hendricks,PS,Barrett,FS,and Griffiths,RR,2019,Classic psychedelics:An integrative review of epidemiology,therapeutics,mystical experience,and brain network function,Pharmacol Ther 197,83-102;Sewell,RA,Halpern,JH,and Pope, HG, Jr., 2006, Response of cluster headache to psilocybin and LSD, Neurology 66, 1920-1922; ClinicalTrials.gov, number NCT04218539). .

[0005] These drugs are also being investigated for the alleviation of autonomic nervous system conditions, particularly pulmonary disorders (e.g., asthma and chronic obstructive pulmonary disease (COPD)) and cardiovascular disorders (e.g., atherosclerosis) (Nichols, DE, Johnson, MW, and Nichols, CD, 2017, Psychedelics as Medicines: An Emerging New Paradigm, Clin Pharmacol Ther 101, 209-219; Flanagan, TW, Sebastian, MN, Battaglia, DM, Foster, TP, Cormier, SA, and Nichols, CD, 2019, 5-HT2 receptor activation alleviates airway inflammation and structural remodeling in a chronic mouse asthma model, Life Sci 236, 116-790; Flanagan, TW, Sebastian, MN, Battaglia, DM, Foster, TP, Maillet, EL, and Nichols, CD, 2019, Activation of 5-HT2 Receptors Reduces Inflammation in Vascular Tissue and Cholesterol Levels in High-Fat Diet-Fed Apolipoprotein E Knockout Mice,Sci Rep 9,13444;Sexton,JD,Nichols,CD,and Hendricks,PS,2019,Population Survey Data Informing the Therapeutic Potential of Classic and Novel Phenethylamine,Tryptamine,and Lysergamide Psychedelics, Front Psychiatry 10,896).

[0006] Some studies have progressed to Phase III trials, such as the use of 3,4-methylenedioxymethamphetamine (MDMA) for the treatment of PTSD (Feduccia, AA, Jerome, L., Yazar-Klosinski, B., Emerson, A., Mithoefer, MC, and Doblin, R., 2019, Breakthrough for Trauma Treatment: Safety and Efficacy of MDMA-Assisted Psychotherapy Compared to Paroxetine and Sertraline, Front Psychiatry 10,650), and a Phase I trial of 3,4,5-trimethoxyphenethylamine (mescaline) has begun (ClinicalTrials.gov, number NCT04227756).

[0007] Mechanistically, the therapeutic effects of the hallucinogen phenethylamine are mediated by the interaction of phenethylamine with serotonin (5-HT) receptors, particularly 5-HT 2A It is thought to be mediated by interaction with 5-HT receptors. 1A Other targets, including 5-HT receptors, may also be involved (Nichols, DE, 2016, Psychedelics, Pharmacol Rev 68, 264-355; Canal, CE, 2018, Serotonergic Psychedelics: Experimental Approaches for Assessing Mechanisms of Action, Handb Exp Pharmacol 252, 227-260). 2CReceptor engagement may be responsible for the anti-addictive properties reported for classical hallucinogens (Canal, CE, and Murnane, KS, 2017, The serotonin 5-HT2C receptor and the non-addictive nature of classical hallucinogens, J Psychopharmacol 31, 127-143). The effects of the entactogen phenethylamine are primarily mediated by interaction with monoamine transporters, particularly the serotonin (SERT) and dopamine (DAT) transporters (Jayanthi, LD, and Ramamoorthy, S., 2005, Regulation of monoamine transporters: influence of psychostimulants and therapeutic antidepressants, AAPS J 7, E728-738).

[0008] The safety of hallucinogens and entactogens remains a significant challenge for their clinical application (Hasler, F., Grimberg, U., Benz, MA, Huber, T., and Vollenweider, FX, 2004, Acute psychological and physiological effects of psilocybin in healthy humans: a double-blind, placebo-controlled dose-effect study, Psychopharmacology (Berl) 172, 145-156; Carbonaro, TM, Bradstreet, MP, Barrett, FS, MacLean, KA, Jesse, R., Johnson, MW, and Griffiths, RR, 2016, Survey study of challenging experiences after ingesting psilocybin mushrooms: Acute and enduring positive and negative consequences, J Psychopharmacol 30, 1268-1278; Garcia-Romeu, A., Kersgaard, B., and Addy,PH,2016,Clinical applications of hallucinogens:A review,Exp Clin Psychopharmacol 24,229-268;Morgan,L.,2020,MDMA-assisted psychotherapy for people diagnosed with treatment-resistant PTSD:what it is and what it isn't,Ann Gen Psychiatry 19,33;Schenk,S.,and Newcombe, D., 2018, Methylenedioxymethamphetamine (MDMA) in Psychiatry: Pros, Cons, and Suggestions, J Clin Psychopharmacol 38, 632-638).

[0009] The safe therapeutic window for these drugs is clearly very narrow, and long-term effects on serotonin release and 5-HT 2BCardiovascular complications due to increased stimulation (Huang, X.-P., Setola, V., Yadav, PN, Allen, JA, Rogan, SC, Hanson, BJ, Revankar, C., Robers, M., Doucette, C., and Roth, BL, 2009, Parallel Functional Activity Profiling Reveals Valvulopathogens Are Potent 5-Hydroxytryptamine (2B) Receptor Agonists: Implications for Drug Safety Assessment, Molecular Pharmacology 76, 710-722; Rothman, RB, and Baumann, MH, 2009, Serotonergic drugs and valvular heart disease, Expert Opin Drug Saf 8, 317-329), and depressive sequelae due to decreased central serotonin levels (Parrott, AC, 2014, The potential dangers of using MDMA for psychotherapy, J Psychoactive Drugs 46, 37-43), as well as many other acute side effects, including anxiety, fear, tachycardia, hypertension, elevated body temperature, nausea, and vomiting, many of which are due to the rapid spike in blood levels of the drug after oral administration (Meyer, J.S., 2013, 3,4-methylenedioxymethamphetamine (MDMA): current perspectives, Substance Abuse Rehabil 4, 83-99; Baylen, C.A., and Rosenberg, H., 2006, A review of the acute subjective effects of MDMA / ecstasy, Addiction 101, 933-947; Shulgin, A., and Shulgin, Ann., 1991, Pihkal: a chemical love story, Transform Press, Berkeley, CA; Barrett, F.S., Bradstreet, M.P., Leoutsakos, JS, Johnson, MW, and Griffiths, RR, 2016, The Challenging Experience Questionnaire: Characterization of challenging experiences with psilocybin mushrooms, J Psychopharmacol 30, 1279-1295). Many hallucinogens and entactogens are also long-acting, requiring full-day monitoring given their narrow therapeutic window, which is a major obstacle to their clinical application.

[0010] One type of hallucinogen phenethylamine is the 2C-X family of phenethylamines (phenethylamines containing 2,4,5 substitution, with methoxy groups at the 2 and 5 positions of the phenyl group). Substances in this class, such as 2,5-dimethoxy-4-bromophenethylamine (2C-B), may be used to treat sexual dysfunction (Shulgin, A., and Shulgin, Ann., 1991, Pihkal: A Chemical Love Story, Transform Press, Berkeley, CA), as well as neuropsychiatric conditions, resulting in changes in perception, cognition, emotion, and mood, which may underlie reported neuropsychological therapeutic benefits (Johnson, MW, Hendricks, PS, Barrett, FS, and Griffiths, RR, 2019, Classic psychedelics: An integrative review of epidemiology, therapeutics, mystical experience, and brain network function, Pharmacol Ther 197, 83-102).

[0011] However, extensive clinical testing of 2C-X compounds and the development of practical treatment protocols are hindered by the following factors: 1) low oral bioavailability, 2) low brain penetration, 3) slow onset of action after oral administration, 4) high doses required to achieve therapeutic efficacy, 5) acute psychopathological adverse events (AEs), such as fear, anxiety, and paranoia, cardiovascular events including tachycardia and hypertension, and gastrointestinal effects including nausea, and 6) toxicity.These properties are thought to be due to rapid first-pass metabolism via deamination / oxidation by monoamine oxidases (MAOs), MAO-A and MAO-B, and O-dealkylation by cytochrome P450 enzymes, e.g., CYP2D6, as well as their relatively hydrophilic nature (e.g., 2,4,5-trimethoxyphenethylamine (2C-O) has a logP value of 0.98), which limits their distribution to the brain (Suzuki, O., Katsumata, Y., and Oya, M., 1981, Oxidation of beta-phenylethylamine by both types of monoamine oxidase: examination of enzymes in brain and liver mitochondria of eight species, J Neurochem 36, 1298-1301; Monte, AP, Marona-Lewicka, D., Parker, MA, Wainscott, DB, Nelson, DL, and Nichols, DE, 1996, Dihydrobenzofuran analogues of hallucinogens.3.Models of 4-substituted (2,5-dimethoxyphenyl)alkylamine derivatives with rigidified methoxy groups,J Med Chem 39,2953-2961;Monte,AP,Waldman,SR,Marona-Lewicka,D.,Wainscott,DB,Nelson,DL,Sanders-Bush,E.,and Nichols, DE, 1997, Dihydrobenzofuran analogues of hallucinogens. 4. Mescaline derivatives, J Med Chem 40, 2997-3008).For example, 2,4,5-trimethoxyphenethylamine (2C-O) is inactive after oral administration (Shulgin, AT, 1978, Psychotomimetic Drugs: Structure-activity relationships. Chapter 6, In Handbook of psychopharmacology, V. 11-Stimulants, pp 243-333, Plenum Press, New York).

[0012] The limitations of current 2C-X compounds and their formulations, as well as other hallucinogens and entactogens, phenethylamines, are clear, and controlling drug exposure and maintaining drug concentrations within safe and effective ranges has proven challenging. Summary of the Invention

[0013] In view of the above, there is a need for novel 2C-X phenethylamine compounds that have improved pharmacokinetic properties, i.e., bioavailability and brain penetration, rapid onset, short duration of action, and potent activity while minimizing psychiatric adverse events and toxicity. Additionally, there is a need for efficient, convenient, and controllable phenethylamine formulations that do not produce neurologically toxic (e.g., psychotomimetic) plasma concentrations.

[0014] It is therefore an object of the present invention to provide novel compounds that meet these criteria.

[0015] It is another object of the present disclosure to provide novel pharmaceutical compositions containing the compounds.

[0016] It is another object of the present disclosure to provide methods for treating a subject having a disease or disorder associated with the serotonin 5-HT2 receptor using the compounds.

[0017] It is another object of the present disclosure to provide novel tablet compositions, such as single-layer oral tablet compositions, containing the compounds.

[0018] It is another object of the present disclosure to provide novel kits containing formulations of the compounds for use in therapy.

[0019] It is yet another object of the present disclosure to provide novel methods for delivering compounds via inhalation in a mist, for example, for the treatment of central nervous system (CNS) or psychological disorders.

[0020] It is yet another object of the present invention to provide novel uses of compounds for treating subjects with diseases or disorders associated with the serotonin 5-HT2 receptor, such as central nervous system (CNS) disorders or psychological disorders.

[0021] These and other objects, which will become apparent in the detailed description below, have been achieved by the inventors' discovery that the novel compounds described herein (e.g., compounds of Formula (I) through Formula (IV)) having site-specific deuteration / fluorination maintain preferential binding to G protein-coupled receptors (GPCRs), such as the 5-HT2 receptor, have improved exposure (e.g., prevention of rapid drug spikes observed after administration), and have favorable enzymatic degradation profiles, resulting in improved bioavailability, brain penetration, and prevention / reduction of toxic metabolite formation.

[0022] Thus, the present invention provides the following:

[0023] (1) A compound having the structure of Formula I: [ka] or a pharmaceutically acceptable salt, solvate, stereoisomer or prodrug thereof, During the ceremony, X 1 and X 2 are independently hydrogen or deuterium, Y 1 and Y 2 are independently hydrogen or deuterium, R 3is hydrogen or deuterium, R 4 is halogen, substituted or unsubstituted C1-C6 alkyl, substituted or unsubstituted C3-C 10 cycloalkyl, -OR b , or -SR b and each R a is independently substituted or unsubstituted C1-C6 alkyl, and R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 cycloalkyl, provided that at least one of X 1 , X 2 , Y 1 , Y 2 , R 3 , R 4 , and R a contains deuterium, and / or R 4 is selected from the group consisting of -SCF3, -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -OCH2CH2CF3, -OCH2CH2CF2H, and -OCH2CH2CFH2, a compound.

[0024] (2) The compound according to (1), wherein Y 1 and Y 2 are hydrogen.

[0025] (3) The compound according to (1) or (2), wherein R 3 is hydrogen.

[0026] (4) The compound according to any one of (1) to (3), wherein X 1 and X 2 are hydrogen.

[0027] (5) The compound according to any one of (1) to (3), wherein X 1 and X 2 are deuterium.

[0028] (6) Each Ra The compound according to any one of (1) to (5), wherein is -CH3 or -CD3.

[0029] (7)R 4 -SMe, -SCD 3、 -SCF 3、 A compound according to any one of (1) to (6), which is -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -SEt, -Sn-Pr, -Me, -CD3, -CF3, -t-Bu, -C(CD3)3, -cyclopentyl, -OMe, -OCD3, -OCF3, -OCH2CH2CF3, -OCH2CH2CF2H, -OCH2CH2CFH2, -Cl, -I, or -Br.

[0030] (8) A compound of (1) having the structure of formula (II): [ka] or a pharmaceutically acceptable salt, solvate, stereoisomer or prodrug thereof, During the ceremony, X 1 and X 2 are independently hydrogen or deuterium, Y 1 and Y 2 are independently hydrogen or deuterium, R 4 is halogen, substituted or unsubstituted C1-C6 alkyl, substituted or unsubstituted C3-C 10 Cycloalkyl, -OR b , or -SR b and R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 A compound which is a cycloalkyl.

[0031] (9)X 1 and X 2 is hydrogen.

[0032] (10)R 4 -SMe, -SCD 3、 -SCF 3、 The compound according to (8) or (9), which is -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -SEt, -Sn-Pr, -Me, -CD3, -CF3, -t-Bu, -C(CD3)3, -cyclopentyl, -OMe, -OCD3, -OCF3, -OCH2CH2CF3, -OCH2CH2CF2H, -OCH2CH2CFH2, -Cl, -I, or -Br.

[0033] (11)R 4 The compound according to any one of (8) to (10), wherein is -SMe, -Me, -OCD3, -CF3, -t-Bu, or -cyclopentyl.

[0034] (12) A compound of (1) having the structure of formula (III): [ka] or a pharmaceutically acceptable salt, solvate, stereoisomer or prodrug thereof, During the ceremony, X 1 and X 2 are independently hydrogen or deuterium, Y 1 and Y 2 are independently hydrogen or deuterium, R 4 is C1-C6 alkyl substituted with one or more deuterium atoms, C3-C 10 Cycloalkyl, -OR b , or -SR b and Each R a is independently a substituted or unsubstituted C1-C6 alkyl, and R b is a C1-C6 alkyl substituted with one or more deuterium atoms, or a C3-C alkyl substituted with one or more deuterium atoms. 10 A compound which is a cycloalkyl.

[0035] (13)X 1 and X 2 is hydrogen, and each R a is -CH3.

[0036] (14)R 4 is -SCD3, -CD3, -C(CD3)3 or -OCD3.

[0037] (15) A compound of (1) having the structure of formula (IV): [ka] or a pharmaceutically acceptable salt, solvate, stereoisomer or prodrug thereof, During the ceremony, Y 1 and Y 2 are independently hydrogen or deuterium, R 4 is halogen, substituted or unsubstituted C1-C6 alkyl, substituted or unsubstituted C3-C 10 Cycloalkyl, -OR b , or -SR b and Each R a is independently a substituted or unsubstituted C1-C6 alkyl, and R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 A compound which is a cycloalkyl.

[0038] (16) A compound according to any one of (1) to (15), or a pharmaceutically acceptable salt, solvate, or prodrug thereof, selected from the group consisting of: [ka] [ka] [ka] [ka] [ka] [ka] [ka]

[0039] (17) The compound according to any one of (1) to (16), which is an agonist of a serotonin 5-HT2 receptor.

[0040] (18) The compound is a serotonin 5-HT 2A The compound according to any one of (1) to (17), which is an agonist of a receptor.

[0041] (19) A pharmaceutical composition comprising the compound according to any one of (1) to (18) and a pharmaceutically acceptable excipient.

[0042] (20) The pharmaceutical composition according to (19), wherein the compound is present in the pharmaceutical composition with a purity of at least 50% by weight based on the total amount of isotopologues of the compound present in the pharmaceutical composition.

[0043] (21) The pharmaceutical composition according to (19) or (20), wherein any position of the compound having deuterium has a minimum deuterium incorporation of at least 50 atomic % at the deuteration site.

[0044] (22) The pharmaceutical composition according to any one of (19) to (20), which is substantially free of other isotopologues of the compound.

[0045] (23) The pharmaceutical composition according to any one of (19) to (22), which is formulated for oral administration.

[0046] (24) The pharmaceutical composition according to any one of (19) to (22), which is formulated for administration via inhalation.

[0047] (25) A method for treating a subject having a disease or disorder associated with the serotonin 5-HT2 receptor, comprising:

[0048] A method comprising administering a therapeutically effective amount of the compound according to any one of (1) to (18) to the subject.

[0049] (26) The method according to (25), wherein the disease or disorder associated with the serotonin 5-HT2 receptor is a neuropsychiatric disease or disorder, or an inflammatory disease or disorder.

[0050] (27) The method according to (25) or (26), wherein the disease or disorder associated with the serotonin 5-HT2 receptor is a disorder of the central nervous system (CNS).

[0051] (28) The method of (27), wherein the central nervous system (CNS) disorder is selected from the group consisting of post-traumatic stress disorder (PTSD), major depressive disorder (MDD), treatment-resistant depression (TRD), suicidal ideation, suicidal behavior, major depressive disorder with suicidal ideation or behavior, non-suicidal self-injury disorder (NSSID), bipolar disorder and related disorders, cyclothymic disorder, obsessive-compulsive disorder (OCD), generalized anxiety disorder (GAD), social anxiety disorder, substance use disorder, anorexia nervosa, bulimia nervosa, binge eating disorder, Alzheimer's disease, cluster headache and migraine, attention deficit hyperactivity disorder (ADHD), pain, aphantasia, childhood-onset dysphagia, dementia, mild dementia, sexual dysfunction, chronic fatigue syndrome, Lyme disease, and obesity.

[0052] (29) The method according to (27) or (28), wherein the central nervous system (CNS) disorder is pain.

[0053] (30) The method according to (27) or (28), wherein the central nervous system (CNS) disorder is sexual dysfunction.

[0054] (31) The method according to (25) or (26), wherein the disease or disorder associated with the serotonin 5-HT2 receptor is a disorder of the autonomic nervous system (ANS).

[0055] (32) The method according to (31), wherein the disorder of the autonomic nervous system (ANS) is a pulmonary disorder or a cardiovascular disorder.

[0056] (33) The method according to any one of (25) to (32), wherein the compound is administered orally, sublingually, bucally, topically, by injection, or by inhalation.

[0057] (34) A single-layer tablet composition for oral administration, comprising the compound according to any one of (1) to (18) and a polymer.

[0058] (35) The monolayer tablet composition for oral administration according to (34), wherein the composition is adapted for maximum sustained release.

[0059] (36) The monolayer tablet composition for oral administration according to (34) or (35), wherein the tablet composition comprises a combination of (i) a water-insoluble, neutrally charged nonionic matrix, (ii) a polymer carrying one or more negatively charged groups, and (iii) the compound.

[0060] (37) The monolayer tablet composition for oral administration according to (36), wherein the water-insoluble, neutrally charged nonionic matrix is ​​selected from a cellulose-based polymer, alone or reinforced by mixing with a component selected from the group consisting of starch, wax, neutral gum, polymethacrylate, PVA, PVA / PVP mixtures, and mixtures thereof.

[0061] (38) The monolayer tablet composition for oral administration according to (37), wherein the cellulose polymer is hydroxypropyl methylcellulose (HPMC).

[0062] (39) The monolayer tablet composition for oral administration according to any one of (36) to (38), wherein the polymer carrying one or more negatively charged groups is selected from the group consisting of polyacrylic acid, polylactic acid, polyglycolic acid, polymethacrylate carboxylate, cation exchange resin, clay, zeolite, hyaluronic acid, anionic rubber, salts thereof, and mixtures thereof.

[0063] (40) The monolayer tablet composition for oral administration according to (39), wherein the anionic rubber is selected from the group consisting of natural substances and semi-synthetic substances.

[0064] (41) The monolayer tablet composition for oral administration according to (40), wherein the natural substance is selected from the group consisting of alginic acid, pectin, xanthan gum, carrageenan, locust bean gum, gum arabic, gum karaya, guar gum, and gum tragacanth.

[0065] (42) The monolayer tablet composition for oral administration according to (40), wherein the semi-synthetic material is selected from the group consisting of carboxymethyl-chitin and cellulose gum.

[0066] (43) The monolayer tablet composition for oral administration according to any one of (34) to (42), which contains the compound in a therapeutically effective amount for the purpose of treating pain.

[0067] (44) The monolayer tablet composition for oral administration according to any one of (34) to (42), which contains the compound in a therapeutically effective amount for treating traumatic brain injury.

[0068] (45) The monolayer tablet composition for oral administration according to any one of (34) to (42), which contains the compound in a therapeutically effective amount for the treatment of depression.

[0069] (46) The monolayer tablet composition for oral administration according to any one of (34) to (42), which contains a therapeutically effective amount of the compound intended for use in the treatment of a disease or disorder associated with the serotonin 5-HT2 receptor.

[0070] (47) The disease or disorder in question is post-traumatic stress disorder (PTSD), major depressive disorder (MDD), treatment-resistant depression (TRD), suicidal ideation, suicidal behavior, major depressive disorder with suicidal ideation or behavior, non-suicidal self-injury disorder (NSSID), bipolar disorder and related disorders including bipolar disorder type I and bipolar disorder type II, cyclothymic disorder, obsessive-compulsive disorder (OCD), generalized anxiety disorder (GAD), social anxiety disorder, alcohol use disorder, opioid use disorder, amphetamine use disorder, The monolayer tablet composition for oral administration according to (46), wherein the central nervous system (CNS) disorder is selected from the group consisting of substance use disorders including use disorder, nicotine use disorder, and cocaine use disorder, anorexia nervosa, bulimia nervosa, binge eating disorder, Alzheimer's disease, cluster headache and migraine, attention deficit hyperactivity disorder (ADHD), pain and neuropathic pain, aphantasia, childhood-onset dysphagia, dementia, mild dementia, sexual dysfunction, chronic fatigue syndrome, Lyme disease, and obesity.

[0071] (48) The monolayer tablet composition for oral administration according to (46), wherein the disease or disorder is a condition of the autonomic nervous system (ANS).

[0072] (49) The monolayer tablet composition for oral administration according to (46) or (48), wherein the disease or disorder is a pulmonary disorder.

[0073] (50) The monolayer tablet composition for oral administration according to (46) or (48), wherein the disease or disorder is a cardiovascular disorder.

[0074] (51) The monolayer tablet composition for oral administration according to any one of (34) to (50), wherein the composition achieves an integrated plasma concentration of the compound in the range of 10 to 500 ng / ml and maintains this concentration throughout the release period.

[0075] (52) The monolayer tablet composition for oral administration according to any one of (34) to (51), wherein the polymer contains one or more negatively charged groups.

[0076] (53) A tablet composition formulated for oral administration, comprising the compound according to any one of (1) to (18) and a polymer.

[0077] (54) The tablet composition according to (53), wherein the polymer contains one or more negatively charged groups.

[0078] (55) The tablet composition according to (53) or (54), wherein the polymer contains one or more acid groups.

[0079] (56) The tablet composition according to any one of (53) to (55), wherein the polymer comprises a water-insoluble, neutrally charged nonionic matrix.

[0080] (57) The tablet composition according to (56), wherein the water-insoluble, neutrally charged nonionic matrix is ​​selected from cellulosic polymers, alone or reinforced by blending with a component selected from the group consisting of starch, wax, neutral gum, polymethacrylate, PVA, PVA / PVP mixtures, and mixtures thereof.

[0081] (58) The tablet composition according to (57), wherein the cellulose-based polymer is hydroxypropyl methylcellulose (HPMC).

[0082] (59) A kit for treating a subject, comprising: 1) the monolayer tablet composition for oral administration described in any one of (34) to (52); and 2) instructions for use in treating pain.

[0083] (60) The kit according to (59), wherein the polymer comprises one or more negatively charged groups.

[0084] (61) A kit for treating a subject, comprising: 1) the monolayer tablet composition for oral administration according to any one of (34) to (52); and 2) instructions for use in treating brain trauma.

[0085] (62) The kit according to (61), wherein the polymer comprises one or more negatively charged groups.

[0086] (63) A kit for treating a subject, comprising: 1) the monolayer tablet composition for oral administration according to any one of (34) to (52); and 2) instructions for use in treating depression.

[0087] (64) The kit according to (63), wherein the polymer comprises one or more negatively charged groups.

[0088] (65) A kit for treating a subject, comprising: 1) the monolayer tablet composition for oral administration according to any one of (34) to (52); and 2) instructions for use in treating a disease or disorder associated with the serotonin 5-HT2 receptor.

[0089] (66) The kit according to (65), wherein the polymer comprises one or more negatively charged groups.

[0090] (67) A method for delivering a hallucinogen to a patient in need thereof, comprising administering via inhalation a hallucinogen dissolved in the liquid phase of a mist, wherein the hallucinogen comprises a compound according to any one of (1) to (18).

[0091] (68) The method according to (67), wherein the hallucinogen is delivered to the central nervous system of the patient.

[0092] (69) The method according to (67) or (68), wherein the hallucinogen is delivered with air, oxygen, or a mixture of helium and oxygen.

[0093] (70) The method according to any one of (67) to (69), wherein the hallucinogen is delivered with a mixture of helium and oxygen.

[0094] (71) The method according to (70), wherein the mixture of helium and oxygen is heated to about 50°C to about 60°C.

[0095] (72) The method according to (70) or (71), wherein the helium is present in a mixture of helium and oxygen at about 50-90% and the oxygen is present in a mixture of helium and oxygen at about 10-50%.

[0096] (73) The method according to any one of (70) to (72), further comprising administering a pre-treatment inhalation therapy prior to administration of the mixture of helium and oxygen and the hallucinogen.

[0097] (74) The method according to (73), wherein the pretreatment comprises administering to the patient by inhalation a mixture of helium and oxygen heated to about 90°C to about 120°C.

[0098] (75) The method of any one of (67) to (74), further comprising: (i) administering to the patient by inhalation a mixture of helium and oxygen heated to about 90°C to 120°C; and (ii) administering to the patient by inhalation a mist containing helium and oxygen heated to about 50°C to 60°C and a hallucinogen.

[0099] (76) The method according to (75), further comprising repeating steps (i) and (ii) at least once.

[0100] (77) The hallucinogen has improved drug bioavailability by at least 25% compared to oral delivery, C by at least 25% compared to oral delivery, max Increased T by at least 50% compared to oral delivery max The method according to any one of (67) to (76), wherein the compound is delivered to the central nervous system of the patient, accompanied by a decrease in the level of vasoconstriction, or a combination thereof.

[0101] (78) A method for treating a central nervous system (CNS) disorder or a psychological disorder, comprising administering by inhalation a hallucinogen dissolved in a mist, wherein the hallucinogen comprises a compound according to any one of (1) to (18).

[0102] (79) The method according to (78), wherein the hallucinogen is delivered with air, oxygen, or a mixture of helium and oxygen.

[0103] (80) The method of (79), wherein the hallucinogen is delivered with a mixture of helium and oxygen, and the mixture of helium and oxygen is heated to about 50°C to about 60°C prior to administration of the hallucinogen to the patient.

[0104] (81) The method according to any one of (78) to (80), wherein the CNS disorder is post-traumatic stress disorder (PTSD), major depressive disorder (MDD), treatment-resistant depression (TRD), suicidal ideation, suicidal behavior, major depressive disorder with suicidal ideation or behavior, non-suicidal self-injury disorder (NSSID), bipolar disorder and related disorders including bipolar disorder type I and bipolar disorder type II, cyclothymic disorder, obsessive-compulsive disorder (OCD), generalized anxiety disorder (GAD), social anxiety disorder, substance use disorders including alcohol use disorder, opioid use disorder, amphetamine use disorder, nicotine use disorder, and cocaine use disorder, anorexia nervosa, bulimia nervosa, binge eating disorder, Alzheimer's disease, cluster headache and migraine, attention deficit hyperactivity disorder (ADHD), pain and neuropathic pain, aphantasia, childhood-onset dysphagia, dementia, mild dementia, sexual dysfunction, chronic fatigue syndrome, Lyme disease, or obesity.

[0105] (82) A transdermal patch comprising the compound according to any one of (1) to (18).

[0106] (83) The transdermal patch according to (82), further comprising a pressure-sensitive adhesive layer, a backing, and a release liner.

[0107] (84) The transdermal patch according to (83), wherein the compound is uniformly distributed throughout the pressure-sensitive adhesive layer.

[0108] (85) The transdermal patch according to any one of (82) to (84), which contains 5 mg to 25 mg of the compound.

[0109] (86) A method for treating a subject having a disease or disorder associated with the serotonin 5-HT2 receptor, comprising:

[0110] A method comprising administering a therapeutically effective amount of the compound to the subject via a transdermal patch according to any one of (82) to (85).

[0111] (87) The method according to (86), wherein the disease or disorder associated with the serotonin 5-HT2 receptor is a neuropsychiatric disease or disorder, or an inflammatory disease or disorder.

[0112] (88) The method according to (86) or (87), wherein the disease or disorder associated with the serotonin 5-HT2 receptor is a disorder of the central nervous system (CNS).

[0113] (89) The method of (88), wherein the disorder of the central nervous system (CNS) is selected from the group consisting of post-traumatic stress disorder (PTSD), major depressive disorder (MDD), treatment-resistant depression (TRD), suicidal ideation, suicidal behavior, major depressive disorder with suicidal ideation or behavior, non-suicidal self-injury disorder (NSSID), bipolar disorder and related disorders, cyclothymic disorder, obsessive-compulsive disorder (OCD), generalized anxiety disorder (GAD), social anxiety disorder, substance use disorder, anorexia nervosa, bulimia nervosa, binge eating disorder, Alzheimer's disease, cluster headache and migraine, attention deficit hyperactivity disorder (ADHD), pain, aphantasia, childhood-onset dysphagia, dementia, mild dementia, sexual dysfunction, chronic fatigue syndrome, Lyme disease, and obesity.

[0114] (90) The method according to (86) or (87), wherein the disease or disorder associated with the serotonin 5-HT2 receptor is a disorder of the autonomic nervous system (ANS).

[0115] (91) The method according to (90), wherein the disorder of the autonomic nervous system (ANS) is a pulmonary disorder or a cardiovascular disorder.

[0116] (92) The method according to any one of (86) to (91), wherein 5 mg to 25 mg of the compound is administered to the subject over a period of 4 to 72 hours.

[0117] (93) The method according to any one of (86) to (92), wherein the compound is administered at a concentration that is serotonergic but lower than the psychoactive concentration.

[0118] (94) A method for treating a subject having a disease or disorder associated with the serotonin 5-HT2 receptor, comprising: A method comprising administering a therapeutically effective amount of a compound according to any one of (1) to (18) transdermally, subcutaneously, or intramuscularly to the subject via an automatic injection device. [Brief explanation of the drawings]

[0119] The foregoing paragraphs have been provided by way of general introduction and are not intended to limit the scope of the claims that follow. The described embodiments will be best understood with further advantage by reference to the following detailed description when considered in conjunction with the accompanying drawings.

[0120] [Figure 1] FIG. 1 shows a synthetic route for making compound II-1. [Figure 2] FIG. 2 shows a synthetic route for making compound II-2. [Figure 3] FIG. 3 shows a synthetic route for making compound II-3. [Figure 4] FIG. 4 shows a synthetic route for making compound II-4. [Figure 5] FIG. 5 shows a synthetic route for making compound II-14. [Figure 6] FIG. 6 shows a synthetic route for making compound III-1. [Figure 7] FIG. 7 shows a synthetic route for making compound III-2. [Figure 8] FIG. 8 shows a synthetic route for making compound IV-1. [Figure 9] FIG. 9 shows a synthetic route for making compound IV-2. [Figure 10] FIG. 10 shows a synthetic route for making compound IV-3. [Figure 11] FIG. 11 shows a synthetic route for making compound IV-5. [Figure 12] FIG. 12 shows a synthetic route for making compound IV-12. [Figure 13] FIG. 13 shows a synthetic route for making compound I-1. [Figure 14] FIG. 14 shows synthetic routes for making compounds of formula (I) containing a fluoropropoxy or fluorothiopropoxy substituent as R4, such as compounds I-2, I-3, I-4, I-5-I-6, I-7, II-16, II-17, II-18, II-19, II-20, and II-21. [Figure 15] FIG. 15 shows a synthetic route for making Reference Compound 1. [Figure 16] Figure 16 shows the effects of CYB2108 (Compound I-1, 3 mg / kg) and CYB2108D (Compound II-10, 3 mg / kg) compared to vehicle (Veh) control and the positive control serotonergic hallucinogen (±)2,5-dimethoxy-4-iodoamphetamine (DOI, 1 mg / kg) on ​​serotonin 5-HT2A receptor-dependent head-twitch response (HTR) in adult male C57BL / 6J mice. Data for each test compound are best fitted to a two-site model (GraphPad Prism 9). [Figure 17] FIG. 17 is a graph of radioligand competitive binding of antagonist-labeled human serotonin 5-HT2A receptors using CYB2108 (compound I-1) and CYB2108D (compound II-10). DETAILED DESCRIPTION OF THE INVENTION

[0121] In the following detailed description of embodiments of the present disclosure, numerous specific details are set forth in order to provide a thorough understanding of embodiments of the present disclosure. However, it will be apparent to those skilled in the art that embodiments of the present disclosure may be practiced without these specific details. In other instances, well-known methods, procedures, components, and circuits have not been described in detail as not to unnecessarily obscure aspects of the embodiments of the present disclosure.

[0122] definition Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs.

[0123] "Alkyl" refers to a monovalent saturated aliphatic hydrocarbyl group having 1 to 10 carbon atoms, e.g., 1 to 6 carbon atoms, or 1 to 5, or 1 to 4, or 1 to 3, or 1 to 2 carbon atoms. The term includes, by way of example, straight-chain and branched hydrocarbyl groups such as methyl (CH-), ethyl (CHCH-), n-propyl (CHCHCH-), isopropyl ((CH)CH-), n-butyl (CHCHCHCH-), isobutyl ((CH)CHCH-), sec-butyl ((CH)(CHCH)CH-), t-butyl (t-Bu) ((CH)C-), n-pentyl (CHCHCHCHCHCH-), and neopentyl ((CH)CCH-).

[0124] The term "substituted alkyl" refers to alkyl chains in which one or more carbon atoms in the alkyl chain can be optionally substituted, for example, with -O-, -N-, -S-, -S(O) n- (wherein n is 0-2), -NR- (wherein R is hydrogen or alkyl), and having 1-10 substituents, including but not limited to deuterium, alkoxy, substituted alkoxy, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, acyl, acylamino, acyloxy, amino, aminoacyl, aminoacyloxy, oxyaminoacyl, azido, cyano, halogen, hydroxyl, oxo, thioketo, carboxyl, carboxylalkyl, thioaryloxy, thioheteroaryloxy, thioheterocyclooxy, thiol, thioalkoxy, substituted thioalkoxy, aryl, aryloxy, heteroaryl, heteroaryloxy, heterocyclyl, heterocyclooxy, hydroxyamino, alkoxyamino, nitro, SO-alkyl, -SO-aryl, -SO-heteroaryl, -SO2-alkyl, -SO2-aryl, -SO2-heteroaryl, and -NR ’ R″, where R′ and R″ may be the same or different and are selected from hydrogen, optionally substituted alkyl, cycloalkyl, alkenyl, cycloalkenyl, alkynyl, aryl, heteroaryl, and heterocycle.

[0125] "Alkylene" refers to a divalent aliphatic hydrocarbyl group having 1 to 6, e.g., 1 to 3, carbon atoms, which may be linear or branched, and optionally includes -O-, -NR 10 -, -NR 10 C(O)-, -C(O)NR 10 and the like. The term includes, by way of example, methylene (-CH-), ethylene (-CHCH-), n-propylene (-CHCHCH-), iso-propylene (-CHCH(CH)-), (-C(CH)CHCH-), (-C(CH)CHC(O)-), (-C(CH)CHC(O)NH-), (-CH(CH)CH-), and the like.

[0126] "Substituted alkylene" refers to an alkylene group in which one to three hydrogens have been replaced with a substituent, as described for carbon in the definition of "substituted" below.

[0127] The term "alkane" refers to alkyl and alkylene groups as defined herein.

[0128] The terms "alkylaminoalkyl," "alkylaminoalkenyl," and "alkylaminoalkynyl" refer to the group R'NHR" where R' is an alkyl group, as defined herein, and R" is an alkylene, alkenylene, or alkynylene group, as defined herein.

[0129] The terms "alkaryl" or "aralkyl" refer to the groups -alkylene-aryl and -substituted alkylene-aryl, where alkylene, substituted alkylene, and aryl are defined herein.

[0130] "Alkyloxy" refers to the group -O-alkyl, where alkyl is as defined herein. Alkoxy includes, for example, methoxy, ethoxy, n-propoxy, isopropoxy, n-butoxy, t-butoxy, sec-butoxy, n-pentoxy, and the like. The term "alkoxy" also refers to the groups alkenyl-O-, cycloalkyl-O-, cycloalkenyl-O-, and alkynyl-O-, where alkenyl, cycloalkyl, cycloalkenyl, and alkynyl are as defined herein.

[0131] The term "substituted alkoxy" refers to the groups substituted alkyl-O-, substituted alkenyl-O-, substituted cycloalkyl-O-, substituted cycloalkenyl-O-, and substituted alkynyl-O-, where substituted alkyl, substituted alkenyl, substituted cycloalkyl, substituted cycloalkenyl, and substituted alkynyl are as defined herein.

[0132] The term "alkoxyamino" refers to the group --NH-alkoxy, where alkoxy is defined herein.

[0133] The term "haloalkoxy" refers to an alkyl-O- group in which one or more hydrogen atoms on the alkyl group are replaced with a halo group, and includes, by way of example, groups such as trifluoromethoxy.

[0134] The term "haloalkyl" refers to a substituted alkyl group as defined above, in which one or more hydrogen atoms on the alkyl group have been replaced with a halo group. Examples of such groups include, but are not limited to, fluoroalkyl groups such as trifluoromethyl, difluoromethyl, trifluoroethyl, and the like.

[0135] The term "alkylalkoxy" refers to the groups -alkylene-O-alkyl, alkylene-O-substituted alkyl, substituted alkylene-O-alkyl, and substituted alkylene-O-substituted alkyl, where alkyl, substituted alkyl, alkylene, and substituted alkylene are as defined herein.

[0136] The term "alkylthioalkoxy" refers to the groups -alkylene-S-alkyl, alkylene-S-substituted alkyl, substituted alkylene-S-substituted alkyl, and substituted alkylene-S-substituted alkyl, where alkyl, substituted alkyl, alkylene, and substituted alkylene are as defined herein.

[0137] "Alkenyl" refers to a straight or branched chain hydrocarbyl group having 2 to 6 carbon atoms, e.g., 2 to 4 carbon atoms, and at least 1, e.g., 1 to 2, sites of double bond unsaturation. The term includes, for example, bi-vinyl, allyl, and but-3-en-1-yl. The term includes cis and trans isomers or mixtures of these isomers.

[0138] The term "substituted alkenyl" refers to an alkenyl group, as defined herein, having from 1 to 5 substituents, or from 1 to 3 substituents selected from alkoxy, substituted alkoxy, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, acyl, acylamino, acyloxy, amino, substituted amino, aminoacyl, aminoacyloxy, oxyaminoacyl, azido, cyano, halogen, hydroxyl, oxo, thioketo, carboxyl, carboxylalkyl, thioaryloxy, thioheteroaryloxy, thioheterocyclooxy, thiol, thioalkoxy, substituted thioalkoxy, aryl, aryloxy, heteroaryl, heteroaryloxy, heterocyclyl, heterocyclooxy, hydroxyamino, alkoxyamino, nitro, -SO-alkyl, -SO-substituted alkyl, -SO-aryl, -SO-heteroaryl, -SO2-alkyl, -SO2-substituted alkyl, -SO2-aryl, and -SO2-heteroaryl.

[0139] "Alkynyl" refers to a straight-chain or branched monovalent hydrocarbyl group having 2 to 6 carbon atoms, e.g., 2 to 3 carbon atoms, and having at least 1, e.g., 1 to 2, sites of triple bond unsaturation. Examples of such alkynyl groups include acetylenyl (-C≡CH) and propargyl (-CHC≡CH).

[0140] The term "substituted alkynyl" refers to an alkynyl group, as defined herein, having from 1 to 5 substituents, or from 1 to 3 substituents selected from deuterium, alkoxy, substituted alkoxy, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, acyl, acylamino, acyloxy, amino, substituted amino, aminoacyl, aminoacyloxy, oxyaminoacyl, azido, cyano, halogen, hydroxyl, oxo, thioketo, carboxyl, carboxylalkyl, thioaryloxy, thioheteroaryloxy, thioheterocyclooxy, thiol, thioalkoxy, substituted thioalkoxy, aryl, aryloxy, heteroaryl, heteroaryloxy, heterocyclyl, heterocyclooxy, hydroxyamino, alkoxyamino, nitro, -SO-alkyl, -SO-substituted alkyl, -SO-aryl, -SO-heteroaryl, -SO2-alkyl, -SO2-substituted alkyl, -SO2-aryl, and -SO2-heteroaryl.

[0141] "Alkynyloxy" refers to the group -O-alkynyl, where alkynyl is as defined herein. Alkynyloxy includes, by way of example, ethynyloxy, propynyloxy, and the like.

[0142] "Acyl" means HC(O)-, alkyl-C(O)-, substituted alkyl-C(O)-, alkenyl-C(O)-, substituted alkenyl-C(O)-, alkynyl-C(O)-, substituted alkynyl-C(O)-, cycloalkyl-C(O)-, substituted cycloalkyl-C(O)-, cycloalkenyl-C(O)-, substituted cycloalkenyl-C(O)-, aryl-C(O)-, substituted aryl-C(O)-, heteroaryl-C(O)-, substituted hetero " refers to the groups aryl-C(O)-, heterocyclyl-C(O)-, and substituted heterocyclyl-C(O)-, where alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, heterocycle, and substituted heterocycle are as defined herein. For example, acyl includes the "acetyl" group CHC(O).

[0143] "Acylamino" means -NR 20 C(O) alkyl, -NR 20 C(O) substituted alkyl, NR 20 C(O)cycloalkyl, -NR 20 C(O)-substituted cycloalkyl, -NR 20 C(O)cycloalkenyl, -NR 20 C(O)-substituted cycloalkenyl, -NR 20 C(O)alkenyl, -NR 20 C(O) substituted alkenyl, -NR 20 C(O)alkynyl, -NR 20 C(O) substituted alkynyl, -NR 20 C(O)aryl, -NR 20 C(O) substituted aryl, -NR 20 C(O)heteroaryl, -NR 20 C(O)-substituted heteroaryl, -NR 20 C(O) heterocycle, and -NR 20 C(O)-substituted heterocyclic groups, where R 20is hydrogen or alkyl, and alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, heterocycle, and substituted heterocycle are as defined herein.

[0144] The term "aminocarbonyl" or "aminoacyl" refers to -C(O)NR 21 R 22 In this case, R 21 and R 22 is independently selected from the group consisting of hydrogen, alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, aryl, substituted aryl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, heteroaryl, substituted heteroaryl, heterocyclic, and substituted heterocyclic; R 21 and R 22 are optionally joined together with the nitrogen to which they are attached to form a heterocyclic or substituted heterocyclic group, where alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, heterocyclic, and substituted heterocyclic are as defined herein.

[0145] "Aminocarbonylamino" means -NR 21 C(O)NR 22 R 23 R refers to the group 21 , R 22 , and R 23 are independently selected from hydrogen, alkyl, aryl, or cycloalkyl, or two R groups joined to form a heterocyclyl group.

[0146] The term "alkoxycarbonylamino" refers to the group -NRC(O)OR, where each R is independently hydrogen, alkyl, substituted alkyl, aryl, heteroaryl, or heterocyclyl, where alkyl, substituted alkyl, aryl, heteroaryl, and heterocyclyl are as defined herein.

[0147] The term "acyloxy" refers to the groups alkyl-C(O)O-, substituted alkyl-C(O)O-, cycloalkyl-C(O)O-, substituted cycloalkyl-C(O)O-, aryl-C(O)O-, heteroaryl-C(O)O-, and heterocyclyl-C(O)O-, where alkyl, substituted alkyl, cycloalkyl, substituted cycloalkyl, aryl, heteroaryl, and heterocyclyl are as defined herein.

[0148] "Aminosulfonyl" means -SO2NR 21 R 22 refers to the group, in which case R 21 and R 22 is independently selected from the group consisting of hydrogen, alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, aryl, substituted aryl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, heteroaryl, substituted heteroaryl, heterocyclic, and substituted heterocyclic; R 21 and R 22 are optionally joined together with the nitrogen to which they are attached to form a heterocyclic or substituted heterocyclic group, where alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, heterocyclic, and substituted heterocyclic are as defined herein.

[0149] "Sulfonylamino" means -NR 21 SO2R 22 refers to the group, in which case R 21 and R22 is independently selected from the group consisting of hydrogen, alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, aryl, substituted aryl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, heteroaryl, substituted heteroaryl, heterocyclic, and substituted heterocyclic; R 21 and R 22 are optionally joined together with the atoms to which they are attached to form a heterocyclic or substituted heterocyclic group, where alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, heterocyclic, and substituted heterocyclic are as defined herein.

[0150] "Aryl" or "Ar" refers to a monovalent aromatic carbocyclic group of 6 to 18 carbon atoms having a single ring (e.g., as in a phenyl group) or having a ring system with multiple fused rings (examples of such aromatic ring systems include naphthyl, anthryl, and indanyl), which may or may not be aromatic, provided that the point of attachment is through an atom of the aromatic ring. The term includes, by way of example, phenyl and naphthyl. Unless otherwise constrained by the definition of an aryl substituent, such aryl groups may be optionally substituted with 1 to 5 substituents, or 1 to 3 substituents selected from acyloxy, hydroxy, thiol, acyl, alkyl, alkoxy, alkenyl, alkynyl, cycloalkyl, cycloalkenyl, substituted alkyl, substituted alkoxy, substituted alkenyl, substituted alkynyl, substituted cycloalkyl, substituted cycloalkenyl, amino, substituted amino, aminoacyl, acylamino, alkaryl, aryl, aryloxy, azido, carboxyl, carboxylalkyl, cyano, halogen, nitro, heteroaryl, heteroaryloxy, heterocyclyl, heterocyclooxy, aminoacyloxy, oxyacylamino, thioalkoxy, substituted thioalkoxy, thioaryloxy, thioheteroaryloxy, -SO-alkyl, -SO-substituted alkyl, -SO-aryl, -SO-heteroaryl, -SO2-alkyl, -SO2-substituted alkyl, -SO2-aryl, -SO2-heteroaryl, and trihalomethyl.

[0151] "Aryloxy" refers to the group -O-aryl, where aryl is as defined herein, and includes, by way of example, phenoxy, naphthoxy, and the like, including optionally substituted aryl, also as defined herein.

[0152] "Amino" refers to the group -NH2.

[0153] The term "substituted amino" refers to the group -NRR, where each R is independently selected from the group consisting of hydrogen, alkyl, substituted alkyl, cycloalkyl, substituted cycloalkyl, alkenyl, substituted alkenyl, cycloalkenyl, substituted cycloalkenyl, alkynyl, substituted alkynyl, aryl, heteroaryl, and heterocyclyl, provided that at least one R is not hydrogen.

[0154] The term "azido" refers to the group -N3.

[0155] "Carboxyl", "carboxy" or "carboxylate" refers to -CO2H or its salts.

[0156] The term "carboxyl ester" or "carboxy esters" or "carboxyalkyl" or "carboxyalkyl" refers to -C(O)O-alkyl, -C(O)O-substituted alkyl, -C(O)O-alkenyl, -C(O)O-substituted alkenyl, -C(O)O-alkynyl, -C(O)O-substituted alkynyl, -C(O)O-aryl, -C(O)O-substituted aryl, -C(O)O-cycloalkyl, -C(O)O-substituted cycloalkyl, -C(O)O-cycloalkenyl, -C(O) refers to the groups O-substituted cycloalkenyl, -C(O)O-heteroaryl, -C(O)O-substituted heteroaryl, -C(O)O-heterocycle, and -C(O)O-substituted heterocycle, where alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, heterocycle, and substituted heterocycle are as defined herein.

[0157] "(Carboxy ester)oxy" or "carbonate" refers to -OC(O)O-alkyl, -OC(O)O-substituted alkyl, -OC(O)O-alkenyl, -OC(O)O-substituted alkenyl, -OC(O)O-alkynyl, -OC(O)O-substituted alkynyl, -OC(O)O-aryl, -OC(O)O-substituted aryl, -OC(O)O-cycloalkyl, -OC(O)O-substituted cycloalkyl, -OC(O)O-cycloalkenyl, -OC(O)O-substituted cycloalkenyl, refers to the groups -OC(O)O-heteroaryl, -OC(O)O-substituted heteroaryl, -OC(O)O-heterocycle, and -OC(O)O-substituted heterocycle, where alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, heterocycle, and substituted heterocycle are as defined herein.

[0158] "Cyano" or "nitrile" refers to the group --CN.

[0159] "Cycloalkyl" refers to cyclic alkyl groups of 3 to 10 carbon atoms having one or more rings, including fused, bridged, and spiro ring systems. Examples of suitable cycloalkyl groups include, for example, adamantyl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cyclooctyl, and the like. Such cycloalkyl groups include, for example, single ring structures such as cyclopropyl, cyclobutyl, cyclopentyl, cyclooctyl, and the like, or multiple ring structures such as adamantanyl.

[0160] The term "substituted cycloalkyl" refers to a cycloalkyl group having one to five substituents, or one to three substituents, selected from deuterium, alkyl, substituted alkyl, alkoxy, substituted alkoxy, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, acyl, acylamino, acyloxy, amino, substituted amino, aminoacyl, aminoacyloxy, oxyaminoacyl, azido, cyano, halogen, hydroxyl, oxo, thioketo, carboxyl, carboxylalkyl, thioaryloxy, thioheteroaryloxy, thioheterocyclooxy, thiol, thioalkoxy, substituted thioalkoxy, aryl, aryloxy, heteroaryl, heteroaryloxy, heterocyclyl, heterocyclooxy, hydroxyamino, alkoxyamino, nitro, -SO-alkyl, -SO-substituted alkyl, -SO-aryl, -SO-heteroaryl, -SO2-alkyl, -SO2-substituted alkyl, -SO2-aryl, and -SO2-heteroaryl.

[0161] The term "cycloalkenyl" refers to a non-aromatic cyclic alkyl group having a single or multiple rings and at least one double bond, for example, 1 to 2 double bonds, and having 3 to 10 carbon atoms.

[0162] The term "substituted cycloalkenyl" refers to a cycloalkenyl group having one to five substituents, or one to three substituents, selected from deuterium, alkoxy, substituted alkoxy, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, acyl, acylamino, acyloxy, amino, substituted amino, aminoacyl, aminoacyloxy, oxyaminoacyl, azido, cyano, halogen, hydroxyl, keto, thioketo, carboxyl, carboxylalkyl, thioaryloxy, thioheteroaryloxy, thioheterocyclooxy, thiol, thioalkoxy, substituted thioalkoxy, aryl, aryloxy, heteroaryl, heteroaryloxy, heterocyclyl, heterocyclooxy, hydroxyamino, alkoxyamino, nitro, -SO-alkyl, -SO-substituted alkyl, -SO-aryl, -SO-heteroaryl, -SO2-alkyl, -SO2-substituted alkyl, -SO2-aryl, and -SO2-heteroaryl.

[0163] The term "cycloalkynyl" refers to a non-aromatic cycloalkyl group having 5 to 10 carbon atoms, having one or more rings, and having at least one triple bond.

[0164] "Cycloalkoxy" refers to -O-cycloalkyl.

[0165] "Cycloalkenyloxy" refers to -O-cycloalkenyl.

[0166] "Halo" or "halogen" refers to fluoro, chloro, bromo, and iodo.

[0167] "Hydroxy" or "hydroxyl" refers to the group --OH.

[0168] "Heteroaryl" refers to an aromatic group of 1 to 15 carbon atoms, e.g., 1 to 10 carbon atoms, and 1 to 10 ring heteroatoms selected from the group consisting of oxygen, nitrogen, and sulfur. Such heteroaryl groups can have a single ring (e.g., pyridinyl, imidazolyl, or furyl) or multiple condensed rings (e.g., in groups such as indolizinyl, quinolinyl, benzofuran, benzimidazolyl, or benzothienyl) within the ring system, where at least one ring within the ring system is aromatic, provided that the point of attachment is through an aromatic ring atom. In certain embodiments, the nitrogen and / or sulfur ring atoms of a heteroaryl group are optionally oxidized to provide an N-oxide (N→O), sulfinyl, or sulfonyl moiety. This term includes, by way of example, pyridinyl, pyrrolyl, indolyl, thiophenyl, and furanyl. Unless otherwise constrained by the definition of a heteroaryl substituent, such heteroaryl groups are optionally substituted with 1 to 5 substituents, or 1 to 3 substituents selected from acyloxy, hydroxy, thiol, acyl, alkyl, alkoxy, alkenyl, alkynyl, cycloalkyl, cycloalkenyl, substituted alkyl, substituted alkoxy, substituted alkenyl, substituted alkynyl, substituted cycloalkyl, substituted cycloalkenyl, amino, substituted amino, aminoacyl, acylamino, alkaryl, aryl, aryloxy, azido, carboxyl, carboxylalkyl, cyano, halogen, nitro, heteroaryl, heteroaryloxy, heterocyclyl, heterocyclooxy, aminoacyloxy, oxyacylamino, thioalkoxy, substituted thioalkoxy, thioaryloxy, thioheteroaryloxy, -SO-alkyl, -SO-substituted alkyl, -SO-aryl, -SO-heteroaryl, -SO2-alkyl, -SO2-substituted alkyl, -SO2-aryl, -SO2-heteroaryl, and trihalomethyl.

[0169] The term "heteroaralkyl" refers to the group -alkylene-heteroaryl, where alkylene and heteroaryl are defined herein. This term includes, by way of example, pyridylmethyl, pyridylethyl, indolylmethyl, and the like.

[0170] "Heteroaryloxy" refers to -O-heteroaryl.

[0171] "Heterocycle," "heterocyclic," "heterocycloalkyl," and "heterocyclyl" refer to saturated or unsaturated groups having one or more fused rings, including fused, bridged, and spiro ring systems, and having 3 to 20 ring atoms, including 1 to 10 heteroatoms. These ring atoms are selected from the group consisting of nitrogen, sulfur, or oxygen, where in fused ring systems, one or more of the rings may be cycloalkyl, aryl, or heteroaryl, provided that the point of attachment is through the non-aromatic ring. In certain embodiments, the nitrogen and / or sulfur atoms of a heterocyclic group are optionally oxidized to provide an N-oxide, -S(O)-, or -SO2- moiety.

[0172] Examples of heterocycles and heteroaryls include, but are not limited to, azetidine, pyrrole, imidazole, pyrazole, pyridine, pyrazine, pyrimidine, pyridazine, indolizine, isoindole, indole, dihydroindole, indazole, purine, quinolizine, isoquinoline, quinoline, phthalazine, naphthylpyridine, quinoxaline, quinazoline, cinnoline, pteridine, carbazole, carboline, phenanthridine, acridine, phenanthroline, isothiazole, phenazine, isoxazole, phenoxazine, phenanthroline, phenanthiazole, phenazine, phenanthroline, phenanthiazole, phenanthroline ... Examples of the benzo[b]thiophene include thiazine, imidazolidine, imidazoline, piperidine, piperazine, indoline, phthalimide, 1,2,3,4-tetrahydroisoquinoline, 4,5,6,7-tetrahydrobenzo[b]thiophene, thiazole, thiazolidine, thiophene, benzo[b]thiophene, morpholinyl, thiomorpholinyl (also called thiomorpholinyl), 1,1-dioxothiomorpholinyl, piperidinyl, pyrrolidine, tetrahydrofuranyl, benzo[b][1,3]oxathiol, and benzo[b][1,3]dioxole.

[0173] Unless otherwise constrained by a definition of a heterocycle substituent, such heterocycle groups may be optionally substituted with 1 to 5 substituents, or 1 to 3 substituents selected from deuterium, alkoxy, substituted alkoxy, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, acyl, acylamino, acyloxy, amino, substituted amino, aminoacyl, aminoacyloxy, oxyaminoacyl, azido, cyano, halogen, hydroxyl, oxo, thioketo, carboxyl, carboxylalkyl, thioaryloxy, thioheteroaryloxy, thioheterocyclooxy, thiol, thioalkoxy, substituted thioalkoxy, aryl, aryloxy, heteroaryl, heteroaryloxy, heterocyclyl, heterocyclooxy, hydroxyamino, alkoxyamino, nitro, -SO-alkyl, -SO-substituted alkyl, -SO-aryl, -SO-heteroaryl, -SO2-alkyl, -SO2-substituted alkyl, -SO2-aryl, -SO2-heteroaryl, and fused heterocycle.

[0174] "Heterocyclyloxy" refers to the group --O-heterocyclyl.

[0175] The term "heterocyclylthio" refers to the group heterocycle-S-.

[0176] The term "heterocyclene" refers to a diradical group formed from a heterocycle, as defined herein.

[0177] The term "hydroxyamino" refers to the group --NHOH.

[0178] "Nitro" refers to the -NO2 group.

[0179] "Oxo" refers to the atom (=O).

[0180] "Sulfonyl" refers to the group SO-alkyl, SO-substituted alkyl, SO-alkenyl, SO-substituted alkenyl, SO-cycloalkyl, SO-substituted cycloalkyl, SO-cycloalkenyl, SO-substituted cycloalkenyl, SO-aryl, SO-substituted aryl, SO-heteroaryl, SO-substituted heteroaryl, SO-heterocycle, and SO-substituted heterocycle, where alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, heterocycle, and substituted heterocycle are as defined herein. Sulfonyl, by way of example, includes methyl-SO-, phenyl-SO-, and 4-methylphenyl-SO-.

[0181] "Sulfonyloxy" refers to the groups -OSO2-alkyl, OSO2-substituted alkyl, OSO2-alkenyl, OSO2-substituted alkenyl, OSO2-cycloalkyl, OSO2-substituted cycloalkyl, OSO2-cycloalkenyl, OSO2-substituted cycloalkenyl, OSO2-aryl, OSO2-substituted aryl, OSO2-heteroaryl, OSO2-substituted heteroaryl, OSO2-heterocycle, and OSO2-substituted heterocycle, where alkyl, substituted alkyl, alkenyl, substituted alkenyl, alkynyl, substituted alkynyl, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, heterocycle, and substituted heterocycle are as defined herein.

[0182] The term "aminocarbonyloxy" refers to the group -OC(O)NRR, where each R is independently hydrogen, alkyl, substituted alkyl, aryl, heteroaryl, or heterocycle, where alkyl, substituted alkyl, aryl, heteroaryl, and heterocycle are as defined herein.

[0183] "Thiol" refers to the group --SH.

[0184] The term "thioxo" or "thioketo" refers to the atom (=S).

[0185] The term "alkylthio" or "thioalkoxy" refers to an -S-alkyl group, where alkyl is as defined herein. In certain embodiments, sulfur can be oxidized to -S(O)-. Sulfoxides can exist as one or more stereoisomers.

[0186] The term "substituted thioalkoxy" refers to the group --S-substituted alkyl.

[0187] The term "thioaryloxy" refers to the group aryl-S-, where aryl is as defined herein, including optionally substituted aryl, also as defined herein.

[0188] The term "thioheteroaryloxy" refers to the group heteroaryl-S-, where heteroaryl is as defined herein, and includes optionally substituted aryl, also as defined herein.

[0189] The term "thioheterocyclooxy" refers to the group heterocyclyl-S-, where heterocyclyl is as defined herein, including optionally substituted heterocyclyl groups, also as defined herein.

[0190] Further to the disclosure herein, when used to modify a particular group or radical, the term "substituted" can also mean that one or more hydrogen atoms of the specified group or radical are each, independently of one another, replaced with the same or different substituents, as defined below.

[0191] In addition to the groups disclosed for each individual term herein, one or more hydrogens on a saturated carbon atom in the specified group or radical (where any two hydrogens on one carbon are ═O, ═NR 70 , =N-OR 70 Substituents for replacing ═H, ═N, ═N, or ═S, unless otherwise specified, include deuterium, —R 60 , halo, =O, -OR 70 , -SR 70 , -NR 80 R 80 , trihalomethyl, -CN, -OCN, -SCN, -NO, -NO2, =N2, -N3, -SO2R 70 , -SO2O - M + , -SO2OR 70 , -OSO2R 70 , -OSO2O - M + , -OSO2OR70 , -P(O)(O - )2(M + )2, -P(O)(OR 70 )O - M + , -P(O)(OR 70 )2, -C(O)R 70 , -C(S)R 70 , -C(NR 70 )R 70 , -C(O)OM + , -C(O)OR 70 , -C(S)OR 70 , -C(O)NR 80 R 80 , -C(NR 70 )NR 80 R 80 , -OC(O)R 70 , -OC(S)R 70 , -OC(O)O - M + , -OC(O)OR 70 , -OC(S)OR 70 , -NR 70 C(O)R 70 , -NR 70 C(S)R 70 , -NR 70 CO2 - M + , -NR 70 CO2R 70 , -NR 70 C(S)OR 70 , -NR 70 C(O)NR 80 R 80 , -NR 70 C(NR 70 )R 70 and -NR 70 C(NR 70 )NR 80 R 80 In this case, R 60 is selected from the group consisting of optionally substituted alkyl, cycloalkyl, heteroalkyl, heterocycloalkylalkyl, cycloalkylalkyl, aryl, arylalkyl, heteroaryl, and heteroarylalkyl; and each R 70 are independently hydrogen or R 60 and each R80 is independently R 70 or two R 80 together with the nitrogen atom to which they are attached form a 5-, 6-, or 7-membered heterocycloalkyl, which optionally contains 1 to 4 of the same or different additional heteroatoms selected from the group consisting of O, N, and S, wherein N may have —H or C1-C3 alkyl substitution, and each M + is a counter ion with a net positive charge. + are independently, for example, alkali ions, e.g., K + , Na + , Li + ammonium ions, e.g. + N(R 60 ) 4; or alkaline earth ions, e.g. [Ca 2+ ] 0.5 , [Mg 2+ ] 0.5 , or [Ba 2+ ] 0.5 (The "subscript 0.5" means that one of the counterions to such divalent alkaline earth ions is the ionized form of a compound of the present disclosure, and the other may be a typical counterion such as chloride, or that a two-ionized compound disclosed herein may serve as the counterion to such divalent alkaline earth ions, or that a doubly-ionized compound of the present disclosure may serve as the counterion to such divalent alkaline earth ions.) A specific example is -NR 80 R 80 is intended to include -NH2, -NH-alkyl, N-pyrrolidinyl, N-piperazinyl, N-methyl-piperazin-1-yl, and N-morpholinyl.

[0192] Further to the disclosure herein, substituents for hydrogen on unsaturated carbon atoms in "substituted" alkene, alkyne, aryl, and heteroaryl groups include, unless otherwise specified, deuterium, -R 60 , halo, -O - M + , -OR 70 , -SR70 、-S - M + 、-NR 80 R 80 、トリハロメチル、-CF3、-CN、-OCN、-SCN、-NO、-NO2、-N3、-SO2R 70 、-SO3 - M + 、-SO3R 70 、-OSO2R 70 、-OSO3 - M + 、-OSO3R 70 、-PO3 -2 (M + )2、-P(O)(OR 70 )O - M + 、-P(O)(OR 70 )2、-C(O)R 70 、-C(S)R 70 、-C(NR 70 )R 70 、-CO2 - M + 、-CO2R 70 、-C(S)OR 70 、-C(O)NR 80 R 80 、-C(NR 70 )NR 80 R 80 、-OC(O)R 70 、-OC(S)R 70 、-OCO2 - M + 、-OCO2R 70 、-OC(S)OR 70 、-NR 70 C(O)R 70 、-NR 70 C(S)R 70 、-NR 70 CO2 - M + 、-NR 70 CO2R 70 、-NR 70 C(S)OR 70 、-NR 70 C(O)NR 80 R 80 、-NR 70 C(NR 70 )R 70and -NR 70 C(NR 70 )NR 80 R 80 In this case, R 60 , R 70 , R 80 and M + is as defined above, except that in the case of a substituted alkene or alkyne, the substituent is -O - M + , -OR 70 , -SR 70 , or -S - M + isn't it.

[0193] In addition to the groups disclosed for each individual term herein, the substituents for the hydrogen on the nitrogen atom in "substituted" heteroalkyl and cycloheteroalkyl groups are, unless otherwise specified, -R 60 , -OM + , -OR 70 , -SR 70 , -SM + , -NR 80 R 80 , trihalomethyl, -CF3, -CN, -NO, -NO2, -S(O)2R 70 , -S(O)2O-M + , -S(O)2OR 70 , -OS(O)2R 70 , -OS(O)2O-M + , -OS(O)2OR 70 , -P(O)(O-)2(M + )2, -P(O)(OR 70 )OM + , -P(O)(OR 70 )(OR 70 ), -C(O)R 70 , -C(S)R 70 , -C(NR 70 )R 70 , -C(O)OR 70 , -C(S)OR 70 , -C(O)NR 80 R 80 , -C(NR 70 )NR 80 R 80 , -OC(O)R70 , -OC(S)R 70 , -OC(O)OR 70 , -OC(S)OR 70 , -NR 70 C(O)R 70 , -NR 70 C(S)R 70 , -NR 70 C(O)OR 70 , -NR 70 C(S)OR 70 , -NR 70 C(O)NR 80 R 80 , -NR 70 C(NR 70 )R 70 and -NR 70 C(NR 70 )NR 80 R 80 In this case, R 60 , R 70 , R 80 and M + is as defined above.

[0194] Further to what is disclosed herein, in certain embodiments, a substituted group has 1, 2, 3, or 4 substituents, 1, 2, or 3 substituents, 1 or 2 substituents, or 1 substituent.

[0195] For all substituents defined above, unless otherwise specified, polymers obtained by defining the substituent with a further substituent thereon (e.g., a substituted aryl having a substituted aryl as a substituent, which is itself substituted with a substituted aryl group, which is further substituted with a substituted aryl group, etc.) are not intended to be included herein. In such cases, the maximum number of such substitutions is three. For example, the sequential substitution of substituted aryl groups specifically contemplated herein is limited to substituted aryl-(substituted aryl)-substituted aryl. However, a substituent defined as, for example, a polyether, may contain more than three sequential substitutions, for example, -O-(CHCHO) n In the case of -H, n can be 1, 2, 3 or more.

[0196] Unless otherwise indicated, substituents not explicitly defined herein are named by naming the adjacent functionality from the terminal portion of the functionality toward the point of attachment. For example, the substituent "arylalkyloxycarbonyl" refers to (aryl)-(alkyl)-OC(O)-.

[0197] For any group disclosed herein that contains one or more substituents, it is of course understood that such group does not include any substitutions or substitution patterns that are sterically impractical and / or synthetically impractical. Moreover, the subject compounds include all stereochemical isomers resulting from the substitution of these compounds.

[0198] When a substituent or group is defined as "containing deuterium" or "containing deuterium," it is understood that the substituent or group itself can be deuterium, or the substituent or group can contain at least one deuterium substitution in its chemical structure. For example, if the substituent "-R" is defined to contain deuterium, it is understood that -R can also be -D (-deuterium) or a group meeting the other requirements described for -R, such as, for example, -CD.

[0199] The term "pharmaceutically acceptable salt" refers to a salt that is acceptable for administration to a patient, e.g., a mammal (a salt having a counterion that has acceptable mammalian safety for a given administration regimen). Such salts may be derived from pharmaceutically acceptable inorganic or organic bases and from pharmaceutically acceptable inorganic or organic acids. "Pharmaceutically acceptable salt" refers to a pharmaceutically acceptable salt of a compound, which may be derived from a variety of organic and inorganic counterions known in the art, such as sodium, potassium, calcium, magnesium, ammonium, tetraalkylammonium, etc. In cases where the molecule contains a basic functional group, examples include salts of organic or inorganic acids, such as hydrochloride, hydrobromide, formate, tartrate, besylate, mesylate, acetate, maleate, oxalate, etc.

[0200] The term "salt thereof" refers to a compound formed when a proton of an acid is replaced by a cation, such as a metal cation or an organic cation. Where appropriate, the salt is a pharmaceutically acceptable salt, although this is not required for salts of intermediate compounds not intended for administration to a patient. For example, salts of the compounds of the present invention include those that contain the conjugate base of an inorganic or organic acid as the anionic component of the salt when the compound is protonated with an inorganic or organic acid to form a cation.

[0201] "Solvate" refers to a complex formed by the combination of solvent molecules with molecules or ions of the solute. The solvent may be an organic compound, an inorganic compound, or a mixture of both. Some examples of solvents include, but are not limited to, methanol, N,N-dimethylformamide, tetrahydrofuran, dimethyl sulfoxide, and water. When the solvent is water, the solvate formed is a hydrate.

[0202] "Stereoisomer" refers to a compound that has the same atomic connectivity but differs in the arrangement of atoms in space. Stereoisomers include cis-trans isomers, E and Z isomers, enantiomers, and diastereomers. All forms are contemplated herein, including, for example, racemic and optically pure stereoisomers of compounds. Chemical formulas and compounds that have at least one stereogenic center but are drawn without considering stereochemistry are intended to encompass racemates and individual stereoisomers, such as R and / or S stereoisomers, and all diastereomeric sequences, as long as the diastereomers are geometrically feasible.

[0203] "Tautomers" refer to alternative forms of molecules that differ only in the electronic bonding of the atoms and / or the arrangement of protons, for example, enol-keto and imine-enamine tautomers, or tautomeric forms of heteroaryl groups containing the -N=C(H)-NH- ring atom arrangement, such as pyrazole, imidazole, benzimidazole, triazole, and tetrazole. One of ordinary skill in the art will recognize that other tautomeric ring atom arrangements are possible.

[0204] It will be appreciated that the compounds herein can exist in different salt, solvate, and stereoisomeric forms, and the present disclosure is intended to encompass all permutations of salts, solvates, and stereoisomers, including solvates of pharmaceutically acceptable salts of stereoisomers of the subject compounds.

[0205] As used herein, the phrase "maximum sustained release" describes the release window for certain formulations of the present disclosure that are formulated to increase the release period to a maximum value, ultimately limited to the time when the gastrointestinal tract naturally eliminates all of the drug with food.

[0206] The term "tamper-evident" is recognized in the art to describe an aspect of a drug formulation that makes it difficult to abuse the drug portion of the formulation by withdrawing it for intravenous use, thereby reducing the risk of drug abuse.

[0207] As used herein, the term "steady state" describes a stable or steady-state level of a molecule concentration, for example, the concentration of any compound described herein.

[0208] As used herein, the term "composition" is equivalent to the term "formulation."

[0209] As used herein, the phrase "administration event" describes the administration of a given dose in the form of one or more pills to a subject within a short time frame, e.g., less than 10 minutes.

[0210] As used herein, the phrase "release period" describes the time frame during which any compound described herein is released from the matrix to achieve a plasma concentration of the compound described herein. The start of the release period is defined from the time of oral administration to a subject and is considered to approximate gastric entry and initial dissolution by gastric enzymes and acids.

[0211] As used herein, the term "treating" or "treatment" means treating or curing a disease or medical condition in a patient (particularly a human), e.g., a mammal, and includes ameliorating a disease or medical condition, such as causing the disease or medical condition to disappear or to regress in a patient, inhibiting a disease or medical condition in a patient by slowing or halting the onset of the disease or medical condition, or alleviating the symptoms of a disease or medical condition in a patient. In some embodiments, prophylactic treatment may be preventing the occurrence of a disease or medical condition in a subject.

[0212] "Patient" refers to human and non-human subjects, and particularly to mammalian subjects.

[0213] As used herein, unless otherwise specified, the terms "prevent," "preventing," and "prevention" refer to preventing the onset, recurrence, or spread of a disease, disorder, or condition, or preventing one or more symptoms thereof. The terms encompass the inhibition or reduction of symptoms of a particular disease, disorder, or condition. Subjects with a family history of a disease, disorder, or condition, in particular, are candidates for a preventative regimen in certain embodiments. Additionally, subjects with a history of recurrent symptoms are also potential candidates for prevention. In this regard, the term "preventing" can be used interchangeably with "prophylactic treatment."

[0214] As used herein, unless otherwise specified, the terms "manage," "managing," and "management" refer to preventing or slowing the progression, spread, or worsening of a disease, disorder, or condition, or one or more symptoms thereof. Often, the beneficial effects from a prophylactic and / or therapeutic agent do not result in a cure of the disease, disorder, or condition. In this regard, the term "managing" encompasses treating a subject afflicted with a particular disease, disorder, or condition in an attempt to prevent or minimize the recurrence of the disease, disorder, or condition.

[0215] "Pharmaceutically effective amount" and "therapeutically effective amount" refer to an amount of a compound sufficient to treat a particular disorder or disease, or one or more of its symptoms, and / or prevent the disease or disorder from occurring.

[0216] As used herein, and unless otherwise specified, a "prophylactically effective amount" of an active agent is an amount sufficient to prevent a disease, disorder, or condition, or to prevent its recurrence. The term "prophylactically effective amount" can encompass both improving the overall prophylactic efficacy or enhancing the prophylactic efficacy of another prophylactic agent.

[0217] The phrase "neurologically toxic spike" is used herein to describe a spike in the concentration of any compound described herein that results in sedative or psychotomimetic side effects, such as hallucinations, dizziness, and nausea, which may have immediate effects as well as affect treatment compliance, particularly at blood concentration levels above 300 ng / L.

[0218] As used herein, and unless otherwise specified, a "neuropsychiatric disease or disorder" is a behavioral or psychological problem associated with a known neurological condition, typically defined as a cluster of coexisting symptoms. Examples of neuropsychiatric disorders include, but are not limited to, schizophrenia, cognitive impairment in schizophrenia, attention deficit disorder, attention deficit hyperactivity disorder, bipolar disorder, and mania, depression, or any combination thereof.

[0219] As used herein, "inflammatory conditions or diseases" broadly refers to chronic or acute inflammatory diseases. Inflammatory conditions and diseases include, but are not limited to, rheumatic diseases (e.g., rheumatoid arthritis, osteoarthritis, psoriatic arthritis), spondyloarthropathies (e.g., ankylosing spondylitis, reactive arthritis, Reiter's syndrome), crystalline arthropathies (e.g., gout, pseudogout, calcium pyrophosphate deposition disease), multiple sclerosis, Lyme disease, polymyalgia rheumatica, connective tissue diseases (e.g., systemic lupus erythematosus, systemic sclerosis, polymyositis, dermatomyositis, Sjogren's syndrome), vasculitis ( These include, for example, polyarteritis nodosa, Wegener's granulomatosis, Churg-Strauss syndrome), inflammatory conditions including those resulting from trauma or ischemia, vascular diseases including sarcoidosis, atherosclerotic vascular disease, atherosclerosis and vascular occlusive disease (e.g., atherosclerosis, ischemic heart disease, myocardial infarction, stroke, peripheral vascular disease), and ophthalmic diseases including vascular stent restenosis, uveitis, corneal disease, iritis, iridocyclitis, and cataracts.

[0220] As used herein, the term "and / or" includes any and all combinations of one or more of the associated listed items. As used throughout this description and the claims that follow, the meanings of "a," "an," and "the" include the plural as well as the singular, unless the context clearly indicates otherwise. The term "about" in connection with a numerical value means that the value varies above or below by up to 5%. For example, a value of about 100 means 95 to 105 (or any value between 95 and 105).

[0221] compound

[0222] The inventors have identified novel 2C-X type phenethylamine compounds that exhibit preferential binding to G protein-coupled receptors (GPCRs), such as the 5-HT2 receptor, are bioavailable (e.g., orally bioavailable), distribute to the brain, have improved exposure (i.e., prevent sudden spikes in drug levels after administration), and have favorable enzymatic degradation profiles and clearance. As a result, the disclosed compounds exhibit reduced side effects and / or toxicity, low interpatient variability, rapid onset, and relatively short-term action, thereby enabling practical use in clinical settings. In addition to oral administration routes, these novel compounds may also possess desirable properties, such as lipophilicity, that allow for administration via inhalation or transdermal routes, e.g., in the form of a transdermal patch. The novel 2C-X compounds are based on specific molecular modifications, including, for example, deuteration and / or fluorination, that delay or short-circuit enzymatic degradation at specific sites, and, in many cases, molecular modifications that introduce / maintain metabolic soft spots at other sites, which were identified only after significant research.

[0223] Formula (I) As used herein, a compound according to formula (I): [ka] or a pharmaceutically acceptable salt, solvate, stereoisomer or prodrug thereof, During the ceremony, X 1 and X 2 are independently hydrogen or deuterium, Y 1 and Y 2 are independently hydrogen or deuterium, R 3 is hydrogen or deuterium, R 4 is halogen, substituted or unsubstituted C1-C6 alkyl, substituted or unsubstituted C3-C 10 Cycloalkyl, -OR b , or -SR b and Each R a is independently a substituted or unsubstituted C1-C6 alkyl, and R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 is cycloalkyl, However, X 1 , X 2 , Y 1 , Y 2 , R 3 , R 4 , and R a At least one of the groups contains deuterium, and / or R 4 is a compound selected from the group consisting of -SCF3, -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -OCH2CH2CF3, -OCH2CH2CF2H, and -OCH2CH2CFH2.

[0224] X 1 and X 2 may be the same or different. In some embodiments, X 1 and X 2 are the same. In some embodiments, X 1 and X 2 is hydrogen. 1 and X 2 is deuterium.

[0225] Y 1 and Y 2 may be the same or different. In some embodiments, Y 1 and Y 2 are the same. In some embodiments, Y 1 and Y 2 is hydrogen. In some embodiments, Y 1 and Y 2 is deuterium.

[0226] In some embodiments, R 3 is deuterium. In some embodiments, R 3 is hydrogen.

[0227] In some embodiments, R 4 is a halogen, such as —Br, —F, —Cl, or —I.

[0228] In some embodiments, R 4 is a substituted or unsubstituted C1-C6 alkyl. In some embodiments, R 4 is an unsubstituted C1-C6 alkyl, examples of which include, but are not limited to, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, t-butyl, n-pentyl, neopentyl, and hexyl. Preferred unsubstituted alkyl groups are methyl and t-butyl. In some embodiments, R 4 is a substituted C1-C6 alkyl. Preferred substituents include, but are not limited to, deuterium, halogen (e.g., fluorine), polar substituents such as hydroxyl substituents, or polyether substituents. The alkyl group may contain one or more substituents. For example, if the alkyl group is a C1 alkyl group (i.e., a methyl group), the substituted C1 alkyl group can be -CDH2, -CD2H, -CD3, -CFH2, -CF2H, -CF3, etc.

[0229] In some embodiments, R 4 is a substituted or unsubstituted C3-C 10In some embodiments, R 4 is unsubstituted C3-C 10 and cycloalkyl, examples of which include, but are not limited to, adamantyl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, and cyclooctyl. In some embodiments, R 4 is substituted C3-C 10 Preferred substituents include, but are not limited to, alkyl, deuterium, halogen (e.g., fluorine), polar substituents such as hydroxyl substituents or polyether substituents. The cycloalkyl group may contain one or more substituents.

[0230] In some embodiments, R 4 -OR b where R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, preferably substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, for example, substituted C1-C6 alkyl groups as defined and exemplified above, unsubstituted C1-C6 alkyl groups, substituted C3-C 10 Cycloalkyl groups, or unsubstituted C3-C 10 cycloalkyl groups and the like.

[0231] In some embodiments, R 4 -SR b where R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, preferably substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, for example, substituted C1-C6 alkyl groups as defined and exemplified above, unsubstituted C1-C6 alkyl groups, substituted C3-C 10 Cycloalkyl groups, or unsubstituted C3-C 10 cycloalkyl groups and the like.

[0232] In some embodiments, R 4 -SMe, -SCD 3、 -SCF 3、 In some embodiments, R is selected from the group consisting of: -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -SEt, -Sn-Pr, -Me, -CD3, -CF3, -t-Bu, -C(CD3)3, -cyclopentyl, -OMe, -OCD3, -OCF3, -OCH2CH2CF3, -OCH2CH2CF2H, -OCH2CH2CFH2, -Cl, -I, or -Br. 4 -SMe, -Me, -OCD3, -CF 3、 In some embodiments, R is selected from the group consisting of -t-Bu, -cyclopentyl, and -cyclopentyl. 4 is selected from the group consisting of -SCF3, -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -OCH2CH2CF3, -OCH2CH2CF2H, and -OCH2CH2CFH2. 4 is -SCF3, -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -OCH2CH2CF3, -OCH2CH2CF2H, or -OCH2CH2CFH2, other substituents (i.e., X 1 , X 2 , Y 1 , Y 2 , R 3 , and R a ) may or may not contain deuterium.

[0233] Each R a may be the same or different. In some embodiments, each R a are the same. a may independently be a substituted or unsubstituted C1-C6 alkyl, preferably a substituted or unsubstituted C1-C3 alkyl, preferably a substituted or unsubstituted C1 alkyl, examples of which include, but are not limited to, -CH3, -CDH2, -CD2H, -CD3, -CFH2, -CF2H, -CF3. In some embodiments, each R ais —CH. In some embodiments, each R a is -CD3. In some embodiments, each R a are different, for example, one R a is -CH3 and the other is -CD3.

[0234] In some embodiments, Y 1 and Y 2 are hydrogen or deuterium, and R 3 is hydrogen. X 1 and X 2 are hydrogen or deuterium, and each R a is -CH3 or -CD3, and R 4 -SMe, -SCD 3、 -SCF 3、 -SEt, -Sn-Pr, -Me, -CD3, -CF3, -t-Bu, -C(CD3)3, -cyclopentyl, -OMe, -OCD3, -OCF3, or -Br.

[0235] As noted above, any of the above embodiments of compounds of formula (I) may also include X 1 , X 2 , Y 1 , Y 2 , R 3 , R 4 , and R a At least one of the groups contains deuterium, and / or R 4 is provided insofar as it is selected from the group consisting of -SCF3, -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -OCH2CH2CF3, -OCH2CH2CF2H, and -OCH2CH2CFH2.

[0236] Formula (II) In some embodiments, the compound has formula (II): [ka] or a pharmaceutically acceptable salt, solvate, stereoisomer or prodrug thereof, During the ceremony, X1 and X 2 are independently hydrogen or deuterium, Y 1 and Y 2 are independently hydrogen or deuterium, R 4 is halogen, substituted or unsubstituted C1-C6 alkyl, substituted or unsubstituted C3-C 10 Cycloalkyl, -OR b , or -SR b and R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 A compound which is a cycloalkyl.

[0237] X 1 and X 2 may be the same or different. In some embodiments, X 1 and X 2 are the same. In some embodiments, X 1 and X 2 is hydrogen. 1 and X 2 is deuterium.

[0238] Y 1 and Y 2 may be the same or different. In some embodiments, Y 1 and Y 2 are the same. In some embodiments, Y 1 and Y 2 is hydrogen. In some embodiments, Y 1 and Y 2 is deuterium.

[0239] In some embodiments, R 4 is a halogen, such as —Br, —F, —Cl, or —I.

[0240] In some embodiments, R 4is a substituted or unsubstituted C1-C6 alkyl. In some embodiments, R 4 is an unsubstituted C1-C6 alkyl, examples of which include, but are not limited to, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, t-butyl, n-pentyl, neopentyl, and hexyl. Preferred unsubstituted alkyl groups are methyl and t-butyl. In some embodiments, R 4 is a substituted C1-C6 alkyl. Preferred substituents include, but are not limited to, deuterium, halogen (e.g., fluorine), polar substituents such as hydroxyl substituents, or polyether substituents. The alkyl group may contain one or more substituents. For example, if the alkyl group is a C1 alkyl group (i.e., a methyl group), the substituted C1 alkyl group can be -CDH2, -CD2H, -CD3, -CFH2, -CF2H, -CF3, etc.

[0241] In some embodiments, R 4 is a substituted or unsubstituted C3-C 10 In some embodiments, R 4 is unsubstituted C3-C 10 and cycloalkyl, examples of which include, but are not limited to, adamantyl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, and cyclooctyl. In some embodiments, R 4 is substituted C3-C 10 Preferred substituents include, but are not limited to, alkyl, deuterium, halogen (e.g., fluorine), polar substituents such as hydroxyl substituents or polyether substituents. The cycloalkyl group may contain one or more substituents.

[0242] In some embodiments, R 4 -OR b where R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10Cycloalkyl, preferably substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, for example, substituted C1-C6 alkyl groups as defined and exemplified above, unsubstituted C1-C6 alkyl groups, substituted C3-C 10 Cycloalkyl groups, or unsubstituted C3-C 10 cycloalkyl groups and the like.

[0243] In some embodiments, R 4 -SR b where R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, preferably substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, for example, substituted C1-C6 alkyl groups as defined and exemplified above, unsubstituted C1-C6 alkyl groups, substituted C3-C 10 Cycloalkyl groups, or unsubstituted C3-C 10 cycloalkyl groups and the like.

[0244] In some embodiments, R 4 -SMe, -SCD 3、 -SCF 3、 In some embodiments, R is selected from the group consisting of: -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -SEt, -Sn-Pr, -Me, -CD3, -CF3, -t-Bu, -C(CD3)3, -cyclopentyl, -OMe, -OCD3, -OCF3, -OCH2CH2CF3, -OCH2CH2CF2H, -OCH2CH2CFH2, -Cl, -I, or -Br. 4 -SMe, -Me, -OCD3, -CF 3、 -t-Bu, or -cyclopentyl.

[0245] In some embodiments, Y 1 and Y 2 are hydrogen or deuterium, respectively, and X 1 and X2 are hydrogen or deuterium, and R 4 -SMe, -SCD 3、 -SCF 3、 -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -SEt, -Sn-Pr, -Me, -CD3, -CF3, -t-Bu, -C(CD3)3, -cyclopentyl, -OMe, -OCD3, -OCF3, -OCH2CH2CF3, -OCH2CH2CF2H, -OCH2CH2CFH2, -Cl, -I, or -Br, preferably R 4 -SMe, -Me, -OCD 3、 -CF3, -t-Bu, or -cyclopentyl.

[0246] Compounds of formula (II) containing deuteration in the form of -OCD3 groups at positions 2 and 5 of the phenyl ring can have beneficial effects by slowing down or short-circuiting O-demethylation at these positions (primarily mediated by the CYP2D6 enzyme), thereby improving pharmacokinetics, particularly bioavailability, and improving safety as a result of reduced exposure to toxic metabolites.

[0247] Formula (III) In some embodiments, the compound has formula (III): [ka] or a pharmaceutically acceptable salt, solvate, stereoisomer or prodrug thereof, During the ceremony, X 1 and X 2 are independently hydrogen or deuterium, Y 1 and Y 2 are independently hydrogen or deuterium, R 4 is C1-C6 alkyl substituted with one or more deuterium atoms, C3-C 10 Cycloalkyl, -OR b , or -SR b and Each Ra is independently a substituted or unsubstituted C1-C6 alkyl, and R b is a C1-C6 alkyl substituted with one or more deuterium atoms, or a C3-C alkyl substituted with one or more deuterium atoms. 10 A compound which is a cycloalkyl.

[0248] X 1 and X 2 may be the same or different. In some embodiments, X 1 and X 2 are the same. In some embodiments, X 1 and X 2 is hydrogen. 1 and X 2 is deuterium.

[0249] Y 1 and Y 2 may be the same or different. In some embodiments, Y 1 and Y 2 are the same. In some embodiments, Y 1 and Y 2 is hydrogen. In some embodiments, Y 1 and Y 2 is deuterium.

[0250] In some embodiments, R 4 is a C1-C6 alkyl substituted with one or more deuterium atoms, examples of which include, but are not limited to, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, t-butyl, n-pentyl, neopentyl, and hexyl groups containing one or more deuterium substituents. The alkyl group may contain one or more deuterium substituents, for example, 1, 2, 3, 4, 5, 6, 7, 8, or 9 deuterium substituents. Examples of C1-C6 alkyl groups substituted with one or more deuterium atoms include, but are not limited to, -CD3 and -C(CD3)3.

[0251] In some embodiments, R 4 is a C3-C bond substituted with one or more deuterium atoms. 10 Cycloalkyl, such as adamantyl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, or cyclooctyl groups, may be substituted with one or more deuterium atoms. The cycloalkyl group may contain one or more substituents, such as 1, 2, 3, 4, 5, 6, 7, 8, or 9 deuterium substituents.

[0252] In some embodiments, R 4 -OR b where R b is a C1-C6 alkyl substituted with one or more deuterium atoms, or a C3-C alkyl substituted with one or more deuterium atoms. 10 Cycloalkyl, for example, a C1-C6 alkyl group substituted with one or more deuterium atoms as defined and exemplified above, or a C3-C6 alkyl group substituted with one or more deuterium atoms. 10 In some embodiments, R 4 is -OCD3.

[0253] In some embodiments, R 4 -SR b where R b is a C1-C6 alkyl substituted with one or more deuterium atoms, or a C3-C alkyl substituted with one or more deuterium atoms. 10 Cycloalkyl, for example, a C1-C6 alkyl group substituted with one or more deuterium atoms as defined and exemplified above, or a C3-C6 alkyl group substituted with one or more deuterium atoms. 10 In some embodiments, R 4 is -SCD3.

[0254] In some embodiments, R 4 -SCD 3、 -CD3, -C(CD3)3, and -OCD3.

[0255] Each R a may be the same or different. In some embodiments, each Ra are the same. a may independently be a substituted or unsubstituted C1-C6 alkyl, preferably a substituted or unsubstituted C1-C3 alkyl, preferably a substituted or unsubstituted C1 alkyl, examples of which include, but are not limited to, -CH3, -CDH2, -CD2H, -CD3, -CFH2, -CF2H, -CF3. In some embodiments, each R a is —CH. In some embodiments, each R a is -CD3. In some embodiments, each R a are different, for example, one R a is -CH3 and the other is -CD3.

[0256] In some embodiments, X 1 and X 2 are hydrogen or deuterium, respectively, and Y 1 and Y 2 are hydrogen or deuterium, and each R a is -CH3 and R 4 -SCD 3、 -CD3, -C(CD3)3, or -OCD3.

[0257] R on the phenyl ring 4 Compounds of formula (III) containing deuterated alkyl / cycloalkyl groups at positions 10 and 11 have been beneficially affected by incorporating lipophilic groups for improved brain penetration, but may also slow or shunt metabolism at these positions, improving pharmacokinetics, particularly bioavailability.

[0258] Formula (IV) In some embodiments, the compound has formula (IV): [ka] or a pharmaceutically acceptable salt, solvate, stereoisomer or prodrug thereof, During the ceremony, Y 1 and Y 2 are independently hydrogen or deuterium, R 4 is halogen, substituted or unsubstituted C1-C6 alkyl, substituted or unsubstituted C3-C 10 Cycloalkyl, -OR b , or -SR b and Each R a is independently a substituted or unsubstituted C1-C6 alkyl, and R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 A compound which is a cycloalkyl.

[0259] Y 1 and Y 2 may be the same or different. In some embodiments, Y 1 and Y 2 are the same. In some embodiments, Y 1 and Y 2 is hydrogen. In some embodiments, Y 1 and Y 2 is deuterium.

[0260] In some embodiments, R 4 is a halogen, such as —Br, —F, —Cl, or —I.

[0261] In some embodiments, R 4 is a substituted or unsubstituted C1-C6 alkyl. In some embodiments, R 4 is an unsubstituted C1-C6 alkyl, examples of which include, but are not limited to, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, t-butyl, n-pentyl, neopentyl, and hexyl. Preferred unsubstituted alkyl groups are methyl and t-butyl. In some embodiments, R 4is a substituted C1-C6 alkyl. Preferred substituents include, but are not limited to, deuterium, halogen (e.g., fluorine), polar substituents such as hydroxyl substituents, or polyether substituents. The alkyl group may contain one or more substituents. For example, if the alkyl group is a C1 alkyl group (i.e., a methyl group), the substituted C1 alkyl group can be -CDH2, -CD2H, -CD3, -CFH2, -CF2H, -CF3, etc.

[0262] In some embodiments, R 4 is a substituted or unsubstituted C3-C 10 In some embodiments, R 4 is unsubstituted C3-C 10 and cycloalkyl, examples of which include, but are not limited to, adamantyl, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, and cyclooctyl. In some embodiments, R 4 is substituted C3-C 10 Preferred substituents include, but are not limited to, alkyl, deuterium, halogen (e.g., fluorine), polar substituents such as hydroxyl substituents or polyether substituents. The cycloalkyl group may contain one or more substituents.

[0263] In some embodiments, R 4 -OR b where R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, preferably substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, for example, substituted C1-C6 alkyl groups as defined and exemplified above, unsubstituted C1-C6 alkyl groups, substituted C3-C 10 Cycloalkyl groups, or unsubstituted C3-C 10 cycloalkyl groups and the like.

[0264] In some embodiments, R4 -SR b where R b is hydrogen, deuterium, substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, preferably substituted or unsubstituted C1-C6 alkyl, or substituted or unsubstituted C3-C 10 Cycloalkyl, for example, substituted C1-C6 alkyl groups as defined and exemplified above, unsubstituted C1-C6 alkyl groups, substituted C3-C 10 Cycloalkyl groups, or unsubstituted C3-C 10 cycloalkyl groups and the like.

[0265] In some embodiments, R 4 -SMe, -SCD 3、 -SCF 3、 In some embodiments, R is selected from the group consisting of: -SCH2CH2CF3, -SCH2CH2CF2H, -SCH2CH2CFH2, -SEt, -Sn-Pr, -Me, -CD3, -CF3, -t-Bu, -C(CD3)3, -cyclopentyl, -OMe, -OCD3, -OCF3, -OCH2CH2CF3, -OCH2CH2CF2H, -OCH2CH2CFH2, -Cl, -I, or -Br. 4 -SMe, -Me, -OCD3, -CF 3、 -t-Bu, or -cyclopentyl.

[0266] Each R a may be the same or different. In some embodiments, each R a are the same. a may independently be a substituted or unsubstituted C1-C6 alkyl, preferably a substituted or unsubstituted C1-C3 alkyl, preferably a substituted or unsubstituted C1 alkyl, examples of which include, but are not limited to, -CH3, -CDH2, -CD2H, -CD3, -CFH2, -CF2H, -CF3. In some embodiments, each R a is —CH. In some embodiments, each R a is -CD3. In some embodiments, each R aare different, for example, one R a is -CH3 and the other is -CD3.

[0267] In some embodiments, Y 1 and Y 2 are hydrogen or deuterium, and each R a is -CH3 or -CD3, and R 4 -SMe, -SCD 3、 -SCF 3、 -SEt, -Sn-Pr, -Me, -CD3, -CF3, -t-Bu, -C(CD3)3, -cyclopentyl, -OMe, -OCD3, -OCF3 or -Br.

[0268] Compounds of formula (IV) containing deuteration, e.g., deuteration of the α-carbon, in the ethylene fragment connecting the amino group and the benzene ring in phenethylamines may beneficially slow enzymatic degradation compared to compounds that may be susceptible to MAO-mediated deamination / oxidation processes, thereby effectively reducing therapeutic doses and improving bioavailability for the purpose of preventing the sudden observed spikes in drug concentrations after administration, as well as increasing brain levels of the active compound. As a result, such compounds may reduce acute adverse effects, such as anxiety, panic attacks, tachycardia, hypertension, elevated body temperature, nausea, and vomiting, as well as 5-HT associated with valvular heart disease. 2B This may reduce side effects and toxicity, such as toxicity caused by receptor activation.

[0269] The compounds of Formulas (I)-(IV) may contain stereocenters. In that case, even though Formulas (I)-(IV) are drawn without regard to stereochemistry, the compounds may exist in various stereoisomeric forms. Accordingly, the present disclosure encompasses all possible stereoisomers, including not only racemates but also individual enantiomers (enantiomerically pure compounds) and non-racemic mixtures thereof. When a compound is desired as a single enantiomer, it may be obtained by stereospecific synthesis, by resolution of the final product or any suitable intermediate, or by chiral chromatographic methods, which are known in the art. Resolution of the final product, intermediate, or starting material may be carried out by any suitable method known in the art.

[0270] In some embodiments, the compounds described herein, e.g., compounds of Formulas (I)-(IV), are racemic. In some embodiments, the compounds described herein, e.g., compounds of Formulas (I)-(IV), are enantiomerically pure.

[0271] In some embodiments, the compound is an agonist of the serotonin 5-HT2 receptor.

[0272] In some embodiments, the compound is serotonin 5-HT 2A It may also be an agonist of the receptor.

[0273] In some embodiments, the compound, e.g., a compound of Formulas (I)-(IV), is selected from the group consisting of: [ka] [ka] [ka] [ka] [ka] [ka] or a pharmaceutically acceptable salt thereof, or a prodrug thereof.

[0274] The compound numbers, IUPAC names, and substituents for the compounds identified above are listed in Table 1. [Table 1] [Table 2] [Table 3]

[0275] Therapeutic Uses and Methods Also disclosed herein are methods for treating a subject having a disease or disorder, comprising administering to the subject a therapeutically effective amount of a compound disclosed herein (e.g., a compound of Formulas (I)-(IV)).

[0276] The dosage and frequency (single or multiple administrations) of the compound administered may vary depending on a variety of factors, including, but not limited to, the disease / condition being treated, the route of administration, the size, age, sex, health, weight, body mass index, and diet of the recipient, the nature and severity of the disease being treated, the presence of other diseases or other health-related problems, the type of concomitant therapy, and complications resulting from any disease or treatment regimen. Other treatment regimens or agents can be used in combination with the methods and compounds disclosed herein.

[0277] Therapeutically effective amounts for use in humans may be determined from animal models. For example, a dose for humans may be formulated to achieve a concentration found to be effective in animals. The dose for humans can be adjusted by monitoring response to treatment and adjusting the dose upward or downward.

[0278] Dosage can vary depending on the requirements of the subject and the compound employed.In the context of the pharmaceutical compositions provided herein, the dosage administered to the subject must be sufficient to cause beneficial therapeutic responses in the subject for a long period of time.The amount of dosage is also determined by the existence, nature and extent of any adverse side effects.Generally, treatment is initiated with a small dosage, and the initial dosage is less than the optimal dosage of the compound.The dosage is then increased by small increments until the optimal effect is achieved under the circumstances.

[0279] Dosage amount and interval can be adjusted individually to provide levels of the administered compound that are effective for the particular clinical indication being treated, thereby providing a treatment regimen commensurate with the severity of the individual's disease state.

[0280] The dosing schedule may vary depending on the compound employed, the condition being treated, etc. For example, administration may be once daily (QD), or in divided doses throughout the day, such as twice daily (BID), three times daily (TID), or four times daily (QID). In some embodiments, administration may be nightly (QHS). In some embodiments, the compound / pharmaceutical composition may be administered as needed (PRN).

[0281] In some embodiments, the pharmaceutical uses of the present disclosure may be used as a stand-alone treatment. In some embodiments, the pharmaceutical uses of the present disclosure may be used as an adjuvant / combination therapy.

[0282] By utilizing the teachings provided herein, prophylactic or therapeutic regimens can be designed that result in less toxicity, yet are highly effective in treating the clinical symptoms exhibited by a particular patient. This design should include careful selection of active compounds by considering factors such as the potency of the compound, its relative bioavailability, the patient's body weight, the presence and severity of adverse side effects, the preferred method of administration, and the toxicity profile of the selected agent.

[0283] The subject to be treated herein may have a disease or disorder associated with the serotonin 5-HT2 receptor.

[0284] In some embodiments, the disease or disorder is a neuropsychiatric disease or disorder or an inflammatory disease or disorder. In some embodiments, the disease or disorder is selected from the group consisting of disorders of the central nervous system (CNS), including post-traumatic stress disorder (PTSD), major depressive disorder (MDD), treatment-resistant depression (TRD), suicidal ideation, suicidal behavior, major depressive disorder with suicidal ideation or behavior, non-suicidal self-injury disorder (NSSID), bipolar disorder and related disorders, including bipolar disorder type I, bipolar disorder type II, cyclothymic disorder, obsessive-compulsive disorder (OCD), generalized anxiety disorder (GAD), social anxiety disorder, and the like. These disorders include substance use disorders, including anxiety disorder, alcohol use disorder, opioid use disorder, amphetamine use disorder, nicotine use disorder, and cocaine use disorder, anorexia nervosa, bulimia nervosa, binge eating disorder, Alzheimer's disease, cluster headaches and migraines, attention deficit hyperactivity disorder (ADHD), pain and neuropathic pain, aphantasia, childhood-onset dysphagia, dementia, mild dementia, sexual dysfunction (e.g., low libido), chronic fatigue syndrome, Lyme disease, and obesity. In some embodiments, the disease or disorder may involve a condition of the autonomic nervous system (ANS). In some embodiments, the disease or disorder may involve a pulmonary disorder (e.g., asthma and chronic obstructive pulmonary disorder (COPD)). In some embodiments, the disease or disorder may involve a cardiovascular disorder (e.g., atherosclerosis).

[0285] In some embodiments, the present disclosure provides a therapeutic approach to the treatment of various conditions, including, but not limited to, cancer pain, including refractory cancer pain; neuropathic pain; post-operative pain; opioid-induced hyperalgesia and opioid-related tolerance; neuropathic pain; post-operative / post-surgical pain; complex regional pain syndrome (CRPS); shock; limb amputation; severe chemical and thermal burns; sprains, ligament tears, fractures, injuries, and other tissue trauma; dental surgery, procedures, and illness; childbirth; during physical therapy; radiation poisoning; acquired immune deficiency syndrome (AIDS); epidural fibrosis; orthopedic pain; back pain; post-spine surgery and post-laminar surgery pain; sciatica; painful sickle cell crisis. The present disclosure provides management of various types of pain, including arthritis, autoimmune diseases, intractable bladder pain, pain associated with certain viruses, such as shingles pain or herpes pain, acute nausea, such as pain that can cause nausea or abdominal pain accompanied by frequent, severe nausea, migraine, such as migraine with aura, and other conditions, including depression (e.g., acute depression or chronic depression), depression accompanied by pain, alcoholism, sudden agitation, intractable asthma, acute asthma (e.g., an unrelated pain condition can cause asthma), epilepsy, acute brain trauma, and stroke, Alzheimer's disease, and other disorders. The pain may be persistent or chronic, lasting from weeks to years, and in some cases, the injury or illness that caused the pain has healed or subsided, and in some cases, medication and / or treatment have been administered in the past. Furthermore, the present disclosure includes the treatment / management of any combination of these types of pain or conditions.

[0286] In some embodiments, the pain being treated / managed is acute breakthrough pain or pain associated with closure, which may occur in chronic pain states. In some embodiments of the present disclosure, the pain being treated / managed is cancer pain, e.g., intractable cancer pain. In some embodiments of the present disclosure, the pain being treated / managed is post-operative pain. In some embodiments of the present disclosure, the pain being treated / managed is orthopedic pain. In some embodiments of the present disclosure, the pain being treated / managed is back pain. In some embodiments of the present disclosure, the pain being treated / managed is neuropathic pain. In some embodiments of the present disclosure, the pain being treated / managed is dental pain. In some embodiments of the present disclosure, the condition being treated / managed is depression. In some embodiments of the present disclosure, the pain being treated / managed is chronic pain in opioid-tolerant patients.

[0287] In some embodiments, the present disclosure provides for the management of sexual dysfunctions, including, but not limited to, sexual desire disorders, e.g., low libido; sexual arousal disorders, e.g., disorders causing lack of desire, lack of arousal, pain during intercourse, and orgasmic disorders such as anorgasmia; and erectile dysfunction; particularly sexual dysfunctions attributable to psychological factors.

[0288] In embodiments, the present disclosure relates to a method of treating a disease or condition by modulating N-methyl-D-aspartate (NMDA) activity, the method comprising administering an effective amount of any of the compounds described herein (e.g., any of the compounds described herein (e.g., compounds of Formulas (I)-(IV))) to a subject in need thereof. In embodiments, the disease or condition is selected from levodopa-induced movement disorder; dementia (e.g., Alzheimer's dementia), tinnitus, treatment-resistant depression (TRD), major depressive disorder, neuropathic pain, agitation caused by or associated with Alzheimer's disease, pseudobulbar effect, autism, bulbar function, generalized anxiety disorder, Alzheimer's disease, schizophrenia, diabetic neuropathy, acute pain, depression, bipolar depression, suicidality, neuropathic pain, or post-traumatic stress disorder (PTSD). In some embodiments, the disease or condition is a psychiatric disorder (e.g., schizophrenia, mood disorders, substance-induced psychosis, major depressive disorder (MDD), bipolar disorder, bipolar depression (BDep), post-traumatic stress disorder (PTSD), suicidal ideation, anxiety, obsessive-compulsive disorder (OCD), and treatment-resistant depression (TRD)). In other embodiments, the disease or condition is a neurological disorder (e.g., Huntington's disease (HD), Alzheimer's disease (AD), or systemic lupus erythematosus (SLE)).

[0289] For example, in some embodiments, the present disclosure provides a method of treating a subject with any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, comprising administering to the subject an oral tablet composition, e.g., a matrix composition, of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, thereby treating the subject.

[0290] The administering physician can adjust the amount and timing of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, based on the observation of one or more symptoms of the disorder or condition being treated, thereby providing a method of treatment that is prophylactic or therapeutic.

[0291] In some embodiments of the present disclosure, the subject is a mammal.

[0292] In some embodiments of the present disclosure, the mammal is a human.

[0293] In some embodiments, the present disclosure provides a method for continuous oral administration of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof. Any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, may be formulated into a tablet composition, e.g., a monolayer tablet, which steadily releases therapeutically effective concentrations of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, over the complete release period without neurological toxicity spikes, e.g., sedative or psychotomimetic toxicity spikes, in the plasma concentration of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof. The tablet composition may be orally administered to a subject to provide the subject with a continuous therapeutically effective concentration of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof.

[0294] The compounds of the present disclosure have a beneficial metabolic degradation profile that prevents the rapid observed high drug concentrations after administration while improving brain levels of the active compound, allowing for a lower therapeutic dose in some embodiments. As a result, the compounds may be able to inhibit, for example, 5-HT2 receptors associated with valvular heart disease. 2BThey have reduced toxicity, including that associated with receptor activation, and may be amenable to microdosing for long-term therapeutic benefit (Rothman, RB, and Baumann, MH, 2009, Serotonergic drugs and valvular heart disease, Expert Opin Drug Saf 8, 317-329).

[0295] Pharmaceutical Composition

[0296] Also disclosed herein are pharmaceutical compositions comprising the compounds disclosed herein (eg, compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable excipient.

[0297] The compound may be present in the pharmaceutical composition with a purity of at least 50%, at least 60%, at least 70%, at least 80%, at least 90%, at least 95%, or at least 99% by weight, based on the total weight of the compound's isotopologues present in the pharmaceutical composition. In preferred compounds and compositions, any position in the compound that has deuterium has a minimum deuterium incorporation of at least 10 atomic %, at least 20 atomic %, at least 25 atomic %, at least 30 atomic %, at least 40 atomic %, at least 45 atomic %, at least 50 atomic %, at least 60 atomic %, at least 70 atomic %, at least 80 atomic %, at least 90 atomic %, at least 95 atomic %, or at least 99 atomic % at the site of deuterium. In a preferred embodiment, the composition is substantially free of other isotopologues of the compound, for example, the composition has less than 20, 15, 10, 9, 8, 7, 6, 5, 4, 3, 2, or 1 or 0.5 mole percent of other isotopologues of the compound.

[0298] Pharmaceutical compositions may be formulated using enantiomerically pure compounds of the present disclosure, such as compounds of Formulas (I)-(IV), or racemic mixtures of compounds. As described herein, racemic compounds of Formulas (I)-(IV) may contain about 50% R and S stereoisomers based on a molar ratio of one of the isomers (about 48 to about 52 mole %, or about a 1:1 ratio). In some embodiments, a composition, medicament, or method of treatment may include combining separately prepared R and S stereoisomers of the compound in an approximately equal molar ratio (about 48 to 52%). In some embodiments, a medicament or pharmaceutical composition may contain a mixture of separate compounds in different ratios of R and S stereoisomers. In some embodiments, a pharmaceutical composition contains an excess (greater than 50%) of the R-enantiomer. Suitable R / S molar ratios may be about 1.5:1, 2:1, 3:1, 4:1, 5:1, 10:1, or higher. In some embodiments, the pharmaceutical composition may contain an excess of the S-enantiomer, resulting in a reversed R / S ratio. Other suitable amounts of R / S may be selected. For example, the R-enantiomer may be present in an amount of at least about 55% to 100%, or at least 65%, at least 75%, at least 80%, at least 85%, at least 90%, about 95%, about 98%, or 100%. In other embodiments, the S-enantiomer may be present in a higher proportion, for example, at least about 55% to 100%, or at least 65%, at least 75%, at least 80%, at least 85%, at least 90%, about 95%, about 98%, or 100%. All of these exemplary embodiments, as well as ratios greater than and less than these that are within the scope of the present disclosure, are included. The composition may contain a mixture of the racemate and the individual compounds of Formulas (I)-(IV) in free base form and / or salt form.

[0299] The term "excipient" refers to a diluent, adjuvant, vehicle, or carrier with which the compounds of the present disclosure are formulated for administration to a mammal. A "pharmaceutically acceptable excipient" may be a diluent, adjuvant, vehicle, or carrier approved by a federal or state regulatory agency or listed in the United States Pharmacopoeia for use in mammals, e.g., humans, or other generally recognized pharmacopeias. Such pharmaceutically acceptable excipients may be solid or liquid, such as water or oils of petroleum, animal, vegetable, or synthetic origin, e.g., peanut oil, soybean oil, mineral oil, sesame oil, etc. Pharmaceutically acceptable excipients may also be saline, acacia gum, gelatin, starch paste, talc, keratin, colloidal silica, urea, etc. Additionally, auxiliary substances, stabilizers, disintegrants, thickeners, lubricants, flavoring agents, buffers, and coloring agents may be used.

[0300] When administered to mammals, the compounds and compositions of the present disclosure may be sterile. In some cases, when the subject compounds are administered intravenously or via inhalation, aqueous media such as water, saline, and aqueous dextrose and glycerol solutions are employed as vehicles.

[0301] The pharmaceutical composition can be in the form of capsules, tablets, pills, pellets, lozenges, powders, granules, syrups, elixirs, solutions, suspensions, emulsions, suppositories, or sustained-release formulations thereof, or any other form suitable for administration to mammals. In some cases, the pharmaceutical composition is formulated for administration according to routine procedures as a pharmaceutical composition adapted for oral or intravenous administration to humans. Examples of suitable pharmaceutical vehicles and their formulation methods are described in chapters 86, 87, 88, 91 and 92 of Remington: The Science and Practice of Pharmacy, Alfonso R. Gennaro ed., Mack Publishing Co. Easton, Pa., 19th ed., 1995, which are incorporated herein by reference. The choice of excipient is determined in part by the specific compound and the specific method used to administer the composition. Thus, there are a variety of suitable formulations for the subject pharmaceutical composition.

[0302] Administration of the subject compounds may be systemic or local. In certain embodiments, administration to a mammal results in systemic release (e.g., release into the bloodstream) of the compounds of the present disclosure. Administration methods may include enteral routes, such as oral, buccal, sublingual, and rectal; topical administration, such as transdermal (e.g., using a skin patch formulation of the compounds herein) and intradermal; administration by inhalation, for example, via a nebulizer or inhaler, and parenteral administration (e.g., by injection). In addition to intravenous injection, other injection administration routes include, but are not limited to, transdermal, subcutaneous, and intramuscular administration using an autoinjector device. In some preferred embodiments, the pharmaceutical compositions herein are formulated for oral administration. In some preferred embodiments, the pharmaceutical compositions herein are formulated for administration by inhalation. In some preferred embodiments, the pharmaceutical compositions herein are formulated in the form of a skin patch for transdermal administration.

[0303] In some embodiments, the pharmaceutical composition comprises a compound of the present disclosure and a polymer. In some embodiments, the pharmaceutical composition comprises (i) a water-insoluble, neutrally charged non-ionic matrix, and (ii) a polymer bearing one or more negatively charged groups.

[0304] In some embodiments, the water-insoluble, neutrally charged nonionic matrix is ​​selected from a cellulosic polymer, such as HPMC, alone or reinforced by blending with a member selected from the group consisting of starch, wax, neutral gum, polymethacrylate, PVA, PVA / PVP mixtures, and mixtures thereof. In some embodiments, the cellulosic polymer is hydroxypropyl methylcellulose (HPMC).

[0305] In some embodiments, the polymer carrying one or more negatively charged groups is selected from the group consisting of polyacrylic acid, polylactic acid, polyglycolic acid, polymethacrylate carboxylates, cation exchange resins, clays, zeolites, hyaluronic acid, anionic gums, salts thereof, and mixtures thereof.

[0306] In some embodiments, the anionic gum is natural or semi-synthetic. In some embodiments, the natural gum is selected from the group consisting of alginic acid, pectin, xanthan gum, carrageenan, locust bean gum, gum arabic, gum karaya, guar gum, and gum tragacanth. In some embodiments, the semi-synthetic gum is selected from the group consisting of carboxymethyl-chitin and cellulose gum.

[0307] In some embodiments, modified-release oral formulations are provided. In some embodiments, oral formulations are for low-dose maintenance therapy that can be constructed using the compounds described herein, taking advantage of the ability of the phenethylamine-type compounds described herein to be combined with anionic polymers.

[0308] In some embodiments, the formulation contains a compound of the present disclosure that is an orally active, locally restricted 5-HT2 agonist intended for the treatment of autonomic nervous system disorders, including pulmonary disorders (e.g., asthma) and cardiovascular disorders (e.g., atherosclerosis).

[0309] Pharmaceutical compositions can be prepared and administered in various dosage formulations.The compounds described herein can be administered orally, topically (by cream or patch), rectally, via inhalation, or by injection (e.g., intravenously, intramuscularly, intradermally, subcutaneously, intraduodenally, or intraperitoneally).In some embodiments, the compounds described herein can be administered via an automatic injection device.

[0310] Autoinjector devices provide a method of delivering the compositions disclosed herein to a patient. The compositions disclosed herein may be administered to a patient using an autoinjector device via many known devices, a non-limiting list of which includes transdermal, subcutaneous, and intramuscular delivery.

[0311] In some transdermal, subcutaneous or intramuscular applications, the compositions disclosed herein are absorbed through the skin.Passive transdermal patch devices often include an absorption layer or film placed on the outer layer of the skin.The film typically contains a substance that is absorbed through the skin in an amount that allows the composition to be delivered to the patient.Typically, only substances that are easily absorbed through the outer layer of the skin can be delivered by such transdermal patch devices.

[0312] Other autoinjection devices disclosed herein are configured to increase skin permeability to improve delivery of the disclosed compositions. Non-limiting examples of structures used to increase permeability and improve movement of the compositions into, across, or into the muscle include the use of one or more microneedles, which in some embodiments may be coated with a composition disclosed herein. Alternatively, hollow microneedles may be used to provide a fluid channel for delivery of the disclosed compositions below the outer layer of the skin. Other devices disclosed herein include transdermal delivery via iontophoresis, sonophoresis, reverse iontophoresis, or a combination thereof, as well as other techniques known in the art to increase skin permeability to facilitate drug delivery.

[0313] For preparing pharmaceutical compositions from the compounds described herein, pharmaceutically acceptable excipients can be either solid or liquid.Solid preparations include powders, tablets, pills, capsules, cachets, suppositories, and dispersible granules.Solid carriers can be one or more substances that can also function as diluents, flavoring agents, binders, preservatives, tablet disintegrating agents, or encapsulating materials.

[0314] In powders, the carrier may be a finely divided solid which is in admixture with the finely divided active ingredient. In tablets, the active ingredient may be mixed with a carrier having the necessary binding properties in suitable proportions and compacted in the shape and size desired.

[0315] Powders and tablets may contain about 5% to about 70% by weight of the active compound, or about 10% to about 60% by weight, or about 20% to about 50% by weight, or about 30% to about 40% by weight. Suitable carriers include magnesium carbonate, magnesium stearate, talc, sugar, lactose, pectin, dextrin, starch, gelatin, tragacanth, methylcellulose, sodium carboxymethylcellulose, low-melting waxes, cocoa butter, and the like. The term "preparation" is intended to include formulations of the active compound containing encapsulating materials as carriers to provide capsules, in which the active ingredient is surrounded by the carrier, with or without other carriers, and thus associated with the carrier. Cachets and lozenges are also included. Tablets, powders, capsules, pills, cachets, and lozenges can be used as solid dosage forms suitable for oral administration.

[0316] For preparing suppositories, a low melting wax, such as a mixture of fatty acid glycerides or cocoa butter, is first melted and the active ingredient is dispersed homogeneously therein by stirring, The molten homogeneous mixture is then poured into commonly sized molds, allowed to cool, and thereby solidify.

[0317] Liquid form preparations include solutions, suspensions, and emulsions, for example, water or water / propylene glycol solutions.For parenteral injection, liquid preparations can also be formulated in solution in aqueous polyethylene glycol solution.

[0318] Aqueous solutions suitable for oral use may be prepared by dissolving the active ingredient in water and adding suitable colorants, flavors, stabilizers, and thickening agents, as desired. Aqueous suspensions suitable for oral use may be made by dispersing the finely divided active ingredient in water with viscous substances, such as natural or synthetic gums, resins, methylcellulose, sodium carboxymethylcellulose, and other known suspending agents.

[0319] Also comprise the solid form preparation that is intended to be converted into the liquid form preparation for oral administration immediately before use.Such liquid form includes solution, suspension and emulsion.These preparations can contain, in addition to active ingredient, coloring agent, flavoring agent, stabilizer, buffer, artificial sweetener and natural sweetener, dispersant, thickener, solubilizer etc.

[0320] Pharmaceutical preparations can be in unit dosage form.In unit dosage form, the preparation is divided into unit doses containing appropriate amounts of active ingredients.Unit dosage form can be a packaged preparation, such as a package containing individual amounts of preparations, such as packaged tablets, capsules, and powders in vials or ampoules.Unit dosage form can also be a capsule, tablet, cachet, or lozenge itself, or any of these in appropriate number in packaged form.

[0321] The amount of active ingredient in a unit dose preparation may be varied or adjusted, for example, from 0.001 mg to 100 mg, or from 0.001 mg to 75 mg, or from 0.001 mg to 50 mg, or from 0.001 mg to 25 mg, or from 0.001 mg to 10 mg, or from 0.01 mg to 8 mg, or from 0.1 mg to 5 mg, or from 1 mg to 3 mg, or as deemed appropriate using sound medical judgment according to the particular use and the potency of the active ingredient. The compositions may, if desired, contain other compatible therapeutic agents.

[0322] Some compounds may have limited solubility in water and therefore may require the use of surfactants or other suitable cosolvents in the composition. Such cosolvents include polysorbates 20, 60, and 80; Pluronic F-68, F-84, and P-103; cyclodextrin; and polyoxyl 35 castor oil. Such cosolvents are typically employed at levels of about 0.01% to about 2% by weight. Viscosities higher than those of simple aqueous solutions may be desirable to reduce variability in dispensing the formulation, reduce physical separation of components of a suspension or emulsion formulation, and / or otherwise improve formulation. Examples of such viscosity-enhancing agents include polyvinyl alcohol, polyvinylpyrrolidone, methylcellulose, hydroxypropylmethylcellulose, hydroxyethylcellulose, carboxymethylcellulose, hydroxypropylcellulose, chondroitin sulfate and its salts, hyaluronic acid and its salts, and combinations of the foregoing. Such agents are typically employed at levels of about 0.01% to about 2% by weight.

[0323] The pharmaceutical compositions may additionally contain ingredients to provide sustained release and / or comfort. Such ingredients include high molecular weight anionic mucus-like polymers, gelling polysaccharides, and finely divided drug carrier matrices. These ingredients are discussed in detail in U.S. Patent Nos. 4,911,920, 5,403,841, 5,212,162, and 4,861,760, the entire contents of which are incorporated herein by reference in their entirety and for all purposes.

[0324] The pharmaceutical composition may be intended for intravenous use. Pharmaceutically acceptable excipients include buffers to adjust the pH to a desired range for intravenous use. Many buffers are known, including salts of inorganic acids such as phosphates, borates, and sulfates.

[0325] Pharmaceutical compositions may include compositions in which the active ingredient is contained in a therapeutically effective amount, i.e., an amount effective to achieve its intended purpose. The actual amount effective for a particular application will depend, inter alia, on the condition being treated.

[0326] Tablet compositions (e.g., monolayer oral tablet compositions)

[0327] Also disclosed herein are tablet compositions, i.e., pharmaceutical compositions formulated for oral administration, such as pills, capsules, caplets, troches, lozenges, cachets, gel capsules, caps, pellets, boluses, pastilles, orally disintegrating tablets, sublingual tablets, and buccal tablets, e.g., single-layer tablet compositions, comprising any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)) or a pharmaceutically acceptable salt thereof. Pharmaceutical compositions may be formulated to steadily release a therapeutically effective amount of a compound described herein without producing sedative or psychotomimetic spikes in plasma concentration. Such spikes in plasma concentration have well-documented severe psychotomimetic side effects, including, but not limited to, hallucinations, dizziness, and nausea. These may adversely affect treatment compliance as well as immediate effects. In this regard, the present disclosure provides novel and inventive formulations for oral administration comprising an optimized matrix that has been found to provide long-term, stable release of any of the compounds of formula (I)-(IV), or a pharmaceutically acceptable salt thereof, while reducing sedative and psychotomimetic side effects.

[0328] In some embodiments, a pharmaceutical composition (e.g., a tablet composition formulated for oral administration, such as a monolayer tablet composition) comprises any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, and a polymer.

[0329] In some embodiments of the present disclosure, the tablet composition is a modified release tablet adapted for sustained release, preferably maximum sustained release.

[0330] In some embodiments of the present disclosure, the tablet composition is adapted for tamper-evident properties. In some embodiments, the tablet composition comprises polyethylene oxide (PEO) of about 2,000 to about 7,000 kDa MW, e.g., in combination with HPMC. In some embodiments, the tablet composition may further comprise polyethylene glycol (PEG), e.g., PEG 8K. In some embodiments, the tablet composition may further comprise a polymer bearing one or more negatively charged groups, e.g., polyacrylic acid. In certain embodiments, the tablet composition comprising PEO is further subjected to heating / annealing, e.g., extrusion.

[0331] In some embodiments of the present disclosure, the pharmaceutical composition comprises a combination of (i) a water-insoluble, neutrally charged non-ionic matrix, (ii) a polymer bearing one or more negatively charged groups, and (iii) any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof.

[0332] In some embodiments of the present disclosure, the polymer carrying one or more negatively charged groups is selected from the group consisting of polyacrylic acid, polylactic acid, polyglycolic acid, polymethacrylate carboxylates, cation exchange resins, clays, zeolites, hyaluronic acid, anionic gums, their salts, and mixtures thereof. In some embodiments, the anionic gum is selected from the group consisting of natural substances and semi-synthetic substances. In some embodiments, the natural substance is selected from the group consisting of alginic acid, pectin, xanthan gum, carrageenan, locust bean gum, gum arabic, gum karaya, guar gum, and gum tragacanth. In another specific embodiment, the semi-synthetic substance is selected from the group consisting of carboxymethyl-chitin and cellulose gum.

[0333] Furthermore, without wishing to be bound by theory, in some embodiments, polymers bearing one or more negatively charged groups, e.g., acidic moieties such as portions of the acidic polymers described herein, surprisingly result in significant retention of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, in the matrix. In some embodiments, this negative charge may be generated in situ based on, for example, pKa and proton release under certain pH conditions, or through electrostatic interactions / generation of negative charges. Furthermore, the acidic polymer may be a salt of a corresponding weak acid, which becomes the associated protonated acid in the stomach. Without wishing to be bound by theory, this may neutralize the charge and reduce the interaction of the matrix with any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof. Furthermore, the release matrix may be further complemented with other inert pharmaceutical ingredients that aid in the preparation of a suitable solid dosage form, such as, for example, fillers, disintegrants, flow improvers, lubricants, colorants, taste-masking agents, etc.

[0334] In some embodiments of the present disclosure, the tablet composition is adapted for tamper-evident properties. In some embodiments, the tablet composition comprises polyethylene oxide (PEO), e.g., with a MW of about 2,000 to about 7,000 KDa. In certain embodiments, the tablet composition comprising PEO is further subjected to heating / annealing, e.g., extrusion.

[0335] In some embodiments of the present disclosure, the nonionic matrix is ​​selected from a cellulosic polymer, such as HPMC, alone or reinforced by blending with a member selected from the group consisting of starch, wax, neutral gum, polymethacrylate, PVA, PVA / PVP mixtures, and mixtures thereof.

[0336] In some embodiments of the present disclosure, the cellulosic polymer is hydroxypropyl methylcellulose (HPMC). In some embodiments, the tablet composition comprises about 20-60% by weight or about 30-50% by weight of hydroxypropyl methylcellulose, about 10-30% by weight or about 15-20% by weight of starch, or any combination thereof.

[0337] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for the treatment of pain. In some embodiments, the pain being treated is cancer pain, e.g., refractory cancer pain. In some embodiments, the pain being treated is post-operative pain. In some embodiments, the pain being treated is orthopedic pain. In some embodiments, the pain being treated is back pain. In some embodiments, the pain being treated is neuropathic pain. In some embodiments, the pain being treated is dental pain. In some embodiments, the pain being treated is chronic pain. In some embodiments, the pain being treated is chronic pain in an opioid-tolerant patient.

[0338] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for the treatment of depression.

[0339] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for the treatment of brain trauma.

[0340] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for the treatment of stroke.

[0341] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in migraine headaches, for example, migraine headaches with aura.

[0342] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in refractory asthma.

[0343] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in treating alcoholism.

[0344] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in the treatment of post-traumatic stress disorder (PTSD).

[0345] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in the treatment of depression (e.g., treatment-resistant depression (TRD) or bipolar depression).

[0346] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in the treatment of major depressive disorder (MDD).

[0347] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in treating anxiety (e.g., generalized anxiety disorder).

[0348] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in the treatment of schizophrenia.

[0349] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in the treatment of bipolar disorder.

[0350] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in treating suicidal tendencies or suicidal ideation.

[0351] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in the treatment of autism.

[0352] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in treating diabetic neuropathy.

[0353] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in the treatment of neuropathic pain.

[0354] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in treating acute pain (eg, acute traumatic pain).

[0355] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in the treatment of chronic pain.

[0356] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in treating levodopa-induced dyskinesia.

[0357] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in treating or modulating pseudobulbar effect or bulbar function.

[0358] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in treating Alzheimer's disease or an Alzheimer's disease-related condition (e.g., Alzheimer's dementia or Alzheimer's disease agitation).

[0359] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in the treatment of tinnitus.

[0360] In some embodiments, the tablet composition comprises a therapeutically effective amount of any of the compounds described herein for use in treating a disease or disorder associated with the serotonin 5-HT2 receptor.

[0361] In some embodiments, the disease or disorder is selected from the group consisting of disorders of the central nervous system (CNS), including post-traumatic stress disorder (PTSD), major depressive disorder (MDD), treatment-resistant depression (TRD), suicidal ideation, suicidal behavior, major depressive disorder with suicidal ideation or behavior, non-suicidal self-injury disorder (NSSID), bipolar disorder and related disorders including bipolar disorder Type I, bipolar disorder Type II, cyclothymic disorder, obsessive-compulsive disorder (OCD), generalized anxiety disorder (GAD), social anxiety disorder, substance use disorders including alcohol use disorder, opioid use disorder, amphetamine use disorder, nicotine use disorder, and cocaine use disorder, anorexia nervosa, bulimia nervosa, binge eating disorder, Alzheimer's disease, cluster headache and migraine, attention deficit hyperactivity disorder (ADHD), pain and neuropathic pain, aphantasia, childhood-onset dysphagia, dementia, mild dementia, sexual dysfunction, chronic fatigue syndrome, Lyme disease, and obesity.

[0362] In some embodiments, the disease or disorder comprises a condition of the autonomic nervous system (ANS).

[0363] In some embodiments, the disease or disorder comprises a pulmonary disorder, including asthma and chronic obstructive pulmonary disorder (COPD).

[0364] In some embodiments, the disease or disorder comprises a cardiovascular disorder, including atherosclerosis.

[0365] In some embodiments, the tablet composition comprises any of the compounds described herein in an amount that is released from the matrix at a rate of 0.05 to 2 mg / kg / hour over a 12 to 24 hour period, for example, 24 hours.

[0366] In some embodiments of the present disclosure, the composition achieves an integrated plasma concentration of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, in the range of about 10-500 ng / ml, and maintains this concentration throughout the release period. In some embodiments, the composition achieves an integrated plasma concentration of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, in the range of about 10-300 ng / ml, and maintains this concentration throughout the release period. In some embodiments, the composition achieves an integrated plasma concentration of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, in the range of about 10-100 ng / ml or about 50-100 ng / ml, and maintains this concentration throughout the release period. In some embodiments, the composition achieves an integrated plasma concentration of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, in the range of about 10-20 ng / ml and maintains this concentration over the release period.

[0367] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is greater than 4 hours.

[0368] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulae (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is greater than about 8 hours.

[0369] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulae (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is greater than about 12 hours.

[0370] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulae (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is greater than about 16 hours.

[0371] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulae (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is greater than about 20 hours.

[0372] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is about 24 hours or longer.

[0373] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is about 28 hours or longer.

[0374] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulae (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is about 32 hours or longer.

[0375] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is about 36 hours or longer.

[0376] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulae (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is less than about 48 hours.

[0377] In some embodiments of the present disclosure, the release period of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, in the formulations of the present disclosure is less than about 36 hours.

[0378] In some embodiments of the present disclosure, the tablet compositions of the present disclosure are utilized as a twice-daily (BID), three-times-daily (TID), or four-times-daily (QID) application.

[0379] In some embodiments of the present disclosure, the tablet compositions of the present disclosure are utilized as a once-daily (QD) application.

[0380] In some embodiments of the present disclosure, the tablet composition of the present disclosure is utilized as a nightly (QHS) application.

[0381] In some embodiments of the present disclosure, the tablet compositions of the present disclosure are utilized as needed (PRN) applications.

[0382] In some embodiments of the present disclosure, oral pharmaceutical compositions are enhanced. In some embodiments, due to dosing efficiency, pharmaceutical compositions can be formulated with less active compound (e.g., a compound of Formula (I)-(IV), or a pharmaceutically acceptable salt thereof) for therapeutic purposes and achieve efficacy comparable to that of a comparable oral tablet not described in the present disclosure.

[0383] In some embodiments of the present disclosure, an oral administration event providing an appropriate single unit dose may comprise one tablet or multiple tablets at a time.

[0384] Additionally, various types of enteric coatings may be used in some embodiments to protect the tablet from the acidic environment in the stomach and maintain extended release.

[0385] In some embodiments of the present disclosure, a monolayer tablet or caplet is coated with a protective layer of an inactive pharmaceutical ingredient to form a modified release formulation, for example, to provide a steady release of drug from the matrix and avoid concentration bursts at the point of premature release.

[0386] Some embodiments of the present disclosure provide formulations of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, as modified-release formulations that steadily release therapeutically effective concentrations of any of the compounds from such oral modified-release formulations without sedative or psychotomimetic toxic spikes in plasma concentrations of the compounds. The formulations include any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, formulated in an osmotic controlled-release pharmaceutical composition, such as a tablet, caplet, or granule. In these formulations, a single core layer containing any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof (e.g., as defined by other tablet formulations described herein), is surrounded by a semipermeable membrane with or without drug delivery holes. While not wishing to be bound by theory, it is expected that because these systems use water osmotic pressure to control delivery of the active agent, the delivery rate is independent of gastrointestinal conditions. In combination with the novel and inventive aspects of the present disclosure, osmotic asymmetric-membrane technology or AMT (e.g., a technology directed to monolayer tablets, caplets, or granules coated with an insoluble, asymmetric, microporous membrane produced by controlled phase separation) may be used to make formulations useful in the treatment methods and kits described herein.

[0387] In some embodiments of the present disclosure, any of the compounds described herein may be formulated as a pharmaceutically acceptable salt, such as, for example, a hydrochloride, aspartate, succinate, etc., whereby the counterion does not significantly affect the formulation described herein or the achievement of a desired therapeutic effect by any of the compounds described herein (e.g., compounds of Formula (I)-Formula (IV)). That is, a therapeutically effective amount (based on the indication) is similarly released steadily from an oral pharmaceutical composition, such as, for example, a tablet, caplet, capsule, gel capsule, cap, or granule, without sedative or psychotomimetic toxicity spikes in the concentration of any of the compounds described herein (e.g., compounds of Formula (I)-Formula (IV)), or a pharmaceutically acceptable salt thereof. Examples of salts within this scope include, but are not limited to, salts with inorganic acids such as hydrochloric acid, hydrobromic acid, hydroiodic acid, nitric acid, perchloric acid, sulfuric acid, or phosphoric acid; and salts with organic acids such as methanesulfonic acid, trifluoromethanesulfonic acid, ethanesulfonic acid, benzenesulfonic acid, p-toluenesulfonic acid, fumaric acid, oxalic acid, maleic acid, citric acid, succinic acid, and tartaric acid; and salts with other minerals and carboxylic acids known to those skilled in the art. Additional examples include salts with inorganic cations such as sodium, potassium, calcium, magnesium, lithium, aluminum, and zinc; and salts formed with pharmaceutically acceptable amines such as ammonia, alkylamines, hydroxyalkylamines, lysine, arginine, N-methylglucamine, and procaine. In certain embodiments, the pharmaceutically acceptable salt is a hydrochloride salt.

[0388] Common tablet formulations

[0389] Formulations of the present disclosure include orally administered pharmaceutical compositions such as tablets, capsules, caplets, gel capsules, and capsule (cap) compositions, which may include uncoated or coated tablets, caplets, and capsules (including film-coated, sugar-coated, and gastrointestinal-resistant / enteric-coated tablets). Oral pharmaceutical compositions for oral use may contain an active ingredient, such as any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), mixed with pharmaceutically acceptable inert excipients, such as diluents, disintegrants, binders, lubricants, powder flow improvers, wetting agents, sweeteners, flavoring agents, coloring agents, and preservatives. Furthermore, oral pharmaceutical compositions of the present disclosure are solid dosage forms intended for oral administration, obtained, for example, by dry granulation involving single or multiple compression of powders or granules. In some embodiments, oral pharmaceutical compositions may be obtained using wet granulation techniques. In some embodiments, oral pharmaceutical compositions may be obtained by molding, heating / annealing, or extrusion techniques.

[0390] In some embodiments, the oral tablet is a solid right cylinder, the end faces of which may be flat or convex, and the edges of which may be beveled. In some embodiments, the surface is convex. Additionally, it may have lines or break marks (scoring), symbols, or other markings.

[0391] In some embodiments, the break marks are intended to accurately subdivide the tablet to provide sub-tablet doses. In some embodiments of the present disclosure, the tablet composition includes one or more excipients, such as diluents, binders, disintegrants, glidants, lubricants, substances that can modify the behavior of the dosage form and active ingredient in the gastrointestinal tract, coloring substances approved by appropriate national or regional authorities, and flavoring substances. When such excipients are used, it must be ensured that they do not adversely affect the stability, dissolution rate, bioavailability, safety, or efficacy of the active ingredient. There should be no incompatibilities between any of the components of the dosage form.

[0392] Coated tablets are tablets covered with one or more layers of a mixture of substances, such as natural or synthetic resins, polymers, rubbers, fillers, sugars, plasticizers, polyols, waxes, coloring materials approved by appropriate national or regional authorities, and flavoring materials. Such coating materials do not contain active ingredients, such as any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)) or pharmaceutically acceptable salts thereof. Tablets may be coated for various reasons, such as burst release from the matrix, protection of the active ingredient from air, moisture, or light, masking unpleasant tastes and odors, or improving appearance. The coating material may be applied as a solution or suspension.

[0393] In some embodiments, the manufacturing process for oral pharmaceutical compositions, such as tablets, meets Good Manufacturing Practice (GMP) requirements. In some embodiments, the manufacture of oral pharmaceutical compositions involves one or more measures selected from the following: ensuring that blending with excipients is carried out in a manner that ensures homogeneity; ensuring that the oral pharmaceutical composition possesses adequate mechanical strength to prevent disintegration or destruction during subsequent processing, such as coating, storage, and distribution; minimizing degradation of the active ingredient; minimizing the risk of microbial contamination; and minimizing the risk of cross-contamination. Additionally, in the manufacture of score-marked tablets (break-marked or marked tablets) that are intended to be subdivided to provide sub-tablet doses, the following measures are taken: ensuring the effectiveness of the break-mark with respect to uniformity of mass or content of the subdivided portions, as appropriate, so that the patient receives the intended dose.

[0394] Generally, suitable dosages range from about 0.01 to about 10 mg per kilogram of recipient body weight per day, preferably from about 0.1 to about 5 mg per kilogram of body weight per day, preferably from about 0.5 to about 3 mg per kilogram of body weight per day, and preferably from about 1 to about 2 mg per kilogram of body weight per day. Additional details regarding formulation and administration techniques are well-described in the scientific and patent literature. See, for example, the latest edition of Remington's Pharmaceutical Sciences, Maack Publishing Co., Easton Pa. ("Remington's"). After the pharmaceutical composition has been formulated in an acceptable carrier, it may be placed in an appropriate container and labeled for treatment of an indicated condition. For administration of a formulation containing any of the compounds described herein (e.g., compounds of Formulae (I)-(IV)), or a pharmaceutically acceptable salt thereof, such labeling would include instructions regarding, for example, the amount, frequency, method of administration, treatment regimen, and indication.

[0395] kit Some embodiments of the present disclosure provide kits for treating a subject with any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, the kit including a pharmaceutical composition, such as a pharmaceutical composition for oral administration such as a pill in any one of the formulations described herein, comprising any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, and instructions for use in the treatment, prevention, or management of a disease, injury, or condition, e.g., pain, described herein.

[0396] In some embodiments of the present disclosure, the pain being treated is cancer pain, e.g., refractory cancer pain. In some embodiments of the present disclosure, the pain being treated is post-operative pain. In some embodiments of the present disclosure, the pain being treated is orthopedic pain. In some embodiments of the present disclosure, the pain being treated is back pain. In some embodiments of the present disclosure, the pain being treated is neuropathic pain. In some embodiments of the present disclosure, the pain being treated is dental pain. In some embodiments of the present disclosure, the pain being treated is chronic pain. In some embodiments of the present disclosure, the pain being treated is chronic pain in an opioid-tolerant patient.

[0397] In some embodiments, the disease or disorder is a serotonin 5-HT2 receptor-related disease or disorder.

[0398] In some embodiments, the disease or disorder is selected from the group consisting of disorders of the central nervous system (CNS), including post-traumatic stress disorder (PTSD), major depressive disorder (MDD), treatment-resistant depression (TRD), suicidal ideation, suicidal behavior, major depressive disorder with suicidal ideation or behavior, non-suicidal self-injury disorder (NSSID), bipolar disorder and related disorders including bipolar disorder Type I, bipolar disorder Type II, cyclothymic disorder, obsessive-compulsive disorder (OCD), generalized anxiety disorder (GAD), social anxiety disorder, substance use disorders including alcohol use disorder, opioid use disorder, amphetamine use disorder, nicotine use disorder, and cocaine use disorder, anorexia nervosa, bulimia nervosa, binge eating disorder, Alzheimer's disease, cluster headache and migraine, attention deficit hyperactivity disorder (ADHD), pain and neuropathic pain, aphantasia, childhood-onset dysphagia, dementia, mild dementia, sexual dysfunction, chronic fatigue syndrome, Lyme disease, and obesity. In some embodiments, the disease or disorder comprises a condition of the autonomic nervous system (ANS).

[0399] In some embodiments, the disease or disorder comprises a pulmonary disorder, including asthma and chronic obstructive pulmonary disorder (COPD).

[0400] In some embodiments, the disease or disorder comprises a cardiovascular disorder, including atherosclerosis.

[0401] Some embodiments of the present disclosure provide kits for treating a subject with any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, the kit including a pharmaceutical composition, such as a tablet pharmaceutical composition for oral administration such as a pill, in any one of the formulations disclosed herein, comprising any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, and instructions for use in treating brain trauma.

[0402] Some embodiments of the present disclosure provide kits for treating a subject with any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, the kit including a pharmaceutical composition, such as a tablet pharmaceutical composition for oral administration such as a pill, in any one of the formulations disclosed herein, comprising any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, and instructions for use in treating depression.

[0403] Some embodiments of the present disclosure provide kits for treating a subject with any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, the kit including a pharmaceutical composition, such as a tablet pharmaceutical composition for oral administration, such as a pill, of a formulation of the present disclosure, comprising any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, and instructions for use in treating migraine headaches, e.g., migraine headaches with aura.

[0404] Some embodiments of the present disclosure provide kits for treating a subject with any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, the kit including a pharmaceutical composition, such as a pill-like tablet pharmaceutical composition of the present disclosure, comprising any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, and instructions for use in treating refractory asthma.

[0405] Some embodiments of the present disclosure provide kits for treating a subject with any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, the kit including a pharmaceutical composition, such as a tablet pharmaceutical composition for oral administration such as a pill, in any one of the formulations disclosed herein, comprising any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, and instructions for use in treating stroke.

[0406] Some embodiments of the present disclosure provide kits for treating a subject with any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, the kit including a pharmaceutical composition, such as a tablet pharmaceutical composition for oral administration such as a pill, in any one of the formulations disclosed herein, comprising any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, and instructions for use in treating alcoholism.

[0407] In some embodiments, the instructions form an integral component of the packaging for the tablet composition.

[0408] In embodiments, the disclosure features an oral modified-release pharmaceutical composition for oral administration to a subject, e.g., for treating a subject diagnosed with, suffering from, or susceptible to a disease, disorder, or condition for which phenethylamine treatment is indicated, considered, or recommended, wherein the subject is in need of treatment with the oral modified-release pharmaceutical composition, the oral modified-release pharmaceutical composition comprising: (a) an agent selected from the group consisting of any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, in an amount effective to treat, prevent, and / or manage a disease, disorder, or condition in a subject; and (b) a pharmaceutically acceptable excipient; As a result, when the controlled-release pharmaceutical composition is orally administered to the subject, a steady release of the drug from the controlled-release pharmaceutical composition is maintained, and no neurologically toxic spikes occur in the subject's plasma during the period in which the drug is released from the pharmaceutical composition.

[0409] Compliance with drug approval standards In some embodiments, formulations of the present disclosure comply with certain industry-recognized drug approval standards and comply with the Federal Food, Drug, and Cosmetic Act. In particular, formulations of the present disclosure are deemed compliant and acceptable under visual inspection, mass spectrometry homogeneity, content analysis homogeneity, and / or dissolution / disintegration analysis, all of which are established by the relevant drug approval standards.

[0410] In some embodiments, throughout manufacturing, certain procedures are verified and monitored by implementing appropriate in-process controls. These are designed to ensure the effectiveness of each stage of manufacturing. In-process controls during tablet manufacturing may include the moisture content of the final lubricant mixture, the size of the granules, the flow rate of the final mixture, and, if relevant, the uniformity of the weight of the tablet core before coating. In-process controls during tablet manufacturing may also include the dimensions (thickness, diameter), uniformity of weight, hardness and / or crushing force, friability, disintegration rate, or dissolution rate (e.g., for modified-release tablets) of the final dosage form. Suitable test methods that can be used to demonstrate some of these properties are known in the art.

[0411] In some embodiments, packaging may be or is required to be suitable for protecting the pharmaceutical composition, including the tablet, from light, moisture, and damage during transport.

[0412] In additional embodiments, the commercially available formulation (e.g., kit) adheres to labeling requirements established under Good Manufacturing Practice (GMP). Such labeling includes the following: (1) Name of the drug; (2) Name of the active ingredient; the International Nonproprietary Name (INN) must be used whenever possible; (3) the amount of active ingredient in each tablet and the number of tablets in the container; (4) the manufacturer-assigned batch number (lot number); (5) Expiration date and, if applicable, date of manufacture; (6) Any special storage conditions or handling precautions that may be required; (7) Any directions for use, warnings, and precautions that may be required; (8) The name and address of the manufacturer or person responsible for marketing the product; (9) For scored tablets, if the directions for use include subdivision to provide doses of less than one tablet, the label must include the following: storage conditions and period of use for any subdivision not immediately taken or administered.

[0413] In some embodiments, a pharmaceutical composition, such as a tablet, can withstand handling, including packaging and shipping, without losing its integrity.

[0414] In some embodiments, the present disclosure provides methods of formulating any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, to ensure a steady release of therapeutically effective concentrations of any of the compounds from an oral tablet without neurological, e.g., sedative or psychotomimetic, spikes in plasma concentrations of any of the compounds. In some embodiments, the method includes combining (i) a water-insoluble, neutrally charged non-ionic matrix, (ii) a polymer bearing one or more negatively charged groups, and (iii) any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or a pharmaceutically acceptable salt thereof, to form, e.g., a single-layer tablet composition for oral administration. In some embodiments, the method comprises combining (i) polyethylene oxide (PEO) comprising HPMC, e.g., having a MW of about 2,000 to about 7,000 KDa, and (ii) any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)) or a pharmaceutically acceptable salt thereof, to form, e.g., a single-layer tablet composition for oral administration. In some embodiments, the method comprises combining polyethylene oxide (PEO) comprising HPMC with any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)) or a pharmaceutically acceptable salt thereof, and the tablet composition may further comprise polyethylene glycol (PEG), e.g., PEG 8K, a polymer bearing one or more negatively charged groups, e.g., polyacrylic acid, and / or may be subjected to heating / annealing conditions, e.g., extrusion. In some embodiments, the formulations of the present disclosure may be administered in combination with other active therapeutic agents, e.g., opioids for pain relief. In some embodiments, the formulations of the present disclosure serve the purpose of being opioid-sparing medications, i.e., reducing the amount of opioid required to treat a patient.

[0415] In some embodiments, the formulations of the present disclosure are not administered in combination with other active therapeutic agents.

[0416] In some embodiments, the formulations of the present disclosure may be administered in combination with another phenethylamine formulation or derivative thereof, such as a fast-release formulation of phenethylamine or derivative thereof.

[0417] In some embodiments, the present disclosure provides methods of formulating any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, to ensure a steady release of therapeutically effective concentrations of any of the compounds from an oral tablet without sedative or psychotomimetic toxic spikes in plasma concentrations of any of the compounds. The methods include formulating any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, in an osmotically controlled-release tablet. In these formulations, a single core layer containing any of the compounds described herein (e.g., compounds of Formulas (I)-(IV)), or pharmaceutically acceptable salts thereof, is surrounded by a semipermeable membrane with or without drug delivery holes. In some embodiments, a combination of the novel and inventive pharmaceutical compositions of the present disclosure (e.g., containing any of the compounds described herein (e.g., compounds of Formula (I)-Formula (IV))) and osmotic asymmetric-membrane technology or AMT (e.g., a technology directed to monolayer tablets coated with an insoluble, asymmetric, microporous membrane produced by controlled phase separation) may be used to make formulations useful in the methods and kits described herein.

[0418] Inhalation administration Also disclosed herein are methods for administering hallucinogens by inhalation mist. Most hallucinogens, including DMT (salt form), have good aqueous solubility, making mist inhalation a viable route of administration.

[0419] Hallucinogens that can be used for mist inhalation administration include the compounds described herein (e.g., compounds of formulae (I) to (IV)), or pharmaceutically acceptable salts thereof.

[0420] The dosage of the hallucinogen (including the compounds described herein, e.g., compounds of Formulae (I)-(IV), or pharmaceutically acceptable salts thereof) can vary. Pharmaceutical compositions can include compositions containing a therapeutically effective amount of the hallucinogen. An "effective amount" or "therapeutically effective amount" is an amount of an agent sufficient to treat or ameliorate a condition, disorder, or disease. The actual amount effective for a particular application can depend, inter alia, on the condition being treated. The dosage and frequency (single or multiple administrations) of the hallucinogen administered can vary depending on a variety of factors, including the route of administration, the recipient's size, age, sex, health, weight, body mass index, and diet, the nature and severity of the disease being treated, the presence of other diseases or other health-related problems, the type of concomitant therapy, and complications resulting from any disease or treatment regimen. Other treatment regimens or agents can be used in combination with the methods and compounds disclosed herein.

[0421] Therapeutically effective amounts for use in humans can be determined from animal models. For example, a dose for humans can be formulated to achieve a concentration found to be effective in animals. A dose for humans can be adjusted by monitoring the human's response to treatment and adjusting the dose upward or downward.

[0422] Dosage can vary depending on the subject's requirements and the hallucinogen used. In the context of the hallucinogens presented herein, the dose administered to a subject should be sufficient to induce a beneficial therapeutic response in the subject over a long period of time. The amount administered will also be determined by the existence, nature, and extent of any adverse side effects. Treatment is initiated with a small dose, which is less than the optimal dose of the hallucinogen. Thereafter, the dosage can be increased by small increments until the optimal effect is achieved under the circumstances.

[0423] Dosage amount and interval can be adjusted individually to provide levels of the administered compound that are effective for the clinical indication being treated, thereby providing a treatment regimen commensurate with the severity of the individual's disease state.

[0424] A prophylactic or therapeutic regimen can be designed that results in less toxicity yet is highly effective in treating the clinical symptoms exhibited by the patient. This may include selecting a hallucinogen by considering factors such as the potency of the compound, relative bioavailability, patient weight, the presence and severity of adverse side effects, method of administration, and the toxicity profile of the selected hallucinogen.

[0425] The hallucinogen may be administered in an amount of about 1 μg to about 10.0 mg, or more (or any range between about 1 μg and about 10.0 mg), per inhalation session, e.g., about 1 μg, 2 μg, 5 μg, 6 μg, 10 μg, 13 μg, 15 μg, 20 μg, 30 μg, 40 μg, 50 μg, 60 μg, 70 μg, 80 μg, 90 μg, 100 μg, 110 μg, 120 μg, 130 μg, 140 μg, 150 μg, 160 μg, 170 μg, 180 μg, 190 μg, 200 μg, 210 μg, 220 μg, 230 μg, 240 μg, 250 μg, 260 μg, 270 μg, 280 μg, 290 μg, 300 μg, 310 μg, 320 μg, 330 μg, 340 μg, 350 μg, 360 μg, 370 μg, 380 μg, 390 μg, 400 μg, 410 μg, 420 μg, 430 μg, 440 μg, 450 μg, 460 μg, 470 μg, 480 μg, 490 μg, 500 μg, 510 μg, 520 μg, 530 μg, 540 μg, 550 μg, 560 μg, 570 μg, 580 μg, 590 μg, 600 μg, 610 μg, 6 In some embodiments, a subject may receive about 1, 2, 3, 4, 5, or more inhalation sessions per day. In some embodiments, a subject may receive about 1, 2, 3, 4, 5, or more inhalation sessions every other day, twice a week, or three times a week. In some embodiments, a subject may receive about 1, 2, 3, 4, 5 or more inhalation sessions every other month, twice a month, three times a month, or four times a month.

[0426] Pharmaceutical compositions containing hallucinogens may be prepared and administered in a variety of dosage formulations. Liquid form preparations include solutions and emulsions, for example, water, water / propylene glycol solutions, or organic solvents.

[0427] Aqueous solutions suitable for inhalation use can be prepared by dissolving the active hallucinogen or its derivative in water. Suitable stabilizers and thickeners may be added. Aqueous emulsions suitable for inhalation use can be made by dispersing a liquid hallucinogen or its derivative in water with a viscous substance, such as natural or synthetic gum, resin, methylcellulose, sodium carboxymethylcellulose, and other suspending agents.

[0428] Some hallucinogens may have limited solubility in water, and therefore may require the addition of a surfactant or other suitable cosolvent in the composition. Such cosolvents include: polysorbates 20, 60, and 80; Pluronic F-68, F-84, and P-103; cyclodextrin; and polyoxyl 35 castor oil. Such cosolvents are typically employed at levels of about 0.01% to about 2% by weight. Viscosities higher than those of simple aqueous solutions may be desirable to reduce variability in dispensing the formulation, reduce physical separation of emulsion components, and / or otherwise improve formulation. Examples of such viscosity-enhancing agents include polyvinyl alcohol, polyvinylpyrrolidone, methylcellulose, hydroxypropylmethylcellulose, hydroxyethylcellulose, carboxymethylcellulose, hydroxypropylcellulose, chondroitin sulfate and its salts, hyaluronic acid and its salts, and combinations of the foregoing. Such agents are typically employed at levels of about 0.01% to about 2% by weight.

[0429] In the salt form, the hallucinogen or its derivative may be dissolved in an organic solvent. The organic solvent may be, for example, acetonitrile, chlorobenzene, chloroform, cyclohexane, 1,2-dichloromethane, dichloromethane, 1,2-dimethoxyethane, N,N-dimethylacetamide, N,N-dimethylformamide, 1,4-dioxane, 2-ethoxyethanol, ethylene glycol, formamide, hexane, methanol, 2-methoxyethanol, methylbutyl ketone, methylcyclohexane, N-methylpyrrolidone, nitromethane, pyridine, sulfolane, tetralin, toluene, 1,1,2-trichloroethylene, or xylene. The organic solvent may belong to a functional group category, such as, for example, an ester solvent, a ketone solvent, an alcohol solvent, an amide solvent, an ether solvent, or a hydrocarbon solvent, and each of these may be used.

[0430] mist In some embodiments, a method for delivering hallucinogens via mist inhalation is provided. The mist may be delivered using air, oxygen, and / or a mixture of oxygen and helium. The air, oxygen, and / or oxygen and helium mixture may be delivered at room temperature or heated. In some embodiments, a mist containing a hallucinogen or its derivative is delivered via inhalation using a heated helium-oxygen (HELIOX) mixture. Because helium has very low viscosity, the helium-oxygen mixture generates a gas flow characterized by laminar flow. One of the major obstacles to dose delivery via inhalation is airway deposition of the drug, but laminar flow has the highly desirable property of reducing this and allowing the drug to reach the deep lung region. A patient can inhale a dissolved free base or salt formulation of the hallucinogen or its derivative as a mist into the alveolar region of the patient's lungs. The hallucinogen or derivative may be delivered to the fluid lining of the alveolar region of the lung or may be absorbed systemically into the patient's blood circulation. These formulations advantageously can be efficiently delivered to the bloodstream when inhaled into the alveolar region of the lungs.

[0431] Suitable devices for delivery of heated or unheated air, oxygen, or helium-oxygen mixtures include, for example, the continuous mode nebulizers Flo-Mist (Phillips) and Hope (B&B Medical Technologies), as well as accessories such as regulators, for example, the Medipure™ Heliox-LCQ System (PraxAir), and control boxes, for example, the Precision Control Flow (PraxAir). In some embodiments, the complete delivery setup may be, for example, a device described in Russian Patent No. RU199823U1.

[0432] As used herein, the term "Heliox" refers to a breathing gas mixture of helium gas (He) and oxygen gas (O). In some embodiments, the Heliox mixture may contain about 50%, 60%, 70%, 80%, or 90% helium in the helium and oxygen mixture, and about 50%, 40%, 30%, or 10% oxygen in the helium and oxygen mixture. Thus, the Heliox mixture may contain helium and oxygen in ratios of 50:50, 60:40, 70:30, 80:20, 90:10, or any ratio therebetween. In some embodiments, heliox may lower airway resistance through increased laminar flow and decreased resistance in turbulent flow.

[0433] Heating the Heliox mixture can further improve drug delivery by increasing the permeability of physical barriers important for drug absorption. Heating mucosal surfaces can increase permeability by improving peripheral blood circulation, relaxing interstitial junctions, and through other mechanisms. Helium has a thermal conductivity nearly 10 times higher than oxygen or nitrogen, facilitating heat transfer more efficiently. Anhydrous Heliox mixtures can be safely used as pretreatment agents, even when heated to temperatures as high as 110°C. Therefore, anhydrous Heliox mixtures can more efficiently heat mucosal surfaces in the lungs and airways.

[0434] Various types of personal inhalers are known in the art. Personal inhalers generally feature heating of a solid drug or compound. Inhalers operate by directly heating the solid drug or compound to its smoldering point. Vaporization of the solid or solid concentrate occurs via convection over conduction. Convection heating of a solid concentrate involves a heating element contacting water or another liquid, which then vaporizes it. The hot steam then directly heats the solid or solid concentrate to its smoldering point, releasing a vapor that is inhaled by the user. Conduction heating involves direct contact between the solid or solid concentrate and a heating element, which causes the solid to reach its smoldering point and releases a vapor that is inhaled by the user. While inhalers offer benefits over smoking in terms of lung injury, the heat of vaporization can significantly degrade the drug / active agent being vaporized.

[0435] A vapor is a solid substance in the gas phase below its critical temperature, which means that it can be condensed into a liquid by increasing the pressure without decreasing the temperature.

[0436] As used herein, a mist, unlike a vapor, is a dispersion of droplets (liquid phase) suspended in a gas phase (e.g., air, oxygen, helium, and mixtures thereof). The mist droplets can contain a hallucinogen or its derivative dissolved in an aqueous liquid or organic solvent. The liquid phase of the mist droplets can contain thousands or millions of molecules. The gas phase of the mist can contain air, oxygen, helium, and mixtures thereof. The mist does not contain solid particles. The mist can be made by any suitable method, including, for example, the use of an inhaler or nebulizer.

[0437] In some embodiments, the hallucinogen is delivered via a nebulizer. The nebulizer forms a mist of water droplets containing the hallucinogen, which is optionally combined with a heated helium-oxygen mixture. For example, a hallucinogen preparation may be placed in a liquid medium and introduced into the mist by a device such as a nebulizer. In some embodiments, the nebulizer may be, for example, a compressed air compressor nebulizer, an ultrasonic nebulizer, a vibrating mesh or horn nebulizer, or a microprocessor-controlled breath-activated nebulizer. In some embodiments, the nebulizer device may be, for example, a device described in Russian Patent No. RU199823U1.

[0438] A nebulizer is a device that delivers a solution or suspension of a drug, such as a hallucinogen, to the lungs as a fine mist. Nebulizers are sometimes referred to as atomizers. Atomization is the process of atomizing a dissolved drug. To deliver a drug via nebulization, the drug may be dispersed in a liquid medium, such as water, ethanol, or propylene glycol. Additionally, hallucinogens or their derivatives may be transported in vehicles such as liposomes, polymers, emulsions, micelles, nanoparticles, or polyethyleneimine (PEI). Liquid drug formulations for nebulizers may be aqueous or viscous solutions. After forced dispersion (e.g., by a gas jet, ultrasound, or mesh vibration), the dissolved hallucinogen is contained within droplets that are then inhaled. The mist may be droplets containing the drug in air or another suitable mixture (e.g., a mixture of helium and oxygen).

[0439] Jet nebulizers (also known as compressed air nebulizers or compressor nebulizers) use compressed gas to generate mist. In some embodiments, jet nebulizers are microprocessor-controlled, breath-activated nebulizers, also known as breath-activated nebulizers. Breath-activated nebulizers do not generate mist continuously, but only when the patient inhales. Mist may be generated, for example, by passing a stream of air through a venturi within the bowl or cup of the nebulizer. A venturi is a system that accelerates fluid flow by packing it into a conical tube. Under this restriction, the fluid must increase its velocity, thereby reducing its pressure and creating a partial vacuum. Once the fluid leaves the compression point, the increased pressure returns to atmospheric or pipe-level pressure. This creates a low-pressure zone that pulls droplets from the drug solution in the nebulizer bowl through the supply tube, generating a stream of atomized droplets that then flow to the mouthpiece. Increasing the air flow reduces particle size and increases output. As droplets and solvent saturate the emitted gas, jet nebulizers can cool the drug solution within the nebulizer, increasing the solute concentration in the residual volume. Baffles within the nebulizer bowl or cup can pack larger particles, retaining them and returning them to the solution within the nebulizer bowl or cup for re-atomization. Air entrainment through the nebulizer bowl as the subject inhales can increase mist output during inspiration. A narrow particle size distribution can result in mist generation, but reducing particle size can also increase nebulization time.

[0440] A commonly used unit of measure for droplet size is the mass median diameter (MMD), which is defined as the average droplet diameter by mass. This unit is sometimes referred to as the mass mean aerodynamic diameter, or MMAD. Jet nebulizers can have MMD droplet sizes of about 1.0, 1.5, 2.0, 2.5, 3.0, 3.5, 4.0, 5.0, 6.0, 7.0, 8.0, 9.0, 10.0 μm or greater (or any range between about 1.0 and 10.0 μm), which may be smaller than ultrasonic nebulizers.

[0441] Ultrasonic nebulizers generate mist using the vibration of a piezoelectric crystal, which converts alternating current into high-frequency (approximately 1 to 3 MHz) acoustic energy. The solution is broken down into droplets on a surface, and the resulting mist is drawn from the device by the patient's inhalation or pushed through the device by an airflow generated by a small compressor. Ultrasonic nebulizers can include high-volume and low-volume ultrasonic nebulizers. Droplet sizes tend to be larger with ultrasonic nebulizers than with jet nebulizers. The MMD droplet size of ultrasonic nebulizers can be approximately 2.0, 2.5, 3.0, 3.5, 4.0, 4.5, 5.0, 5.5, 6.0, 6.5, 7.0, 7.5, 8.0, 9.0, 10.0 μm or larger (or any range between approximately 2.0 and 10.0 μm). Ultrasonic nebulizers can produce high-density mists with droplets of approximately 100, 150, 200, 250, 300 μm / L or larger.

[0442] Mesh nebulizer devices indirectly generate mist using the vibration of a piezoelectric crystal. Examples of mesh nebulizers include active mesh nebulizers and passive mesh nebulizers. Active mesh nebulizers use a piezoelectric element that contracts and expands when an electric current is applied, vibrating a mesh with precise holes in contact with the medicinal solution to generate mist. The vibration of the piezoelectric crystal can be used to vibrate a thin metal plate with thousands of holes. One side of the plate is in contact with the liquid to be atomized, and the vibrations are transmitted to the liquid through the holes, forming a mist of small droplets. Passive mesh nebulizers use a horn-type vibrator to induce passive vibrations in a tapered, perforated plate to form mist. Examples of active mesh nebulizers include the Aeroneb® (Aerogen, Galway, Ireland) and eFlow® (PARI, Starnberg, Germany), while the Microair NE-U22® (Omron, Bannockburn, Illinois) is a passive mesh nebulizer. Mesh nebulizers are precise and customizable. By changing the mesh hole size, the device can be adjusted for use with various viscosities of medicinal solutions, and the output rate can be varied. Using this atomization method offers several advantages. Because the droplet size is determined by the size of the holes in the mesh (which can be customized for the application), droplet size can be very precise. Nebulizer meshes that produce liquid particles in the respirable range in the gas can be manufactured using methods such as electrodeposition, electroplating, and laser cutting. Meshes can be made from metal alloys. Metals used in mesh manufacturing include platinum, palladium, nickel, and stainless steel. The droplet size is approximately twice the size of the mesh holes. Thus, the mesh holes may be about 0.1, 0.5, 1.0, 1.5, 2.0, 2.5, 3.0, 3.5, 4.0, 4.5, 5.0 μm or larger (or any value between about 0.1 and 5.0 μm).The mist generation in mesh nebulizers can vary based on the shape of the mesh, the material from which the mesh is made, and the method by which the mesh is generated. In other words, different meshes can generate different sizes of liquid particles suspended in gas. Generally, MMD droplet sizes for mesh nebulizers can be approximately 1.0, 1.5, 2.0, 2.5, 3.0, 3.5, 4.0, 4.5, 5.0, 5.5, 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, 6.9, 7.0 μm or larger (any value between approximately 1.0 and 7.0 μm).

[0443] Furthermore, the droplet size is programmable. In particular, geometric modifications to the nebulizer can be made to provide a specific desired droplet size. Furthermore, droplet size can be controlled independently of droplet velocity. The volume of the atomized liquid and the droplet velocity can also be precisely controlled by adjusting the frequency and amplitude of the mesh vibration. Furthermore, the number of holes in the mesh and their layout on the mesh can be customized. Mesh nebulizers can be powered either electrically or by batteries.

[0444] For any of the atomization methods described herein, the mist output rate at 1 mL of standing cloud per minute may be, for example, in the range of 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9 mL / min or more (or any range between about 0.1 and 0.9 mL / min), and the residual volume in any type of nebulizer reservoir may be in the range of about 0.01, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0 mL or more (or any range between about 0.01 and 2.0 mL). The ability to precisely control droplet size is advantageous in that droplet size can be directly correlated to drug release kinetics (KDR). Precise control of KDR can be achieved by precise control of droplet size. Hallucinogens or derivatives thereof can be delivered by mist with MMD droplet sizes of about 0.5, 1.0, 1.5, 2.0, 2.5, 3.0, 3.5, 4.0, 5.0, 6.0, 7.0, 8.0, 9.0, 10.0 μm or greater (or any range between about 0.5 and 10.0 μm) using any method.

[0445] In some embodiments, hallucinogens can be delivered via continuous positive airway pressure (CPAP) or other pressure-assisted breathing devices. Pressure-assisted breathing devices push a continuous column of compressed air or other gas at a fixed, specified pressure against the face and nose of a patient wearing a mouthpiece or nose cap. When the patient's glottis opens to inhale, pressure is transmitted across the airway, assisting in glottic opening. When the patient exhales, pressure from the contracting lungs and chest wall pushes air against the continuous pressure until the two pressures equalize. At the end of exhalation, the air pressure within the airway equalizes with the external air pressure of the machine, creating a "sprint" that helps open the airway, improving oxygenation and airway access. Pressure-assisted breathing devices may be coupled with a means for introducing mist particles into the airflow within the breathing circuit and / or a means for interrupting the introduction of mist particles into the breathing circuit when the patient exhales. See, e.g., U.S. Patent No. 7,267,121.

[0446] In some embodiments, the mist may be delivered by a device such as a metered dose inhaler (MDI). The MDI generates an organic solvent-droplet mist containing the hallucinogen, which is optionally combined with a heated helium-oxygen mixture. In some embodiments, the hallucinogen or its derivative may be delivered via the MDI of a metered dose inhaler. The MDI device may include a canister containing the hallucinogen or its derivative and a propellant, a metering valve that dispenses the medication from the canister, an actuator body that receives the canister and forms an opening for oral inhalation, and an actuator stem that receives the medication from the canister and directs it into the opening of the actuator body. By moving the medication canister relative to the actuator body and actuator stem, the metering valve releases a predetermined amount of medication. In some embodiments, the hallucinogen or its derivative may be dissolved in a liquid propellant mixture (which may contain a small amount of volatile organic solvent) stored in a pressurized container of the MDI. A "metered dose" is a dose prepackaged in a single-dose inhaler or, in the case of a multi-dose inhaler, a dose automatically measured from a reservoir in preparation for inhalation. MDI devices may be supplemented with a spacer. The MDI spacer is a spacer placed between the MDI and the user's mouth. The MDI spacer allows the droplets in the atomized dose to settle slightly and mix with air or other gases. This ensures efficient delivery of a metered dose to the user's lungs when inhaled. Because the dose moves so quickly through an MDI, even though the device is designed to deliver a metered dose of medication to the lungs, the droplets in the atomized spray from the MDI hit the back of the user's throat and stick instead of being inhaled into the user's lungs. Therefore, the MDI spacer helps prevent the user from inhaling the metered dose directly from the MDI. MDI devices offer the advantage of timed dosing, which can be controlled during medication manufacturing.

[0447] Delivery of hallucinogens and helium-oxygen mixtures The methods disclosed herein provide for the systemic delivery of low doses of a hallucinogen or its derivatives. In particular, the hallucinogen or its derivatives can be delivered to the patient's CNS. The dose can be optimized for the metabolic and therapeutic needs of an individual patient. High doses may be associated with harmful or undesirable side effects and may be avoided by using low doses. Methods for treating various central nervous system (CNS) diseases and other conditions are described herein. The methods include delivering the hallucinogen or its derivatives to a patient in need thereof via inhalation of a mist containing the agent and a gas, such as air, oxygen, helium, or a mixture of helium and oxygen (i.e., a heliox mixture). In some embodiments, the air, oxygen, helium, or mixture of helium and oxygen may be heated. The method may further include using a device containing a balloon containing an oxygen-helium mixture with a reducer and a mask connected to each other by a gas or air connecting tube, the device including an additional heating element capable of heating the gas up to 120°C, a nebulizer with a vibrating porous plate or mesh to ensure the passage of droplets less than 5 microns in size, and a disinfection unit.

[0448] In some embodiments, the hallucinogen or its derivatives are delivered to the lower respiratory tract, e.g., lung compartments such as the alveoli, alveolar ducts, and / or bronchioles. From there, the drug can enter the bloodstream and travel to the central nervous system. In some embodiments of the present disclosure, delivering the hallucinogen to a patient in need thereof via inhalation of a mist can deliver the hallucinogen to the patient's CNS without passing through the liver. By administering via inhalation, the drug in gaseous form, or dispersed in a liquid or mist, can bypass first-pass metabolism and rapidly deliver the hallucinogen or its derivatives to the bloodstream. First-pass metabolism, also known as the "first-pass effect" or "presystemic metabolism," describes the drug entering the liver and undergoing extensive biotransformation.

[0449] In some embodiments, the method provides a therapeutic process in which a hallucinogen can be administered to a patient in need thereof by administering a mixture of helium and oxygen heated to about 50°C, 51°C, 52°C, 53°C, 54°C, 55°C, 56°C, 57°C, 58°C, 59°C, 60°C, or higher (or any range between 50°C and 60°C) and an atomized hallucinogen or derivative thereof via inhalation. In some embodiments, the hallucinogen mist or vapor may have a particle size of about 0.1 microns to about 10 microns (e.g., about 10, 5, 4, 3, 2, 1, 0.1, or less microns). In some embodiments, the hallucinogen or derivative thereof can be atomized via a nebulizer, which produces the inhalation medication as a mist containing the dissolved hallucinogen. In some embodiments, the atomized hallucinogen is inhaled by the patient and drawn down a patient delivery line. In some embodiments, the atomized hallucinogen is inhaled by the patient using a carrier gas and drawn down a patient delivery line. The carrier gas may be air, oxygen, a mixture of oxygen and helium, heated air, heated oxygen, or a mixture of heated helium and oxygen.

[0450] In some embodiments, the treatment step may be preceded by a pretreatment step, which may involve first administering a pretreatment inhalation therapy prior to administration of the mist of the hallucinogen or derivative thereof. In some embodiments, the pre-treatment inhalation step may comprise (i) administering via inhalation air, oxygen, or a mixture of helium and oxygen heated to about 90°C, 91°C, 92°C, 93°C, 94°C, 95°C, 96°C, 97°C, 98°C, 99°C, 100°C, 101°C, 102°C, 103°C, 104°C, 105°C, 106°C, 107°C, 108°C, 109°C, 110°C, 111°C, 112°C, 113°C, 114°C, 115°C, 116°C, 117°C, 118°C, 119°C, 120°C or higher (or any range between 90°C and 120°C), without administering a hallucinogen, followed by (ii) administering a treatment step of inhaling air, oxygen, an oxygen and helium mixture, heated air, heated oxygen, or a heated helium and oxygen mixture. Heated air, heated oxygen, or a mixture of heated helium and oxygen may be combined with the atomized hallucinogen or derivative thereof and heated to about 50°C, 51°C, 52°C, 53°C, 54°C, 55°C, 56°C, 57°C, 58°C, 59°C, 60°C or higher (or any range between about 50°C and 60°C).

[0451] In some embodiments of the present disclosure, the pre-treatment step (i) and treatment step (ii) may be repeated 0, 1, 2, 3, 4, 5, or more times. In some embodiments of the present disclosure, steps (i) and (ii) may be repeated 0, 1, 2, 3, 4, 5, or more times, followed by a treatment step, which may be repeated 0, 1, 2, 3, 4, 5, or more times. In some embodiments of the present disclosure, the treatment step may be repeated 0, 1, 2, 3, 4, 5, or more times without a pre-treatment step.

[0452] Treatments, optionally with pretreatments, may be administered once a week, twice a week, once a day, twice a day, three times a day or more, and each treatment may last about 1, 5, 10, 20, 30, 45, 60 or more minutes.

[0453] Drug delivery protocols may include inhaling a priming drug-free hot heliox mixture to effectively preheat the mucosal bed, followed by inhalation of atomized hallucinogens carried by the lower-temperature heated heliox, or may involve inhalation priming a drug-free hot heliox mixture to inhale the atomized hallucinogen. This is determined by the lower thermal tolerance of the humidified inhalation gas stream compared to the anhydrous inhalation gas stream. As a result, this protocol may be performed in multiple repeated cycles, with target PK and drug exposure controlled by drug concentration, temperature, helium-oxygen mixture flow rate, mixture composition, number and duration of cycles, time, and combinations of the above.

[0454] The delivery methods described herein may be used to treat certain diseases and disorders. Treatment and treatment refer to methods that reduce or eliminate a condition, disorder, disease, or one or more symptoms of a condition, disorder, or disease, or a combination thereof. Treatment or treatment can include partial or complete halting of the progression of a condition, disorder, or disease, or partial or complete reversal of a condition, disorder, or disease. Treatment can provide a therapeutic benefit, such as eradication or amelioration of one or more physiological or psychological symptoms associated with the underlying condition, disease, or disorder, and improvement is observed in the patient, even if the patient is still affected by the condition.

[0455] Accordingly, provided herein are methods for treating central nervous system (CNS) or psychological disorders, the methods comprising administering, via inhalation, a heated mixture of helium and heated oxygen and an atomized hallucinogen. Treatment can alleviate one or more symptoms of the disorder.

[0456] In some embodiments, the hallucinogen may be administered to treat CNS diseases or other disorders. In some embodiments, the hallucinogen may be administered to treat depression, including major depression, melancholic depression, atypical depression, or dysthymia. In some embodiments, the hallucinogen may be administered to treat psychological disorders, including anxiety disorders, obsessive-compulsive disorders, addictions (drug addiction, tobacco addiction, opioid addiction), alcoholism, depression and anxiety (chronic or associated with the diagnosis of a life-threatening or terminal illness), obsessive-compulsive behaviors, or related symptoms.

[0457] In some embodiments, the disease or disorder is selected from the group consisting of disorders of the central nervous system (CNS), including post-traumatic stress disorder (PTSD), major depressive disorder (MDD), treatment-resistant depression (TRD), suicidal ideation, suicidal behavior, major depressive disorder with suicidal ideation or behavior, non-suicidal self-injury disorder (NSSID), bipolar disorder and related disorders including bipolar disorder Type I, bipolar disorder Type II, cyclothymic disorder, obsessive-compulsive disorder (OCD), generalized anxiety disorder (GAD), social anxiety disorder, substance use disorders including alcohol use disorder, opioid use disorder, amphetamine use disorder, nicotine use disorder, and cocaine use disorder, anorexia nervosa, bulimia nervosa, binge eating disorder, Alzheimer's disease, cluster headache and migraine, attention deficit hyperactivity disorder (ADHD), pain and neuropathic pain, aphantasia, childhood-onset dysphagia, dementia, mild dementia, sexual dysfunction, chronic fatigue syndrome, Lyme disease, and obesity. In some embodiments, the disease or disorder may include a condition of the autonomic nervous system (ANS). In some embodiments, the disease or disorder may include a pulmonary disorder (e.g., asthma and chronic obstructive pulmonary disorder (COPD)). In some embodiments, the disease or disorder may include a cardiovascular disorder (e.g., atherosclerosis).

[0458] Methods of delivering hallucinogens to the CNS (systemic drug delivery) via a nebulizer (e.g., involving the use of a heated helium-oxygen mixture) can provide beneficial improvements in multiple PK parameters compared to oral delivery. In particular, hallucinogens can cross the blood-brain barrier and be delivered to the brain. Compared to oral delivery, methods of delivering hallucinogens to the CNS via a nebulizer, optionally with a heated heliox mixture, can increase bioavailability by at least 25% compared to oral delivery. In some embodiments, methods of delivering hallucinogens to the CNS via a nebulizer as described herein can increase bioavailability by about 10%, 25%, 30%, 35%, 40%, 50%, 55%, 60%, 65%, 70%, 80%, 85%, 90%, 95%, 99%, 99.9%, or more. Methods of delivering hallucinogens to the CNS via a nebulizer as described herein can increase bioavailability by about 10%, 25%, 30%, 35%, 40%, 50%, 55%, 60%, 65%, 70%, 80%, 85%, 90%, 95%, 99%, 99.9%, or more compared to oral delivery. max In some embodiments, the methods of delivering hallucinogens to the CNS via a nebulizer as described herein can reduce T max can be reduced by about 30%, 40%, 50%, 55%, 60%, 65%, 70%, 80%, 85%, 90%, 95%, 99%, 99.9%, or more. In some embodiments, the methods of delivering hallucinogens to the CNS via a nebulizer as described herein can reduce C compared to oral delivery. max In some embodiments, the methods of delivering hallucinogens to the CNS via a nebulizer as described herein can increase C max can be increased by about 10%, 25%, 30%, 35%, 40%, 50%, 55%, 60%, 65%, 70%, 80%, 85%, 90%, 95%, 99%, 99.9%, or more. Furthermore, the methods of delivering hallucinogens to the CNS via a nebulizer as described herein allow for clinical protocols that allow for dose escalation and further exposure control. Exposure control can adjust for a patient's exposure history, resulting in improved overall treatment outcomes.

[0459] In some embodiments, a system for administering a hallucinogen (or a salt thereof) is provided, the system including a container containing a solution of a hallucinogen (or a derivative or salt thereof) compound formulation, and a nebulizer physically coupled to or packaged with the container and adapted to generate a mist of the solution having a particle size of about 0.1 microns to about 10 microns (e.g., about 10, 5, 4, 3, 2, 1, 0.1 microns or less).

[0460] Topical or Transdermal Dosage Forms and Administration Dosage forms for topical or transdermal administration of the compounds of the present disclosure (e.g., compounds of Formulae (I) to (IV), or pharmaceutically acceptable salts thereof) include powders, sprays, ointments, pastes, creams, lotions, gels, solutions, patches, and inhalants. The active compound may be mixed under sterile conditions with a pharmaceutically acceptable excipient, and any preservatives, buffers, absorption enhancers, or propellants that may be required.

[0461] The ointments, pastes, creams, and gels may contain, in addition to the active compounds of the present disclosure, excipients such as animal and vegetable fats, oils, waxes, paraffin, starch, tragacanth, cellulose derivatives, polyethylene glycols, silicones, bentonite, silicic acid, talc, and zinc oxide, or mixtures thereof.

[0462] In addition to the compounds of this disclosure, powders and sprays can contain excipients such as lactose, talc, silicic acid, aluminum hydroxide, calcium silicate, and polyamide powder, or mixtures of these substances. Sprays can also contain customary propellants, such as chlorofluorohydrocarbons and volatile unsubstituted hydrocarbons, such as butane and propane.

[0463] Transdermal patches have the added advantage of providing controlled delivery of the compounds of the present disclosure to the body: the compounds of the present disclosure may be administered via a transdermal patch at a steady concentration, thereby providing a gradual administration of the compound over an extended period of time, avoiding associated drug spikes and toxicity.

[0464] The transdermal patch dosage forms herein may be formulated to contain various amounts of active agent depending on the disease / condition being treated. The amount of active ingredient in a unit dose preparation may be varied or adjusted, for example, from 5 mg to 25 mg, or from 10 mg to 20 mg, or from 12 mg to 18 mg, or from 13 mg to 16 mg, or from 14 mg to 15 mg, or as deemed appropriate using reasonable medical judgment according to the particular application and potency of the active ingredient. Transdermal patches formulated with the disclosed compounds may be suitable for microdosing, achieving long-term therapeutic benefit with reduced toxicity. In some embodiments, the compounds of the present disclosure may be administered via a transdermal patch at serotonergic, but sub-psychoactive, concentrations for extended periods, such as 24 hours or more.

[0465] In addition to the compounds of the present disclosure and any optional pharmaceutically acceptable excipients, the transdermal patch may comprise one or more of a pressure-sensitive adhesive layer, a backing, and a release liner, as known to those of ordinary skill in the art.

[0466] A transdermal patch dosage form can be prepared by dissolving or dispersing the compound in a suitable medium. In some embodiments, the compound of the present disclosure may be directly dissolved / dispersed in a polymer matrix forming a pressure-sensitive adhesive layer. Such a transdermal patch is called a drug-in-adhesive (DIA) patch. A preferred DIA patch type is one in which the active compound is uniformly distributed throughout the pressure-sensitive adhesive polymer matrix. In some embodiments, the compound of the present disclosure may be provided in a layer containing a polymer matrix separate from the pressure-sensitive adhesive layer in addition to the active compound. In either case, the compound of the present disclosure may be optionally formulated with suitable excipients, such as carriers and penetration agents / absorption enhancers, to increase the flux of the compound into the skin.

[0467] Examples of carrier substances include, but are not limited to, C8-C12 carboxylic acids such as oleic acid, undecanoic acid, valeric acid, heptanoic acid, pelargonic acid, capric acid, lauric acid, and eicosapentaenoic acid. 22 Fatty acids; for example, C8-C such as octanol, nonanol, oleyl alcohol, decyl alcohol, and lauryl alcohol 22 Fatty alcohols; C8-C, such as ethyl oleate, isopropyl myristate, butyl stearate, and methyl laurate 22 Lower alkyl esters of fatty acids; for example, C6-C such as diisopropyl adipate 22 Di(lower) alkyl esters of, for example, C8-C such as glyceryl monolaurate 22Monoglycerides of fatty acids; tetrahydrofurfuryl alcohol polyethylene glycol ethers; polyethylene glycol, propylene glycol; 2-(2-ethoxyethoxy)ethanol; diethylene glycol monomethyl ether; alkyl aryl ethers of polyethylene oxide; polyethylene oxide monomethyl ether; polyethylene oxide dimethyl ether; glycerol; ethyl acetate; acetoacetic esters; N-alkylpyrrolidones; cyclodextrins, such as α-cyclodextrin, β-cyclodextrin, γ-cyclodextrin, or derivatives such as 2-hydroxypropyl-β-cyclodextrin; and terpenes / terpenoids, such as limonene, linalool, myrcene, pinene, such as α-pinene, caryophyllene, citral, eucolyptol, and the like, including mixtures thereof.

[0468] Examples of penetration agents / absorption enhancers include, but are not limited to, sulfoxides such as dodecyl methyl sulfoxide, octyl methyl sulfoxide, nonyl methyl sulfoxide, decyl methyl sulfoxide, undecyl methyl sulfoxide, 2-hydroxydecyl methyl sulfoxide, 2-hydroxy-undecyl methyl sulfoxide, 2-hydroxydodecyl methyl sulfoxide; surfactant-lecithin organogels (PLOs), such as those formed from lecithin and an aqueous phase comprising one or more of poloxamer, CARBOPOL, and PEMULEN, and a lipid phase formed from one or more of isopropyl palmitate and PPG-2 myristyl ether propionate; and mixtures thereof.

[0469] The pressure-sensitive adhesive layer may be formed from polymers including, but not limited to, acrylic acid (polyacrylates including alkyl acrylates), polyvinyl acetate, natural and synthetic rubbers (e.g., polyisobutylene), ethylene-vinyl acetate copolymers, polysiloxanes, polyurethanes, plasticized polyether block amide copolymers, plasticized styrene-butadiene rubber block copolymers, and mixtures thereof. The pressure-sensitive adhesive layer used in the transdermal patches of the present disclosure may be formed from an acrylic polymer pressure-sensitive adhesive, preferably an acrylic copolymer pressure-sensitive adhesive. Acrylic copolymer pressure-sensitive adhesives may be obtained by copolymerizing one or more alkyl (meth)acrylates (e.g., 2-ethylhexyl acrylate; aryl (meth)acrylates; arylalkyl (meth)acrylates; and (meth)acrylates with functional groups such as hydroxyalkyl (meth)acrylates (e.g., hydroxyethyl acrylate, 2-hydroxypropyl acrylate, 3-hydroxypropyl acrylate, 4-hydroxybutyl acrylate, 2-hydroxyethyl methacrylate, 2-hydroxypropyl methacrylate, 3-hydroxypropyl methacrylate, and 4-hydroxybutyl methacrylate), carboxylic acid containing (meth)acrylates (e.g., acrylic acid), and alkoxy (meth)acrylates (e.g., methoxyethyl acrylate), optionally with one or more copolymerizable monomers (e.g., vinylpyrrolidone, vinyl acetate, etc.). Specific examples of acrylic pressure-sensitive adhesives include, but are not limited to, DURO-TAK products (Henkel), such as DURO-TAK 87-900A, DURO-TAK 87-9301, DURO-TAK 87-4098, DURO-TAK 87-2074, DURO-TAK 87-235A, DURO-TAK 87-2510, DURO-TAK 87-2287, DURO-TAK 87-4287, and DURO-TAK 87-2516.

[0470] Backings used in the transdermal patches of the present disclosure include soft backings such as films, nonwoven fabrics, Japanese paper, cotton fabrics, knitted fabrics, woven fabrics, and laminated composites of nonwoven fabrics and films. Such backings are preferably made of a soft material that can closely contact the skin, conform to skin movements, and prevent skin rashes and other discomfort after prolonged use of the patch. Examples of backing materials include, but are not limited to, polyethylene, polypropylene, polyethylene terephthalate, polybutylene terephthalate, polyethylene naphthalate, polystyrene, nylon, cotton, acetate rayon, rayon, rayon / polyethylene terephthalate composites, polyacrylonitrile, polyvinyl alcohol, acrylic polyurethane, ester polyurethane, ether polyurethane, styrene-isoprene-styrene copolymer, styrene-butadiene-styrene copolymer, styrene-ethylene-propylene-styrene copolymer, styrene-butadiene rubber, ethylene-vinyl acetate copolymer, or cellophane. Preferred backings do not adsorb or release the active agent. The backing preferably comprises one or more layers of the above materials and is permeable to water vapor to prevent adsorption and release of the active agent, improve percutaneous absorption of the active agent, and prevent skin rash and other discomfort. Specific examples of backings include, but are not limited to, 3M COTRAN products, such as 3M COTRAN Ethylene Vinyl Acetate Membrane Film 9702, 3M COTRAN Ethylene Vinyl Acetate Membrane Film 9716, 3M COTRAN Polyethylene Membrane Film 9720, and 3M COTRAN Ethylene Vinyl Acetate Membrane Film 9728.

[0471] The release liners used in the transdermal patch of the present disclosure include, but are not limited to, polyester film treated with a release coating on one or both sides, polyethylene-laminated high-quality paper treated with a release coating, and glassine paper treated with a release coating.The release coating may be fluoropolymer, silicone, fluorosilicone, or any other release coating known to those skilled in the art.The release liner may have a textured surface to facilitate easy removal of the transdermal patch from the package.Examples of release liners include, but are not limited to, 3M SCOTCHPAK products, such as 3M SCOTCHPAK 9744, 3M SCOTCHPAK 9755, 3M SCOTCHPAK 9709, and 3M SCOTCHPAK 1022.

[0472] The methods disclosed herein using transdermal patch dosage forms preferably provide systemic delivery of low doses of drugs over extended periods of time, such as up to 72 hours, up to 60 hours, up to 48 hours, or up to 36 hours, e.g., 2-72 hours, 4-24 hours, 10-18 hours, or 12-14 hours. In particular, compounds of the present disclosure can be delivered at low, stable, and consistent doses, avoiding harmful or undesirable side effects. In some embodiments, compounds of the present disclosure are administered transdermally at serotonergic but subpsychoactive concentrations.

[0473] Thus, provided herein are methods for treating diseases or disorders associated with the serotonin 5-HT2 receptor, such as central nervous system (CNS) disorders, psychological disorders, or autonomic nervous system (ANS) disorders, comprising administering a compound of the present disclosure (e.g., a compound of Formulas (I)-(IV), or a pharmaceutically acceptable salt thereof) via a transdermal patch, wherein the compound of the present disclosure is a compound that can penetrate the subject's skin from the matrix of the transdermal patch (e.g., through a pressure-sensitive adhesive layer) and diffuse into the subject's bloodstream.

[0474] In some embodiments, the compound may be administered to treat CNS diseases or other disorders. In some embodiments, the compound may be administered to treat depression, including major depression, melancholic depression, atypical depression, or dysthymia. In some embodiments, the hallucinogen may be administered to treat psychological disorders, including anxiety disorders, obsessive-compulsive disorders, addiction (drug addiction, tobacco addiction, opioid addiction), alcoholism, depression and anxiety (chronic or associated with the diagnosis of a life-threatening or terminal illness), obsessive-compulsive behavior, or related symptoms.

[0475] In some embodiments, the disease or disorder is selected from the group consisting of disorders of the central nervous system (CNS), including post-traumatic stress disorder (PTSD), major depressive disorder (MDD), treatment-resistant depression (TRD), suicidal ideation, suicidal behavior, major depressive disorder with suicidal ideation or behavior, non-suicidal self-injury disorder (NSSID), bipolar disorder and related disorders including bipolar disorder Type I, bipolar disorder Type II, cyclothymic disorder, obsessive-compulsive disorder (OCD), generalized anxiety disorder (GAD), social anxiety disorder, substance use disorders including alcohol use disorder, opioid use disorder, amphetamine use disorder, nicotine use disorder, and cocaine use disorder, anorexia nervosa, bulimia nervosa, binge eating disorder, Alzheimer's disease, cluster headache and migraine, attention deficit hyperactivity disorder (ADHD), pain and neuropathic pain, aphantasia, childhood-onset dysphagia, dementia, mild dementia, sexual dysfunction, chronic fatigue syndrome, Lyme disease, and obesity. In some embodiments, the disease or disorder may include a condition of the autonomic nervous system (ANS). In some embodiments, the disease or disorder may include a pulmonary disorder (e.g., asthma and chronic obstructive pulmonary disorder (COPD)). In some embodiments, the disease or disorder may include a cardiovascular disorder (e.g., atherosclerosis). [Example]

[0476] I. Synthetic Route The compounds of the present disclosure and the reference compounds can generally be prepared according to, or analogously to, the following synthetic procedures, shown in Figures 1-15.

[0477] Example 1 Synthesis of 2-(2,5-bis(methoxy-d3)-4-(methylthio)phenyl)ethan-1-amine (II-1). The synthesis of 2-(2,5-bis(methoxy-d3)-4-(methylthio)phenyl)ethan-1-amine (II-1) was carried out according to Figure 1. The phenol starting material II-1a was deprotonated using potassium carbonate in DMF in the presence of deuterated methyl iodide to give the bis(methoxy-d3)benzaldehyde intermediate (II-1b, 85%). Bromination of bis(methoxy-d3)benzaldehyde (II-1b) with bromine in glacial acetic acid gave the benzaldehyde intermediate (II-1c, 37%), which was reduced to the alcohol using sodium borohydride (II-1d, 92%). Subsequent displacement of the alcohol gave the benzyl bromide intermediate (II-1e, 94%), which was subsequently substituted with potassium cyanide to give the benzyl cyanide (II-1f, 32%). Pd(dba) / Xanphos-catalyzed cross-coupling between bromobenzyl cyanide II-1f and sodium methanethiolate gave intermediate II-1g (44%). Subsequent reduction with lithium aluminum hydride to increase the acidity gave II-1 (75%) as the HCl salt. The product structure is shown in Figure 1. 1 Confirmed by H NMR. Overall yield 2.9%.

[0478] Example 2 Synthesis of 2-(2,5-bis(methoxy-d3)-4-methylphenyl)ethan-1-amine (II-2). The synthesis of 2-(2,5-bis(methoxy-d3)-4-methylphenyl)ethan-1-amine (II-2) was reported by Shulgin et al. This is performed according to Figure 2 using a modified general procedure reported by (Shulgin, A., and Shulgin, Ann. (1991) Pihkal: a chemical love story, Transform Press, Berkeley, CA) and later modified by Maresh (Maresh, JJ, Ralko, AA, Speltz, TE, Burke, JL, Murphy, CM, Gaskell, Z., Girel, JK, Terranova, E., Richtscheidt, C., and Krzeszowiec, M. (2014) Chemoselective Zinc / HCl Reduction of Halogenated beta-Nitrostyrenes: Synthesis of Halogenated Dopamine Analogues, Synlett 25, 2891-2894). Bis-alkylation of 2,5-dihydroxy-4-methylbenzaldehyde II-2a with CD3I gives intermediate II-2b, which then undergoes nitroaldol condensation with nitromethane under buffered acidic conditions to form β-nitrostyrene II-2c. Subsequent bis-reduction of the nitro group and alkene with zinc dust in methanolic hydrochloric acid gives the final product (II-2) as the HCl salt. The product structure is 1 Confirmed by H NMR.

[0479] Example 3 Synthesis of 2-(4-(tert-butyl)-2,5-bis(methoxy-d3)phenyl)ethan-1-amine (II-3). The synthesis of 2-(4-(tert-butyl)-2,5-bis(methoxy-d3)phenyl)ethan-1-amine (II-3) was carried out according to Figure 3. Bis-alkylation of the starting material (II-3a) with CD3I gave intermediate II-3b (78%). Selective formylation with POCl3 and N-methylformanilide gave benzaldehyde intermediate II-3c (63%). The resulting benzaldehyde II-3c underwent nitroaldol condensation with nitromethane under buffered acidic conditions to form β-nitrostyrene II-3d (72%). Subsequent bis-reduction of the nitro group and alkene with Pd / C, H2, and ethanolic hydrochloric acid gave the final product (II-3, 32%) as the HCl salt. The product structure is 1 Confirmed by 1 H NMR.

[0480] Example 4 Synthesis of 2-(4-cyclopentyl-2,5-bis(methoxy-d3)phenyl)ethan-1-amine (II-4) The synthesis of 2-(4-cyclopentyl-2,5-bis(methoxy-d3)phenyl)ethan-1-amine (II-4) was carried out according to Figure 4. Pd(OAc)2 / Sphos-catalyzed cross-coupling between the iodobenzaldehyde starting material II-4a and the boronic ester II-4b gave intermediate II-4c (78%), which then underwent nitroaldol condensation with nitromethane under buffered acidic conditions to form β-nitrostyrene II-4d. Subsequent multi-site hydrogenation using Pd / C afforded the final product (II-4, 52%) as the HCl salt. The product structure is 1 Confirmed by 1 H NMR.

[0481] Example 5 Synthesis of 2-(4-bromo-2,5-bis(methoxy-d3)phenyl)ethane-1,1,2,2-d4-1-amine (II-14). The synthesis of 2-(4-bromo-2,5-bis(methoxy-d3)phenyl)ethane-1,1,2,2-d4-1-amine (II-14) was reported by Shulgin et al. This is performed according to Figure 5 using a modified general procedure reported by (Shulgin, A., and Shulgin, Ann. (1991) Pihkal: a chemical love story, Transform Press, Berkeley, CA) and later adapted by Maresh (Maresh, JJ, Ralko, AA, Speltz, TE, Burke, JL, Murphy, CM, Gaskell, Z., Girel, JK, Terranova, E., Richtscheidt, C., and Krzeszowiec, M. (2014) Chemoselective Zinc / HCl Reduction of Halogenated beta-Nitrostyrenes: Synthesis of Halogenated Dopamine Analogues, Synlett 25, 2891-2894). Bis-alkylation of 2,5-dihydroxybenzonitrile (II-14a) with CD3I formed intermediate II-14b, which was then deuterated by reduction with lithium tris(dihexylamino)aluminum deuteride (Li(hex---2N)3AlD) to deuterated benzaldehyde II-14c using the method developed by Cha (Cha, JS, Lee, SE, and Lee, HS, 1992, Selective Conversion of Aromatic Nitriles to Aldehydes by Lithium Tris(Dihexylamino)Aluminum Hydride, Org Prep Proced Int 24, 331-334). β-Nitrostyrene II-14d was formed using nitroaldol condensation with nitromethane under buffered acidic conditions.Subsequent reduction of the alkene with sodium borodeuteride and silicon dioxide affords intermediate II-14e (Sinhababu, A.K., and Borchardt, R.T. (1983) Silica Gel-Assisted Reduction of Nitrostyrenes to 2-Aryl-1-Nitroalkanes with Sodium-Borohydride, Tetrahedron Letters 24, 227-230), followed by α-deuterium exchange using the basic resin WA30 and deuterium oxide, developed by Yamada (Yamada, T., Kuwata, M., Takakura, R., Monguchi, Y., Sajiki, H., and Sawama, Y. (2018) Organocatalytic Nitroaldol Reaction Associated with Deuterium-Labeling, Adv Synth Catal 360, 637-641), to form intermediate II-14f. Reduction of the nitro group with zinc dust in methanolic hydrochloric acid gives intermediate II-14g. Selective bromination then gives the final product (II-14). The product structure is: 1 Confirmed by H NMR.

[0482] Example 6 Synthesis of 2-(2,5-dimethoxy-4-(methyl-d3)phenyl)ethan-1-amine (III-1) The synthesis of 2-(2,5-dimethoxy-4-(methyl-d3)phenyl)ethan-1-amine (III-1) was carried out by Shulgin This is performed according to Figure 6 using a modified general procedure reported by (Shulgin, A., and Shulgin, Ann. (1991) Pihkal: a chemical love story, Transform Press, Berkeley, CA) and later modified by Maresh (Maresh, JJ, Ralko, AA, Speltz, TE, Burke, JL, Murphy, CM, Gaskell, Z., Girel, JK, Terranova, E., Richtscheidt, C., and Krzeszowiec, M. (2014) Chemoselective Zinc / HCl Reduction of Halogenated beta-Nitrostyrenes: Synthesis of Halogenated Dopamine Analogues, Synlett 25, 2891-2894). Reduction of methyl 2,5-dimethoxybenzoate (III-1a) with lithium aluminum deuteride (LAD) affords the benzyl alcohol intermediate III-1b, which is subsequently converted to the benzyl bromide intermediate III-1c by reaction with PBr. Further reaction with LAD affords intermediate III-1d, which is selectively formylated with N-methylformanilide and POCl. The resulting benzaldehyde III-1e undergoes nitroaldol condensation with nitromethane under buffered acidic conditions to form β-nitrostyrene III-1f. Subsequent bis-reduction of the nitro group with the alkene using zinc dust in methanol-containing hydrochloric acid affords the final product (III-1) as the HCl salt. The product structure is 1 Confirmed by H NMR.

[0483] Example 7 Synthesis of 2-(2,5-dimethoxy-4-(2-(methyl-d3)propan-2-yl-1,1,1,3,3,3-d6)phenyl)ethan-1-amine (III-2) The synthesis of 2-(2,5-dimethoxy-4-(2-(methyl-d3)propan-2-yl-1,1,1,3,3,3-d6)phenyl)ethan-1-amine (III-2) was carried out according to Figure 7. Friedel-Crafts alkylation of starting material (III-2a) was carried out using t-butyl bromide-d9 and aluminum chloride to give intermediate III-2b, which was lithiated with n-butyllithium and quenched with DMF. The resulting benzaldehyde III-2c underwent nitroaldol condensation with nitromethane under buffered acidic conditions to form β-nitrostyrene III-2d. Subsequent bis-reduction of the nitro group and alkene using Pd / C, H2, and ethanolic hydrochloric acid afforded the final product (III-2) as the HCl salt. The product structure is 1 Confirmed by 1 H NMR.

[0484] Example 8 Synthesis of 2-(2,5-dimethoxy-4-(methylthio)phenyl)ethane-1,1-d2-1-amine (IV-1) The synthesis of 2-(2,5-dimethoxy-4-(methylthio)phenyl)ethane-1,1-d2-1-amine (IV-1) was carried out according to Figure 8. Reduction of starting material IV-1a with sodium borohydride gave benzyl alcohol (IV-1b, 95%), which was then converted to benzyl bromide (IV-1c, 96%) with PBr3. Subsequent displacement with potassium cyanide gave benzyl cyanide (IV-1d, 14%). Pd2(dba)3 / xanphos-catalyzed cross-coupling with sodium methanethiolate gave intermediate IV-1e (44%), which was then reduced with lithium aluminum deuteride in the presence of aluminum chloride to give the final product (IV-1, 27%). The structure of the product is 1 Confirmed by 1 H NMR.

[0485] Example 9 Synthesis of 2-(2,5-dimethoxy-4-(propylthio)phenyl)ethane-1,1-d2-1-amine (IV-2). The synthesis of 2-(2,5-dimethoxy-4-(propylthio)phenyl)ethane-1,1-d2-1-amine (IV-2) was reported by Shulgin et al. This is performed according to Figure 9 using a modified general procedure reported by (Shulgin, A., and Shulgin, Ann. (1991) Pihkal: a chemical love story, Transform Press, Berkeley, CA) and later modified by Maresh (Maresh, JJ, Ralko, AA, Speltz, TE, Burke, JL, Murphy, CM, Gaskell, Z., Girel, JK, Terranova, E., Richtscheidt, C., and Krzeszowiec, M. (2014) Chemoselective Zinc / HCl Reduction of Halogenated beta-Nitrostyrenes: Synthesis of Halogenated Dopamine Analogues, Synlett 25, 2891-2894). 4-Mercapto-2,5-dimethoxybenzaldehyde (IV-2a) was alkylated by first deprotonating the thiol using potassium tert-butoxide in THF, followed by the addition of n-propyl bromide. The resulting benzaldehyde IV-2b underwent nitroaldol condensation with nitromethane under buffered acidic conditions to form β-nitrostyrene IV-2c. Subsequent treatment with sodium borohydride and silicon dioxide selectively reduces the alkene to form intermediate IV-2d, followed by α-deuterium exchange using basic resin WA30 and heavy water, developed by Yamada (Yamada, T., Kuwata, M., Takakura, R., Monguchi, Y., Sajiki, H., and Sawama, Y. (2018) Organocatalytic Nitroaldol Reaction Associated with Deuterium-Labeling, Adv Synth Catal 360, 637-641), to form intermediate IV-2e. Reduction of the nitro group with zinc powder in methanolic hydrochloric acid affords the final product (IV-2) as the HCl salt. The product structure is: 1 Confirmed by H NMR.

[0486] Example 10 Synthesis of 2-(2,5-dimethoxy-4-(trifluoromethyl)phenyl)ethane-1,1-d2-1-amine (IV-3). The synthesis of 2-(2,5-dimethoxy-4-(trifluoromethyl)phenyl)ethane-1,1-d2-1-amine (IV-3) was carried out according to Figure 10. Introduction of iodine into the starting material IV-3a was achieved using AgNO3 and I2 to give the iodoarene intermediate (IV-3b, 81%), which was then trifluoromethylated in a catalytic reaction using FSO2CF2COOMe in DMF in the presence of a catalytic amount of CuI at 75 °C to give intermediate IV-3c (66%). Reduction with sodium borohydride gave benzyl alcohol (IV-3d, 97%), which was then converted to benzyl bromide (IV-3e, 62%) with PBr3. Subsequent displacement with potassium cyanide gave benzyl cyanide (IV-3f, 13%), which was then reduced with lithium aluminum deuteride in the presence of aluminum chloride to give the final product (IV-3, 60%) as the HCl salt after increasing the acidity. The product structure is 1 Confirmed by 1 H NMR.

[0487] Example 11 Synthesis of 2-(4-bromo-2,5-dimethoxyphenyl)ethane-1,1-d2-1-amine (IV-5). The synthesis of 2-(4-bromo-2,5-dimethoxyphenyl)ethane-1,1-d2-1-amine (IV-5) was reported by Shulgin (Shulgin, A., and Shulgin, Ann. (1991) Pihkal: a chemical love story, Transform Press, Berkeley, CA) and later by Maresh (Maresh, JJ, Ralko, AA, Speltz, TE, Burke, JL, Murphy, CM, Gaskell, Z., Girel, JK, Terranova, E., Richtscheidt, C., and Krzeszowiec, M. (2014) Chemoselective Zinc / HCl Reduction of Halogenated beta-Nitrostyrenes: Synthesis of Halogenated Dopamine Analogues, Synlett This reaction is carried out according to Figure 11 using a modified general procedure adapted from Yamada (Yamada, T., Kuwata, M., Takakura, R., Monguchi, Y., Sajiki, H., and Sawama, Y. (2018) Organocatalytic Nitroaldol Reaction Associated with Deuterium-Labeling, Adv Synth Catal 360, 637-641). 2,5-Dimethoxybenzaldehyde (IV-5a) undergoes nitroaldol condensation with nitromethane under buffered acidic conditions to form β-nitrostyrene IV-5b. Subsequent treatment with sodium borohydride and silicon dioxide selectively reduces the alkene to form intermediate IV-5c, followed by deuterium exchange at the α-position using the basic resin WA30 and deuterium dioxide to form intermediate IV-5d. Reduction of the nitro group with zinc dust in methanolic hydrochloric acid gives intermediate IV-5e. Selective bromination then gives the final product (IV-5). The product structure is: 1 Confirmed by H NMR.

[0488] Example 12 Synthesis of 2-(4-bromo-2,5-dimethoxyphenyl)ethane-1,1,2,2-d4-1-amine (IV-12). The synthesis of 2-(4-bromo-2,5-dimethoxyphenyl)ethane-1,1,2,2-d4-1-amine (IV-12) was reported by Shulgin This is performed according to Figure 12 using a modified general procedure reported by (Shulgin, A., and Shulgin, Ann. (1991) Pihkal: a chemical love story, Transform Press, Berkeley, CA) and later modified by Maresh (Maresh, JJ, Ralko, AA, Speltz, TE, Burke, JL, Murphy, CM, Gaskell, Z., Girel, JK, Terranova, E., Richtscheidt, C., and Krzeszowiec, M. (2014) Chemoselective Zinc / HCl Reduction of Halogenated beta-Nitrostyrenes: Synthesis of Halogenated Dopamine Analogues, Synlett 25, 2891-2894). The starting material IV-12a is deuterated by reduction with tris(dihexylamino)aluminum deuteride (Li(hex---2N)3AlD) to deuterated benzaldehyde IV-12b using the method developed by Cha (Cha, JS, Lee, SE, and Lee, HS, 1992, Selective Conversion of Aromatic Nitriles to Aldehydes by Lithium Tris(Dihexylamino)Aluminum Hydride, Org Prep Proced Int 24, 331-334). β-Nitrostyrene IV-12c is formed using nitroaldol condensation with nitromethane under buffered acidic conditions.Subsequent reduction of the alkene with sodium borodeuteride and silicon dioxide affords intermediate IV-12d (Sinhababu, A.K., and Borchardt, R.T. (1983) Silica Gel-Assisted Reduction of Nitrostyrenes to 2-Aryl-1-Nitroalkanes with Sodium-Borohydride, Tetrahedron Letters 24, 227-230), followed by α-deuterium exchange using the basic resin WA30 and deuterium oxide, developed by Yamada (Yamada, T., Kuwata, M., Takakura, R., Monguchi, Y., Sajiki, H., and Sawama, Y. (2018) Organocatalytic Nitroaldol Reaction Associated with Deuterium-Labeling, Adv Synth Catal 360, 637-641), to form intermediate IV-12e. Reduction of the nitro group with zinc dust in methanolic hydrochloric acid gives intermediate IV-12f. Selective bromination then gives the final product (IV-12). The product structure is: 1 Confirmed by H NMR.

[0489] Example 13 Synthesis of 2-(2,5-dimethoxy-4-((trifluoromethyl)thio)phenyl)ethan-1-amine (I-1) The synthesis of 2-(2,5-dimethoxy-4-((trifluoromethyl)thio)phenyl)ethan-1-amine (I-1) was carried out according to Figure 13. Pd / XPhos-catalyzed cross-coupling between iodobenzaldehyde starting material I-1a and AgSCF3 was carried out using (1,5-cyclooctadiene)bis(trimethylsilylmethyl)palladium(II) catalyst in the presence of phenyltriethylammonium iodide to give intermediate (I-1b, 46%). Next, nitroaldol condensation was carried out with nitromethane under buffered acidic conditions to form β-nitrostyrene (I-1c, 48%). Subsequent bis-reduction of the nitro group and alkene with zinc dust in methanol-containing hydrochloric acid gave the final product (I-1, 33%) as the HCl salt. The structure of the product is 1 Confirmed by 1 H NMR.

[0490] Examples 14 to 25 Examples 14-25 are prepared according to schematic Figure 14 using a modified general procedure reported by Shulgin (Shulgin, A., and Shulgin, Ann. (1991) Pihkal: a chemical love story, Transform Press, Berkeley, CA) and later modified by Maresh (Maresh, JJ, Ralko, AA, Speltz, TE, Burke, JL, Murphy, CM, Gaskell, Z., Girel, JK, Terranova, E., Richtscheidt, C., and Krzeszowiec, M. (2014) Chemoselective Zinc / HCl Reduction of Halogenated beta-Nitrostyrenes: Synthesis of Halogenated Dopamine Analogues, Synlett 25, 2891-2894). The appropriate starting material (A) is alkylated by first deprotonating the thiol using potassium tert-butoxide, followed by the addition of the appropriate fluoroalkyl halide (R bZ) is added. The resulting intermediate B undergoes a nitroaldol condensation with nitromethane under buffered acidic conditions to form β-nitrostyrene C. Subsequent bis-reduction of the nitro group and alkene with zinc dust in methanolic hydrochloric acid gives the final product (D) as the HCl salt.

[0491] Example 14: 2-(2,5-dimethoxy-4-((3,3,3-trifluoropropyl)thio)phenyl)ethan-1-amine (I-2). The product structure is: 1 Confirmed by H NMR.

[0492] Example 15: 2-(4-((3,3-difluoropropyl)thio)-2,5-dimethoxyphenyl)ethan-1-amine (I-3). The product structure is: 1 Confirmed by H NMR.

[0493] Example 16: 2-(4-((3-fluoropropyl)thio)-2,5-dimethoxyphenyl)ethan-1-amine (I-4). The product structure is: 1 Confirmed by H NMR.

[0494] Example 17: 2-(2,5-dimethoxy-4-(3,3,3-trifluoropropoxy)phenyl)ethan-1-amine (I-5). The product structure is: 1 Confirmed by H NMR.

[0495] Example 18: 2-(4-(3,3-difluoropropoxy)-2,5-dimethoxyphenyl)ethan-1-amine (I-6). The product structure is: 1 Confirmed by H NMR.

[0496] Example 19: 2-(4-(3-fluoropropoxy)-2,5-dimethoxyphenyl)ethan-1-amine (I-7). The product structure is: 1 Confirmed by H NMR.

[0497] Example 20: 2-(2,5-bis(methoxy-d3)-4-((3,3,3-trifluoropropyl)thio)phenyl)ethan-1-amine (II-16). The product structure is: 1 Confirmed by H NMR.

[0498] Example 21: 2-(4-((3,3-difluoropropyl)thio)-2,5-bis(methoxy-d3)phenyl)ethan-1-amine (II-17). The product structure is: 1 Confirmed by H NMR.

[0499] Example 22: 2-(4-((3-fluoropropyl)thio)-2,5-bis(methoxy-d3)phenyl)ethan-1-amine (II-18). The product structure is: 1 Confirmed by H NMR.

[0500] Example 23: 2-(2,5-bis(methoxy-d3)-4-(3,3,3-trifluoropropoxy)phenyl)ethan-1-amine (II-19). The product structure is: 1 Confirmed by H NMR.

[0501] Example 24: 2-(4-(3,3-difluoropropoxy)-2,5-bis(methoxy-d3)phenyl)ethan-1-amine (II-20). The product structure is: 1 Confirmed by H NMR.

[0502] Example 25: 2-(4-(3-fluoropropoxy)-2,5-bis(methoxy-d3)phenyl)ethan-1-amine (II-21). The product structure is: 1 Confirmed by H NMR.

[0503] Reference compound 1 Synthesis of 2-(2,5-dimethoxy-4-methylphenyl)ethan-1-amine (Reference Compound 1) (2C-D). The synthesis of 2-(2,5-dimethoxy-4-methylphenyl)ethan-1-amine (Reference Compound 1) is carried out according to Figure 15. 2,5-Dimethoxy-4-methylbenzaldehyde (E) undergoes nitroaldol condensation with nitromethane under buffered acidic conditions to form β-nitrostyrene (F). Subsequent bis-reduction of the nitro group and alkene with zinc powder in methanol-containing hydrochloric acid afforded the final product (Reference Compound 1) as the HCl salt. The product structure is: 1 Confirmed by H NMR.

[0504] Reference compound 2 2-(4-Bromo-2,5-dimethoxyphenyl)ethan-1-amine (Reference Compound 2) (2C-B) is commercially available and was purchased from Cayman Chemical Co.

[0505] II. formulation Preparation of ion exchange resin complexes The free base of the compound is complexed with a strong cation exchange resin (sodium form, Amberlite IRP69, Rohm & Haas, sodium polystyrene sulfonate, pharmaceutical grade USP, particle size 75-150 microns). The maximum loading capacity of this resin is known to be approximately 5 meqv / g. In a typical procedure, the free base of the compound (10 mmol) is dissolved in 20 ml of ethanol. To this solution, 2 g of IRP69 resin (washed with 3 x 50 ml of ethanol) is added using a magnetic stirrer at room temperature and stirring is continued for 2 hours. The resin is then filtered and washed with ethanol (2 x 20 ml). Compound release from the resin complex is tested using a basket dissolution apparatus at pH 1 (0.1 M HCl) and 7.4 (0.1 M phosphate buffer).

[0506] Ion-exchange resin complex with compound (II-14): Ion-exchange resin complex with compound (II-14) was prepared and the release profile was investigated according to the procedure described above. In an acidic environment, release was a fast process, with over 90% of the drug eluting within 30 minutes. At neutral pH, release was significantly slower, with approximately 50% of the drug released in 1 hour and 80% released in 2 hours. Drug concentration was determined by HPLC using an Agilux 1100 setup and UV detection.

[0507] Preparation of enteric-coated ion-exchange resin complex beads Seal Coating The compound-ion exchange resin composite beads are seal coated at 2 wt % using Opadry 03K19229 coating (Colorcon, Inc., New Jersey, USA, reconstituted at 6% solids) in a water-alcohol solvent system (88:12, isopropanol:water) on a Niro-Aeromatic STREA 1 fluidized bed apparatus equipped with a Wurster coating module (bottom feed).

[0508] Enteric coating The resulting beads are then coated using Opadry Enteric 94O white coating (Colorcon, New Jersey, USA). The coating dispersion is reconstituted at 10% solids in a water-alcohol solvent system (88:12, isopropanol:water) and applied to either a 5% or 12% weight gain. Enteric coating of placebo tablets is performed without a preceding seal coating step. Samples are taken at 5, 6, 7, 8, 10, and 12% weight gain.

[0509] Drug Release Test Drug release at low pH is determined using a Type I Apparatus 1 (basket) at 100 rpm. In the first stage, the dissolution medium is 1000 ml of 0.1 N HCl at 37°C (±0.5°C) with a bead load of 2 g. After 1 hour of operation in this medium, aliquots are collected and the total drug content is determined by HPLC to be less than 1%. This confirms the integrity of the applied enteric coating. Drug release at neutral pH is determined using a Type I Apparatus 1 (basket) at 100 rpm. In the second stage, the dissolution medium is 1000 mL of 0.1 M phosphate buffer at pH 7.4 at 37°C (±0.5°C) with a bead load of 2 g. Media aliquots are collected at 15, 30, 60, 90, and 120 minutes, and the drug content is determined by HPLC using an Agilux 1100 setup and UV detection. Drug release was found to be approximately 50% at 1 hour and 80% at 2 hours, a release profile over time similar to that of uncoated resin beads.

[0510] Manufacturing of orally disintegrating tablets Orally disintegrating tablets are designed by incorporating sustained-release drug-ion exchange resin complex microbeads within a matrix of fast-disintegrating components that aid in the dispersion of the active substance in the oral cavity and allow subsequent swallowing without water, for easier drug administration.

[0511] The compound is formulated into composition PI-ODT-1, an orally disintegrating release tablet. The composition is prepared by dry granulation using Pharmaburst 500 (SPI, PA, USA), a sugar-based, fast-disintegrating matrix. 100 g of Pharmaburst 500 is mixed with 20 g of enteric-coated compound-ion exchange resin complex beads and sieved through a 40-mesh sieve to break down clumps. The mixture is then blended for 15 minutes at 200 rev / min in a 400 ml tube blender. After blending, magnesium stearate (200 mg) is added and blended for an additional 3 minutes. 250 mg convex tablets containing approximately 20 mg of active compound are compressed using a TDP tablet press and a 9 mm dye. A compression force of 8 kN produces tablets with a hardness ranging from 10 to 15 kP. Tablet disintegration times are determined to be 60 to 75 seconds. Tablet dissolution is performed in a Type II dissolution apparatus (paddle) (Distek Premiere 5100 Dissolution System, Distek Inc., North Brunswick, USA) at 100 rpm and 37°C using 1x PBS buffer, pH 6.8, as the immersion medium. At predetermined intervals, 1 ml samples are withdrawn (without replacement), filtered, and analyzed. The amount of released compound is measured by HPLC using an Agilent 1100 setup (Nagy, J., and Veress, T., 2016, HPLC Analysis of Hallucinogenic Mushroom Alkaloids (Psilocin and Psilocybin) Applying Hydrophilic Interaction Chromatography (HILIC), J Forensic Res 7, 356). Compound solutions of known concentrations are used to calculate the amount of released drug.

[0512] Fatty acid salts of compounds The free base of the compound (10 mmol) was dissolved in 30 ml of acetone, 10 mmol of decanoic acid was added, and the mixture was mixed for 5 minutes. The mixture was then cooled in a refrigerator overnight, resulting in the formation of a white crystalline precipitate of the 1:1 salt. The composition of the salt was confirmed by elemental analysis.

[0513] Preparation of transdermal skin patches and in vitro permeation testing Compound I-1 was formulated into a drug-in-adhesive (DIA) patch, enabling stable delivery of subpsychoactive doses over extended periods. The formulation was optimized for once-daily application (24-hour drug release). The DIA patch consisted of the drug, a pressure-sensitive acrylic adhesive, a backing film, and a release liner. In the preparation, 1.5 g of compound I-1 and 6.0 g of DURO-TAK 87-900A (acrylate copolymer pressure-sensitive adhesive; Henkel) were dissolved in 30 ml of methanol, stirred at room temperature for 30 minutes, and then spread onto a silicone-coated release liner (SCOTCHPAK; 3M, St. Paul, MD, USA) using a micrometer-adjustable film applicator to obtain a 300-micron-thick wet film. The resulting film was then kept at room temperature for 5 minutes and then placed in a 75°C oven for 30 minutes to remove any residual solvent. The patches were then laminated with a backing film (COTRAN; 3M, St. Paul, USA), cut to the appropriate size, wrapped in aluminum foil, and stored at room temperature. The final dry thickness of the DIA matrix was 90 mm.

[0514] In vitro permeation of drug patches into human cadaver skin (Biopredic, USA) was evaluated using Franz diffusion cells. A circular transdermal patch was pressed onto the skin with the adhesive side facing the stratum corneum. The receptor cell was filled with PBS containing 6% (w / v) Brij 98. For all in vitro tests, the diffusion cell area was 1.77 cm. 2 The diffusion cell was maintained at 32°C, and the solution in the receptor cell was continuously stirred at 600 rpm. At designated time points (2, 4, 6, 8, 10, 12, and 24 hours), 0.5 ml of the solution in the receptor cell was withdrawn and replaced with the same volume of fresh receptor medium. The FX concentration in the sample was determined by LC-MS / MS analysis. The range was 20-25 μg / h / cm. 2Fluxes in the range of 0.01 to 0.10 were achieved, which would translate to therapeutic exposure in human subjects.

[0515] III. test Pharmacological testing of 5-HT serotonin receptors The binding affinity (K i ) and functional efficacy (EC 50 ) values ​​are measured. Deuteration is found to have little effect on affinity and functionality at important receptor targets. Receptor affinity assay: Previously reported (Canal, C.E., Cordova-Sintjago, T., Liu, Y., Kim, M.S., Morgan, D., and Booth, R.G., 2013, Molecular pharmacology and ligand docking studies reveal a single amino acid difference between mouse and human serotonin 5-HT2A receptors that impacts behavioral translation of novel 4-phenyl-2-dimethylaminotetralin ligands, J Pharmacol Exp Ther 347, 705-716; Armstrong, J.L., Casey, A.B., Saraf, T.S., Mukherjee, M., Booth, R.G., and Canal, C.E., 2020, (S)-5-(2'-Fluorophenyl)-N,N-dimethyl-1,2,3,4-tetrahydronaphthalen-2-amine, a Serotonin Receptor Modulator, Possesses Anticonvulsant, Prosocial, and Anxiolytic-like Properties in an Fmr1 Knockout Mouse Model of Fragile 1A, 5-HT 2(A,B,C) Receptor affinity is determined by radioligand competitive binding. Briefly, membranes are collected from CHO-K1 or HEK293 cells expressing serotonergic receptors and incubated with K d The radioligand is incubated in assay buffer with a concentration of 0.05% and a test compound that competes for the receptor binding site. After equilibration, the reaction is terminated by collecting the ligand-receptor-membrane complex (Microbeta, PerkinElmer) and measuring the radioactivity in a scintillation counter (Microbeta2, PerkinElmer). The data are fitted with a nonlinear curve to obtain the K i The value is calculated according to the Cheng-Prusoff equation.

[0516] Receptor Functional Assay: 5-HT 1A Receptor-mediated Gi stimulation (decreased cyclic adenosine monophosphate (cAMP) levels) and 5-HT 2(A、B、C)Receptor-mediated Gq stimulation (phosphoinositide hydrolysis leading to the production of inositol phosphate 1 (IP1)) is a canonical signaling pathway, as previously reported (Canal, C.E., Cordova-Sintjago, T., Liu, Y., Kim, M.S., Morgan, D., and Booth, R.G., 2013, Molecular pharmacology and ligand docking studies reveal a single amino acid difference between mouse and human serotonin 5-HT2A receptors that impacts behavioral translation of novel 4-phenyl-2-dimethylaminotetralin ligands, J Pharmacol Exp Ther 347, 705-716; Canal, C.E., Morgan, D., Felsing, D., Kondabolu, K., Rowland, N.E., Robertson, K.L., Sakhuja, R., and Booth, R.G., 2014, A Novel Aminotetralin-Type Serotonin (5-HT) (2C)). The activity of serotonergic receptors is measured using a commercially available kit employing fluorescence resonance energy transfer (FRET) technology (e.g., the LANCE Ultra cAMP TR-FRET kit (PerkinElmer) or the IP-One HTRF kit (Cisbio)) in a homogeneous time-resolved fluorescence (HTRF)-capable microplate reader (e.g., the Mithras LB 940, Berthold). Briefly, CHO-K1 or HEK293 cells expressing serotonergic receptors are incubated with a test compound in stimulation buffer.After equilibration, the reaction is terminated with fluorescent conjugates of the donor and acceptor in lysis buffer, and FRET is measured. The data are fitted to a nonlinear curve and expressed as potency (e.g., EC) relative to a positive control (e.g., serotonin). 50 ) and efficacy (e.g., E MAX ) is calculated.

[0517] In vitro hepatic metabolism and kinetic effects of deuterium isotopes. Compounds (10 μl of a 2 μM solution) are incubated in 200 μl of medium containing 100 mg of rat liver microsomes, an NADPH-regenerating system (1 mM NADP, 1 unit / ml isocitrate dehydrogenase, 5 mM isocitrate, 5 mM magnesium chloride), and 25 mM phosphate buffer (pH 7.4). At various time points (0–60 min), the reaction is terminated by adding 300 μl of acetonitrile. For product analysis, precipitated salts and proteins are spun out in a centrifuge, and the remaining solution is diluted with 300 μl of water and injected into an LC / MS (Agilent 1200 system interfaced with an ABS Sciex 4000 QTRAP LC / MS / MS mass spectrometer). Metabolic stability can be estimated by assessing the rate of disappearance of the major parent peak.

[0518] Comparison of reference compound 2 (2C-B) with compound II-14 Following the above protocol, compound II-14 was found to have a 50% longer half-life than reference compound 2 (2C-B).

[0519] PK studies in rats and mice The pharmacokinetics of deuterated phenethylamines are studied in rats. In a typical cassette dosing experiment, two groups of five female Wistar rats (Charles River, Andover, MA) (200-250 g) with surgically inserted internal jugular vein catheters are fasted for 12 hours, and then 5 mg / kg of the deuterated analog and 5 mg / kg of the related non-deuterated analog are administered to each group via the catheter or by oral gavage. At 0, 15, 30, and 60 minutes, and 2, 4, 8, and 24 hours, plasma is analyzed for the parent molecule using LC / MS spectroscopy. Two separate groups of five animals are used to determine the blood-to-plasma ratio (BPR). Each group is euthanized at 15 and 30 minutes, respectively, and the concentrations of parent drug in brain and plasma are determined by LC / MS spectroscopy.

[0520] Head-twitch response (HTR) As previously reported (Canal, C.E., and Morgan, D., 2012, Head-twitch response in rodents induced by the hallucinogen 2,5-dimethoxy-4-iodoamphetamine: a comprehensive history, a re-evaluation of mechanisms, and its utility as a model, Drug Test Anal 4, 556-576; Saraf, T.S., Felsing, D.E., Armstrong, J.L., Booth, R.G., and Canal, C.E., 2021, Evaluation of lorcaserin as an anticonvulsant in juvenile Fmr1 knockout mice, Epilepsy Res 175, 106677), the HTR assay was performed in adult male C57Bl / 6J mice. Mice were obtained from the Jackson Laboratory (Bar Harbor, ME). Mice were housed in standard laboratory cages and provided with food and water ad libitum. Mice were allowed to acclimate to the animal facility for at least one week before testing in the treatment room. On the day of testing, mice were allowed to acclimate to the treatment room in their home cages for at least 60 minutes before administration of the test compound. Mice were injected subcutaneously and then immediately transferred to a clear polycarbonate box (46 x 20 x 20 cm). HTRs were counted over 15 consecutive minutes using a handheld tally counter by two trained observers blinded to treatment.

[0521] Compounds I-1 and II-10 were found to elicit HTR, statistically different from vehicle and not statistically different from the positive control, DOI (Figure 16). Furthermore, deuteration of the 2,5-methoxy group increased the HTR response, likely due to improved metabolic stability of the deuterated compounds. These data suggest that both the non-deuterated analog (compound I-1) and the deuterated analog (compound II-10) inhibited the serotonin 5-HT 2AIt is confirmed to engage and activate the receptor in vivo.

[0522] Competitive binding of radioligand Competitive radioligand binding was performed as previously reported (Saraf, TS, Felsing, DE, Armstrong, JL, Booth, RG, and Canal, CE, 2021, Evaluation of lorcaserin as an anticonvulsant in juvenile Fmr1 knockout mice, Epilepsy Res 175, 106677) with minor modifications. 2A Plasmids encoding receptor cDNAs were obtained from the cDNA Resource Center. Human embryonic kidney cells (HEK293, ATCC CRL-1573) were grown in a cell incubator in 100 mm dishes containing antibiotic-free Dulbecco's modified Eagle's medium containing 10% fetal bovine serum. Cells were transfected with 5–15 μg of cDNA at approximately 85% confluency using TransIT-2020 reagent (Mirus Bio, Madison, WI). After approximately 48 hours, cell membranes were collected by centrifugation. For all experiments, serotonin (5-HT) hydrochloride was used as a positive control, and mianserin hydrochloride (10 μM) was used to define nonspecific binding. 5-HT 2A Each receptor-expressing cell membrane homogenate was subjected to the following procedure in the presence or absence of a test compound in a buffer solution: 3 H]ketanserin (PerkinElmer, Waltham, MA), approximately 1.6 nM (human 5-HT 2A K at the receptor d ) in a 96-well plate. After equilibration, each sample was rapidly filtered under vacuum through a fiberglass filter presoaked in buffer and rinsed several times with ice-cold buffer using a cell harvester. The filters were immersed in scintillation fluid, and counts per minute were detected using a photodetector. IC 50Values ​​were computed using nonlinear, least-squares regression analysis, followed by the Cheng-Prusoff equation (GraphPad Prism 9.0, San Diego, CA) to determine the K i converted to a value.

[0523] Both compounds I-1 and II-10 inhibit serotonin 5-HT 2A It was found to be a clear agonist of the receptor (Figure 17). There was no significant difference in affinity between the deuterated and non-deuterated compounds, suggesting that deuteration does not result in pharmacodynamic changes.

[0524] All patents, patent applications, and other scientific or technical literature mentioned anywhere in this specification are incorporated herein by reference in their entirety. The embodiments illustratively described herein can be practiced in the absence of any element or limitation specifically disclosed or not specifically disclosed herein. Thus, for example, in each instance herein, the terms "comprising," "consisting essentially of," and "consisting of" may be substituted for either of the other two terms while retaining their ordinary meaning. The terms and expressions employed are used as terms of description, not limitation. There is no intention in using terms and expressions to exclude any equivalents of the features shown and described, or portions thereof, but it is recognized that various modifications are possible within the scope of the claims. Thus, while the methods and compositions of the present invention are specifically disclosed by embodiments and optional features, it will be understood that modifications and variations of the concepts disclosed herein may be reclassified by those skilled in the art, and that such modifications and variations are considered to be within the scope of the compositions and methods defined by the specification and the appended claims.

[0525] Any single term, element, phrase, group of terms, group of phrases, or group of elements described herein may be specifically excluded from the claims.

[0526] When a range is presented herein, such as a temperature range, time range, composition, or concentration range, all intermediate and subranges, as well as all individual values ​​included in the presented range, are intended to be included in the present disclosure. Any subrange or individual value of a range or subrange included in a description herein is understood to be excluded from the embodiments herein. Any element or step included in a description herein is understood to be excluded from a claimed composition or method.

[0527] Furthermore, when properties or aspects of compositions and methods are described in terms of Markush groups or other alternative groups, one of skill in the art will recognize that the compositions and methods are also described in terms of any individual member or subgroup of members of the Markush group or other group. Accordingly, the foregoing merely illustrates the gist of the methods and compositions. It will be appreciated that those skilled in the art will be able to devise various arrangements that, although not explicitly described or shown herein, embody the gist of the present disclosure and are within its spirit and scope. Furthermore, all examples and conditional language recited herein are intended primarily to aid the reader in understanding the gist of the disclosure and the concepts that the inventors have contributed to furthering the art, and should not be construed as being limited to such specifically recited examples and conditions. Furthermore, all statements herein reciting the gist, aspects, and embodiments of the present disclosure, as well as specific examples thereof, are intended to encompass structural and functional equivalents thereof. Furthermore, such equivalents are intended to include both currently known equivalents and equivalents developed in the future, i.e., all elements developed to perform the same function, regardless of structure. Thus, the scope of the present disclosure is not intended to be limited to the exemplary embodiments shown and described herein. Rather, the scope and spirit of the present disclosure are embodied by the following:

Claims

1. A compound having the structure of Formula I: 【Chemistry 1】 or a pharmaceutically acceptable salt, solvate, or stereoisomer thereof, During the ceremony, X 1 and X 2 are independently hydrogen or deuterium, Y 1 and Y 2 are independently hydrogen or deuterium, R 3 is hydrogen or deuterium, R 4 is —OCH 2 CH 2 CF 3 , —OCH 2 CH 2 CF 2 H, or —OCH 2 CH 2 CFH 2 , and Each R a are independently substituted or unsubstituted C 1 -C 6 A compound that is alkyl.

2. Y 1 and Y 2 The compound of claim 1 , wherein is hydrogen.

3. R 3 The compound of claim 1 , wherein is hydrogen.

4. X 1 and X 2 The compound of claim 1 , wherein is hydrogen.

5. X 1 and X 2 The compound of claim 1 , wherein is deuterium.

6. Each R a Ga-CH 3 or -CD 3 2. The compound of claim 1, wherein:

7. The compound of claim 1 having the structure of formula (II): 【Chemistry 2】 or a pharmaceutically acceptable salt, solvate, or stereoisomer thereof, During the ceremony, X 1 and X 2 are independently hydrogen or deuterium, Y 1 and Y 2 are independently hydrogen or deuterium, and 2. The compound of claim 1, wherein R 4 is —OCH 2 CH 2 CF 3 , —OCH 2 CH 2 CF 2 H, or —OCH 2 CH 2 CFH 2 .

8. The compound of claim 1 having the structure of formula (IV): 【Transformation 3】 or a pharmaceutically acceptable salt, solvate, or stereoisomer thereof, During the ceremony, Y 1 and Y 2 are independently hydrogen or deuterium, R 4 is —OCH 2 CH 2 CF 3 , —OCH 2 CH 2 CF 2 H, or —OCH 2 CH 2 CFH 2, and Each R a are independently substituted or unsubstituted C 1 -C 6 The compound of claim 1 , wherein the aryl group is alkyl. 【Request Item 9】 【Chemistry 4】 【Transformation 5】 or a pharmaceutically acceptable salt, or solvate thereof.

10. A pharmaceutical composition comprising a compound according to any one of claims 1 to 9 and a pharmaceutically acceptable excipient.

11. 11. The pharmaceutical composition of claim 10, wherein any position of the compound bearing deuterium has a minimum deuterium incorporation of at least 50 atomic percent at the deuteration site.

12. 11. The pharmaceutical composition of claim 10 formulated for oral administration.

13. 11. The pharmaceutical composition of claim 10, formulated for administration via inhalation.

14. Serotonin 5-HT 2 A pharmaceutical composition comprising a compound according to any one of claims 1 to 9 for use in treating a subject having a receptor-related disease or disorder.

15. Serotonin 5-HT 2 15. The pharmaceutical composition for use according to claim 14, wherein the disease or disorder associated with the receptor is a neuropsychiatric disease or disorder or an inflammatory disease or disorder.

16. Serotonin 5-HT 2 15. The pharmaceutical composition for use according to claim 14, wherein the disease or disorder associated with a receptor is a disorder of the central nervous system (CNS).

17. 17. The pharmaceutical composition for use of claim 16, wherein the disorder of the central nervous system (CNS) is selected from the group consisting of post-traumatic stress disorder (PTSD), major depressive disorder (MDD), treatment-resistant depression (TRD), suicidal ideation, suicidal behavior, major depressive disorder with suicidal ideation or behavior, non-suicidal self-injury disorder (NSSID), bipolar disorder and related disorders, cyclothymic disorder, obsessive-compulsive disorder (OCD), generalized anxiety disorder (GAD), social anxiety disorder, substance use disorders, anorexia nervosa, bulimia nervosa, binge eating disorder, Alzheimer's disease, cluster headache and migraine, attention deficit hyperactivity disorder (ADHD), pain, aphantasia, childhood-onset dysphagia, dementia, mild dementia, sexual dysfunction, chronic fatigue syndrome, Lyme disease, and obesity.

18. 17. The pharmaceutical composition for use according to claim 16, wherein the central nervous system (CNS) disorder is pain.

19. 17. The pharmaceutical composition for use according to claim 16, wherein the central nervous system (CNS) disorder is sexual dysfunction.

20. Serotonin 5-HT 2 15. The pharmaceutical composition for use according to claim 14, wherein the disease or disorder associated with a receptor is a disorder of the autonomic nervous system (ANS).

21. 21. The pharmaceutical composition for use according to claim 20, wherein the disorder of the autonomic nervous system (ANS) is a pulmonary disorder or a cardiovascular disorder.

22. 15. The pharmaceutical composition for use according to claim 14, wherein the pharmaceutical composition is administered orally, sublingually, buccally, topically, by injection, or by inhalation.

23. A monolayer tablet composition for oral administration comprising the compound according to any one of claims 1 to 9 and a polymer.

24. A tablet composition formulated for oral administration comprising a compound according to any one of claims 1 to 9 and a polymer.

25. 1) the pharmaceutical composition of claim 10, and 2) serotonin 5-HT 2 and instructions for use in treating a receptor-associated disease or disorder.

26. A transdermal patch comprising a compound according to any one of claims 1 to 9.

27. Serotonin 5-HT 2 27. The transdermal patch of claim 26 for use in treating a subject having a receptor-associated disease or disorder.