Deuterated or partially deuterated N,N-dimethyltryptamine compounds
Deuterated DMT compounds address the rapid metabolism and toxicity issues of conventional DMT by enhancing metabolic stability and prolonging therapeutic effects, providing improved treatment options for psychiatric and neurological disorders.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-11-18
- Publication Date
- 2026-03-24
AI Technical Summary
Existing psychedelic compounds like DMT have short durations of action and are metabolized rapidly, limiting their therapeutic potential, and their use with MAOIs can pose dietary restrictions and toxicity risks.
Development of deuterated DMT compounds with specific deuteration patterns to enhance metabolic stability and prolong pharmacokinetics, avoiding the need for MAOIs and reducing metabolic breakdown.
The deuterated DMT compounds exhibit increased metabolic stability and prolonged therapeutic effects, offering improved bioavailability and flexibility in treating psychiatric and neurological disorders without the dietary restrictions associated with conventional DMT use.
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Abstract
Description
Field of Invention
[0001] The present invention relates to compounds of formula (I) as defined herein, wherein the ratio of deuterium to protium in hydrogen is greater than that found naturally; and to compositions (including pharmaceutical compositions) comprising these compounds and optionally deuterium-unenriched analogs of formula (I). These compounds and compositions are used for the treatment of therapies, particularly psychiatric or neurological disorders (psychiatric or neurological diseases). The therapeutic effect of the compositions can be adjusted by varying the amounts of different compounds in the compositions of the present invention. Methods for synthesizing compounds of formula (I) and related compounds of formula (I') are also provided. [ka] Background of the Invention
[0002] Classical hallucinogens have shown preclinical and clinical promise in the treatment of mental disorders (Carhart-Harris and Goodwin, Neuropsychopharmacology 42, 2105-2113 (2017)). In particular, psilocybin has demonstrated significant improvements in various depression and anxiety rating scales in a randomized, double-blind study (Griffiths et al. Journal of Psychopharmacology, 30(12), 1181-1197 (2016)). The efficacy of psilocybin has been demonstrated in depression (RL Carhart-Harris et al., Psychopharmacology, 2018, 235, 399-408), end-of-life anxiety (RR Griffiths et al., J. Psychopharmacol., 2016, 30, 12, 1181-1197), and addiction (MW Johnson, A. Garcia-Romeu and RR Griffiths, Am. J. Drug Alcohol Abuse, 2017, 43, 1, 55-60), and is now being studied for several other mental health disorders rooted in psychologically disruptive patterns of thought processes (Anorexia Nervosa: NCT# NCT04052568).
[0003] 5-Methoxy-N,N-dimethyltryptamine (5-MeO-DMT) is an endogenous tryptamine found in human blood, urine, and cerebrospinal fluid (SA Barker, EH McIlhenny and R. Strassman, Drug Test. Anal., 2012, 4, 7-8, 617-635; F. Benington, RD Morin and LC Clark, J. Med. Sci., 1965, 2, 397-403; F. Franzen, and H. Gross, Nature, 206, 1052; RB Guchhait., J. Neurochem., 1976, 26, 1, 187-190), and has been shown to exhibit protective and therapeutic effects. Antidepressant effects have been demonstrated in rodents administered 5-MeO-DMT (MS Riga et al., Neuropharmacology, 2017, 113, A, 148-155). Furthermore, numerous users administered 5-MeO-DMT in various forms have reported therapeutic effects attributable to its use, including improvements in post-traumatic stress disorder, depression, and anxiety (AK Davis et al., J. Psychopharmacol., 2018, 32, 7, 779-792). 5-MeO-DMT has also shown potential to treat substance abuse disorders (V. Dakic et al., Sci. Rep., 2017, 7, 12863).
[0004] N,N-dimethyltryptamine (DMT) is also understood to have therapeutic value as a short-acting hallucinogen. A review of studies on the biosynthesis and metabolism of DMT in the brain and peripheral tissues, methods and results for the detection of DMT in body fluids and the brain, new sites of action of DMT, and new data on the potential physiological and therapeutic roles of DMT are provided by [SA Barker in Front. Neurosci., 12, 536, 1-17 (2018)]. In this review, DMT is described as having a promising therapeutic role in the treatment of depression, obsessive-compulsive disorder, and substance abuse disorder.
[0005] N-methyltryptamine (NMT), often along with DMT and 5-MeO-DMT, is extracted from the bark, buds, and leaves of several plant genera. NMT has been reported to have hallucinogenic (psychedelic) properties: inhaling 50-100 mg of NMT can produce "visuals" lasting 15-30 seconds (Shulgin, A. and Shulgin, A., 2002, THIKAL: the continuation, Transform Press).
[0006] Due to the short duration of action of DMT (less than 20 minutes), effective treatment is limited. Dosage protocols have been developed to extend the immersive psychedelic experience of DMT (Gallimore and Strassman (2016), A model for the application of target-controlled intravenous infusion for a prolonged immersive DMT psychedelic experience, Frontiers in Pharmacology, 7:211), but these protocols carry the risk of toxicity accumulation in patients with poor DMT metabolism (for further discussion, see Strassman et al (1994), Dose response study of N,N-dimethyltryptamine in humans, Arch Gen Psychiatry 51, 85).
[0007] DMT and its substituted analogs (such as 5-MeO-DMT) are understood to be primarily inactivated via a deamination pathway mediated by monoamine oxidases (MAOs). MAO-mediated metabolism of DMT yields indole-3-acetic acid (IAA) through oxidative deamination (O. Suzuki et al. Inhibition of type A and type B monoamine oxidases by naturally occurring xanthones, Planta Med., 42: 17-21 (1981), and J. Riba, et al., Metabolism and urinary disposition of N,N-dimethyltryptamine after oral and smoked administration: a comparative study, Drug Test. Anal., 7(5): 401-406 (2015)).
[0008] DMT-N-oxide (DMT-NO) is the second most abundant metabolite of DMT, formed via N-oxidation. Furthermore, minor metabolites including N-methyltryptamine (NMT), 2-methyl-1,2,3,4-tetrahydro-β-carbolin (MTHBC), and THBC have also been identified (see Barker (2018) above). The formation of alternative metabolites such as DMT-NO and NMT is thought to be independent of MAO activity (SA Barker et al., In vivo metabolism of α,α,β,β-tetradeutero-N,N-dimethyltryptamine in rodent brain, Biochem. Pharmacol, 33(9): 1395-400 (1984)). The causative enzymes involved in the formation of N-oxide and other metabolites remain unknown.
[0009] Given the significant role that MAOs are thought to play in the metabolic inactivation of DMT and its substituted analogues (e.g., 5-MeO-DMT), DMT and its substituted analogues (e.g., 5-MeO-DMT) are often administered with MAO inhibitors (MAOIs) to allow for longer and greater exposure to the compounds by preventing their inactivation before they reach their target sites in the body. However, because MAOIs can cause hypertension when taken with certain foods or medications, the use of MAOIs by patients typically requires them to restrict their diet and avoid certain other medications.
[0010] Naturally occurring hydrogen contains approximately 0.02 mol% deuterium and 99.98% protium. The physicochemical properties of protium and deuterium are small but measurable. Deuterium is slightly less lipophilic than protium, has a smaller molar volume, and its carbon-deuterium bond is shorter than that of the carbon-protium bond. Compared to hydrogen (H), deuterium exhibits less change in its three-dimensional surface, shape, and steric flexibility.
[0011] Based on these properties, it is expected that the introduction of deuterium into DMT will gradually decrease its lipophilicity and increase its basicity (in a stereochemical position-dependent, non-additive manner) while maintaining the biochemical potency and selectivity of the parent compound. Furthermore, it is expected that the enrichment of hydrogen atoms in DMT with deuterium will lead to changes in the compound's stability, as measured by the deuterium kinetic isotope effect (DKIE).
[0012] The difference in stability between molecules substituted with isotopes is called the kinetic isotopic effect (KIE), and for deuterium, it can be defined as the deuterium kinetic isotopic effect (DKIE). The DKIE is quantified as the ratio of the reaction rate constants (kH / kD), and typically ranges from 1 (in which case deuterium does not affect the reaction) to 7, with a theoretical limit of 9.
[0013] Since enzyme-catalyzed transformations are multi-step, the CH cleavage step must be at least partially rate-limiting for high DKIE to be observed. To explain secondary DKIE, other dynamic models such as quantum mechanical tunneling come to mind. Although this is usually much smaller than the first-order effect (typically 1.1–1.2), this mechanism can still produce a significantly larger effect.
[0014] Deuterium substitution of hydrogen atoms at the α and β positions of the ethylamine side chain of DMT (α,α,β,β-tetradeutero-DMT, D4DMT) was demonstrated by Barker et al. to have a KIE in vivo (SA Barker et al., 1982, Comparison of the brain levels of N,N-dimethyltryptamine and α,α,β,β-tetradeutero-N,N-dimethyltryptamine following intraperitoneal injection, Biochemical Pharmacology, 31(15), 2513-2516 (1982)). D4DMT was found to have a shorter time to onset and enhancement of behavioral disruption compared to the same dose of DMT. However, no kinetic data for quantifying DKIE have been reported (SA Barker et al. (1982); SA Barker et al. (1984); and JM Beaton et al., A Comparison of the Behavioral Effects of Proteo- and Deutero-N,N-Dimethyltryptamine. Pharmacol. Biochem. Behav, 1982. 16(5): 811-4 (1982)).
[0015] The synthesis of α,α,-bis-deuterium-DMT (D2DMT) has been reported in the literature (PE Morris and C. Chiao (Journal of Labelled Compounds And Radiopharmaceuticals, Vol. XXXIII, No. 6, 455-465 (1993))). However, no biological or metabolic data has been published.
[0016] WO 2020 / 245133 A1 (Small Pharma Ltd, published December 10, 2020) utilizes knowledge of the kinetic isotope effect (dynamic isotope effect) of α,α,β,β-tetradeutero-N,N-dimethyltryptamine to controllably modify the pharmacokinetic profile of N,N-dimethyltryptamine, enabling more flexible therapeutic applications.
[0017] The use of N,N-(dimethyl-d6)-tryptamine (d6-DMT) as an internal standard in the bioanalysis of plasma samples for DMT is described in the literature (GN Rossi et al., J. Pschedelic Stud., 3(1), 1-6 (2019); G. de Oliveira Silveria et al., Molecules, 25, 2072, 1-11 (2020); and CDR Oliveira et al., Bioanalysis, 2012, 4(14), 1731-1738)). However, the possibility of using d6-DMT itself as a therapeutic agent is not mentioned.
[0018] Given the therapeutic potential of DMT and its substitute analogues, there remains a need in the art for alternative compounds, for example, compounds having improved bioavailability, extended and / or modified pharmacokinetics and / or modified pharmacodynamics, for use in the development of clinically applicable psychedelic drugs for use in psychotherapy, particularly as adjuncts to psychotherapy. The present invention addresses this need. [Overview of the project]
[0019] DMT is metabolized very rapidly in the human body. Using Timmermann's modeled data (C. Timmermann et al., DMT Models the Near-Death Experience, Front. Psychol 9: 1424 (2018), and C. Timmermann et al., Neural correlates of the DMT experience assessed with multivariate EEG, Sci. Rep. 9: 16324 (2019)), calculations showed that DMT has a half-life of approximately 5 minutes and a clearance rate of 24483 ml / min, which corresponds to 350 ml / min / kg in a person weighing 70 kg. This clearance rate far exceeds the average human hepatic blood flow (20 ml / min / kg with a cardiac output of 71 ml / min / kg). From these calculations, it was inferred that most DMT is metabolized before reaching the human liver.
[0020] The studies described herein demonstrated that the intrinsic clearance and half-life values of deuterated DMT compounds in human liver mitochondrial fractions rich in MAO differ from those in hepatocytes, such as human liver microsomes and whole-cell hepatocytes. Furthermore, these pharmacodynamic parameters also change depending on whether there is a deuterium substitution on a carbon atom adjacent to the dimethylamino portion of DMT (α-deuteration) or on a carbon atom of the methyl group (methyl group deuteration).
[0021] Specifically, it was found that α-deuteration increased metabolic stability in human hepatocytes (compared to the parent compound, undeuterated DMT), while deuteration of the methyl group had little effect on metabolic stability in this system. On the other hand, a representative deuterated DMT with a completely deuterated methyl group showed a significant increase in metabolic stability in the mitochondrial fraction compared to the corresponding compound without deuterated methyl group.
[0022] Since the liver contains both phase I and phase II drug-metabolizing enzymes (which are present in intact cells), hepatocytes serve as a useful in vitro model for drug metabolism studies to predict in vivo clearance. However, liver fractions such as human liver microsomes and whole cell hepatocytes contain a significant amount of cytochrome P450 enzymes, and the main site of cytochrome P450 enzymes in the body is the liver. The mitochondrial fraction of human liver, although derived from the liver, contains no cytochrome P450 enzymes but contains a significant amount of MAO as already described. Whole cell hepatocytes also contain a significant amount of MAO, but MAO is more uniformly distributed throughout the body (more uniform than cytochrome P450 enzymes) and is found in most cell types.
[0023] The improvement of metabolic stability in the mitochondrial fraction of human liver by deuteration of the methyl group suggests that it has higher stability against metabolism by mitochondrial enzymes compared to un-deuterated DMT or DMT deuterated only at α, and thus higher metabolic stability in vivo.
[0024] Thus, viewed from a first aspect, the present invention provides a compound of formula (I) or a pharmaceutically acceptable salt thereof for use in therapy:
Chemical formula
[0025] To date, the only DMT compound with methyl deuterated grouping described is N,N-di(triduteromethyl)tryptamine (i.e., d6-DMT), and it is understood that the usefulness of methyl deuterated grouping in providing therapeutically active DMT has not been suggested in the art. Therefore, from a second perspective, the present invention provides compounds or pharmaceutically acceptable salts defined according to the first aspect of the present invention, which are not free bases of N,N-di(triduteromethyl)tryptamine, 5-hydroxy-N-mono(triduteromethyl)tryptamine (also known as N-methyl-serotonin-D3; CAS No. 1794811-18-9), or N-mono(triduteromethyl)tryptamine (also known as N-methyl-tryptamine-D3; CAS No. 1794745-39-0), but may be, for example, pharmaceutically acceptable salts of N,N-di(triduteromethyl)tryptamine, 5-hydroxy-N-mono(triduteromethyl)tryptamine, or N-mono(triduteromethyl)tryptamine.
[0026] From a third perspective, the present invention relates to a first compound which is a compound defined according to the first or second aspect of the present invention or a pharmaceutically acceptable salt thereof, and A second compound, which is (i) a compound defined according to the first aspect of the present invention or a pharmaceutically acceptable salt thereof, y Identity of H and / or R 3 (ii) Each x H and y A second compound which is either a compound defined according to the first aspect of the present invention or a pharmaceutically acceptable salt thereof, except that H represents hydrogen; The present invention provides a composition containing the following:
[0027] Viewed from a fourth aspect, the present invention provides a pharmaceutical composition comprising a compound defined according to the first or second aspect of the present invention, or a composition according to the third aspect of the present invention, in combination with a pharmaceutically acceptable excipient.
[0028] Viewed from a fifth aspect, the present invention provides compounds defined according to the first or second aspect of the present invention, or compositions defined according to the third or fourth aspect of the present invention, for use in methods of treating mental or neurological disorders in patients.
[0029] Viewed from a sixth aspect, the present invention provides a therapeutic method comprising administering a compound defined according to the first or second aspect of the present invention, or a composition defined according to the third or fourth aspect of the present invention, to a patient in need thereof.
[0030] From a seventh perspective, the present invention relates to a compound of formula (I') or a pharmaceutically acceptable salt thereof: [ka] The present invention provides a method for synthesizing a compound of formula (II) or a pharmaceutically acceptable salt thereof, comprising reacting LiAlH4 and / or LiAlD4: [ka] During the ceremony, R 1' -R is independent of the above. 4 -OPR, -OR 4 Selected from -F, -Cl, -Br, and -I; PR is a protecting group; n is selected from 0, 1, 2, 3, or 4, preferably 1, 2, 3, or 4; R 2 C( x H)3 is; R 3 C( xH)3 or H; Each R 4 These are independently selected from C1-C4 alkyl groups; and each x H and y H is independently protium or deuterium. Here, C( x The deuterium:protium ratio in the H)3 portion is greater than the ratio found naturally in hydrogen.
[0031] Optionally, a compound of formula (I') where R1' is -OPR can be converted to a compound of formula (I) using chemical methods readily available to those skilled in the art.
[0032] Further aspects and embodiments of the present invention will become apparent from the following discussion. [Brief explanation of the drawing]
[0033] [Figure 1] Semi-logarithmic plot of the mean concentrations of DMT (SPL026) and d8-DMT (SPL028viii) over time after in vivo intravenous administration of 2 mg / kg fumarate. [Figure 2] Semi-logarithmic plot of the average concentrations of SPL026 and SPL028viii over time after in vivo intravenous administration of 1 mg / kg fumarate (added as a cassette). [Figure 3] Plots showing the time course of the mean concentrations of DMT (SPL026) and d8-DMT (SPL028viii) after in vivo administration of 3.5 mg / kg fumarate via IM (added as a cassette). Figure 3A is a linear plot, and Figure 3B is a semi-logarithmic plot. Detailed description of the invention
[0034] Throughout this specification, one or more aspects of the present invention can be combined with one or more features described herein to define separate embodiments of the present invention.
[0035] In the following discussion, many terms are referenced, and unless the context explicitly suggests otherwise, these terms are understood to have the meanings defined below. The nomenclature used herein to define compounds, and in particular the compounds described herein, is intended to conform to the rules of the International Union of Pure and Applied Chemistry (IUPAC) concerning chemical compounds, specifically the "IUPAC Compendium of Chemical Terminology (Gold Book)" (see AD Jenkins et al., Pure & Appl. Chem., 1996, 68, 2287-2311). To avoid any doubt, if the rules of the IUPAC organization contradict the definitions provided herein, the definitions herein shall prevail.
[0036] In this specification, a singular reference to a noun includes the plural form of the noun unless the context suggests otherwise, and vice versa. For example, “compounds of formula (I)” refers to one or more compounds of formula (I).
[0037] Throughout this specification, the word “contains,” or variations such as “contains” or “includes,” is understood to mean including the elements, integers, or steps, or groups of elements, integers, or steps, but not to mean excluding other elements, integers, or steps, or other groups of elements, integers, or steps. The term “contains” includes the term “consisting of.”
[0038] The term "consists of" or its variation is understood to mean including the listed elements, integers, or steps, or groups of elements, groups of integers, or groups of steps, but excluding other elements, integers, or steps, or other groups of elements, groups of integers, or groups of steps.
[0039] In this specification, the term "approximately" is used to refer to a value that is within ±5% of a specified value when modifying a number or value. For example, when a temperature range of approximately 15°C to approximately 25°C is mentioned, temperatures of 14.25°C to 26.25°C are included.
[0040] To avoid ambiguity, where a number or value is specified without the term “approximately” in this specification, that number or value should be understood according to the standard rounding conventions for numbers with respect to the number of decimal places. For example, an integer such as 194 is understood to encompass values ≥193.5 and <194.5. Similarly, a number specified to one decimal place, such as 196.3, is understood to encompass values ≥196.25 and <196.35.
[0041] The term "hydrocarbyl" defines a monovalent group derived from a hydrocarbon by removing a hydrogen atom from any carbon atom, while the term "hydrocarbon" refers to a compound consisting only of hydrogen and carbon. Where a hydrocarbyl is disclosed to optionally contain one or more heteroatoms, any carbon or hydrogen atom on the hydrocarbyl may be substituted with a heteroatom or a functional group containing a heteroatom, provided that the valency is satisfied. The one or more heteroatoms may be selected from the group consisting of nitrogen, sulfur, and oxygen.
[0042] The -H or -CH2- of hydrocarbyl can be substituted with oxygen and sulfur heteroatoms or functional groups containing these heteroatoms, however, when -H is substituted, oxygen or an oxygen-containing functional group bonds to the carbon originally bonded to -H as either =O (substituting two -H atoms) or -OH (substituting one -H atom), and sulfur or a sulfur-containing functional group bonds to the carbon originally bonded to -H as either =S (substituting two -H atoms) or -SH (substituting one -H atom). When methylene (-CH2-) is substituted, oxygen bonds to the carbon originally bonded to -CH2- as -O-, and sulfur bonds to the carbon originally bonded to -CH2- as -S-.
[0043] A nitrogen heteroatom or a functional group containing a nitrogen heteroatom may substitute for -H, -CH2-, or -CH=. However, if -H is substituted, the nitrogen or nitrogen-containing functional group will bond to the carbon originally bonded to -H as ≡N (substituting three -Hs), =NH (substituting two -Hs), or -NH2 (substituting one -H); if -CH2- is substituted, the nitrogen or nitrogen-containing functional group will bond to the carbon originally bonded to -CH2- as -NH-; and if -CH= is substituted, the nitrogen will bond to the carbon originally bonded to -CH= as -N=.
[0044] The term "alkyl" is well known in the art and defines a monovalent group derived from an alkane by removing a hydrogen atom from any carbon atom, where the term "alkane" is defined as having the general formula C n H 2n+2 This definition is intended to define acyclic branched or unbranched hydrocarbons having a C1-C4 alkyl group, where n is an integer ≥ 1. C1-C4 alkyl refers to any group selected from the group consisting of methyl, ethyl, n-propyl, iso-propyl, n-butyl, sec-butyl, iso-butyl, and tert-butyl.
[0045] The term "cycloalkyl" defines all monovalent groups derived from cycloalkanes by removing a hydrogen atom from a cyclic carbon atom. The term "cycloalkane" defines saturated monocyclic and polycyclic branched or unbranched hydrocarbons, where monocyclic cycloalkanes are defined by the general formula C n H 2n The compound has a function where n is an integer ≥ 3. Typically, the cycloalkyl is a C5-C6 cycloalkyl such as cyclopentyl or cyclohexyl.
[0046] The term "alkylamino" refers to an alkyl group in which any one hydrogen atom is substituted with a primary (-NH2), secondary (-NRH), or tertiary (-NR2) amino group, where R or each R is independently a hydrocarbyl group. Typically, any one hydrogen atom is substituted with a tertiary amino group in which each R is independently a C1-C4 alkyl group.
[0047] The term "acetoxy" (often abbreviated as OAc) defines a monovalent group derived from acetic acid by removing a hydrogen atom from the OH moiety. The term "methoxy" (often abbreviated as OMe) defines a monovalent group derived from methanol by removing a hydrogen atom from the OH moiety. The term "monohydrogen phosphate" defines a divalent group of the formula HPO4 derived from phosphoric acid by removing protons from two of its three OH moieties, thus the formula -OP(O)(OH)O - It means substituents.
[0048] In this specification, hydrogen means that the hydrogen isotope as expressed in such notation is present in naturally occurring amounts in multiple identical compounds (unless the context explicitly indicates the opposite). For example, in a particular compound... x H and y When H is written to represent hydrogen, in various such compounds x H and y The isotopes of hydrogen (H) exist in their natural abundances.
[0049] For example, if the compound of formula (I) is substituted with a single hydrogen phosphate (i.e., R 1(If is monohydrogen phosphate), “monohydrogen phosphate” is understood to include protonated or unprotonated analogs, i.e., dihydrogen phosphate and phosphates. This is because psilocybin (also known as [3-(2-dimethylaminoethyl)-1H-indole-4-yl]dihydrogen phosphate) and analogs (e.g., [3-(2-methylaminoethyl)-1H-indole-4-yl]dihydrogen phosphate) in water generally contain monohydrogen phosphate, which is generally understood to be the dominant form because the pKa values of the two terminal phosphate oxygen atoms are estimated to be 1.3 and 6.5. Furthermore, the monohydrogen phosphate-containing forms of psilocybin and analogs are understood to exist as zwitterions (i.e., intramolecular salts) in which the nitrogen atom of the dimethylamino (or monomethylamino) moiety is protonated. To avoid misunderstanding, zwitterions are considered separate from salts; i.e., pharmaceutically acceptable salts of the present invention refer to salts containing the compound of formula (I) and an acid. For example, the salt may be a salt of the compound of formula (I) with fumaric acid.
[0050] Compounds of formula (I) described herein, for example, compounds in compositions according to the third and fourth aspects of the present invention, are useful for treatment and can be administered to patients in need. As used herein, the term “patient” preferably refers to a mammal. Typically, a mammal is a human, but may also refer to a domestic mammal. The term does not include laboratory mammals.
[0051] The terms “treatment” and “therapy” define therapeutic actions taken to a patient to reduce or halt the progression of a disorder, or to improve or cure a disorder. This also includes the prevention of the disorder as a result of treatment or therapy. References to prevention are intended herein not to require complete prevention of the disorder; rather, its onset may be prevented by treatment or therapy according to the present invention. Typically, treatment or therapy is not preventive, and the compound or composition is administered to a patient who has or is suspected of having a diagnosed disorder.
[0052] Psychedelic-supportive psychotherapy refers to the treatment of mental disorders using psychological means, enhanced by one or more protocols in which the patient experiences psychedelic experiences. Psychedelic experiences are characterized by a pronounced perception of previously unknown aspects of one's own mind and may include one or more altered perceptions of hallucinations, synesthesia, altered states of consciousness or focused consciousness, altered thought patterns, trance or hypnotic states, or mystical states.
[0053] As understood in the art, a psychiatric cognitive disorder, psychiatric disorder, or neurological disorder is a disorder that may be associated with one or more cognitive impairments. As used herein, the term “psychiatric disorder (mental illness)” means a clinically significant behavioral or psychological syndrome or pattern that occurs in an individual and is associated with present distress (e.g., painful symptoms) or disability (i.e., impairment in one or more important areas of function) or is associated with a significantly increased risk of death, suffering, disability, or loss of important freedom.
[0054] The diagnostic criteria for mental or neurological disorders mentioned here are described in the Diagnostic and Statistical Manual of Mental Disorders, Fifth Edition (DSM-5).
[0055] As used herein, the term obsessive-compulsive disorder (OCD) is defined by the presence of either an obsession or a compulsion, but generally both. Its symptoms can cause significant functional impairment and / or distress. An obsession is defined as an unwanted, intrusive thought, image, or urge that repeatedly comes to mind. A compulsion is a recurring behavior or mental act that a person feels compelled to perform. Typically, OCD manifests as one or more obsessions that compel a person to perform a compulsion. For example, an obsession with germs may lead to a cleaning compulsion, and an obsession with food may lead to compulsions such as overeating, undereating, or vomiting after eating (i.e., an obsession with food may manifest as an eating disorder). Compulsions can be either obvious and observable to others, such as checking that a door is locked, or unobservable, latent mental acts, such as repeating a phrase in one's head.
[0056] The term "eating disorder" includes anorexia nervosa, bulimia nervosa, and binge eating disorder (BED). Symptoms of anorexia nervosa include eating too little and / or exercising too much in an attempt to keep weight as low as possible. Symptoms of bulimia nervosa include eating large amounts of food in a very short period of time (i.e., binge eating), followed by deliberately injuring oneself, using laxatives, eating too little and / or exercising too much to prevent weight gain. Symptoms of BED include regularly eating large amounts of food until one is uncomfortably full, resulting in feelings of distress and guilt.
[0057] As used herein, the term “depressive disorder” includes major depressive disorder, persistent depressive disorder, bipolar disorder, bipolar depression, and depression in terminal patients.
[0058] As used herein, the term “major depressive disorder (MDD); also known as major depression or clinical depression” is defined as the presence of five or more of the following symptoms for a period of two weeks or longer, for most of the day, and for most of the day (also known herein as a “major depressive episode”): • Depressed mood, such as feeling sad, empty, or tearful (in children and teenagers, depressed mood may manifest as persistent irritability); • A significant decrease in interest in or lack of pleasure in all or most activities; • Significant weight loss, weight gain, or decreased or increased appetite without dietary therapy (in children, failure to achieve expected weight gain); • Insomnia or increased desire to sleep; • Observable signs of agitation or delayed behavior by others; Fatigue or loss of vitality; • Feelings of worthlessness, or excessive or inappropriate guilt; Difficulty making decisions, or difficulty thinking or concentrating; • Repeated thoughts of death or suicide, or suicide attempts At least one of the symptoms must be either a depressed mood or a loss of interest or pleasure.
[0059] Persistent depressive disorder, also known as dysthymia, is defined as a condition in which a patient exhibits the following two characteristics: A. Having a depressed mood almost every day for at least two years. Children and adolescents may experience irritability for at least one year. B. During depression, you experience at least two of the following symptoms: • Either overeating or loss of appetite • Having excessive sleepiness or a sleep disorder • Fatigue, loss of vitality • Decreased self-esteem Difficulty concentrating or making decisions
[0060] As used herein, the term “treatment-resistant major depressive disorder” refers to MDD in which adequate therapeutic response is not achieved with appropriate treatment using standard care.
[0061] As used herein, “bipolar disorder,” also known as manic-depressive illness, is a disorder characterized by abnormal fluctuations in mood, energy levels, activity levels, and ability to perform daily tasks.
[0062] There are two defined subcategories of bipolar disorder, all of which involve noticeable fluctuations in mood, energy, and activity levels. These moods range from periods of extreme “up,” euphoria, and energetic behavior (known as manic episodes, further defined below) to periods of profound sadness, “down,” or hopelessness (known as depressive episodes). Less severe manic episodes are known as hypomanic episodes.
[0063] Bipolar I disorder is defined by a manic episode lasting at least seven days, or by manic symptoms severe enough to require immediate medical attention. A depressive episode usually also occurs, typically lasting at least two weeks. Mixed depressive episodes (with both depressive and manic symptoms occurring simultaneously) can also occur.
[0064] Bipolar II disorder is defined by a pattern of depressive and hypomanic episodes, but not by the terminal manic episodes described above.
[0065] As used herein, “bipolar depression” is defined as an individual who experiences depressive symptoms along with previous or co-occurring manic episodes, but does not meet the clinical criteria for bipolar disorder.
[0066] As used herein, the term “anxiety disorder” includes generalized anxiety disorder, phobias, panic disorder, social anxiety disorder, and post-traumatic stress disorder.
[0067] As used herein, "generalized anxiety disorder (GAD)" refers to a chronic disorder characterized by persistent, non-specific anxiety that is not directed towards a single object or situation. Individuals with GAD experience persistent, non-specific fears and anxieties and become overly concerned with everyday, mundane things. GAD is characterized by chronic, excessive anxiety accompanied by three or more of the following symptoms: restlessness, fatigue, difficulty concentrating, irritability, muscle tension, and sleep disturbances.
[0068] A phobia is defined as a persistent fear of an object or situation, and those afflicted expend considerable effort (typically disproportionate to the actual danger involved) to avoid it. If it is impossible to completely avoid the feared object or situation, those afflicted endure it with significant distress and substantial impairment in social or occupational activities.
[0069] A person suffering from "panic disorder" is defined as someone who experiences one or more short episodes of intense fear and anxiety (also called panic attacks), often characterized by tremors, shudders, confusion, dizziness, nausea, and / or difficulty breathing. A panic attack is defined as a sudden onset of fear or discomfort that peaks within 10 minutes.
[0070] Social anxiety disorder is defined as a strong fear and avoidance of negative public scrutiny, public embarrassment, situations that could lead to shame, or social interaction. Social anxiety often manifests as certain physical symptoms, including blushing, sweating, and difficulty speaking.
[0071] Post-traumatic stress disorder (PTSD) is an anxiety disorder that results from a traumatic experience. Post-traumatic stress can arise from extreme situations such as combat, natural disasters, rape, hostage situations, child abuse, bullying, or serious accidents. Common symptoms include hyperarousal, flashbacks, avoidance behavior, anxiety, anger, and depression.
[0072] As used herein, the term “postpartum depression” (PPD, also known as postpartum depression) refers to a form of depression experienced by either parent of a newborn. Symptoms typically appear within four weeks of birth and often include extreme sadness, fatigue, anxiety, loss of interest or pleasure in hobbies or activities, irritability, and changes in sleep or eating patterns.
[0073] As used herein, the term “substance abuse (drug abuse)” means the patterned use of a drug in which a user ingests the substance in amounts or in a manner that is harmful to himself or others.
[0074] As used herein, the term “avolition disorder” refers to a disorder characterized by a reduced motivation to initiate and perform an activity of one's own accord.
[0075] In various aspects, the present invention relates to compounds of formula (I). Compounds of formula (I) (as well as those of formulas (I'), (II), and N(H)R described herein) 2 R 3 Each of these compounds has a deuterium:protium ratio greater than its natural isotopic abundance. x H)3 parts (two such parts in some embodiments), i.e., the compound in question contains a methyl group in which the proportion of deuterium in the hydrogen atoms of the compound of the formula is greater than the natural isotopic abundance of hydrogen (about 0.02 mol%).
[0076] In a compound of formula (I) according to a specific embodiment of at least the first to sixth aspects of the present invention, R 1 These are, independently, -OR 4 ,-O(CO)R 4 Selected from monohydrogen phosphate and -OH. In certain embodiments of these and other embodiments, R 4 It is methyl.
[0077] Sometimes, in compounds of formulas (I), (I'), and (II) according to any relevant aspect or embodiment of the present invention (formulas (I') and (II) are described later), n is 0 or 1. According to some embodiments, n is 0. According to some embodiments, n is 1.
[0078] If n is 1, R 1 (Or, in compounds of formulas (I') and (II), R 1' ) is either the 4th or 5th position. To avoid misunderstanding, the 4th and 5th positions refer to these positions in the DMT structure depicted below: [ka]
[0079] According to some embodiments, in a compound of formula (I) according to a specific embodiment of at least the first to sixth aspects of the present invention, n is 0; or n is 1, R 1 The compounds are selected from 5-methoxy, 5-bromo, 4-acetoxy, 4-monohydrogen phosphate, 4-hydroxy, and 5-hydroxy.
[0080] According to some embodiments of all aspects of the present invention, n is 0; or n is 1 and R 1 (or R if appropriate) 1' ) is 5-methoxy.
[0081] y In the compounds described herein having an H moiety, these may be deuterium (i.e., hydrogen in which the proportion of deuterium exceeds its natural abundance), or these y The H portion may also be protium (i.e., hydrogen in which the proportion of deuterium has not increased beyond its natural abundance).
[0082] To avoid misunderstandings, x H or yThe fact that H is deuterium means that the atom is enriched with deuterium, that is, the hydrogen atoms in the resulting compound contain a higher proportion of deuterium than the naturally occurring proportion of deuterium in hydrogen (approximately 0.02 mol%).
[0083] Where a compound described herein is deuterium-substituted, or is described as deuterium-substituted, the compound is enriched with deuterium in an amount dependent on the proportion of available deuterium in the reagent (from which the compound is derived). For example, as described herein, the d6-dimethylamino moiety or d3-monomethylamino moiety (wherein -NR) of the compounds of formulas (I), (I'), and (II). 2 R 3 The substituents (which are -N(CD3)2 and -N(H)CD3, respectively) may be derived from dimethyl-d7-amine, dimethyl-d6-amine, or methyl-d3-amine (generally available as HCl salts), which are available from chemical suppliers with deuterium purity ranging from 98% to 99%. The resulting purity of deuterium in the d6-dimethylamino or d3-monomethylamino substituents is consequently between 98% and 99%. This means, as will be understood by those skilled in the art, that not all compounds of formula (I) (e.g.) contain the d6-dimethylamino or d3-monomethylamino substituent (some contain the d0-d5-dimethylamino or d0-d3-monomethylamino substituents, but the average purity of deuterium is about 98% to 99%).
[0084] Sometimes, in the related compounds described herein, R 2 and R 3 Both are C( x H)3, and in some of these embodiments, both C( x H)3 is the same. According to a particular embodiment, R 2 and R 3 Both are CD3.
[0085] In accordance with a second aspect of the present invention, a compound of formula (I) is provided, provided that the compound is not a free base of N,N-di(triduteromethyl)tryptamine (d6-DMT), 5-hydroxy-N-mono(triduteromethyl)tryptamine (also known as N-methyl-serotonin-D3; CAS No. 1794811-18-9), or N-mono(triduteromethyl)tryptamine (also known as N-methyl-tryptamine-D3; CAS No. 1794745-39-0). However, the compounds of the present invention may be di(triduteromethyl)tryptamine, N-methyl-serotonin-D3, or pharmaceutically acceptable salts of N-methyl-tryptamine-D3, for example, fumarate of di(triduteromethyl)tryptamine; or other N,N-di(triduteromethyl)tryptamine of formula (I), for example, 5-methoxy-N,N-di(triduteromethyl)tryptamine, or pharmaceutically acceptable salts thereof. In further embodiments, the compound of formula (I) according to the second aspect of the present invention is not a free base of N,N-di(triduteromethyl)tryptamine, 5-hydroxy-N-mono(triduteromethyl)tryptamine, N-mono(triduteromethyl)tryptamine, or 4-hydroxy-N,N-di(triduteromethyl)tryptamine (also known as 4-hydroxy-N,N-dimethyltryptamine-d6 or psilocin-d6).
[0086] In some embodiments, the compound is the compound of formula (I), where n is 0, and the compound has a molecular weight of 188.9 to 196.3 grams per mole as free base, or 189.2 to 196.3 grams per mole as free base, preferably 194.3 to 196.3 grams per mole as free base.
[0087] In some embodiments, the compound is the compound of formula (I), where n is 1 and R 1 is 5-methoxy, and the compound has a molecular weight of 224.3 to 226.4 grams per mole as a free base; or n is 1, R1 The compound is 5-hydroxyl, and as a free base, it has a molecular weight of 210.3 to 212.3 grams per mole.
[0088] The specific embodiments described above (n=0 and n=1, R 1 Compounds of formula (I) including those in which (the compound is 5-methoxy) can be synthesized, for example, according to the reaction scheme shown in Scheme 1 below: [ka] Scheme 1. Synthetic route for producing an example (n=0) of the compound of formula (I): (i) SOCl2 in Et2O at -78°C; (ii) N(H)R in Et2O 2 R 3 (iii) LiAlH4 and / or LiAlD4 in Et2O, CH2Cl2
[0089] Scheme 1 shows the synthesis of the compound of formula (I) for n=0. The chemical variations described (e.g., those relating to the synthesis of the compound of formula (I) for n other than 0) are within the scope of the ordinary ability of a person skilled in the art, under general knowledge and / or teachings herein.
[0090] The chemistry depicted in Scheme 1 was reported by PEMorris and C. Chiao (see above). Deuterated compounds of various aspects of the present invention or deuterated compounds used according to various aspects of the present invention, or undeuterated compounds related to the present invention that may be useful in embodiments of the third to sixth aspects of the present invention as described herein, can also be synthesized according to the chemistry depicted in Scheme 2 or variations thereof. [ka] Scheme 2. Additional synthetic routes for the preparation of an example (n=0) of the compound of formula (I): (Stage 1) (1) CH2Cl2HOBt / EDC [typically (i) HOBt in CH2Cl2, EDC, HCl], (2) 2M N(H)R in THF2 R 3 ; (Stage 2) Quenching with THF, LiAlH4 and / or LiAlD4, typically Rochelle salt; (Stage 3) EtOH, fumaric acid (recrystallization from fumaric acid and ethanol)
[0091] Similar to Scheme 1, Scheme 2 shows the synthesis of the compound of formula (I) for n=0. Carrying out the chemistry described in this scheme and its variations (explicitly described later with respect to the seventh aspect of the present invention) is within the ordinary capabilities of those skilled in the art.
[0092] The formation of the fumarate, as depicted in Stage 3 of Scheme 2, can be modified to obtain other pharmaceutically acceptable salts, and it is understood that this salt formation step can also be performed for the final product depicted in Scheme 1.
[0093] In the synthesized compound y The relative amounts of protium-to-deuterium as H can be controlled by changing the ratio of lithium aluminum hydride (lithium aluminum hydride) and lithium aluminum deuteride (lithium aluminum deuteride) as reducing agents (see, for example, WO2020 / 245133A1 [Small Pharma Ltd] cited above). The proportions of protium and deuterium at these positions can be further varied as desired, for example, by adding one or more prothio compounds or deuterium compounds to the compositions described herein in order to provide compositions according to the present invention in a controllable manner.
[0094] From Scheme 1, step (ii) and from Scheme 2, stage 1 are applied to the amine moiety (-NR) of the compound. 2 R 3 It is understood that this will be useful in the introduction of C( xIt is understood that the synthesis of compounds of formula (I) containing at least one H)3 moiety can be achieved by the use of suitable commercially available deuterated monomethylamines and dimethylamines. In particular, the use of commercially available d7-dimethylamine (i.e., DN(CD3)2), d6-dimethylamine (i.e., di(triduteromethyl)amine) and d3-methylamine (i.e., triduteromethylamine) can be used to synthesize compounds of formula (I), and, according to the seventh aspect of the present invention, compounds of formula (I') (wherein -NR) 2 R 3 This enables access to -N(CD3)2 and -N(H)CD3.
[0095] The identification of the compositions obtained from the reduction steps of schemes 1 and 2 can, if desired, be achieved by separating the components of the mixture by chromatography in combination with spectroscopic analysis and / or mass spectrometry, using conventional means readily available to those skilled in the art.
[0096] The alternative composition is obtained by mixing an undeuterated compound obtained by Scheme 1 or Scheme 2 when the reducing agent is exclusively lithium aluminum hydride with an α,α-diduterro compound obtained by Scheme 1 or Scheme 2 when the reducing agent is exclusively lithium aluminum deuteride. When it is mentioned that the reducing agent is exclusively lithium aluminum hydride or lithium aluminum deuteride, this is an ideal case and, as mentioned above, it is understood that the final result will ultimately depend on the purity of the reagent.
[0097] The compositions described above can be further modified by adding one or more α-monodutero compounds. Stocks of such compounds can be obtained, for example, from the chromatographic separation described above.
[0098] Scheme 3 shows a chemistry based on known chemistry in the art for synthesizing DMT, which can be developed / modified to synthesize the compound of formula (I), where the substituent R 1is hydrogen (i.e., n = 0) or a substituent R as defined herein 1 is shown, where R 2 and R 3 are as defined herein. Typically, the number of R 1 groups is one or less, but multiple R 1 moieties are not excluded.
[0099]
Chemical Structure
[0101] Tryptamine is generally synthesized using the method described in Alexander Shulgin's pioneering publication, "TiHKAL: The Continuation" (Berkeley, CA, Transform Press, 1997). This discloses several alternative methods for synthesizing DMT; a widely adopted three-step route starting from indole using (1) oxalyl chloride, (2) dimethylamine, and (3) lithium aluminum hydride (see the top synthetic route depicted in Scheme 3), and similar routes are used to scale up psilocybin under GMP control (see, e.g., WO 2019 / 073379 A1). Oxalyl chloride is highly toxic and corrosive. It causes severe irritation to the eyes, skin, and respiratory tract and reacts violently with water, making it difficult to handle on a large scale.
[0102] The synthesis of DMT from auxin (a plant hormone and natural product, the compound first depicted in both Scheme 1 and 2) has been reported by PEMorris and C. Chiao (see the bottom synthetic route depicted in Scheme 1 and Scheme 3 (refer again to steps (vi), (vii), and then (iii))). While it is possible to use the oxalyl chloride route to produce the compound of formula (I), a favorable feature of the present invention is to avoid this and provide a high-purity compound of formula (I) without sacrificing yield. This is the chemistry depicted in Scheme 2, to which the seventh aspect of the present invention relates, and this can be achieved, for example, by modifying the chemistry described in Scheme 2 by using a protecting group also described herein, R 1 -Containing starting materials (or R 1' - Using the starting materials (containing), R of formula (I) 1 - May be modified to provide the contained compounds.
[0103] In particular, according to a seventh aspect of the present invention, a method is provided for synthesizing a compound of formula (I') or a pharmaceutically acceptable salt thereof: [Chemical] This method involves reacting a compound of formula (II) or a pharmaceutically acceptable salt thereof with LiAlH4 and / or LiAlD4, [Chemical] wherein, R 1' is independently selected from -R 4 , -OPR, -OR 4 , -F, -Cl, -Br, and -I; PR is a protecting group; n is selected from 0, 1, 2, 3, or 4; R 2 is C( x H)3; R 3 is C( x H)3 or H; each R 4 is independently selected from C1-C4 alkyl; and each x H and y H is independently protium or deuterium where the ratio of deuterium:protium in the C( x H)3 moiety in the compound of formula (I') is greater than the ratio found naturally in hydrogen.
[0104] The reduction of the amide carbonyl group in the compound of formula (II) corresponds to stage 2 of Scheme 2, and it is understood that in the compounds of formula (I') and (II), any substituent(s) R 1' may be present.
[0105] In the compounds of formula (I') and (II), PR is a protecting group. In other words, R 1'When the group represents OPR, it indicates a protected hydroxyl group. Those skilled in the art recognize that it may be advantageous to protect sensitive or reactive groups on the molecules involved during a synthetic sequence. This is achieved by protecting groups, a concept well known to those skilled in the art. Suitable protecting groups and methods of using them can be found, for example, in "Protective Groups in Organic Synthesis" by TW Greene and PGMWutts. th This is stated in "Edition, John Wiley and Sons, 2014".
[0106] If the compound of formula (I') is prepared to have an -OPR group, this may be removed after reduction of the compound of formula (II) as described in Aspect VII of the present invention, using deprotection methods well known in the art, which is typically done (see TWGreene and PGMWutts above). The hydroxyl group thereby exposed is optionally -OR 4 ,-O(CO)R 4 or it may be converted to a single hydrogen phosphate moiety (as defined herein). Such reactions represent specific embodiments of the seventh aspect of the present invention.
[0107] According to such embodiments, the method of the seventh aspect of the present invention removes the protecting group if the compound of formula (I') contains an -OPR group, and optionally (but typically) the resulting -OH group, -OR 4 ,-O(CO)R 4 or further comprising converting to a monohydrogen phosphate moiety.
[0108] For example, to synthesize a compound of formula (I) having a hydroxyl, monohydrogen phosphate, or acetyl substituent, an appropriate R 2 and R 3The benzyloxy 2-(3-indolyl)-oxoacetamide having the group may be reduced with lithium aluminum hydride and lithium aluminum deuteride in desired ratios to produce benzyloxy-N,N-dimethyltryptamine (optionally substituted with one or two deuterium atoms at the α-position). The benzyl protecting group can then be removed, for example, by hydrogenation with palladium supported on hydrogen and carbon to form the corresponding hydroxytryptamine (optionally substituted with deuterium at the α-position). The hydroxyl group can be removed by reaction with tetra-O-benzyl pyrophosphate (then removing the benzyl protecting group), or by acetic anhydride (or by removing the -OH group with -O(CO)R 4 It may be converted to monohydrogen phosphate or acetyl by reaction with other acid anhydrides, acyl halides, or other methods. For further details of this synthetic strategy, see "DE Nichols and S. Frescas, Synthesis, 1999, 6, 935-938".
[0109] According to a particular embodiment of the seventh aspect of the present invention, R in formulas (I') and (II) 1' It is not OPR, that is, independently, -R 4 , -OR 4 A compound of formula (I') is selected from -F, -Cl, -Br, and -I, and according to such embodiments, the compounds of formula (I') represent a subset of the compounds of formula (I) as defined according to the first aspect of the present invention. According to more specific embodiments of the methods of the seventh aspect of the present invention, including the embodiments described below, R 1' Either there are no substituents (i.e., n=0), or R 1' The following embodiments include those in which is 5-OMe (i.e., n=1).
[0110] In Scheme 2, Stage 1 includes reacting the described carboxylic acid reactant with two or more coupling agents to produce an activated compound, and reacting this activated compound with an amine to produce the described amide. Stage 2 includes reacting the amide with LiAlH4 and / or LiAlD4, which corresponds to the method of Aspect VII of the present invention. Stage 3 represents optional salt formation. If desired / appropriate, deprotection (removal) and conversion (as described immediately above) of protecting groups are typically performed after Stage 2 and before Stage 3.
[0111] Preferably, the method of the seventh aspect of the present invention avoids the use of problematic oxalyl chloride and uses a starting material that can be derived from auxin (indole-3-acetic acid). High-quality and pure auxin (a derivative of the carboxylic acid starting material depicted in Scheme 2 (one or more substituents R) 1(') (including)) are commercially available on a large scale and / or can be easily synthesized via Fischer synthesis, Bartoli synthesis, Japp-Klingemann synthesis or Larock synthesis (for example, "MB Smith and J. March, 2020, March's Advanced Organic Chemistry, 8 th (See "Edition, Wiley, New Jersey")
[0112] The method of Scheme 2, which represents an exemplary specific embodiment of the seventh aspect of the present invention, is efficient, scalable, conforms to current Good Manufacturing Practices (cGMP), and is suitable for the production of high-purity compounds of formula (I). For example, the method is suitable for the production of compounds of formula (I) on a batch scale ranging from 1 g to 100 kg and is suitable for the production of compounds of formula (I) having a purity of >99.9% and an overall yield of 50% or more.
[0113] From the above discussion, it is understood that, according to certain embodiments, the method of the seventh aspect of the present invention may further include producing the compound of formula (II) as follows: (i) React the compound of formula (III) with two or more coupling agents to produce an activated compound; [ka] (In the formula, R 1' And n are as defined for equation (I'), and (ii) The activating compound is given by formula R 2 R 3 NH or R 2 R 3 React with an amine containing ND (n, R 1' , R 2 and R 3 The definitions correspond to those in the compound of formula (II).
[0114] The starting material depicted in Scheme 2 is understood to be an example of the compound of equation (III) for n=0.
[0115] Here, n is typically 0 or 1, and is often (but not always) 0. Examples of preferred starting materials for formula (III) when n is 1 include, for example, 4- and 5-hydroxyindoleacetic acid and 4- and 5-methoxyindoleacetic acid.
[0116] To avoid misunderstanding, where reagents are expressed in this specification in terms of equivalents, this refers to the molar equivalents of the reaction compounds for the reagents in stages 1-3 of Scheme 2.
[0117] The term "coupling agent" refers to an agent that facilitates a chemical reaction between an amine and a carboxylic acid. In some embodiments, two or more coupling agents include a carboxylic acid activator, which is an agent that reacts with the carboxylic acid moiety in Stage 1 (i.e., in the compound of formula (III)) to produce a compound containing an activated moiety derived from the original carboxylic acid moiety that is more readily reactive with the amine than the original carboxylic acid moiety.
[0118] An additive coupling agent (also referred to herein as "additive") is an agent that enhances the reactivity of a coupling agent. In some embodiments, the additive is a compound that reacts with the reaction product of the starting carboxylic acid and the coupling agent (this product is a compound containing an activated moiety) to produce a compound containing an even more activated moiety that is more readily reactive with the amine than the original activated moiety.
[0119] Unless the context suggests otherwise, "amine" refers to a secondary amine.
[0120] High-performance liquid chromatography (HPLC) is an analytical chemistry technique used to separate, identify, and quantify individual components in a mixture. For a review of HPLC, see AM Sabir et al., Int. Res. J. Pharm., 2013, 4, 4, 39-46.
[0121] Solvents referred to herein include MeCN (acetonitrile), DCM (dichloromethane), acetone, IPA (isopropyl alcohol), iPrOAc (isopropyl acetate), TBME (t-butyl methyl ether), THF (tetrahydrofuran), 2-MeTHF (2-methyltetrahydrofuran), siRNA (ethyl acetate), ethanol, and toluene. In this specification, the term ether solvent means a solvent containing an alkyl-O-alkyl moiety, where the two alkyl components may be linked. Ether solvents include diethyl ether, TBME, THF, and 2-MeTHF.
[0122] A desiccant is a chemical substance used to remove moisture from organic compounds in a solution. Examples of desiccants include calcium chloride, magnesium sulfate, and sodium sulfate. The desiccant described herein is typically magnesium sulfate.
[0123] Suitable acidic reagents for crystallizing pharmaceutically acceptable salts of compounds of formula (I) (or (I')) are acids that form non-toxic acid anions. Examples include hydrochlorides, hydrobromids, sulfates, phosphates or acid phosphates, acetates, maleates, fumarates, lactates, tartarates, citrates, and glucons.
[0124] A basic aqueous solution refers to a mild base suitable for workup, such as a 10% potassium carbonate solution.
[0125] As described above, Scheme 2 provides a favorable method for synthesizing compounds of formula (I) (or (I')), or pharmaceutically acceptable salts thereof, including Stage 1 and Stage 2. Stage 1 is, (i) Reacting a starting carboxylic acid (auxin or its derivative) with two or more coupling agents to produce an activated compound; and (ii) The activating compound is given by formula (R 2 )(R 3 Reacting with an amine containing NH to produce the compound of formula (II). Includes.
[0126] The activated compound is a reaction product of an auxin starting material and two or more coupling agents. If the two or more coupling agents include carboxylic acid activators, the activated compound includes an activated moiety derived from the original carboxylic acid moiety that is more readily reactive with amines than the original carboxylic acid moiety.
[0127] In some embodiments, the coupling agents include two or more carboxylic acid activators. In some embodiments, the coupling agents include two or more additive coupling agents (additives). In some embodiments, the additives can react with the reaction product of the starting carboxylic acid and the coupling agent (this product is a compound containing an activated moiety) to produce an activated compound containing a further activated moiety that is more readily reactive with amines than the original activated moiety.
[0128] In many cases, two or more coupling agents include a carboxylic acid activator and an additional coupling agent.
[0129] In some embodiments, at least one of the two or more coupling agents is selected from the group consisting of carbodiimide coupling agents, phosphonium coupling agents, and 3-(diethoxy-phosphoryloxy)-1,2,3-benzo[d]triazine-4(3H)-one (DEPBT), for example, a carbodiimide coupling agent or a phosphonium coupling agent. In some embodiments, at least one of the two or more coupling agents is a carbodiimide coupling agent.
[0130] Carbodiimide coupling agents are coupling agents containing a carbodiimide group R'-N=C=NR'', where R' and R'' are hydrocarbyl groups optionally substituted with a heteroatom (typically nitrogen) selected from nitrogen, sulfur, and oxygen. Often, R' and R'' are independently selected from C1-C6 alkyl, C5-C6 cycloalkyl, C1-C6 alkylamino, and morpholino C1-C6 alkyl. Often, C1-C6 alkyl is C3 alkyl, C5-C6 cycloalkyl is cyclohexyl, C1-C6 alkylamino is dimethylaminopropyl, and / or morpholino C1-C6 alkyl is morpholinoethyl.
[0131] In some embodiments, the carbodiimide coupling agent is dicyclohexylcarbodiimide (DCC), diisopropylcarbodiimide (DIC), (N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide (EDC), and 1-cyclohexyl-(2-morpholinoethyl)carbodiimide The carbodiimide coupling agent is any selected from the group consisting of meth-p-toluenesulfonate (CMCT). In some embodiments, the carbodiimide coupling agent is any selected from the group consisting of dicyclohexylcarbodiimide (DCC), diisopropylcarbodiimide (DIC), and (N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide (EDC). Often, the carbodiimide coupling agent is N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide (EDC), typically in the form of its hydrochloride salt (EDC.HCl). EDC or EDC.HCl is particularly preferred because it is non-toxic, highly water-soluble, and therefore easily removed substantially completely in the Stage 1 work-up and washing steps.
[0132] Phosphonium coupling agents comprise a phosphonium cation and a counterion, typically a hexafluorophosphate anion. In some embodiments, the phosphonium cation is of formula [PR a 3R b ] + And in the formula, R a R is a di(C1-C6)alkylamino or pyrrolidinyl, b is a halo or a hydrocarbyl group optionally substituted with nitrogen and / or oxygen atoms. Often, R b These are bromo, benzotriazole-1-yloxy, or 7-aza-benzotriazole-1-yloxy.
[0133] In some embodiments, the phosphonium coupling agent is any one selected from the group consisting of benzotriazole-1-yloxy-tris(dimethylamino)-phosphonium hexafluorophosphate (BOP), bromo-tripyrrolidino-phosphonium hexafluorophosphate (PyBrOP), benzotriazole-1-yloxy-tripyrrolidino-phosphonium hexafluorophosphate (PyBOP), 7-aza-benzotriazole-1-yloxy-tripyrrolidinophosphonium hexafluorophosphate (PyAOP), and ethylcyano(hydroxyimino)acetato-O2)tri-(1-pyrrolidinyl)-phosphonium hexafluorophosphate (PyOxim).
[0134] In some embodiments, at least one of two or more coupling agents is 1-hydroxybenzotriazole (HOBt), hydroxy-3,4-dihydro-4-oxo-1,2,3-benzotriazine (HOOBt), N-hydroxysuccinimide (HOSu), 1-hydroxy-7-azabenzotriazole (HOAt), or ethyl 2-cyano-2-(hydroxyimino)acetate (Oxyma The additive coupling agent is selected from the group consisting of Pure, 4-(N,N-dimethylamino)pyridine (DMAP), N-hydroxy-5-norbornene-2,3-dicarboximide (HONB), 6-chloro-1-hydroxybenzotriazole (6-Cl-HOBt), 3-hydroxy-4-oxo-3,4-dihydro-1,2,3-benzotriazine (HODhbt), 3-hydroxy-4-oxo-3,4-dihydro-5-azabenzo-1,2,3-triazene (HODhat), and 3-hydroxyl-4-oxo-3,4-dihydro-5-azepinebenzo-1,3-diazine (HODhad).
[0135] In some embodiments, at least one of the two or more coupling agents is an additive coupling agent selected from the group consisting of 1-hydroxybenzotriazole (HOBt), hydroxy-3,4-dihydro-4-oxo-1,2,3-benzotriazine (HOOBt), N-hydroxysuccinimide (HOSu), 1-hydroxy-7-azabenzotriazole (HOAt), ethyl 2-cyano-2-(hydroxyimino)acetate (Oxyma Pure), and 4-(N,N-dimethylamino)pyridine (DMAP).
[0136] In some embodiments, at least one of the two or more coupling agents is an additive coupling agent that is 1-hydroxybenzotriazole.
[0137] In some embodiments, the two or more coupling agents consist of a coupling agent and an additive coupling agent, and the coupling agent and the additive coupling agent may be those described in the embodiments above.
[0138] The advantage of using both coupling agents and additive coupling agents is that the starting materials and formula (R 2 )(R 3 The rate at which the Stage 1 product is formed from amines containing NH is improved. Furthermore, when the added coupling agent is used in combination with the carbodiimide coupling agent, the likelihood of undesirable side reactions may be reduced. For example, the reaction of the starting carboxylic acid with the carbodiimide coupling reagent readily forms O-acylisourea. This can undergo rearrangement to form N-acylurea (a stable compound that does not readily react with amines). The added coupling reagent may react with the O-acylurea before rearranging to N-acylurea, producing a compound that reacts with the amine rather than the inert N-acylurea.
[0139] Therefore, in some embodiments, the two or more coupling agents consist of a carbodiimide coupling agent and an additive coupling agent.
[0140] In certain embodiments, the two or more coupling agents consist of N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide (EDC), typically its hydrochloride salt (EDC.HCl), and 1-hydroxybenzotriazole (HOBt).
[0141] Often, an excess of the coupling agent is used relative to the starting carboxylic acid. In some embodiments, the ratio of coupling agent:starting carboxylic acid is from about 1:1 to about 3:1, typically from about 1:1 to about 2:1, and most typically from about 1:1 to about 1.5:1.
[0142] Often, an excess of the added coupling agent is used relative to the starting carboxylic acid. In some embodiments, the ratio of added coupling agent:starting carboxylic acid is from about 1:1 to about 3:1, typically from about 1:1 to about 2:1, and most typically from about 1:l to about 1.5:1.
[0143] In some embodiments, when two or more coupling agents include a coupling agent and an added coupling agent, a ratio of coupling agent:starting carboxylic acid and added coupling agent:starting carboxylic acid of from about 1:1 to about 1.5:1 is used.
[0144] As described above, stage 1 of Scheme 2 involves reacting an activated compound (the reaction product of a starting carboxylic acid, such as a carboxylic acid of formula (III), and two or more coupling agents) with an amine having (R 2 )(R 3 )NH to produce the stage 1 product.
[0145] The ratio of amine:starting carboxylic acid employed in the method is often about ≧1:1. In some embodiments, the ratio of amine:starting carboxylic acid is from about 1:1 to about 3:1, typically from about 1:1 to about 2:1.
[0146] In some embodiments, Stage 1 further includes isolating the obtained compound (the amide of formula (II)). Those skilled in the art recognize the techniques in the art suitable for isolating such compounds. For example, such an amide can be extracted into an organic solvent such as dichloromethane or ethyl acetate, washed with an aqueous solution such as a basic aqueous solution, and concentrated. To increase the purity, the isolated amide may be recrystallized. Those skilled in the art recognize the techniques suitable for doing this. For example, the amide is dissolved in a minimum amount of solvent at a specific temperature (e.g., ambient temperature (e.g., about 15 to about 25 °C) or a temperature raised by heating the solution), and the resulting solution is cooled to facilitate precipitation. Alternatively, or additionally, the volume of the solution may be reduced to facilitate precipitation (e.g., by simple evaporation at ambient temperature and ambient pressure). Alternatively, or additionally, an anti-solvent (poor solvent: a solvent in which the amide is less soluble than the solvent already present) may be used.
[0147] The isolated amides are stable and can be stored as solids in air at ambient temperature (e.g., about 15 to about 25 °C). They may be stored under inert conditions, e.g., under nitrogen or argon, or at a reduced temperature, e.g., in a refrigerator or freezer, but this is not necessary.
[0148] Typically, steps (1) and (2) of Stage 1 of Scheme 2 (e.g., but not necessarily, (1) CH2Cl2 / HOBt / EDC and (2) 2M N(H)R in THF 2 R 3 (the exemplary conditions described in the legend of Scheme 2 above) are carried out in a suitable solvent. Those skilled in the art can evaluate which solvent is suitable for these steps. Examples of suitable solvents include dichloromethane (DCM), acetone, isopropyl alcohol (IPA), isopropyl acetate (iPrOAc), tert-butyl methyl ether (TBME), 2-methyltetrahydrofuran (2-MeTHF), and ethyl acetate (EtOAc). In some embodiments, steps (1) and (2) of Stage 1 are carried out in dichloromethane.
[0149] Steps (1) and (2) of Stage 1 are carried out at appropriate temperatures, and those skilled in the art can assess which temperatures are suitable for these steps. In many cases, steps (1) and (2) of Stage 1 are carried out at temperatures of about 10°C to about 30°C. In some embodiments, steps (1) and (2) of Stage 1 are carried out at room temperature (e.g., about 20°C to about 30°C (typically about 20°C)).
[0150] In a particular embodiment, Stage 1 of the method depicted in Scheme 2, and therefore a particular embodiment of the seventh aspect of the present invention (involving the reaction of a compound of formula (III)), includes the following steps: (1) A step of producing a first composition by contacting a starting carboxylic acid of formula (III) with 1 to 1.5 equivalents of an additive coupling agent and 1 to 1.5 equivalents of a carbodiimide coupling agent; and (2) The first composition is given by formula R 2 R 3 NH or R 2 R 3 A step of producing a second composition by contacting it with 1 to 2 equivalents of an amine having ND.
[0151] In some embodiments, 1 g or more of the starting compound (carboxylic acid), for example, 1 g to 100 kg or 1 g to 1 kg, is used in the method of the present invention.
[0152] In some embodiments, the contacts of steps (1) and (2) are carried out in the presence of a first solvent, for example, in the presence of 5 to 20 volumes of the first solvent. The first solvent can be selected from any of dichloromethane (DCM), acetone, isopropyl alcohol (IPA), isopropyl acetate (iPrOAc), tert-butyl methyl ether (TBME), 2-methyltetrahydrofuran (2-MeTHF), and ethyl acetate (SiO). Typically, the first solvent is DCM.
[0153] In some embodiments, step (1) further includes stirring or agitating the first composition. The first composition may be stirred or agitated for at least 30 minutes, for example 30 minutes to 3 hours or 30 minutes to 2 hours, preferably at least 1 hour, for example 1 hour to 3 hours or 1 hour to 2 hours. The first composition may be maintained at a temperature of 10°C to 30°C.
[0154] In some embodiments, the amine in step (2) is dissolved in a solvent such as tetrahydrofuran (THF) or ether before contact. The amine may be present in the solvent at a concentration of about 2 M. Typically, the amine in step (2) is dissolved in THF.
[0155] In some embodiments, step (2) further includes stirring or agitating the second composition. The second composition may be stirred or agitated for at least 30 minutes, for example 30 minutes to 3 hours or 30 minutes to 2 hours, preferably at least 1 hour, for example 1 hour to 3 hours or 1 hour to 2 hours. The second composition may be maintained at a temperature of 10°C to 30°C.
[0156] In some embodiments, step (2) further comprises contacting the second composition with a basic aqueous solution to produce a third composition, for example, by contacting the second composition with 2 to 10 volumes of a basic aqueous solution, such as an aqueous solution containing potassium carbonate.
[0157] In some embodiments, step (2) further includes stirring or agitating the third composition. The third composition may be stirred or agitated for at least 1 minute, for example 1 to 15 minutes or 1 to 10 minutes, preferably at least 5 minutes, for example 5 to 15 minutes or 5 to 10 minutes. The third composition may be maintained at a temperature of 10°C to 30°C.
[0158] In some embodiments, if the third composition contains an organic component and an aqueous component, step (2) further includes separating the organic component from the aqueous component. In some embodiments, the organic component is separated from the aqueous component within 8 hours of contact in step (1).
[0159] In a more specific embodiment, Stage 1 of the method of the seventh aspect of the present invention includes the following steps: i. Add 1 g or more of the starting carboxylic acid of formula (III) and 1 to 1.5 equivalents of an additive coupling agent to the first container. ii. Add 5 to 20 volumes of a first solvent selected from DCM, acetone, IPA, iPrOAc, TBME, 2-MeTHF, and siRNA to the first container. iii. Add 1 to 1.5 equivalents of carbodiimide coupling agent to the first container. iv. Stirring the contents of the first container at 10°C to 30°C for at least 30 minutes, preferably at least 1 hour (e.g., 1 to 2 hours). v. Formula R 2 R 3 NH or R 2 R 3 The first step involves adding 1 to 2 equivalents of an amine containing ND to a first container, where the amine is preferably dissolved in an ether solvent. vi. Further stirring of the contents of the first container at 10°C to 30°C for at least 30 minutes, preferably at least 1 hour (e.g., 1 to 2 hours), vii. Add 2 to 10 volumes of a basic aqueous solution to the first container. viii. Further stirring of the contents of the first container at 10°C to 30°C for at least 1 minute, preferably at least 5 minutes (e.g., 5 to 10 minutes), ix. A step of separating the immiscible organic fraction from the aqueous fraction, where the organic fraction contains the amide product from Stage 1, and x. Step of removing the organic fraction containing the amide product, Here, steps i. to x. are carried out within a single 8-hour period.
[0160] In some embodiments, the first solvent is DCM.
[0161] In some embodiments, the amine is dimethylamine. In some embodiments, the amine is dissolved in THF (e.g., at a concentration of 2 M).
[0162] In some embodiments, the basic aqueous solution contains potassium carbonate.
[0163] In a more specific embodiment, stage 1 of the method of Scheme 2 further comprises the following steps: xi. drying the organic fraction with a desiccant (e.g., the desiccant is selected from calcium chloride, magnesium sulfate, sodium sulfate), xii. filtering the organic fraction, xiii. concentrating the organic fraction (e.g., under vacuum such as under a pressure of less than 1 atmosphere), xiv. adding the concentrated organic fraction to a second container, xv. adding 2 - 10 volumes of a second solvent to the second container, where the second solvent is selected from IPA, EtOAc, IPrOAc, acetonitrile (MeCN), TBME, THF, 2 - MeTHF, and toluene, xvi. stirring the contents of the second container at a temperature of 45°C to 55°C for at least 1 hour, preferably at least 2 hours (such as 2 - 3 hours), xvii. cooling the contents of the second container to a temperature of 十五℃ to 25°C, xviii. filtering the contents of the second container to obtain a filtrate, where the filtrate contains the amide product of stage 1, and xix. drying the filtrate.
[0164] In some embodiments, the drying agent in step xi. is magnesium sulfate. In some embodiments, the solvent in step xv. is selected from TBME and IPA.
[0165] Stage 2 of the method of Scheme 2 includes reacting the amide product from Stage 1 (compound of formula (II)) with LiAlH4 and / or LiAlD4 to produce the compound of formula (I'). Optionally, as described above, it may be desirable to convert a specific compound of formula (I) to a compound of formula (I) as described herein.
[0166] As described above, LiAlH4, LiAlD4, or a mixture of these two may be reacted with an amide. In a preferred embodiment, stage 2 of the method comprises reacting the amide with a mixture of LiAlH4 and LiAlD4. Such a mixture contains LiAlD4 and may contain 0.1 to 99.9% hydride. A mixture of 2% to 98% lithium aluminum hydride or 2% to 98% lithium aluminum deuteride may be used. Sometimes, the mixture of LiAlH4 and LiAlD4 consists essentially of 98% LiAlD4 / 2% LiAlH4. Sometimes, such mixtures are essentially 95%LiAlD4 / 5%LiAlH4, 95%LiAlD4 / 5%LiAlH4, 85%LiAlD4 / 15%LiAlH4, 80%LiAlD4 / 20%LiAlH4, 75%LiAlD4 / 25%LiAlH4, 70%LiAlD4 / 30%LiAlH4, 65%LiAlD4 / 35%LiAlH4, 60%LiAlD4 / 40%LiAlH4, 55%LiAlD4 / 45%LiAlH4, 50%LiAlD4 / 50%LiAlH4, 45%LiAlD4 / 55%LiAlH4, 40%LiAlD4 / 60%LiAlH4, 35%LiAlD4 / 65%LiAlH4, 30%LiAlD4 / 70%LiAlH4, It consists of 25%LiAlD4 / 75%LiAlH4, 20%LiAlD4 / 80%LiAlH4, 15%LiAlD4 / 85%LiAlH4, 10%LiAlD4 / 90%LiAlH4, 5%LiAlD4 / 95%LiAlH4, or 2%LiAlD4 / 98%LiAlH4.
[0167] A mixture of LiAlH4 and LiAlD4 essentially consisting of a specific percentage of LiAlH4 and LiAlD4 means that the mixture may contain additional components (components other than LiAlH4 and LiAlD4), but the presence of these additional components does not substantially affect the essential properties of the mixture. In particular, a mixture essentially consisting of LiAlH4 and LiAlD4 does not contain a substantial amount of agent that is detrimental to the reduction of the amide to produce the compound of formula (I') (for example, a substantial amount of agent that reacts with LiAlH4 and LiAlD4, the amide reactant and / or the compound of formula (I') in a manner that inhibits the reduction of the carbonyl portion of the amide of formula (II) to produce the compound of formula (I')).
[0168] The amount of LiAlH4 or LiAlD4 in the mixture depends on the degree of α-deuteration determined for the compound of formula (I') (and formula (I)). For example, one of them y H is protium, and the other is y When a compound of formula (I or I') in which H is deuterium is required, a mixture of 50% LiAlH4 and 50% LiAlD4 may be preferred. Alternatively, when a mixture of compounds of formula (I or I') is required, and about half of the compounds contain two deuterium atoms at the α-position (i.e., y (Both H atoms are deuterium), about half of the compounds contain one deuterium atom and one protium atom at the α position (i.e., one of them y H is deuterium, and the other is y If H is protium, a mixture of 25% LiAlH4 and 75% LiAlD4 may be preferred.
[0169] The amount of LiAlH4 and / or LiAlD4 used for the amide reduced in Stage 2 of Scheme 2 is often ≤ 1:1. To avoid misunderstanding, the ratio of LiAlH4 and / or LiAlD4 to the amide refers to the total amount of LiAlH4 and / or LiAlD4 used for the amide of formula (II). In some embodiments, the ratio of LiAlH4 and / or LiAlD4 to the compound of formula (II) is 0.5:1 to 1:1, for example, 0.8:1 to 1:1. In some embodiments, the ratio of LiAlH4 and / or LiAlD4 to the compound of formula (II) is 0.9:1.
[0170] Typically, Stage 2 of Scheme 2 is carried out in a suitable solvent. Those skilled in the art can assess which solvent is suitable. Examples of suitable solvents include ethers such as THF and diethyl ether. In some embodiments, Stage 2 is carried out in THF.
[0171] In some embodiments, LiAlH4 and / or LiAlD4 are provided as a solution or suspension of LiAlH4 and / or LiAlD4 in a suitable solvent (such as ether, e.g., THF or diethyl ether, typically THF).
[0172] Stage 2 of Scheme 2 is carried out at an appropriate temperature, and those skilled in the art can assess which temperatures are suitable for these steps. In many cases, Stage 2 of Scheme 2 is carried out at a temperature of approximately -5°C to approximately 65°C.
[0173] In some embodiments, Stage 2 of Scheme 2 further includes isolating one or more compounds obtained from the reduction. Those skilled in the art will recognize the art suitable for doing so. For example, the reaction may be quenched (e.g., with an aqueous solution of a tartrate such as Rochelle salt), the product obtained from Stage 3 of Scheme 2 may be extracted to an organic solvent (such as ether, e.g., THF or diethyl ether), washed with an aqueous solution such as a basic aqueous solution, and then concentrated. The compounds isolated from Stage 2 of Scheme 2 may be recrystallized. Those skilled in the art will recognize art suitable for such recrystallization. Examples of recrystallization art described with respect to the recrystallization of compounds obtained from Stage 2 of Scheme 2 may also be applied mutatis mutandis to the recrystallization of salts of these compounds (obtained from Stage 3).
[0174] In some embodiments, the compound obtained from stage 2 of scheme 2 is used in an amount of about 1 g or more, for example, about 1 g to about 100 kg or about 1 g to about 1 kg.
[0175] In a particular embodiment, Stage 2 of Scheme 2 includes contacting the compound obtained from Stage 1 (i.e., the compound of formula (II)) with about 0.8 equivalents to about 1 equivalent, for example, about 0.9 equivalents of LiAlH4 and / or LiAlD4, to produce a first composition.
[0176] In some embodiments, the contact is carried out in the presence of a solvent (such as an ether, e.g., THF or diethyl ether, typically THF).
[0177] In some embodiments, the contact involves the dropwise addition of LiAlH4 and / or LiAlD4 to an amide, where LiAlH4 and / or LiAlD4 are provided as a solution or suspension of LiAlH4 and / or LiAlD4 in a suitable solvent (such as ether, e.g., THF or diethyl ether). In some embodiments, LiAlH4 and / or LiAlD4 are provided as a 2.4 M or 2 M solution or suspension of LiAlH4 and / or LiAlD4 in THF. In some embodiments, LiAlH4 and / or LiAlD4 are provided as a 2 M solution or suspension of LiAlH4 and / or LiAlD4 in THF.
[0178] In some embodiments, contact is carried out at temperatures ranging from approximately -5°C to approximately 65°C.
[0179] In some embodiments, Stage 2 further includes stirring or agitating the first composition. The first composition may be stirred or agitated for about 1 to about 6 hours, typically about 2 hours. The first composition may be stirred or agitated at a temperature of about 55°C to about 65°C. In some embodiments, the first composition is stirred or agitated at a temperature of about 55°C to about 65°C and then cooled to a temperature of about 10°C to about 30°C.
[0180] In some embodiments, the amide is brought into contact with about 0.9 equivalents of LiAlH4 and / or LiAlD4.
[0181] In a particular embodiment, Stage 2 of Scheme 2 includes the following steps: i. Add 1g or more (1g to 1kg, etc.) of the amide (the amide to be reduced) to the third container. ii. Add 5 to 20 volumes of ether solvent to the third container. iii. Adding 0.8 to 1 equivalent of a solution of LiAlH4 and / or LiAlD4 (in ether solvent) dropwise to a third container at a temperature of -5°C to 65°C over a period of at least 15 minutes (e.g., 15 to 30 minutes). iv. The step of stirring the contents of the third container at 55°C to 65°C for 1 to 6 hours, preferably 2 hours, and v. A step of cooling the contents of the third container to 10°C to 30°C. Here, the contents of the third container include the compound of formula (I').
[0182] In some embodiments, the ether solvent is THF. In some embodiments, 0.9 equivalents of LiAlH4 and / or LiAlD4 are added to the third container in step iii. LiAlH4 and / or LiAlD4 are typically added to the third container as a 2.4 M or 2 M solution in THF. In some embodiments, LiAlH4 and / or LiAlD4 are added to the third container as a 2 M solution in THF.
[0183] In a more specific embodiment, Stage 2 of Scheme 2 includes a workup comprising the following steps: vi. Add 5 to 20 volumes of an aqueous solution of tartrate (such as Rochelle salt) to the fourth container. vii. Adding a composition containing the crude compound of formula (I) to a fourth container at 15°C to 25°C over a period of at least 15 minutes (15 minutes to 1 hour, etc.), preferably at least 30 minutes (30 minutes to 1 hour, etc.), and viii. The contents of the fourth container are stirred at 15°C to 25°C for at least 30 minutes (30 minutes to 1 hour, etc.). To avoid misunderstanding, the composition containing the crude compound of formula (I') refers to the contents of the third container at the completion of step v. of Stage 2 described above.
[0184] In a more specific embodiment, Stage 2 of Scheme 2 further includes the following steps: ix. In the step of separating the organic fraction from the aqueous fraction, the organic fraction contains the compound of formula (I'), x. Step of removing the aqueous fraction from the fourth container. xi. Add 5-20 volumes of brine solution (saltwater) to the fourth container. xii. The contents of the fourth container are stirred at a temperature of 15°C to 25°C for at least 5 minutes (for example, 5 to 15 minutes). xiii. A step of removing the organic fraction containing the compound of formula (I') as a free base, xiv. A step of drying the organic fraction using a desiccant (for example, a desiccant selected from calcium chloride, magnesium sulfate, and sodium sulfate), xv. A step of filtering the organic fraction, and xvi. A step of concentrating the organic fraction, for example, under vacuum (under a pressure of less than 1 atmosphere).
[0185] The isolated compound of formula (I') (produced via Stage 2) is stable and can be stored as a solid in air at ambient temperature, e.g., about 20°C. They may be stored under inert conditions, e.g., under nitrogen or argon, or at a reduced temperature, e.g., in a refrigerator or freezer, but this is not necessary. In some embodiments, the compound of formula (I) is stored in a solvent (e.g., dissolved in ethanol). In some embodiments, the compound of formula (I') is stored in a solvent for 8 hours or more, typically 12 hours or more.
[0186] As described above, the method of Scheme 2 provides a method for synthesizing, or a method comprising synthesizing, a compound of formula (I') or a pharmaceutically acceptable salt thereof. In some embodiments, the present invention provides a method for synthesizing, or a method comprising synthesizing, a pharmaceutically acceptable salt of formula (I'). A pharmaceutically acceptable salt can be formed from a compound of formula (I') by reaction with a suitable acid. Thus, in some optional embodiments, the method of Scheme 2 includes a Stage 3 (as depicted in Scheme 2) in which the compound of formula (I') is reacted with an acidic reagent to produce a pharmaceutically acceptable salt of the compound of formula (I'), and in some embodiments, the acidic reagent is suitable for crystallizing the pharmaceutically acceptable salt of the compound of formula (I'). In embodiments in which the compound of formula (I') includes the formula OPR moiety, it will be understood that the protecting group PR is typically removed before Stage 3 (formation of the pharmaceutically acceptable salt) as described herein, and the resulting hydroxyl group is optionally manipulated.
[0187] Therefore, in some embodiments, the present invention provides a method for synthesizing a compound of formula (I) or (I') or a pharmaceutically acceptable salt thereof, comprising stages 1, 2, and 3, where, Stage 1 includes: (i) A step of reacting a carboxylic acid (e.g., of formula (III)) with two or more coupling agents to produce an activated compound; (ii) The activating compound is given by formula R 2 R 3 NH or R 2 R 3 The steps of reacting with an amine having ND to produce an amide (for example, of formula (II)); and (iii) A step to isolate the amide; Stage 2 includes reacting the amide with LiAlH4 and / or LiAlD4; and, Stage 3 includes the step of reacting a compound (e.g., a compound of formula (I) or (I')) with an acidic reagent suitable for crystallizing a pharmaceutically acceptable salt of a compound of formula (I) or (I').
[0188] In some embodiments, a ratio of ≥1:1 between the acidic reagent and the compound of formula (I) or (I') is used. In many cases, the ratio of the acidic reagent to the compound of formula (I) or (I') is 1:1.
[0189] Typically, Stage 3 of the method is carried out in a suitable solvent. Those skilled in the art can assess which solvent is suitable for Stage 3. Examples of suitable solvents include ethanol, IPA, iPrOAc, and MeCN. In some embodiments, Stage 3 is carried out in ethanol.
[0190] Stage 3 of the method of the present invention is carried out at an appropriate temperature, and those skilled in the art can evaluate which temperature is suitable for these steps.
[0191] In some embodiments, Stage 3 of the method includes contacting a compound of formula (I) (or (I')) with an acidic reagent to produce a first composition. Often, the contact in Stage 3 is carried out at a temperature of 70–100°C, for example, 70–90°C or 70–80°C. In some embodiments, the contact in Stage 3 is carried out at a temperature of about 75°C.
[0192] In some embodiments, Stage 3 further comprises isolating a pharmaceutically acceptable salt of formula (I) or (I'). Those skilled in the art are aware of suitable techniques of the art for isolating such compounds. For example, if the compound is dissolved in a suspension, it can be separated from some of the other components of the suspension by filtration (e.g., thermal filtration). A pharmaceutically acceptable salt of formula (I) or (I') may precipitate from the filtrate. Those skilled in the art know methods for promoting the precipitation of a compound from a solution, e.g., cooling the solution, concentrating the solution, and / or adding the crystalline form of the compound to the solution to promote nucleation of the compound and further crystal growth from the solution (i.e., seeding). A pharmaceutically acceptable salt of formula (I) or (I') may be recrystallized. Those skilled in the art know of suitable techniques for recrystallizing a pharmaceutically acceptable salt of formula (I) or (I'), and the examples of recrystallization techniques described with respect to the recrystallization of the results of Stage 2 are applicable mutatis mutandis to the recrystallization of a pharmaceutically acceptable salt of formula (I) or (I').
[0193] In a more specific embodiment, Stage 3 of the method of the present invention includes the following steps: i. Add at least 1 equivalent of an acidic reagent suitable for crystallizing a pharmaceutically acceptable salt of the compound of formula (I) or (I') to the fifth container. ii. Dissolve the compound of formula (I) or (I') as a free base in 5 to 20 volumes of solvent (such as ethanol, IPA, iPrOAc, and MeCN), and add the solution to the fifth reaction vessel. iii. The step of stirring the contents of the fifth container at a temperature of 72°C or higher (e.g., 72-90°C). iv. Step of filtering the contents of the fifth container v. Add the filtrate to the sixth container and cool the contents to a temperature of 67°C to 73°C. vi. Optionally, seed a sixth container with a pharmaceutically acceptable crystalline form of the compound of formula (I) or (I'). vii. The step of stirring the contents of the sixth container at a temperature of 67°C to 73°C for at least 30 minutes (for example, 30 minutes to 1 hour). viii. A step of cooling the contents of the sixth container to a temperature of -5°C to 5°C at a rate of 2 to 8°C per hour, and ix. A step of filtering the contents of the sixth container to produce a filtration cake containing a pharmaceutically acceptable salt of the compound of formula (I) or (I').
[0194] In some embodiments, the solvent in step ii is ethanol. In some embodiments, the cooling rate in step viii is 5°C per hour.
[0195] In "Handbook of Pharmaceutical Salts: Properties, Selection and Use, Weinheim / Zurich:Wiley-VCH / VHCA, 2002," P.H. Stahl and C.G. Wermuth provide an overview of pharmaceutical salts and the acids they contain. The acids described in this review are suitable acidic reagents for providing pharmaceutically acceptable salts for use in various aspects of the present invention or for use in various aspects of the present invention.
[0196] In some embodiments, the acidic reagent is fumaric acid, tartaric acid, citric acid, hydrochloric acid, acetic acid, lactic acid, gluconic acid, 1-hydroxy-2-naphthoic acid, 2,2-dichloroacetic acid, 2-hydroxyethanesulfonic acid, 2-oxoglutaric acid, 4-acetamidobenzoic acid, 4-aminosalicylic acid, adipic acid, ascorbic acid, aspartic acid, benzenesulfonic acid, benzoic acid, camphoric acid, camphor-10-sulfonic acid, decanoic acid, hexanoic acid, octanoic acid, carbonic acid, cinnamic acid, cyclamic acid, dodecyl sulfate, ethane-1,2-disulfonic acid, ethanesulfonic acid, formic acid, galactaric acid, gentisic acid Any of the following are selected from the group consisting of acid, glucoheptonic acid, glucuronic acid, glutamic acid, glutaric acid, glycerophosphate, glycolic acid, hippuric acid, hydrobromic acid, isobutyric acid, lactobionic acid, lauric acid, maleic acid, malic acid, malonic acid, mandelic acid, methanesulfonic acid, naphthalene-1,5-disulfonic acid, naphthalene-2-sulfonic acid, nicotinic acid, nitric acid, oleic acid, oxalic acid, palmitic acid, pamoic acid, phosphoric acid, propionic acid, pyroglutamic acid (-L), salicylic acid, sebacic acid, stearic acid, succinic acid, sulfuric acid, thiocyanic acid, toluenesulfonic acid, and undecylenic acid.
[0197] In most cases, the acidic reagent is any of the following selected from fumaric acid, tartaric acid, citric acid, and hydrochloric acid. In certain embodiments, the acidic reagent is fumaric acid.
[0198] The amide obtained from Stage 2 is activated by reacting the starting carboxylic acid with two or more coupling agents to produce an activated compound, and the activated compound is given formula R 2 R 3 NH or R 2 R 3 It is produced by reacting it with an amine containing ND. To avoid misunderstanding, the R of the amide obtained from Stage 1 and the R of the compound of formula (I) or (I') obtained from Stage 2 (and Stage 3) are specified. 2 and R 3 The basis is formula R 2R 3 R of NH amine 2 and R 3 It originates from the base.
[0199] The compound of formula (I') is produced by reacting the compound of formula (II) with LiAlH4 and / or LiAlD4. Without wishing to be bound by theory, the hydride ions or deuteride ions provided by LiAlH4 and / or LiAlD4 bond to the carbon atom of the carbonyl group in formula (II), resulting in the formation of the compound of formula (I'). To avoid misunderstanding, the formulas (I) and (I') are used in (I) and (I'). y The H group originates from hydride ions or deuteride ions provided by LiAlH4 and / or LiAlD4.
[0200] In some embodiments, at least one y H is deuterium, meaning that the compound of formula (I') is produced by reacting the compound of formula (II) with LiAlD4, or by reacting it with a mixture of LiAlD4 and LiAlH4.
[0201] A seventh aspect of the present invention relates to a therapeutically useful α-deuterated compound (i.e., a methyl group (R 2 and / or R 3 This method is particularly useful in enabling access to compounds that have more deuterium at the α-position than in nature, in addition to being present in the α-position. Because this method substitutes deuterium at the α-position (rather than the β-position), it uses significantly less LiAlD4 than related synthetic methods known in the art. LiAlD4 is one of the most expensive and difficult reagents to produce in this synthesis. Furthermore, the optimized method of the present invention reduces the required amount of LiAlH4 and / or LiAlD4, for example, from 2 equivalents to 0.9 equivalents, which improves the economic efficiency in the production of the deuterated compounds of formula (I) and / or (I'). Considering this, the compounds of formula (I) and (I') can be produced less expensively by the method of the present invention than other related deuterated compounds (typically deuterated at both the α and β positions).
[0202] As described above, the method of the invention in the seventh aspect is suitable for the production of high-purity compounds of formulas (I) and (I'). In some embodiments, the compound of formula (I) or (I'), or a pharmaceutically acceptable salt thereof, is produced with a purity of 99% to 100% by HPLC, for example, 99.5% to 100% by HPLC. In some embodiments, the compound of formula (I) or (I'), or a pharmaceutically acceptable salt thereof, is produced with a purity of 99.9% to 100% by HPLC, for example, 99.95% to 100% by HPLC.
[0203] The seventh aspect of the present invention and the chemistry described in relation to Scheme 2 detail the chemistry that can be carried out to efficiently synthesize pre-GMP and GMP batches of DMT-based drugs containing the compound of formula (I). In particular, by using the coupling agents HOBt and EDC.HCl, the yield in step 1 can be increased from less than 70% to more than 90%. This allows for efficient scaling up of drug batches under GMP standards (with an overall yield of 65% or more).
[0204] A series of DMT-based drugs (each selectively enriched with deuterium via a GMP-compliant route, some according to formula (I), others nevertheless used in the present invention (e.g., in its third aspect)) were prepared using a modified version of Scheme 2 as follows (labeled with reference to formula (I):
[0205] [Table 1] *Synthesis of (undeuterated) DMT as described in the following experiment section.
[0206] Similarly, a similar series of 5-OMeDMT-based drugs (see Scheme 4), each selectively enriched with deuterium, were prepared using the GMP-compliant chemistry of Scheme 2. Of these, some are used according to formula (I), while others are used nevertheless in the present invention (e.g., in the third aspect). [ka] Scheme 4.5 - GMP compliance route for OMeDMT-based drugs
[0207] The compound is formula (I) (in all compounds listed below, n=1 and R 1 Refer to (=5-OMe) and label again, then list in the table below: [Table 2] *Synthesis of (undeuterated) 5-OMeDMT, as described in the following experiment section.
[0208] In accordance with a third aspect of the present invention, a composition comprising a first compound and a second compound is provided, wherein the first compound is a compound or a pharmaceutically acceptable salt thereof as defined in accordance with the first aspect of the present invention, and the second compound is either (i) or (ii) below: (i) A compound or a pharmaceutically acceptable salt thereof as defined in accordance with the first aspect of the present invention, y Identity of H and / or R 3 Something that is different from the first compound through its identity, or (ii) each x H and y A compound or a pharmaceutically acceptable salt thereof, as defined in accordance with the first aspect of the present invention, except that H represents hydrogen.
[0209] Typically, the second compound is y Identity of H and / or R 3 Identity of; and / or x H and y It differs from the first compound only in that H represents hydrogen.
[0210] For example, the first compound and the second compound are y They may differ through the identity of H, and in multiple embodiments, yThey may differ only through the identity of H. As described in WO 2020 / 245133 A1 (Small Pharma Ltd, published December 10, 2020), there is a quantifiable relationship between the degree of α-deuteration (and the H:D ratio of the input reducing agent in the synthetic method disclosed therefor) and the effect of enhancing the metabolic half-life of DMT. Such technical information can be used to prepare compositions comprising multiple compounds of formula (I) described herein, where the compound or salt is y They are different from each other only by the identity of H.
[0211] This is C( y From the above discussion of the synthetic methodology, it will be understood that the reduction of a precursor amide having a carbonyl group converted to the H)2 moiety can be easily achieved in a controllable manner by using a mixture of lithium aluminum hydride and lithium aluminum deuteride. For example, n=0 and differs only by α-mono- and / or α,α-di-deuteration (i.e., y A mixture of compounds containing compounds of formula (I) (differentiated only by the identity of H) in a controllable proportion, if necessary, the desired R 2 Base and R 3 A 2-(3-indolyl)-acetamide having the group can be prepared by reducing it with lithium aluminum hydride and lithium aluminum deuteride in desired ratios.
[0212] Alternatively, or in addition thereto, the compound (or a pharmaceutically acceptable salt thereof) in the composition of the third aspect of the present invention is R 3 Through the identity of, for example, R 3 Only through the identity of and / or y They may be different from each other only through the identity of H. 2 R 3 If a compound identical to the one in question is present in the composition (in which case this is typically CD3, but does not necessarily have to be CD3); R 3 In any case where there is another compound in which H is present,3 You may change this.
[0213] Dimethylamino compounds of formula (I) (i.e., R) target serotonin receptors in the body. 3 The bond of the compound of formula (I) (where H is not present) is a monomethylamino compound of formula (I) (i.e., R 3 The bond between compounds (where H is present) is expected to exhibit different selectivity and strength. By changing the relative amounts of dimethylamino- and monomethylamino-containing compounds (in at least one of which, the proportion of deuterium in the N-methyl group is greater than its natural isotopic abundance and hydrogen) in the composition of the present invention, it is expected that the pharmacodynamics of the composition, and thus its therapeutic effect, can be regulated. This provides a further element for controlling the metabolism of compounds of formula (I).
[0214] Instead or in addition to ( y H and / or R 3 For compositions comprising different compounds of formula (I) through identity, the compositions of the third aspect of the present invention are each x H and y The compounds defined according to the first aspect of the present invention, except that H represents hydrogen, or pharmaceutically acceptable salts thereof, in other words, analogues of the undeuterium-enriched compounds of formula (I) or pharmaceutically acceptable salts thereof, may be included. As described in detail in WO 2020 / 245133 A1 (Small Pharma Ltd, cited above), mixtures of DMT and its α- and / or β-deuterated analogs are described along with their clinical utility. Similarly, mixtures of the compounds of formula (I) and its deuterated analogs may be used to controllly modify the pharmacokinetic profile of the compounds of formula (I) described herein, thereby enabling more flexible therapeutic application.
[0215] To provide compositions according to a third aspect of the present invention, different compounds are combined in these ways, such as the methyl group of DMT or the methyl group of NMT and their R 1- In addition to increasing the proportion of deuterium atoms in the substituted derivative, this provides an additional variable, namely, that the pharmacodynamics of the undeuterated parent compound corresponding to the compound of formula (I) may be altered.
[0216] In particular, it is expected that the pharmacodynamics of the composition, and thus its therapeutic effect, can be adjusted by changing the relative amounts of the compounds in the composition of the present invention. 3 If the composition contains compounds of formula (I) where is H, for example, higher concentrations of these compounds are considered more susceptible to the effects of administration (because larger amounts of monomethyltryptamine compounds (compared to their dimethyltryptamine counterparts) are generally tolerated in vivo). The relative amounts of different compounds in the composition of the present invention may be determined by a physician, partly based on the metabolic profile of the patient to whom the composition is intended to be administered. For example, R 3 When the amount of the compound of formula (I) where is H is relatively high, it may be more suitable for patients with higher metabolism.
[0217] In some embodiments, the composition of the third aspect of the present invention comprises a compound of formula (I), in each of which one y H is H, and the other is D. In some embodiments, the composition comprises a compound of formula (I), in each of them, y H is H. Sometimes, a composition contains a compound of formula (I), and in each of them, y H is D.
[0218] To avoid misunderstanding, the above embodiments do not preclude the existence of further compounds of formula (I) or their undeuterated analogs.
[0219] In a particular embodiment, the composition of the third aspect of the present invention is y It includes two or three compounds of formula (I) that are distinct from each other, by definition of H, i.e., C( y The present invention provides a group of compounds of formula (I) in which the H)2 portion is CH2, CD2, or CH. In these particular embodiments, NR 2 R 3It is N(CD3)2 or N(CH3)(CD3), and is often N(CD3)2.
[0220] The compositions of the present invention can be quantified, at least partially, by their average molecular weight. As used herein, average molecular weight means the weighted average of the molecular weights of a compound or composition (e.g., a composition comprising two or more compounds of formula (I) that differ only from each other by the degree of deuteration) as measured by a suitable mass spectrometry technique, e.g., LC-MS SIM (selective ion monitoring). In some embodiments, the average molecular weight is a weighted average.
[0221] It will be understood that the average molecular weight can be used to characterize the useful compounds and compositions of the present invention obtained by teaching herein (particularly by adjusting the relative ratio of lithium aluminum hydride to lithium aluminum deuteride in the illustrated reduction). It will be further understood that the greater the degree of deuteration, the higher the average molecular weight of the composition.
[0222] In some embodiments, the composition consists essentially of a compound of formula (I), optionally including its undeuterated analog. This means that the composition does not contain in actual mass any other pharmaceutically active compounds (including other dimethyltryptamine compounds). In other specific embodiments, the composition consists essentially of a compound of formula (I). In other words, and alternatively, the compositions according to these specific embodiments constitute a drug containing a biologically active component consisting essentially of a mixture of compounds of formula (I).
[0223] According to certain embodiments, the compositions of the present invention, and compositions used or for use in accordance with relevant aspects of the present invention, do not contain any substance (e.g., a detectable amount of dimethyltryptamine) (in particular, R 2 and R 3 (If one or both are CD3).
[0224] In some embodiments, the compositions of the present invention have an oxygen content of 2 ppm or less, for example, 0.1 ppm to 2 ppm. Those skilled in the art can determine the oxygen content of a formulation using any technique known to be appropriate in the art, such as using a dissolved oxygen meter (e.g., the Jenway 970 Enterprise Dissolved Oxygen Meter available from Keison Products: http: / / www.keison.co.uk / products / jenway / 970.pdf). Compositions of the present invention having an oxygen content of less than 2 ppm are particularly advantageous for preparing dosage forms for oral or nasal administration, as the reduction in oxygen content improves the formation of decomposition products from malodorous impurities and / or compounds of formula (I).
[0225] The composition can be stored in any suitable container. In some embodiments, to improve the degradation of the composition, the composition of the present invention is stored in a container adapted to prevent the transmission of ultraviolet light, such as an amber glass vial. In other embodiments, the container in which the composition is stored is not adapted in this way (for example, it may be made of clear glass), and protection from ultraviolet light is optionally provided by secondary packaging (for example, a package in which a container containing the formulation can be placed).
[0226] To improve the decomposition of the composition, it is desirable to minimize the total oxygen content in the container in which the composition is stored, so that the oxygen in the container equilibrates with the composition and the headspace (if any) in the container. Therefore, it may be desirable to store the composition in an inert atmosphere (for example, by purging the headspace to reduce its oxygen content from about 20%, which is normally found in air, to, for example, less than 0.5%). Often, the container is airtight, and the composition is stored in an inert atmosphere, for example, under nitrogen or argon, typically under nitrogen. The composition can be stored at room temperature, for example, about 20 to about 30°C (typically about 20°C), or at a lower temperature, for example, about 2 to about 8°C. Alternatively, to further improve the decomposition of the composition, it may be stored at a temperature lower than room temperature, for example, in a refrigerator or freezer.
[0227] As described above, in its fourth aspect, the present invention provides a pharmaceutical composition comprising a compound of formula (I) as defined according to the first aspect of the present invention or according to the second aspect of the present invention, or a composition according to the third aspect of the present invention, in combination with a pharmaceutically acceptable excipient.
[0228] Examples of pharmaceutically acceptable excipients that may be incorporated into the pharmaceutical composition of the present invention include "Gennaro et al., Remmington: The Science and Practice of Pharmacy, 20 th Appropriate pharmaceutically acceptable excipients include, but are not limited to, those listed in "Handbook of Pharmaceutical Excipients, 2000" (part 5: Pharmaceutical Manufacturing). ndThis is also described in "Edition; Editors A. Wade and PJ Weller, American Pharmaceutical Association, Washington, The Pharmaceutical Press, London, 1994". MF Powell, T. Nguyen, and L. Baloian have published a review of excipients suitable for parenteral administration (administration other than by mouth or gastrointestinal tract) in "PDA J. Pharm. Sci. Technol., 52, 238-311 (1998)". Compositions include those suitable for oral, nasal, topical (including buccal, sublingual, and transdermal), parenteral (including subcutaneous, intravenous, and intramuscular) or rectal administration.
[0229] The compositions of the present invention can be prepared in the form of solutions, suspensions, emulsions, or sprays using pharmaceutically appropriate liquids. Aqueous suspensions, isotonic salines, and sterile injection solutions may be used and may contain pharmaceutically acceptable dispersants and / or wetting agents (such as propylene glycol or butylene glycol).
[0230] The present invention also provides a composition of the present invention combined with a suitable packaging material, the packaging material including instructions for use of the composition.
[0231] According to several embodiments, the pharmaceutical compositions of the present invention are suitable for parenteral administration, i.e., administration other than oral or gastrointestinal administration, such as by inhalation or nasal, topical (including buccal, sublingual, and transdermal), subcutaneous, intravenous, or intramuscular administration. In fact, pharmaceutical compositions for intramuscular administration exhibit significantly improved bioavailability, as measured by the area under the curve (see Figures 3A and 3B). Suitable for parenteral administration means that such compositions comply with pharmacopoeia requirements regarding sterility, contaminants, and pyrogens (see, for example, "The United States Pharmacopeial Convention, General Requirements / (1) Injections, page 33"). Sometimes, the pharmaceutical compositions contain microbial growth inhibitors (e.g., antimicrobial preservatives) and / or antioxidants.
[0232] Pharmaceutical compositions suitable for injection typically have a pH of approximately 3 to 9 and an osmotic pressure of approximately 250 to 600 mOsm / Kg. pH values above 9 have been reported by I. Usach et al. to be associated with tissue necrosis (death of cells in tissue) (Adv. Ther., 36, 2986-2996 (2019)), while values below 3 have been reported to cause pain and phlebitis (inflammation of the veins). Osmotic pressure values above 600 mOsm / Kg have also been reported to cause pain.
[0233] As described herein, the compounds and compositions of the present invention also correspond to one of formulas (I), but R 2 or R 3 It is expected that the compound will have higher oral bioavailability than compounds that are not deuterium-enriched at the corresponding methyl group. Therefore, according to certain embodiments, the pharmaceutical composition of the present invention is in the form of an oral dosage form.
[0234] "Oral dosage form" means a specific configuration (e.g., a tablet or capsule) containing a specific dose of a compound or composition, where the configuration is suitable for oral administration. Oral dosage forms may be solid forms such as tablets, capsules, sachets, powders, or granules, or liquid or semi-solid oral dosage forms such as syrups, solutions, ampoules, or dispersions. Typically, oral dosage forms are solid forms, and are often tablets or capsules.
[0235] In further embodiments, the pharmaceutical composition of the present invention is provided in a form suitable for inhalation. The inhalable formulation preferably comprises one or more compounds of formula (I) in free base form.
[0236] To avoid misunderstanding, an inhalable formulation is one that can become airborne through a patient's inhalation and enter their lungs. In other words, inhalable formulations are suitable for intrapulmonary administration. Inhalable formulations can be inhaled in the form of vapor (mist), aerosol, or gas. In most cases, inhalable formulations are inhaled in the form of vapor or aerosol.
[0237] "Free base" means that the amine in the compound of formula (I) or its undeuterated analog (for example, which may be present in the composition of the present invention in addition to the compound of formula (I) as described above) is in an unprotonated form (as opposed to the conjugate acid (protonated) form of the amine). Therefore, salts of the compound of formula (I) or its undeuterated analog are outside the scope of free bases. To avoid misunderstanding, zwitterions containing the protonated form of the amine and a negatively charged substituent bonded to DMT (such as the zwitterionic form of psilocybin) are outside the scope of free bases.
[0238] A pharmaceutical composition suitable for inhalation contains a solvent in which free bases are at least partially dissolved. The solvent is typically a liquid at ambient temperature and pressure (particularly about 20°C and about 1 bar). In more specific embodiments, the solvent can, when heated, form a vapor or aerosol containing free bases, and for example, the solvent is suitable for use in an electronic vaping device (EVD). An EVD typically includes a power supply and a cartridge. The power supply often includes a power source such as a battery, and the cartridge often includes a heater and a reservoir capable of holding the inhalable formulation. The heater is typically in contact with the inhalable formulation (e.g., by a wick) and is typically configured to heat the inhalable formulation to produce a vapor or aerosol.
[0239] In some embodiments, the solvent is volatile (having a boiling point of ≤100°C, e.g., 50–100°C). Such a solvent can be evaporated at a temperature of 30–70°C, e.g., 55°C, under a stream of air from a vaporizer (such as a Volcano Medic Vaporizer). After evaporation of the solvent, a residue of free base remains, which can then be vaporized into vapor or aerosol under a stream of air from a vaporizer at a high temperature (e.g., about 150–250°C, e.g., 210°C) and inhaled.
[0240] In some embodiments, the solvent is one or more of the following selected from the group consisting of propylene glycol (propane-1,2-diol), glycerin, polyethylene glycol, water, propanediol (propane-1,3-diol), butylene glycol (butane-1,3-diol), butane-2,3-diol, butane-1,2-diol, ethanol, and triacetin.
[0241] In some embodiments, the solvent is selected from propylene glycol, glycerin, and polyethylene glycol, or a mixture thereof. Typically, the solvent is a mixture of propylene glycol and glycerin in a weight ratio of about 50:50 (propylene glycol:glycerin) to about 10:90, for example, about 50:50 to about 20:80 or about 50:50 to about 30:70. In some embodiments, the solvent is a mixture of propylene glycol and glycerin in a weight ratio of about 50:50 to about 30:70. In most cases, glycerin is vegetable glycerin, that is, glycerin derived from vegetable oils.
[0242] Pharmaceutical compositions suitable for inhalation or nasal administration often contain a taste-masking agent. The purpose of the taste-masking agent is to make the taste or smell of the formulation more palatable to the patient. In some embodiments, pharmaceutically acceptable excipients include a taste-masking agent. When a pharmaceutically acceptable excipient contains a solvent and a taste-masking agent, the taste-masking agent is typically at least partially soluble in the solvent, and the solvent can often be heated to form a vapor or aerosol containing the free base and the taste-masking agent. Often, the taste-masking agent is suitable for vaporization into a vapor or aerosol under a vaporizer airflow (e.g., at a temperature of about 150-250°C, e.g., 210°C). The taste-masking agent is usually liquid or solid at ambient temperature and pressure. Preferably, the taste-masking agent does not adversely affect the bioavailability of the free base; for example, it is preferable that the free base is stable when stored in the presence of the taste-masking agent.
[0243] In some embodiments, the flavoring agent is one or more selected from the group consisting of flavorings, glucose, fructose, sorbitol, mannitol, honey, saccharin, sucrose, xylitol, erythritol, maltitol, sucralose, neotame, trehalose, and tagatose. In some embodiments, the flavoring is menthol, vanilla, wintergreen, peppermint, maple, apricot, peach, raspberry, walnut, butterscotch, wild cherry, chocolate, anise, citrus (such as orange or lemon), or licorice flavoring.
[0244] Examples of further pharmaceutically acceptable excipients that may be included in compositions suitable for inhalation or other methods include "Gennaro et. al., Remmington: The Science and Practice of Pharmacy, 20 th Appropriate pharmaceutical excipients are those listed in "The Handbook of Pharmaceutical Excipients, 2000" (part 5: Pharmaceutical Manufacturing), but are not limited to these. nd It is also stated that "Edition; Editors A. Wade and PJ Weller, American Pharmaceutical Association, Washington, The Pharmaceutical Press, London, 1994." MF Powell, T. Nguyen, and L. Baloian have published a review of excipients suitable for parenteral administration in "PDA J. Pharm. Sci. Technol., 52, 238-311 (1998)." All soluble excipients described in this review are suitable for use in inhalable formulations.
[0245] As described in detail herein, the present invention is therapeutically useful. In some embodiments, the therapy is psychedelic-assisted psychotherapy, i.e., the therapy relating to the first aspect of the present invention is the treatment of mental disorders by psychological means, which is enhanced by one or more protocols (in which the patient experiences a psychedelic experience induced by the administration of a compound of formula (I)).
[0246] In its fifth aspect, the present invention provides compounds defined by the first aspect, the second aspect, or compositions of the third or fourth aspect for use in a method of treating a patient's mental or neurological disorder.
[0247] In another aspect, the present invention provides the use of compounds defined in the first aspect, the second aspect, or compositions of the third aspect for the manufacture of pharmaceuticals. In some embodiments of this aspect, the pharmaceuticals are for use in methods of treating mental or neurological disorders in patients, including the disorders described immediately thereafter.
[0248] In some embodiments, the mental or neurological disorder is selected from (i) obsessive-compulsive disorder, (ii) depressive disorder, (iii) schizophrenia, (iv) schizotypal disorder, (v) anxiety disorder, (vi) substance abuse, and (vii) anesthesia disorder. Often, the mental or neurological disorder is selected from the group consisting of (i) obsessive-compulsive disorder, (ii) depressive disorder, (iii) anxiety disorder, (iv) substance abuse, and (v) anesthesia disorder.
[0249] In some embodiments, the disorder is selected from the group consisting of major depressive disorder, treatment-resistant major depressive disorder, postpartum depression, obsessive-compulsive disorder, and eating disorders (such as obsessive-compulsive eating disorder).
[0250] In some embodiments, the psychiatric or neurological disorder is major depressive disorder. In some embodiments, the psychiatric or neurological disorder is treatment-resistant depression.
[0251] In some embodiments, the therapy or treatment method includes parenteral administration, such as inhalation or pulmonary administration of the formulation.
[0252] To avoid any doubt, embodiments relating to the fifth aspect of the present invention are applied mutatis mutandis to methods for treating the sixth aspect of the present invention. For example, the method may be for treating a disorder selected from the group consisting of (i) obsessive-compulsive disorder, (ii) depressive disorder, (iii) anxiety disorder, (iv) substance abuse, and (v) anesthesia disorder.
[0253] To treat the disorder, an effective amount of the compound of formula (I) is administered, that is, an amount sufficient to reduce or stop the rate of progression of the disorder, or an amount sufficient to improve or cure the disorder, thereby obtaining the desired therapeutic or inhibitory effect.
[0254] Each and every reference mentioned herein is incorporated herein by reference in its entirety, as if the entire content of each reference were included herein. The present invention can be further understood by referring to the following embodiments.
[0255] [Examples] overview A series of in vitro drug metabolism and pharmacokinetic (DMPK) experiments were conducted in human and animal tissues for N,N-dimethyltryptamine (DMT, SPL026), N,N-hexadeuterio-dimethyltryptamine (D6-DMT, SPL028vii), and α,α-bis-deuterio-N,N-hexadeuterio-dimethyltryptamine (D8-DMT, SPL028viii) to investigate the metabolic profiles and stability of each isotope mixture.
[0256] Deuterium substitution of the methyl group of DMT demonstrates DKIE, which is thought to be due to disruption of metabolic pathways such as demethylation and N-oxidation, or a secondary DKIE mechanism. It is also noteworthy that SPL028vii and SPL028viii do not contain the low-deuterated species D0-D5. This is advantageous in the development and validation of analytical methods for the compounds and compositions of the present invention, as well as in the CMC aspects of pharmaceutical development.
[0257] experiment To investigate DKIE in human and animal tissues as an alternative to in vivo clearance, a series of in vitro experiments (see table below) were performed on the deuterium-enriched DMT compounds SPL028vii and SPL028viii.
[0258] [Table 3] Summary of in vitro DMPK experiments using SPL026 and SPL028 deuterated analogs
[0259] chemistry DMT synthesis (SPL026) Stage 1: Coupling of indole-3-acetic acid and dimethylamine In a 5 L container under N2 conditions, indole-3-acetic acid (257.0 g, 1.467 mol), hydroxybenzotriazole (HOBt, approximately 20% wet) (297.3 g, 1.760 mol), and dichloromethane (DCM) (2313 mL) were added to obtain a milky white suspension. Next, ethylcarbodiimide hydrochloride (EDC.HCl) (337.5 g, 1.760 mol) was added in installments over 5 minutes at 16-22°C. After stirring the reaction mixture at ambient temperature for 2 hours, 2M dimethylamine in tetrahydrofuran (THF) (1100 mL, 2.200 mol) was added dropwise over 20 minutes at 20-30°C. The resulting solution was stirred at ambient temperature for 1 hour, at which point HPLC showed 1.1% indole-3-acetic acid and 98.1% stage 1. Next, 10% K₂CO₃ (1285 ml) was added to the reaction mixture and stirred for 5 minutes. The layers were separated, and the upper aqueous layer was extracted with DCM (643 mL × 2). The organic extracts were combined and washed with saturated brine (643 mL). The organic extracts were then dried over MgSO₄, filtered, and concentrated under vacuum at 45°C. This yielded 303.1 g of crude Stage 1 as an off-white, viscous solid. This crude was then slurryed in methyl-t-butyl ether (TBME) (2570 mL) at 50°C for 2 hours, then cooled to ambient temperature, filtered, and washed with TBME (514 mL × 2). The filtered cake was then vacuum-dried at 50°C to obtain 266.2 g (yield = 90%) of Stage 1 as an off-white solid (purity 98.5% by HPLC and >95% by NMR).
[0260] Stage 2: Preparation of DMT Under N2 conditions, Stage 1 (272.5 g, 1.347 mol) and THF (1363 mL) were added to a 5 L container to obtain an off-white suspension. Next, 2.4 M LiAlH4 (505.3 mL, 1.213 mol) in THF was added dropwise over 35 minutes at 20–56°C to obtain an amber-colored solution. This solution was heated to 60°C for 2 hours, at which point HPLC showed Stage 1 (ND), Stage 2 (92.5%), Impurity 1 (2.6%), and Impurity 2 (1.9%). The complete reaction mixture was cooled to ambient temperature, and then 25% Rochelle salt (aq) (2725 mL) was added dropwise over 30 minutes at 20–30°C. The resulting milky white suspension was stirred at 20–25°C for 1 hour, after which the layers were separated and the upper organic layer was washed with saturated brine (681 mL). Next, the organic layer was dried over MgSO4, filtered, and concentrated under vacuum at 45°C. The resulting crude oily substance was subjected to an azeotropic mixture with ethanol (545 mL x 2). This yielded 234.6 g of Stage 2 (yield = 92%) with a purity of 95.0% by HPLC and >95% by NMR.
[0261] Stage 3a(i)~(iii): Preparation of seed crystals of DMT fumarate (i) Stage 2 (100 mg) was placed in 8 volumes of isopropyl acetate, warmed to 50°C, and then fumaric acid (1 equivalent) was added as an ethanol solution. The flask was then matured at 50°C for 1 hour, cooled to room temperature, and stirred overnight to obtain a white suspension. The solid was isolated by filtration and dried at 50°C for 4 hours to obtain 161 mg of the product (>99% yield). The purity by HPLC was 99.5%, and the purity by NMR was >95%.
[0262] (ii) The isopropyl acetate in method (i) was replaced with isopropyl alcohol, and the mixture was stirred overnight to obtain a white suspension. The solid was isolated by filtration and dried at 50°C for 4 hours to obtain 168 mg of the product (>99% yield). The purity by HPLC was 99.8%, and the purity by NMR was >95%.
[0263] In method (i), isopropyl acetate was replaced with tetrahydrofuran, and the mixture was stirred overnight to obtain a white suspension. The solid was isolated by filtration and dried at 50°C for 4 hours to obtain 161 mg of the product (>99% yield). The purity by HPLC was 99.4%, and the purity by NMR was >95%.
[0264] Analysis by X-ray powder diffraction showed that the products of each method (i) to (iii) were the same, and this was named pattern A.
[0265] Stage 3b: Preparation of DMT fumarate In a 5 L flanged flask under N2, fumaric acid (152.7 g, 1.315 mol) and Stage 2 (248.2 g, 1.315 mol) were added as solutions in ethanol (2928 mL). The mixture was heated to 75°C to obtain a dark brown solution. The solution was filtered by polishing into a preheated (80°C) 5 L jacketed container. The solution was then cooled to 70°C, Pattern A (0.1 wt%) was seeded, the seeds were allowed to mature for 30 minutes, and then cooled to 0°C at a rate of 5°C / hour. After stirring for a further 4 hours at 0°C, the batch was filtered, washed with cold ethanol (496 mL x 2), and then dried overnight at 50°C. This yielded 312.4 g (yield = 78%) of Stage 3 with a purity of 99.9% by HPLC and >95% by NMR. XRPD: Pattern A
[0266] Synthesis of 5-MeO-DMT Stage 1: Coupling of 5-methoxyindole-3-acetic acid and dimethylamine In a 100 mL three-necked flask under N2 conditions, 5-methoxyindole-3-acetic acid (3.978 g, 19.385 mmol), HOBt (approximately 20% wet) (3.927 g, 23.261 mmol), and DCM (40 mL) were added. Next, EDC.HCl (4.459 g, 23.261 mmol) was added gradually over 15 minutes at <30°C. After stirring the reaction mixture at ambient temperature for 1 hour, 2 M dimethylamine (14.54 mL, 29.078 mmol) was added dropwise over 15 minutes at <25°C. After stirring for 1 hour, HPLC showed that no starting material (SM: 5-methoxyindole-3-acetic acid) remained. 10% K2CO3 (20 mL) was then added to the reaction mixture, stirred for 5 minutes, and then separated. The lower aqueous layer was removed and back-extracted with DCM (10 mL x 2). The organic extracts were combined, washed with saturated brine (10 mL), dried over MgSO4, and filtered. The filtrate was concentrated under vacuum at 45°C, and HPLC was performed to obtain 3.898 g of the active product with a purity of 95.7% (yield 87%).
[0267] Stage 2: Preparation of 5-MeO-DMT In a 100 mL three-necked flask under N2, stage 1 methoxy derivative (3.85 g, 16.586 mmol) and THF (19.25 mL) were added. Next, 2.4 M LiAlH4 (6.22 mL, 14.927 mmol) was added dropwise to the THF over 30 minutes at <40°C. The reaction mixture was heated at 60°C for 1 hour, at which point HPLC showed that 0.1% SM (stage 1 methoxy derivative) remained. The reaction mixture was then cooled to ambient temperature and quenched dropwise by adding 25% Rochelle salt (38.5 mL) over 30 minutes at <30°C. The resulting suspension was stirred for 1 hour and then separated. The lower aqueous layer was removed, and the upper organic layer was washed with saturated aqueous solution (9.6 mL). The organic matter was then dried over MgSO4, filtered, concentrated under vacuum, and subjected to azeotropic mixing with EtOH (10 mL × 2). This yielded 3.167 g of the active product with a purity of 91.5% (yield = 88%) by HPLC.
[0268] Stage 3: Preparation of 5-MeO-DMT fumarate In a 50 mL three-necked flask under N2 conditions, fumaric acid (1.675 g, 14.430 mmol) and a 37.8 mL EtOH solution of the stage 2 methoxy derivative (3.15 g, 14.430 mmol) were added. The mixture was then heated to 75°C for 1 hour, but as expected, no solution was obtained. The mixture was further heated and refluxed (78°C), but still no solution was obtained. The suspension was then cooled to 0-5°C, filtered, washed with EtOH (8 mL x 2), and dried overnight at 50°C. This yielded 3.165 g of the substance with a purity of 99.9% (yield = 65%) by HPLC.
[0269] Example 1 d 6 -dimethyltryptamine d 6 - Synthesis of DMT(SPL028vii) Stage 1 [ka]
[0270] EDC.HCl (15.7 g, 81.90 mmol) was added to 3-indoleacetic acid (12.0 g, 68.50 mmol) and HOBt.H2O (1.16 g, 75.75 mmol) in DCM (108 mL) at room temperature. After stirring the reaction mixture for 1 hour, N,N-diisopropylethylamine (DIPEA) (35.6 mL, 205.75 mmol) and d6-dimethylamine.HCl (9.0 g, 102.76 mmol) were added (temperature maintained below 30°C). After stirring the reaction mixture at room temperature for 1 hour, analysis by HPLC showed that the product was 65.6% and 3-indoleacetic acid remained at 28.9%. DIPEA (11.9 mL, 68.78 mmol) was added and the mixture was stirred at room temperature for 1 hour. HPLC showed no change in the conversion. Potassium carbonate aqueous solution (6.0 g in 54 mL of water) was added, and the phases were separated. The aqueous phase was extracted with DCM (2 × 30 mL). The combined organic matter was washed with brine (2 × 30 mL) and citric acid aqueous solution (20 w / w%, 50 mL), dried over MgSO4, and filtered. The filtrate was removed, and the resulting solid was slurryed in TBME (120 mL) and isolated by filtration. Purification by flash column chromatography yielded 8.34 g of the target product (yield 58%). 1 The identity of the product was confirmed by 1H NMR.
[0271] Stage 2 [ka]
[0272] LiAlH4 (1M in THF, 17.3 mL, 17.28 mmol) was added to a suspension of Stage 1 (4.0 g, 19.20 mmol) in THF (10 mL) at <30°C. The resulting reaction mixture was heated to 60-65°C and stirred for 2 hours. HPLC analysis showed complete consumption of Stage 1 and formation of 97.3% of the product. The reaction mixture was cooled to room temperature and quenched at <30°C in an aqueous Rochelle salt solution (10 g in 30 mL of water). After stirring for 1 hour, the phases were separated. The aqueous phase was extracted with THF (20 mL). The combined organic matter was washed with brine (20 mL), dried over MgSO4, filtered, and removed (azeotropic with ethanol, 20 mL) to obtain the desired product as an amber-colored oily substance (3.97 g). 1 Product identity was confirmed by 1H NMR, showing the presence of 8.5% ethanol (without THF) and resulting in an activity yield of 3.63 g (97%).
[0273] Stage 3 [ka]
[0274] Free d6-DMT base (3.6 g active, 18.53 mmol) was dissolved in ethanol (43 mL) at room temperature. Fumaric acid (2.15 g, 18.53 mmol) was added, and the solution was heated to 75°C (the solid crystallized during heating and did not redissolve). The resulting suspension was cooled to 0-5°C and stirred for 1 hour. The solid was isolated by filtration, washed with ethanol (2 × 7 mL), and dried. Further drying in a vacuum oven at 50°C yielded the desired d6-DMT fumarate (4.98 g, 87%).
[0275] Example 2:d 8 -dimethyltryptamine d 8 - Synthesis of DMT (SPL028viii) Stage 1 (coupling of 3-indoleacetic acid and d6-dimethylamine) was carried out according to the process described for Stage 1 of Example 1 above.
[0276] Stage 2 [ka]
[0277] LiAlD4 (1M in THF, 17.3 mL, 17.28 mmol) was added to a suspension of Stage 1 (4.0 g, 19.20 mmol) in THF (10 mL) at <30°C. The resulting reaction mixture was heated to 60-65°C and stirred for 2 hours. HPLC analysis showed complete consumption of Stage 1 and formation of 97.3% of the product. The reaction mixture was cooled to room temperature and quenched at <30°C in an aqueous Rochelle salt solution (10 g in 30 mL of water). After stirring for 1 hour, the phases were separated. The aqueous phase was extracted with THF (20 mL). The combined organic matter was washed with brine (20 mL), dried over MgSO4, filtered, and removed (azeotrope with ethanol, 20 mL) to obtain the desired product as an amber-colored oily substance (4.01 g). 1 Product identity was confirmed by 1H NMR, showing the presence of 8.6% ethanol (without THF) and resulting in an activity yield of 3.66 g (97%).
[0278] Stage 3 [ka]
[0279] Free d8-DMT base (3.6 g active, 18.53 mmol) was dissolved in ethanol (43 mL) at room temperature. Fumaric acid (2.15 g, 18.53 mmol) was added, and the solution was heated to 75°C (the solid crystallized during heating and did not redissolve). The resulting suspension was cooled to 0-5°C and stirred for 1 hour. The solid was isolated by filtration, washed with ethanol (2 × 7 mL), and dried. Further drying in a vacuum oven at 50°C yielded the desired d8-DMT fumarate (4.62 g, 81%).
[0280] Example 3:d 6 -5-methoxydimethyltryptamine d 6 Synthesis of -5-MeO-DMT Stage 1 The coupling of 5-methoxy-3-indoleacetic acid and d6-dimethylamine was carried out on a 20g scale using a process similar to that described for Stage 1 of Example 1. Purification by flash column chromatography yielded a light brown solid (87%), and purity by HPLC was 97.8%. Molecular weight: 238.32.
[0281] Stage 2 The product from Stage 1 of Example 3 was reacted with LiAlH4 in THF according to the process described for Stage 2 of Example 1. The reaction was carried out on a 9g scale, yielding d6-5-MeO-DMT as an amber-colored oily substance in a yield of 8.22g (7.40g activity, 87.3%), with a purity of 98.4% by HPLC. Molecular weight: 224.34
[0282] Stage 3 The fumarate of d6-5-MeO-DMT was prepared according to the process described for Stage 3 of Example 1. 6.04 g (65%) of an off-white solid was obtained, with a purity of 99.61% by HPLC. NMR and XRPD data indicated the isolation of the hemi-salt. Molecular weight: 564.74 (as hemi-salt).
[0283] Example 4:d 8 -5-methoxydimethyltryptamine d 8 Synthesis of -5-MeO-DMT Stage 1 The coupling of 5-methoxy-3-indoleacetic acid and d6-dimethylamine was carried out on a 20g scale using a process similar to that described for Stage 1 of Example 1. Purification by flash column chromatography yielded a light brown solid (87%), and purity by HPLC was 97.8%. Molecular weight: 238.32
[0284] Stage 2 The product from Stage 1 of Example 4 was reacted with LiAlD4 in THF on a 9g scale according to the process described for Stage 2 of Example 2. Purification yielded 8.12g (7.58g activity, 88.7%) of the product d8-5-MeO-DMT as an amber-colored oily substance with a purity of 97.9% by HPLC. Molecular weight: 226.35
[0285] Stage 3 d8-5-MeO-DMT fumarate was prepared according to the process described for Stage 3 of Example 1. 9.6 g of product d8-5-MeO-DMT fumarate was obtained with a purity of 99.71% by HPLC. Molecular weight: 342.42
[0286] d6-5-hydroxydimethyltryptamine and d8-5-hydroxydimethyltryptamine can be prepared using 5-hydroxy-3-indoleacetic acid as a starting material by a process similar to the process described in Examples 3 and 4, respectively.
[0287] Evaluation of the degree of deuteration This was achieved by LCMS-SIM (SIM = single ion monitoring), which provides individual ion counts for each mass of the deuterated N,N-dimethyltryptamine compound during the retention time of N,N-dimethyltryptamine. The percentage of each component was then calculated from these ion counts. For example,
number
[0288] TIFF0007834754000022.tif146169
[0289] TIFF0007834754000023.tif42170
[0290] [Table 4]
[0291] Example 5: Human hepatocyte-specific clearance Measuring intrinsic clearance (CLint) in vitro is a useful model for predicting in vivo clearance. The liver is a useful model for studying drug metabolism because it contains both phase I and phase II drug-metabolizing enzymes, which are present in intact cells. In particular, CLint in hepatocytes is an indicator of the likelihood of a compound being metabolized and can be correlated with in vivo hepatic clearance by considering plasma protein binding and hepatic blood flow. Therefore, CLint may be used as an indicator of the relative metabolic stability of a compound and may be compared with other external probe substrates. Furthermore, measuring CLint in vitro (where hepatic metabolic clearance is known to be a concern) can be a useful means of understanding the different pharmacokinetic behaviors of compounds in vivo.
[0292] Analysis method In three separate experiments, we investigated the in vitro intrinsic clearance of DMT (SPL026) and deuterated DMT (SPL028) analogs using human (gender-mixed) hepatocytes pooled from 10 donors: • First experiment - Human (gender-mixed) liver cells; 0.545 × 10 6 Cells / mL. Final organic concentration is 1.05% (80.74% MeCN and 19.26% DMSO). • Second experiment - Human (gender-mixed) liver cells; 0.427 × 10⁻⁶ 6 Cells / mL. Final organic concentration 1% (84.7% MeCN and 15.3% DMSO). • Third experiment - Human (gender-mixed) liver cells; 0.362 × 10⁻⁶ 6 cells / mL
[0293] Mouse CD-1 (male) hepatocytes • Final organic concentration: 1% (84.7% MeCN and 15.3% DMSO)
[0294] Preparation for analysis • The hepatocyte buffer solution is prepared as 26.2 mM NaHCO3, 9 mM NaHEPES, 2.2 mM D-fructose, and DMEM (MilliQ water). • Prepare compound and marker stocks in 10 mM DMSO, then dilute to 100× assay concentration (91:9 acetonitrile:DMSO). • Hepatocytes are rapidly thawed in a water bath at 37°C, and after thawing, decanted in hepatocyte buffer. The cells are centrifuged, the supernatant is removed, and then they are counted and resuspended at the final assay concentration.
[0295] Analysis Procedure All test compounds, as well as the sumatriptan, serotonin, and benzylamine control compounds, underwent two incubation cycles for each compound in each experiment using a concentration of 5 μM. This concentration was determined by the Michaelis constant (K) of monoamine oxidase (MAO). m It was chosen to maximize the signal-to-noise ratio while keeping it below the specified limit. Diltiazem and diclofenac controls were used at laboratory-validated concentrations (1 μM).
[0296] Hepatocytes were added to a pre-warmed incubation tube (37°C). Next, the pre-prepared 100× assay compound stock was added to the incubation tube and carefully mixed. Samples were taken at seven time points (2, 4, 8, 15, 30, 45, and 60 minutes). At each time point, a small aliquot was taken from the incubation and quenched with ice-cold acidic methanol or acetonitrile containing an internal standard (1:4). The incubation tube is subjected to circulating shaking at 37°C throughout the experiment.
[0297] Standard final incubation conditions are 1 μM of the compound in a buffer containing approximately 500,000 nominal live cells / mL, approximately 0.9% (v / v) acetonitrile (MeCN), and approximately 0.1% (v / v) DMSO (specific assay concentrations outlined in Section 2 above).
[0298] Thoroughly mix the quenched sample and allow the protein to precipitate at -20°C for at least 12 hours. Then, centrifuge the sample at 4°C. Transfer the supernatant to a new 96-well plate for analysis.
[0299] Liquid chromatography-mass spectrometry (LC-MS / MS) The following LC-MS / MS conditions were used for the analysis. TIFF0007834754000025.tif153169
[0300] MRM Transition: ·D0=mass-to-charge ratio 189.136 > 144.179 D6 = mass-to-charge ratio 195.17 > 64.127 D8 = mass-to-charge ratio 197.2 > 146.17
[0301] MRM transitions were determined from preliminary analysis of DMT samples containing either no deuterium (D0 transition) or high levels of D6 or D8 deuteration (D6 and D8 transitions, respectively).
[0302] Next, the obtained concentration-time profile is used to determine the intrinsic clearance (CLint) and half-life (t 1 / 2 The intrinsic clearance was calculated. To do this, the MS peak area or MS peak area / IS response for each analyte was plotted on the y-axis on a natural logarithmic scale against the sampling time (minutes) on the x-axis. The slope of this line is the elimination rate constant. This is converted to half-life by -ln(2) / slope. The intrinsic clearance is calculated from the slope / elimination rate constant, and the formula is CLint=(-1000*slope) / cell density (1E6 cells / ml), with units of microliters / min / million cells.
[0303] D 6 -DMT(SPL028vii) and D 8 - Clearance of DMT (SPL028viii) Furthermore, human hepatocyte assays were performed using D6-DMT and D8-DMT, and human (gender-mixed) hepatocytes from 10 donors (0.362 × 10⁶) were obtained. 6 In vitro intrinsic clearance was measured using cells / mL. [Table 5] In vitro intrinsic clearance and half-life of D6-deuterated DMT and D8-deuterated DMT analog blends in human hepatocytes. Intrinsic clearance of SPL026 (19.4 μL / min / 10 6 Cell-specific clearance of SPL028vii (17.1 μL / min / 10 6 cells)=2.3μL / min / 10 6 Cells. The intrinsic clearance of SPL028vii changed 1.1 times compared to DMT (SPL026). The intrinsic clearance of D8-deuterated DMT (SPL028viii) changed 2.1 times compared to DMT (SPL026).
[0304] Use of hepatic mitochondrial fraction to model the human metabolism of deuterated DMT Given that the half-life of DMT in humans is predicted to be 5 minutes, the inventors anticipate that most of DMT is degraded before reaching the human liver. Therefore, an alternative in vitro assay was selected as a more appropriate system for modeling the human metabolism of DMT. In the following assays performed using human liver mitochondrial (HLMt) fractions, an enhancement of the fold change between SPL026 and D8-deuterated SPL028viii was predicted.
[0305] Contributions of MAO-A and MAO-B to intrinsic clearance of mitochondrial fractions in vitro in human liver The human liver mitochondrial (HLMt) fraction contains a large amount of MAO enzymes, making it a useful model system for measuring MAO substrate clearance. A series of studies using HLMt were conducted to evaluate the effects of MAO on the metabolism of DMT and deuterated DMT analogs in vitro.
[0306] SPL026(DMT) and SPL028viii(D8 -DMT) in vitro human mitochondrial fraction specific clearance SPL026 and SPL028viii were added separately to a 0.5 mg / mL human liver mitochondrial fraction, and their intrinsic clearances were measured in vitro. MAO-A substrate "serotonin" and MAO-B substrate "benzylamine" were added as positive controls to confirm the presence and functional activity of MAO-A and MAO-B.
[0307] [Table 6] Intrinsic clearance and half-life of SPL026 and SPL028viii in the human liver mitochondrial fraction D8-Deuterized SPL028viii showed a 14.8-fold increase in clearance compared to SPL026.
[0308] D 0 、D 6 and D 8 Human and rat hepatocyte stability of 5-MeO-DMT analogs [Table 7]
[0309] The test compound (5 μM) was incubated with cryopreserved hepatocytes in suspension. Samples were taken at six time points during the 60-minute experiment, and the test compound was analyzed by LC-MS / MS.
[0310] Suspension of cryopreserved pooled hepatocytes from human and rat species (in Williams E medium supplemented with 2 mM L-glutamine and 25 mM HEPES, final cell density 0.5 × 10⁶) 6 Viable cells (per mL) were pre-incubated at 37°C before adding each test compound (final substrate concentration 1 μM; final DMSO concentration 0.25%) to initiate the reaction. The final incubation volume was 500 μL.
[0311] Two control compounds were included for each species. Each compound was incubated at 37 °C for 0, 5, 10, 20, 40, 60 minutes. The reaction was stopped by transferring the incubation to acetonitrile at the appropriate time point (1:3 ratio). The final plates were centrifuged at 3,000 rpm for 30 minutes at 4 °C to precipitate the protein.
[0312] After protein precipitation, the sample supernatants were combined into a cassette of up to 4 compounds, an internal standard was added, and the samples were analyzed under Cyprotex generic LC-MS / MS conditions.
[0313] From the plot of the peak area ratio (compound peak area / internal standard peak area) against time, the slope of the straight line was determined. Then, the half-life (t 1 / 2 ) and intrinsic clearance (CLint) were calculated using the following equations:
Equation
[0314] If the CLint value was below the lower limit of assay sensitivity (t 1 / 2 > 3 × calculated based on incubation time), it was classified as below the limit of quantification (<LOQ). Two control compounds were included in the assay for each species, and if the values of these compounds were not within the specified limit values, the results were considered failed and the experiment was repeated.
[0315] result
Table 8
[0316]
Table 9
[0317]
Table 10
[0318] Deuteration caused a decrease in intrinsic clearance and an increase in half-life in both human and rat hepatocytes compared to 5-MeO-DMT. D8-deuteration had the greatest effect in increasing in vitro metabolic stability, altering half-life and intrinsic clearance by 1.8 times in both human and rat tissues compared to 5-MeO-DMT.
[0319] Example 6: Examination of pharmacokinetic (PK) profiles in vivo In vivo pharmacokinetic (PK) profiles of N,N-dimethyltryptamine (DMT, SPL026) and α,α,bis-deuterio-N,N-hexaduterio-dimethyltryptamine (D8DMT, SPL028viii) after intravenous (IV) and intramuscular (IM) administration were investigated in rats.
[0320] [Table 11]
[0321] method Thirteen male and three female Sprague Dawley rats (7-8 weeks old), weighing 250-300g, were administered the following: [Table 12]
[0322] Rearing environment [Table 13]
[0323] Administration regimen [Table 14]
[0324] To investigate whether there are differences in the metabolic stability of DMT between male and female rats, SPL026 fumarate was administered intravenously at a dose of 2 mg / kg to both male and female rats. To compare the metabolic stability of d8-DMT with that of DMT, SPL028viii fumarate was administered intravenously at a dose of 2 mg / kg to male rats from different groups.
[0325] A cassette dose consisting of 1 mg / kg SPL026 fumarate and 1 mg / kg SPL028viii fumarate was administered intravenously as a single dose to four different male animals. Another cassette dose consisting of 3.5 mg / kg SPL026 fumarate and 3.5 mg / kg SPL028viii fumarate was administered intramuscularly as a single dose to three different male animals. SPL026 and SPL028viii were directly compared between animals to avoid the influence of confounding due to inter-animal variability.
[0326] Administration Procedure On the morning of the administration day, the animals' weight was measured, and the dose was administered based on their weight and a specific dosage. The intravenous administration device consisted of an appropriately sized syringe and butterfly needle. During administration, the drug was administered directly into the lateral tail vein, which is not used for blood collection. • The intramuscular administration device consists of an appropriately sized insulin syringe. The injection site was shaved on the morning of the administration day. During administration, the insulin is administered directly into the thigh muscle.
[0327] PK sampling Following administration, a series of whole blood samples (approximately 200 μL) were collected from the lateral tail vein via an indwelling cannula into individual K2EDTA processing containers. Samples were collected at the following times after administration: Intravenous (IV) administration: Before administration, and at 1 minute, 5 minutes, 10 minutes, 15 minutes, 30 minutes, 45 minutes, 60 minutes, 120 minutes, and 180 minutes. Intramuscular (IM) administration: Before administration, and at 5, 10, 25, 30, 45, 60, 90, 120, and 180 minutes. After placing the blood sample in a cooling block, it is centrifuged at 10,000 g at approximately 4°C for 2 minutes, and the resulting plasma is removed. All samples are stored at approximately -80°C.
[0328] bioanalysis Bioanalysis of DMT and d8-DMT in rat K2EDTA plasma was performed using LC-MS / MS. The following table details the two eligible methods: [Table 15]
[0329] The concentrations of DMT and d8-DMT were quantified using 20.0 μL of rat plasma at a target lower limit of quantification (LLOQ) of approximately 0.310 ng / mL, and eligibility was confirmed by the following method: · Assay linearity - Calibration curve (double-prepared) including ≥8 concentration levels, a control blank, and zero (IS only). Acceptance criteria - At least 75% of the calibration standard (non-zero sample) must be within ±20% relative error (RE) of the prepared nominal concentration (within ±25% RE at the limit of quantification). · sensitivity - The minimum signal-to-noise ratio at LLOQ concentration must be 5:1. · Precision and accuracy - Single analytical batch (repeat) (n=6) including QC at low, medium, and high concentrations. Acceptance criteria - Intra-batch precision (CV) and accuracy (RE) ≤ 20% · Selectivity - Qualitative assessment of chromatograms from a control blank matrix from at least one source for the presence of potential interference peaks. Acceptable Criteria - Co-elution interference reaction must be ≤25% of the LLOQ calibration standard peak area. Co-elution interference reaction must be less than 5% of the internal standard zero sample peak area. · stability - Stability (repeatability) in the matrix of QC Med (minimum n=3) is evaluated for DMT only at the sample processing temperature for at least 2 hours. Acceptance criteria - Precision (CV) and accuracy (RE) ≤ 20% · Carryover- The upper limit of quantification (ULOQ) is evaluated using at least one control blank matrix sample (carryover blank) analyzed immediately after the calibration standard. Acceptance Criteria - Analyte carryover must be ≤25% of the analyte peak area in the LLOQ standard. Internal standard carryover must be ≤5% of the internal standard peak area in the LLOQ standard sample.
[0330] PK parameters The plasma pharmacokinetic parameters of DMT (SPL026) and d8-DMT (SPL028viii) were derived by non-compartmental analysis using plasma concentration-time profiles from each animal.
[0331] result The results are shown in Figures 1 to 3. These data indicate that d8-DMT (SPL028viii) resulted in higher overall exposure after intravenous and intramuscular administration compared to DMT (SPL026). Figure 1 shows a semi-logarithmic plot of the mean concentrations of SPL026 and SPL028viii over time after intravenous administration of 2 mg / kg fumarate. Figure 2 shows a semi-logarithmic plot of the mean concentrations of SPL026 and SPL028viii over time after intravenous administration (as a cassette) of 1 mg / kg fumarate. Figure 3 shows linear and semi-logarithmic plots over time of the mean concentrations of DMT (SPL026) and d8-DMT (SPL028viii) after intramuscular administration (as a cassette) of 3.5 mg / kg fumarate. In vivo, Figure 3A - linear plot, Figure 3B - semi-logarithmic plot, SEM error bars
[0332] To analyze the effect of the treatment group on PK parameters, ANOVA (pairwise comparison) was performed. Equivalent doses were administered intravenously and intramuscularly to the SPL026 and SPL028viii groups. The area under the mean curve (AUC) was then extrapolated from time 0 to infinity between the two groups. 0-infA statistically significant difference was observed in ), indicating that SPL028viii had a significantly higher total systemic exposure after a single intravenous and intramuscular administration compared to SPL026. The AUC was also significantly different between the male and female groups of SPL026. 0-inf No significant differences were observed between the groups, indicating that there are no significant differences in the metabolism and excretion of SPL026 based on the sex of the animals.
[0333] [Table 16]
[0334] C after intramuscular administration max It was found that d8-DMT(SPL028viii) was significantly higher than DMT(SPL026) (p=0.005). ** ). The present invention is further described by the following embodiments.
[0335] E1. Compounds of formula (I) or pharmaceutically acceptable salts thereof for use in therapeutic purposes: [ka] During the ceremony, R 1 -R is independent of the above. 4 -OH, -OR 4 ,-O(CO)R 4 Selected from monohydrogen phosphate, -F, -Cl, -Br, and -I; n is selected from 0, 1, 2, 3, or 4; R 2 C( x H)3 is; R 3 C( x H)3 or H; Each R 4 These are independently selected from C1-C4 alkyl groups; and each x H and y H is independently either protium or deuterium. Here, C( x The deuterium:protium ratio in the H)3 portion is greater than the ratio found naturally in hydrogen. E2. R 1 However, independently, -OR 4 ,-O(CO)R 4 A compound for use in E1, selected from monohydrogen phosphate and -OH. E3. R 4 A compound for use in E1 or E2, wherein the compound is methyl. E4. A compound for use in any one of the prior embodiments, where n is 1. E5. R 1 Compounds for use in E4, where the 4th or 5th position is located. E6. n is either 0 or n is 1, R 1 However, the compounds for use of E1 are selected from 5-methoxy, 5-bromo, 4-acetoxy, 4-hydrogen phosphate, 4-hydroxy, and 5-hydroxy. E7. A compound for use with E1, where n is 0. E8. Both y A compound for use in any one of the preceding embodiments, wherein H is deuterium. E9. Both y A compound for use in any one of the prior embodiments, wherein H is protium. E10. R 2 and R 3 Both are C( x A compound for use in any one of the prior embodiments, which is H)3. E11. Both C( xCompounds for use with E10, where H)3 is the same. E12. R 2 and R 3 Compounds for use in E10, where both are CD3. E13. A compound for use in any one of the preceding embodiments, in a pharmaceutically acceptable salt form. E14. A compound for use in any one of the preceding embodiments, wherein the pharmaceutically acceptable salt is a fumarate. E15. A compound listed in any one of E1 to E11, other than N,N-di(triduteromethyl)tryptamine, or a pharmaceutically acceptable salt thereof. E16. A compound of E15, in a pharmaceutically acceptable salt form. E17. A pharmaceutically acceptable salt of N,N-di(triduteromethyl)tryptamine, an E15 or E16 compound. E18. A compound listed in any one of E15 to E17, wherein the pharmaceutically acceptable salt is a fumarate. E19. A first compound which is a compound defined in any prior embodiment or a pharmaceutically acceptable salt thereof, A second compound, which is (i) a compound defined in any prior embodiment or a pharmaceutically acceptable salt thereof, y Identity of H and / or R 3 (ii) Different from the first compound through identity; or each x H and y A second compound which is either a compound defined in any of the preceding embodiments or a pharmaceutically acceptable salt thereof, except that H represents hydrogen. A composition comprising the above. E20. The second compound is,y Identity of H and / or R 3 Identity of; and / or, x H and y The composition according to E19, which differs from the first compound only by the fact that H represents hydrogen. E21. y The composition according to E19 or E20, comprising two or three compounds of formula (I) that are distinct from each other only by the definition of H. E22. C( y The composition according to E21, comprising three compounds in which the H)2 portion is CH2, CD2, or CHD. E23. Some of the compounds are R 3 They differ from one another through their identity, and in some compounds, R 3 It is H, and in other compounds it is R 2 and R 3 The composition described in E19 or E20 is identical to the composition described in E19 or E20. E24. A composition according to any one of E19 to E23, wherein the compound is in the form of a pharmaceutically acceptable salt. E25. A composition according to any one of E19 to E24, wherein the pharmaceutically acceptable salt is a fumarate. E26. A pharmaceutical composition comprising a compound described in any one of E1 to E14, a compound described in any one of E15 to E18, or a composition described in any one of E19 to E25, in combination with a pharmaceutically acceptable excipient. E27. A pharmaceutical composition as described in E26, in the form of an oral dosage. E28. A compound according to any one of E1 to E14, or a compound according to any one of E15 to E18, or a composition according to any one of E19 to E27, for use in a method of treating a patient's mental or neurological disorder. E29. Compounds or compositions for use of E28, wherein the mental or neurological disorder is selected from (i) obsessive-compulsive disorder, (ii) depressive disorder, (iii) schizophrenia, (iv) schizotypal disorder, (v) anxiety disorder, (vi) substance abuse, and (vii) anesthesia disorder. E30. Compounds or compositions for use with E28 or E29, wherein the disorder is major depressive disorder. E31. Compounds or compositions for use with E28 or E29 in a disorder where the disorder is treatment-resistant depression. E32. A compound or composition for any one of the uses described in E28 to E31, including oral administration of the compound or composition. E33. A treatment method comprising administering to a patient in need a compound described in any one of E1 to E14, or a compound described in any one of E15 to E18, or a composition described in any one of E19 to E27. E34. The method described in E33, which is one of the methods described in E28 to E32. E35. A method for synthesizing the compound of formula (I') or a pharmaceutically acceptable salt thereof, comprising: [ka] The method comprises reacting a compound of formula (II) or a pharmaceutically acceptable salt thereof with LiAlH4 and / or LiAlD4, [ka] Here, R 1' -R is independent of the above. 4 -OPR, -OR 4 Selected from -F, -Cl, -Br, and -I; PR is a protecting group; n is selected from 0, 1, 2, 3, or 4; R 2 C( x H)3 is; R 3 C( x H)3 or H; Each R 4 These are independently selected from C1-C4 alkyl groups; and each x H and y H is independently protium or deuterium. Here, C( x The deuterium:protium ratio in the H)3 portion is greater than the ratio found naturally in hydrogen. E36. The method according to E35, wherein a ratio of LiAlH4 and / or LiAlD4:compound of formula (II) of 0.8:1 to 1:1 is used. E37. The compound of formula (II) (i) React the compound of formula (III) with two or more coupling agents to produce an activated compound; [ka] and (ii) The activating compound is given by formula R 2 R 3 NH or R 2 R 3 React with an amine containing ND (where R 1' , n, R 2 and R 3 (This is the same as the definition of E35.) The method described in E35 or E36, manufactured by... E38. The method according to E37, wherein two or more coupling agents include an additive coupling agent. E39. The method according to E38, wherein two or more coupling agents include carbodiimide. E40. The method according to E39, wherein the carbodiimide is selected from the group consisting of N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide, dicyclohexylcarbodiimide, and diisopropylcarbodiimide. E41. The method according to E40, wherein the carbodiimide is N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide.HCl. E42. The method according to any one of E38 to E41, wherein the added coupling agent is selected from the group consisting of 1-hydroxybenzotriazole, hydroxy-3,4-dihydro-4-oxo-1,2,3-benzotriazine, N-hydroxysuccinimide, 1-hydroxy-7-aza-1H-benzotriazole, ethyl 2-cyano-2-(hydroxyimino)acetate, and 4-(N,N-dimethylamino)pyridine. E43. The method according to any one of E38 to E41, wherein the added coupling agent is 1-hydroxybenzotriazole. E44. A method for synthesizing a compound of formula (I) described in any one of E1 to E12, wherein the method is R 1' If it is OPR, remove the protecting group PR, and optionally, the resulting hydroxyl group is -OR 4 ,-O(CO)R 4 The method according to any one of E35 to E43, further comprising converting to monohydrogen phosphate. E45. The method according to E44, wherein the compound of formula (I) is a pharmaceutically acceptable salt. E46. The method according to E44, further comprising reacting a compound of formula (I) with an acidic reagent to produce a pharmaceutically acceptable salt of the compound of formula (I). E47. The method according to E46, wherein the acidic reagent is fumaric acid.
[0336] The present invention is further described by the following embodiments. E'1. Compositions comprising compounds of formula I and formula II: [ka] During the ceremony, each x H is independently selected from protium and deuterium; n is selected from 0, 1, 2, 3, and 4; Each R 1 -R is independent of the above. 3 -OH, -OR 3 ,-O(CO)R 3 , selected from monohydrogen phosphate, -F, -Cl, -Br and -I; and Each R 3 The element is independently selected from C1-C4 alkyl groups. E'2. The composition according to E'1, comprising approximately 5% to approximately 95% by weight of the compound of formula I. E'3. The compound comprises the compound of formula I and the compound of formula II, and in both of them, one of them x H is H, and the other is x The composition according to E'1 or E'2, wherein H is D. E'4. It includes the compound of formula I and the compound of formula II, and in both, each x A composition according to any one of E'1 to 3, wherein H is H. E'5. It includes the compound of formula I and the compound of formula II, and in both, each x The composition described in any one of E'1 to 4, wherein H is D. E'6. R 1 However, independently, -OR 3 ,-O(CO)R 3 A composition according to any one of E'1 to 5, selected from monohydrogen phosphate and -OH. E'7. R 3 A composition according to any one of E'1 to 6, wherein is methyl. E'8. A composition according to any one of E'1 to 7, wherein n is 1. E'9. R 1 The composition according to E'8, wherein the is located at the 4th or 5th position. E'10. n is either 0 or n is 1, R 1 The composition according to any one of E'1 to 5, wherein is selected from 5-methoxy, 4-acetoxy, 4-hydrogen phosphate, 4-hydroxy, and 5-hydroxy. E'11. n is either 0 or n is 1, R 1 A composition according to any one of E'1 to 5, wherein is 5-methoxy. E'12. It includes the compound of formula I and the compound of formula II, and in both of them, x H, n, and R 1 A composition according to any one of E'1 to E'11, wherein the same thing is found. E'13. x A composition according to any one of E'1 to E'12, comprising two compounds of formula I that are different from each other only by the definition of H. E'14. x A composition according to any one of E'1 to 13, comprising two compounds of formula II that are different from each other only by the definition of H. E'15. A composition according to any one of E'1 to E'14, wherein the compound is in the form of a pharmaceutically acceptable salt. E'16. The composition according to E'15, wherein the pharmaceutically acceptable salt is a fumarate. E'17. A pharmaceutical composition comprising one of the compositions described in E'1 to E'16 in combination with a pharmaceutically acceptable excipient. E'18. A composition described in any one of E'1 to E'17 for use in treatment. E'19. A composition according to any one of E'1 to E'17 for use in a method of treating a patient's mental or neurological disorder. E'20. A composition for use of E'19, wherein the mental or neurological disorder is selected from (i) obsessive-compulsive disorder, (ii) depressive disorder, (iii) schizophrenia, (iv) schizotypal disorder, (v) anxiety disorder, (vi) substance abuse, and (vii) anesthesia disorder. E'21. A method of treatment comprising administering one of the compositions described in E'1 to E'17 to a patient in need thereof. E'22. The method described in E'21, which is the method described in E'19 or E'20. E'23. A chemical library comprising multiple compositions described in any one of E'1 to E'17. E'24. Use of the compound of formula III as an internal standard in an assay for quantifying the amount of target compound in a sample: [ka] During the ceremony: each x H is independently selected from protium and deuterium; n is selected from 0, 1, 2, 3, and 4; Each R 1 -R is independent of the above. 3 -OH, -OR 3 ,-O(CO)R 3 , selected from monohydrogen phosphate, -F, -Cl, -Br and -I; and Each R 3The element is independently selected from C1-C4 alkyl groups; R 4 It is protium or -CD3. Here, each x H is protium, R 4 If n is -CD3, then n is 1, 2, 3, or 4. E'25. Use of E'24 when the target compound includes a compound of formula IV: [ka] During the ceremony, each x H is independently selected from protium and deuterium; n is selected from 0, 1, 2, 3, and 4; Each R 1 -R is independent of the above. 3 -OH, -OR 3 ,-O(CO)R 3 Selected from monohydrogen phosphate, -F, -Cl, -Br and -I; and Each R 3 The element is independently selected from C1-C4 alkyl groups; R 5 is protium or methyl; and Compound IV and compound III differ from each other only in the number of deuterium atoms they contain. E'26. R 5 The use of E'25, where is methyl, and the compound of formula IV has an average molecular weight 5.5-6.5 g / mol smaller than the average molecular weight of the compound of formula III. E'27. R 5 The use of E'25 is where protium is present, and the compound of formula IV has an average molecular weight 2.5 to 3.5 g / mol smaller than the average molecular weight of the compound of formula III. E'28. At least one compound of formula IV x Use as described in one of E'25-28, where H is D. E'29. At least one compound of formula III x Use as described in any one of E'24-28, where H is D. E'30. Compounds of formula III x Use of H as defined in one of E'3-5, as described in one of E'24-27. E'31. n and R of the compound in formula III 1 and R 3 However, use as defined in any one of E'6-11, or as described in any one of E'24-30. E'32. Use of E'24, wherein the sample comprises a compound of formula I and a compound of formula II as described in any one of E'1 to E'14, where the compound of formula III and the compound of formula I or the compound of formula II differ only in the number of deuterium atoms they each contain. E'33. A method for quantifying the amount of a target compound in a sample, comprising adding a known amount of the E'24 compound to the sample. E'34. The method according to E'33, wherein the internal standard and target compound are as defined in any one of E'25-32. E'35. The method according to E'33 or E'34, wherein the sample is previously obtained from the subject and the target compound has been administered to the subject before the sample was obtained. E'36. The method according to E'35, wherein multiple samples are obtained from a subject at different times after administration of the target compound, and the method includes adding a known amount of the E'24 compound to each sample and quantifying the amount of the target compound in each sample. E'37. The method according to E'36, further comprising calculating the half-life of the target compound in the test subject. E'38. each x The compound described in E'24, wherein n is 1, 2, 3, or 4 when H is protium. E'39. x H, n, R 1 and R 3 However, the compound described in E'38 is defined as one of E'3 to E'11.
Claims
1. Compounds of formula (I) or pharmaceutically acceptable salts thereof: 【Chemistry 1】 (In the formula, R 1 is -OR 4 And R 4 is methyl; n is selected from 0 and 1; R 2 CD 3 And; R 3 CD 3 and each y (H is deuterium)
2. n is 1 and R 1 is in the 5-position, the compound according to claim 1.
3. The compound according to claim 1, wherein n is 0.
4. The compound according to any one of claims 1 to 3, in a pharmaceutically acceptable salt form.
5. The compound according to claim 4, wherein the pharmaceutically acceptable salt is a fumarate.
6. A composition comprising the compound described in claim 2 in combination with a pharmaceutically acceptable excipient.
7. A compound according to any one of claims 1 to 5, for use as a pharmaceutical product.
8. The composition according to claim 6 for use as a pharmaceutical product.
9. A compound according to any one of claims 1 to 5, for use in a method for treating a patient's mental or neurological disorder.
10. The composition according to claim 6, for use in a method for treating a patient's mental or neurological disorder.
11. The compound for use according to claim 9, wherein the mental or neurological disorder is selected from (i) obsessive-compulsive disorder, (ii) depressive disorder, (iii) schizophrenia, (iv) schizotypal disorder, (v) anxiety disorder, (vi) substance abuse, and (vii) anesthesia disorder.
12. The composition for use according to claim 10, wherein the mental or neurological disorder is selected from (i) obsessive-compulsive disorder, (ii) depressive disorder, (iii) schizophrenia, (iv) schizotypal disorder, (v) anxiety disorder, (vi) substance abuse, and (vii) anesthesia disorder.
13. A method for synthesizing the compound of formula (I') or a pharmaceutically acceptable salt thereof, comprising: 【Chemistry 2】 The compound of formula (II) or a pharmaceutically acceptable salt thereof, LiAlD 4 A method that includes causing a reaction 【Transformation 3】 (In the formula, R 1' -OPR or -OR 4 PR is a protecting group, and R 4 is methyl; n is 1; R 2 and R 3 CD 3 and each y H is deuterium.
14. LiAlD at a ratio of 0.8:1 to 1:1 4 The method according to claim 13, wherein the ratio of the compounds of formula (II) is used.
15. A method for synthesizing a compound of formula (I) as described in claim 1 or 2, wherein the method is R 1' If it is OPR, remove the protecting group PR and the resulting hydroxyl group is -OR 4 The method according to claim 13 or 14, further comprising converting to a.
16. The method according to claim 15, further comprising reacting a compound of formula (I) with an acidic reagent to produce a pharmaceutically acceptable salt of the compound of formula (I).
Citation Information
Patent Citations
Composition for the treatment of stress
JP2002520353A