Aminocyclohexenyl-6,6-bicyclic 5-HT2ar agonists and uses thereof
Aminocyclohexenyl-6,6-bicyclic compounds provide selective 5-HT2AR activation, addressing the lack of selectivity in existing agonists and reducing side effects, effectively treating neurological and psychiatric disorders.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-09-26
- Publication Date
- 2026-04-02
AI Technical Summary
Existing 5-HT2AR agonists lack selectivity over related subtypes, leading to serious side effects such as drug-induced valvular heart disease, and there is a need for compounds that effectively activate the 5-HT2AR receptor for treating neurological and psychiatric disorders without hallucinogenic effects.
Development of aminocyclohexenyl-6,6-bicyclic compounds that act as selective 5-HT2AR agonists, providing therapeutic benefits while minimizing activation of other receptor subtypes like 5-HT2B and 5-HT2C, thereby reducing side effects.
The compounds effectively treat neurological and psychiatric disorders by selectively activating the 5-HT2AR receptor, offering therapeutic benefits without the hallucinogenic effects associated with non-selective agonists.
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Abstract
Description
410095-005WG (221368)AMINOCYCLOHEXENYL-6,6-BICYCLIC 5-HT2AR AGONISTS AND USES THEREOFCROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The application claims the benefit of priority to U.S. Provisional Application No. 63 / 700.085, filed September 27, 2024: U.S. Provisional Application No. 63 / 750,011, filed January 27, 2025; and U.S. Provisional Application No. 63 / 867,286, filed August 20, 2025; the contents of each of which are herein incorporated by reference.TECHNICAL FIELD OF THE INVENTION
[0002] The present invention relates to compounds and methods useful for activating the 5- hydroxytryptamine 2A receptor (5-HT2AR). The invention also provides pharmaceutically acceptable compositions comprising compounds of the present invention and methods of using said compositions in the treatment of various disorders.BACKGROUND OF THE INVENTION
[0003] Agonists of the 5-HT2AR may have potential as pharmacals for a variety of neurological diseases and disorders including, but not limited to, depression, anxiety, substance abuse, migraine headaches, and / or cluster headaches, and various somatic illnesses including, but not limited to, various inflammatory cardiovascular, and / or pain disorders. As such, 5-HT2AR agonists hold promise as therapeutic agents.SUMMARY OF THE INVENTION
[0004] The present application relates to compounds as agonists of 5-HT2AR, and methods of preparation and uses thereof. 5-HT2AR is a target of interest, owing to its role in psychiatric disorders including psychosis, depression, dyskinesia, and hallucination (Slocum et al., 2021). Although 5-HT2AR agonists have been developed, few are selective for this receptor over related subtypes, for example, the 5- HT2B receptor, a toxicology anti-target strongly implicated in serious side effects including drug-induced valvular heart disease.
[0005] It has now been found that compounds of this invention, and pharmaceutically acceptable compositions thereof, arc effective as agonists of 5-HT2AR. In some embodiments, the present disclosure provides a compound of formula I” :1BUSINESS.33535475 1410095-005WG (221368)or a pharmaceutically acceptable salt thereof, wherein each variable is as defined and described herein.
[0006] Compounds of the present invention, and pharmaceutically acceptable compositions thereof, are useful for treating a variety of diseases, disorders or conditions, associated with regulation of 5-HT2AR. Such diseases, disorders, or conditions include those described herein.
[0007] Compounds provided by this invention are also useful for the study of 5-HT2AR in biological and pathological phenomena: the study of intracellular signal transduction pathways occurring in bodily tissues; and the comparative evaluation of new 5-HT2AR modulators, in vitro or in vivo.DETAILED DESCRIPTION OF CERTAIN EMBODIMENTS1. General Description of Certain Embodiments of the Invention:
[0008] Compounds of the present invention, and pharmaceutical compositions thereof, are useful as agonists of 5-HT2AR. In some embodiments, a provided compound, or a pharmaceutically acceptable salt thereof, is an agonist of 5-HT2AR.
[0009] In some embodiments, the present invention provides a compound of formula I”:or a pharmaceutically acceptable salt thereof, wherein each variable is as defined and described herein.
[0010] In another aspect, the present disclosure provides methods of treating and / or preventing a 5- HT2AR-mediated disorder in a patient in need thereof, comprising administering to the patient a therapeutically effective amount of a provided compound, or a pharmaceutically acceptable salt thereof, or2BUSINESS.33535475 1a pharmaceutically acceptable composition thereof.
[0011] In another aspect, the present disclosure provides methods of treating and / or preventing a neurological disease, disorder, or condition in a patient in need thereof, comprising administering to the patient a provided compound, or a pharmaceutically acceptable salt thereof, or a pharmaceutically acceptable composition thereof.
[0012] In another aspect, the present disclosure provides methods of activating the 5- hydroxy tryptamine 2A receptor (5-HT2AR) in a patient in need thereof, comprising administering to the patient a provided compound, or a pharmaceutically acceptable salt thereof, or a pharmaceutically acceptable composition thereof.
[0013] In another aspect, the present disclosure provides methods of increasing activation of a G protein signaling pathway associated with 5-HT2AR over a 0-arrestin signaling pathway associated with 5- HT2AR in a patient in need thereof, comprising administering to the patient a provided compound, or a pharmaceutically acceptable salt thereof, or a pharmaceutically acceptable composition thereof.
[0014] In another aspect, the present disclosure provides methods of selectively activating tire 45- hydroxytryptamine 2A receptor (5-HT2AR) (e.g., over the 5-HT2B and / or 5-HT2C receptors) in a patient in need thereof, comprising administering to the patient a provided compound, or a pharmaceutically acceptable salt thereof, or a pharmaceutically acceptable composition thereof.
[0015] In another aspect, the present disclosure provides methods of treating and / or preventing a 5- HT2AR-mediated disorder in a patient in need thereof, and / or methods of activating the 5- hydroxytryptamine 2A receptor (5-HT2AR) in a patient in need thereof, comprising administering to the patient a provided compound, or a pharmaceutically acceptable salt thereof, or a pharmaceutically acceptable composition thereof, wherein the patient does not experience a hallucinogenic effect as a result of the activating or treating.2. Compounds and Definitions:
[0016] Compounds of the present invention include those described generally herein, and are further illustrated by the classes, subclasses, and species disclosed herein. As used herein, the following definitions shall apply unless otherwise indicated. For purposes of this invention, the chemical elements are identified in accordance with the Periodic Table of tire Elements, CAS version, Handbook of Chemistry and Physics, 75thEd. Additionally, general principles of organic chemistry are described in “Organic Chemistry”, Thomas Sorrell, University Science Books, Sausalito: 1999, and “March’s Advanced Organic Chemistry”, 5thEd., Ed.: Smith, M.B. and March, J._ John Wiley & Sons. New York: 2001. the entire contents ofwhich are hereby incorporated by reference.
[0017] Tire term “aliphatic” or “aliphatic group”, as used herein, means a straight-chain (i.e.,3BUSINESS.33535475 1410095-005WG (221368) unbranched) or branched, substituted or unsubstituted hydrocarbon chain that is completely saturated or that contains one or more units of unsaturation, or a monocyclic hydrocarbon or bicyclic hydrocarbon that is completely saturated or that contains one or more units of unsaturation, but which is not aromatic (also referred to herein as "carbocycle," “cycloaliphatic” or “cycloalkyl”), that has a single point of attachment to the rest of the molecule. Unless otherwise specified, aliphatic groups contain 1-6 aliphatic carbon atoms. In some embodiments, aliphatic groups contain 1-5 aliphatic carbon atoms. In other embodiments, aliphatic groups contain 1-4 aliphatic carbon atoms. In still other embodiments, aliphatic groups contain 1-3 aliphatic carbon atoms, and in yet other embodiments, aliphatic groups contain 1-2 aliphatic carbon atoms. In some embodiments, “cycloaliphatic” (or “carbocycle” or “cycloalkyl”) refers to a monocyclic C—C, hydrocarbon that is completely saturated or that contains one or more units of unsaturation, but which is not aromatic, that has a single point of attachment to the rest of the molecule. In some embodiments, a carbocyclic ring may be a 5-12 membered bicyclic, bridged bicyclic, or spirocyclic ring. A carbocyclic ring may include one or more oxo (=0) or thioxo (=S) substituent. Suitable aliphatic groups include, but are not limited to, linear or branched, substituted or unsubstituted alkyl, alkenyl, alkynyl groups and hybrids thereof such as (cycloalkyl)alkyl, (cycloalkenyl)alkyl or (cycloalkyl)alkenyl.
[0018] As used herein, the term “bridged bicyclic” refers to any bicyclic ring system, i.e. carbocyclic or heterocyclic, saturated or partially unsaturated, having at least one bridge. As defined by IUPAC, a “bridge” is an unbranched chain of atoms or an atom or a valence bond connecting two bridgeheads, where a “bridgehead” is any skeletal atom of the ring system which is bonded to three or more skeletal atoms (excluding hydrogen). In some embodiments, a bridged bicyclic group has 7-12 ring members and 0-4 heteroatoms independently selected from nitrogen, oxygen, or sulfur. Such bridged bicyclic groups are well known in the art and include those groups set forth below where each group is attached to the rest of the molecule at any substitutable carbon or nitrogen atom. Unless otherwise specified, a bridged bicyclic group is optionally substituted with one or more substituents as set forth for aliphatic groups. Additionally or alternatively, any substitutable nitrogen of a bridged bicyclic group is optionally substituted. Exemplary bridged bicyclics include:4BUSINESS.33535475 1410095-005WG (221368)
[0019] The term “lower alkyl” refers to a CM straight or branched alkyl group. Exemplar}’ lower alkyl groups are methyl, ethyl, propyl, isopropyl, butyl, isobutyl, and tert-butyl.
[0020] The term “heteroatom” means one or more of oxygen, sulfur, nitrogen, phosphorus, or silicon (including, any oxidized fonn of nitrogen, sulfur, phosphorus, or silicon; the quatemized form of any basic nitrogen or; a substitutable nitrogen of a heterocyclic ring, for example N (as in 3,4-dihydro-277-pyrrolyl), NH (as in pyrrolidinyl) or NR (as in N-substituted pyrrolidinyl)).
[0021] The tenn "unsaturated." as used herein, means that a moiety has one or more units of unsaturation.
[0022] As used herein, the term “bivalent Ci-s (or Ci-e) saturated or unsaturated, straight or branched, hydrocarbon chain”, refers to bivalent alkylene, alkcnylcnc, and alkynylcnc chains that arc straight or branched as defined herein.
[0023] The term “alkylene” refers to a bivalent alkyl group. An “alkylene chain” is a polymethylene group, i.e., -(CH2)n-, wherein n is a positive integer, preferably from 1 to 6, from 1 to 4, from 1 to 3, from 1 to 2, or from 2 to 3. A substituted alkylene chain is a polymethylene group in which one or more methylene hydrogen atoms are replaced with a substituent. Suitable substituents include those described below for a substituted aliphatic group.
[0024] The term “alkenylene” refers to a bivalent alkenyl group. A substituted alkenylene chain is a polymethylene group containing at least one double bond in which one or more hydrogen atoms are replaced with a substituent. Suitable substituents include those described below for a substituted aliphatic group.
[0025] As used herein, the term “cyclopropylcnyl” refers to a bivalent cyclopropyl group of the following structure:
[0026] Tire tenn “halogen” means F, Cl, Br, or I.
[0027] The term “aryl” used alone or as part of a larger moiety as in “aralkyl,” “aralkoxy.” or5BUSINESS.33535475 1“aryloxyalkyl,” refers to monocyclic or bicyclic ring systems having a total of five to fourteen ring members, wherein at least one ring in the system is aromatic and wherein each ring in the system contains 3 to 7 ring members. The term "aryl" may be used interchangeably with the term “aryl ring.” In certain embodiments of the present invention, “aryl” refers to an aromatic ring system which includes, but not limited to. phenyl, biphenyl, naphthyl, anthracyl and the like, which may bear one or more substituents. Also included within the scope of the term “aryl,” as it is used herein, is a group in which an aromatic ring is fused to one or more non-aromatic rings, such as indanyl, phthalimidyl, naphthimidyl, phenanthridinyl, or tetrahydronaphthyl, and tire like. The term “arylenyl” refers to bivalent aryl groups (e.g., phenylenyl).
[0028] Tire terms “heteroaryl” and “hctcroar-,” used alone or as part of a larger moiety, c.g., “heteroaralkyl,” or “heteroaralkoxy,” refer to groups having 5 to 10 ring atoms, preferably 5, 6, or 9 ring atoms: having 6, 10, or 14 % electrons shared in a cyclic array; and having, in addition to carbon atoms, from one to five heteroatoms. The term “heteroatom” refers to nitrogen, oxygen, or sulfur, and includes any oxidized form of nitrogen or sulfur, and any quatemized form of a basic nitrogen. Heteroaryl groups include, without limitation, thienyl, furanyl, pyrrolyl, imidazolyl, pyrazolyl, triazolyl, tctrazolyl, oxazolyl, isoxazolyl, oxadiazolyl, thiazolyl, isothiazolyl, thiadiazolyl, pyridyl, pyridazinyl, pyrimidinyl, pyrazinyl, indolizinyl, purinyl, naphthyridinyl, and pteridinyl. The terms “heteroaryl” and “heteroar-”, as used herein, also include groups in which a heteroaromatic ring is fused to one or more aryl, cycloaliphatic, or heterocyclyl rings, where the radical or point of attachment is on the heteroaromatic ring. Nonlimiting examples include indolyl, isoindolyl, benzothienyl, benzofuranyl, dibenzofuranyl, indazolyl, benzimidazolyl, benzthiazolyl, quinolyl, isoquinolyl, cinnolinyl, phthalazinyl, quinazolinyl, quinoxalinyl, 4 / 7 quinol iziny I. carbazolyl, acridinyl, phenazinyl, phenothiazinyl, phenoxazinyl. tetraliydroquinolinyl, tetrahydroisoquinolinyl. and pyrido[2,3-b]-l,4-oxazin-3(4H)-one. A heteroaryl group may be monocyclic, bicyclic, bridged bicyclic, or spirocyclic. The term “heteroaryl” may be used interchangeably with the terms “heteroaryl ring,” “heteroaryl group,” or “heteroaromatic,” any of which terms include rings that are optionally substituted. The term “heteroaralkyl” refers to an alkyl group substituted by a heteroaryl, wherein the alkyl and heteroaryl portions independently are optionally substituted. The temr “heteroarylenyl” refers to bivalent heteroaryl groups (e.g.. pyridylenyl).
[0029] As used herein, the terms “heterocycle,” “heterocyclyl,” “heterocyclic radical.” and “heterocyclic ring” are used interchangeably and refer to a stable 5- to 7-membered monocyclic or 7-10- membered bicyclic heterocyclic moiety that is either saturated or partially unsaturated, and having, in addition to carbon atoms, one or more, preferably one to four, heteroatoms, as defined above. When used in reference to a ring atom of a heterocycle, the term "nitrogen" includes a substituted nitrogen. As an example, in a saturated or partially unsaturated ring having 0-3 heteroatoms selected from oxygen, sulfur or nitrogen, the nitrogen may be N (as in 3.4-dihydro-2 / / pyrrolyl). NH (as in pyrrolidinyl), or+NR (as in6BUSINESS.33535475 1410095-005WG (221368) ' substituted pyrrolidinyl).
[0030] A heterocyclic ring can be attached to its pendant group at any heteroatom or carbon atom that results in a stable structure and any of the ring atoms can be optionally substituted. Examples of such saturated or partially unsaturated heterocyclic radicals include, without limitation, tetrahydrofuranyl, tetrahydrothiophenyl pyrrolidinyl, piperidinyl, pyrrolinyl, tetrahydroquinolinyl, tetrahydroisoquinolinyl, decahydroquinolinyl, oxazolidinyl, piperazinyL dioxanyl, dioxolanyL diazepinyl, oxazepinyl, thiazepinyl, morpholinyl, and quinuclidinyl. The terms ’‘heterocycle,” “heterocyclyl,” “heterocyclyl ring,” “heterocyclic group,” “heterocyclic moiety,” and “heterocyclic radical,” are used interchangeably herein, and also include groups in which a heterocyclyl ring is fused to one or more aryl, heteroaryl, or cycloaliphatic rings, such as indolinyl, 3H- indolyl. chromanyl, phenanthridinyl, or tetrahydroquinolinyl. In some embodiments, a heterocyclic ring may be a 5-12 membered bicyclic, bridged bicyclic, or spirocyclic ring. A heterocyclic ring may include one or more oxo (=0) or thioxo (=S) substituent. The term “heterocyclylalkyl” refers to an alkyl group substituted by a heterocyclyl, wherein the alkyl and heterocyclyl portions independently are optionally substituted.
[0031] As used herein, the temi “partially unsaturated” refers to a ring moiety that includes at least one double or triple bond. Hie term “partially unsaturated” is intended to encompass rings having multiple sites of unsaturation, but is not intended to include aryl or heteroaryl moieties. as herein defined.
[0032] As described herein, compounds of the disclosure may contain “substituted” moieties. In general, the term “substituted,” whether preceded by the term “optionally” or not, means that one or more hydrogens of the designated moiety of compounds are replaced with a suitable substituent. “Substituted” applies to one or more hydrogens that are either explicit or implicit from the structure (e.g.,). Unless otherwise indicated, an “optionally substituted” group may have a suitable substituent at each substitutable position of the group, and when more than one position in any given structure may be substituted with more than one substituent selected from a specified group, the substituent may be either the same or different at every position. Combinations of substituents envisioned by this disclosure are preferably those that result in the formation of stable or chemically feasible compounds. The term “stable,” as used herein, refers to compounds that are not substantially altered when subjected to conditions to allow for their production, detection, and, in certain embodiments, their recovery, purification, and use for one or7BUSINESS.33535475 1410095-005WG (221368) more of the purposes disclosed herein.
[0033] Suitable monovalent substituents on a substitutable carbon atom of an “optionally substituted” group are independently halogen; (CI [?) >4F<OI -(CB I2)u4OR°: -0(CBl2)o 4R0, -0-(CBB2)OMC(0)OR°; - (CH2)CMCH(OR°)2; -(CH;)„ 4SR0; -(Cffrfr 4 Ph. which may be substituted with R°; -(CH2)N40(CBl2)o iPh which may be substituted with R°; -CH=CHPh, which may be substituted with R°; -(CBI2)OMO(C1-I2)O 1- pyridyl which may be substituted with R°; -NO2; -CN; -N3; -(CH2)o^N(R°)2; -(CH2)0^N(R°)C(O)R°; - N(R°)C(S)R°; -(CH2)O4N(R°)C(0)NRO2; -N(RO)C(S)NR°2; -(CH2)OMN(R°)C(0)OR0;N(R°)N(R°)C(O)R°; -N(R°)N(R°)C(O)NR°2; -N(R°)N(R°)C(O)OR°; -(CH2)„4C(O)R°; -C(S)R°; - (CH2)(I 4C(O)OR°; -(CH2)OMC(0)SR°; -(CH2)NJZ’(O)OSIR°3: -(CH2)0MOC(O)R°; -OC(O)(CH2)„4S R°; - (CH2)CMSC(O)R°; -(CH2)OMC(0)NR02; -C(S)NRO2; -C(S)SR°; -SC(S)SR°, -(CH2)O4OC(O)NR°2; -C(O)N(OR°)R°; -C(O)C(O)R°; -C(O)CH2C(O)R°; -C(NOR°)R°; -(CH2)OMSSR°; -(CH2)O 4S(O)2R°; -(CH2)„4S(0)20RO; -(CH2)OMOS(0)2R°; -S(O)2NRO2; -(CH2)OMS(0)R°; -N(R°)S(O)2NRO2; - N(R°)S(O)2R°; -N(OR°)R°; -C(NH)NRO2; -(CI I2)o4P(0)2R°; -(CH2)OMP(0)R02; -(CH2)OMOP(0)R02; - (CH2)CMOP(O)(OR°)2; SiR0?,; -(CM straight or branched alkylene)O-N(R°)2; or -(CIM straight or branched alkylene)C(O)O-N(R°)2, wherein each R° may be substituted as defined below and is independently hydrogen, Ci-e aliphatic, -CH2Ph, 0(CB42)o iPh, -CH2-(5-6 membered heteroaryl ring), or a 5-6- membered saturated, partially unsaturated, or aryl ring having 0-4 heteroatoms independently selected from nitrogen, oxygen, or sulfur, or, notwithstanding the definition above, two independent occurrences of R°, taken together with their intervening atom(s), form a 3-12-membered saturated, partially unsaturated, or aryl mono- or bicyclic ring having 0-4 heteroatoms independently selected from nitrogen, oxygen, or sulfur, which may be substituted as defined below.
[0034] Suitable monovalent substituents on R° (or the ring fonned by taking two independent occurrences of R° together with their intervening atoms), are independently halogen. -(C142)o 2R*. -(CH2)O-2NR*2, -NO2, -SiR*3, -OSiR*3, -C(O)SR* -(CIM straight or branched alkylene)C(O)OR*, or - SSR* wherein each R* is unsubstituted or where preceded by “halo” is substituted only with one or more halogens, and is independently selected from CIM aliphatic. -CH2PI1. -0(CBl2)o iPh, or a 5-6-membered saturated, partially unsaturated, or aryl ring having 0-4 heteroatoms independently selected from nitrogen, oxygen, or sulfur. Suitable divalent substituents on a saturated carbon atom of R° include =0 and =S.
[0035] Suitable divalent substituents on a saturated carbon atom of an “optionally substituted” group include the following: =0. =S. =NNR*2, =NNHC(O)R*, =NNHC(O)OR*, =NNHS(O)2R*, =NR*. =NOR*, - O(C(R*2))2-3O-, or-S(C(R*2))2-3S-, wherein each independent occurrence of R* is selected from hydrogen,8BUSINESS.33535475 1410095-005WG (221368)Ci-6 aliphatic which may be substituted as defined below, or an unsubstituted 5-6-membered saturated, partially unsaturated, or aryl ring having 0-4 heteroatoms independently selected from nitrogen, oxygen, or sulfur. Suitable divalent substituents that are bound to vicinal substitutable carbons of an “optionally substituted” group include: -O(CR*2)2 3O-, wherein each independent occurrence of R* is selected from hydrogen, Ci-e aliphatic which may be substituted as defined below, or an unsubstituted 5-6-membered saturated, partially unsaturated, or aryl ring having 0-4 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0036] Suitable substituents on the aliphatic group of R* include halogen, -R*, -(haloR*), -OH, -OR’, -O(haloR*), -CN, -C(O)OH, -C(O)OR’, -NH2, -NHR*. -NR\ or -NO2, wherein each R* is unsubstituted or where preceded by “halo” is substituted only with one or more halogens, and is independently Cu aliphatic, -CH2PI1. -0(CH2)o iPh, or a 5-6-membered saturated, partially unsaturated, or aryl ring having 0-4 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0037] Suitable substituents on a substitutable nitrogen of an “optionally substituted” group include - R:. -NR'2. -C(O)Rt, -C(O)OR\ -C(O)C(O)Rf, -C(O)CH2C(O)Rt, -S(O)2Rt, -S(O)2NR*2, -C(S)NRf2, - C(NH)NR12, or -N(R:)S(O)2R:; wherein each R' is independently hydrogen, Ci , aliphatic which may be substituted as defined below, unsubstituted -OPh, or an unsubstituted 5-6-membered saturated, partially unsaturated, or and ring having 0-4 heteroatoms independently selected from nitrogen, oxygen, or sulfur, or, notwithstanding the definition above, two independent occurrences of R'. taken together with their intervening atom(s) form an unsubstituted 3-12-membered saturated, partially unsaturated, or ary l mono- or bicyclic ring having 0-4 hctcroatoms independently selected from nitrogen, oxygen, or sulfur.
[0038] Suitable substituents on the aliphatic group of R;are independently halogen, -R*, -(haloR*), - OH. -OR*, -O(haloR’). -CN. -C(O)OH, -C(O)OR*. -NH2, -NHR*. -NR’2, or -NO2, wherein each R* is unsubstituted or where preceded by “halo” is substituted only with one or more halogens, and is independently Cw aliphatic, -CH2Ph, -O(CH2)0-iPh, or a 5-6-membered saturated, partially unsaturated, or aryl ring having 0-4 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0039] As used herein, the term "pharmacally acceptable salt" refers to those salts which are, within the scope of sound medical judgment, suitable for use in contact with the tissues of humans and lower animals without undue toxicity, irritation, allergic response and the like, and are commensurate with a reasonable benefit / risk ratio. Pharmacally acceptable salts are well known in the art. For example, S. M. Berge et al., describe pharmaceutically acceptable salts in detail in J. Pharmacal Sciences, 1977, 66, 1-19, incorporated herein by reference. Pharmaceutically acceptable salts of the compounds of this invention include those derived from suitable inorganic and organic acids and bases.
[0040] Salts derived from appropriate bases include alkali metal, alkaline earth metal, ammonium and N (C’i 4alkyl)4 salts. In some embodiments, the provided compounds are purified in salt form for9BUSINESS.33535475 1410095-005WG (221368) convenience and / or ease of purification, e.g., using an acidic or basic mobile phase during chromatography. Salts forms of the provided compounds formed during chromotagraphic purification are contemplated herein (e.g., diammonium salts) and are readily apparent to those having skill in the art.
[0041] Unless otherwise stated, structures depicted herein are also meant to include all isomeric (e.g., enantiomeric, diastereomeric, and geometric (or conformational)) forms of the structure; for example, the R and S configurations for each asymmetric center, Z and E double bond isomers, and Z and E conformational isomers. Therefore, single stereochemical isomers as well as enantiomeric, diastereomeric, and geometric (or conformational) mixtures of the present compounds are within the scope of the invention. Unless otherwise stated, all tautomeric forms of the compounds of the invention are within the scope of the invention. Additionally, unless otherwise stated, structures depicted herein are also meant to include compounds that differ only in the presence of one or more isotopically enriched atoms. For example, compounds having the present structures including the replacement of hydrogen by deuterium or tritium, or the replacement of a carbon by a13C- or14C-enriched carbon are within the scope of this invention. Such compounds are useful, for example, as analytical tools, as probes in biological assays, or as therapeutic agents in accordance with the present invention.
[0042] As used herein, the term about" refers to within 20% of a given value. In some embodiments, the term '‘about” refers to within 20%, 19%. 18%. 17%. 16%. 15%. 14%. 13%. 12%. 11%, 10%, 9%. 8%, 7%, 6%, 5%, 4%, 3%, 2%, or 1% of a given value.3. Description of Exemplary Embodiments:
[0043] In some embodiments, the present invention provides a compound of formula I”:or a pharmaceutically acceptable salt thereof, wherein:— is a single or double bond as allowed by valency:Ring A is a saturated or partially unsaturated 4- to 6-membered monocyclic carbocyclyl, a saturated or partially unsaturated 7- to 8-membered bicyclic spirocyclic carbocyclyl, or a saturated or partially unsaturated 4- to 9-membered fused or bridged bicyclic carbocyclyl;10BUSINESS.33535475 1410095-005WG (221368)X1is N or CR1;X2is N or CR2;X3is N or CR3;X4is N or CR4;X5is N or CR5;X6is N or CR6;X7is N or CR7; each of R1, R2, R3, R4, R5, R6, and R7is independently selected from hydrogen, halogen, -CN, -ORA, -NR2, -C(O)R, -C(0)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur;RAis hydrogen or an optionally substituted group selected from Cue aliphatic or 3-to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur;R8is hydrogen or optionally substituted C1-6 aliphatic; each R9is independently selected from halogen, -CN, -OR, -NR2, or an optionally substituted C1-6 aliphatic; or an R8and an R9group may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; or two R9groups on the same atom may be taken together to form an optionally substituted 3- to 8- membered saturated or partially unsaturated spirocarbocyclyl or spiroheterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; or two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8- membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur;L1is a covalent bond or an optionally substituted bivalent C1-3 saturated or unsaturated, straight or branched, hydrocarbon chain; n is 0. 1. 2, 3, 4. 5. 6, 7, or 8; and each R is independently hydrogen or optionally substituted Ci-6 aliphatic.
[0044] In some embodiments, the present invention provides a compound of formula I’:11BUSINESS.33535475 1410095-005WG (221368)or a pharmaceutically acceptable salt thereof, wherein:X1is N or CR1;X2is N or CR2;X3is N or CR3;X is N or CR4;X5is N or CR5;X6is N or CR6;X7is N or CR7; each of R1, R2, R3, R4, R5, R6, and R7is independently selected from hydrogen, halogen, -CN, -ORA, -NR2, -C(O)R, -C(0)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from Cue aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur;RAis hydrogen or an optionally substituted group selected from Ci-e aliphatic or 3-to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur;R8is hydrogen or optionally substituted Cue aliphatic; each R9is independently selected from halogen, -CN, -OR, -NR2, or an optionally substituted Cue aliphatic; or an R8and an R9group may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; or two R9groups on the same atom may be taken together to form an optionally substituted 3- to 8- membered saturated or partially unsaturated spirocarbocyclyl or spiroheterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; or two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8- membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged12BUSINESS.33535475 1heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur: n is 0, 1, 2, 3, 4, 5, 6, 7, or 8; m is 1 or 2; and each R is independently hydrogen or optionally substituted Ci-6 aliphatic.
[0045] In some embodiments, the present invention provides a compound of formula I:or a pharmaceutically acceptable salt thereof, wherein:X1is N or CR1;X2is N or CR2;X3is N or CR3;X4is N or CR4;X5is N or CR5;X6is N or CR6;X7is N or CR7; each of R1, R2, R3, R4, \ R6, and R7is independently selected from hydrogen, halogen, -CN, -ORA, -NR;, -C(O)R, -C(O)NRi, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from Ci-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur;RAis hydrogen or an optionally substituted group selected from Ci-6 aliphatic or 3-to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur;R8is hydrogen or optionally substituted Ci-6 aliphatic; each R9is independently selected from halogen, -CN, -OR, -NR2, or an optionally substituted Ci-6 aliphatic; or an R8and an R9group may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl13BUSINESS.33535475 1having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; or two R9groups on the same atom may be taken together to form an optionally substituted 3- to 8- membered saturated or partially unsaturated spirocarbocyclyl or spiroheterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; or two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8- membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; n is 0, 1, 2, 3, 4, 5, 6, 7, or 8; and each R is independently hydrogen or optionally substituted Ci-e aliphatic.
[0046] As defined above and described herein. Ring A is a saturated or partially unsaturated 4- to 6- membered monocyclic carbocyclyl, a saturated or partially unsaturated 7- to 8-membered bicyclic spirocyclic carbocyclyl, or a saturated or partially unsaturated 4- to 9-membered fused or bridged bicyclic carbocyclyl.
[0047] In some embodiments, Ring A is a saturated or partially unsaturated 4- to 6-membered monocyclic carbocyclyl. In some embodiments. Ring A is a saturated or partially unsaturated 5-membered monocyclic carbocyclyl. In some embodiments, Ring A is cyclobutyl. In some embodiments. Ring A is cyclobutenyl. In some embodiments, RingIn some embodiments. Ring. [nsome embodiments, Ring A is cyclopentyl. In some embodiments, RingIn some embodiments, RingIn some (R9)n a8embodiments, RingIn some embodiments, Ring A is (R )2 in some embodiments. RingIn some embodiments. RingIn some14BUSINESS.33535475 1embodiments, RingIn some embodiments, RingIn some embodiments, RingIn some embodiments, Ring A is cyclopentenyl . In some embodiments, Ring A is cyclohexyl. In some embodiments, Ring A is cyclohexenyl. In some embodiments,(R9)n (R9)nI — V- N(R8)2I — < / — N(R8)2Ring A is ' — ' In some embodiments, Ring A is ' — ' In some embodiments. Ring A isIn some embodiments, Ring A issome embodiments, Ring A is. In some embodiments, Ring A is(R9)nN(R8)2In some embodiments, Ring A is
[0048] In some embodiments, Ring A is a saturated or partially unsaturated 7- to 8-membered bicyclic spirocyclic carbocyclyL In some embodiments, Ring A is a saturated 7- to 8-membered bicyclic spirocyclic carbocyclyL In some embodiments, Ring A is a saturated 7-membered bicyclic spirocyclic carbocyclyL In some embodiments, Ring A is spiro[3.3]heptanyl. In some embodiments, Ring A isIn some embodiments, Ring A isIn some embodiments, Ring A isIn some embodiments, Ring A is a partially unsaturated 7-membered bicyclic spirocyclic carbocyclyL In some embodiments. Ring A is a saturated 8- membered bicyclic spirocyclic carbocyclyL In some embodiments, Ring A is partially unsaturated 8- membered bicyclic spirocyclic carbocyclyL15BUSINESS.33535475 1
[0050] In some embodiments, Ring A is a saturated or partially unsaturated 4- to 9-membered fused or bridged bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 4- membered fused or bridged bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 4-membered bridged bicyclic carbocyclyl. In some embodiments. Ring A is a saturated or partially unsaturated 4-membered fused bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 5 -membered fused or bridged bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 5 -membered bridged bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 5-membered fused bicyclic carbocyclyl.
[0051] In some embodiments, Ring A is a saturated or partially unsaturated 6- to 9-membered fused or bridged bicyclic carbocyclyl.
[0052] In some embodiments, Ring A is a saturated or partially unsaturated 6-membered fused or bridged bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 6- membered bridged bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 6-membered fused bicyclic carbocyclyl. In some embodiments, Ring A is bicyclohexanyl. In16BUSINESS.33535475 1embodiments, Ringinsome embodiments, Ringsome embodiments, Ring. In some embodiments, Ring. In some embodiments, Ringsome embodiments, Ring
[0053] In some embodiments, Ring A is a saturated or partially unsaturated 7-membered fused or bridged bicyclic carbocyclyl. In some embodiments. Ring A is a saturated or partially unsaturated 7- membered bridged bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 7-membered fused bicyclic carbocyclyl. In some embodiments, Ring A is bicycloheptanyl. In some embodiments, Ringsome embodiments, RingIn some embodiments. Ringin some embodiments, RingIn some embodiments, Ring A isIn some embodiments, Ring A is, some embodiments, Ring A17BUSINESS.33535475 1
[0054] In some embodiments, Ring A is a saturated or partially unsaturated 8-membered fused or bridged bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 8- membered bridged bicyclic carbocyclyl. In some embodiments. Ring A is a saturated or partially unsaturated 8-membered fused bicyclic carbocyclyl. In some embodiments, Ringsome embodiments, Ringinsome embodiments, Ringsome embodiments, Ringin some embodiments, Ringin some embodiments. Ring
[0055] In some embodiments, Ring A is a saturated or partially unsaturated 9-membered fused or18BUSINESS.33535475 1410095-005WG (221368) bridged bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 9- membered bridged bicyclic carbocyclyl. In some embodiments, Ring A is a saturated or partially unsaturated 9-membered fused bicyclic carbocyclyl.
[0056] As defined above and described herein, X1is N or CR1. In some embodiments, X1is N. In some embodiments, X1is CR1.
[0057] As defined above and described herein, X2is N or CR2. In some embodiments, X2is N.some embodiments, X2is CR2.
[0058] As defined above and described herein, X3is N or CR3. In some embodiments, X3is N. In some embodiments, X3is CR3.
[0059] As defined above and described herein, X4is N or CR4. In some embodiments, X4is N. In some embodiments, X4is CR4.
[0060] As defined above and described herein, X5is N or CR5. In some embodiments, X5is N. In some embodiments, X5is CR5.
[0061] As defined above and described herein, X6is N or CRb. In some embodiments. X6is N. In some embodiments, X6is CR6.
[0062] As defined above and described herein, X7is N or CR7. In some embodiments, X7is N. In some embodiments, X7is CR7.
[0063] In some embodiments, at least one of X2, X3, X4, and X5is N. In some embodiments, X2is N and X3is CR3. In some embodiments, X3is N and X2is CR2. In some embodiments. X4is N and X5is CR3. In some embodiments, X3is N and X4is CR4. In some embodiments, X2is N and X3is N. In some embodiments, X4is N and X5is N. In some embodiments, X5is N and X6is N.
[0064] As defined above and described herein, each of R1, R2, R3, R4, R5, R6, and R7is independently selected from hydrogen, halogen, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from Ci-e aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0065] In some embodiments, each of R1, R2, R3, R4, R5, R6, and R7is independently selected from hydrogen, halogen, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, -NRC(O)R. -OC(O)R, or optionally substituted Ci-e aliphatic.
[0066] In some embodiments, R1is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from Ci-e aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-319BUSINESS.33535475 1410095-005WG (221368) heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0067] In some embodiments, R1is selected from bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, - C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R1is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, - NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, phenyl, or a 5- to 6- membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments. R1is selected from bromo, chloro, fluoro, -CN. -ORA, -NR2. -C(O)R, -C(O)NR2, - C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from Cue aliphatic, phenyl, or a 5- to 6-membered hetcroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0068] In some embodiments, R1is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA. -NR2, -C(O)R, -C(O)NR2. -C(O)OR, -NRC(O)R. -OC(O)R, or optionally substituted C1-6 aliphatic. In some embodiments. R1is an optionally substituted group selected from 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered hetcroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0069] In some embodiments. R1is hydrogen. In some embodiments, R1is halogen. In some embodiments. R1is fluoro or chloro. In some embodiments. R1is fluoro. In some embodiments, R1is chloro. In some embodiments, R1is bromo. In some embodiments, R1is -CN.
[0070] In some embodiments, R1is -ORA. In some embodiments, R1is -OH. In some embodiments, R1is -OCH3. In some embodiments, R1is -OCH2CH3. In some embodiments. R1is -OCH2F. In some embodiments, R1is -OCHF2. In some embodiments, R1is -OCF3. In some embodiments, R1is
[0071] In some embodiments, R1is -NR2. In some embodiments, R1is -NH2. In some embodiments, R1is -NR2, wherein each R is independently Ci-6 aliphatic.
[0072] In some embodiments, R1is -C(O)NR2. In some embodiments, R1is -C(O)NH2. In some embodiments, R1is -C(O)NR2, wherein each R is independently C1-6 aliphatic.
[0073] In some embodiments. R1is -C(O)OR. In some embodiments, R1is -C(O)OH. In some embodiments, R1is -C(O)OR, wherein R is C1.6 aliphatic.20BUSINESS.33535475 1
[0074] In some embodiments, R1is -NRC(O)R. In some embodiments, R1is -NHC(O)R, wherein R is Ci-6 aliphatic. In some embodiments, R1is -NRC(O)H, wherein R is Ci-e aliphatic. In some embodiments, R1is -NRC(O)R, wherein each R is independently Ci-e aliphatic.
[0075] In some embodiments, R1is -OC(O)R. In some embodiments, R1is -OC(O)H. In some embodiments. R1is -OC(O)R. wherein R is Ci-6 aliphatic.
[0076] In some embodiments, R1is optionally substituted Cue aliphatic. In some embodiments, R1is Ci-e aliphatic. In some embodiments, R1is methyl. In some embodiments, R1is ethyl. In some embodiments, R1is n-propyl. In some embodiments, R1is isopropyl. In some embodiments, R1is n-butyl. In some embodiments, R1is s-butyl. In some embodiments. R1is t-butyl.
[0077] In some embodiments, R1is Ci-e aliphatic, optionally substituted with halogen or -OR°, wherein R° is hydrogen or Ci-e aliphatic. In some embodiments, R1is Ci-e aliphatic, optionally substituted with halogen. In some embodiments, R1is -CHF2. In some embodiments, R1is -CF3. In some embodiments, R1is -CH2CF3. In some embodiments, R1is Ci-e aliphatic, optionally substituted with -OR°, wherein R° is hydrogen or Ci-e aliphatic. In some embodiments, R1is -CH2OH.
[0078] In some embodiments, R1is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 hctcroatoms independently selected from nitrogen, oxygen, or sulfur.
[0079] In some embodiments, R1is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R1is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R1is an optionally substituted 3- to 6-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R1is an optionally substituted cyclopropyl. In some embodiments, R1is an optionally substituted cyclobutyl. In some embodiments, R1is an optionally substituted cyclopentyl. In some embodiments, R1is an optionally substituted cyclohexyl. In some embodiments, R1is cyclopropyl. In some embodiments, R1is cyclobutyl. In some embodiments, R1is cyclopentyl. In some embodiments, R1is cyclohexyl.
[0080] In some embodiments, R1is an optionally substituted 3- to 8-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R1is an optionally substituted 3- to 6-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0081] In some embodiments, R1is an optionally substituted phenyl. In some embodiments, R1is an optionally substituted 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.21BUSINESS.33535475 1
[0082] In some embodiments, R1is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
[0083] In some embodiments, R2is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR. -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0084] In some embodiments, R2is selected from bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, - C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R2is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, - NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, phenyl, or a 5- to 6- membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments. R2is selected from bromo, chloro, fluoro, -CN. -ORA, -NR2. -C(O)R, -C(O)NR2, - C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1.6 aliphatic, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0085] In some embodiments, R2is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA. -NR2, -C(O)R. -C(O)NR2. -C(O)OR, -NRC(O)R. -OC(O)R, or optionally substituted C1-6 aliphatic. In some embodiments, R2is an optionally substituted group selected from 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0086] In some embodiments. R2is hydrogen. In some embodiments, R2is halogen. In some embodiments, R2is fluoro or chloro. In some embodiments, R2is fluoro. In some embodiments, R2is chloro. In some embodiments, R2is bromo. In some embodiments, R2is -CN.
[0087] In some embodiments, R2is -ORA. In some embodiments, R2is -OH. In some embodiments, R2is -OCH3. In some embodiments, R2is -OCH2CH3. In some embodiments, R2is -OCH2F. In some embodiments, R2is -OCHF2. In some embodiments. R2is -OCF3. In some embodiments, R2is
[0088] In some embodiments, R2is -NR;. In some embodiments, R2is -NH2. In some embodiments.22BUSINESS.33535475 1R2is -NR:, wherein each R is independently Ci-6 aliphatic.
[0089] In some embodiments, R2is -C(O)NR2. In some embodiments, R2is -C(O)NH2. In some embodiments, R2is -C(O)NR2, wherein each R is independently Ci-e aliphatic.
[0090] In some embodiments, R2is -C(O)OR. In some embodiments, R2is -C(O)OH. In some embodiments. R2is -C(O)OR. wherein R is Ci-6 aliphatic.
[0091] In some embodiments, R2is -NRC(O)R. In some embodiments, R2is -NHC(O)R, wherein R is Ci-6 aliphatic. In some embodiments, R2is -NRC(O)H, wherein Ris Ci-e aliphatic. In some embodiments, R2is -NRC(O)R, wherein each R is independently Ci-6 aliphatic.
[0092] In some embodiments, R2is -OC(O)R. In some embodiments, R2is -OC(O)H. In some embodiments, R2is -OC(O)R, wherein R is Ci-6 aliphatic.
[0093] In some embodiments, R2is optionally substituted Ci-e aliphatic. In some embodiments, R2is Ci-6 aliphatic. In some embodiments, R2is methyl. In some embodiments, R2is ethyl. In some embodiments, R2is n-propyl. In some embodiments, R2is isopropyl. In some embodiments, R2is n-butyl. In some embodiments, R2is s-butyl. In some embodiments. R2is t-butyl.
[0094] In some embodiments, R2is Ci.e aliphatic, optionally substituted with halogen or -OR°, wherein R° is hydrogen or Ci-e aliphatic. In some embodiments, R2is Ci-6 aliphatic, optionally substituted with halogen. In some embodiments, R2is -CHF2. In some embodiments, R2is -CF3. In some embodiments, R2is -CH2CF3. In some embodiments, R2is Ci-e aliphatic, optionally substituted with -OR°, wherein R° is hydrogen or Ci-6 aliphatic. In some embodiments, R2is -CH2OH.
[0095] In some embodiments, R2is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0096] In some embodiments, R2is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R2is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R2is an optionally substituted 3- to 6-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R2is an optionally substituted cyclopropyl. In some embodiments, R2is an optionally substituted cyclobutyl. In some embodiments, R2is an optionally substituted cyclopentyl. In some embodiments, R2is an optionally substituted cyclohexyl. In some embodiments, R2is cyclopropyl. In some embodiments, R2is cyclobutyl. In some embodiments, R2is cyclopentyl. In some embodiments, R2is cyclohexyl.
[0097] In some embodiments, R2is an optionally substituted 3- to 8-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.23BUSINESS.33535475 1In some embodiments, R2is an optionally substituted 3- to 6-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0098] In some embodiments, R2is an optionally substituted phenyl. In some embodiments, R2is an optionally substituted 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0099] In some embodiments, R2is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
[0100] In some embodiments, R3is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR. -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0101] In some embodiments, R3is selected from bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, - C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R3is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR - NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, phenyl, or a 5- to 6- membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments. R3is selected from bromo, chloro, fluoro, -CN. -ORA, -NR2. -C(O)R, -C(O)NR2, - C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1.6 aliphatic, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0102] In some embodiments, R3is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA. -NR2, -C(O)R. -C(O)NR2. -C(O)OR, -NRC(O)R. -OC(O)R, or optionally substituted C1-6 aliphatic. In some embodiments, R3is an optionally substituted group selected from 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0103] In some embodiments. R3is hydrogen. In some embodiments, R3is halogen. In some embodiments. R3is fluoro or chloro. In some embodiments, R3is fluoro. In some embodiments, R3is chloro. In some embodiments, R3is bromo. In some embodiments, R3is -CN.
[0104] In some embodiments, R3is -ORA. In some embodiments, R3is -OH. In some embodiments, R324BUSINESS.33535475 1is -OCH3. In some embodiments, R3is -OCH2CH3. In some embodiments, R3is -OCH2F. In some embodiments, R3is -OCHF2. In some embodiments, R3is -OCF3. In some embodiments, R3is
[0105] In some embodiments, R3is -NR2. In some embodiments, R3is -NH2. In some embodiments, R3is -NR2, wherein each R is independently C1-6 aliphatic.[00106J In some embodiments, R3is -C(O)NR2. In some embodiments, R3is -C(O)NH2. In some embodiments, R3is -C(O)NR2, wherein each R is independently Ci-e aliphatic.
[0107] In some embodiments, R3is -C(O)OR. In some embodiments, R3is -C(O)OH. In some embodiments, R3is -C(O)OR, wherein R is C1-6 aliphatic.
[0108] In some embodiments, R3is -NRC(O)R. In some embodiments, R3is -NHC(O)R, wherein R is C1-6 aliphatic. In some embodiments, R3is -NRC(O)H, wherein R is C1-6 aliphatic. In some embodiments, R3is -NRC(O)R, wherein each R is independently Ci-e aliphatic.
[0109] In some embodiments, R3is -OC(O)R. In some embodiments, R3is -OC(O)H. In some embodiments, R3is -OC(O)R, wherein R is C1-6 aliphatic.
[0110] In some embodiments, R3is optionally substituted C1-6 aliphatic. In some embodiments, R3is Ci-6 aliphatic. In some embodiments, R3is methyl. In some embodiments, R3is ethyl. In some embodiments, R3is n-propyl. In some embodiments, R3is isopropyl. In some embodiments, R3is n -butyl. In some embodiments, R3is s-butyl. In some embodiments, R3is t-butyl.
[0111] In some embodiments, R3is C1-6 aliphatic, optionally substituted with halogen or -OR°, wherein R° is hydrogen or C1-6 aliphatic. In some embodiments, R3is C1-6 aliphatic, optionally substituted with halogen. In some embodiments, R3is -CHF2. In some embodiments, R3is -CF3. In some embodiments, R3is -CH2CF3. In some embodiments, R3is Ci-e aliphatic, optionally substituted with -OR°, wherein R° is hydrogen or Ci-e aliphatic. In some embodiments, R3is -CH2OH.
[0112] In some embodiments, R3is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0113] In some embodiments, R3is an optionally substituted 3- to 8-mcmbcrcd saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R3is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R3is an optionally substituted 3- to 6-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R3is an optionally substituted cyclopropyl. In some embodiments, R3is an optionally substituted cyclobutyl . In some embodiments, R325BUSINESS.33535475 1410095-005WG (221368) is an optionally substituted cyclopentyl . In some embodiments, R3is an optionally substituted cyclohexyl. In some embodiments, R3is cyclopropyl. In some embodiments, R3is cyclobutyl. In some embodiments, R3is cyclopentyl. In some embodiments, R3is cyclohexyl.
[0114] In some embodiments, R3is an optionally substituted 3- to 8-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R3is an optionally substituted 3- to 6-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0115] In some embodiments, R3is an optionally substituted phenyl. In some embodiments, R3is an optionally substituted 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0116] In some embodiments, R3is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
[0117] In some embodiments, R4is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR. -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0118] In some embodiments, R4is selected from bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, - C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R4is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, - NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, phenyl, or a 5- to 6- membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments. R4is selected from bromo, chloro, fluoro, -CN. -ORA, -NR2, -C(O)R, -C(O)NR2, - C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from Ci-6 aliphatic, phenyl, or a 5- to 6-membered hetcroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0119] In some embodiments, R4is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA. -NR2, -C(O)R, -C(O)NR2. -C(O)OR, -NRC(O)R. -OC(O)R, or optionally substituted C1-6 aliphatic. In some embodiments. R4is an optionally substituted group selected from 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered hetcroaryl having 1-3 heteroatoms independently selected26BUSINESS.33535475 1410095-005WG (221368) from nitrogen, oxygen, or sulfur.
[0120] In some embodiments, R4is hydrogen. In some embodiments, R4is halogen. In some embodiments, R4is fluoro or chloro. In some embodiments, R4is fluoro. In some embodiments, R4is chloro. In some embodiments, R4is bromo. In some embodiments, R4is -CN.
[0121] In some embodiments, R4is -ORA. In some embodiments, R4is -OH. In some embodiments, R4is -OCH3. In some embodiments, R4is -OCH2CH3. In some embodiments, R4is -OCH2F. In some embodiments, R4is -OCHF2. In some embodiments, R4is -OCF3. In some embodiments, R4is
[0122] In some embodiments, R4is -NR2. In some embodiments, R4is -NH2. In some embodiments, R4is -NR2, wherein each R is independently C1-6 aliphatic.
[0123] In some embodiments, R4is -C(O)NR2. In some embodiments, R4is -C(O)NH2. In some embodiments, R4is -C(O)NR2, wherein each R is independently Ci-e aliphatic.
[0124] In some embodiments, R4is -C(O)OR. In some embodiments, R4is -C(O)OH. In some embodiments, R4is -C(O)OR, wherein R is C1-6 aliphatic.
[0125] In some embodiments, R4is -NRC(O)R. In some embodiments, R4is -NHC(O)R. wherein R is Ci-6 aliphatic. In some embodiments, R4is -NRC(O)H, wherein R is C1.6 aliphatic. In some embodiments, R4is -NRC(O)R, wherein each R is independently Ci-e aliphatic.
[0126] In some embodiments, R4is -OC(O)R. In some embodiments, R4is -OC(O)H. In some embodiments, R4is -OC(O)R, wherein R is C1-6 aliphatic.
[0127] In some embodiments, R4is optionally substituted Cue aliphatic. In some embodiments, R4is C1-6 aliphatic. In some embodiments, R4is methyl. In some embodiments, R4is ethyl. In some embodiments, R4is n-propyl. In some embodiments, R4is isopropyl. In some embodiments, R4is n -butyl. In some embodiments, R4is s-butyl. In some embodiments, R4is t-butyl.
[0128] In some embodiments. R4is Ci-6 aliphatic, optionally substituted with halogen or -OR°, wherein R° is hydrogen or Ci-6 aliphatic. In some embodiments, R4is Ci-6 aliphatic, optionally substituted with halogen. In some embodiments, R4is -CHF2. In some embodiments, R4is -CF3. In some embodiments, R4is -CH2CF3. In some embodiments, R4is Ci-e aliphatic, optionally substituted with -OR°, wherein R° is hydrogen or Ci-6 aliphatic. In some embodiments, R4is -CH2OH.
[0129] In some embodiments, R4is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0130] In some embodiments, R4is an optionally substituted 3- to 8-membered saturated or partially27BUSINESS.33535475 1410095-005WG (221368) unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R4is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R4is an optionally substituted 3- to 6-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R4is an optionally substituted cyclopropyl. In some embodiments, R4is an optionally substituted cyclobutyl. In some embodiments, R4is an optionally substituted cyclopentyl. In some embodiments, R4is an optionally substituted cyclohexyl. In some embodiments, R4is cyclopropyl. In some embodiments, R4is cyclobutyl. In some embodiments, R4is cyclopentyl. In some embodiments, R4is cyclohexyl.
[0131] In some embodiments, R4is an optionally substituted 3- to 8-mcmbcrcd saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R4is an optionally substituted 3- to 6-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0132] In some embodiments, R4is an optionally substituted phenyl. In some embodiments, R4is an optionally substituted 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0133] In some embodiments. R4is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
[0134] In some embodiments, R5is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from Ci.g aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0135] In some embodiments, R5is selected from bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, - C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from Ci-e aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R5is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, - NRC(O)R, -OC(O)R, or an optionally substituted group selected from Ci-e aliphatic, phenyl, or a 5- to 6- membered hctcroaryl having 1-3 hctcroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R5is selected from bromo, chloro, fluoro, -CN. -ORA, -NR2, -C(O)R, -C(O)NR2, - C(O)OR, -NRC(O)R, -OC(O)R. or an optionally substituted group selected from C1-6 aliphatic, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.28BUSINESS.33535475 1410095-005WG (221368)
[0136] In some embodiments, R5is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR;, -C(O)R, -C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or optionally substituted Ci-c aliphatic. In some embodiments, R5is an optionally substituted group selected from 3- to 8-mcmbcrcd saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0137] In some embodiments, R5is hydrogen. In some embodiments, R5is halogen. In some embodiments, R5is fluoro or chloro. In some embodiments, R5is fluoro. In some embodiments, R5is chloro. In some embodiments, R5is bromo. In some embodiments, R5is -CN.
[0138] In some embodiments, R5is -ORA. In some embodiments, R3is -OH. In some embodiments, R3is -OCHs. In some embodiments, R3is -OCH2CH3. In some embodiments, R5is -OCH2F. In some embodiments, R3is -OCHF2. In some embodiments, R5is -OCF3. In some embodiments, R5is
[0139] In some embodiments, R5is -NR2. In some embodiments, R5is -NH2. In some embodiments, R5is -NR2, wherein each R is independently C1-6 aliphatic.
[0140] In some embodiments, R3is -C(O)NR2. In some embodiments, R5is -C(O)NH2. In some embodiments, R3is -C(O)NR2, wherein each R is independently Cue aliphatic.
[0141] In some embodiments, R5is -C(O)OR. In some embodiments, R5is -C(O)OH. In some embodiments, R5is -C(O)OR, wherein R is C1-6 aliphatic.
[0142] In some embodiments, R3is -NRC(O)R. In some embodiments, R3is -NHC(O)R, wherein R is C1-6 aliphatic. In some embodiments, R5is -NRC(O)H, wherein R is C1-6 aliphatic. In some embodiments, R5is -NRC(O)R, wherein each R is independently Ci-e aliphatic.
[0143] In some embodiments, R5is -OC(O)R. In some embodiments, R5is -OC(O)H. In some embodiments, R5is -OC(O)R, wherein R is C1-6 aliphatic.
[0144] In some embodiments, R5is optionally substituted C1-6 aliphatic. In some embodiments, R5is Ci-6 aliphatic. In some embodiments, R5is methyl. In some embodiments, R5is ethyl. In some embodiments, R3is n-propyl. In some embodiments, R5is isopropyl. In some embodiments, R5is n -butyl. In some embodiments, R5is s-butyl. In some embodiments, R5is t-butyl.
[0145] In some embodiments, R5is C1-6 aliphatic, optionally substituted with halogen or -OR°, wherein R° is hydrogen or C1-6 aliphatic. In some embodiments, R5is C1-6 aliphatic, optionally substituted with halogen. In some embodiments, R5is -CHF2. In some embodiments, R5is -CF3. In some embodiments, R3is -CH2CF3. In some embodiments, R5is Ci-e aliphatic, optionally substituted with -OR°, wherein R° is hydrogen or Cue aliphatic. In some embodiments, R5is -CH2OH.29BUSINESS.33535475 1410095-005WG (221368)
[0146] In some embodiments, R5is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-mcmbcrcd hctcroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0147] In some embodiments, R' is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R5is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R5is an optionally substituted 3- to 6-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R5is an optionally substituted cyclopropyl. In some embodiments, R5is an optionally substituted cyclobutyl. In some embodiments, R’ is an optionally substituted cyclopentyl. In some embodiments. R5is an optionally substituted cyclohexyl. In some embodiments, R5is cyclopropyl. In some embodiments, R5is cyclobutyl. In some embodiments, R5is cyclopentyl. In some embodiments, R5is cyclohexyl.
[0148] In some embodiments, R5is an optionally substituted 3- to 8-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R5is an optionally substituted 3- to 6-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0149] In some embodiments, R5is an optionally substituted phenyl. In some embodiments, R5is an optionally substituted 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0150] In some embodiments. R is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
[0151] In some embodiments, R6is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0152] In some embodiments, R6is selected from bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, - C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R6is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, - NRC(O)R, -OC(O)R, or an optionally substituted group selected from Cue aliphatic, phenyl, or a 5- to 6- 30BUSINESS.33535475 1410095-005WG (221368) membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R6is selected from bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(0)NR2, - C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from Ci-e aliphatic, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0153] In some embodiments, Rbis selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or optionally substituted Ci-e aliphatic. In some embodiments, R6is an optionally substituted group selected from 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0154] In some embodiments, R6is hydrogen. In some embodiments, R6is halogen. In some embodiments, R6is fluoro or chloro. In some embodiments, R6is fluoro. In some embodiments, R6is chloro. In some embodiments, R6is bromo. In some embodiments, R6is -CN.
[0155] In some embodiments, R6is -ORA. In some embodiments, R6is -OH. In some embodiments, R6is -OCH3. In some embodiments, R6is -OCH2CH3. In some embodiments, Rbis -OCH2F. In some embodiments, R' is -OCHF2. In some embodiments, R' is -OCF3. In some embodiments, R6is
[0156] In some embodiments, R6is -NR2. In some embodiments, R6is -NH2. In some embodiments, R6is -NR2, wherein each R is independently C1-6 aliphatic.
[0157] In some embodiments, R6is -C(O)NR2. In some embodiments, R6is -C(O)NH2. In some embodiments, R is -C(O)NR2, wherein each R is independently C1.6 aliphatic.
[0158] In some embodiments, R6is -C(O)OR. In some embodiments, R6is -C(O)OH. In some embodiments, R6is -C(O)OR, wherein R is C1-6 aliphatic.
[0159] In some embodiments, R6is -NRC(O)R. In some embodiments, Rbis -NHC(O)R, wherein R is Ci-e aliphatic. In some embodiments, Rbis -NRC(O)H, wherein R is Ci-6 aliphatic. In some embodiments, R6is -NRC(O)R, wherein each R is independently Ci-e aliphatic.
[0160] In some embodiments, R6is -OC(O)R. In some embodiments, R6is -OC(O)H. In some embodiments, R6is -OC(O)R, wherein R is C1-6 aliphatic.
[0161] In some embodiments, R6is optionally substituted Ci-6 aliphatic. In some embodiments, R6is Ci-e aliphatic. In some embodiments, Rbis methyl. In some embodiments, R' is ethyl. In some embodiments, Rbis n-propyl. In some embodiments, R6is isopropyl. In some embodiments, R6is n-butyl. In some embodiments, R6is s-butyl. In some embodiments, R6is t-butyl.31BUSINESS.33535475 1410095-005WG (221368)
[0162] In some embodiments, R6is Ci.6 aliphatic, optionally substituted with halogen or -OR°, wherein R° is hydrogen or Cue aliphatic. In some embodiments, R6is Cue aliphatic, optionally substituted with halogen. In some embodiments, R6is -CHF2. In some embodiments, R6is -CF3. In some embodiments, R6is -CH2CF3. In some embodiments, R6is Cue aliphatic, optionally substituted with -OR°, wherein R° is hydrogen or C1-6 aliphatic. In some embodiments, R6is -CH2OH.
[0163] In some embodiments, R6is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered hetcroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0164] In some embodiments, R6is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R6is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R6is an optionally substituted 3- to 6-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R6is an optionally substituted cyclopropyl. In some embodiments, R6is an optionally substituted cyclobutyl. In some embodiments, R6is an optionally substituted cyclopentyl. In some embodiments, R6is an optionally substituted cyclohexyl. In some embodiments, R6is cyclopropyl. In some embodiments, R6is cyclobutyl. In some embodiments, R6is cyclopentyl. In some embodiments, Rbis cyclohexyl.
[0165] In some embodiments, R6is an optionally substituted 3- to 8-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R6is an optionally substituted 3- to 6-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0166] In some embodiments, R6is an optionally substituted phenyl. In some embodiments, R6is an optionally substituted 5- to 6-mcmbcrcd hetcroaryl having 1-3 hctcroatoms independently selected from nitrogen, oxygen, or sulfur.
[0167] In some embodiments. R6is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
[0168] In some embodiments, R7is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from Ci.g aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0169] In some embodiments, R7is selected from bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, - C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, 32BUSINESS.33535475 1410095-005WG (221368) a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R7is selected from hydrogen, bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(0)NR2, -C(O)OR, - NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, phenyl, or a 5- to 6- membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R7is selected from bromo, chloro, fluoro, -CN, -ORA, -NR2, -C(O)R, -C(0)NR2, - C(O)OR, -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0170] In some embodiments, R7is selected from hydrogen, bromo, chloro, fluoro. -CN, -ORA. -NR2, -C(O)R, -C(O)NR2, -C(O)OR, -NRC(O)R, -OC(O)R, or optionally substituted Ci .6 aliphatic. In some embodiments, R7is an optionally substituted group selected from 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0171] In some embodiments. R7is hydrogen. In some embodiments, R7is halogen. In some embodiments, R7is fluoro or chloro. In some embodiments, R7is fluoro. In some embodiments, R7is chloro. In some embodiments, R7is bromo. In some embodiments, R7is -CN.
[0172] In some embodiments, R7is -ORA. In some embodiments, R7is -OH. In some embodiments, R7is -OCH3. In some embodiments, R7is -OCH2CH3. In some embodiments, R7is -OCH2F. In some embodiments, R7is -OCHF2. In some embodiments. R7is -OCF3. In some embodiments, R7is
[0173] In some embodiments, R7is -NR2. In some embodiments, R7is -NH2. In some embodiments, R7is -NR2, wherein each R is independently Ci-e aliphatic.
[0174] In some embodiments, R7is -C(O)NR2. In some embodiments, R7is -C(O)NH2. In some embodiments. R7is -C(O)NR2, wherein each R is independently C1-6 aliphatic.
[0175] In some embodiments, R7is -C(O)OR. In some embodiments, R7is -C(O)OH. In some embodiments, R7is -C(O)OR, wherein R is Ci-e aliphatic.
[0176] In some embodiments, R7is -NRC(O)R. In some embodiments, R7is -NHC(O)R, wherein R is C1-6 aliphatic. In some embodiments, R7is -NRC(O)H, wherein R is C1-6 aliphatic. In some embodiments, R7is -NRC(O)R, wherein each R is independently Ci-6 aliphatic.
[0177] In some embodiments, R7is -OC(O)R. In some embodiments, R7is -OC(O)H. In some33BUSINESS.33535475 1embodiments, R7is -OC(O)R, wherein R is Ci .6 aliphatic.
[0178] In some embodiments, R7is optionally substituted Ci-e aliphatic. In some embodiments, R7is Ci-6 aliphatic. In some embodiments, R7is methyl. In some embodiments, R7is ethyl. In some embodiments, R7is n-propyl. In some embodiments, R7is isopropyl. In some embodiments, R7is n-butyl. In some embodiments, R7is s-butyl. In some embodiments. R7is t-butyl.
[0179] In some embodiments, R7is Ci.e aliphatic, optionally substituted with halogen or -OR°, wherein R° is hydrogen or Ci-e aliphatic. In some embodiments, R7is Ci-6 aliphatic, optionally substituted with halogen. In some embodiments, R7is -CHF2. In some embodiments, R7is -CF3. In some embodiments, R7is -CH2CF3. In some embodiments, R7is Ci-e aliphatic, optionally substituted with -OR°, wherein R° is hydrogen or C1-6 aliphatic. In some embodiments, R7is -CH2OH.
[0180] In some embodiments, R7is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered hetcroar l having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0181] In some embodiments, R7is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R7is an optionally substituted 3- to 8-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R7is an optionally substituted 3- to 6-membered saturated or partially unsaturated carbocyclyl. In some embodiments, R7is an optionally substituted cyclopropyl. In some embodiments, R7is an optionally substituted cyclobutyl. In some embodiments, R7is an optionally substituted cyclopentyl. In some embodiments, R7is an optionally substituted cyclohexyl. In some embodiments, R7is cyclopropyl. In some embodiments, R7is cyclobutyl. In some embodiments, R7is cyclopentyl. In some embodiments, R7is cyclohexyl.
[0182] In some embodiments, R7is an optionally substituted 3- to 8-mcmbcrcd saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, R7is an optionally substituted 3- to 6-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0183] In some embodiments, R7is an optionally substituted phenyl. In some embodiments, R7is an optionally substituted 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0184] In some embodiments. R7is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
[0185] As defined above and described herein, RAis hydrogen or an optionally substituted group selected from Ci-6 aliphatic or 3-to 8-membered saturated or partially unsaturated carbocyclyl or 34BUSINESS.33535475 1heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0186] In some embodiments, RAis hydrogen or an optionally substituted Ci-e aliphatic. In some embodiments, RAis hydrogen. In some embodiments, RAis optionally substituted Ci-6 aliphatic. In some embodiments, RAis CH2F. In some embodiments, RAis CHF2. In some embodiments, RAis CF3. In some embodiments, RAis C1-6 aliphatic. In some embodiments, RAis methyl. In some embodiments, RAis ethyl. In some embodiments, RAis n-propyl. In some embodiments, RAis isopropyl. In some embodiments, RAis n-butyl. In some embodiments, RAis s-butyl. In some embodiments, RAis t-butyl.
[0187] In some embodiments, RAis an optionally substituted 3-to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, RAis an optionally substituted 3-to 8-membered saturated or partially unsaturated carbocyclyl. In some embodiments, RAis an optionally substituted 3-to 6-membered saturated or partially unsaturated carbocyclyl. In some embodiments, RAis an optionally substituted cyclopropyl. In some embodiments, RAis an optionally substituted cyclobutyl. In some embodiments, RAis an optionally substituted cyclopentyl. In some embodiments, RAis an optionally substituted cyclohexyl. In some embodiments, RAis cyclopropyl. In some embodiments, RAis cyclobutyl. In some embodiments, RAis cyclopentyl. In some embodiments, RAis cyclohexyl.
[0188] In some embodiments. RAis an optionally substituted 3-to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, RAis an optionally substituted 3- to 6-membered saturated or partially unsaturated heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0189] As defined above and described herein, Rsis hydrogen or optionally substituted C1-6 aliphatic: each R9is independently selected from halogen, -CN, -OR, -NR2, or an optionally substituted Ci-e aliphatic; or an R8and an R9group may be taken together to form an optionally substituted 3-to 8-membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; or two R9groups on the same atom may be taken together to fonn an optionally substituted 3- to 8-membered saturated or partially unsaturated spirocarbocyclyl or spiroheterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; or two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0190] In some embodiments. R8is hydrogen or optionally substituted Ci-6 aliphatic. In some embodiments, Rsis hydrogen. In some embodiments, R8is optionally substituted Ci-6 aliphatic. In some embodiments, R8is Ci-6 aliphatic. In some embodiments, R8is methyl. In some embodiments, R8is ethyl.35BUSINESS.33535475 1410095-005WG (221368)In some embodiments, R8is n-propyl. In some embodiments, R8is isopropyl. In some embodiments, R8is n-butyl. In some embodiments, R8is s-butyL In some embodiments, R8is t-butyl.
[0191] In some embodiments, R8is Ci-e aliphatic, optionally substituted with halogen. In some embodiments, R8is -CH2F. In some embodiments. R8is -CHF2. In some embodiments, R8is -CF3.
[0192] In some embodiments, each R9is independently selected from halogen, -CN, -OR -NR2, or an optionally substituted Ci.e aliphatic. In some embodiments, R9is halogen. In some embodiments, R9is fluoro. In some embodiments, R9is chloro. In some embodiments, R9is bromo. In some embodiments, R9is -CN. In some embodiments, R9is -OR. In some embodiments, R9is -OH. In some embodiments, R9is -OR wherein R is C1-6 aliphatic. In some embodiments, R9is -NR2. In some embodiments, R9is -NH2. In some embodiments, R9is -NR2, wherein each R is independently C1-6 aliphatic. In some embodiments, R9is an optionally substituted Ci-6 aliphatic. In some embodiments. R9is Ci-6 aliphatic. In some embodiments, R9is methyl. In some embodiments, R9is ethyl. In some embodiments, R9is n-propyl. In some embodiments, R9is isopropyl. In some embodiments, R9is n-butyl. In some embodiments, R9is s- butyl. In some embodiments, R9is t-butyl. In some embodiments, R9is cyclopropyl. In some embodiments, R9is cyclobutyl. In some embodiments, R9is cyclopentyl. In some embodiments, R9is cyclohexyl. In some embodiments, R9is Ci-6 aliphatic, optionally substituted with halogen. In some embodiments. R9is Ci.e aliphatic, optionally substituted with fluoro. In some embodiments, R9is -CF3.
[0193] In some embodiments, an R8and an R9group may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, an R8and an R9group may be taken together to form an optionally substituted 3- to 8- membered saturated or partially unsaturated fused or bridged carbocyclyl. In some embodiments, an R8and an R9group may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, an R8and an R9group may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated bridged carbocyclyl. In some embodiments, an R8and an R9group may be taken together to form an optionally substituted 3- to 8- membered saturated or partially unsaturated bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, an R8and an R9group may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused carbocyclyl. In some embodiments, an R8and an R9group may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0194] In some embodiments, two R9groups on the same atom may be taken together to form an36BUSINESS.33535475 1optionally substituted 3- to 8-membered saturated or partially unsaturated spirocarbocyclyl or spiroheterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, two R9groups on tire same atom may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated spirocarbocyclyl. In some embodiments, two R9groups on the same atom may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated spiroheterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0195] In some embodiments, two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged carbocyclyl. In some embodiments, two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated bridged carbocyclyl. In some embodiments, two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur. In some embodiments, two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused carbocyclyl. In some embodiments, two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
[0196] As defined above and described herein, n is 0, 1, 2, 3, 4, 5, 6, 7, or 8. In some embodiments, n is 0, 1, 2, 3, or 4. In some embodiments, n is 0, 1, or 2. In some embodiments, n is 0. In some embodiments, n is 1. In some embodiments, n is 2. In some embodiments, n is 3. In some embodiments, n is 4. In some embodiments, n is 5. In some embodiments, n is 6. In some embodiments, n is 7. In some embodiments, n is 8.
[0197] As defined above and described herein, m is 1 or 2. In some embodiments, m is 1. In some embodiments, m is 2.
[0198] As defined above and described herein, p is 1, 2, or 3. In some embodiments, p is 1. In some embodiments, p is 2. In some embodiments, p is 3. In some embodiments, p is 1 or 2. In some embodiments, p is 2 or 3. In some embodiments, p is 1 or 3.37BUSINESS.33535475 1
[0199] As defined above and described herein, each R is independently hydrogen or optionally substituted Ci-e aliphatic. In some embodiments, R is hydrogen. In some embodiments, R is optionally substituted Ci-6 aliphatic. In some embodiments, R is Ci-e aliphatic. In some embodiments, R is methyl. In some embodiments, R is ethyl. In some embodiments, R is n-propyl. In some embodiments, R is isopropyl. In some embodiments, R is n-butyl. In some embodiments. R is s-butyl. In some embodiments, R is t-butyl.
[0200] As defined above and described herein, L1is a covalent bond or an optionally substituted bivalent C1-3 saturated or unsaturated, straight or branched, hydrocarbon chain. In some embodiments, L1is a covalent bond. In some embodiments, L1is an optionally substituted bivalent C1.3 saturated or unsaturated, straight or branched, hydrocarbon chain. In some embodiments, L1is a bivalent C1.3 saturated or unsaturated, straight or branched, hydrocarbon chain. In some embodiments. L1is a bivalent C1.3 saturated straight hydrocarbon chain. In some embodiments, L1is -CH2-. In some embodiments, L1is a covalent bond or -CH2-.
[0201] In some embodiments, the present disclosure provides a compound of formula I”-A:or a pharmaceutically acceptable salt thereof, wherein p is 1, 2, or 3, and each of X1, X2. X3. X4. X5. X6.X7, R8, R9and n is defined and described in classes and subclasses herein, both singly and in combination.
[0202] In some embodiments, the present disclosure provides a compound of formulae Il-a or Il-b:or a pharmaceutically acceptable salt thereof, wherein each of X1, X2, X3, X4, X5, X6, X7, R8, R9and n is38BUSINESS.33535475 1defined and described in classes and subclasses herein, both singly and in combination.
[0203] It will be understood that, unless otherwise specified or prohibited by the foregoing definition of formulae Il-a and Il-b, embodiments of variables X1, X2, X3, X4, X5, X6, X7, R8, R9and n as defined above and described in classes and subclasses herein, also apply to compounds of fonnulae Il-a and Il-b, both singly and in combination.
[0204] In some embodiments, the present disclosure provides a compound of formulae Il-al, Il-bl orII-cl:or a pharmaceutically acceptable salt thereof, wherein each of X1, X2, X3, X4, X5, X6, X7, R8, R9and n is defined and described in classes and subclasses herein, both singly and in combination.
[0205] It will be understood that, unless otherwise specified or prohibited by the foregoing definition of fonnulae Il-al, Il-bl and II-cl, embodiments of variables X1, X2, X3, X4, X5, X6, X7, R8, R9and n as defined above and described in classes and subclasses herein, also apply to compounds of formulae Il-al,II-bl and II-cl, both singly and in combination.
[0206] In some embodiments, the present disclosure provides a compound of formulae Ill-a. Ill-b,III-c, Ill-d, Ill-e, Ill-f, Ill-g, Ill-h, Ill-i, Ill-j, Ill-k, or Ill-m39BUSINESS.33535475 1defined and described in classes and subclasses herein, both singly and in combination.
[0207] It will be understood that, unless otherwise specified or prohibited by the foregoing definition of formulae Ill-a, Ill-b, III-c, Ill-d, Ill-e, Ill-f, Ill-g, III-h, Ill-i, Ill-j, Ill-k, and Ill-m, embodiments of variables X1, X2, X3, X4, X5, X6, X7, R8, R9and n as defined above and described in classes and subclasses herein, also apply to compounds of formulae Ill-a, Ill-b, III-c, Ill-d. Ill-e, Ill-f. Ill-g, III-h, Ill-i, Ill-j, Ill-k, and Ill-m, both singly and in combination.
[0208] In some embodiments, the present disclosure provides a compound of formulae Ill-al, Ill-bl, III-cl, Ill-dl, Ill-el, Ill-fl, Ill-gl, III-h 1, Ill-il, Ill-jl, Ill-kl, or Ill-ml41BUSINESS.33535475 1or a pharmaceutically acceptable salt thereof, wherein each of X1, X2, X3, X4, X5, X6, X7, R8, R9and n is defined and described in classes and subclasses herein, both singly and in combination.
[0209] It will be understood that, unless otherwise specified or prohibited by the foregoing definition of formulae Ill-al, Ill-bl, III-cl. IILdl. Ill-el, Ill-fl, Ill-gl. Ill-hl, IILil, Ill-jl. IILkl. and IILml, embodiments of variables X1, X2, X3, X4, X3, X6, X7, Rs, R9and n as defined above and described in classes and subclasses herein, also apply to compounds of Ill-al, Ill-bl, III-cl, Ill-dl, Ill-el, Ill-fl, III-gl, III- hl, Ill-il, Ill-jl, Ill-kl, and Ill-ml, both singly and in combination.
[0210] In some embodiments, the present disclosure provides a compound of formulae IV-a. IV-b,IV-c, IV-d, IV-e, IV-f. IV-g. IV-h, IV-i, IV-j, IV-k, IV-m. IV-n. IV-o. IV-p, IV-q, IV-r. or IV-s:42BUSINESS.33535475 143BUSINESS.335354751or a pharmaceutically acceptable salt thereof, wherein each of R1, R2, R3, R4, R5, R6, R7, R8. R9and n is defined and described in classes and subclasses herein, both singly and in combination.[00211J It will be understood that, unless otherwise specified or prohibited by the foregoing definition of formulae IV-a, IV-b, IV-c, IV-d, IV-e, IV-f, IV-g, IV-h, IV-i, IV-j, IV-k, IV-m, IV-n, IV-o, IV-p, IV-q, IV-r, and IV-s, embodiments of variables R1, R2, R3, R4, R5, R6, R7, R8, R9and n as defined above and described in classes and subclasses herein, also apply to compounds of formulae IV-a, IV-b, IV-c, IV-d, IV-e, IV-f, IV-g, IV-h, IV-i. IV-j, IV-k, IV-m, IV-n, IV-o, IV-p, IV-q, IV-r, and IV-s, both singly and in combination.
[0212] In some embodiments, the present disclosure provides a compound of formulae TV-al, IV-bl, IV-cl, IV-dl, IV-el, IV-fl, IV-gl, IV-hl, IV-il, IV-jl, IV-kl, IV-ml, IV-nl, IV-ol, IV-pl, IV-ql, IV-rl, or IV-sl:44BUSINESS.33535475 1BUSINESS.335354751or a pharmaceutically acceptable salt thereof, wherein each of R1, R2, R3, R4, R5, R6, R7, R8, R9and n is defined and described in classes and subclasses herein, both singly and in combination.
[0213] It will be understood that, unless otherwise specified or prohibited by the foregoing definition of formulae IV-al, IV-bl, IV-cl, IV-dl, IV-el, IV-fl, IV-gl, IV-hl, IV-il, IV-jl, IV-kl, IV-ml, IV-nl, IV-ol, IV-pl, IV-ql, IV-rl, and IV-sl, embodiments of variables R1, R2, R3, R4, R5, R6, R7, R8, R9and n as defined above and described in classes and subclasses herein, also apply to compounds of formulae IV- al, IV-bl. IV-cl, IV-dl. IV-el, IV-fl, IV-gl, IV-hl, IV-il, IV-jl, IV-kl, IV-ml, IV-nl. IV-ol, IV-pl, IV- ql, IV-rl. and IV-sl, both singly and in combination.
[0214] In some embodiments, the present disclosure provides a compound selected from those depicted in Table 1, or a pharmaceutically acceptable salt thereof.46BUSINESS.33535475 1Table 147BUSINESS.33535475148BUSINESS.33535475149BUSINESS.33535475150BUSINESS.335354751BUSINESS.33535475152BUSINESS.33535475153BUSINESS.33535475154BUSINESS.33535475155BUSINESS.335354751BUSINESS.33535475157BUSINESS.335354751
[0215] In some embodiments, the present invention provides a compound set forth in Table 1, above, or a pharmaceutically acceptable salt thereof. In some embodiments, the present invention provides a compound set forth in Table 1, above.4. Uses, Formulation and AdministrationPharmaceutically acceptable compositions
[0216] According to another embodiment, the invention provides a composition comprising a provided compound, or a pharmaceutically acceptable salt thereof, and a pharmaceutically acceptable carrier, adjuvant, or vehicle. In some embodiments, the amount of compound in compositions of this invention is such that is effective to measurably activate 5-HT2AR, or a mutant thereof, in a biological sample or in a patient. In some embodiments, a composition of this invention is formulated for administration to a patient in need of such composition.
[0217] In some embodiments, the present invention provides a pharmaceutical composition comprising a provided compound (described in embodiments herein, both singly and in combination), or a pharmacally acceptable salt thereof, together with a pharmacally acceptable carrier, adjuvant, or vehicle. For example, in some embodiments, the present invention provides a pharmaceutical composition comprising a provided compound, or a pharmaceutically acceptable salt thereof, together with a pharmaceutically acceptable carrier, adjuvant, or vehicle. In some embodiments, the present invention provides a pharmaceutical composition comprising a compound set forth in Table 1 above, or a pharmaceutically acceptable salt thereof, together with a pharmaceutically acceptable carrier, adjuvant, or vehicle.
[0218] The term "‘patient” as used herein, means an animal, preferably a mammal, and most preferably a human.
[0219] Tire term “pharmaceutically acceptable carrier, adjuvant, or vehicle” refers to a non-toxic carrier, adjuvant, or vehicle that docs not destroy tire pharmacological activity of the compound with which it is formulated. Pharmaceutically acceptable carriers, adjuvants or vehicles that may be used in the compositions of this invention include, but are not limited to, ion exchangers, alumina, aluminum stearate,58BUSINESS.33535475 1lecithin, serum proteins, such as human serum albumin, buffer substances such as phosphates, glycine, sorbic acid, potassium sorbate, partial glyceride mixtures of saturated vegetable fatty acids, water, salts or electrolytes, such as protamine sulfate, disodium hydrogen phosphate, potassium hydrogen phosphate, sodium chloride, zinc salts, colloidal silica, magnesium trisilicate, polyvinyl pyrrolidone, cellulose-based substances, polyethylene glycol, sodium carboxymethylcellulose, polyacrylates, waxes, polyethylene- polyoxypropylene-block polymers, polyethylene glycol and wool fat.
[0220] Compositions of the present invention may be administered orally, parenterally, by inhalation spray, topically, rectally, nasally, buccally, vaginally or via an implanted reservoir. The term "parenteral" as used herein includes subcutaneous, intravenous, intramuscular, intra-articular, intra-synovial, intrastemal, intrathecal, intraliepatic. intralesional and intracranial injection or infusion techniques. Preferably, tire compositions are administered orally, intraperitoneally or intravenously. Sterile injectable forms of the compositions of this invention may be aqueous or oleaginous suspension. These suspensions may be formulated according to techniques known in the art using suitable dispersing or wetting agents and suspending agents. The sterile injectable preparation may also be a sterile injectable solution or suspension in a non-toxic parenterally acceptable diluent or solvent. In addition, sterile, fixed oils are conventionally employed as a solvent or suspending medium.
[0221] For this purpose, any bland fixed oil may be employed including synthetic mono- or diglycerides. Fatty acids are useful in the preparation of injectables, as are natural pharmaceutically- acceptable oils. These oil solutions or suspensions may also contain a long-chain alcohol diluent or dispersant, for the formulation of pharmaceutically acceptable dosage forms including emulsions and suspensions. Other commonly used surfactants and other emulsifying agents or bioavailability enhancers which are commonly used in the manufacture of pharmaceutically acceptable solid, liquid, or other dosage forms may also be used for the purposes of formulation.
[0222] Pharmaceutically acceptable compositions of this invention may be orally administered in any orally acceptable dosage form including, but not limited to, capsules, tablets, aqueous suspensions or solutions. In the case of tablets for oral use, carriers may be included. Lubricating agents are also typically added. For oral administration in a capsule fonn, diluents may be included. When aqueous suspensions are required for oral use, the active ingredient is combined with emulsifying and suspending agents. If desired, certain sweetening, flavoring or coloring agents may also be added. Such formulations may be administered with or without food. In some embodiments, pharmaceutically acceptable compositions of this invention arc administered without food. In other embodiments, pharmaceutically acceptable compositions of this invention are administered with food.
[0223] Alternatively, pharmaceutically acceptable compositions of this invention may be administered in the form of suppositories for rectal administration. These can be prepared by mixing the agent with a59BUSINESS.33535475 1410095-005WG (221368) suitable non-irritating excipient that is solid at room temperature but liquid at rectal temperature and therefore will melt in the rectum to release the drug.
[0224] Pharmaceutically acceptable compositions of this invention may also be administered topically, especially when the target of treatment includes areas or organs readily accessible by topical application, including diseases of tire eye, the skin, or the lower intestinal tract. Suitable topical formulations are readily prepared for each of these areas or organs.
[0225] Topical application for the lower intestinal tract can be effected in a rectal suppository formulation (see above) or in a suitable enema formulation. Topically-transdennal patches may also be used.
[0226] For topical applications, provided pharmaceutically acceptable compositions may be formulated in a suitable ointment containing the active component suspended or dissolved in one or more carriers. Alternatively, provided pharmaceutically acceptable compositions can be formulated in a suitable lotion or cream containing tire active components suspended or dissolved in one or more pharmaceutically acceptable carriers
[0227] For ophthalmic use. provided pharmaceutically acceptable compositions may be fonnulated as micronized suspensions in isotonic, pH adjusted sterile saline, or, preferably, as solutions in isotonic, pH adjusted sterile saline, either with or without a preservative. Alternatively, for ophthalmic uses, the pharmaceutically acceptable compositions may be formulated in an ointment.
[0228] Pharmaceutically acceptable compositions of this invention may also be administered by nasal aerosol or inhalation. Such compositions are prepared according to techniques well-known in the art of pharmaceutical formulation and may be prepared as solutions in saline, employing suitable preservatives, absorption promoters to enhance bioavailability, fluorocarbons, and / or other conventional solubilizing or dispersing agents.
[0229] Tire amount of compounds of the present invention that may be combined with the carrier materials to produce a composition in a single dosage form will vary depending upon the host treated, the particular mode of administration.
[0230] It should also be understood that a specific dosage and treatment regimen for any particular patient will depend upon a variety of factors, including the activity of the specific compound employed, the age, body weight, general health, sex, diet, time of administration, rate of excretion, drug combination, and the judgment of the treating physician and the severity of the particular disease being treated. Tire amount of a compound of the present invention in the composition will also depend upon the particular compound in the composition.60BUSINESS.33535475 1410095-005WG (221368)Uses of Compounds and Pharmaceutically Acceptable Compositions
[0231] In some embodiments, provided compounds and compositions are for use in medicine.
[0232] Compounds and compositions described herein are generally useful as agonists of 5-HT2AR.
[0233] According to one embodiment, the invention relates to a method of activating 5-HT2AR. or a mutant thereof, in a biological sample comprising contacting said biological sample with a provided compound, or a pharmaceutically acceptable salt thereof, or a composition comprising said compound.
[0234] Tire term “biological sample’’, as used herein, includes, without limitation, cell cultures or extracts thereof; biopsied material obtained from a mammal or extracts thereof; and blood, saliva, urine, feces, semen, tears, or other body fluids or extracts thereof. In some embodiments, 5-HT2AR is from a biological sample. In some embodiments, the biological sample is taken from a subject.
[0235] Activation of 5-HT2AR, or a mutant thereof, in a biological sample is useful for a variety of purposes that are known to one of skill in the art. Examples of such purposes include, but are not limited to, blood transfusion, organ-transplantation, biological specimen storage, and biological assays.
[0236] In some embodiments, the invention also provides a compound described herein, or a pharmaceutically acceptable salt thereof, or pharmaceutical compositions described herein, for use in a method for activating 5-HT2AR, or a mutant thereof, as described herein.
[0237] In some embodiments, the invention also provides a compound described herein, or a pharmacally acceptable salt thereof, or pharmacal compositions described herein, for use in a method for selectively activating 5-HT2AR, or a mutant thereof, (e.g.. over the 5-HT2B and / or 5-HT2C receptors, or mutants thereof) as described herein. In some embodiments, such methods include administering to a patient a provided compound, or a pharmaceutically acceptable salt thereof, wherein the compound selectively binds to 5-HT2AR over 5-HT2BR and / or 5-HT2CR. The method of selectively agonizing 5-HT2AR, or a mutant thereof, can be used to treat, ameliorate, and / or prevent disorders that are affected by, associated with, or would benefit from selective activation of 5-HT2AR. In selectively binding to and activating 5-HT2AR, or a mutant thereof, over the 5-HT2BR and / or 5-HT2CR. or one or more mutants thereof, the method provides, for example, reduced side effects such as, but not limited to, drug- induced valvular heart disease associated with binding and activating 5-HT2BR. In some embodiments, a provided compound is a 5-HT2BR, or a mutant thereof, antagonist. In some embodiments, a provided compound is a 5-HT2CR, or a mutant thereof, antagonist.
[0238] In some embodiments, the invention also provides a compound described herein, or a pharmaceutically acceptable salt thereof, or pharmaceutical compositions described herein, for use in a method for treating a 5-HT2AR-mediated disorder as described herein. Such disorders are described in detail herein.
[0239] G protein-coupled receptors (GPCRs) signal through numerous pathways, including disease- 61BUSINESS.33535475 1410095-005WG (221368) associated but also non-disease-associated pathways, and as a result modulation of GPCRs can cause undesired side effects. Modulators of GPCRs can bind and preferentially activate specific pathways over others, often referred to as ligand-mediated bias or pathway bias. 5-HT2AR may interact with multiple signaling pathways upon ligand binding, e.g., pathways that engage with G proteins or [3-arrestins. See Kossatz. E., et al. Nature Communications 2024, 15:4307. In some embodiments, the invention also provides a compound described herein, or a pharmaceutically acceptable salt thereof, or pharmaceutical compositions described herein, for use in a method for binding 5-HT2AR, or a mutant thereof, resulting in increased (“biased”) activation of a particular signaling pathway (e.g., a G protein signaling pathway) over others (e.g., a -arrestin signaling pathway). In some embodiments, provided methods include administering to a patient a provided compound, or a pharmaceutically acceptable salt thereof, wherein the compound binds to 5-HT2AR and results in increased (“biased”) activation of a G protein signaling pathway over a P-arrestin signaling pathway. In some embodiments, provided methods include administering to a patient a provided compound, or a pharmaceutically acceptable salt thereof, wherein the compound is characterized in that, upon binding 5-HT2AR, or a mutant thereof, the compound effects increased (“biased”) activation of a G protein signaling pathway over a P-arrestin signaling pathway.
[0240] In some embodiments, provided methods include increasing activation of a G protein signaling pathway associated with 5-HT2AR over a P-arrestin signaling pathway associated with 5-HT2AR in a patient in need thereof, comprising administering to the patient a provided compound, or a pharmaceutically acceptable salt thereof, or a pharmaceutically acceptable composition thereof.
[0241] In some embodiments, G protein signaling pathways arc evaluated through detection of calcium, e.g., as described in Example 10. In some embodiments, P-arrestin signaling pathways are evaluated as described in Example 11.
[0242] In some embodiments, a G protein signaling pathway is increased by at least 50%, at least 100%, at least 500%, at least 1,000%, at least 5,000%, or at least 10,000% (e.g., as measured in Example 10) as compared to P-arrestin signaling pathways (e.g., as measured in Example 11).
[0243] In some embodiments, a compound described herein, or a pharmaceutically acceptable salt thereof, or pharmaceutical compositions described herein, may exhibit anxiolytic, anti-depressive, and antidrug abuse actions, without exhibiting substantial psychedelic actions, for example, hallucinogenic actions. For example, a provided compound, or a pharmaceutically acceptable salt thereof, may confer antidepressant like activities without incurring psychedelic drug-like actions. For example, in some embodiments, a provided compound, or a pharmaceutically acceptable salt thereof, may be safe and effective for use in a method described herein, yet lack the hallucinogenic effects of known psychedelics such as. for example, DMT and psilocybin. In some embodiments, a patient does not experience a hallucinogenic effect as a result of the activating or treating.62BUSINESS.33535475 1410095-005WG (221368)
[0244] The activity of a compound, or a pharmaceutically acceptable salt thereof, utilized in this invention as an activator of 5-HT2AR, or a mutant thereof, may be assayed in vitro, in vivo or in a cell line. In vitro assays include assays that determine activation and / or the subsequent functional consequences of activated 5-HT2AR. or a mutant thereof. Alternate in vitro assays quantitate the ability of the agonist to bind to 5-HT2AR. or a mutant thereof. Agonist binding may be measured by radiolabeling the compound prior to binding, isolating the compound / 5-HT2AR complex and determining the amount of radiolabel bound. Alternatively, agonist binding may be determined by running a competition experiment where additional agonists are incubated with 5-HT2AR, or a mutant thereof, bound to known radioligands. Detailed conditions for assaying a compound utilized in this invention as an agonist of 5-HT2AR, or a mutant thereof, are set forth in the Examples below.
[0245] As used herein, the terms “treatment,” “treat,” and “treating” refer to reversing, alleviating, delaying the onset of, or inhibiting the progress of a disease or disorder, or one or more symptoms thereof, as described herein. In some embodiments, treatment may be administered after one or more symptoms have developed. In other embodiments, treatment may be administered in the absence of symptoms. For example, treatment may be administered to a susceptible individual prior to the onset of symptoms (e.g., in light of a history of symptoms and / or in light of genetic or other susceptibility factors). Treatment may also be continued after symptoms have resolved, for example to prevent or delay their recurrence.
[0246] Provided compounds are agonists of 5-HT2AR, or a mutant thereof, and are therefore useful for treating one or more disorders associated with activity of 5-HT2AR. In some embodiments, the present invention provides a method for treating a 5-HT2AR-mediated disorder comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof.
[0247] As used herein, the term “5-HT2AR-mediated” disorders, diseases, and / or conditions as used herein means any disease or other deleterious condition in which 5-HT2AR, or a mutant thereof, are known to play a role. Accordingly, another embodiment of the present invention relates to treating or lessening the severity of one or more diseases in which 5-HT2AR, or a mutant thereof, are known to play a role.
[0248] In some embodiments, the present invention provides a method for treating a neurological disease, disorder, or condition comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof.
[0249] Non-limiting examples of a neurological disease or disorder include depression, anxiety, substance abuse, and headaches. Headaches that can be treated with the methods herein include, but are not limited to. migraine headaches and cluster headaches.
[0250] In some embodiments, the present invention provides a method for treating a depressive disease, disorder, or condition comprising administering to a patient in need thereof provided compound, 63BUSINESS.33535475 1or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof. In some embodiments, the depressive disorder is a major depressive disorder. In other embodiments, the depressive disorder includes treatment resistant depressions.
[0251] In some embodiments, the present invention provides a method for treating an anxiety disease, disorder, or condition comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof. In some embodiments, the anxiety disorder is generalized anxiety disorder. In other embodiments, the anxiety disorder is social anxiety disorder.
[0252] In some embodiments, the present invention provides a method for treating trauma and / or stress disease, disorder, or condition comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof. In some embodiments, such a disorder is post-traumatic stress disorder. In other embodiments, such a disorder is an adjustment disorder.
[0253] In some embodiments, tire present invention provides a method for treating an obsessive- compulsive disorder, e.g., body dysmorphic disorder, comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmacally acceptable composition thereof.
[0254] In some embodiments, the present invention provides a method for treating an eating disorder comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof, hr some embodiments, the eating disorder is anorexia. In other embodiments, the eating disorder is bulimia.
[0255] In some embodiments, the present invention provides a method for treating a sleep-wake disorder, e.g., insomnia, comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof.
[0256] In some embodiments, the present invention provides a method for treating a psychotic disorder comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof. In some embodiments, the psychotic disorder is schizophrenia. In other embodiments, the psychotic disorder is schizoaffective disorder. In still other embodiments, the psychotic disorder is schizotypal personality disorder.
[0257] In some embodiments, tire present invention provides a method for treating a substance-related and / or addictive disease, disorder, or condition comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmacally acceptable composition thereof. In some embodiments, such a disorder is an alcohol use disorder. In other embodiments, such a disorder is an opioid use disorder. In still other embodiments, such a disorder is a 64BUSINESS.33535475 1tobacco use disorder. For example, in some embodiments provided compound, or a pharmaceutically acceptable salt thereof, may be usefill in facilitating smoking cessation.
[0258] In some embodiments, the present invention provides a method for treating a ncurocognitivc disease, disorder, or condition comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof. In some embodiments, the neurocognitive disorder includes those due to a primary neurodegenerative disease, for example, Alzheimer's disease or Parkinson’s disease.
[0259] In some embodiments, the present invention provides a method for treating a personality disorder comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof.
[0260] In some embodiments, the present invention provides a method for treating an autism spectrum disorder comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof.
[0261] In some embodiments, the present invention provides a method for treating a bipolar disorder comprising administering to a patient in need thereof provided compound, or a pharmaceutically acceptable salt thereof, or pharmaceutically acceptable composition thereof. In some embodiments, the bipolar disorder is bipolar I disorder. In some embodiments, the bipolar disorder is bipolar II disorder.
[0262] In some embodiments, the present invention provides a method for treating a pain disease, disorder, or condition comprising administering to a patient in need thereof provided compound, or a pharmacally acceptable salt thereof, or pharmacally acceptable composition thereof. In some embodiments, the pain disorder is neuropathic pain. In some embodiments, the pain disorder is migraine. In some embodiments, the pain disorder is a cluster headache. In some embodiments, the pain disorder is a trigeminal neuralgia. In some embodiments, the pain disorder is cancer pain. In some embodiments, the pain disorder is a regional pain disorder. In some embodiments, the pain disorder is phantom limb pain. In some embodiments, a contemplated pain disorder is a chronic pain.EXAMPLES
[0263] As depicted in tire Examples below, in certain exemplary embodiments, compounds are prepared according to the following general procedures. It will be appreciated that, although the general methods depict the synthesis of certain compounds of the present disclosure, the following general methods, and other methods known to one of ordinary skill in the art, can be applied to all compounds and subclasses and species of each of these compounds, as described herein.65BUSINESS.33535475 1410095-005WG (221368)
[0264] General Scheme 1 1and e ut ng rac on 2Eluting X7= CH, COMe, CCI fraction1 or 2Separately prepared Separately prepared from eluting fraction 1 from eluting fraction 1 or eluting fraction 2 or eluting fraction 266BUSINESS.33535475 1410095-005WG (221368)
[0265] General Scheme 2 i) Aromatic substitution (if applicable) ii) Aromatic dehalogenation (if applicable) iii) N-alkylation (if applicable)From reactant set A iv) Chiral separation (if applicable) v) Deprotection (if applicable)Suzuki orVarious routesaromatic substitution67BUSINESS.33535475 1Example 1 (1-8 and 1-9)Step 1
[0267] Step 1: To a stirred solution of 5-bromo-L7-naphthyridine (0.15 g, 0.72 mmol, 1.0 eq.) and tert-butyl (4-(4, 4.5. -tetramethyl- 1, 3.2-dioxaborolan-2-yl)cyclohex-3-en-l-yl)carbamate (0.35 g, 1.08 mmol, 1 .5 eq.) in 1,4-dioxane ( 1.5 mL, 10 vol) and water (0.1 mb, 1 vol) was added tri-potassium phosphate (K3PO4) (0.46 g, 2.15 mmol, 3 eq.). The reaction mixture was purged with nitrogen gas for 10 minutes and Pd(dppf)C12.DCM complex (0.06 g, 0.07 mmol, 0.1 eq.) was added at room temperature. The reaction mixture was allowed to stir at 100 °C for 2 h. Tire completion of the reaction was monitored by TLC using 80 % ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (50 mL) and extracted with ethyl acetate (2 x 50 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum to produce a crude residue. The obtained crude material was purified by flash column chromatography on silica gel using 65 % ethyl acetate in hexane as eluent to give tert-butyl (4-(l,7-naphthyridin-5-yl)cyclohex-3-en-l-yl)carbamate (0.13 g, 56 %). LCMS (m / z): 326.3 [M+H]+.
[0268] Step 2: To a stirred solution of tert-butyl (4-(l,7-naphthyridin-5-yl)cyclohex-3-en-l- yl)carbamate (0. 12 g, 0.36 mmol, 1.0 eq.) in dichloromethane (1.2 mL. 10 vol) was added 4 M hydrochloric acid in 1,4-dioxane (0.6 mL, 5 vol) at 0 °C. The resulting mixture was stirred at room temperature for 2 h. The completion of the reaction was monitored by TLC using 80 % ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was concentrated under reduce pressure to obtain solid material, which was triturated with diethyl ether (3 x 10 mL) and dried to obtain 4-(l,7- naphthyridin-5-yl)cyclohex-3-en-l-amine hydrochloride (0.15 g) as white solid. LCMS (m / z): 226.2 [M+H]+.
[0269] Step 3: The isolated racemic material 4-(l,7-naphthyridin-5-yl)cyclohex-3-en-l-amine hy drochloride (0.10 g) was submitted to chiral prep HPLC purification (Column: CHIRALPAK IG (250mm x 50mm x 5pm; Mobile Phase A: Liquid CO2, Mobile Phase B: 0.1% methanolic ammonia in methanolacetonitrile (50-50); Flow rate: 140 mL / min; Gradient: 60 % A to 60 % A in 35 mins; Wave Length: 225 nm; RTl(min) 26.2; RT2(min): 30.8; Sample Solvent: Methanol; Sample Loading: 15 mg; Number Of68BUSINESS.33535475 1410095-005WG (221368)Runs: 5).
[0270] First eluting fraction: 4-(l,7-naphthyridin-5-yl)cyclohex-3-en-l -amine (1-8, 6 mg, 6%, orange solid). LCMS (m / z): 226.1 [M+H]+;1HNMR (400 MHz, DMSO-r / e): 8 9.31 (s, 1H), 9.07 (d, J 3.2 Hz, 1H), 8.48-8.40 (m, 3H), 7.79 (dd. J 8.6. 4.2 Hz. 5.78-5.76 (m, 1H), 3.37-3.33 (m, 1H), 2.60-2.45 (m, 3H), 2.26- 2.22 (m. 1H), 2.07-2.04 (m, 1H), 1.82-1.78 (m, 1H). (-NH2 signal only partially distinguishable. 1H).
[0271] Second eluting fraction: 4-(l,7-naphthyri din-5 -yl)cyclohex-3-en-l -amine (1-9, 6 mg, 6%, orange solid). LCMS (m / z): 226.2 [M+H]+; H NMR (400 MHz, DMSO-c / 6): 8 9.31 (s, 1H), 9.07 (d, J 3.6 Hz, 1H), 8.48-8.40 (m, 3H), 7.79 (dd, J 8.6, 4.2 Hz, 1H), 5.78-5.76 (m, 1H), 3.37-3.33 (m, 1H), 2.60-2.45 (m, 3H), 2.26-2.22 (m, 1H), 2.07-2.04 (m, 1H), 1.82-1.78 (m, 1H). (-NH2signal only partially distinguishable, 1H).
[0272] Additional exemplary compounds prepared via Example 1 methods:69BUSINESS.33535475 170BUSINESS.33535475171BUSINESS.335354751410095-005WG (221368)Example 2 (I- 11 and 1-12)Eluting fraction 2
[0273] Step 1: To a stirred solution of 6-bromo-4-chloroisoquinoline (0.3 g, 1.24 mmol, 1 eq.) and ethyltrifluoro-14-borane. potassium salt (0.34 g, 2.47 mmol, 2 eq.) in toluene (3 mL, 10 vol) and water (0.75 mL, 2.5 vol) and THF (0.75 mL, 2.5 vol) was added cesium carbonate (1.21 g, 3.71 mmol, 3.0 eq.) and the reaction mixture was purged with nitrogen gas for 15 minutes. Pd(dppf)C12 (0.09 g, 0.12 mmol, 0.1 eq.) was added at room temperature. The reaction mixture was allowed to stir at 100 °C for 12 h. Tire completion of the reaction was monitored by TLC using 30 % ethyl acetate in hexane and LCMS analysis. Tire reaction mixture was quenched with water (30 mL) and extracted with ethyl acetate (2 x 30 mL). Tire combined organic layers were dried over sodium sulphate and concentrated under high vacuum. The obtained crude material was purified by flash column chromatography on silica gel using 15% ethyl acetate in hexane as an eluent to obtain 4-chloro-6-ethylisoquinoline (0.17 g, 72 %). LCMS (m / z): 192.1 [M+H]+.
[0274] Step 2: To a stirred solution of 4-chloro-6-ethylisoquinoline (0.17 g, 0.89 mmol, 1 eq.) and tert-butyl (4-(4,4,5,5-tctramcthyl-l,3,2-dioxaborolan-2-yl)cyclohcx-3-cn-l-yl)carbamatc (0.32 g, 0.98 mmol, 1.1 eq.) in 1,4-dioxane (1.7 mL, 10 vol) was added potassium carbonate (K2CO3) (0.37 g, 2.66 mmol, 3.0 eq.) and the reaction mixture was purged with nitrogen gas for 15 minutes. Pd(amphos)C12 (0.06 g, 0.09 mmol, 0.1 eq.) was added at room temperature. The reaction mixture was allowed to stir at 100 °C for 12 h. The completion of the reaction was monitored by TLC using 50 % ethyl acetate in hexane and LCMS analysis. The reaction mixture quenched with water (30 mL) and extracted with ethyl acetate (2 x 30 mL). Tire combined organic layers were dried over sodium sulphate and concentrated under a high vacuum to obtain the crude residue. The obtained crude material was purified by flash column chromatography on silica gel using 40 % ethyl acetate in hexane as eluent to obtain tert-butyl (4-(6-ethylisoquinolin-4- yl)cyclohex-3-en-l-yl)carbamate (0.2 g, 64 %). LCMS (m / z): 353.3 [M+H]+.72BUSINESS.33535475 1410095-005WG (221368)
[0275] Step 3: To a stirred solution of tert-butyl (4-(6-ethylisoquinolin-4-yl)cyclohex-3-en-l - yl)carbamate (0.18 g, 0.51 mmol, 1.0 eq.) in dichloromethane (1.8 mL, 10 vol) was added 4 M hydrochloric acid in 1,4-dioxanc (0.9 mL, 5 vol) at 0 °C. Tire resulting mixture was stirred at room temperature for 3 h. The completion of the reaction was monitored by TLC using 5 % methanol in dichloromethane and LCMS analysis. The reaction mixture was concentrated under reduced pressure. The isolated solid material was further triturated with diethyl ether (2 x 10 mL) and dried in vacuo to obtain 4-(6-ethylisoquinolin-4- yl)cyclohex-3-en-l -amine hydrochloride (0.12 g, 81%). LCMS (m / z): 253.2 [M+H]+.
[0276] Step 4: The isolated racemic material of 4-(6-ethylisoquinolin-4-yl)cyclohex-3-en-l -amine hydrochloride (0.12 g) was submitted to chiral prep HPLC purification (Column: Hypersil Chiral-ICT (250mm x 50mm x 5pm); Mobile Phase A: Liquid CO2, Mobile Phase B: 0.1% methanolic ammonia in methanol-acetonitrile (50-50); Flow rate: 150 mL / min; Gradient: 50 % A to 50 % A in 31 mins; Wave Length: 210 nm; RTl(min) 15; RT2(min): 23; Sample Solvent: Methanol; Sample Loading: 13 mg; Number Of Runs: 11).
[0277] First eluting fraction: 4-(6-ethylisoquinolin-4-yl)cyclohex-3-en-l -amine (1-11, 15 mg, light yellow solid). LCMS (m / z): 253.2 [M+H]+;1H NMR (400 MHz, DMSO-6): 8 9.13 (s, 1H), 8.22 (s, 1H), 8.05 (d, J 8.4 Hz, 1H). 7.69 (s, 1H). 7.57 (d. J 8.4 Hz. 1H), 5.72-5.70 (m, 1H), 3.09-3.04 (m, 1H). 2.28 (d, J 7.5 Hz, 2H), 2.48-2.35 (m, 3H), 2.02-1.95 (m, 1H), 1.93-1.88 (m, 1H), 1.64-1.55 (m, 1H), 1.28 (t, J 7.5 Hz, 3H). (-NH2proton is not distinguishable).
[0278] Second eluting fraction: 4-(6-ethylisoquinolin-4-yl)cyclohex-3-en-l-amine (1-12, 20 mg, light brown solid). LCMS (m / z): 253.2 [M+H]+; 'H NMR (400 MHz, DMSO-r / 6): 3 9.13 (s, 1H), 8.23 (s, 1H), 8.05 (d, J 8.4 Hz, 1H). 7.69 (s, 1H), 7.57 (d. J 8.4 Hz. 1H), 5.72-5.70 (m, 1H), 3.08-3.03 (m, 1H). 2.82 (q, J 7.5 Hz, 2H), 2.46-2.33 (m, 3H), 2.03-1.88 (m, 2H), 1.63-1.57 (m, 1H), 1.27 (t, J 7.5 Hz, 3H). (-NH2proton is not distinguishable).73BUSINESS.33535475 1
[0279] Additional exemplary compounds prepared via Example 2 methods:Example 3 (1-5 and 1-6)
[0280] Step 1: To a stirred solution of 4-chlorocinnoline (0.8 g, 4.86 mmol, 1.0 eq.) and tert-butyl (4-(4.4.5,5-tetramethyl-l,3.2-dioxaborolan-2-yl)cyclohex-3-en-l-yl)carbamate (2.35 g, 7.29 mmol, 1.5 eq.) in 1,4-dioxane (8.0 mL, 10 vol) and water (0.8 mL, 1 vol) was added tri-potassium phosphate (K3PO4) (3.09 g, 14.58 mmol, 3 eq.). The reaction mixture was purged with nitrogen gas for 10 minutes and Pd(dppf)C12.DCM complex (0.4 g, 0.49 mmol, 0.1 eq.) was added at room temperature. The reaction mixture was allowed to stir at 100 °C for 3 h. The completion of the reaction was monitored by TLC using 30% ethyl acetate in hexane and LCMS analysis. The reaction mixture quenched with water (100 mL) and extracted with ethyl acetate (2 x 100 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum. The obtained crude material was purified by flash column74BUSINESS.33535475 1chromatography on silica gel using 20 % ethyl acetate in hexane as eluent to afford tert-butyl (4-(cinnolin- 4-yl) cyclohex-3-en-l-yl) (1.3 g, 82 %). LCMS (m / z): 326.18 [M+H]+.
[0281] Step 2: The isolated racemic material of tert-butyl (4-(cinnolin-4-yl) cyclohcx-3-cn-l-yl) carbamate (1 .0 g) was submitted to chiral prep HPLC purification (Column: Chiralpak IG (250mm x 50mm x 5pm); Mobile Phase A: Liquid CO2, Mobile Phase B: 0.1% methanolic ammonia in methanol-acetonitrile (50-50); Flow rate: 150 mL / min; Gradient: 60 %Ato 60 %A in 37 mins; Wave Length: 210 nm; RTl(min) 22.5; RT2(min): 29.5; Sample Solvent: Methanol:Dichloromethane; Sample Loading: 42 mg; Number Of Runs: 34). First eluting isomer (0.5 g, 50%, white solid) and second eluting isomer (0.5g, 50%, white solid) were obtained. LCMS (m / z): both eluting fractions: 326.23 [M+H]+.
[0282] Step 3: To a stirred solution of tert-butyl (4-(cinnolin-4-yl) cyclohex-3-en-l-yl) carbamate (first eluting isomer, 0.2 g. 0.61 mmol, 1.0 eq.) in dichloromethane (2 mL. 10 vol) was added 4 M hydrochloric acid in 1,4-dioxane (1 mL, 5 vol) at 0 °C. The resulting mixture was stirred at room temperature for 2 h. The completion of the reaction was monitored by TLC using 80 % ethyl acetate in hexane and LCMS analysis. The reaction mixture was concentrated under reduce pressure to obtain solid material which was further triturated with diethyl ether (3 10 mL) and dried well to afford 4-(cinnolin-4- yl)cyclohex-3-en-l -amine hydrochloride (1-5, 0.12 g, 75%) as light-yellow solid. LCMS (m / z): 226.2 [M+H]+; Analytical chiral HPLC: Column Chiralpak IG (250 mm x 4.6 mm. 5 pm); Mobile Phase: 0.1% methanolic NH3in MeOH ACN (50:50); Wavelength: 225 nm; RT 6.64 min; ’HNMR (400 MHz, DMSO- d6. 5 9.28 (s, 1H), 8.48 (d, J 8.4 Hz, 1H), 8.32 (s, 3H), 8.19 (d, J 8.8 Hz, 1H), 7.93-7.89 (m, 2H), 5.97-5.95 (m, 1H), 3.52-3.48 (m, 1H), 2.72-2.65 (m, 2H), 2.58-2.55 (m, 1H), 2.44-2.36 (m, 1H), 2.19-2.14 (m, 1H), 1.97-1.89 (m, 1H).
[0283] Step 4: To a stirred solution of tert-butyl (4-(cinnolin-4-yl) cyclohex-3-en-l-yl) carbamate (second eluting isomer, 0.2 g, 0.61 mmol, 1.0 eq.) in dichloromethane (2 mL, 10 vol) was added 4 M hydrochloric acid in 1,4-dioxane (1 mL, 5 vol) at 0 °C. The resulting mixture stirred at room temperature for 2h. The completion of reaction w as monitored by TLC using 80% ethyl acetate in hexane and LCMS analysis. Tire reaction mixture was concentrated under reduce pressure to obtain the solid material which was further triturated with diethyl ether (3 x 10 mL) to afford 4-(cinnolin-4-yl)cyclohex-3-en-l -amine hydrochloride (1-6, 0.12 g, 75%) as yellow solid. LCMS (m / z): 226.21 [M+H]+; Analytical chiral HPLC: Column Chiralpak IG (250 mm x 4.6 mm, 5 pm); Mobile Phase: 0.1% methanolic NH3 in MeOHACN (50:50); Wavelength: 225 nm; RT 6.86 min; ’HNMR (400 MHz, DMSO^ / 6): 5 9.27 (s, 1H), 8.48 (d, J 8.4 Hz, 1H), 8.31 (bs, 3H), 8.19 (d, J 8.4 Hz, 1H), 7.99 (t, J 7.4 Hz, 1H), 7.91 (t, J 7.6 Hz, 1H), 5.95-5.93 (m, 1H), 3.53-3.49 (m, 1H), 2.72-2.67 (m, 2H), 2.57-2.54 (m, 1H). 2.43-2.36 (m, 1H), 2.18-2.14 (m, 1H), 1.95- 1.88 (m. 1H).75BUSINESS.33535475 1
[0284] Additional exemplary compounds prepared via Example 3 methods:76BUSINESS.33535475 177BUSINESS.335354751Example 4 (1-35 and 1-36)
[0285] Step 1: To a solution of 5-bromo-4-chlorocinnoline (630 mg, 2.58 mmol, 1.0 eq.) in 1,4- dioxane / FLO (10 mL / 4 mL) at room temperature was added tert-butyl (4-(4,4,5,5-tetramethyl-l,3,2- dioxaborolan-2-yl)cyclohex-3-en-l-yl)carbamate (753 mg, 2.33 mmol .0.09 eq.), K2CO3 (1.07 g, 7.76 mmol ,3.0 eq.) and Pd(dppf)C12 (95 mg, 0.13 mmol, 0.05 eq. ). The reaction was stirred at 80 °C under an N2 atmosphere for 2 h. The reaction mixture was diluted with water (100 mL) and extracted with EtOAc (3x 100 mL). The combined organic layers were washed with brine, dried over Na?SO4, filtered and concentrated under vacuum. The residue obtained was purified by prep-TLC (DCM: MeOH=20 / l) to afford tert-butyl (4-(4-chlorocinnolin-5-yl)cyclohex-3-en-l-yl)carbamate (490 mg, yield: 52.6%) as yellow oil. LCMS (m / z): 360.1 [M+H]+.
[0286] Step 2: To a solution of tert-butyl (4-(4-chlorocinnolin-5-yl)cyclohex-3-en-l-yl)carbamate (490 mg, 1.36 mmol, 1.0 eq.) in CHCh (10 mL) was added 4-methylbenzenesulfonohydrazide (507 mg, 2.72 mmol, 2.0 eq.). The reaction was stirred at 65 °C overnight with reflux. The mixture was concentrated under vacuum. The residue obtained was dissolved with FLO / dioxanc (10 mL / I mL) at room temperature and then TsfeCCL (1.3 g, 12.26 mmol. 9.0 eq.) was added. The reaction was stirred at 95 °C for 3 h. The reaction mixture was cooled to room temperature, diluted with water (50 mL) and extracted with DCM (3 x 50 mL). The combined organic layers were washed with brine, dried over Na2SO4, filtered and concentrated in vacuum. The residue obtained was purified by prep-TLC (eluent: DCM: MeOH=20 / l).
[0287] Tire isolated racemic material of tert-butyl (4-(cinnolin-4-yl) cyclohex-3 -en-l-yl) carbamate (1.0 g) was submitted to chiral prep HPLC purification (Column: Daicel AS (30mm x 250mm x 10pm); Mobile Phase A: Liquid CO2, Mobile Phase B: Isopropanok Flow rate: 45 mL / min; Gradient: 75 % Ato 75 % A in 13 mins; Wave Length: 214 nm; RTl(min) 1.8: RT2(min): 2.0: Sample Solvent: Ethanol; Injection Volume: 0.5 mL, Number Of Runs: 30). First eluting isomer (116 mg, yellow' solid) and second eluting isomer (70 mg, yellow' solid) were obtained (42 % combined). LCMS (m / z): both eluting fractions 326.15 78BUSINESS.33535475 1410095-005WD (221368)[M+H]+.
[0288] Step 3: To a solution of tert-butyl 4-(cinnolin-5-yl)cyclohex-3-en-l -amine (first eluting fraction, 116 mg, 0.36 mmol, 1.0 eq.) in DCM (2mL) at room temperature was added 4 M HC1 in 1,4- dioxane (2 mL). The mixture was stirred at room temperature for 2 li. The reaction mixture was concentrated under vacuum and purified by trituration (Et20) to afford 4-(cinnolin-5-yl)cyclohex-3-en-l -amine hydrochloride (1-35, 69.9 mg, yield: 75.16%) as a yellow solid. LCMS (m / z): 226.1 [M+H]+, 'HNMR (400 MHz, DMSO-r / e): 5 9.38 (d, J 6.0 Hz, 1H), 8.40 (d, J 8.4 Hz, 1H), 8.37 - 8.24 (m, 4H), 7.95 (dd, J 8.6, 7.0 Hz, 1H), 7.76 (d, J 7.0 Hz, 1H), 5.74 - 5.71 (m, 1H), 3.52-3.47 (m, 1H), 2.70 - 2.54 (m, 2H), 2.49 - 2.30 (m, 2H), 2.19 - 2.08 (m, 1H), 1.97 - 1.87 (m, 1H).
[0289] Step 4: To a solution of tert-butyl 4-(cinnolin-5-yl)cyclohex-3-en-l-amine (second eluting fraction. 70 mg, 0.22 mmol, 1.0 eq.) in DCM (2mL) at room temperature was added 4 M HC1 in 1,4-dioxane (2 mL). The mixture was stirred at room temperature for 2 h. The reaction mixture was concentrated under vacuum and purified by trituration (EuO) to afford 4-(cinnolin-5-yl)cyclohex-3-en-l -amine hydrochloride (1-36, 43.8 mg, yield: 78.21%) as a yellow solid. LCMS (m / z): 226.1 [M+H]+;1HNMR (400 MHz, DMSO- d6y. 5 9.37 (d, J 6.0 Hz, 1H), 8.40 (d, J 8.4 Hz, 1H). 8.26 (d, J 6.0 Hz, 1H), 8.19 (bs, 3H), 7.94 (dd, J 8.4, 7.2 Hz, 1H). 7.74 (d, J 7.0 Hz, 1H), 5.74-5.72 (m, 1H), 3.53-3.47 (m, 1H), 2.67 - 2.54 (m, 2H), 2.48 - 2.41 (m, 1H). 2.38 - 2.29 (m. 1H), 2.16 - 2.09 (m, 1H), 1.94 - 1.84 (m, 1H).
[0290] Additional exemplary compounds prepared via Example 4 methods:79BUSINESS.33535475 1410095-005WG (221368)80BUSINESS.33535475 1410095-005WG (221368)
[0291] Step 1 : To a stirred solution of 2-fluoro-5-methoxybenzaldehyde (10.00 g, 64.87 mmol, 1.0 eq.) and 2,2-dimethoxyethan-l -amine (8.20 g, 77.9 mmol, 1.2 eq.) in methanol (100.00 mL, 10 vol) was added acetic acid (1.00 mL, catalytic) at 0 °C under a nitrogen atmosphere. Tire reaction mixture was allowed to stir at room temperature for 16 h and sodium borohydride (7.40 g. 194 mmol, 3.0 eq.) was added portion wise at 0 °C. Hie reaction mixture was further allowed to stir at room temperature for Ih. The completion of the reaction was monitored by TLC using 30 % ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture quenched with cool water (500 mL) and extracted with dichloromethane (4 x 600 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum to afford N-(2-fluoro-5-methoxybenzyl)-2,2-dimethoxyethan-l -amine (15.0 g, 95 %) as a light-yellow liquid. LCMS (m / z): 244.2 [M+H]+.
[0292] Step 2: To a stirred solution of N-(2-fluoro-5-methoxybenzyl)-2,2-dimethoxyethan-l-amine (15.00 g, 61.66 mmol, 1.0 eq.) in dichloromethane (150.00 mL, 10 vol) was added N,N- diisopropylethylamine (31.60 mL, 185.0 mmol, 3.0 eq.) and molecular sieves (4A) at 0 °C under nitrogen atmosphere. The reaction mixture was allowed to stir at 0 °C for 30 minutes and yi-toluene sulfonyl chloride (PTS-C1) (11.75 g, 61.66 mmol, 1.0 eq.) was added portion wise at 0 °C. The reaction mixture was further allowed to stir at room temperature for 1 h. Hie completion of the reaction was monitored by TLC using 20% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with ice-cold water (500 mL) and extracted with dichloromethane (3 x 500 mL). Hie combined organic layers were dried over sodium sulphate and concentrated under high vacuum to afford the crude residue. The crude material was purified by flash column chromatography on silica gel using 10% ethyl acetate in hexane as eluent to afford N-(2,2-dimethoxyethyl)-N-(2-fluoro-5-niethoxybenzyl)-4- methylbenzenesulfonamide (20.0 g, 82%) as a light-yellow liquid.
[0293] Step 3: To a stirred solution of N-(2,2-dimethoxyethyl)-N-(2-fluoro-5-methoxybenzyl)-4- methylbenzenesulfonamide (10.00 g, 25.16 mmol, 1.0 eq.) in dry dichloromethane (500.00 mL, 50 vol) was added anhydrous aluminum chloride (20.00 g, 151.0 mmol, 6.0 eq.) and molecular sieves (4 A) at room temperature under nitrogen atmosphere. Hie reaction mixture was allowed to stir at room temperature for 16 h. The completion of the reaction was monitored by TLC using 20% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with ice-cold water (550 mL) and extracted with di chloromethane (3 X 500 mL). The combined organic layers were washed with a saturated aqueous sodium bicarbonate solution (150 mL), dried over anhydrous sodium sulphate, filtered and concentrated under high vacuum to afford the crude residue. Hie crude material was purified by flash column chromatography on silica gel using 2% ethyl acetate in hexane as eluent to afford 8-fluoro-5- methoxyisoquinoline (2.50 g, 56%) as orange liquid. LCMS (m / z): 177.7 [M+H]+.
[0294] Step 4: To a stirred solution of 8-fluoro-5-methoxyisoquinoline (2.50 g, 14.11 mmol, 1.0 eq.)81BUSINESS.33535475 1410095-005WG (221368) in dry carbon tetrachloride (25.00 mL, 10 vol) was added azobisisobutyronitrile (AIBN) (0.23 g, 1.4 mmol, 0.1 eq.), N-bromosuccinimide (NBS) (3.01 g, 16.9 mmol, 1.2 eq.) and molecular sieves (4A) at 0°C under nitrogen atmosphere. Tire reaction mixture was allowed to stir at 70 °C for Ih. The completion of the reaction was monitored by TLC using 15% ethyl acetate in hexane and LCMS analysis. After completion of tire reaction, the reaction mixture quenched with ice cold water (200 mL) and extracted with dichloromethane (3 X 250 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum to afford the crude residue. The crude material was purified by flash column chromatography on silica gel using 1% ethyl acetate in hexane as eluent to afford 4-bromo-8-fluoro- 5-methoxyisoquinoline (0.30 g, 8%) as light yellow solid. LCMS (m / z): 256.0 [M]+.
[0295] Step 5: Racemic tert-butyl (4-(4.4,5,5-tetramethyl-1.3.2-dioxaborolan-2-yl)cyclohex-3-en-l- yl)carbamate (10.0 g) was submitted to chiral prep HPLC purification to separate the enantiomers. First eluting fraction: 4.1 g; Second eluting fraction: 3.9 g. Analytical chiral HPLC: Column CHIRALPAK IG- 3 (100x3mm, 3 pm): Solvent: 0.1% methanolic ammonia in MeOH:ACN (50:50); Injection volume: 2 pL; Wavelength: 230 nm; First eluting fraction: retention time 0.858 min; Second eluting fraction: retention time 0.953 min
[0296] To a stirred solution of 4-bromo-8-fluoro-5-methoxyisoquinoline (0.10 g. 0.39 mmol, 1.0 eq.) and the first eluting fraction of tert-butyl (4-(4.4.5.5 -tetramethyl- 1.3.2-dioxaborolan-2-yl)cyclohex-3-en-l- yljcarbamate (0.15 g, 0.47 mmol, 1.2 eq.) in 1,4-dioxane (0.90 mL, 9 vol) and water (0.10 mL, 1 vol) was added tri-potassium phosphate (K3PO4) (0.25 g, 1.2 mmol, 3 eq.). The reaction mixture was purged with nitrogen gas for 20 minutes and Pd(dppf)C12.DCM complex (0.03 g, 0.04 mmol, 0.1 eq.) was added at room temperature under N2 atmosphere. The reaction mixture was allowed to stir at 100 °C for 3h. Tire completion of the reaction was monitored by TLC using 15 % ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (30 mL) and extracted with ethyl acetate (3 X 50 mL). The combined organic layers were dried over anhydrous sodium sulphate and concentrated under high vacuum to obtain the crude residue. Tire crude material was purified by flash column chromatography on silica gel using 7 % ethyl acetate in hexane as eluent to afford solid material which was further triturated with diethyl ether (5 mL) and n-pentane (15 mL), followed by drying under vacuum to afford tert-butyl (4-(8-fluoro-5-methoxyisoquinolin-4-yl)cyclohex-3-en-l-yl)carbamate (0.08 g, 55%) as off-white solid. LCMS (m / z): 373.2 |M+H| : Analytical chiral HPLC: Column CHIRALPAK IG- 3 (100x3mm, 3 pm). Solvent: 0.1% methanolic ammonia in MeOH:ACN (50:50), Injection volume: 2 pL, Retention time: 1.784 min, Wavelength: 230 nm.
[0297] Step 6: To a stirred solution of 4-bromo-8-fluoro-5-methoxyisoquinoline (0.10 g, 0.39 mmol, 1.0 eq.) and the second eluting fraction of tert-butyl (4-(4,4.5.5-tetramethyl-l,3.2-dioxaborolan-2- yl)cyclohex-3-en-l-yl)carbamate prepared in Step 5 (0.15 g, 0.47 mmol, 1.2 eq.) in 1,4-dioxane (0.90 mL,82BUSINESS.33535475 1410095-005WG (221368)9 vol) and water (0.10 mL, 1 vol) was added tri-potassium phosphate (K3PO4) (0.25 g, 1.2 mmol, 3 eq.). The reaction mixture was purged with nitrogen gas for 20 minutes and Pd(dppf)C12.DCM complex (0.03 g, 0.04 mmol, 0. 1 eq.) was added at room temperature underN2 atmosphere. The reaction mixture was allowed to stir at 100°C for 3h. Tire completion of the reaction was monitored by TLC using 15% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture quenched with water (30 mL) and extracted with ethyl acetate (3 X 50 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum to afford the crude residue. The crude material was purified by flash column chromatography on silica gel using 7 % ethyl acetate in hexane as eluent to afford tertbutyl (4-(8-fluoro-5-methoxyisoquinolin-4-yl)cyclohex-3-en-l-yl)carbamate (0.08 g, 55%) as an off-white solid. LCMS (m / z): 373.1 [M+H]+. Analytical chiral HPLC: Column CHIRALPAK IG-3 (100x3mm, 3 pm), Solvent: 0.1% methanolic ammonia in MeOH:ACN (50:50), Injection volume: 2 pL, Retention time: 1.997 min, Wavelength: 240 nm.
[0298] Step 7: To a stirred solution of tert-buty l (4-(8-fluoro-5-methoxyisoquinolin-4-yl)cyclohex-3- en-l-yl)carbamate (prepared in Step 5, 0.07 g, 0.2 mmol, 1.0 eq.) in dichloromethane (1.4 mL, 20 vol) was added 4M hydrochloric acid in 1,4-dioxane (0.4 mL, 5 vol) at 0 °C under an inert atmosphere of nitrogen gas. The resulting mixture stirred at room temperature for 2h. The completion of the reaction was monitored by TLC using 15 % ethyl acetate in hexane. After completion of reaction, the reaction mixture was concentrated under reduced pressure to afford solid material, which was triturated with dichloromethane (2 X 5 mL) and diethy l ether (2 X 5 mL), followed by drying under high-vacuum to afford 4-(8-fluoro-5- methoxyisoquinolin-4-yl)cyclohex-3-en-l -amine hydrochloride (I-54b, 0.05 g, 86%) as yellow sticky solid. LCMS (m / z): 273.1 [M+H]+; Analytical chiral HPLC: Column CHIRALPAK IC-3 (100x3mm, 3 pm), Solvent: 0.1% methanolic ammonia in MeOH:ACN (50:50). Injection volume: 2 pL, Retention time: 2.777 min. Wavelength: 234 nm: 1H NMR (4OO MHz, DMSO): 5 9.49 (m. 1H), 8.45-8.24 (m, 4H). 7.59 (bs, 1H), 7.38 (bs, 1H), 5.50 (s, 1H), 3.94 (s, 3H), 3.45 (m, 1H), 2.60-2.56 (m, 1H), 2.38-2.27 (m, 2H), 2.19-2.11 (m, 2H), 1.94-1.92 (m, 1H).
[0299] Step 8: To a stirred solution of tcrt-butyl (4-(8-fluoro-5-mcthoxyisoquinolin-4-y l)cyclohcx-3- en-l-yl)carbamate (prepared in Step 6, 0.08 g, 0.2 mmol, 1.0 eq.) in dichloromethane (1.6 mL, 20 vol) was added 4M hydrochloric acid in 1,4-dioxane (0.4 mL, 5 vol) at 0 °C under an inert atmosphere of nitrogen gas. The resulting mixture stirred at room temperature for 2h. The completion of the reaction was monitored by TLC using 15% ethyl acetate in hexane. After completion of the reaction, tire reaction mixture was concentrated under reduced pressure to afford solid material, which was triturated w ith dichloromethane (2 X 5 mL) and diethyl ether (2 X 5 mL), followed by drying under high-vacuum to afford 4-(8-fluoro-5- methoxyisoquinolin-4-yl)cyclohex-3-en-l -amine hydrochloride (I-54d, 0.057 g, 86%) as yellow sticky solid. LCMS (m / z): 273.2 [M+H]+; Analytical chiral HPLC: Column CHIRALPAK IC-3 (100x3mm, 3 pm),83BUSINESS.33535475 1410095-005WG (221368)Solvent: 0.1% methanolic ammonia in MeOH:ACN (50:50), Injection volume: 2 JLIL, Retention time: 2.922 mm, Wavelength: 234 nm; 1H NMR (4OO MHz, DMSO): 8 9.47 (m, 1H), 8.44-8.27 (m, 4H), 7.57 (bs, 1H), 7.36 (bs, 1H), 5.49 (s, 1H), 3.93 (s, 3H), 3.45 (m, 1H), 2.60-2.55 (m, 1H), 2.39-2.10 (m, 4H), 1.97-1.93 (m, 1H).
[0300] Additional exemplary compounds prepared via Example 5 methods:84BUSINESS.33535475 1410095-005WG (221368)Example 6 (I-51b and I-51d)
[0301] Step 1: To a stirred solution of 2-fluoro-6-iodoaniline (5.0 g, 21 mmol, 1.0 eq.) and trimethylsilyl acetylene (2.48 g, 25.3 mmol, 1.2 eq.) in tetrahydrofuran (50 mL, 10 vol) was added triethylamine (3.20 g, 31.6 mmol, 1.5 eq.). The reaction mixture was purged with nitrogen gas for 10 minutes and copper iodide (0.80 g, 4.2 mmol, 0.2 eq.) and PdC12(PPhs)2 (DIKIS) (1.48 g, 2.11 mmol, 0.1 eq.) was added at room temperature. The reaction mixture was allowed to stir at 50 °C for 3 h. The completion of the reaction was monitored by TLC using 5% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (200 mL) and extracted with ethyl acetate (2 X 250 mL). The combined organic layers were dried over anhydrous sodium sulphate and concentrated under reduced pressure to afford the crude residue. The crude material was purified by flash column chromatography on silica gel using neat hexane as an eluent to afford 2-fluoro-6- ((trimethylsilyl) ethynyl) aniline (4.9 g) as yellow liquid. LCMS (m / z): 208.2 [M+H]+.
[0302] Step 2: To a suspension of 2-fluoro-6-((trimethylsilyl) ethynyl) aniline (2.5 g, 12 mmol, 1.0 eq.) in HPLC grade water (25 mL, 10 vol.) was added aqueous 6 N hydrochloric acid (21.1 mL, 31.6 mmol, 1.5 eq.) and an aqueous solution of sodium nitrite (1.24 g, 18.1 mmol, 1.5 eq.). The reaction mixture was allowed to stir at 100 °C for 3 h. Tire completion of the reaction was monitored by TLC using 30% ethyl 85BUSINESS.33535475 1410095-005WG (221368) acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (150 mL) and extracted with ethyl acetate (2 X 100 mL). The combined organic layers were dried over anhydrous sodium sulphate and concentrated under reduced pressure to afford the crude material. Tire crude material was purified by flash column chromatography on silica gel using 32% ethyl acetate in hexane as an eluent to afford 8-fluorocinnolin-4-ol (0.6 g, yield: 30%) as brown solid. LCMS (m / z): 165.1 [M+H]+.
[0303] Step 3: To a stirred solution of 8-fluorocinnolin-4-ol (0.30 g, 1.8 mmol, 1 .0 eq.) in acetonitrile (6 mL, 20 vol.) was added phosphorous tribromide (PBr3) (0.74 g, 32 mmol, 1.5 eq.) at 0 °C. Tire reaction mixture was allowed to stir at 80 °C for 4 h. The completion of the reaction was monitored by TLC using 30% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (100 mL) and extracted with ethyl acetate (2 X 40 mL). The combined organic layers were dried over anhydrous sodium sulphate and concentrated under reduced pressure to afford the crude material. The erode residue was purified by flash column chromatography on silica gel using 60% ethyl acetate in hexane as an eluent to afford 4-bromo-8-fluorocinnoline (0.09 g, yield: 22%) as a yellow solid. LCMS (m / z): 227.0 [M+H]+.
[0304] Step 4: To a stirred solution of 4-bromo-8-fhiorocinnoline (0.05 g, 0.2 mmol, 1.0 eq.) and the first eluting fraction tert-butyl (4-(4.4.5.5-tetramethyl-1.3.2-dioxaborolan-2-yl)cyclohex-3-en-l- yl)carbamate (see Example 5, 0.085 g, 0.26 mmol, 1.2 eq.) in 1,4-dioxane (1 mL, 20 vol) and water (0.1 mL, 1 vol) was added tri-potassium phosphate (K3PO4) (0.07 g, 0.3 mmol, 1.5 eq.). The reaction mixture was purged with nitrogen gas for 15 minutes and Pd(dppf)C12.DCM complex (0.034 g, 0.04 mmol, 0.2 eq.) was added at room temperature. Hie reaction mixture was allowed to stir at 100 °C for Ih. Hie completion of the reaction was monitored by TLC using 30% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (40 mL) and extracted with ethyl acetate (2 X 20 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum to afford the crude residue. The crude material was purified by flash column chromatography on silica gel using 34% ethyl acetate in hexane as eluent to afford tert-butyl (4-(8-fluorocinnolin-4-yl) cyclohex-3 -en-l-yl) carbamate (0.035 g, 46%) as off white solid. LCMS (m / z): 344.2 [M+H]+.
[0305] Step 5: To a stirred solution of 4-bromo-8-fluorocinnoline (0.04 g, 0.2 mmol. 1.0 eq.) and the second eluting fraction of tert-butyl (4-(4,4,5,5-tetramethyl-l,3,2-dioxaborolan-2-yl)cyclohex-3-en-l- yl)carbamate (see Example 5, 0.068 g, 0.21 mmol, 1.2 eq.) in 1,4-dioxane (0.8 mL, 20 vol) and water (0.1 mL, 1 vol) w as added tri-potassium phosphate (K3PO4) (0.056 g, 0.26 mmol, 1.5 eq.). Hie reaction mixture was purged with nitrogen gas for 10 minutes and Pd(dppf)Ch.DCM complex (0.027 g, 0.035 mmol, 0.2 eq.) was added at room temperature. The reaction mixture was allowed to stir at 100 °C for Ih. The completion of the reaction was monitored by TLC using 30% ethyl acetate in hexane and LCMS analysis.86BUSINESS.33535475 1After completion of the reaction, the reaction mixture was quenched with water (20 mL) and extracted with ethyl acetate (2 X 15 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum to afford the crude residue. The crude material was purified by flash column chromatography on silica gel using 33% ethyl acetate in hexane as eluent to afford tert-butyl (4-(8- fluorocinnolin-4-yl) cyclohex-3 -en-l-yl) carbamate (0.025 g, 41%). LCMS (m / z): 344.2 [M+H]+.
[0306] Step 6 : To a stirred solution of tert-butyl 4-(8-fluorocinnolin-4-yl) cyclohex-3-en-l-yl carbamate (prepared in Step 4, 0.035 g, 0.010 mmol, 1.0 eq.) in dichloromethane (0.3 mL, 10 vol) was added 4M hydrochloric acid in 1,4-dioxane (0.1 mL, cat.) at 0 °C. The resulting reaction mixture was allowed to stir at room temperature for 2h. The completion of the reaction was monitored by TLC using 40% ethyl acetate in hexane and LCMS analysis. The reaction mixture was concentrated under reduce pressure. The isolated solid material was further triturated with diethyl ether (3 X 10 mL) and lyophilized to afford 4-(8-fluorocinnolin-4-yl) cyclohex-3 -en-1 -amine hydrochloride (I-51b, 0.0068 g, yield: 28%) as a brown sticky solid. LCMS (m / z): 244.2 | M+H| : Analytical chiral HPLC: Column CHIRALPAK IG (250x4.6mm, 5 pm), Solvent: 0.1% methanolic ammonia in IPA:ACN (70:30), Injection volume: 10 pL, Retention time: 6.64 min, Wavelength: 230 nm; 1H NMR (400 MHz, DMSO): 8 9.38 (s. 1H), 8.29 (s, 3H), 8.01-7.98 (m, 1H), 7.88 (q, J = 13.0 Hz, 1H), 7.79 (t, J = 10.5 Hz, 1H). 5.96 (s, 1H), 3.50 (bs, 1H), 2.70- 2.66 (m. 2H), 2.41-2.35 (m, 2H), 2.17-2.14 (m, 1H). 1.95-1.88 (m, 1H).
[0307] Step 7: To a stirred solution of tert-butyl 4-(8-fluorocinnolin-4-yl) cyclohex-3-en-l-yl carbamate (prepared in Step 5, 0.025 g, 0.073 mmol, 1.0 eq.) in dichloromethane (0.5 mL, 20 vol) was added 4M hydrochloric acid in 1, 4 dioxane (0.1 mL, catalytic) at 0 °C. Hie resulting mixture was allowed to stir at room temperature for Hi. Hie completion of tire reaction was monitored by TLC using 40% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was concentrated under reduce pressure. The isolated solid material was triturated with diethyl ether (10 mL) and lyophilized to afford 4-(8-fluorocinnolin-4-yl) cyclohex-3 -en-1 -amine hydrochloride (I-51d, 0.010 g, yield: 56%) as a brown sticky solid. LCMS (m / z): 244.2 [M+H]+; Analytical chiral HPLC: Column CHIRALPAK IG (250x4.6mm, 5 pm), Solvent: 0.1% methanolic ammonia in IPA:ACN (70:30), Injection volume: 50 pL, Retention time: 7.32 min. Wavelength: 230 nm; 1H NMR (400 MHz, DMSO): 8 9.37 (s, 1H). 8.29 (bs, 3H), 8.01-7.98 (m, 1H), 7.88 (q, J = 13.0 Hz, 1H). 7.78 (t. J = 10.5 Hz, 1H), 5.96 (s, 1H), 3.50 (bs, 1H), 2.70-2.66 (m, 2H), 2.41-2.35 (m, 2H), 2.17-2.14 (m, 1H), 1.91-1.89 (m, 1H).87BUSINESS.33535475 1Example 7 (1-57 and 1-58)21-57 and 1-58
[0308] Step 1: To a stirred solution of tert-butyl (3-oxocyclopentyl) carbamate (3.0 g, 15.05 mmol, 1.0 eq.) in tetrahydrofiiran (30 mL, 10 vol) was added lithium bis(trimethylsilyl)amide (Li-HMDS, 1 M in THF) (37.64 mL, 37.64 mmol, 2.5 eq.) at -78°C. Tire reaction mixture was stirred at -78 °C for 30 min and l,l,l-trifhioro-N-phenyl-N-((trifhioromethyl)sulfonyl) methanesulfonamide (8.06 g, 22.58 mmol. 1.5 eq.) was added. The reaction mixture was stirred at 0 °C for 3 h. Tire completion of the reaction was monitored by TLC using 20% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (50 mL) and extracted with ethyl acetate (3 X 50 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum to afford the crude product. Hie crude material was purified by flash column chromatography on silica gel using 8% ethyl acetate in hexane as eluent to give a mixture of 4-((tert-butoxycarbonyl)amino) cyclopent- 1-en-l-yl88BUSINESS.33535475 1410095-005WG (221368) trifluoromethanesulfonate and 3-((tert-butoxycarbonyl)amino)cyclopent-l-en-l-yl trifluoromethane sulfonate, which were used directly in the next step. (3.2 g, 64%).
[0309] Step 2: To a stirred solution of 4-((tcrt-butoxycarbonyl)amino)cyclopcnt-l-cn-l-yl trifluoromethanesulfonate and 3 -((tert-butoxy carbonyl)amino)cyclopent- 1 -en- 1 -yl trifluoromethane sulfonate (mixture of regioisomers, 4.0 g, 12.07 mmol, 1.0 eq.) and bis(pinacolato)diborane (fhpim) (4.59 g, 18.10 mmol, 1.5 eq.) in 1,4-dioxane (80 mb, 20 vol) was added potassium acetate (KO Ac) (3.55 g, 36.21 mmol, 3 eq ). The reaction mixture was purged with nitrogen gas for 10 min and Pd(dppf)CL.DCM complex (0.985 g, 1.20 mmol, 0.1 eq.) was added at room temperature. The reaction mixture was stirred at 100 °C for 2h. The completion of the reaction was monitored by TLC using 20% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (100 mL) and extracted with ethyl acetate (3 X 100 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum to afford tert-butyl (3-(4,4,5,5-tetramethyl-l,3,2-dioxaborolan-2- yl)cyclopent-3-en-l-yl)carbamate and tert-butyl (3-(4,4,5,5-tetramethyl-l,3,2-dioxaborolan-2- yl)cyclopent-2-en-l-yl)carbamate (3.2 g, 86%). The obtained crude material (a mixture of regioisomers) was directly used in the next step without further purification.
[0310] Step 3: To a stirred solution of 6-fluoroisoquinoline (3.0 g, 6.79 mmol. 1.0 eq.) in acetic acid (10 mL. 10 vol) was added N-bromo succinimide (NBS) (1.81g. 10.19 mmol, 1.5 eq.) at 0 °C. The reaction mixture was further stirred at 60 °C for 16 h. The completion of the reaction was monitored by TLC using 20% dichloromethane in hexane and LCMS analysis. After completion of the reaction, the reaction mixture quenched with a saturated sodium bicarbonate solution (50 mL) and extracted with ethyl acetate (3 X 50 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum to give the crude product. The obtained crude material was purified by flash column chromatography on silica gel using 7% ethyl acetate in hexane as an eluent to afford 4-bromo-6-fluoroisoquinoline (0.81 g, 18%). LCMS (m / z): 225.9 [M+H]+.
[0311] Step 4: To a stirred solution of 4-bromo-6-fluoroisoquinoline (1.0g, 2.12 mmol, 1 eq.) and Mixture A (mixture of regioisomers prepared in Step 2, 0.88 g, 2.18 mmol, 1.2 eq.) in 1,4-dioxane (10 mL, 10 vol) and water (1 mL, 1 vol) was added potassium carbonate (K2CO3) (1.3 g, 9.7 mmol, 3 eq.). The reaction mixture was purged with nitrogen gas for 10 minutes and Pd(dppf)C12.DCM complex (0.26 g. 0.32 mmol, 0.1 eq.) was added at room temperature. The reaction mixture was allowed to stir at 100°C for 3h. The completion of the reaction was monitored by TLC using 30% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (50 mL) and extracted with ethyl acetate (3 X 50 mL). Hie combined organic layers were dried over sodium sulphate and concentrated under high vacuum to give the crude product. The obtained crude product was purified by reverse-phase preparative HPLC to separate the regioisomers (Column: Xselect CSH Phenyl Hexyl (25089BUSINESS.33535475 1410095-005WG (221368) mm x 19 mm x 5 pm); Mobile Phase A: 0.05% formic acid in water. Mobile Phase B: acetonitrile; Flow rate: 14 mL / min; Gradient: 75% A for 24 mins, 0% A for 3 mins, 75% A for 3 mins; Wave Length: 210 nm; RTl(min) 18; RT2(min): 21; Sample Solvent: DMSO; Sample loading: 17 mg; Number Of Runs: 31). The isolated fractions were lyophilized to afford tert-butyl (3 -(6-fluoroisoquinolin-4-yl)cy clopent-3 -en-1- yl)carbamate (regioisomer 1, 0.07 g, 7%) and tert-butyl (3 -(6-fhroroisoquinolin-4-yl)cy clopent-3 -en-1- yl)carbamate (regioisomer 2, 0.06 g. 6%) as white solids. LCMS (m / z): 329.2 [M+H]+; Fraction 1 - regioisomer 1. LCMS (m / z): 329.2 [M+H]+; Fraction 2 - regioisomer 2.
[0312] Step 5: To a stirred solution of tert-butyl (3 -(6-fluoroisoquinolin-4-yl)cy clopent-3 -en-1- yl)carbamate (regioisomer 1 prepared in Step 4, 0.07 g, 0.21 mmol, 1.0 eq.) in dichloromethane (0.7 rnL, 10 vol) was added 4M hydrochloric acid in 1,4-dioxane (0.4 mL, 5 vol) at 0°C. Tire resulting mixture was stirred at room temperature for 3h. The completion of the reaction was monitored by TLC using 5% methanol in dichloromethane. After completion of reaction, the reaction mixture was concentrated under reduced pressure to afford solid material which was further triturated with diethyl ether (3 x 10 mL) and dried to afford 3-(6-fluoroisoquinolin-4-yl)cyclopent-3-en-l-amine hydrochloride (0.06 g, quantitative) as a white solid. Hie isolated racemic 3-(6-fluoroisoquinolin-4-yl)cyclopent-3-en-l-amine hydrochloride (0.06 g) was submitted to chiral preparative HPLC separation. (Column: Hypersil Chiral IC-T (250mm x 50mm x 5pm); Mobile Phase A: Liquid CO2, Mobile Phase B: 0.1% methanolic ammonia in methanolacetonitrile (50-50); Flow rate: 150 mL / min; Gradient: 55 %Ato 55 %A in 25 mins; Wavelength: 210 nm; RTl(min) 14.2; RT2(min): 19.0; Sample Solvent: Methanol; Sample Loading: 12 mg; Number Of Runs: 6).
[0313] First eluting isomer (1-57): 3-(6-fluoroisoquinolin-4-yl)cyclopent-3-en-l-aniine (8 mg, 13 %, brown solid). LCMS (m / z): 229.3 [M+H]1; 'H NMR (400 MHz, DMSO-rfc): 5 9.22 (s, 1H). 8.40-8.39 (m, 1H), 8.30-8.26 (m, 1H), 7.84-7.81 (m, 1H), 7.65-7.60 (m, 1H), 6.02 (s, 1H), 4.30 (bs, 1H), 3.75-3.74 (m, 1H), 3.02-2.97 (m, 1H), 2.84-2.78 (m, 1H), 2.32-2.27 (m, 1H) (-NH, proton is not distinguishable).
[0314] Second eluting isomer (1-58): 3-(6-fluoroisoquinolin-4-yl)cyclopent-3-en-l-amine (10 mg, 17%, orange solid). LCMS (m / z): 229.3 [M+H]+; 'H NMR (400 MHz, DMSO-r / 6): 5 9.30 (s, 1H), 8.46 (s, 1H). 8.35-8.31 (m, 1H). 7.98-7.96 (m, 1H), 7.70-7.65 (m, 1H), 6.09 (s. 1H), 4.05 (bs, 1H). 3.38-3.26 (m, 1H). 3.00-2.98 (m, 1H). 2.84-2.80 (m. 1H), 2.71-2.67 (m, 1H) (-NH2proton is not distinguishable).90BUSINESS.33535475 1
[0315] Additional exemplary compounds prepared via Example 7 methods:91BUSINESS.33535475 1410095-005WG (221368)Example 8 (1-61 and 1-62)ii) NiCI2glyme, BBBPY, DME Blue LED, 4hStep 24 M HCI in dioxane, DCM, RT, 5hStep 4First eluting isomerSecond eluting isomer
[0316] Step 1: To a stirred solution oftert-butyl (3-hydroxycyclobutyl)carbamate (1.00 g, 5.34 mmol) in tetrahydrofuran (20 ml, 20 vol) were added carbon tetrabromide (3.50 g, 10.7 mmol) and triphenylphosphine (2.80 g, 10.7 mmol) portion-wise at room temperature. The reaction mixture was stirred at room temperature for 20 h. The completion of the reaction was monitored by TLC using 10% ethyl acetate in hexane (KMnCL staining reagent). After completion of the reaction, the reaction mixture was poured into water (125 mL) and extracted with ethyl acetate (2 X 75 mL). The combined organic layers were dried over anhydrous Na2SO4 and concentrated under reduced pressure to afford the crude material. The crude residue was purified by flash column chromatography on silica gel using 8% ethyl acetate in hexane as eluent to obtain tert-butyl (3-bromocyclobutyl)carbamate (0.40 g, 30%) as white solid. ’H NMR (400 MHz, DMSO-6) 5 7.33 (m, 1H), 4.59-4.55 (m, 1H), 4.36-4.30 (m, 1H), 2.61-2.47 (m, 4H), 1.36 (s, 9H).
[0317] Step 2: Preparation of Solution A: To a 10 mL glass vial were added 4-bromo-8- fluoroisoquinoline (0.2 g, 0.9 mmol), tert-butyl (3-bromocyclobutyl)carbamate (0.442 g, 1.77 mmol),92BUSINESS.33535475 1410095-005WD (221368) tris(trimethylsilyl)silane (0.22 g, 0.88 mmol), [4,4'-Bis(l,l-dimethylethyl)-2,2'-bipyridine-Nl,Nl']bis[3,5- difluoro-2-[5-(trifluoromethyl)-2-pyridinyl-N]phenyl-C]Iridium(III) hexafluorophosphate (0.020 g, 0.017 mmol), sodium carbonate (0. 187 g, 1.78 mmol) and dimethoxy ethane (DME) (4 mL, 20 vol). Tire vial was sealed and placed under argon.
[0318] In a separate vial, a solution of nickel (II) chloride ethylene glycol dimethyl ether complex (0.004 g, 0.02 mmol) and 4,4'-Di-tert-butyl-2,2'-dipyridyl (0.005 g, 0.02 mmol) in dimethoxy ethane (DME) (4 mL, 20 vol) was sonicated for 10 min. To this reaction mixture, Solution A (sonicated for 10 min before addition) was added. Tire reaction mixture was degassed with argon and irradiated with a blue LED light (427 nm, Kessil BlueLED) at room temperature for 4 h. Completion of the reaction w as monitored by TLC (40 % ethyl acetate :n-hexane). After completion of the reaction, the reaction mixtures of parallel batches were combined and poured into a saturated sodium bicarbonate (NaHCCL) solution (40 mL) and extracted with ethyl acetate (3 X 30 mL). The combined organic layer was dried over anhydrous Na2SC>4 and concentrated under reduced pressure. The obtained crude material was purified by flash column chromatography on silica gel using 30% ethyl acetate in hexane as an eluent to afford tert-butyl (3-(8- fluoroisoquinolin-4-yl)cyclobutyl)carbamate (0.23 g, 41%) as a white solid. LCMS (m / z): 317.0 [M+H]+.
[0319] Step 3: Hie isolated mixture of cis and trans isomers of tert-butyl (3-(8-fluoroisoquinolin-4- yl)cyclobutyl)carbamate (0.23 g) was submitted to reverse phase preparative HPLC purification for separation of the isomers. (Column: Sunfire Prep C18 (250mm x 19mm x 5pm); Mobile Phase A: 0.05% formic acid in water, Mobile Phase B: 50% acetonitrile in MeOH; Flow rate: 16 mL / min; Gradient: 53% A for 39 mins, 0% A for 2 mins, 53% A for 5 mins; Wave Length: 254 nm; RTl(min) 32; RT2(min): 38; Sample Solvent: DMSO; Sample loading: 20 mg; Number Of Runs: 24). First eluting isomer: 110 mg, white solid; LCMS (m / z): 317.2 [M+H]1, 48%. Second eluting isomer: 60 mg, white solid; LCMS (m / z): 317.1 [M+H]+, 26%.
[0320] Step 4: To a stirred solution of the first eluting isomer (0.1 g, 0.3 mmol, 1.0 eq.) from Step 3 in dichloromethane (1 mL, 10 vol) was added 4M hydrochloric acid in 1,4-dioxane (0.5 mL, 5 vol) at 0 °C under an inert atmosphere of nitrogen gas. The resulting mixture was stirred at room temperature for 5 h. Completion of the reaction was monitored by TLC (10% methanol in dichloromethane). After completion of the reaction, the reaction mixture was concentrated under reduced pressure. The isolated material w as resuspended in DCM (10 mL) and then the solvent was removed by distillation in order to remove trapped volatile impurities. This was repeated with a second portion of DCM (10 mL) to afford a solid material which was further triturated with diethyl ether (4 X 10 mL). The isolated material w as then diluted with a saturated sodium bicarbonate solution (10 mL) and extracted with 10% methanol in dichloromethane (2 X 15 mL). Tire combined organic layers were dried over anhydrous Na2SC>4 and concentrated under reduced pressure to afford (lr,3r)-3-(8-fluoroisoquinolin-4-yl)cyclobutan-l-amine (1-61, 0.012 g, 17%) as an off-93BUSINESS.33535475 1white semi solid. LCMS (m / z): 217.1 [M+H]+; ‘HNMR (400 MHz, DMSO-ok) 5 9.34 (s, 1H), 8.58 (s, 1H),7.83-7.78 (m, 1H), 7.74-7.72 (m, 1H), 7.49 (dd, J= 10.5, 7.5, 1H), 4.13-4.10 (m, 1H), 3.51-3.48 (m, 1H),2.44-2.43 (m, 2H), 2.30-2.23 (m, 2H).Step 5: Tire same procedure was applied to the second eluting isomer (0.06 g) from Step 3. This afforded (ls,3s)-3-(8-fluoroisoquinolin-4-yl)cyclobutan-l-amine hydrochloride (1-62, 0.015 g, 31%) as a white solid. LCMS (m / z): 217.1 [M+H]+; 'H NMR (400 MHz, DMSO-de) 5 9.64 (s, 1H), 8.61 (s, 1H). 8.37 (s, 3H), 8.08-8.03 (m, 1H), 8.01-7.98 (m, 1H), 7.74-7.69 (dd, J= 10.0, 7.5, 1H), 4.02-3.98 (t, J = 17.0 Hz, 1H), 3.84-3.83 (m, 1H), 2.89-2.86 (m, 2H), 2.50-2 / 45 (m, 2H). NOE analysis of 1-62 confirmed the Is, 3s stereochemistry. Therefore, the stereochemistry of 1-61 was assigned as lr,3r.Step 1Second Eluting FractionFrom second eluting fraction K3PO4, PdCI2(dppf).DCM,1 ,4-Dioxane: Water(9: 1 ),100°C, 1h[003211 Step 1: To a stirred solution of 5-chloro-2-fluorobenzaldehyde (25.00 g, 157.7 mmol) in toluene (250.00 mL, 10 vol) was added 2,2-dimethoxyethan-l -amine (24.80 g, 236.5 mmol) drop-wise at room temperature. The reaction mixture was stirred at 150 °C for 16 h. The completion of the reaction was monitored by TLC using 10 % ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was concentrated under reduced pressure to afford (Z)-l-(5-chloro-2-fluorophenyl)-A- 94BUSINESS.33535475 1410095-005WG (221368)(2,2-dimethoxyethyl)methanimine (40.00 g) as a light-yellow liquid. The isolated material was used for the next step without further purification. 'H NMR (400 MHz, DMSO-< ) 5 8.51 (s, 1H), 7.83-7.81 (m, 1H), 7.61-7.57 (m, 1H),7.38 (t, J = 10.0 Hz, 1H), 4.61 (t, J = 5.2 Hz, 1H), 3.76-3.75 (m, 2H), 3.29 (s, 6H).
[0322] Step 2: A solution of (Z)-l-(5-chloro-2-fluorophenyl)-A-(2,2-dimethoxyethyl)niethanimine (40.00 g, 162.8 mmol) in 98% sulfuric acid (400.00 mL, 10 vol) was allowed to stir at 140 °C for 2 h. The progress of the reaction was monitored by TLC using 30% ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the mixture was cooled to -78 °C and poured into a 50% aqueous sodium hydroxide (NaOH) solution (500 mL) with the pH maintained between 9 and 10. Tire aqueous component was extracted with di chloromethane (3 X 250 mL). The combined organic layers were dried over anhydrous sodium sulphate and concentrated under high vacuum to obtain the crude residue. The crude material was purified by flash column chromatography on silica gel using 1% ethyl acetate in hexane as eluent to afford 5 -chloro- 8-fluoroisoquinoline as light-yellow solid. The material was isolated as two batches (0.510 g and 1.8 g). LCMS (rn / z): 182.0 [M+H]+(both batches).
[0323] Step 3: To a stirred solution of 5-chloro-8-fluoroisoquinoline (0.5 g, 2 mmol) in acetic acid (10.00 mL, 20 vol) was added A-bromosuccinimide (0.73 g, 4.1 mmol, 1.5 eq.) at 0 °C under a nitrogen atmosphere. Tire reaction mixture was allowed to stir at 80 °C for 2 h. The progress of the reaction was monitored by TLC using 15% ethyl acetate in hexane and LCMS analysis. A second, identical parallel reaction was prepared. After completion of both reactions, the parallel batches were combined and concentrated under reduced pressure to afford the crude material. The residue was purified by flash column chromatography on silica gel using 1% ethyl acetate in hexane as eluent to afford 4-bromo-5-chloro-8- fluoroisoquinoline (0.70 g, 49%) as light-yellow solid. LCMS (m / z): 260.0 [M+H]+.
[0324] Step 4: To a stirred solution of 4-bromo-5-chloro-8-fluoroisoquinoline (0.15 g, 0.58 mmol, 1.0 eq.) and the first eluting fraction ofthe chirally-separated (see Example 5) tert-butyl (4-(4,4,5,5-tetramethyl- l,3,2-dioxaborolan-2-yl)cyclohex-3-en-l-yl)carbamate (0.22 g, 0.69 mmol) in 1,4-dioxane (1.35 mL, 9 vol) and water (0.15 mL, 1 vol) was added tri-potassium phosphate (K3PO4) (0.36 g, 1.7 mmol). Tire reaction mixture was purged with nitrogen gas for 30 minutes and Pd(dppf)C12.DCM complex (0.047 g, 0.057 mmol) was added at room temperature under a nitrogen atmosphere. The reaction mixture was allowed to stir at 100 °C for 1 h. The progress of the reaction was monitored by TLC using 50 % ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (40 mL) and extracted with ethyl acetate (2 X 45 mL). The combined organic layers were dried over anhydrous sodium sulphate and concentrated under high vacuum to afford the crude material. Tire residue was purified by flash column chromatography on silica gel using 11% ethyl acetate in hexane as eluent to obtain a solid material. The isolated material was further triturated with diethyl ether (2 X 10 mL) and dried in vacuo to afford tert-butyl (4-(5-chloro-8-fluoroisoquinolin-4-yl)cyclohex-3-en-l-yl)carbamate (0.12 g, 55%) as an95BUSINESS.33535475 1410095-005WG (221368) off-white solid. LCMS (m / z): 377.3 [M+H]+; Analytical chiral HPLC: Column Chiralpak IC (250mm x 4.6mm, 5pm); Mobile Phase: 0.1% methanolic NHs in IPA; Wavelength: 220 nm; RT 5.17 min.
[0325] Step 5: The same procedure as in step 4 was applied, except using the second eluting fraction of the chirally-separated (see Example 5) tert-butyl (4-(4,4,5.5-tetramethyl-l,3,2-dioxaborolan-2- yl)cyclohex-3-en-l-yl)carbamate to afford tert-butyl (4-(5-chloro-8-fluoroisoquinolin-4-yl)cyclohex-3-en- l-yl)carbamate (0. 125 g, 58%) as an off-white solid. LCMS (m / z): 377.2 [M+H]+; Analytical chiral HPLC: Column Chiralpak IC (250mm x 4.6mm, 5pm); Mobile Phase: 0.1% methanolic NH3 in IPA; Wavelength: 220 nm; RT 5.44 min.
[0326] Step 6: To a stirred solution of tert-butyl (4-(5-chloro-8-fluoroisoquinolin-4-yl)cyclohex-3-en- I-yl)carbamate (0.12 g, 0.32 mmol) in dichloromethane (2.4 mL, 20 vol) was added 4 M hydrochloric acid in 1.4-dioxane (0.6 mL. 5 vol) at 0 °C under an inert atmosphere of nitrogen gas. Tire resulting reaction mixture was stirred at room temperature for 2 h. The progress of the reaction was monitored by TLC using 50 % ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the mixture was concentrated under reduced pressure. The isolated material was resuspended in DCM (10 mL) and then the solvent was removed by distillation in order to remove trapped volatile impurities. This was repeated with a second portion of DCM (10 mL) to afford solid material which was further triturated with acetonitrile (2 X 10 mL) and diethyl ether (2 X 10 mL), followed by drying in vacuo to afford 4-(5-chloro-8- fluoroisoquinolin-4-yl)cyclohex-3-en-l -amine hydrochloride (1-59, 0.085 g, 85%) as light yellow solid. LCMS (m / z): 277.2 [M+H] "; Analytical chiral HPLC: Column Chiralpak IC-3 (100 mm x 3 mm, 3 pm); Mobile Phase: 0.1% methanolic NH3 in McOH:ACN (50:50); Wavelength: 220 nm; RT 2.795 min; 'H NMR (400 MHz, DMSO-r / 6) 8 9.53 (d, J= 13.5 Hz, 1H), 8.64-8.38 (m. 1H), 8.35 (bs, 3H). 8.05-8.00 (m, 1H). 7.64-7.58 (m, 1H), 5.63-5.58 (m, 1H), 3.53-3.37 (m, 1H). 2.66-2.54 (m, 1H), 2.45-2.23 (m, 3H), 2.15- 2.07 (m, 1H), 2.01-1.97 (m, 1H).
[0327] Step 7: The same procedure as in step 6 was applied, except using tert-butyl (4-(5-chloro-8- fluoroisoquinolin-4-yl)cyclohex-3-en-l-yl)carbamate from step 5 to afford 4-(5-chloro-8- fluoroisoquinolin-4-yl)cyclohex-3-en-l -amine hydrochloride (1-60, 0.055 g, 53%) as light-yellow solid. LCMS (m / z): 277.2 | M+H| : Analytical chiral HPLC: Column Chiralpak IC-3 (100 mm x 3 mm, 3 pm); Mobile Phase: 0.1% methanolic NH3 in MeOH:ACN (50:50); Wavelength: 220 nm; RT 2.906 min; 'H NMR (400 MHz, DMSO- ) 8 9.58-9.53 (m, 1H), 8.64-8.38 (m, 1H), 8.35 (bs, 3H), 8.06-8.00 (m, 1H), 7.62 (d, J = 8.0 Hz, 1H), 5.63-5.58 (m, 1H), 3.53-3.37 (m, 1H), 2.66-2.54 (m, 1H), 2.45-2.23 (m, 3H), 2.15- 2.07 (m, 1H), 2.01-1.97 (m, 1H).96BUSINESS.33535475 1410095-005WG (221368)Example 10: (1-20 and 1-21)
[0328] Step 1: To a stirred solution of 4-bromo-8-fluoroisoquinoline (0.2 g, 0.88 mmol, 1.0 eq.) and tert-butyl (4-(4.4.5,5-tetramethyl-1.3.2-dioxaborolan-2-yl) cyclohex-3-en-l-yl) carbamate (0.43 g, 1.33 mmol, 1.5 eq.) in 1,4-dioxane (2.0 mL, 10 vol) and water (0.2, 1 vol) was added tri-potassium phosphate (K3PO4) (0.56 g, 2.65 mmol, 3.0 eq.). The reaction mixture was purged with nitrogen gas for 10 minutes and Pd(dppf)C12.DCM complex (0.07 g, 0.09 mmol, 0.1 eq.) was added at room temperature. Tire reaction mixture was allowed to stir at 100 °C for 16 h. The completion of the reaction was monitored by TLC using 50 % ethyl acetate in hexane and LCMS analysis. After completion of the reaction, the reaction mixture was quenched with water (100 mL) and extracted with ethyl acetate (2 X 100 mL). The combined organic layers were dried over sodium sulphate and concentrated under high vacuum. The obtained crude material was purified by flash column chromatography on silica gel using 23 % ethyl acetate in hexane as eluent to afford tert-butyl (4-(8-fluoroisoquinolin-4-yl) cyclohex-3 -en-l-yl) carbamate (0.15 g, 50%). LCMS (m / z): 343.3 [M+H]+.
[0329] Step 2: To a stirred solution tert-butyl (4-(8-fluoroisoquinolin-4-yl) cyclohex-3 -en-l-yl) carbamate (0.16 g, 0.47 mmol, 1.0 eq.) in dichloromethane (1.6 mL, 10 vol) was added 4M hydrochloric acid in 1,4-dioxane (0.8 mL, 5 vol) at 0 °C. The resulting reaction mixture was further stirred at room temperature for 3 h. The completion of the reaction was monitored by TLC using 5% dichloromethane in methanol and LCMS analysis. After completion of reaction, the reaction mixture was concentrated under reduced pressure to afford a solid material which was triturated with diethyl ether (3 x 30 mL) and dried well to afford 4-(8-fluoroisoquinolin-4-yl) cyclohex-3 -en-1 -amine hydrochloride (0.16 g, quantitative) as a white solid. LCMS (m / z): 243.1 |M+H| .
[0330] Step 3: The isolated racemic 4-(8-fluoroisoquinolin-4-yl) cyclohex-3 -en-1 -amine hydrochloride (racemic) (0.13 g) was submitted to chiral preparative HPLC separation. (Column: CHIRALPAK IG (250mm x 50mm x 5pm; Mobile Phase A: Liquid CO2, Mobile Phase B: 0.1% methanolic ammonia in methanol-acetonitrile (50-50); Flow rate: 150 mL / min; Gradient: 60 % Ato 60 % A in 26 mins;97BUSINESS.33535475 1Wave Length: 210 nm; RTl(min) 17.5; RT2(min): 21.5; Sample Solvent: Methanol; Sample Loading: 20 mg; Number Of Runs: 9).
[0331] Eluting fraction 1 (1-20): 40 mg, yellow sticky solid; 27%; LCMS (m / z): 243.2 [M+H]+; Analytical chiral HPLC: Column Chiralpak IG (250 mm x 4.6 mm, 5 pm); Mobile Phase: 0.1% methanolic NH3in MeOH:ACN (50:50); Wavelength: 220 nm; RT 6.27 min; 'H NMR (400 MHz. DMSO-tfc) 5 9.38 (s, 1H), 8.42 (s, 1H), 7.82-7.77 (m, 2H), 7.53-7.48 (m, 1H), 5.75-5.74 (m, 1H), 3.23-3.17 (m, 1H), 2.54- 2.38 (m, 3H), 2.10-2.05 (m, 1H), 1.98-1.94 (m, 1H), 1.71-1.63 (m, 1H). (-NH2 proton is not distinguishable).
[0332] Eluting fraction 2 (1-21): 40 mg, yellow sticky solid; 27%; LCMS (m / z): 243.2 [M+H]+; Analytical chiral HPLC: Column Chiralpak IG (250 mm x 4.6 mm, 5 pm); Mobile Phase: 0.1% methanolic NH3in MeOH:ACN (50:50); Wavelength: 220 nm; RT 6.55 mm; 'H NMR (400 MHz. DMSO-<76) 5 9.37 (s, 1H), 8.41 (s, 1H), 7.93 (dd, 10, 2.4 Hz, 1H), 7.86 (td, 8.6, 2.4 Hz, 1H), 7.52-7.47 (m, 1H), 5.75-5.73 (m, 1H), 3.10-3.03 (m, 1H), 2.50-2.34 (m, 3H), 2.03-1.88 (m, 2H), 1.63-1.55 (m, 1H). (-NH2 proton is not distinguishable).Example 11: h5-HT2A Receptor Calcium Assay
[0333] HEK cells over expressing human 5-HT2A receptor were trypsinized, counted, and seeded in black, clear-bottomed 384 well plates at a density of 12,500 cells per well and incubated overnight in media containing 1% dialyzed serum. Next day, media was removed from the cell plates and 30 pl assay buffer (20 mM HEPES: HBSS, pH 7.4) was added. 10 pl Calcium 5 dye solution (Molecular Devices: R8186) was added to the wells and incubated at 37 °C for 40 minutes. Dye solution was made up in 20 mM HEPES: HBSS, pH 7.4 + 2.5 mM probenecid. Compound dilutions (including serial dilutions) were performed in 100% DMSO then transferred to intermediate dilutions for a very limited amount of time (<10 minutes) just before adding to the cell plate. The plates were placed in the FLIPR, after incubation with dye, and fluorescence monitored every 1 second. After 20 seconds 10 pl test compounds and controls were added to the wells and the fluorescence monitored for 5 minutes at ex / em: 488 nm / 510-570 nm in order to monitor compounds as agonists. All compounds were screened in duplicate using a 9 point half-log dose -response curve.
[0334] Data analysis was performed using Dotmatics. Briefly, data was normalized to low (DMSO) and high controls (5-HT Emax)). Assay Z’ should be greater than 0.5, and on-plate control 5-HT should be within 0.25 log of average.
[0335] 115-HT2A Receptor Calcium Assay results are shown in Table 2. The letter codes for pECso include: A (>6); B (>5 - 6); and C (<5). The letter codes for Emax% include: A (>90%); B (>70 - 90%); C (>50 - 70%); and D (<50%).98BUSINESS.33535475 1410095-005WG (221368)Table 2. H5-HT2A Receptor Calcium Assay Results99BUSINESS.33535475 1410095-005WG (221368)Example 12: h5-HT2A Receptor NanoBiT / P- Arrestin Assay
[0336] HEK cells expressing LgBiT tagged 5-HT2A and smBiT p-Arrestin arc trypsinized, counted, and seeded in white 384 well plates at a density of 12.500 cells per well and incubated overnight in media containing 1% dialyzed serum. The following day 25 pL of NanoGio live cell substrate (Promega N2012) is added to each well and the cells incubated for 25 minutes. Compound dilutions (including serial dilutions) are performed in 100% DMSO then transferred to intermediate dilutions for a very limited amount of time (<10 minutes) just before adding to the cell plate. 20 pL of 5X compound solution is added to the cells. Cells arc incubated for 90 minutes at 37 °C and luminescence measured using tire Envision plate reader. All compounds are screened in duplicate using a 9 point half-log dose -response curve on 2 separate occasions. Data analysis is performed as described in Example 11.Example 13: 5-HT2B Receptor Calcium Assay
[0337] HEK cells over expressing human 5-HT2B receptor are trypsinized, counted, and seeded in black, clear-bottomed 384 well plates at a density of 12,500 cells per well and incubated overnight in media containing 1% dialysed serum. Next day, media is removed from cell plates and 30 pl assay buffer (20 mM HEPES: HBSS, pH 7.4) is added. 10 pl Calcium 5 dye solution (Molecular Devices: R8186) is added to the wells and incubated at 37°C for 40 minutes. Dye solution is made up in 20 mM HEPES: HBSS, pH 7.4 + 2.5 mM probenecid. Compound dilutions (including serial dilutions) are performed in 100% DMSO then transferred to intermediate dilutions for a very limited amount of time (<10 minutes) just before adding to the cell plate. Tire plates arc placed in the FLIPR, after incubation with dye, and fluorescence monitored every 1 second. After 20 seconds 10 pl test compounds and controls are added to the wells and the fluorescence monitored for 5 minutes at ex / em: 488 nm / 510-570 nm in order to monitor compounds as agonists. All compounds are screened in duplicate using a 9 point half-log dose -response curve on 2 separate occasions. Data analysis is performed as described in Example 11.Example 14: h5-HT2C Receptor Calcium Assay
[0338] HEK cells over expressing human 5-HT2C receptor are trypsinised, counted and seeded in black, clear-bottomed 384 well plates at a density of 12,500 cells per well and incubated overnight in media containing 1% dialysed serum. Next day, media is removed from cell plates and 30 pl assay buffer (20 mM100BUSINESS.33535475 1410095-005WG (221368)HEPES: HBSS, pH 7.4) is added. 10 pl Calcium 5 dye solution (Molecular Devices: R8186) is added to the wells and incubated at 37°C for 40 minutes. Dye solution is made up in 20 mM HEPES: HBSS, pH 7.4 + 2.5 mM probenecid. Compound dilutions (including serial dilutions) are performed in 100% DMSO then transferred to inter ediate dilutions for a very limited amount of time (<10 minutes) just before adding to the cell plate. The plates are placed in the FLIPR after incubation with dye, and fluorescence monitored every 1 second. After 20 seconds 10 pl test compounds and controls are added to the wells and the fluorescence monitored for 5 minutes at ex / em: 488 nm / 510-570 nm in order to monitor compounds as agonists. All compounds are screened in duplicate using a 9 point half-log dose -response curve on 2 separate occasions. Data analysis is performed as described in Example 11.Example 15: m5-HT2A Receptor Calcium Assay
[0339] HEK cells over expressing mouse 5-HT2A receptor are trypsinized. counted, and seeded in black, clear-bottomed 384 well plates at a density of 12,500 cells per well and incubated overnight in media containing 1% dialysed serum. Next day, media is removed from cell plates and 30 pL assay buffer (20 mM HEPES: HBSS, pH 7.4) is added. 10 pl Calcium 5 dye solution (Molecular Devices: R8186) is added to the wells and incubated at 37°C for 40 minutes. Dye solution is made up in 20 mM HEPES: HBSS, pH 7.4 + 2.5 mM probenecid. Compound dilutions (including serial dilutions) are performed in 100% DMSO then transferred to intermediate dilutions for a very limited amount of time (<10 minutes) just before adding to the cell plate. The plates are placed in the FLIPR after incubation with dye, and fluorescence monitored every 1 second. After 20 seconds 10 pl test compounds and controls are added to the wells and the fluorescence monitored for 5 minutes at ex / em: 488 nm / 510-570 nm in order to monitor compounds as agonists. All compounds are screened in duplicate using a 9 point half-log dose -response curve on 2 separate occasions. Data analysis is performed as described in Example 11.Example 16: Head Twitch Response and Locomotor Activity in mice.
[0340] The aim of this study is to determine the effect of provided compounds to elicit the head twitch response and the effect on locomotor activity. The Head Twitch Response (HTR; also called “wet-dog shakes”) is a widely used behavioral assay in mice and rats respectively to test for activation of the serotonin 5-HT2A receptor. The response is a rapid, side-to-side movement of the head and neck. Halberstadt, A. L., Geyer. M. A. Characterization of the head-twitch response induced by hallucinogens in mice: detection of the behavior based on the dynamics of head movement. Psychopharmacology (Berl). 2013; 227(4):727- 739; Halberstadt, A. L., Geyer, M. A.. Effect of Hallucinogens on Unconditioned Behavior. Curr Top Behov Neurosci. 2018; 36: 159-199. While not a direct correlation, HTR serves as an indicator of potential psychedelic effect in humans. Halberstadt, A. L., Chatha, M., Klein, A. K., Wallach J., Brandt, S. D. Correlation between the potency of hallucinogens in the mouse head-twitch response assay and their101BUSINESS.33535475 1410095-005WD (221368) behavioural and subjective effects in other species. Neuropharmacology. 2020; 167: 107933. Whole brain and plasma samples are collected for drug metabolism and pharmacokinetics (DMPK).
[0341] Sixty (60) male C57BL / 6J mice (8-9 weeks of age, 20-25 g upon arrival) arc obtained. Mice are dosed with either vehicle (p.o or i.p) or compound (p.o or i.p) at time “0” and placed in the arenas. Dosing is to a timed scheduled. Mice are weighed prior to dosing and body weight recorded. A reference (e.g., lysergic acid diethylamide (LSD) or 2,5-dimethoxy-4-iodoamphetamine (DOI)) may be used.
[0342] Tire number of head twitches are counted by a trained observer who is blind to treatment, and sessions are recorded using video capture equipment (Etho vision vl7) for a period of time post dosing. The locomotor activity of all groups is measured using the Ethovision system. Other behaviours of note are also scored. At the conclusion of the observation period (T=30) each mouse will be humanely euthanized using CO2 and a cardiac puncture performed prior to confirming death via cervical dislocation. The mice are utilized for brain and blood sampling / DMPK.
[0343] Terminal plasma: following confirmation of death, as much blood as possible is removed from the animal to individual K3EDTA tubes, which are then held on wet ice for a maximum of 30 minutes prior to centrifugation. Blood samples are spun at 2000 g for 10 minutes at 4 °C and as much plasma as possible is extracted and transferred to individual 0.5mL screwcap microtubes, frozen over dry ice and stored at - 80°C for subsequent analysis of compound levels.
[0344] Brain: following confirmation of death, the brain is removed from each mouse, rinsed in purified water, blotted dry. weighed, and snap frozen in individual 7 mL precellys tubes, samples to be stored at -80 °C for subsequent analysis of compound levels.
[0345] Data: A square root transformation is used for the number of head twitches. If there is evidence that square root transformed data are not normally distributed, the log(x+l) transformation and no transformation is also considered. The primary analysis is the total number of twitches over the 30-minute observation period. Analysis is by three-way analysis of variance with treatment, day and observer as factors. If an appropriate transformation cannot be found, robust regression may be used. Non-parametric methods (exact Wilcoxon rank sum test) may be used if there are no twitches for many of the animals. Locomotor activity analysis is by two-way AN OVA on square-root transformed data with treatment and day as factors.Example 17: Forced Swim Test in mice.
[0346] The experiment is designed to utilize the forced swim test (FST), a method with predictive capabilities for evaluating the efficacy of antidepressant medications. Petit-Demouliere, B., Chenu, F., Bourin, M. Forced swimming test in mice: a review of antidepressant activity. Psychopharmacology (Berl). 2005, 177(3), 245-255; Malikowska-Racia, N., Salat, K., Nowaczyk, A., Fijalkowski, L., Popik, P. Dopamine D2 / D3 receptor agonists attenuate PTSD-like symptoms in mice exposed to single prolonged102BUSINESS.33535475 1410095-005WG (221368) stress. Neuropharmacology 2019, 155, 1-9; McDonnell, C. W., Dunphy-Doherty, F., Rouine, J., et al. The Antidepressant-Like Effects of a Clinically Relevant Dose of Ketamine Are Accompanied by Biphasic Alterations in Working Memory in the Wistar Kyoto Rat Model of Depression. Front Psychiatry 2021, 11, 599588.
[0347] FST is a utilized behavioral model in preclinical screening, which is based on observing a rodent's response to a threat. Passive behavior, drifting, and lack of movement to attempt escape are interpreted as susceptibility to depressed mood. This test involves placing the animal in a container of water with no means of escape and inducing short-term stress due to the necessity to stay afloat. The assay can provide reproducible results and detect various antidepressants. Cryan J. F., “Depression” Encyclopedia of Behavioral Neuroscience 2010, 382-386. Exposure of animals to the FST has been demonstrated to elicit neurochemical changes in the brain consistent with a depressive phenotype, such as transient reductions in serotonin and norepinephrine levels in cortical and limbic structures. Matthews, K.., Stewart, C., “Depression Models” Encyclopedia of Stress (Second Edition) 2007, 760-766.
[0348] Naive C57BL6 / J mice are used for this study, and a reference (e.g., psilocybin) may be administered. The animals undergo a 7-day acclimatization period to their new environment and are weighed prior to compound administration. To evaluate the efficacy of the tested compounds, the mice are subjected to drug therapy with the vehicle, the tested compounds, and a reference (e.g.. psilocybin) at the minimum effective dose (e.g., 5mg / kg psilocybin). Subsequently, a forced swim test is conducted at certain time points following drug administration (e.g., at 0.5-2.0 hrs and at 24 hours).
[0349] The mouse is carefully placed in a glass cylindrical tank (approximately 30cm x 14cm) filled with water at a temperature of 26-28 °C, ensuring that the water level is high enough to prevent the mouse from touching the bottom with its paws or tail, thus preventing escape. The animal is observed and recorded for a duration of 6 minutes after placement in the tank. After recording, the mouse is delicately dried with a soft paper towel and placed back in its cage under a heat lamp for an additional 6 minutes to warm up. Using ANY-maze software, the active swim time, drift time, and attempts to climb the cylinder wall are analyzed based on the last 4 minutes of the recording. A decrease in active swimming time and lack of attempts to escape the cylinder are indicative of depressive-like symptoms.Example 18: Chronic Social Defeat Methodology.
[0350] In the first part of the CSD study, CD-I male mice undergo aggression screening (mild) in order to score aggressive behaviour toward C57BL / 6J mice to ensure the defeat of the intruder during chronic social defeat (CSD) procedure. The C57BL / 6J male mice are subjected to 10 days of CSD procedure (moderate) followed by the 1st social preference test.
[0351] 1st social preference test (SP; mild) (day 11) is performed to assess CSD effect on social avoidance, which is the primary behavioural endpoint in the CSD model. The SP test consists of 2 x 2.5103BUSINESS.33535475 1410095-005WD (221368) min sessions. During the habituation session, mice explore the apparatus containing an empty perforated cylinder (“no target”) placed in one side of the chamber. Prior to the test session, an unfamiliar CD-I mouse is placed in the perforated cylinder (“target present”). The “interaction zone” is defined as the area surrounding the perforated cylinder. The social preference score is calculated by dividing the time spent in the “interaction zone” when the target is present by the time spent in the “interaction zone” when the target is absent. The test assesses the level of social aversion in the mice based on the interaction time of the test mice with the other individual additional parameters: time spent in the comer and total distance travelled is analysed. Based on the results from the first SP test, mice are divided into either exhibiting a stress-resilient (SP score above 100) or a stress- susceptible phenotype (SP score under 100). Subsequently susceptible mice are assigned to experimental groups ensuring that overall average SP scores of each group were at similar level. Following baseline SP recordings mice undergo drug administration with either a reference (e.g., psilocybin), vehicle or test compound (TC) on Day 14. At the next step, all groups are submitted to the 2nd SP test (mild) 24 hr post-administration on Day 15 to assess drug effect on social avoidance. Then, all groups are submitted to the 3rd SP test (mild) to assess the long-term drug effect on social avoidance on Day 21 or 28. Body weight and animal welfare are monitored daily.104BUSINESS.33535475 1
Claims
CLAIMS1. A compound of formula I ” :or a pharmaceutically acceptable salt thereof, wherein:— is a single or double bond as allowed by valency;Ring A is a saturated or partially unsaturated 4- to 6-membered monocyclic carbocyclyl, a saturated or partially unsaturated 7- to 8-membered bicyclic spirocyclic carbocyclyl, or a saturated or partially unsaturated 4- to 9-membered fused or bridged bicyclic carbocyclyl;X1is N or CR1;X2is N or CR2;X3is N or CR3;X4is N or CR4;X5is N or CR5;X6is N or CR6;X7is N or CR7; each of R1, R2, R3, R4, R5, R6, and R7is independently selected from hydrogen, halogen, -CN, -ORA, -NR2, -C(O)R, -C(0)NR2, -C(O)OR. -NRC(O)R, -OC(O)R, or an optionally substituted group selected from C1-6 aliphatic, a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, or a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur;RAis hydrogen or an optionally substituted group selected from C1-6 aliphatic or 3-to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur;R8is hydrogen or optionally substituted C1-6 aliphatic; each R9is independently selected from halogen, -CN, -OR, -NR2, or an optionally substituted Ci-6 aliphatic; or an R8and an R9group may be taken together to form an optionally substituted 3- to 8-membered105BUSINESS.33535475 1saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; or two R9groups on the same atom may be taken together to form an optionally substituted 3- to 8- membered saturated or partially unsaturated spirocarbocyclyl or spiroheterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur; or two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8- membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur;L1is a covalent bond or an optionally substituted bivalent C 1.3 saturated or unsaturated, straight or branched, hydrocarbon chain; n is 0, 1. 2, 3, 4, 5. 6, 7, or 8; and each R is independently hydrogen or optionally substituted Ci-6 aliphatic.
2. The compound of claim 1, wherein Ring A is a saturated or partially unsaturated 4- to 6-membered monocyclic carbocyclyl.
3. The compound of claim 1, wherein L1is a covalent bond.
4. The compound of claim 1, wherein the compound is of formula I”-A:I”-A or a pharmaceutically acceptable salt thereof, wherein: p is 1, 2 or 3.
5. The compound of claim 4, wherein p is 1.
6. Tire compound of claim 4, wherein p is 2.106BUSINESS.33535475 17. The compound of 4. wherein p is 3.
8. Tire compound of claim 1, wherein the compound is of formula I’:I’ or a pharmaceutically acceptable salt thereof, wherein: m is 1 or 2.
9. The compound of claim 5, wherein m is 1.
10. Tire compound of claim 5, wherein m is 2.
11. The compound of claim 1 or 8, wherein the compound is of formula I:or a pharmaceutically acceptable salt thereof.
12. The compound of any one of claims 1, 8, or 11, wherein the compound is of formulae Il-a or II- b:107BUSINESS.33535475 1or a pharmaceutically acceptable salt thereof.
13. The compound of claim 1 or 8, wherein the compound is of formulae Il-al. Il-bl or II-cl:or a pharmaceutically acceptable salt thereof.
14. The compound of any one of claims 1-13. wherein X2is N.
15. The compound of any one of claims 1-13, wherein X3is N.
16. Tire compound of any one of claims 1-13, wherein X2is N and X3is N.108BUSINESS.33535475 117. The compound of any one of claims 1-13, wherein X2is N and X5is N.
18. Tire compound of any one of claims 1-13, wherein X4is N and Xsis N.
19. The compound of any one of claim 1, 8. or 11, wherein the compound is of formulae Ill-a, Ill-b,III-c, Ill-d, Ill-e. Ill-f, Ill-g. Ill-h, Ill-i. Ill-j. Ill-k, or Ill-m:109BUSINESS.33535475 1or a pharmaceutically acceptable salt thereof.
20. The compound of claim 1, 8, or 13, wherein the compound is of formulae Ill-al, Ill-bl, III-cl,Ill-dl, Ill-el, Ill-fl, Ill-gl, Ill-hl, Ill-il, Ill-jl, Ill-kl, or Ill-ml110BUSINESS.33535475 1or a pharmaceutically acceptable salt thereof.
21. The compound of any one of claims 1, 8, 11, or 19, wherein the compound is of formulae IV-a, IV-b, IV-c, IV-d, IV-e, IV-f, IV-g, IV-h, IV-i, IV-j, IV-k, IV-m. IV-n, IV-o, IV-p, IV-q, IV-r, or I V-s:111BUSINESS.33535475 1112BUSINESS.335354751or a pharmaceutically acceptable salt thereof.
22. The compound of any one of claims 1, 8. 13, or 20, wherein the compound is of formulae IV-al, IV-bl, IV-cl, IV-dl, IV-el, IV-fl, IV-gl, IV-hl, IV-il, IV-jl, IV-kl, IV-ml, IV-nl, IV-ol, IV-pl, IV-ql, IV-rl, or IV-sl:113BUSINESS.33535475 1BUSINESS.335354751or a pharmaceutically acceptable salt thereof.
23. The compound of any one of claims 1-22, wherein n is 0.
24. Tire compound of any one of claims 1-23, wherein R8is hydrogen.
25. The compound of any one of claims 1-23. wherein R8is C1-6 aliphatic.
26. The compound of any one of claims 1-22, wherein an R8and an R9group are taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
27. The compound of any one of claims 1-22, 24, or 25, wherein two R9groups on the same atom are taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated spirocarbocyclyl or spiroheterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
28. The compound of any one of claims 1-22, 24, or 25, wherein two R9groups on different atoms may be taken together to form an optionally substituted 3- to 8-membered saturated or partially unsaturated fused or bridged carbocyclyl, or fused or bridged heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
29. The compound of any one of claims 1-28, wherein each of R1, R2, R3, R4, R5, R6, and R7is independently selected from hydrogen, halogen, -CN, -ORA. -NR2, -C(O)R, -C(0)NR2, -C(O)OR, - NRC(O)R, -OC(O)R, or optionally substituted Cue aliphatic.115BUSINESS.33535475 1410095-005WG (221368)30. The compound of any one of claim 1-29, wherein R1is hydrogen.
31. Tire compound of any one of claims 1-29, wherein R1is fluoro or chloro.
32. The compound of any one of claims 1-29. wherein R1is -CN.
33. The compound of any one of claims 1-29, wherein R1is -ORA.
34. Tire compound of claim 33, wherein RAis hydrogen or an optionally substituted Cue aliphatic.
35. The compound of claim 34. wherein RAis Ci-6 aliphatic optionally substituted with halogen.
36. The compound of any one of claims 1-29, wherein R1is -NR2.
37. The compound of any one of claims 1-29, wherein R1is -C(O)NR2. -C(O)OR, -NRC(O)R, or -OC(O)R.
38. The compound of any one of claims 1-29, wherein R1is optionally substituted Cue aliphatic.
39. Tire compound of any one of claims 1-29, wherein R1is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
40. The compound of any one of claims 1-29, wherein R1is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
41. The compound of any one of claim 1-40, wherein R2is hydrogen.
42. The compound of any one of claims 1-40, wherein R2is fluoro or chloro.
43. Tire compound of any one of claims 1-40, wherein R2is -CN.116BUSINESS.33535475 144. The compound of any one of claims 1-40, wherein R2is -ORA.
45. Tire compound of claim 44, wherein RAis hydrogen or an optionally substituted Ci-g aliphatic.
46. The compound of claim 45, wherein RAis Ci-6 aliphatic optionally substituted with halogen.
47. The compound of any one of claims 1-40, wherein R2is -NR2.
48. Tire compound of any one of claims 1-40, wherein R2is -C(O)NR2, -C(O)OR, -NRC(O)R, or - OC(O)R.
49. The compound of any one of claims 1-40. wherein R2is optionally substituted Ci-6 aliphatic.
50. The compound of any one of claims 1-40, wherein R2is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
51. The compound of any one of claims 1-40, wherein R2is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
52. The compound of any one of claim 1-51, wherein R3is hydrogen.
53. The compound of any one of claims 1-51. wherein R3is fluoro or chloro.
54. The compound of any one of claims 1-51, wherein R3is -CN.
55. The compound of any one of claims 1-51, wherein R3is -ORA.
56. The compound of claim 55. wherein RAis hydrogen or an optionally substituted Ci.g aliphatic.
57. The compound of claim 56, wherein RAis Ci- aliphatic optionally substituted with halogen.
58. The compound of any one of claims 1-51, wherein R3is -NR2.117BUSINESS.33535475 159. The compound of any one of claims 1- 1, wherein R3is -C(0)NR2, -C(O)OR, -NRC(O)R, or - OC(O)R.
60. The compound of any one of claims 1-51, wherein R3is optionally substituted Ci-6 aliphatic.
61. The compound of any one of claims 1-51, wherein R3is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
62. The compound of any one of claims 1-51, wherein R3is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
63. Tire compound of any one of claim 1-62, wherein R4is hydrogen.
64. The compound of any one of claims 1-62. wherein R4is fluoro or chloro.
65. The compound of any one of claims 1-62, wherein R4is -CN.
66. Tire compound of any one of claims 1-62, wherein R4is -ORA.
67. The compound of claim 66, wherein RAis hydrogen or an optionally substituted Cue aliphatic.
68. The compound of claim 67, wherein RAis Ci.6 aliphatic optionally substituted with halogen.
69. Tire compound of any one of claims 1-62, wherein R4is -NR2.
70. The compound of any one of claims 1-62, wherein R4is -C(O)NR2. -C(O)OR, -NRC(O)R. or -OC(O)R.
71. The compound of any one of claims 1-62, wherein R4is optionally substituted Ci-e aliphatic.118BUSINESS.33535475 172. The compound of any one of claims 1-62, wherein R4is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
73. The compound of any one of claims 1-62, wherein R4is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
74. Tire compound of any one of claim 1-73, wherein R5is hydrogen.
75. The compound of any one of claims 1-73. wherein R5is fluoro or chloro.
76. The compound of any one of claims 1-73, wherein R5is -CN.
77. Tire compound of any one of claims 1-73, wherein R5is -ORA.
78. The compound of claim 77, wherein RAis hydrogen or an optionally substituted Ci-e aliphatic.
79. The compound of claim 78, wherein RAis Ci.6 aliphatic optionally substituted with halogen.
80. Tire compound of any one of claims 1-73, wherein R5is -NR2.
81. The compound of any one of claims 1-73, wherein R5is -C(O)NR2. -C(O)OR, -NRC(O)R, or -OC(O)R.
82. The compound of any one of claims 1-73, wherein R5is optionally substituted Ci-e aliphatic.
83. The compound of any one of claims 1-73, wherein R5is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
84. Tire compound of any one of claims 1-73, wherein R5is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.119BUSINESS.33535475 1410095-005WG (221368)85. The compound of any one of claim 1-84, wherein R6is hydrogen.
86. Tire compound of any one of claims 1-84, wherein R6is fluoro or chloro.
87. The compound of any one of claims 1-84. wherein R6is -CN.
88. The compound of any one of claims 1-84, wherein R6is -ORA.
89. Tire compound of claim 88, wherein RAis hydrogen or an optionally substituted Cue aliphatic.
90. The compound of claim 89. wherein RAis Ci-6 aliphatic optionally substituted with halogen.
91. The compound of any one of claims 1-84, wherein R6is -NR2.
92. The compound of any one of claims 1-84, wherein R6is -C(O)NR2. -C(O)OR, -NRC(O)R, or -OC(O)R.
93. The compound of any one of claims 1-84, wherein R6is optionally substituted Cue aliphatic.
94. Tire compound of any one of claims 1-84, wherein R6is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
95. The compound of any one of claims 1-84, wherein R6is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
96. The compound of any one of claim 1-95, wherein R7is hydrogen.
97. The compound of any one of claims 1-95, wherein R7is fluoro or chloro.
98. Tire compound of any one of claims 1-95, wherein R7is -CN.120BUSINESS.33535475 1410095-005WG (221368)99. The compound of any one of claims 1-95, wherein R7is -ORA.
100. Tire compound of claim 99, wherein RAis hydrogen or an optionally substituted Ci-g aliphatic.
101. The compound of claim 100, wherein RAis Ci-6 aliphatic optionally substituted with halogen.
102. The compound of any one of claims 1-95, wherein R7is -NR2.
103. Tire compound of any one of claims 1-95, wherein R7is -C(O)NR2, -C(O)OR, -NRC(O)R, or - OC(O)R.
104. The compound of any one of claims 1-95. wherein R7is optionally substituted Ci-6 aliphatic.
105. The compound of any one of claims 1-95, wherein R7is an optionally substituted group selected from a 3- to 8-membered saturated or partially unsaturated carbocyclyl or heterocyclyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur, phenyl, and a 5- to 6-membered heteroaryl having 1-3 heteroatoms independently selected from nitrogen, oxygen, or sulfur.
106. The compound of any one of claims 1-95, wherein R7is selected from hydrogen, chloro, fluoro, methyl, ethyl, and methoxy.
107. The compound of claim 1, wherein the compound is of Table 1, or a pharmacally acceptable salt thereof.
108. A pharmaceutical composition comprising a compound of any one of claims 1-107, or a pharmaceutically acceptable salt thereof, and a pharmaceutically acceptable carrier, adjuvant, or vehicle.
109. Amethod of activating 5-HT2AR, or a mutant thereof, in a biological sample comprising contacting said biological sample with a compound of any one of claims 1-107, or a pharmaceutically acceptable salt thereof, or a pharmaceutical composition of claim 108.
110. A method of increasing activation of a G protein signaling pathway associated with 5 -HT2 AR over a 0-arrcstin signaling pathway associated with 5-HT2AR in a biological sample, comprising administering121BUSINESS.33535475 1410095-005WG (221368) to the biological sample a compound of any one of claims 1-107, or a pharmaceutically acceptable salt thereof, or a pharmaceutical composition of claim 108.
111. A method of selectively activating 5-HT2AR, or a mutant thereof, (e.g., over the 5-HT2B and / or 5-HT2C receptors, or mutants thereof) in a biological sample comprising contacting said biological sample with a compound of any one of claims 1-107, or a pharmaceutically acceptable salt thereof, or a pharmaceutical composition of claim 108.
112. A method of activating 5-HT2AR, or a mutant thereof, in a patient comprising administering a compound of any one of claims 1-107, or a pharmaceutically acceptable salt thereof, or a pharmaceutical composition of claim 108.
113. A method of increasing activation of a G protein signaling pathway associated with 5 -HT2 AR over a P-arrestin signaling pathway associated with 5-HT2AR in a patient in need thereof, comprising administering to the patient a compound of any one of claims 1-107, or a pharmaceutically acceptable salt thereof, or a pharmaceutical composition of claim 108.
114. A method of selectively activating 5-HT2AR, or a mutant thereof, (e.g., over the 5-HT2B and / or 5-HT2C receptors, or mutants thereof) in a patient comprising administering a compound of any one of claims 1-107, or a pharmaceutically acceptable salt thereof, or a pharmaceutical composition of claim 108.
115. A method for treating a 5-HT2AR-mediated disorder comprising administering to a patient a compound of any one of claims 1-107, or a pharmaceutically acceptable salt thereof, or a pharmaceutical composition of claim 108.
116. A method for treating a neurological disease, disorder, or condition comprising administering to a patient a compound of any one of claims 1-107, or a pharmaceutically acceptable salt thereof, or a pharmaceutical composition of claim 108.
117. The method of claim 116. wherein neurological disease, disorder, or condition is depression, anxiety, substance abuse, and headaches.
118. Tire method of any one of claims 112-117, wherein tire patient docs not experience a hallucinogenic effect as a result of the activating or treating.122BUSINESS.33535475 1
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