Solid bodies comprising (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-((3-morpholinoazetidin-1-yl)methyl)benzyl)amino)isoindoline-1,3-dione and salts thereof, compositions comprising same, and methods of using same

The development of various solid forms of the compound (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-((3-morpholinoazetidin-1-yl)methyl)benzyl)amino)isoindoline-1,3-dione addresses the challenge of predicting and preparing alternative solid forms, enhancing stability and bioavailability for pharmaceutical applications.

JP7676375B2Active Publication Date: 2025-05-14CELGENE CORP
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Patent Information

Application Number
JP2022523516
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-10-21
Filing Date
2020-10-20
Publication Date
2025-05-14
Estimated Expiration
2040-10-20

AI Technical Summary

Technical Problem

The challenge lies in predicting and preparing alternative solid forms of pharmaceutical compounds, which affect physical and chemical properties such as solubility, stability, and bioavailability, and are crucial for effective pharmaceutical development.

Method used

The development of solid forms, including crystalline and amorphous forms, of the chemical compound (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-((3-morpholinoazetidin-1-yl)methyl)benzyl)amino)isoindoline-1,3-dione, in the form of free bases and various salts, such as hydrochloride, fumarate, tosylate, maleate, and besylate, which can be used to enhance pharmaceutical properties.

Benefits of technology

These solid forms improve the physical and chemical properties of the pharmaceutical compound, leading to enhanced stability, bioavailability, and processing properties, making them suitable for the development of effective pharmaceutical formulations.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided herein are formulations, methods of making, solid forms, and methods of use relating to (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-((3-morpholinoazetidin-1-yl)methyl)benzyl)amino)isoindoline-1,3-dione salts, and solid forms comprising the free base or salts thereof.
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Description

[Technical field]

[0001] This application claims priority to U.S. Provisional Application No. 62 / 923,972, filed October 21, 2019, which is incorporated by reference in its entirety.

[0002] Provided herein are (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-((3-morpholinoazetidin-1-yl)methyl)benzyl)amino)isoindoline-1,3-dione salts, and solid forms comprising the free base or salts thereof. Also provided herein are pharmaceutical compositions comprising such salts and solid forms, and methods of using such salts and solid forms to treat, prevent, and manage various disorders. [Background technology]

[0003] Alternative solid forms of pharmaceutical compounds have emerged as possible means to modulate or enhance the physical and chemical properties of formulations. Identification and selection of solid forms of pharmaceutical compounds is complex, given that changes in the solid form affect various physical and chemical properties, resulting in advantages or disadvantages in processing, formulation, stability, bioavailability, storage, transportation (e.g., shipping), and other important pharmaceutical properties. Useful pharmaceutical solid forms include crystalline solids and amorphous solids, depending on the formulation and its method of administration. Amorphous solids are characterized by a lack of long-range structural order, whereas crystalline solids are characterized by structural periodicity. The type of pharmaceutical solid desired will depend on the specific application; amorphous solids are sometimes selected based on, for example, enhanced dissolution properties, whereas crystalline solids may be desirable for properties such as, for example, physical or chemical stability (see, e.g., SR Vippagunta et al., Adv. Drug. Deliv. Rev., (2001) 48:3-26; L. Yu, Adv. Drug. Deliv. Rev., (2001) 48:27-42).

[0004] Notably, it is not even possible to predict in advance whether crystalline forms of a compound will exist, much less how to successfully prepare them (e.g., Braga and Grepioni, 2005, “Making crystals from crystals: a green route to crystal engineering and Polymorphism,” Chem. Commun.:3635-3645 (with respect to crystal engineering, the results can be unpredictable if the instructions are not very precise and / or if other external factors affect the manufacturing process); Jones et al., 2006, Pharmaceutical Cocrystals: An Emerging Approach to Physical Property Enhancement,” MRS Bulletin 31:875-879 (currently, it is generally not possible to computationally predict the number of observable polymorphs of even the simplest molecules); Price, 2004, “The computational prediction of pharmaceutical crystal structures and polymorphism,” Advanced Drug Delivery Reviews 56:301-319 (“Price”); and Bernstein, 2004, “Crystal Structure Prediction and Polymorphism,” ACA See J. Chem. Transactions 39:14-23 (much remains to be learned and practiced before one can state with any degree of confidence the ability to predict crystal structures, much less polymorphic forms).

[0005] The type of salt form of a particular active pharmaceutical ingredient can affect certain properties of the active pharmaceutical ingredient, including solubility, stability, and bioavailability.

[0006] The variety of possible solid forms includes both free base and salt forms, creating a potential diversity of physical and chemical properties for a particular pharmaceutical compound. The discovery and selection of solid forms is critical in the development of effective, safe and marketable pharmaceuticals. Summary of the Invention

[0007] As used herein, the following: [ka] The present invention provides a solid form (e.g., a crystalline form, an amorphous form, a polymorph, or a mixture thereof) comprising compound 1, having the chemical name (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-((3-morpholinoazetidin-1-yl)methyl)benzyl)amino)isoindoline-1,3-dione.

[0008] In one embodiment, the solid form comprises the free base of Compound 1. In one embodiment, the solid form is Form A or Form B of the free base of Compound 1, as described herein.

[0009] In one embodiment, the solid form comprises a salt of Compound 1.

[0010] In one embodiment, the solid form comprises the hydrochloride salt of Compound 1. In one embodiment, the solid form is Form A or Form B of the hydrochloride salt of Compound 1, as described herein.

[0011] In one embodiment, the solid form comprises a fumarate salt of Compound 1. In one embodiment, the solid form is Form A of the fumarate salt of Compound 1, as described herein.

[0012] In one embodiment, the solid form comprises a tosylate salt of Compound 1. In one embodiment, the solid form is Form A of the tosylate salt of Compound 1, as described herein.

[0013] In one embodiment, the solid form comprises a maleate salt of Compound 1. In one embodiment, the solid form is Form A of the maleate salt of Compound 1, as described herein.

[0014] In one embodiment, the solid form comprises a besylate salt of Compound 1. In one embodiment, the solid form is Form A of the besylate salt of Compound 1, as described herein.

[0015] Also provided herein are salts of Compound 1. In one embodiment, the salt is a hydrochloride, fumarate, tosylate, maleate, or besylate salt. In one embodiment, the salt is crystalline. In one embodiment, the salt is amorphous.

[0016] The solid forms provided herein are useful as active pharmaceutical ingredients for the preparation of formulations for animal or human use. Thus, embodiments herein encompass the use of these solid forms as final drug substances. Certain embodiments provide solid forms useful for the preparation of final dosage forms with improved properties, such as powder flow properties, compression properties, tableting properties, stability properties, and excipient compatibility properties, among others, required for the manufacture, processing, formulation, and / or storage of the final formulation. Certain embodiments herein provide pharmaceutical compositions comprising single component crystalline forms, multiple component crystalline forms, single component amorphous forms, and / or multiple component amorphous forms having Compound 1, and pharma- ceutically acceptable diluents, excipients, or carriers.

[0017] Also provided are pharmaceutical compositions comprising an effective concentration of solid form having Compound 1 provided herein, optionally with at least one pharmaceutical carrier, formulated for administration by a suitable route and means.

[0018] Also provided herein is a method of using a solid body comprising Compound 1 provided herein to treat, prevent or treat a hematological malignancy. In one embodiment, the method is for treating a hematological malignancy. In one embodiment, the method is for preventing a hematological malignancy. In one embodiment, the method is for treating a hematological malignancy.

[0019] In one embodiment, the hematological malignancy is acute myeloid leukemia (AML), acute lymphocytic leukemia (ALL), multiple myeloma (MM), non-Hodgkin's lymphoma (NHL), diffuse large B-cell lymphoma (DLBCL), Hodgkin's lymphoma (HL), T-cell lymphoma (TCL), Burkitt's lymphoma (BL), chronic lymphocytic leukemia / small lymphocytic lymphoma (CLL / SLL), marginal zone lymphoma (MZL), or myelodysplastic syndrome (MDS).

[0020] Also provided herein is a method of using a solid form comprising compound 1 provided herein, alone or in combination with rituximab, to treat, prevent or treat non-Hodgkin's lymphoma (NHL). In one embodiment, the method is for treating NHL. In one embodiment, the method is for preventing NHL. In one embodiment, the method is for treating NHL.

[0021] In certain embodiments, the NHL is diffuse large B-cell lymphoma (DLBCL), follicular lymphoma (FL), mantle cell lymphoma (MCL), or primary central nervous system lymphoma (PCNSL).

[0022] Also provided herein is a method of using a solid form comprising compound 1 provided herein, alone or in combination with obinutuzumab, to treat, prevent or treat chronic lymphocytic leukemia (CLL). In one embodiment, the method is for treating CLL. In one embodiment, the method is for preventing CLL. In one embodiment, the method is for treating CLL.

[0023] Also provided herein is a method of using a solid form comprising compound 1 provided herein, alone or in combination with obinutuzumab, to treat, prevent or treat small lymphocytic lymphoma (SLL). In one embodiment, the method is for treating SLL. In one embodiment, the method is for preventing SLL. In one embodiment, the method is for treating SLL.

[0024] Also provided herein is a solid form or salt of Compound 1 for use in a method of treating a disease provided herein, the method comprising administering to a patient a therapeutically effective amount of the solid form or salt of Compound 1. Also provided herein is a pharmaceutical composition comprising the solid form or salt of Compound 1 for use in a method of treating a disease provided herein.

[0025] These and other aspects of the subject matter described herein will become evident upon reference to the following detailed description. [Brief description of the drawings]

[0026] [Figure 1] FIG. 1 provides a representative X-ray powder diffraction (XRPD) pattern of Form A of the free base of Compound 1. [Diagram 2] FIG. 2 provides representative thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC) thermograms of Form A of the free base of Compound 1. [Diagram 3]FIG. 3 provides a representative XRPD pattern of Form B of the free base of Compound 1. [Figure 4] FIG. 4 provides representative TGA and DSC thermograms of Form B of the free base of Compound 1. [Diagram 5] FIG. 5 provides a representative XRPD pattern of Form A of the hydrochloride salt of Compound 1. [Figure 6] FIG. 6 provides representative TGA and DSC thermograms of Form A of the hydrochloride salt of Compound 1. [Figure 7] FIG. 7 provides a representative dynamic vapor sorption (DVS) isotherm plot of Form A of the hydrochloride salt of Compound 1. [Figure 8] FIG. 8 provides a representative SEM image of Form A of the hydrochloride salt of Compound 1. [Figure 9] FIG. 9 provides a representative XRPD pattern of Form B of the hydrochloride salt of Compound 1. [Figure 10] FIG. 10 provides representative TGA and DSC thermograms of Form B of the hydrochloride salt of Compound 1. [Figure 11] FIG. 11 provides a representative XRPD pattern of Form A of the fumarate salt of Compound 1. [Figure 12] FIG. 12 provides representative TGA and DSC thermograms of Form A of the fumarate salt of Compound 1. [Figure 13] FIG. 13 provides a representative XRPD pattern of Form A of the tosylate salt of Compound 1. [Figure 14] FIG. 14 provides representative TGA and DSC thermograms of Form A of the tosylate salt of Compound 1. [Figure 15] FIG. 15 provides a representative XRPD pattern of Form A of the maleate salt of Compound 1. [Figure 16] FIG. 16 provides representative TGA and DSC thermograms of Form A of the maleate salt of Compound 1. [Figure 17]FIG. 17 provides a representative XRPD pattern of Form A of the besylate salt of Compound 1. [Figure 18] FIG. 18 provides a representative TGA thermogram of Form A of the besylate salt of Compound 1. [Figure 19] FIG. 19 provides a representative DCS thermogram of Form A of the besylate salt of Compound 1. [Figure 20] FIG. 20 provides a representative XRPD pattern of the amorphous starting material of Compound 1 free base. [Figure 21] FIG. 21 provides a representative XRPD pattern of Form C of the hydrochloride salt of Compound 1. [Figure 22] FIG. 22 provides an overlay plot of Forms A, B, C, and D of the tosylate salt of Compound 1. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0027] 1.Definition Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art.All patents, applications, published applications and other publications are incorporated by reference in their entirety.If there are multiple definitions of terms in this specification, the definition in this section shall prevail unless otherwise stated.

[0028] As used in this application, and herein as well as the appended claims, the indefinite articles "a" and "an" and the definite article "the" include plural and singular referents unless the context clearly indicates otherwise.

[0029] As used herein, the terms "comprising" and "including" may be used interchangeably. The terms "comprising" and "including" should be interpreted as specifying the presence of the described features or components as referred to, but do not exclude the presence or addition of one or more features or components, or groups thereof. Furthermore, the terms "comprising" and "including" are intended to include examples encompassed by the term "consisting of". Thus, the term "consisting of" may be used in place of the terms "comprising" and "including" to provide more specific embodiments of the present invention.

[0030] The term "consisting of" means that the subject matter has at least 90%, 95%, 97%, 98% or 99% of the recited features or components that make it up. In another embodiment, the term "consisting of" excludes from the scope of any succeeding recitation any other features or components, excepting those that are not essential to the technical effect to be achieved.

[0031] As used herein, the term "or" should be interpreted as an inclusive "or" meaning any one or any combination. Thus, "A, B or C" means any of the following: "A; B; C; A and B; A and C; B and C; A, B and C." Exceptions to this definition will occur only if combinations of elements, features, steps or acts are in some way inherently mutually exclusive.

[0032] As used herein, and unless otherwise specified, the terms "about" and "approximately," when used in connection with a dose, amount, or weight percent of a component of a composition or dosage form, refer to a dose, amount, or weight percent that is recognized by those of skill in the art to provide an equivalent pharmacological effect to that obtained from the specific dose, amount, or weight percent. In certain embodiments, the terms "about" and "approximately," when used in this context, contemplate a dose, amount, or weight percent that is within 30%, within 20%, within 15%, within 10%, or within 5% of the specific dose, amount, or weight percent.

[0033] As used herein, and unless otherwise specified, the terms "about" and "approximately" when used in connection with a numerical value or range of values ​​provided to characterize a particular solid body, such as, for example, a specific temperature or temperature range describing, for example, melting, dehydration, desolvation, or glass transition temperatures; mass change, such as, for example, mass change as a function of temperature or humidity; solvent or water content, for example, in terms of mass or percentage; or peak position, such as, for example, in an analysis by IR or Raman spectroscopy or XRPD; indicate that the value or range of values, while still characterizing said particular solid body, may deviate to an extent that would be considered reasonable by one of ordinary skill in the art. For example, in certain embodiments, the terms "about" and "approximately" when used in this context indicate that a numerical value or range of values ​​may vary within 25%, 20%, 15%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1.5%, 1%, 0.5%, or 0.25% of the recited value or range of values. For example, in some embodiments, XRPD peak position values ​​may vary by up to ±0.2 degrees 2θ while characterizing said particular XRPD peak. As used herein, a tilde (i.e., "~") preceding a numerical value or range of values ​​indicates "about" and "approximately."

[0034] Unless otherwise specified, the terms "X-ray powder diffraction," "powder X-ray diffraction," "PXRD," and "XRPD" are used interchangeably in this application.

[0035] As used herein, and unless otherwise specified, the term "solid form" and related terms refer to a physical form that is not primarily in a liquid or gaseous state. As used herein, the terms "solid form" and "solid forms" include semi-solids. Solid forms may be crystalline, amorphous, partially crystalline, partially amorphous, or mixtures thereof.

[0036] The solid bodies provided herein may have various degrees of crystallinity or lattice order. The solid bodies provided herein are not limited by any particular degree of crystallinity or lattice order, and may be 0-100% crystalline. Methods for measuring the degree of crystallinity are known to those of ordinary skill in the art, such as those described in Suryanarayanan, R., X-Ray Power Diffractometry, Physical Characterization of Pharmaceutical Salts, HG Brittain, Editor, Mercel Dekkter, Murray Hill, NJ, 1995, pp. 187-199, which is incorporated herein by reference in its entirety. In some embodiments, the solid bodies provided herein are about 0, 5, 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95 or 100% crystalline.

[0037] As used herein, and unless otherwise specified, the term "crystalline" and related terms, when used to describe a substance, component, agent, or form, means that the substance, component, agent, or form is substantially crystalline, for example, as determined by X-ray diffraction. Remington: The Science and Practice of Pharmacy, 21 stedition, Lippincott, Williams and Wilkins, Baltimore, MD (2005);The United States Pharmacopeia, 23 rd See, for example, the American Journal of Physics, Vol. 1, No. 1, 1843-1844 (1995).

[0038] As used herein, and unless otherwise specified, the terms "crystal form", "crystal forms" and related terms herein refer to solid bodies that are crystalline. Crystal forms include single-component and multi-component crystal forms, including, but not limited to, polymorphs, solvates, hydrates, and other molecular complexes, as well as salts, solvates of salts, hydrates of salts, co-crystals of salts, molecular complexes of other salts, and polymorphs thereof. In certain embodiments, the crystalline form of a substance is substantially free of amorphous forms and / or other crystalline forms. In certain embodiments, the crystalline form of a substance may contain less than about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, or 50% by weight of one or more amorphous forms and / or other crystalline forms. In certain embodiments, the crystalline form of a substance may be physically and / or chemically pure. In certain embodiments, the crystalline form of the substance may be about 99%, 98%, 97%, 96%, 95%, 94%, 93%, 92%, 91% or 90% physically and / or chemically pure.

[0039] A "single-component" solid containing a compound consists essentially of that compound. A "multiple-component" solid containing a compound contains significant amounts of one or more additional species, such as ions and / or molecules, within the solid. For example, in some embodiments, a crystalline multi-component solid containing a compound further contains one or more species non-covalently bound at fixed locations in the crystal lattice. As another example, in some embodiments, an amorphous multi-component solid containing a compound further contains one or more polymers, and the compound is dispersed in a solid matrix that includes the polymers.

[0040] Crystalline forms of a substance can be obtained by a number of methods, including, but not limited to, melt recrystallization, melt cooling, solvent recrystallization, recrystallization in confined spaces, e.g., in nanopores or capillaries, recrystallization on a surface or template, e.g., on a polymer, recrystallization in the presence of additives, e.g., co-crystallized counter molecules, desolvation, dehydration, rapid evaporation, quenching, slow cooling, vapor diffusion, sublimation, grinding, and solvent drop grinding.

[0041] Unless otherwise specified, the terms "polymorph," "polymorphic form," "polymorphs," "polymorphic forms," ​​and related terms herein refer to two or more crystalline forms consisting essentially of the same molecule, group of molecules, or group of ions. Like different crystalline forms, different polymorphs can have different physical properties, such as, for example, melting temperature, heat of fusion, solubility, dissolution rate, and / or vibrational spectra, because the molecules or ions have different arrangements or conformations in the crystal lattice. The differences in physical properties exhibited by polymorphs can affect pharmaceutical parameters, such as storage stability, compressibility, and density (important for formulation and drug manufacturing), and dissolution rate (an important factor for bioavailability). Differences in stability may be due to changes in chemical reactivity (e.g., differential oxidation such that a dosage form containing one polymorph discolors more rapidly than one containing another polymorph) or mechanistic changes (e.g., tablets disintegrate during storage as a kinetically favored polymorph transforms into a thermodynamically more stable polymorph) or both (e.g., tablets of one polymorph are more susceptible to disintegration at high humidity). As a result of differences in solubility / dissolution, at one extreme, one polymorphic transformation may result in lack of efficacy or at the other extreme, toxicity. Additionally, the physical properties of the crystals may be important in processing (e.g., one polymorph may be prone to forming solvates or may be difficult to filter and wash to remove impurities, and particle shape and size distribution may differ between polymorphs).

[0042] As used herein, and unless otherwise specified, the terms "amorphous", "amorphous form", and related terms mean that the substance, component, or drug in question is substantially not crystalline as determined by X-ray diffraction. In particular, the term "amorphous form" refers to a disordered solid, i.e., a solid lacking long-range crystalline order. In certain embodiments, an amorphous form of a substance may be substantially free of other amorphous and / or crystalline forms. In other embodiments, an amorphous form of a substance may contain less than about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, or 50% by weight of one or more other amorphous and / or crystalline forms. In certain embodiments, an amorphous form of a substance may be physically and / or chemically pure. In certain embodiments, the amorphous form of the substance may be about 99%, 98%, 97%, 96%, 95%, 94%, 93%, 92%, 91% or 90% physically and / or chemically pure. In certain embodiments, the amorphous form of the substance may include additional components or ingredients (e.g., additives, polymers, or excipients that may serve to further stabilize the amorphous form). In certain embodiments, the amorphous form may be a solid solution.

[0043] Amorphous forms of a substance can be obtained by a number of methods, including, but not limited to, heating, melt cooling, rapid melt cooling, solvent evaporation, rapid solvent evaporation, desolvation, sublimation, grinding, ball milling, freeze grinding, spray drying, and lyophilization.

[0044] Unless otherwise specified, the terms "solvate" and "solvated" as used herein refer to a solid form of a substance that includes a solvate. The terms "hydrate" and "hydrated" refer to a solvate in which the solvent includes water. "Polymorphs of solvates" refer to the existence of multiple solid forms for a particular solvate composition. Similarly, "polymorphs of hydrates" refer to the existence of multiple solid forms for a particular hydrate composition. The term "desolvated solvate" as used herein refers to a solid form of a substance that may be produced by removing the solvent from a solvate. The terms "solvate" and "solvated" as used herein may also refer to a solvate of a salt, co-crystal, or molecular complex. The terms "hydrate" and "hydrated," as used herein, may refer to a hydrate of a salt, co-crystal, or molecular complex.

[0045] Techniques for characterizing crystalline and amorphous forms include, but are not limited to, thermogravimetric analysis (TGA), differential scanning calorimetry (DSC), powder X-ray diffraction (XRPD), single crystal X-ray diffraction, vibrational spectroscopy, such as infrared (IR) and Raman spectroscopy, solid-state and solution nuclear magnetic resonance (NMR) spectroscopy, optical microscopy, hot stage optical microscopy, scanning electron microscopy (SEM), electron crystallography and quantitative analysis, particle size analysis (PSA), surface area analysis, solubility measurements, dissolution measurements, elemental analysis, and Karl Fischer analysis. Characteristic unit cell parameters can be measured using one or more techniques, such as, but not limited to, single crystal diffraction and powder diffraction, such as X-ray diffraction and neutron diffraction. Techniques useful for analyzing powder diffraction data include characterization analyses, such as Rietveld refinement, which may be used, for example, to analyze diffraction peaks associated with a single phase in a sample containing multiple solid phases. Other techniques useful for analyzing powder diffraction data include unit cell indexing, which allows one skilled in the art to determine unit cell parameters from samples containing crystalline powders. In one embodiment, the XRPD pattern is obtained using Cu Kα radiation. In one embodiment, the ramp rate (heating rate) of the DSC is about 10° C. per minute. In one embodiment, a slower heating rate, such as 0.5-2.0° C. per minute, can be used for more accurate DSC testing. Sample pans used in DSC testing include, for example, aluminum, platinum, and stainless steel pans. Pans can have different shapes, such as open, pinhole, or sealed pans. In one embodiment, the ramp rate of the TGA is about 10° C. per minute.

[0046] In certain embodiments, the solid forms provided herein, e.g., in crystalline or amorphous form, are substantially pure, i.e., substantially free of other solid forms and / or chemical compounds, and contain less than 25%, 20%, 15%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.75%, 0.5%, 0.25% or 0.1% by weight of one or more other solid forms and / or other chemical compounds.

[0047] As used herein, and unless otherwise indicated, a chemical compound, solid, or composition that is substantially free of other chemical compounds, solids, or compositions means that the compound, solid, or composition contains, in certain embodiments, less than 50%, 45%, 40%, 35%, 30%, 25%, 20%, 15%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, 0.4%, 0.3%, 0.2%, 0.1%, 0.05%, or 0.01% by weight of other compounds, solids, or compositions.

[0048] As used herein, and unless otherwise specified, a solid form that is "substantially physically pure" is substantially free of other solid forms. In certain embodiments, a substantially physically pure crystalline form contains less than 50%, 45%, 40%, 35%, 30%, 25%, 20%, 15%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, 0.4%, 0.3%, 0.2%, 0.1%, 0.05%, or 0.01% by weight of one or more other solid forms. Detection of other solid forms may be accomplished by any method apparent to one of skill in the art, including, but not limited to, diffraction analysis, thermal analysis, elemental combustion analysis, and / or spectroscopy.

[0049] As used herein, and unless otherwise specified, a solid body that is "substantially chemically pure" is substantially free of other chemical compounds (i.e., chemical impurities). In certain embodiments, a solid body that is substantially chemically pure contains less than 50%, 45%, 40%, 35%, 30%, 25%, 20%, 15%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, 0.4%, 0.3%, 0.2%, 0.1%, 0.05%, or 0.01% by weight of one or more other chemical compounds. Detection of other chemical compounds may be accomplished by any method apparent to one of skill in the art, including, but not limited to, methods of chemical analysis such as mass spectrometry, spectroscopic analysis, thermal analysis, elemental combustion analysis, and / or chromatographic analysis.

[0050] A solid body may exhibit different physical characterization data that are specific to a particular solid body, such as the crystalline forms provided herein. These characterization data may be obtained by various techniques known to those skilled in the art, such as, for example, powder X-ray diffraction, differential scanning calorimetry, thermogravimetry, and nuclear magnetic resonance spectroscopy. The data provided by these techniques may be used to identify a particular solid body. A person skilled in the art can determine whether a solid body is one of the types provided herein by performing one of these characterization techniques and determining whether the resulting data is "consistent" with the reference data provided herein and is identified as being characteristic of a particular solid body. Characterization data that is "consistent" with that of a reference solid body is understood by those skilled in the art to correspond to a solid body identical to the reference solid body. When analyzing whether data is "consistent", a person skilled in the art will understand that a particular characterization data point, while characterizing a particular solid body, may vary to a reasonable extent due to, for example, experimental error and routine sample-to-sample analytical variability.

[0051] As used herein, and unless otherwise specified, the term "pharmaceutically acceptable salts" refers to salts prepared from pharmaceutically acceptable, relatively non-toxic acids, such as inorganic and organic acids. In certain embodiments, suitable acids include acetic acid, adipic acid, 4-aminosalicylic acid, ascorbic acid, aspartic acid, benzenesulfonic acid, benzoic acid, camphoric acid, camphorsulfonic acid, capric acid, caproic acid, caprylic acid, cinnamic acid, carbonic acid, citric acid, cyclamic acid, dihydrogen phosphoric acid, 2,5-dihydroxybenzoic acid (gentisic acid), 1,2-ethanedisulfonic acid, ethanesulfonic acid, fumaric acid, galacturonic acid, gluconic acid, glucuronic acid, glutamic acid, and glutaric acid. , glycolic acid, hippuric acid, hydrobromic acid, hydrochloric acid, hydroiodic acid, isobutyric acid, isethionic acid, lactic acid, maleic acid, malic acid, malonic acid, mandelic acid, methanesulfonic acid, monohydrogencarbonic acid, monohydrogen-phosphoric acid, monohydrogensulfuric acid, mucic acid, 1,5-naphthalenedisulfonic acid, nicotinic acid, nitric acid, oxalic acid, pamoic acid, pantothenic acid, phosphoric acid, phthalic acid, propionic acid, pyroglutamic acid, salicylic acid, suberic acid, succinic acid, sulfuric acid, tartaric acid, toluenesulfonic acid, and the like (see, e.g., SM Berge et al., J. Pharm. Sci., 66:1-19 (1977); and Handbook of Pharmaceutical Salts: Properties, Selection and Use, PH Stahl and CG Wermuth, Eds., (2002), Wiley, Weinheim). In certain embodiments, suitable acids are strong acids (e.g., with a pKa of about 1 or less), including, but not limited to, hydrochloric acid, hydrobromic acid, sulfuric acid, nitric acid, methanesulfonic acid, benzenesulfonic acid, toluenesulfonic acid, naphthalenesulfonic acid, naphthalenedisulfonic acid, pyridine-sulfonic acid, or other substituted sulfonic acids. Also included are salts of other relatively non-toxic compounds having acidic properties, such as amino acids such as aspartic acid and the like, and other compounds such as aspirin, ibuprofen, saccharin, and the like.Acid addition salts can be obtained by contacting the neutral form of the compound with a sufficient amount of the desired acid, either neat or in a suitable solvent. As a solid, the salt may exist in crystalline or amorphous form, or a mixture thereof. The salt may also exist in polymorphic form.

[0052] It should be noted that if there is a discrepancy between a depicted structure and the name of that structure, the depicted structure should be given greater weight.

[0053] As used herein, and unless otherwise indicated, the term "treating" means alleviating, in whole or in part, a disorder, disease or condition, or one or more symptoms associated with the disorder, disease or condition, or slowing or halting the further progression or worsening of these symptoms, or alleviating or eliminating the cause of the disorder, disease or condition itself.

[0054] As used herein, and unless otherwise indicated, the term "preventing" means a method of delaying and / or preventing the onset, recurrence, or spread of a disorder, disease, or condition, in whole or in part; preventing a patient from acquiring a disorder, disease, or condition; or reducing the risk that a patient will acquire a disorder, disease, or condition.

[0055] As used herein, and unless otherwise indicated, the term "managing" includes preventing the recurrence of a particular disease or disorder in a patient afflicted with it, extending the time that a patient afflicted with a disease or disorder remains in remission, and / or maintaining a reduction in the severity or avoidance of symptoms associated with the disease or condition being treated.

[0056] As used herein, and unless otherwise indicated, the term "effective amount" in reference to a compound means an amount that is capable of treating, preventing, or managing a disorder, disease or condition, or a symptom thereof.

[0057] As used herein, and unless otherwise indicated, the term "subject" or "patient" includes animals, such as, but not limited to, cows, monkeys, horses, sheep, pigs, chickens, turkeys, quail, cats, dogs, mice, rats, rabbits, or guinea pigs, and in one embodiment, mammals, and in another embodiment, humans.

[0058] As used herein, and unless otherwise indicated, the term "relapsed" refers to a disorder, disease, or condition that has responded to treatment (e.g., achieved complete remission) and then progressed. Treatment can include one or more therapies. In one embodiment, the disorder, disease, or condition has been previously treated with one or more therapies. In another embodiment, the disorder, disease, or condition has been previously treated with one, two, three, or four therapies. In some embodiments, the disorder, disease, or condition is a hematological malignancy.

[0059] In one embodiment, "relapsed" DLBCL may refer to DLBCL that has been previously treated with one or more therapies. In one embodiment, the relapsed DLBCL is DLBCL that has been previously treated with one, two, three, or four therapies. In one embodiment, the relapsed DLBCL is DLBCL that has been previously treated with two or more therapies.

[0060] In one embodiment, "relapsed" FL may refer to FL that has been previously treated with one or more therapies. In one embodiment, the relapsed FL is FL that has been previously treated with one, two, three, or four therapies. In one embodiment, the relapsed FL is FL that has been previously treated with two or more therapies.

[0061] As used herein, and unless otherwise indicated, the term "refractory" refers to a disorder, disease, or condition that has not responded to prior treatment, which may include one or more therapies. In one embodiment, the disorder, disease, or condition has been previously treated with one, two, three, or four therapies. In one embodiment, the disorder, disease, or condition has been previously treated with two or more therapies and has a response of less than complete remission (CR) to the most recent systemic therapy incorporating the regimen. In some embodiments, the disorder, disease, or condition is a hematological malignancy.

[0062] In one embodiment, "relapsed or refractory" CLL / SLL may refer to CLL / SLL that has been previously treated with one or more therapies. In one embodiment, the relapsed or refractory CLL / SLL is CLL / SLL that has been previously treated with one, two, three, or four therapies. In one embodiment, the relapsed or refractory CLL / SLL is CLL / SLL that has been previously treated with two or more therapies. In one embodiment, the relapsed or refractory CLL / SLL is CLL / SLL that has been previously treated with a Bruton's tyrosine kinase (BTK) inhibitor. In one embodiment, the relapsed or refractory CLL / SLL is relapsed or refractory to a BTK inhibitor. In one embodiment, the BTK inhibitor is ibrutinib. In one embodiment, the BTK inhibitor is acalabrutinib. In one embodiment, the BTK inhibitor is zanubrutinib. In one embodiment, the BTK inhibitor is tirabrutinib.

[0063] In the context of cancer, e.g., hematological malignancies, inhibition may be evaluated by: inhibition of disease progression, inhibition of tumor growth, reduction of primary tumors, alleviation of tumor-related symptoms, inhibition of tumor secreted factors, delay of appearance of primary or secondary tumors, slowing of progression of primary or secondary tumors, reduction of occurrence of primary or secondary tumors, slowing or reducing the severity of secondary effects of disease, arrest of tumor growth and tumor regression, increase in time to progression (TTP), increase in progression-free survival (PFS), increase in overall survival (OS), etc. As used herein, OS refers to the time from initiation of treatment to death from any cause. As used herein, TTP refers to the time from initiation of treatment to tumor progression, and TTP does not include death. In one embodiment, PFS refers to the time from initiation of treatment to tumor progression or death. In one embodiment, PFS refers to the time from first administration of compound to first occurrence of disease progression or death from any cause. In one embodiment, PFS rate is calculated using Kaplan-Meier estimates. Event-free survival (EFS) refers to the time from initiation of treatment to any treatment failure, such as disease progression, treatment discontinuation for any reason, or death. In one embodiment, overall response rate (ORR) refers to the proportion of patients who achieve a response. In one embodiment, ORR refers to the sum of the proportion of patients who achieve a complete or partial remission. In one embodiment, ORR refers to the proportion of patients whose best response is >= partial remission (PR). In one embodiment, duration of response (DoR) is the time from achievement of response to relapse or disease progression. In one embodiment, DoR is the time from achievement of response >= partial remission (PR) to relapse or disease progression. In one embodiment, DoR is the time from first documented response to first documented progressive disease or death. In one embodiment, DoR is the time from first documented response >= partial remission (PR) to first documented progressive disease or death. In one embodiment, time to response (TTR) is the time from first administration of compound to first documented response. In one embodiment, TTR means the time from the first administration of a compound to the first documentation of a response >= partial response (PR).In extreme cases, complete inhibition is referred to as prevention or chemoprevention. In this context, the term "prevention" includes either completely preventing the onset of clinically evident cancer or preventing the onset of a preclinically evident stage of cancer. Prevention of transformation into malignant cells or halting or reversing the progression of premalignant cells to malignant cells is also intended to be encompassed by this definition. This includes prophylactic treatment of individuals at risk of developing cancer.

[0064] In certain embodiments, treatment of NHL may be evaluated according to the International Workshop Criteria for Malignant Lymphoma (see Cheson et al., J. Clin. Oncol., 2014, 32(27):3059-3068) and the Deauville Criteria for Fluorodeoxyglucose-Positron Emission Tomography (FDG-PET) Scan Interpretation (Itti et al., Eur. J. Nucl. Med. Mol. Imaging, 2013, 40(9):1312-20; Meignan et al., Leuk Lymphoma, 2014, 55(1):31-37) (the "Lugano Criteria"), using the response and endpoint definitions set forth in Tables 1-3. [Table 1] CNS = central nervous system; CSF = cerebrospinal fluid; CT = computed tomography; FDG = fluorodeoxyglucose; GI = gastrointestinal; MRI = magnetic resonance imaging; PET = positron emission tomography; N / A = not applicable. a PET / CT is suitable for determining bone marrow involvement and can be considered suggestive of other extralymphatic sites of disease. Biopsy confirmation of these sites can be considered if necessary. [Table 2] [Table 3] [Table 4] CMR = complete metabolic response; LDi = longest transverse diameter of the lesion; PPD = cross product of LDi and perpendicular diameter; SDi = shortest axis perpendicular to LDi; SPD = sum of products of perpendicular diameters for various lesions; N / A = not applicable a Required for CR if bone marrow disease at baseline b In Waldeyer's ring or extranodal sites with high physiologic uptake or activation within the spleen or bone marrow; (e.g., chemotherapy or bone marrow colony stimulating factors), uptake may be greater than normal mediastinum and / or liver. In this situation, CMR may be inferred if uptake at the initial lesion site is not greater than the surrounding normal tissue. c FDG-phagic lymphomas should have a response assessed by PET-CT. Some disease can usually be seen by CT alone (i.e., marginal zone lymphoma). d PET should be performed in conjunction with contrast-enhanced diagnostic CT and may be performed simultaneously or as separate procedures. [Table 5] a The Deauville 5-stage scale (5PS) is an internationally recommended clinical routine and laboratory evaluation using FDG-PET / CT in the initial diagnosis and evaluation of treatment response in Hodgkin lymphoma (HL) and certain non-Hodgkin lymphomas (NHL).

[0065] In one embodiment, treatment response for CLL / SLL may be assessed by the International Workshop on Chronic Lymphocytic Leukemia criteria (see Hallek, M, et al. iwCLL guidelines for diagnosis, indications for treatment, response assessment, and supportive management of CLL. Blood, 131(25), 2745-2760 (2018)) (Table 4). [Table 6] CR=complete response (all criteria must be met); PD=progressive disease (at least one of the criteria for group A or group B must be met); PR=partial response (PR requires improvement of at least two parameters in group A and one parameter in group B if previously abnormal; if only one parameter in both groups A and B was abnormal pretreatment, only one must be improved); SD=stable disease (all criteria must be met; systemic symptoms alone do not define PD) a Six or fewer summed lymph node products (as assessed by CT scan and physical examination in clinical trials or by physical examination in general practice) b Spleen size is considered normal if it is less than 13 cm. There is no firmly established, international consensus on normal liver size; therefore, liver size should be assessed by imaging and manual palpation in clinical trials and recorded according to the definition used in the study protocol.

[0066] In one embodiment, treatment response of CLL / SLL may be assessed by Eastern Cooperative Oncology Group (ECOG) performance status (Table 5). [Table 7] Robert Comis, MD, Group Chair, Eastern Cooperative Oncology Group (ECOG) Source: Oken M, et al. Toxicity and response criteria of the Eastern Cooperative Oncology Group. Am J Clin Oncol, 5(6):649-655 (1982)

[0067] In certain embodiments, stable disease or lack thereof may be determined by methods known in the art, such as assessment of patient symptoms, physical examination, visualization of the tumor using, for example, FDG-PET (fluorodeoxyglucose positron emission tomography), PET / CT (positron emission tomography / computed tomography) scans, MRI (magnetic resonance imaging) of the brain and spine, CSF (cerebrospinal fluid), ophthalmic examination, vitreous fluid sampling, retinal photography, bone marrow examination, and other commonly accepted modalities of evaluation.

[0068] As used herein, and unless otherwise indicated, the terms "co-administration" and "in combination with" include administration of one or more therapeutic agents (e.g., a compound provided herein and another anti-cancer or supportive care agent) either simultaneously, contemporaneously, or sequentially without specific time limitations. In one embodiment, the agents are present in a cell or in the patient's body at the same time or exert their biological or therapeutic effects at the same time. In one embodiment, the therapeutic agents are in the same composition or unit dosage form. In another embodiment, the therapeutic agents are in separate compositions or unit dosage forms.

[0069] The term "supportive care agent" refers to any substance that treats, prevents, or manages adverse effects resulting from treatment with another therapeutic agent.

[0070] 2. Salts and solid forms containing compound 1 In one embodiment, the present disclosure provides the following: [ka] A solid body is provided that comprises compound 1, which is represented by the formula:

[0071] Compound 1 has the chemical name (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-((3-morpholinoazetidin-1-yl)methyl)benzyl)amino)isoindoline-1,3-dione. Methods for preparing Compound 1 are described in U.S. Application Serial No. 16 / 390,815, the entirety of which is incorporated herein by reference.

[0072] In one embodiment, the solid form comprises the free base of Compound 1. In one embodiment, the solid form comprises a salt of Compound 1. In one embodiment, the solid form comprises the hydrochloride salt of Compound 1. In one embodiment, the solid form comprises the fumarate salt of Compound 1. In one embodiment, the solid form comprises the tosylate salt of Compound 1. In one embodiment, the solid form comprises the maleate salt of Compound 1. In one embodiment, the solid form comprises the besylate salt of Compound 1.

[0073] In one embodiment, the solid form is crystalline. In one embodiment, the solid form is a hydrate. In one embodiment, the solid form is anhydrous. In one embodiment, the solid form is a solvate. In one embodiment, the solid form is non-solvated. In one embodiment, the solid form is amorphous.

[0074] The solid bodies provided may be characterized using a number of methods known to those skilled in the art, including, but not limited to, single crystal X-ray diffraction, powder X-ray diffraction (PXRD), microscopy (e.g., optical microscopy, scanning electron microscopy (SEM)), thermal analysis (e.g., differential scanning calorimetry (DSC), thermogravimetric analysis (TGA), and hot stage microscopy), dynamic vapor sorption (DVS), spectroscopy (e.g., infrared, Raman, and nuclear magnetic resonance), and high performance liquid chromatography (HPLC). The particle size and particle size distribution of the solid bodies provided herein may be measured by conventional methods, such as laser light scattering techniques.

[0075] Also provided herein are salts of Compound 1. In one embodiment, the salt is the hydrochloride salt of Compound 1. In one embodiment, the salt is the fumarate salt of Compound 1. In one embodiment, the salt is the tosylate salt of Compound 1. In one embodiment, the salt is the maleate salt of Compound 1. In one embodiment, the salt is the besylate salt of Compound 1.

[0076] Without being limited to any particular theory, the acid is associated with one or more basic nitrogens of Compound 1. Without being limited to any particular theory, the pKa of the azetidine nitrogen of Compound 1 is estimated to be about 7.7, and the pKa of the morpholine nitrogen of Compound 1 is estimated to be about 2.12.

[0077] The purity of the solids and salts provided herein can be measured by standard analytical methods such as thin layer chromatography (TLC), gel electrophoresis, gas chromatography, high performance liquid chromatography (HPLC), and mass spectrometry.

[0078] Without intending to be limited by any particular theory, certain solids and salts are characterized by physical properties, such as stability, solubility and dissolution rate, making them suitable for pharmaceutical and therapeutic dosage forms. Furthermore, without wishing to be limited by any particular theory, certain solids and salts are characterized by physical properties (e.g., density, compressibility, hardness, morphology, cleavage, adhesion, solubility, water uptake, electrical properties, thermal behavior, solid reactivity, physical stability, and chemical stability) that affect certain processes (e.g., yield, filtration, washing, drying, grinding, mixing, tableting, flowability, dissolution, formulation, and lyophilization) that make certain solids and salts suitable for manufacturing solid dosage forms. Such properties can be measured using certain analytical chemistry techniques, such as those described herein and known in the art, such as solid analysis techniques (e.g., X-ray diffraction, microscopy, spectroscopy, and thermal analysis). Without intending to be limited by any particular theory, certain solids and salts provided herein are characterized by suitable pharmaceutical properties, such as pharmacokinetics, pharmacodynamics, half-life, C max Such properties may be measured using assays known to those skilled in the art.

[0079] (a) Free base of compound 1 In some embodiments, provided herein is a free base of Compound 1. It is believed that the free base of Compound 1 can exist in various solid forms. Such solid forms include crystalline solids such as polymorphs, solvates and hydrates of the crystalline free base of Compound 1, as well as amorphous solids, or mixtures thereof.

[0080] In one embodiment, provided herein is a solid form comprising the free base of Compound 1. In one embodiment, the solid form is a solvate of the free base of Compound 1. In one embodiment, the solid form is a hydrate of the free base of Compound 1. In one embodiment, the solid form is a nonsolvated form of the free base of Compound 1. In one embodiment, the solid form is a desolvated form of the free base of Compound 1. In one embodiment, the solid form is an anhydrous form (anhydrous) of the free base of Compound 1. In one embodiment, the solid form is a dehydrated form of the free base of Compound 1.

[0081] (i) Form A of the free base of Compound 1 In certain embodiments, provided herein is Form A of the free base of Compound 1.

[0082] In one embodiment, Form A is crystalline. In one embodiment, Form A is substantially crystalline. In one embodiment, Form A is moderately crystalline. In one embodiment, Form A is partially crystalline.

[0083] A representative XRPD pattern of Form A is provided in FIG.

[0084] In one embodiment, provided herein is a solid body comprising the free base of Compound 1 characterized by 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, or all of the peaks located at about the following positions: 4.5, 11.4, 12.6, 13.3, 15.3, 15.9, 18.1, 19.1, 20.1, 20.9, 21.6, 22.6, 23.9, 25.4, 26.3, 28.1, and 29.0 °2θ. In one embodiment, the solid body is characterized by 3 of the peaks. In one embodiment, the solid body is characterized by 5 of the peaks. In one embodiment, the solid body is characterized by 7 of the peaks. In one embodiment, the solid body is characterized by 9 of the peaks. In one embodiment, the solid body is characterized by eleven of the peaks. In one embodiment, the solid body is characterized by all of the peaks.

[0085] In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 4.5, 15.3, and 18.1 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 13.3 and 15.9 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 20.1 and 20.9 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 20.1 and 20.9 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 4.5, 13.3, 15.3, 15.9, 18.1, 19.1, 20.1, 20.9, 21.6, and 26.3 °2θ.

[0086] In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by an XRPD pattern comprising a peak at approximately 4.5 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 4.5, 11.4, and 12.6 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 4.5, 11.4, 12.6, 13.3, and 15.3 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 4.5, 11.4, 12.6, 13.3, 15.3, 15.9, and 18.1 °2θ.

[0087] In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern depicted in FIG.

[0088] In one embodiment, the XRPD pattern is obtained using Cu Kα radiation.

[0089] Representative thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC) thermograms for Form A are provided in Figure 2. In one embodiment, provided herein is a solid form comprising the free base of Compound 1, the solid form exhibiting a weight loss of about 1.3% upon heating from about 25°C to about 50°C, and a weight loss of about 1.4% upon heating from about 50°C to about 200°C. In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by a TGA thermogram consistent with the TGA thermogram provided in Figure 2.

[0090] In one embodiment, provided herein is a solid form comprising the free base of Compound 1, the solid form exhibiting, as characterized by DSC, a first thermal event (endotherm) with a peak temperature of about 68° C., and a second thermal event (endotherm) with a peak temperature of about 112° C. In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by a DSC thermogram consistent with the DSC thermogram depicted in FIG.

[0091] In one embodiment, Form A of the free base of Compound 1 is prepared by slurrying the free base of Compound 1 in water (eg, at about 40° C. for about 6 days).

[0092] In one embodiment, provided herein is a solid form comprising Form A of the free base of Compound 1 and an amorphous free base of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the free base of Compound 1 and one or more other crystalline forms of the free base of Compound 1 provided herein. In one embodiment, provided herein is a solid form comprising Form A of the free base of Compound 1 and one or more salt forms (e.g., amorphous or crystalline) of Compound 1 provided herein.

[0093] (ii) Form B of the free base of Compound 1 In certain embodiments, provided herein is Form B of the free base of Compound 1.

[0094] In one embodiment, Form B is crystalline. In one embodiment, Form B is substantially crystalline. In one embodiment, Form B is moderately crystalline. In one embodiment, Form B is partially crystalline.

[0095] A representative XRPD pattern of Form B is provided in FIG.

[0096] In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, or all of the peaks located at about the following positions: 4.5, 4.8, 9.6, 10.7, 11.4, 12.0, 13.3, 13.7, 14.9, 15.7, 17.3, 18.7, 19.0, 20.2, 20.7, 21.3, 21.4, 22.1, 22.9, 23.8, 24.5, 25.4, 26.2, 26.9, and 28.2 °2θ. In one embodiment, the solid form is characterized by three of the peaks. In one embodiment, the solid body is characterized by five of the peaks. In one embodiment, the solid body is characterized by seven of the peaks. In one embodiment, the solid body is characterized by nine of the peaks. In one embodiment, the solid body is characterized by eleven of the peaks. In one embodiment, the solid body is characterized by all of the peaks.

[0097] In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 4.8, 9.6, and 14.9 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 18.7 and 22.1 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 20.7 and 21.4 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 4.5, 4.8, 9.6, 14.9, 15.7, 17.3, 18.7, 19.0, 20.7, 21.3, 21.4, 22.1, 22.9, and 28.2 °2θ.

[0098] In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 4.5, 4.8, and 9.6 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 4.5, 4.8, 9.6, 10.7, and 11.4 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 4.5, 4.8, 9.6, 10.7, 11.4, 13.3, and 13.7 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 4.5, 4.8, 9.6, 10.7, 11.4, 13.3, 13.7, 14.9, and 15.7 °2θ.

[0099] In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern depicted in FIG.

[0100] In one embodiment, the XRPD pattern is obtained using Cu Kα radiation.

[0101] Representative thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC) thermograms for Form B are provided in Figure 4. In one embodiment, provided herein is a solid form comprising the free base of Compound 1, the solid form exhibiting a weight loss of about 0.9% upon heating from about 25°C to about 225°C. In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by a TGA thermogram consistent with the TGA thermogram provided in Figure 4.

[0102] In one embodiment, provided herein is a solid form comprising the free base of Compound 1, the solid form exhibiting, as characterized by DSC, a first thermal event (endotherm) with a peak temperature of about 82° C., a second thermal event (endotherm) with a peak temperature of about 107° C., and a third thermal event (endotherm) with a peak temperature of about 138° C. In one embodiment, provided herein is a solid form comprising the free base of Compound 1, characterized by a DSC thermogram consistent with the DSC thermogram depicted in FIG.

[0103] In one embodiment, Form B of the free base of Compound 1 is prepared by crystallizing the free base of Compound 1 from a solvent / antisolvent system (e.g., at room temperature) where the solvent is acetone and the antisolvent is water.

[0104] In one embodiment, provided herein is a solid form comprising Form B of the free base of Compound 1 and an amorphous free base of Compound 1. In one embodiment, provided herein is a solid form comprising Form B of the free base of Compound 1 and one or more other crystalline forms of the free base of Compound 1 provided herein. In one embodiment, provided herein is a solid form comprising Form B of the free base of Compound 1 and one or more salt forms (e.g., amorphous or crystalline) of Compound 1 provided herein.

[0105] (b) Hydrochloride of Compound 1 In some embodiments, provided herein is a hydrochloride salt of Compound 1. It is believed that the hydrochloride salt of Compound 1 can exist in various solid forms. Such solid forms include crystalline solids such as polymorphs, solvates and hydrates of the crystalline hydrochloride salt of Compound 1, as well as amorphous solids, or mixtures thereof.

[0106] In one embodiment, provided herein is a solid form comprising the hydrochloride salt of Compound 1. In one embodiment, the solid form is a solvate of the hydrochloride salt of Compound 1. In one embodiment, the solid form is a hydrate of the hydrochloride salt of Compound 1. In one embodiment, the solid form is a non-solvated form of the hydrochloride salt of Compound 1. In one embodiment, the solid form is a desolvated form of the hydrochloride salt of Compound 1. In one embodiment, the solid form is an anhydrous form (anhydrous) of the hydrochloride salt of Compound 1. In one embodiment, the solid form is a dehydrated form of the hydrochloride salt of Compound 1.

[0107] In some embodiments, the molar ratio of Compound 1 to hydrochloric acid in the solid ranges from about 1:1 to about 1:2. In one embodiment, the molar ratio is about 1:2 (i.e., the bis-hydrochloride salt). In another embodiment, the molar ratio is about 1:1 (i.e., the mono-hydrochloride salt).

[0108] (i) Form A of the hydrochloride salt of Compound 1 In certain embodiments, provided herein is Form A of the hydrochloride salt of Compound 1.

[0109] In one embodiment, Form A is crystalline. In one embodiment, Form A is substantially crystalline. In one embodiment, Form A is moderately crystalline. In one embodiment, Form A is partially crystalline.

[0110] In one embodiment, the molar ratio of Compound 1 to hydrochloric acid in Form A is about 1: 1. In one embodiment, Form A is the monohydrochloride salt of Compound 1.

[0111] In one embodiment, Form A is a hydrate of the hydrochloride salt of Compound 1. In one embodiment, Form A is a channel hydrate of the hydrochloride salt of Compound 1.

[0112] A representative XRPD pattern of Form A of the hydrochloride salt of Compound 1 is provided in FIG.

[0113] In one embodiment, provided herein is a solid form comprising the hydrochloride salt of Compound 1, characterized by one, two, three, four, five, six, seven, eight, nine, ten, eleven, twelve, thirteen, fourteen, fifteen, six, seven, eight, nine, twelfth, eleventh, twelve, thirteenth, fourteenth, fifteenth, six, seven, eight, nine, twelfth, eighteenth, nineteenth, twenty, twenty-one, twenty-two, twenty-three, twenty-three, twenty-three, twenty-four, twenty-five, twenty-six, twenty-seven, or all of the peaks located at about the following positions: 4.2, 7.8, 11.1, 12.4, 15.1, 15.5, 16.3, 17.1, 17.3, 17.9, 18.2, 18.9, 19.2, 20.1, 20.4, 20.7, 21.7, 22.4, 23.0, 24.4, 24.8, 25.7, 27.5, 28.1, 29.1, 29.8, 30.2, and 30.8 degrees 2θ. In one embodiment, the solid body is characterized by three of the peaks. In one embodiment, the solid body is characterized by five of the peaks. In one embodiment, the solid body is characterized by seven of the peaks. In one embodiment, the solid body is characterized by nine of the peaks. In one embodiment, the solid body is characterized by eleven of the peaks. In one embodiment, the solid body is characterized by all of the peaks.

[0114] In one embodiment, provided herein is a solid form comprising the hydrochloride salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 15.1, 16.3, and 20.7 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 7.8 and 22.4 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 18.2, 18.9, and 24.8 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 7.8, 15.1, 16.3, 17.9, 18.2, 18.9, 19.2, 20.4, 20.7, 21.7, 22.4, and 24.8 °2θ.

[0115] In one embodiment, provided herein is a solid body comprising the hydrochloride salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 4.2, 7.8, and 11.1 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 4.2, 7.8, 11.1, 12.4, and 15.1 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 4.2, 7.8, 11.1, 12.4, 15.1, 15.5, and 16.3 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 4.2, 7.8, 11.1, 12.4, 15.1, 15.5, 16.3, 17.1, and 17.3 degrees 2θ.

[0116] In one embodiment, provided herein is a solid form comprising the hydrochloride salt of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern provided in FIG.

[0117] In one embodiment, the XRPD pattern is obtained using Cu Kα radiation.

[0118] Representative thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC) thermograms of Form A of the hydrochloride salt of Compound 1 are provided in Figure 6. In one embodiment, provided herein is a solid body comprising the hydrochloride salt of Compound 1, the solid body exhibiting a weight loss of about 1.5% upon heating from about 25°C to about 200°C, and a weight loss of about 2.7% upon heating from about 200°C to about 230°C. In one embodiment, provided herein is a solid body comprising the hydrochloride salt of Compound 1, characterized by a TGA thermogram consistent with the TGA thermogram provided in Figure 6.

[0119] In one embodiment, provided herein is a solid body comprising the hydrochloride salt of Compound 1, the solid body exhibiting, as characterized by DSC, a first thermal event (endotherm) with a peak temperature of about 218° C., and a second thermal event (exotherm) with a peak temperature of about 227° C. In one embodiment, provided herein is a solid body comprising the hydrochloride salt of Compound 1, characterized by a DSC thermogram consistent with the DSC thermogram depicted in Figure 6. The melting point of Form A of the hydrochloride salt of Compound 1 may vary depending on the degree of crystallinity and crystal structure defects.

[0120] A representative dynamic vapor sorption (DVS) isotherm plot for Form A of the hydrochloride salt of Compound 1 is provided in Figure 7. In one embodiment, provided herein is a solid form comprising the hydrochloride salt of Compound 1, the solid form exhibiting a weight gain of about 3.0% when exposed to an increase in relative humidity (RH) from about 0% to about 95%. In one embodiment, provided herein is a solid form comprising the hydrochloride salt of Compound 1, characterized by a DVS isotherm plot consistent with the DVS isotherm plot provided in Figure 7.

[0121] In one embodiment, Form A of the hydrochloride salt of Compound 1 has a crystal habit of small rod-shaped primary particles. A representative SEM image of Form A of the hydrochloride salt of Compound 1 is provided in FIG.

[0122] In one embodiment, Form A of the hydrochloride salt of Compound 1 is prepared by slurrying the hydrochloride salt of Compound 1 in a solvent. In one embodiment, Form A of the hydrochloride salt of Compound 1 is prepared by slurrying the free base of Compound 1 and hydrochloric acid in a solvent. In one embodiment, the solvent is acetone, acetonitrile, anisole, DCM, DMAc, EtOH, EtOAc, ethyl formate, isopropyl acetate, MeOH, MEK, MTBE, 2-MeTHF, nitromethane, NMP, 2-propanol, tetrahydrofuran, toluene, water, a mixture of acetone and water (e.g., 95 / 5 v / v), a mixture of acetonitrile and water (e.g., 95 / 5 v / v), a mixture of 2-PrOH and water (e.g., 95 / 5 v / v), or a mixture of THF and water (e.g., 95 / 5 v / v). In one embodiment, the solvent is acetonitrile. In one embodiment, the slurrying is performed at room temperature. In one embodiment, the slurrying is performed at about 50° C. In one embodiment, the slurrying is carried out for a period of about 1 day to about 7 days. In one embodiment, the slurrying is carried out for about 2 days. In one embodiment, the slurrying is carried out for about 7 days.

[0123] In one embodiment, provided herein is a solid form comprising Form A of the hydrochloride salt of Compound 1 and one or more forms of the free base of Compound 1 (e.g., amorphous and crystalline forms). In one embodiment, provided herein is a solid form comprising Form A of the hydrochloride salt of Compound 1 and an amorphous hydrochloride salt of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the hydrochloride salt of Compound 1 and one or more other crystalline forms of the hydrochloride salt of Compound 1 provided herein. In one embodiment, provided herein is a solid form comprising Form A of the hydrochloride salt of Compound 1 and one or more salt forms (e.g., amorphous or crystalline) of Compound 1 provided herein.

[0124] (ii) Form B of the hydrochloride salt of Compound 1 In certain embodiments, provided herein is Form B of the hydrochloride salt of Compound 1.

[0125] In one embodiment, Form B is crystalline. In one embodiment, Form B is substantially crystalline. In one embodiment, Form B is moderately crystalline. In one embodiment, Form B is partially crystalline.

[0126] A representative XRPD pattern of Form B of the hydrochloride salt of Compound 1 is provided in FIG.

[0127] In one embodiment, provided herein is a solid form comprising the hydrochloride salt of Compound 1, characterized by one, two, three, four, five, six, seven, eight, nine, ten, eleven, twelve, thirteen, fourteen, fifteen, six, seven, eight, nine, twelfth, eleventh, twelve, thirteenth, fourteenth, fifteenth, six, seven, eight, nine, twelfth, nine, twelfth, twenty, one, two, three, three, four, five, six, seven, eight, nine, twelfth, ten, twelve, twelve, twenty, one, two, three, three, four, five, six, seven, eight, nine, twelfth, ten, twelve, twenty, one, two, three, three, four, five, six, seven, eight, nine, twelfth, ten, twelve, twenty, one, two, three, three, four, five, six, seven, eight, nine, twelfth, ten, twelve, twenty, one, two, three, three, four, In one embodiment, the solid body is characterized by three of the peaks. In one embodiment, the solid body is characterized by five of the peaks. In one embodiment, the solid body is characterized by seven of the peaks. In one embodiment, the solid body is characterized by nine of the peaks. In one embodiment, the solid body is characterized by eleven of the peaks. In one embodiment, the solid body is characterized by all of the peaks.

[0128] In one embodiment, provided herein is a solid form comprising the hydrochloride salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 17.5, 21.6, and 24.8 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 21.1 and 27.0 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 14.6, 17.2, and 20.3 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 6.7, 14.6, 17.2, 17.5, 19.6, 20.3, 21.1, 21.6, 21.9, 22.4, 24.8, 26.7, 27.0, 27.7, and 29.5 °2θ.

[0129] In one embodiment, provided herein is a solid body comprising the hydrochloride salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 6.7, 11.6, and 13.5 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 6.7, 11.6, 13.5, 14.2, and 14.6 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 6.7, 11.6, 13.5, 14.2, 14.6, 16.5, and 17.2 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 6.7, 11.6, 13.5, 14.2, 14.6, 16.5, 17.2, 17.5, and 18.1 degrees 2θ.

[0130] In one embodiment, provided herein is a solid form comprising the hydrochloride salt of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern provided in FIG.

[0131] In one embodiment, the XRPD pattern is obtained using Cu Kα radiation.

[0132] Representative thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC) thermograms of Form B of the hydrochloride salt of Compound 1 are provided in Figure 10. In one embodiment, provided herein is a solid body comprising the hydrochloride salt of Compound 1, the solid body exhibiting a weight loss of about 1.6% upon heating from about 25°C to about 175°C, and a weight loss of about 5.3% upon heating from about 175°C to about 230°C. In one embodiment, provided herein is a solid body comprising the hydrochloride salt of Compound 1, characterized by a TGA thermogram consistent with the TGA thermogram provided in Figure 10.

[0133] In one embodiment, provided herein is a solid body comprising the hydrochloride salt of Compound 1, the solid body exhibiting a thermal event (exotherm) as characterized by DSC with a peak temperature of about 230° C. In one embodiment, provided herein is a solid body comprising the hydrochloride salt of Compound 1, characterized by a DSC thermogram consistent with the DSC thermogram depicted in FIG.

[0134] In one embodiment, Form B of the hydrochloride salt of Compound 1 is prepared by slurrying the free base of Compound 1 and about 2 equivalents of HCl in acetonitrile (eg, at room temperature for about 5 days).

[0135] In one embodiment, provided herein is a solid form comprising Form B of the hydrochloride salt of Compound 1 and one or more forms of the free base of Compound 1 (e.g., amorphous and crystalline forms). In one embodiment, provided herein is a solid form comprising Form B of the hydrochloride salt of Compound 1 and an amorphous hydrochloride salt of Compound 1. In one embodiment, provided herein is a solid form comprising Form B of the hydrochloride salt of Compound 1 and one or more other crystalline forms of the hydrochloride salt of Compound 1 provided herein. In one embodiment, provided herein is a solid form comprising Form B of the hydrochloride salt of Compound 1 and one or more salt forms (e.g., amorphous or crystalline) of Compound 1 provided herein.

[0136] (iii) Form C of the hydrochloride salt of Compound 1 In certain embodiments, provided herein is Form C of the hydrochloride salt of Compound 1. A representative XRPD pattern of Form C of the hydrochloride salt of Compound 1 is provided in Figure 21. In one embodiment, provided herein is a solid form comprising the hydrochloride salt of Compound 1, characterized by an XRPD pattern matching the XRPD pattern provided in Figure 21.

[0137] (c) Fumarate salt of compound 1 In some embodiments, the present disclosure provides a fumarate salt of Compound 1. It is believed that the fumarate salt of Compound 1 can exist in various solid forms. Such solid forms include crystalline solids such as polymorphs, solvates and hydrates of the crystalline fumarate salt of Compound 1, and amorphous solids, or mixtures thereof.

[0138] In one embodiment, provided herein is a solid form comprising the fumarate salt of Compound 1. In one embodiment, the solid form is a solvate of the fumarate salt of Compound 1. In one embodiment, the solid form is a hydrate of the fumarate salt of Compound 1. In one embodiment, the solid form is a non-solvated form of the fumarate salt of Compound 1. In one embodiment, the solid form is a desolvated form of the fumarate salt of Compound 1. In one embodiment, the solid form is an anhydrous form (anhydrous) of the fumarate salt of Compound 1. In one embodiment, the solid form is a dehydrated form of the fumarate salt of Compound 1.

[0139] In some embodiments, the molar ratio of compound 1 to fumaric acid in the solid body ranges from about 1:1 to about 1:2. In one embodiment, the molar ratio is about 1:2 (i.e., bis-fumaric acid salt). In another embodiment, the molar ratio is about 1:1 (i.e., mono-fumaric acid salt).

[0140] (i) Form A of the fumarate salt of Compound 1 In certain embodiments, provided herein is Form A of the fumarate salt of Compound 1.

[0141] In one embodiment, Form A is crystalline. In one embodiment, Form A is substantially crystalline. In one embodiment, Form A is moderately crystalline. In one embodiment, Form A is partially crystalline.

[0142] In one embodiment, the molar ratio of Compound 1 to fumaric acid in Form A is about 1:2. In one embodiment, Form A is a bis-fumaric acid salt of Compound 1.

[0143] In one embodiment, Form A is a non-solvated form of the fumarate salt of Compound 1.

[0144] A representative XRPD pattern of Form A of the fumarate salt of Compound 1 is provided in FIG.

[0145] In one embodiment, the amino acid sequence used herein is about the following positions: 11.7, 12.2, 12.8, 13.8, 14.5, 14.7, 15.0, 15.2, 16.6, 17.1, 17.3, 17.7, 17.9, 18.3, 19.0, 19.4, 20.1, 20.5, 20.7, 21.4, 22.3, 22.9, 23.2, 23.4, 23.7, 24.3, 24. A solid body comprising a fumarate salt of Compound 1 is provided, characterized by 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or all of the peaks located at 7, 24.9, 25.8, 26.6, and 27.1 degrees 2θ. In one embodiment, the solid body is characterized by three of the peaks. In one embodiment, the solid body is characterized by five of the peaks. In one embodiment, the solid body is characterized by seven of the peaks. In one embodiment, the solid body is characterized by nine of the peaks. In one embodiment, the solid body is characterized by eleven of the peaks. In one embodiment, the solid body is characterized by all of the peaks.

[0146] In one embodiment, provided herein is a solid form comprising a fumarate salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 22.3, 23.2, and 23.4 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 17.9 and 25.8 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 11.7 and 18.3 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 11.7, 15.0, 17.9, 18.3, 19.4, 20.1, 22.3, 22.9, 23.2, 23.4, and 25.8 °2θ.

[0147] In one embodiment, provided herein is a solid form comprising a fumarate salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 11.7, 12.2, and 12.8 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 11.7, 12.2, 12.8, 13.8, and 14.5 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 11.7, 12.2, 12.8, 13.8, 14.5, 14.7, and 15.0 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 11.7, 12.2, 12.8, 13.8, 14.5, 14.7, 15.0, 15.2, and 16.6 degrees 2θ.

[0148] In one embodiment, provided herein is a solid form comprising a fumarate salt of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern provided in FIG.

[0149] In one embodiment, the XRPD pattern is obtained using Cu Kα radiation.

[0150] Representative thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC) thermograms of Form A of the fumarate salt of Compound 1 are provided in Figure 12. In one embodiment, provided herein is a solid body comprising a fumarate salt of Compound 1, the solid body exhibiting a weight loss of about 0.5% upon heating from about 25°C to about 150°C, and a weight loss of about 7.9% upon heating from about 150°C to about 205°C. In one embodiment, provided herein is a solid body comprising a fumarate salt of Compound 1, characterized by a TGA thermogram consistent with the TGA thermogram provided in Figure 12.

[0151] In one embodiment, provided herein is a solid body comprising a fumarate salt of Compound 1, the solid body exhibiting a thermal event (endotherm) with a peak temperature of about 198° C. as characterized by DSC. In one embodiment, without being limited to any particular theory, the thermal event corresponds to melting. In one embodiment, provided herein is a solid body comprising a fumarate salt of Compound 1, characterized by a DSC thermogram consistent with the DSC thermogram shown in FIG.

[0152] In one embodiment, Form A of the fumarate salt of Compound 1 is prepared by slurrying the fumarate salt of Compound 1 in a solvent. In one embodiment, Form A of the fumarate salt of Compound 1 is prepared by slurrying the free base of Compound 1 and fumaric acid in a solvent. In one embodiment, the solvent is acetone, acetonitrile, anisole, DCM, EtOH, EtOAc, ethyl formate, isopropyl acetate, MeOH, MEK, MTBE, 2-MeTHF, nitromethane, 2-propanol, tetrahydrofuran, toluene, water, a mixture of acetone and water (e.g., 95 / 5 v / v), a mixture of acetonitrile and water (e.g., 95 / 5 v / v), a mixture of 2-PrOH and water (e.g., 95 / 5 v / v), or a mixture of THF and water (e.g., 95 / 5 v / v). In one embodiment, the solvent is acetonitrile. In one embodiment, the slurrying is performed at room temperature. In one embodiment, the slurrying is performed at about 50° C. In one embodiment, the slurrying is carried out for a period of about 1 day to about 7 days. In one embodiment, the slurrying is carried out for about 2 days. In one embodiment, the slurrying is carried out for about 7 days.

[0153] In one embodiment, provided herein is a solid form comprising Form A of the fumarate salt of Compound 1 and one or more forms of the free base of Compound 1 (e.g., amorphous and crystalline forms). In one embodiment, provided herein is a solid form comprising Form A of the fumarate salt of Compound 1 and an amorphous fumarate salt of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the fumarate salt of Compound 1 and one or more other crystalline forms of the fumarate salt of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the fumarate salt of Compound 1 and one or more salt forms (e.g., amorphous or crystalline) of Compound 1 provided herein.

[0154] (d) Tosylate of Compound 1 In some embodiments, provided herein is a tosylate salt of Compound 1. It is believed that the tosylate salt of Compound 1 can exist in various solid forms. Such solid forms include crystalline solids, such as polymorphs, solvates and hydrates of the crystalline tosylate salt of Compound 1, as well as amorphous solids, or mixtures thereof.

[0155] In one embodiment, provided herein is a solid form comprising a tosylate salt of Compound 1. In one embodiment, the solid form is a solvate of the tosylate salt of Compound 1. In one embodiment, the solid form is a hydrate of the tosylate salt of Compound 1. In one embodiment, the solid form is a non-solvated form of the tosylate salt of Compound 1. In one embodiment, the solid form is a desolvated form of the tosylate salt of Compound 1. In one embodiment, the solid form is an anhydrous form (anhydride) of the tosylate salt of Compound 1. In one embodiment, the solid form is a dehydrated form of the tosylate salt of Compound 1.

[0156] In some embodiments, the molar ratio of Compound 1 to p-toluenesulfonic acid in the solid ranges from about 1:1 to about 1:2. In one embodiment, the molar ratio is about 1:2 (i.e., the bistosylate salt). In another embodiment, the molar ratio is about 1:1 (i.e., the monotosylate salt).

[0157] (i) Form A of the tosylate salt of Compound 1 In certain embodiments, provided herein is Form A of the tosylate salt of Compound 1.

[0158] In one embodiment, Form A is crystalline. In one embodiment, Form A is substantially crystalline. In one embodiment, Form A is moderately crystalline. In one embodiment, Form A is partially crystalline.

[0159] In one embodiment, the molar ratio of Compound 1 to p-toluenesulfonic acid in Form A is about 1:1. In one embodiment, Form A is the monotosylate salt of Compound 1.

[0160] In one embodiment, Form A is a non-solvated form of the tosylate salt of Compound 1.

[0161] A representative XRPD pattern of Form A of the tosylate salt of Compound 1 is provided in FIG.

[0162] In one embodiment, provided herein is a solid form comprising a tosylate salt of Compound 1, characterized by one, two, three, four, five, six, seven, eight, nine, ten, eleven, twelve, thirteen, fourteen, fifteen, six, seven, eight, nine, ten, eleven, twelve, thirteen, fourteen, fifteen, six, seven, eight, nine, ten, eleven, twenty, thirteen, twenty-two, three, three, four, four, five, eight, six, or all of the peaks located at about the following positions: 3.9, 6.8, 7.3, 7.8, 8.6, 10.9, 11.4, 12.1, 14.5, 15.4, 15.5, 15.7, 15.9, 16.4, 17.0, 17.6, 18.0, 18.6, 19.3, 19.7, 20.6, 21.2, 22.6, 23.0, 23.4, 23.8, 24.7, and 25.0 degrees 2θ. In one embodiment, the solid body is characterized by three of the peaks. In one embodiment, the solid body is characterized by five of the peaks. In one embodiment, the solid body is characterized by seven of the peaks. In one embodiment, the solid body is characterized by nine of the peaks. In one embodiment, the solid body is characterized by eleven of the peaks. In one embodiment, the solid body is characterized by all of the peaks.

[0163] In one embodiment, provided herein is a solid form comprising a tosylate salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 17.6, 18.0, and 23.8 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 15.7 and 20.6 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 24.7 and 25.0 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 15.7, 16.4, 17.6, 18.0, 18.6, 20.6, 21.2, 23.4, 23.8, 24.7, and 25.0 °2θ.

[0164] In one embodiment, provided herein is a solid form comprising a tosylate salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 3.9, 6.8, and 7.3 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 3.9, 6.8, 7.3, 7.8, and 8.6 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 3.9, 6.8, 7.3, 7.8, 8.6, 10.9, and 11.4 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 3.9, 6.8, 7.3, 7.8, 8.6, 10.9, 11.4, 12.1, and 14.5 °2θ.

[0165] In one embodiment, provided herein is a solid form comprising a tosylate salt of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern provided in FIG.

[0166] In one embodiment, the XRPD pattern is obtained using Cu Kα radiation.

[0167] Representative thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC) thermograms for Form A of the tosylate salt of Compound 1 are provided in Figure 14. In one embodiment, provided herein is a solid body comprising a tosylate salt of Compound 1, the solid body exhibiting a weight loss of about 1.0% upon heating from about 25°C to about 200°C. In one embodiment, provided herein is a solid body comprising a tosylate salt of Compound 1, characterized by a TGA thermogram consistent with the TGA thermogram provided in Figure 14.

[0168] In one embodiment, provided herein is a solid body comprising a tosylate salt of Compound 1, the solid body exhibiting a thermal event (endotherm) with a peak temperature of about 189° C. as characterized by DSC. In one embodiment, without being limited to any particular theory, the thermal event corresponds to melting. In one embodiment, provided herein is a solid body comprising a tosylate salt of Compound 1, characterized by a DSC thermogram consistent with the DSC thermogram shown in FIG.

[0169] In one embodiment, Form A of the tosylate salt of Compound 1 is prepared by slurrying the tosylate salt of Compound 1 in a solvent. In one embodiment, Form A of the tosylate salt of Compound 1 is prepared by slurrying the free base of Compound 1 and p-toluenesulfonic acid in a solvent. In one embodiment, the solvent is acetone, acetonitrile, anisole, DCM, EtOH, EtOAc, ethyl formate, isopropyl acetate, MeOH, MEK, MTBE, 2-MeTHF, nitromethane, 2-propanol, tetrahydrofuran, toluene, water, a mixture of acetone and water (e.g., 95 / 5 v / v), or a mixture of 2-PrOH and water (e.g., 95 / 5 v / v). In one embodiment, the solvent is acetonitrile. In one embodiment, the slurrying is performed at room temperature. In one embodiment, the slurrying is performed at about 50° C. In one embodiment, the slurrying is performed for a period of about 1 day to about 7 days. In one embodiment, the slurrying is carried out for about 2 days, hi one embodiment, the slurrying is carried out for about 7 days.

[0170] In one embodiment, provided herein is a solid form comprising Form A of the tosylate salt of Compound 1 and one or more free base forms (e.g., amorphous and crystalline forms) of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the tosylate salt of Compound 1 and an amorphous tosylate salt of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the tosylate salt of Compound 1 and one or more other crystalline forms of the tosylate salt of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the tosylate salt of Compound 1 and one or more salt forms (e.g., amorphous or crystalline) of Compound 1 provided herein.

[0171] (ii) Additional forms of the tosylate salt of Compound 1 In certain embodiments, provided herein is Form B of the tosylate salt of Compound 1. A representative XRPD pattern of Form B of the tosylate salt of Compound 1 is provided (as part of an overlay plot) in Figure 22. In one embodiment, provided herein is a solid form comprising the tosylate salt of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern of Form B as shown in Figure 22.

[0172] In certain embodiments, provided herein is Form C of the tosylate salt of Compound 1. A representative XRPD pattern of Form C of the tosylate salt of Compound 1 is provided (as part of an overlay plot) in Figure 22. In one embodiment, provided herein is a solid form comprising the tosylate salt of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern of Form C as shown in Figure 22.

[0173] In certain embodiments, provided herein is Form D of the tosylate salt of Compound 1. A representative XRPD pattern of Form D of the tosylate salt of Compound 1 is provided (as part of an overlay plot) in Figure 22. In one embodiment, provided herein is a solid form comprising the tosylate salt of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern of Form D as shown in Figure 22.

[0174] (e) Maleate salt of compound 1 In some embodiments, provided herein is a maleate salt of Compound 1. It is believed that the maleate salt of Compound 1 can exist in various solid forms. Such solid forms include crystalline solids such as polymorphs, solvates and hydrates of the crystalline maleate salt of Compound 1, as well as amorphous solids, or mixtures thereof.

[0175] In one embodiment, provided herein is a solid form comprising the maleate salt of Compound 1. In one embodiment, the solid form is a solvate of the maleate salt of Compound 1. In one embodiment, the solid form is a hydrate of the maleate salt of Compound 1. In one embodiment, the solid form is a nonsolvated form of the maleate salt of Compound 1. In one embodiment, the solid form is a desolvated form of the maleate salt of Compound 1. In one embodiment, the solid form is an anhydrous form (anhydrous) of the maleate salt of Compound 1. In one embodiment, the solid form is a dehydrated form of the maleate salt of Compound 1.

[0176] In some embodiments, the molar ratio of compound 1 to maleic acid in the solid body ranges from about 1:1 to about 1:2. In one embodiment, the molar ratio is about 1:2 (i.e., bismaleate). In another embodiment, the molar ratio is about 1:1 (i.e., monomaleate).

[0177] (i) Form A of the maleate salt of Compound 1 In certain embodiments, provided herein is Form A of the maleate salt of Compound 1.

[0178] In one embodiment, Form A is crystalline. In one embodiment, Form A is substantially crystalline. In one embodiment, Form A is moderately crystalline. In one embodiment, Form A is partially crystalline.

[0179] In one embodiment, the molar ratio of Compound 1 to maleic acid in Form A is about 1:1. In one embodiment, Form A is a mono-maleate salt of Compound 1. In one embodiment, the molar ratio of Compound 1 to maleic acid in Form A is about 1:2. In one embodiment, Form A is a bis-maleate salt of Compound 1. In one embodiment, Form A is a mixture of mono- and bis-maleate salts of Compound 1.

[0180] In one embodiment, Form A is a non-solvated form of the maleate salt of Compound 1. In one embodiment, Form A is a solvate of the maleate salt of Compound 1.

[0181] A representative XRPD pattern of Form A of the maleate salt of Compound 1 is provided in FIG.

[0182] In one embodiment, the amino acid sequence of the present invention is about the following positions: 6.0, 11.6, 11.9, 12.5, 13.3, 13.9, 15.2, 16.2, 17.0, 17.6, 17.7, 18.0, 18.4, 18.9, 19.3, 19.8, 20.0, 22.2, 22.4, 22.7, 23.1, 23.3, 23.6, 24.0, 24.4, 24.5, 24.6, 24.7, 24.8, 24.9, 25.0, 25.1, 25.2, 25.3, 25.4, 25.5, 25.6, 25.7, 25.8, 25.9, 26.0, 26.1, 26.2, 26.3, 26.4, 26.5, 26.6, 26.7, 26.8, 26.9, 27.0, 27.1, 27.2, 27.3, 27.4, 27.5, 27.6, 27.7, 27.8, 27.9, 28.0, 28.1, 28.2, 28.3, 28.4, 28.5, 28.6, 28.7, 28.8, 28.9, 29.0, 30.0, 30.1, 30.2, 30.3, 30.4, 30.5, 30.6, 30.7, 30.8, 30.9, 30.1, 3 A solid body comprising a maleate salt of Compound 1 is provided, characterized by 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, or all of the peaks located at 5.1, 25.6, 26.0, and 26.9° 2θ. In one embodiment, the solid body is characterized by three of the peaks. In one embodiment, the solid body is characterized by five of the peaks. In one embodiment, the solid body is characterized by seven of the peaks. In one embodiment, the solid body is characterized by nine of the peaks. In one embodiment, the solid body is characterized by eleven of the peaks. In one embodiment, the solid body is characterized by all of the peaks.

[0183] In one embodiment, provided herein is a solid body comprising a maleate salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 17.6, 24.4, and 26.9 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 18.0, 18.4, and 19.3 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 19.8 and 24.0 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 11.9, 17.6, 18.0, 18.4, 19.3, 19.8, 24.0, 24.4, 25.1, 26.0, and 26.9 °2θ.

[0184] In one embodiment, provided herein is a solid body comprising a maleate salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 6.0, 11.6, and 11.9 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 6.0, 11.6, 11.9, 12.5, and 13.3 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 6.0, 11.6, 11.9, 12.5, 13.3, 13.9, and 15.2 degrees 2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 6.0, 11.6, 11.9, 12.5, 13.3, 13.9, 15.2, 16.2, and 17.0 degrees 2θ.

[0185] In one embodiment, provided herein is a solid form comprising a maleate salt of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern provided in FIG.

[0186] In one embodiment, the XRPD pattern is obtained using Cu Kα radiation.

[0187] Representative thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC) thermograms of Form A of the maleate salt of Compound 1 are provided in Figure 16. In one embodiment, provided herein is a solid body comprising the maleate salt of Compound 1, the solid body exhibiting a weight loss of about 0.2% upon heating from about 25°C to about 150°C, and a weight loss of about 8.8% upon heating from about 150°C to about 185°C. In one embodiment, provided herein is a solid body comprising the maleate salt of Compound 1, characterized by a TGA thermogram consistent with the TGA thermogram provided in Figure 16.

[0188] In one embodiment, provided herein is a solid body comprising a maleate salt of Compound 1, the solid body exhibiting a thermal event (endotherm) with a peak temperature of about 174° C. as characterized by DSC. In one embodiment, without being limited to any particular theory, the thermal event corresponds to melting. In one embodiment, provided herein is a solid body comprising a maleate salt of Compound 1, characterized by a DSC thermogram consistent with the DSC thermogram shown in FIG.

[0189] In one embodiment, Form A of the maleate salt of Compound 1 is prepared by slurrying Compound 1 free base and maleic acid in acetonitrile (eg, at room temperature for about 5 days).

[0190] In one embodiment, provided herein is a solid form comprising Form A of the maleate salt of Compound 1 and one or more forms of the free base of Compound 1 (e.g., amorphous and crystalline forms). In one embodiment, provided herein is a solid form comprising Form A of the maleate salt of Compound 1 and an amorphous maleate salt of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the maleate salt of Compound 1 and one or more other crystalline forms of the maleate salt of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the maleate salt of Compound 1 and one or more salt forms (e.g., amorphous or crystalline) of Compound 1 provided herein.

[0191] (f) Besylate of Compound 1 In some embodiments, provided herein is a besylate salt of Compound 1. It is believed that the besylate salt of Compound 1 may exist in various solid forms. Such solid forms include crystalline solids, such as polymorphs, solvates and hydrates of the crystalline besylate salt of Compound 1, as well as amorphous solids, or mixtures thereof.

[0192] In one embodiment, provided herein is a solid form comprising a besylate salt of Compound 1. In one embodiment, the solid form is a solvate of the besylate salt of Compound 1. In one embodiment, the solid form is a hydrate of the besylate salt of Compound 1. In one embodiment, the solid form is a non-solvated form of the besylate salt of Compound 1. In one embodiment, the solid form is a desolvated form of the besylate salt of Compound 1. In one embodiment, the solid form is an anhydrous form (anhydrous) of the besylate salt of Compound 1. In one embodiment, the solid form is a dehydrated form of the besylate salt of Compound 1.

[0193] In some embodiments, the molar ratio of Compound 1 to benzenesulfonic acid in the solid ranges from about 1:1 to about 1:2. In one embodiment, the molar ratio is about 1:2 (i.e., bisbesylate). In another embodiment, the molar ratio is about 1:1 (i.e., monobesylate).

[0194] (i) Form A of the besylate salt of Compound 1 In certain embodiments, provided herein is Form A of the besylate salt of Compound 1.

[0195] In one embodiment, Form A is crystalline. In one embodiment, Form A is substantially crystalline. In one embodiment, Form A is moderately crystalline. In one embodiment, Form A is partially crystalline.

[0196] A representative XRPD pattern of Form A of the besylate salt of Compound 1 is provided in FIG.

[0197] In one embodiment, provided herein is a solid form comprising a besylate salt of Compound 1, characterized by one, two, three, four, five, six, seven, eight, nine, ten, eleven, twelve, thirteen, fourteen, fifteen, six, seven, eight, nine, ten, eleven, twelve, thirteen, fourteen, fifteen, six, seven, eight, nine, 20, 21, 22, 23, 24, 25, 26, 27, or all of the peaks located at about the following positions: 6.9, 7.8, 8.5, 10.9, 11.3, 12.1, 13.2, 14.6, 15.1, 15.7, 16.2, 16.5, 16.9, 17.4, 17.9, 18.3, 19.3, 19.8, 20.5, 21.1, 21.9, 22.7, 23.8, 24.9, 25.1, 25.9, 26.7, and 27.4 degrees two-theta. In one embodiment, the solid body is characterized by three of the peaks. In one embodiment, the solid body is characterized by five of the peaks. In one embodiment, the solid body is characterized by seven of the peaks. In one embodiment, the solid body is characterized by nine of the peaks. In one embodiment, the solid body is characterized by eleven of the peaks. In one embodiment, the solid body is characterized by all of the peaks.

[0198] In one embodiment, provided herein is a solid form comprising a besylate salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 17.9, 18.3, and 23.8 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 15.7 and 16.2 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 8.5 and 16.5 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 6.9, 8.5, 15.7, 16.2, 16.5, 16.9, 17.9, 18.3, 20.5, 21.1, 23.8, and 25.1 °2θ.

[0199] In one embodiment, provided herein is a solid form comprising a besylate salt of Compound 1, characterized by an XRPD pattern comprising peaks at approximately 6.9, 7.8, and 8.5 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 6.9, 7.8, 8.5, 10.9, and 11.3 °2θ. In one embodiment, the XRPD pattern further comprises peaks at approximately 6.9, 7.8, 8.5, 10.9, 11.3, 12.1, and 13.2 °2θ. In one embodiment, the XRPD pattern comprises peaks at approximately 6.9, 7.8, 8.5, 10.9, 11.3, 12.1, 13.2, 14.6, and 15.1 °2θ.

[0200] In one embodiment, provided herein is a solid form comprising a besylate salt of Compound 1, characterized by an XRPD pattern that matches the XRPD pattern provided in FIG.

[0201] In one embodiment, the XRPD pattern is obtained using Cu Kα radiation.

[0202] A representative thermogravimetric analysis (TGA) of Form A of a besylate salt of Compound 1 is provided in Figure 18. In one embodiment, provided herein is a solid body comprising a besylate salt of Compound 1, the solid body exhibiting a weight loss of about 0.25% upon heating from about 25°C to about 150°C. In one embodiment, provided herein is a solid body comprising a besylate salt of Compound 1, characterized by a TGA thermogram consistent with the TGA thermogram provided in Figure 18.

[0203] A representative differential scanning calorimetry (DSC) thermogram of Form A of a besylate salt of Compound 1 is provided in Figure 19. In one embodiment, provided herein is a solid body comprising a besylate salt of Compound 1, the solid body exhibiting a thermal event (endotherm) with an onset temperature of about 164°C as characterized by DSC. In one embodiment, the thermal event also has a peak temperature of about 175°C. In one embodiment, without being limited to any particular theory, the thermal event corresponds to melting. In one embodiment, provided herein is a solid body comprising a besylate salt of Compound 1, characterized by a DSC thermogram consistent with the DSC thermogram shown in Figure 19.

[0204] In one embodiment, Form A of the besylate salt of Compound 1 is prepared by adding benzenesulfonic acid to a solution of the free base of Compound 1 in a solvent, resulting in precipitation of Form A of the besylate salt of Compound 1. In one embodiment, the solvent is acetone. In one embodiment, the solvent is MEK. In one embodiment, the benzenesulfonic acid is added as a solution in MEK.

[0205] In one embodiment, provided herein is a solid form comprising Form A of the besylate salt of Compound 1 and one or more free base forms (e.g., amorphous and crystalline forms) of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the besylate salt of Compound 1 and an amorphous besylate salt of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the besylate salt of Compound 1 and one or more other crystalline forms of the besylate salt of Compound 1. In one embodiment, provided herein is a solid form comprising Form A of the besylate salt of Compound 1 and one or more salt forms (e.g., amorphous or crystalline) of Compound 1 provided herein.

[0206] 3.How to use In one embodiment, provided herein is a method for treating a hematological malignancy, comprising administering to a patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0207] In one embodiment, provided herein is a method for preventing hematological malignancies, comprising administering to a patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0208] In one embodiment, provided herein is a method for treating a hematological malignancy, comprising administering to a patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0209] In one embodiment, the hematological malignancy is leukemia.

[0210] In one embodiment, the hematological malignancy is acute myeloid leukemia. In one embodiment, the acute myeloid leukemia is B-cell acute myeloid leukemia.

[0211] In one embodiment, the hematological malignancy is acute lymphoblastic leukemia.

[0212] In one embodiment, the hematological malignancy is chronic lymphocytic leukemia / small lymphocytic lymphoma.

[0213] In one embodiment, the hematological malignancy is myeloma.

[0214] In one embodiment, the hematological malignancy is multiple myeloma. In one embodiment, the multiple myeloma is plasma cell leukemia (PCL).

[0215] In one embodiment, the hematological malignancy is lymphoma.

[0216] In one embodiment, the hematological malignancy is non-Hodgkin's lymphoma.

[0217] In one embodiment, the hematological malignancy is diffuse large B-cell lymphoma.

[0218] In one embodiment, the hematological malignancy is T-cell lymphoma. In one embodiment, the T-cell lymphoma is anaplastic large cell lymphoma (ALCL). In one embodiment, the T-cell lymphoma is Sézary syndrome.

[0219] In one embodiment, the hematological malignancy is Burkitt's lymphoma.

[0220] In one embodiment, the hematological malignancy is marginal zone lymphoma. In one embodiment, the marginal zone lymphoma is splenic marginal zone lymphoma (SMZL).

[0221] In one embodiment, the hematological malignancy is Hodgkin's lymphoma.

[0222] In one embodiment, the hematological malignancy is myelodysplastic syndrome.

[0223] In one embodiment, the hematological malignancy is newly diagnosed, hi one embodiment, the hematological malignancy is relapsed or refractory.

[0224] In one embodiment, the AML is newly diagnosed AML. In one embodiment, the AML is relapsed or refractory AML. In one embodiment, the B cell AML is newly diagnosed B cell AML. In one embodiment, the B cell AML is relapsed or refractory B cell AML.

[0225] In one embodiment, the ALL is newly diagnosed ALL. In one embodiment, the ALL is relapsed or refractory ALL.

[0226] In one embodiment, the MM is newly diagnosed MM. In one embodiment, the MM is relapsed or refractory MM. In one embodiment, the PCL is newly diagnosed PCL. In one embodiment, the PCL is relapsed or refractory PCL.

[0227] In one embodiment, the HL is newly diagnosed HL, hi one embodiment, the HL is relapsed or refractory HL.

[0228] In one embodiment, the NHL is newly diagnosed NHL. In one embodiment, the NHL is relapsed or refractory NHL.

[0229] In one embodiment, the TCL is newly diagnosed TCL. In one embodiment, the TCL is relapsed or refractory TCL. In one embodiment, the ALCL is newly diagnosed ALCL. In one embodiment, the ALCL is relapsed or refractory ALCL. In one embodiment, the Sézary syndrome is newly diagnosed Sézary syndrome. In one embodiment, the Sézary syndrome is relapsed or refractory Sézary syndrome.

[0230] In one embodiment, the BL is newly diagnosed BL. In one embodiment, the BL is relapsed or refractory BL.

[0231] In one embodiment, the MZL is newly diagnosed MZL. In one embodiment, the MZL is relapsed or refractory MZL. In one embodiment, the SMZL is newly diagnosed SMZL. In one embodiment, the SMZL is relapsed or refractory SMZL.

[0232] In one embodiment, the MDS is newly diagnosed MDS. In one embodiment, the MDS is relapsed or refractory MDS.

[0233] In one embodiment, provided herein is a method of achieving complete remission, partial remission, or stable disease in a patient having a hematological malignancy, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, provided herein is a method of achieving increased overall survival, progression-free survival, event-free survival, progression-free survival, or disease-free survival in a patient having a hematological malignancy, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, provided herein is a method of achieving increased overall survival in a patient having a hematological malignancy, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, provided herein is a method of achieving increased progression-free survival in a patient having a hematological malignancy, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, provided herein is a method of achieving increased event-free survival in a patient having a hematological malignancy provided herein, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, provided herein is a method of achieving increased progression-free survival in a patient having a hematological malignancy provided herein, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, provided herein is a method of achieving increased disease-free survival in a patient having a hematological malignancy provided herein, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the hematological malignancy is AML (e.g., B-cell AML). In one embodiment, the hematological malignancy is ALL. In one embodiment, the hematological malignancy is CLL / SLL. In one embodiment, the hematological malignancy is MM.In one embodiment, the hematological malignancy is PCL. In one embodiment, the hematological malignancy is NHL. In one embodiment, the hematological malignancy is DLBCL. In one embodiment, the hematological malignancy is TCL (e.g., ALCL or Sezary syndrome). In one embodiment, the hematological malignancy is Burkitt's lymphoma. In one embodiment, the hematological malignancy is HL. In one embodiment, the hematological malignancy is MZL (e.g., SMZL). In one embodiment, the hematological malignancy is MDS.

[0234] In one embodiment, provided herein is a method for treating AML, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the AML is B-cell AML.

[0235] In one embodiment, provided herein is a method for preventing AML, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the AML is B-cell AML.

[0236] In one embodiment, provided herein is a method for treating AML, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the AML is B-cell AML.

[0237] In one embodiment, provided herein is a method for treating ALL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0238] In one embodiment, provided herein is a method for preventing ALL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0239] In one embodiment, provided herein is a method for treating ALL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0240] In one embodiment, provided herein is a method for treating MM, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0241] In one embodiment, provided herein is a method for preventing MM, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0242] In one embodiment, provided herein is a method for treating MM, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0243] In one embodiment, provided herein is a method for treating PCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0244] In one embodiment, provided herein is a method for preventing PCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0245] In one embodiment, provided herein is a method for treating PCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0246] In one embodiment, provided herein is a method for treating TCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the TCL is ALCL. In one embodiment, the TCL is Sézary syndrome.

[0247] In one embodiment, provided herein is a method for preventing TCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the TCL is ALCL. In one embodiment, the TCL is Sézary syndrome.

[0248] In one embodiment, provided herein is a method for treating TCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the TCL is ALCL. In one embodiment, the TCL is Sezary syndrome.

[0249] In one embodiment, provided herein is a method for treating BL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0250] In one embodiment, provided herein is a method for preventing BL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0251] In one embodiment, provided herein is a method for treating BL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0252] In one embodiment, provided herein is a method for treating HL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0253] In one embodiment, provided herein is a method for preventing HL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0254] In one embodiment, provided herein is a method for treating HL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0255] In one embodiment, provided herein is a method of treating MZL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the MZL is SMZL.

[0256] In one embodiment, provided herein is a method for preventing MZL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the MZL is SMZL.

[0257] In one embodiment, provided herein is a method for treating MZL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the MZL is SMZL.

[0258] In one embodiment, provided herein is a method for treating MDS, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0259] In one embodiment, provided herein is a method for preventing MDS, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0260] In one embodiment, provided herein is a method for treating MDS, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0261] In one embodiment, provided herein is a method of using a solid form or salt of Compound 1 provided herein, alone or in combination with rituximab, to treat, prevent or manage non-Hodgkin's lymphoma (NHL).

[0262] In one embodiment, provided herein is a method for treating NHL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0263] In one embodiment, provided herein is a method for preventing NHL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0264] In one embodiment, provided herein is a method for treating NHL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0265] In one embodiment, the NHL is DLBCL. In one embodiment, the DLBCL is primary DLBCL. In one embodiment, the DLBCL is activated B-cell-like DLBCL (ABC-DLBCL). In one embodiment, the DLBCL is germinal center B-cell-like DLBCL (GCB-DLBCL). In one embodiment, the DLBCL is unclassified DLBCL. In one embodiment, the DLBCL is primary mediastinal B-cell DLBCL (PMBL DLBCL). In one embodiment, the DLBCL is double-hit DLBCL (DHIT DLBCL), also called cMyc / Bcl-2-mutated DLBCL. In one embodiment, the DLBCL is triple-hit DLBCL (THIT DLBCL), also called cMyc / Bcl2 / Bcl6-rearranged DLBCL.

[0266] In one embodiment, the NHL is follicular lymphoma (FL).

[0267] In one embodiment, the NHL is mantle cell lymphoma (MCL).

[0268] In one embodiment, the NHL is primary central nervous system lymphoma (PCNSL).

[0269] In one embodiment, the NHL is relapsed or refractory NHL. In one embodiment, the NHL is relapsed NHL. In one embodiment, the NHL is refractory NHL.

[0270] In some embodiments, the NHL patient has radiological evidence of disease progression after achieving complete remission (CR). In some embodiments, the NHL patient has achieved less than CR to current systemic therapy incorporating a regimen and has radiological evidence of active disease or disease progression or relapse within 12 months of prior stem cell transplantation (SCT).

[0271] In some embodiments, the NHL patient has failed one or more therapies and is not eligible for other therapies. In some embodiments, the patient has undergone at least one prior therapy and is not suitable for any therapy other than the therapeutic methods described herein. In some embodiments, the patient has relapsed after standard anti-cancer therapy or progressed during treatment.

[0272] In some embodiments, the patient has failed at least one prior treatment, hi some embodiments, the patient has failed at least two prior treatments.

[0273] In one embodiment, the NHL is relapsed or refractory DLBCL. In one embodiment, the DLBCL is relapsed DLBCL. In one embodiment, the DLBCL is refractory DLBCL. In one embodiment, the DLBCL is relapsed / refractory DLBCL. In one embodiment, the DLBCL is refractory to doxorubicin. In one embodiment, the DLBCL is resistant to doxorubicin. In one embodiment, the DLBCL is refractory to one or more of rituximab, cyclophosphamide, doxorubicin, vincristine, prednisone, etoposide, bendamustine, lenalidomide, gemcitabine, dexamethasone, ifosfamide, polatuzumab, or CAR-T.

[0274] In one embodiment, the DLBCL has been treated with two or more prior therapies.

[0275] In one embodiment, the DLBCL is transformed lymphoma. In another embodiment, the DLBCL is not otherwise specified (NOS).

[0276] In one embodiment, the NHL is relapsed or refractory FL. In one embodiment, the FL is relapsed FL. In one embodiment, the FL is refractory FL.

[0277] In one embodiment, the FL has been treated with one or more prior therapies. In one embodiment, the FL has been treated with two or more prior therapies.

[0278] In one embodiment, the NHL is relapsed or refractory MCL. In one embodiment, the MCL is relapsed MCL. In one embodiment, the MCL is refractory MCL.

[0279] In one embodiment, the MCL has been treated with one or more prior therapies. In one embodiment, the MCL has been treated with two or more prior therapies.

[0280] In one embodiment, the NHL is relapsed or refractory PCNSL. In one embodiment, the PCNSL is relapsed PCNSL. In one embodiment, the PCNSL is refractory PCNSL.

[0281] In some embodiments, the NHL is a newly diagnosed NHL. In some embodiments, the NHL is a newly diagnosed diffuse large B-cell lymphoma. In some embodiments, the NHL is a newly diagnosed follicular lymphoma. In some embodiments, the NHL is a newly diagnosed mantle cell lymphoma. In some embodiments, the NHL is a newly diagnosed primary central nervous system lymphoma.

[0282] In certain embodiments, the methods provided herein further comprise administering to the patient a therapeutically effective amount of rituximab.

[0283] In one embodiment, a first therapy provided herein (e.g., an agent such as a solid or salt of Compound 1 provided herein) is administered prior to (e.g., 5 minutes, 15 minutes, 30 minutes, 45 minutes, 1 hour, 2 hours, 4 hours, 6 hours, 12 hours, 24 hours, 48 ​​hours, 72 hours, 96 hours, 1 week, 2 weeks, 3 weeks, 4 weeks, 5 weeks, 6 weeks, 8 weeks, or 12 weeks before) administration of a second therapy (e.g., rituximab) to a patient.

[0284] In one embodiment, a first therapeutic agent provided herein (e.g., a pharmaceutical agent such as a solid or salt of Compound 1 provided herein) is administered simultaneously with administration of a second therapeutic agent (e.g., rituximab) to a patient.

[0285] In one embodiment, a first therapy provided herein (e.g., an agent such as a solid or salt of Compound 1 provided herein) is administered after (e.g., 5 minutes, 15 minutes, 30 minutes, 45 minutes, 1 hour, 2 hours, 4 hours, 6 hours, 12 hours, 24 hours, 48 ​​hours, 72 hours, 96 hours, 1 week, 2 weeks, 3 weeks, 4 weeks, 5 weeks, 6 weeks, 8 weeks, or 12 weeks) administration of a second therapy (e.g., rituximab) to a patient.

[0286] In some embodiments, rituximab is administered according to the local approved label or pharmaceutical manual of preparation, administration, and storage information. In some embodiments, rituximab is administered intravenously. In some embodiments, rituximab is administered subcutaneously. In some embodiments, rituximab is administered via IV injection or IV infusion. In some embodiments, rituximab is administered via IV infusion.

[0287] In some embodiments, rituximab is administered in an amount according to the discretion of the physician. In some embodiments, rituximab is administered once or twice daily. In some embodiments, rituximab is administered at a dose of about 50 to about 1000 mg / m 2 , from about 100 to about 750 mg / m 2 , about 250 to about 500 mg / m2 , about 300 to about 400 mg / m 2 In one embodiment, rituximab is administered at a dose of up to 375 mg / m per day. 2 is administered in an amount of

[0288] In one embodiment, provided herein is a method for treating DLBCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0289] In one embodiment, provided herein is a method for preventing DLBCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method further comprises administering to the patient a therapeutically effective amount of rituximab.

[0290] In another embodiment, provided herein is a method for treating DLBCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method further comprises administering to the patient a therapeutically effective amount of rituximab.

[0291] In one embodiment, provided herein is a method of treating FL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0292] In one embodiment, provided herein is a method for preventing FL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the method further comprises administering to the patient a therapeutically effective amount of rituximab.

[0293] In another embodiment, provided herein is a method for treating FL, comprising administering to a patient in need of such treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method further comprises administering to the patient a therapeutically effective amount of rituximab.

[0294] In one embodiment, provided herein is a method for treating MCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0295] In one embodiment, provided herein is a method for preventing MCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0296] In another embodiment, provided herein is a method of treating MCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0297] In one embodiment, provided herein is a method for treating PCNSL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0298] In one embodiment, provided herein is a method for preventing PCNSL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0299] In another embodiment, provided herein is a method for treating PCNSL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0300] In one embodiment, provided herein is a method for treating relapsed or refractory DLBCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0301] In one embodiment, provided herein is a method for preventing relapsed or refractory DLBCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0302] In another embodiment, provided herein is a method for treating relapsed or refractory DLBCL, comprising administering to a patient in need of such treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0303] In one embodiment, provided herein is a method for treating relapsed or refractory FL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0304] In one embodiment, provided herein is a method for preventing relapsed or refractory FL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method further comprises administering to the patient a therapeutically effective amount of rituximab.

[0305] In another embodiment, provided herein is a method for treating relapsed or refractory FL, comprising administering to a patient in need of such treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method further comprises administering to the patient a therapeutically effective amount of rituximab.

[0306] In one embodiment, provided herein is a method for treating relapsed or refractory MCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0307] In one embodiment, provided herein is a method for preventing relapsed or refractory MCL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0308] In another embodiment, provided herein is a method for treating relapsed or refractory MCL, comprising administering to a patient in need of such treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0309] In one embodiment, provided herein is a method for treating relapsed or refractory PCNSL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0310] In one embodiment, provided herein is a method for preventing relapsed or refractory PCNSL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0311] In another embodiment, provided herein is a method for treating relapsed or refractory PCNSL, comprising administering to a patient in need of such treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of rituximab.

[0312] In another embodiment, provided herein is a method of achieving complete remission, partial remission, or stable disease in a patient with NHL, as determined by Lugano response criteria, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In another embodiment, provided herein is a method of achieving an increase in overall survival, progression-free survival, event-free survival, progression-free survival, or disease-free survival in a patient with NHL, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In another embodiment, provided herein is a method of achieving an increase in overall survival in a patient, as characterized by administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In another embodiment, provided herein is a method of achieving an increase in progression-free survival in a patient with NHL, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In another embodiment, provided herein is a method for achieving increased event-free survival in a patient with NHL, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In another embodiment, provided herein is a method for achieving increased progression-free survival in a patient with NHL, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In another embodiment, provided herein is a method for achieving increased disease-free survival in a patient with NHL, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In one embodiment, the method further comprises administering to the patient a therapeutically effective amount of rituximab.

[0313] In one embodiment, provided herein is a method of using a solid form or salt of Compound 1 provided herein, alone or in combination with obinutuzumab, to treat, prevent or manage chronic lymphocytic leukemia / small lymphocytic lymphoma (CLL / SLL).

[0314] As used herein, and unless otherwise indicated, "CLL / SLL" or "CLL and / or SLL" means CLL, or SLL, or CLL and SLL. In one embodiment, the method provided herein is for treating, preventing, or treating CLL. In one embodiment, the method provided herein is for treating, preventing, or treating SLL. In one embodiment, the method provided herein is for treating, preventing, or treating CLL and SLL.

[0315] In one embodiment, provided herein is a method for treating CLL / SLL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0316] In one embodiment, provided herein is a method for preventing CLL / SLL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0317] In one embodiment, provided herein is a method for treating CLL / SLL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.

[0318] In one embodiment, the CLL / SLL patient has failed one or more therapies. In one embodiment, the patient has failed at least one prior therapy. In one embodiment, the patient has failed at least two prior therapies. In one embodiment, the patient has been previously treated with a Bruton's tyrosine kinase (BTK) inhibitor. In one embodiment, the patient is relapsed or refractory to a BTK inhibitor. In one embodiment, the BTK inhibitor is ibrutinib. In one embodiment, the BTK inhibitor is acalabrutinib. In one embodiment, the BTK inhibitor is zanubrutinib. In one embodiment, the BTK inhibitor is tirabrutinib.

[0319] In one embodiment, the CLL / SLL is newly diagnosed CLL / SLL. In one embodiment, the CLL / SLL is relapsed or refractory CLL / SLL (R / R CLL / SLL).

[0320] In one embodiment, the CLL is characterized by a mutated IGHV (immunoglobulin heavy chain gene). In one embodiment, the CLL is characterized by a non-mutated IGHV.

[0321] In one embodiment, the CLL is characterized by one or more mutations in TP53 (tumor protein 53). In one embodiment, the CLL is characterized by wild-type TP53.

[0322] In one embodiment, the CLL is characterized by one or more chromosomal abnormalities, such as del(13q), del(11q), del(17p), tri12, t(6;17), del(11q22.3), t(11;14), del(18q), and t(14;19). In one embodiment, the CLL is characterized by del(17p).

[0323] In one embodiment, the CLL is characterized by Richter's transformation (also known as Richter's syndrome).

[0324] In one embodiment, the methods provided herein further comprise administering to the patient a therapeutically effective amount of obinutuzumab.

[0325] In one embodiment, a first therapy provided herein (e.g., an agent such as a solid or salt of Compound 1 provided herein) is administered prior to (e.g., 5 minutes, 15 minutes, 30 minutes, 45 minutes, 1 hour, 2 hours, 4 hours, 6 hours, 12 hours, 24 hours, 48 ​​hours, 72 hours, 96 hours, 120 hours, 144 hours, 1 week, 2 weeks, 3 weeks, 4 weeks, 5 weeks, 6 weeks, 8 weeks, or 12 weeks prior to) administration of a second therapy (e.g., obinutuzumab) to a patient.

[0326] In one embodiment, a first therapeutic agent provided herein (e.g., a pharmaceutical agent such as a solid or salt of Compound 1 provided herein) is administered simultaneously with administration of a second therapeutic agent (e.g., obinutuzumab) to a patient.

[0327] In one embodiment, a first therapy provided herein (e.g., an agent such as a solid or salt of Compound 1 provided herein) is administered after (e.g., 5 minutes, 15 minutes, 30 minutes, 45 minutes, 1 hour, 2 hours, 4 hours, 6 hours, 12 hours, 24 hours, 48 ​​hours, 72 hours, 96 hours, 120 hours, 144 hours, 1 week, 2 weeks, 3 weeks, 4 weeks, 5 weeks, 6 weeks, 8 weeks, or 12 weeks after) administration of a second therapy (e.g., obinutuzumab) to a patient.

[0328] In one embodiment, obinutuzumab is administered according to the locally approved label or pharmaceutical manual of preparation, administration, and storage information. In one embodiment, obinutuzumab is administered intravenously. In one embodiment, obinutuzumab is administered subcutaneously. In one embodiment, obinutuzumab is administered via intravenous (IV) injection or IV infusion. In one embodiment, obinutuzumab is administered via IV injection. In one embodiment, obinutuzumab is administered via IV infusion.

[0329] In one embodiment, obinutuzumab is administered in an amount according to the physician's judgment. In one embodiment, obinutuzumab is administered once a day. In one embodiment, obinutuzumab is administered in a dose of about 75 mg to about 1100 mg per day. In one embodiment, obinutuzumab is administered in a dose of about 75 mg to about 125 mg per day, about 800 mg to about 1000 mg per day, or about 900 mg to about 1100 mg per day. In one embodiment, obinutuzumab is administered in a dose of about 100 mg per day. In one embodiment, obinutuzumab is administered in a dose of about 900 mg per day. In one embodiment, obinutuzumab is administered in a dose of about 1000 mg per day. In one embodiment, obinutuzumab is administered at a dose of about 100 mg on day 1 of the first 28-day cycle, about 900 mg on day 2 of the first 28-day cycle, and about 1000 mg on each of days 8 and 15 of the first 28-day cycle and day 1 of the second through sixth 28-day cycles. In one embodiment, obinutuzumab is administered at a dose of about 1000 mg on days 1 and 2 of the first 28-day cycle in combination, and about 1000 mg on each of days 8 and 15 of the first 28-day cycle and day 1 of the second through sixth 28-day cycles. Obinutuzumab may be administered beyond the sixth cycle. In one embodiment, obinutuzumab is administered in the first 28-day cycle as described herein, and about 1000 mg on day 1 of the second through twelfth 28-day cycles. In one embodiment, obinutuzumab is administered at about 1000 mg for a first 28 day cycle as described herein, as well as on day 1 of the second through twenty-fourth 28 day cycles. In one embodiment, obinutuzumab is administered at about 1000 mg for a first 28 day cycle as described herein, as well as on day 1 of subsequent 28 day cycles until disease progression.

[0330] In one embodiment, provided herein is a method for treating newly diagnosed CLL / SLL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of obinutuzumab.

[0331] In one embodiment, provided herein is a method for preventing newly diagnosed CLL / SLL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of obinutuzumab.

[0332] In another embodiment, provided herein is a method for treating newly diagnosed CLL / SLL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method further comprises administering to the patient a therapeutically effective amount of obinutuzumab.

[0333] In one embodiment, provided herein is a method for treating relapsed or refractory CLL / SLL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of obinutuzumab.

[0334] In one embodiment, provided herein is a method for preventing relapsed or refractory CLL / SLL, comprising administering to a patient in need of treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of obinutuzumab.

[0335] In another embodiment, provided herein is a method for treating relapsed or refractory CLL / SLL, comprising administering to a patient in need of such treatment a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of obinutuzumab.

[0336] In another embodiment, provided herein is a method of achieving complete remission, partial remission, or stable disease in a patient with CLL / SLL, comprising administering to the patient a therapeutically effective amount of a solid or salt of Compound 1 provided herein, as determined by the International Workshop on Chronic Lymphocytic Leukemia Criteria. In one embodiment, minimal residual disease (MRD) detection may be performed on patients undergoing bone marrow examination for confirmation of complete remission (CR). In one embodiment, provided herein is a method of achieving minimal residual disease (MRD) negativity in a patient with CLL / SLL, comprising administering to the patient a therapeutically effective amount of a solid or salt of Compound 1 provided herein. In one embodiment, the MRD negativity is measured in peripheral blood and / or bone marrow. In one embodiment, the MRD negativity continues for at least 3 months. In another embodiment, provided herein is a method for achieving an increase in overall survival, progression-free survival, event-free survival, progression-free or disease-free survival in a patient with CLL / SLL, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In another embodiment, provided herein is a method for achieving an increase in overall survival in a patient with CLL / SLL, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In another embodiment, provided herein is a method for achieving an increase in progression-free survival in a patient with CLL / SLL, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In another embodiment, provided herein is a method for achieving an increase in event-free survival in a patient with CLL / SLL, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein. In another embodiment, provided herein is a method for achieving an increase in time to progression in a patient having CLL / SLL, comprising administering to the patient a therapeutically effective amount of a solid form or salt of Compound 1 provided herein.In another embodiment, provided herein is a method of achieving increased disease-free survival in a patient having CLL / SLL, comprising administering to the patient a therapeutically effective amount of a solid or salt form of Compound 1 provided herein. In one embodiment, the method is further characterized by administering to the patient a therapeutically effective amount of obinutuzumab.

[0337] The methods provided herein encompass treating patients regardless of their age. In some embodiments, the patient is 18 years of age or older. In other embodiments, the patient is 18, 25, 35, 40, 45, 50, 55, 60, 65, or 70 years of age or older. In other embodiments, the patient is under 65 years of age. In other embodiments, the patient is 65 years of age or older.

[0338] Also provided herein is a solid form or salt of Compound 1 for use in a method of treating a disease provided herein, the method comprising administering to a patient a therapeutically effective amount of the solid form or salt of Compound 1. Also provided herein is a pharmaceutical composition comprising the solid form or salt of Compound 1 for use in a method of treating a disease provided herein.

[0339] 4. Pharmaceutical Compositions and Routes of Administration The solid or salt form of Compound 1 provided herein may be administered orally, topically or parenterally to a patient in the form of a conventional formulation, such as capsules, microcapsules, tablets, granules, powders, troches, pills, suppositories, injections, suspensions, syrups, patches, creams, lotions, ointments, gels, sprays, solutions and emulsions. Suitable formulations may contain a diluent (e.g., sucrose, starch, mannitol, sorbitol, lactose, glucose, cellulose, talc, calcium phosphate or calcium carbonate), a binder (e.g., cellulose, methylcellulose, hydroxymethylcellulose, polypropylpyrrolidone, polyvinylpyrrolidone, gelatin, gum arabic, polyethylene glycol, sucrose or starch), a disintegrant (e.g., starch, carboxymethylcellulose, hydroxypropyl starch, low-substituted hydroxypropylcellulose, sodium bicarbonate, calcium phosphate or calcium citrate), a lubricant (e.g., magnesium stearate, light It can be prepared by a commonly used method using conventional organic or inorganic additives such as silicic anhydride, talc or sodium lauryl sulfate), flavoring agent (e.g., citric acid, menthol, glycine or orange powder), preservative (e.g., sodium benzoate, sodium bisulfite, methylparaben or propylparaben), stabilizer (e.g., citric acid, sodium citrate or acetic acid), suspending agent (e.g., methylcellulose, polyvinylpyrrolidone or aluminum stearate), dispersing agent (e.g., hydroxypropylmethylcellulose), water, and base wax (e.g., cocoa butter, white petrolatum or polyethylene glycol). The effective amount of the compound in the pharmaceutical composition can be at a level that will exert the desired effect for both oral and parenteral administration.

[0340] The solid form or salt of Compound 1 provided herein can be administered orally. In one embodiment, when administered orally, the solid form or salt of Compound 1 provided herein is administered with food and water. In another embodiment, the solid form or salt of Compound 1 provided herein is dispersed in water or juice (e.g., apple juice or orange juice) and administered orally as a solution or suspension.

[0341] The solid form or salt of Compound 1 provided herein may also be administered intradermally, intramuscularly, intraperitoneally, percutaneously, intravenously, subcutaneously, intranasally, epidurally, sublingually, intracerebrally, intravaginally, transdermally, rectally, mucosally, by inhalation, or topically to the ear, nose, eye, or skin. The method of administration is left to the discretion of the medical practitioner and may depend, in part, on the site of the physical illness.

[0342] In one embodiment, provided herein is a capsule comprising a solid form or salt of Compound 1 provided herein without additional excipients. In another embodiment, provided herein is a composition comprising an effective amount of a solid form or salt of Compound 1 provided herein and a pharma- ceutically acceptable excipient, which may comprise a diluent, binder, disintegrant, glidant, lubricant, or mixtures thereof. In one embodiment, the composition is a pharmaceutical composition.

[0343] The compositions may take the form of tablets, chewable tablets, capsules, solutions, parenteral solutions, troches, suppositories, and suspensions, and the like. The compositions may be formulated to contain a daily dose, or a convenient portion of a daily dose, in dosage units, which may be a single tablet or capsule or a convenient liquid volume. In one embodiment, the solutions are prepared from water-soluble salts. In general, all of the compositions are prepared according to known methods in pharmaceutical chemistry. Capsules may be prepared by mixing the solid form or salt of Compound 1 provided herein with suitable excipients and filling the appropriate amount of the mixture into capsules. The common excipients include, but are not limited to, inert powdered substances such as many different types of starch, powdered cellulose, especially crystalline and microcrystalline cellulose, sugars such as fructose, mannitol, and sucrose, wheat flour, and similar edible powders. Capsule fills may also be prepared by wet or dry granulation.

[0344] Lubricants may be necessary for capsule formation to prevent the powder from sticking to the pin. The lubricants may be selected from slippery solids such as talc, magnesium and calcium stearates, sodium stearyl fumarate, stearic acid and hydrogenated vegetable oils. Disintegrants are substances that swell when wet and disintegrate the capsule slugs, releasing the compound. They include starch, clay, cellulose, crospovidone, croscarmellose sodium, sodium starch glycolate, algins and gums. More specifically, for example, corn and potato starch, methylcellulose, agar, bentonite, wood cellulose, powdered natural sponge, cation exchange resins, alginic acid, guar gum, citrus pulp and carboxymethylcellulose may be used, as well as sodium lauryl sulfate. Glidants may also be used and include silicon dioxide, talc, and calcium silicate.

[0345] Tablets can be prepared by direct compression, wet granulation, or dry granulation. Their preparations usually incorporate not only the compound but also diluents, binders, lubricants and disintegrants. Typical diluents include, for example, various types of starch, lactose, mannitol, kaolin, calcium phosphate or sulfate, inorganic salts such as sodium chloride, and powdered sugar. Powdered cellulose derivatives are also useful. Typical tablet binders are substances such as starch, gelatin, and sugars such as lactose, fructose, glucose, and the like. Natural and synthetic gums are also convenient, including acacia, alginate, methylcellulose, polyvinylpyrrolidine, and the like. Polyethylene glycol, ethylcellulose, and waxes can also serve as binders.

[0346] Lubricants may be necessary for tableting to prevent the tablet and punch from sticking in the die. The lubricants may be selected from slippery solids such as talc, magnesium and calcium stearates, sodium stearyl fumarate, stearic acid and hydrogenated vegetable oils. Tablet disintegrants are substances that swell when wet and disintegrate the tablet, releasing the compound. They include starch, clay, cellulose, crospovidone, croscarmellose sodium, sodium starch glycolate, algins and gums. More specifically, for example, corn and potato starch, methylcellulose, agar, bentonite, wood cellulose, powdered natural sponge, cation exchange resins, alginic acid, guar gum, citrus pulp and carboxymethylcellulose may be used, as well as sodium lauryl sulfate. Glidants may also be used and include silicon dioxide, talc, and calcium silicate. Tablets may be coated with sugars as flavorings and sealants, or with film-forming protective agents to modify the dissolution properties of the tablet. The compositions may also be formulated as chewable tablets, for example, by using materials such as mannitol in the formulation.

[0347] When it is desired to administer the solid or salt of Compound 1 provided herein as suppository, typical base can be used.Cocoa butter is the traditional suppository base, and can be modified by adding wax to slightly increase its melting point.In particular, the water-miscible suppository base, which comprises polyethylene glycols of various molecular weights, is widely used.

[0348] The effect of the solid or salt of Compound 1 provided herein can be delayed or extended by suitable formulation. For example, the slowly dissolving pellets of the solid or salt of Compound 1 provided herein can be prepared and incorporated into tablets or capsules, or as a sustained release implantable device. The techniques include making pellets with various different dissolution rates and filling capsules with a mixture of the pellets. Tablets or capsules can be coated with a film that resists dissolution for a predictable period of time. Even the parenteral formulation can be made long-acting by dissolving or suspending the solid or salt of Compound 1 provided herein in an oily or emulsifying vehicle that allows it to disperse slowly in serum.

[0349] Depending on the disease state to be treated and the condition of the patient, the solid form or salt of Compound 1 provided herein may be administered by oral, parenteral (e.g., intramuscular, intraperitoneal, intravenous, CIV, intracisternal injection or infusion, subcutaneous injection, or implant), inhalation, nasal, vaginal, rectal, sublingual, or topical (e.g., transdermal or local) administration route. The solid form or salt of Compound 1 provided herein may be formulated into an appropriate dosage unit alone or with pharma- ceutically acceptable excipients, carriers, adjuvants, and vehicles suitable for each administration route.

[0350] In one embodiment, a solid form or salt of Compound 1 provided herein is administered orally. In another embodiment, a solid form or salt of Compound 1 provided herein is administered parenterally. In yet another embodiment, a solid form or salt of Compound 1 provided herein is administered intravenously.

[0351] The solid form or salt of Compound 1 provided herein can be delivered as a single dose, for example, a single bolus injection, or an oral capsule, tablet or pill; or over time, for example, by continuous infusion over time or divided bolus doses over time. The solid form or salt of Compound 1 provided herein can be administered repeatedly if necessary, for example, until the patient experiences stable disease or regression, or until the patient experiences disease progression or unacceptable toxicity.

[0352] The solid form or salt of Compound 1 provided herein may be administered once a day (QD) or divided into multiple daily doses, such as twice a day (BID), three times a day (TID), and four times a day (QID). Furthermore, the administration may be continuous (i.e., every day or every day for consecutive days), intermittent, e.g., cyclic (i.e., with drug-free rest for days, weeks, or months). As used herein, the term "daily" is intended to mean that the therapeutic compound, such as the solid form or salt of Compound 1 provided herein, is administered, for example, once or more than once every day for a period of time. The term "continuous" is intended to mean that the therapeutic compound, such as the solid form or salt of Compound 1 provided herein, is administered every day for an uninterrupted period of at least 7 days to 52 weeks. As used herein, the term "intermittent" or "intermittently" is intended to mean to stop and start at either regular or irregular intervals. For example, intermittent administration of a solid form or salt of Compound 1 provided herein is administration for 1 to 6 days per week, cyclic administration (e.g., daily administration for 2 to 8 consecutive weeks followed by a rest period of up to 1 week without administration), or administration every other day. As used herein, the term "cycling" is intended to mean that a therapeutic compound, such as a solid form or salt of Compound 1 provided herein, is administered daily or continuously, but with a rest period.

[0353] In some embodiments, the frequency of administration is within the range of about once a day to about once a month. In some embodiments, administration is once a day, twice a day, three times a day, four times a day, once every other day, twice a week, once a week, once every two weeks, once every three weeks, or once every four weeks. In one embodiment, the solid form or salt of Compound 1 provided herein is administered once a day. In another embodiment, the solid form or salt of Compound 1 provided herein is administered twice a day. In yet another embodiment, the solid form or salt of Compound 1 provided herein is administered three times a day. In yet another embodiment, the solid form or salt of Compound 1 provided herein is administered four times a day.

[0354] In one embodiment, the methods provided herein comprise administration of a therapeutically effective amount of a solid form or salt of Compound 1 provided herein on one or more 7-day treatment cycles. In another embodiment, the methods provided herein comprise administration of a therapeutically effective amount of a solid form or salt of Compound 1 provided herein on days 1 through 5 of a 7-day cycle. In another embodiment, the methods provided herein comprise administration of a therapeutically effective amount of a solid form or salt of Compound 1 provided herein on days 1 through 3 of a 7-day cycle.

[0355] In one embodiment, the methods provided herein comprise administration of a therapeutically effective amount of a solid form or salt of Compound 1 provided herein on one or more 14-day treatment cycles. In another embodiment, the methods provided herein comprise administration of a therapeutically effective amount of a solid form or salt of Compound 1 provided herein on days 1 through 7 of a 14-day cycle. In another embodiment, the methods provided herein comprise administration of a therapeutically effective amount of a solid form or salt of Compound 1 provided herein on days 1 through 10 of a 14-day cycle.

[0356] In one embodiment, the methods provided herein include administration of a therapeutically effective amount of a solid form or salt of Compound 1 provided herein on one or more 28-day treatment cycles. In another embodiment, the methods provided herein include administration of a therapeutically effective amount of a solid form or salt of Compound 1 provided herein on days 1 to 21 of a 28-day cycle. In another embodiment, the methods provided herein include administration of a therapeutically effective amount of a solid form or salt of Compound 1 provided herein on days 1 to 5, days 8 to 12, days 15 to 19, and days 22 to 26 of a 28-day cycle. In another embodiment, the methods provided herein include administration of a therapeutically effective amount of a solid form or salt of Compound 1 provided herein on days 1 to 10 and days 15 to 24 of a 28-day cycle.

[0357] In one embodiment, the solid form or salt of Compound 1 provided herein is administered once daily for 5 days, followed by 2 days of rest. In one embodiment, the solid form or salt of Compound 1 provided herein is administered once daily for 3 days, followed by 4 days of rest. In one embodiment, the solid form or salt of Compound 1 provided herein is administered once daily for 7 days, followed by 7 days of rest. In one embodiment, the solid form or salt of Compound 1 provided herein is administered once daily for 10 days, followed by 4 days of rest. In one embodiment, the solid form or salt of Compound 1 provided herein is administered once daily for 21 days, followed by 7 days of rest.

[0358] In one embodiment, the treatment comprises administering a therapeutically effective amount of rituximab in one or more treatment cycles. In one embodiment, rituximab is administered once every 7 days. In one embodiment, rituximab is administered once every 4 weeks. In one embodiment, rituximab is administered once every 8 weeks. In one embodiment, rituximab is administered on days 1, 8, 15, and 22 of the first 28-day cycle, and on days 1 of the second through sixth 28-day cycles, and once every 8 weeks thereafter.

[0359] In one embodiment, the treatment comprises administration of a therapeutically effective amount of obinutuzumab in one or more treatment cycles. In one embodiment, obinutuzumab is administered once every 7 days. In one embodiment, obinutuzumab is administered once a week. In one embodiment, obinutuzumab is administered once every 4 weeks. In one embodiment, obinutuzumab is administered on days 1, 2, 8, and 15 of the first 28 day cycle and on day 1 of the second through sixth 28 day cycles. In one embodiment, obinutuzumab is administered on day 1 of the second through twelfth 28 day cycles. In one embodiment, obinutuzumab is administered on day 1 of the second through twenty-fourth 28 day cycles. In one embodiment, obinutuzumab is administered on day 1 of subsequent 28 day cycles until disease progression.

[0360] In one embodiment, obinutuzumab is administered at a dose of about 100 mg on day 1 of the first 28 day cycle, about 900 mg on day 2 of the first 28 day cycle, and about 1000 mg on each of days 8 and 15 of the first 28 day cycle. In one embodiment, obinutuzumab is administered at a dose of about 1000 mg on days 1 and 2 of the first 28 day cycle, and about 1000 mg on each of days 8 and 15 of the first 28 day cycle. In one embodiment, obinutuzumab is administered at a dose of about 1000 mg on day 1 of the second through sixth 28 day cycles. In one embodiment, obinutuzumab is administered at a dose of about 1000 mg on day 1 of the second through twelfth 28 day cycles. In one embodiment, obinutuzumab is administered at about 1000 mg on day 1 of the second through twenty-fourth 28 day cycles. In one embodiment, obinutuzumab is administered at about 1000 mg on day 1 of subsequent 28 day cycles until disease progression.

[0361] Any treatment cycle described herein can be repeated for at least 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30 or more cycles. In some cases, the treatment cycle as described herein comprises 1 to about 24 cycles, about 2 to about 16 cycles, or about 2 to about 4 cycles. In some embodiments, the therapeutically effective amount of the solid body or salt of Compound 1 provided herein and / or rituximab is administered for 1 to 13 cycles (about 1 year), with each cycle being 28 days. In some embodiments, a therapeutically effective amount of a solid body or a salt of Compound 1 provided herein and / or rituximab is administered for 1 to 24 cycles (about 2 years) with each cycle being 28 days. In some embodiments, a therapeutically effective amount of a solid body or a salt of Compound 1 provided herein and / or obinutuzumab is administered for 1 to 13 cycles (about 1 year) with each cycle being 28 days. In some embodiments, a therapeutically effective amount of a solid body or a salt of Compound 1 provided herein and / or obinutuzumab is administered for 1 to 24 cycles (about 2 years) with each cycle being 28 days. In some cases, the cyclical therapy is not limited to the number of cycles, and the therapy is continued until disease progression. A cycle may include various administration periods and / or rest periods, as described herein. EXAMPLES

[0362] Certain embodiments of the invention are illustrated by the following non-limiting examples. [Table 8]

[0363] 1. Synthesis of (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-((3-morpholinoazetidin-1-yl)methyl)benzyl)amino)isoindoline-1,3-dione (Compound 1) [ka] (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-(hydroxymethyl)benzyl)amino)isoindoline-1,3-dione A suspension of (S)-4-amino-2-(2,6-dioxopiperidin-3-yl)isoindoline-1,3-dione (5.00 g, 18.3 mmol) and 2-fluoro-4-(hydroxymethyl)benzaldehyde (2.82 g, 18.30 mmol) in 2:1 dioxane-MeOH (75 mL) was cooled to 0 °C and B 10 H 14 (4.92 g, 40.3 mmol) was added in small portions over 5 min. The reaction flask was fitted with a septum and needle vent (pressurized) and stirred vigorously for 10 min. The mixture was allowed to reach ambient temperature and stirred for 3 h. The mixture was concentrated and the residue was purified by silica gel chromatography (0-10% MeOH-DCM) to afford (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-(hydroxymethyl)benzyl)amino)isoindoline-1,3-dione as a yellow solid (4.23 g, 56%). LCMS (ESI) m / z 411.8 [M+H] +

[0364] (S)-4-((4-(chloromethyl)-2-fluorobenzyl)amino)-2-(2,6-dioxopiperidin-3-yl)isoindoline-1,3-dioneA solution of (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-(hydroxymethyl)benzyl)amino)isoindoline-1,3-dione (0.727 g, 1.77 mmol) in dry NMP (6 mL) was cooled to 0° C. and methanesulfonyl chloride (0.275 mL, 3.35 mmol) and DIEA (0.617 mL, 3.53 mmol) were added successively. The reaction mixture was allowed to reach ambient temperature and stirred for 18 h. With vigorous mixing, the reaction mixture was slowly added to HO (60 mL) cooled to 0° C. The resulting suspension was filtered and the collected solid was washed with HO and EtO. The solid was dissolved in EtOAc and the solution was dried over MgSO4, filtered and concentrated to give (S)-4-((4-(chloromethyl)-2-fluorobenzyl)amino)-2-(2,6-dioxopiperidin-3-yl)isoindoline-1,3-dione as a yellow solid (0.600 g, 79%). LCMS (ESI) m / z 430.0 [M+H] +

[0365] (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-((3-morpholinoazetidin-1-yl)methyl)benzyl)amino)isoindoline-1,3-dione To a solution of (S)-4-((4-(chloromethyl)-2-fluorobenzyl)amino)-2-(2,6-dioxopiperidin-3-yl)isoindoline-1,3-dione (300 mg, 0.698 mmol) in dry DMSO (1.0 mL) was added 4-(azetidin-3-yl)morpholine hydrochloride (125 mg, 0.698 mmol) and DIEA (0.122 mL, 0.698 mmol). The reaction mixture was stirred at ambient temperature for 18 hours and diluted with DMSO (1 mL). The solution was purified by chiral reverse phase chromatography to give (S)-2-(2,6-dioxopiperidin-3-yl)-4-((2-fluoro-4-((3-morpholinoazetidin-1-yl)methyl)benzyl)amino)isoindoline-1,3-dione (89 mg, 24%, 97% ee). LCMS (ESI) m / z 536.2 [M+H] +

[0366] 2. Cellular Assays with Compound 1 Below are examples of cellular assays that can be used to measure the anti-proliferative activity and apoptotic effects of Compound 1 using representative non-Hodgkin's lymphoma (NHL) cell lines.

[0367] Cell proliferation and viability assays using the SU-DHL-4 cell line The following representative assay uses DLBCL cell lines, such as the SU-DHL-4 cell line (Deutsche Sammlung von Mikroorganismen und Zellkulturen GmbH [DSMZ]: Catalog No. ACC-495) 120 hours after treatment. The seeding density of SU-DHL-4 can be optimized to ensure assay linearity in 1536-well plates.

[0368] Increasing concentrations of compound 1 (0.5 nM to 10 μM) were dispensed into empty 1536-well plates in a 20-point dilution format (unequally spaced data points) by an acoustic dispenser (EDC ATS-100). The DMSO concentration was kept constant to give a final assay concentration of 0.1% DMSO. Prior to the experiment, SU-DHL-4 cells were cultured in RPMI-1640 (Roswell Park Memorial Institute-1640) medium with 10% FBS (fetal bovine serum: HyClone) and grown in culture flasks to obtain sufficient starting material. Cells were then diluted to 500 cells in a 5 μL volume per well and added directly to the compound-dispensed 1536-well plates. Cells were grown for 120 hours at 37°C in 5% CO2. When the cells began to be exposed to the compounds (t0), the initial viable cell number was assessed by quantifying the level of luminescence produced by adenosine-5'-triphosphate (ATP) present in viable cells through the Cell Titer-Glo® luminescent cell viability assay at a ratio of 1 vol:2 vol according to the manufacturer's instructions (Promega Corporation, Madison, WI). After 120 hours, the cell viability of treated cells was assessed by Cell Titer-Glo® and luminescence readings. All growth inhibition curves were processed and evaluated using Activity Base (IDBS, Alameda, CA). A four-parameter logistic model (sigmoidal dose-response model): y=(A+((BA) / (1+((C / x)^D)))) During the ceremony: A=Y Min B=Y Max C=EC 50 D=Hill slope I C 50 = the concentration of compound at which Y is equal to 50% of the DMSO control Y = cell viability measured as luminescence units, and x = concentration of compound Cell viability using IC50 values ​​were calculated.

[0369] Compound 1 showed an IC 50 It was found to have an activity of <0.2 μM.

[0370] Cell proliferation and viability assays using hematological cell lines The following representative anti-proliferative assays use the following representative hematological cell lines: A 384-well flow cytometry assay was used to evaluate the in vitro growth inhibitory activity of Compound 1 described herein. [Table 9] [Table 10] ABC = activated B cell-like; FBS = fetal bovine serum; GCB = germinal center B cells; IMDM = Iscove's modified Dulbecco's medium; NEAA = non-essential amino acids; RPMI = RPMI 1640

[0371] The cell lines were seeded in 384-well flat-bottom plates and evaluated with different compound concentrations ranging from 0.00015 to 10 μM or dimethyl sulfoxide (DMSO) control. The final concentration of DMSO was 0.1% (v / v). After addition of compound 1 or DMSO and incubation for 120 hours, cell number and cell death were analyzed by flow cytometry (Attune®, Thermo Fisher) using Annexin V and the live cell impermeant DNA dye, DRAQ7. Phosphatidylserine translocates from the inner to the outer layer of the cell membrane early in apoptosis, and Annexin V binds to the exposed phosphatidylserine found on the surface of apoptotic cells. The vital dye DRAQ7 is excluded by intact live cells and stains only cells that are dead as a result of apoptosis or necrosis.

[0372] Flow cytometry data analysis was then performed using Flow Jo_v10 software to determine the number of live cells (Annexin V and DRAQ7 double negative stained cells) and the percentage of apoptotic cells (Annexin V positive cells) for each condition. The number of live cells at each concentration was normalized to the DMSO control (considered as 100%) to calculate the percentage of live cells remaining after treatment and graphed using GraphPad Prism 7.03. IC values ​​were calculated by nonlinear regression curve fitting using log(inhibitor) vs. normalized response-variable slope analysis in GraphPad Prism 7.03. 50 (50% inhibitory concentration) and E max (maximum efficacy achieved) values ​​were then calculated. Area under the curve (AUC) was calculated by performing area under the curve analysis in GraphPad Prism 7.03. Similarly, for apoptosis analysis, the percentage of apoptosis combining both "early" (Annexin V positive and DRAQ7 negative) and "late" apoptotic (Annexin V and DRAQ7 positive) cell gates compared to DMSO was graphed using GraphPad Prism 7.03. AUC, EC from apoptosis curves were calculated by performing area under the curve analysis and nonlinear regression curve fitting using log(agonist) vs. normalized response-variable slope analysis in GraphPad Prism 7.03. 50 (the concentration of compound that elicits a half-maximal apoptotic response) and Y max (maximal percentage of apoptosis achieved) values ​​were calculated.

[0373] Dose-response growth curves for a panel of hematological cell lines and nonlinear curve-fit regression were used to determine IC for percent viable cells. 50 , AUC and E max (E max The EC50 / EC50 concentration (which varies between 100 at low doses and 0 at high doses, which correspond to inhibition of all viable cells) was determined and a dose-response apoptosis curve was used to calculate the EC50 / EC50 concentration for percent apoptosis. 50 , AUC, and Y max (Y for apoptosis maxThe cell viability and apoptosis were determined (varying from 0 at low doses to 100 at higher doses, corresponding to total cell death). Tumor cells were exposed to serial dilutions of compound 1 (0.00015 to 10 μM) or dimethyl sulfoxide (DMSO) control for 5 days. Viability and apoptosis were determined for all cell lines by Annexin V / 7-aminoactinomycin D (7-AAD) flow cytometry. As shown in the table below, compound 1 was found to have antiproliferative activity and / or apoptotic effects in almost all hematological cell lines examined. [Table 11] [Table 12] AUC = area under the curve; IC50 = 50% inhibitory concentration (μM); Emax = maximum efficacy of tumor cell elimination achieved, expressed as percentage of remaining tumor cells; EC50 = compound concentration eliciting half-maximal apoptotic response (μM); Ymax = calculated percentage of control at the highest concentration of compound 1.

[0374] 3.Analysis method Typical measurement conditions are provided below:

[0375] X-ray Powder Diffraction (XRPD) The Rigaku Smart-Lab X-ray diffraction system was set up in a reflected Bragg-Brentano configuration with a linear X-ray beam. The X-ray source was a Cu Long Fine Focus tube operated at 40 kv and 44 ma. The X-ray source provided an incident beam profile to the sample that varied from a narrow line at high angles to a wide rectangle at low angles. Beam shaping slits were used on the X-ray source to ensure that the maximum beam size was less than 10 mm both along the X-ray and perpendicular to the X-ray. The Bragg-Brentano configuration is a parallel focusing type controlled by passive divergence and receiving slits, with the sample itself acting as the focusing optic. The inherent resolution of the Bragg-Brentano configuration is determined in part by the diffractometer radius and the width of the receiving slit used. Typically, the Rigaku Smart-Lab is operated to provide peak widths of 0.1° 2θ or less. The axial divergence of the X-ray beam is controlled by 5.0° Soller slits in both the incident and diffracted beam paths.

[0376] Powder samples were prepared in a low background Si holder by gentle hand pressing to keep the sample surface flat and flush with the reference plane of the sample holder. Each sample was analyzed from 2 to 40°2θ using a continuous scan of 6°2θ per minute with an effective step size of 0.02°2θ.

[0377] Differential Scanning Calorimetry (DSC) DSC analyses were performed using a TA Instruments Q2000 instrument. The instrument was temperature calibrated using indium. The DSC cell was kept under a nitrogen purge of approximately 50 mL / min throughout each analysis. Samples were placed in standard crimped aluminum pans and heated from 25°C to 350°C at a rate of 10°C / min.

[0378] Thermogravimetric (TG) analysis TG analysis was performed using a TA Instruments Q50 instrument. The balance of the instrument was calibrated using M-class weights and temperature calibration was performed using Alumel. The nitrogen purge was approximately 40 mL / min during balance and 60 mL / min in the furnace. Each sample was placed in a pre-tared platinum pan and heated from 20°C to 350°C at a rate of 10°C / min.

[0379] Infrared (IR) Spectroscopy IR spectra were obtained on a Nicolet 6700 FT-IR system. Samples were analyzed using a Nicolet SMART iTR attenuated total reflectance instrument.

[0380] Raman spectroscopy Fourier transform (FT) Raman spectra were obtained on a Nicolet 6700 spectrometer connected to a Nexus Raman accessory module. The instrument consists of a Nd:YAG laser operating at 1024 nm, a CaF2 beam splitter, and an indium gallium arsenide detector. OMNIC software was used to control data collection and process the spectra. Samples were packed into analytical 3-inch glass NMR tubes.

[0381] Nuclear magnetic resonance (NMR) spectroscopy A Bruker DRX-500 spectrometer at Purdue University's Department of Chemistry 1 H NMR spectra were obtained. Samples were prepared by dissolving the material in DMSO-d6. The solutions were filtered and the samples were placed in their respective 5 mm NMR tubes for subsequent spectral acquisition. Temperature-controlled (298 K) spectra were obtained on a DRX-500. 1 1 H NMR spectra utilized a 5 mm cryoprobe operating at an observation frequency of 499.89 MHz.

[0382] DVS analysis Dynamic water vapor sorption (DVS) was measured using DVS Advantage (Surface Measurement Systems, Inc.). Samples were analyzed in step mode under the isotherm (25°C) with a full cycle of target RH ranging from 0 to 95%. For the isotherm test, the chamber temperature is maintained at a constant temperature of 25.0 ± 1.0°C with a water bath. Relative humidity in the sample chamber is generated by mixing different flows of humid and dry nitrogen with variable flow rates. Analysis was performed with 10% RH increments. The sampling rate is 1 s and the data storage rate is 20 s. The dm / dt window was set at 5 min, minimum stability duration at 10 min, and maximum stage time at 180 min with dm / dt(%) value at 0.001. The equilibrium weight of the sample corresponding to each RH was recorded. The sorption isotherm was obtained by plotting the equilibrium moisture content against RH.

[0383] 4. Free Base Polymorphism Screening A batch of Compound 1 free base starting material was characterized. XRPD showed it to be amorphous. TGA showed a 7.3% weight loss below 200° C. DSC showed several small endotherms below 150° C. A representative XRPD pattern of amorphous Compound 1 free base is shown in FIG. 20.

[0384] Compound 1 free base starting material was mixed with various solvents under various conditions to yield crystalline material, the results are shown in the table below. [Table 13] [Table 14] [Table 15] [Table 16] a.AS=antisolvent;E=evaporation;NC=non-crystallization;RT=room temperature b. NC = non-crystalline, LC = low crystallinity, pk = peak

[0385] Two unique XRPD patterns were identified and designated as Form A and Form B, respectively, of the free base of Compound 1. The two forms were analyzed by XRPD, DSC, TG, and NMR. The data are summarized in the table below. [Table 17]

[0386] 5. Salt Screening Number 1 Compound 1 free base starting material was mixed with various counterions under various conditions to generate crystalline salts. Approximately 15 different counterions were used in the salt screen, and the results are shown in the table below. [Table 18] [Table 19] [Table 20] a. AS=antisolvent; P=precipitation; RT=room temperature; S / AS=solvent / antisolvent; SL=slurrying; G=grinding; C=cooling; E=evaporation b. NC = non-crystalline, LC = low crystallinity; pk = peak; A, B etc = types

[0387] Several materials were identified that exhibited XRPD patterns indicative of new phase formation, i.e., the patterns contained peaks that could not be attributed to either Compound 1 free base or the acids used. The acids used in these experiments were fumaric acid, hydrochloric acid, maleic acid, and p-toluenesulfonic acid.

[0388] All samples with XRPD patterns suggesting new phase formation were analyzed by DSC, TG, and NMR, and the results are summarized in the table below. [Table 21]

[0389] 6. Salt Screening Number 2 A set of compound 1 free base was characterized by XRPD, TGA, DSC, and DVS. XRPD confirmed it to be amorphous. TGA showed several weight loss steps below 200 °C before decomposition. Dynamic vapor sorption (DVS) experiments revealed that compound 1 amorphous free base was relatively hygroscopic below 75% RH. The free base slowly and steadily took up moisture (~6.0% wt) from dry up to 90% RH. During desorption, the moisture content slowly decreased from 90% RH to dry (0% RH). Sorption / desorption was mostly reversible through two full cycles.

[0390] HCl salt Several experiments were carried out to search for the crystalline HCl salt of compound 1 using hydrochloric acid in different solvents.

[0391] In one experiment, 49.2 mg of Compound 1 free base was weighed into a 4 mL glass vial and 1.0 mL of EtOAc was added. The mixture became an almost clear solution, after which 0.8 mL of 0.1 N HCl in EtOAc was added. A cloudy suspension was observed, after which 0.2 mL of 0.1 N HCl in water was added. The suspension was placed in a fume hood for slow evaporation. Solids stuck to the walls. The solid particles were analyzed by XRPD and determined to be crystalline material, namely, Form A of the hydrochloride salt of Compound 1.

[0392] In one experiment, 10.5 mg of Compound 1 free base was weighed into a 4 mL glass vial and 1 mL of EtOAc was added, followed by 0.2 mL of 0.1 N HCl in EtOAc. The mixture was cloudy. The suspension was placed in a fume hood for slow evaporation. The solid particles were analyzed by XRPD and determined to be crystalline material, namely, Form A of the hydrochloride salt of Compound 1.

[0393] In one experiment, 16.6 mg of Compound 1 free base was weighed into a 4 mL glass vial and 1 mL of EtOAc was added, followed by 0.05 mL of water and 0.345 mL of 0.1 N HCl in EtOAc. The mixture was cloudy. The suspension was placed in a fume hood for slow evaporation, resulting in crystalline aggregates. The solid particles were analyzed by XRPD and determined to be crystalline material, namely, Form A of the hydrochloride salt of Compound 1.

[0394] In one experiment, 25.6 mg of Compound 1 free base was weighed into a 4 mL glass vial and 1 mL of acetone was added, followed by 0.45 mL of 0.1N HCl in acetone, the mixture became cloudy. Further, 0.07 mL of 0.1N HCl in water was added. The mixture became a clear solution. The solution was placed in a fume hood for slow evaporation. Precipitation was observed upon introduction of a seed suspension. The solid particles were analyzed by XRPD and determined to be a crystalline material, i.e., Form A of the hydrochloride salt of Compound 1.

[0395] In one experiment, 26.1 mg of Compound 1 free base was weighed into a 4 mL glass vial and 1 mL of acetone and 0.07 mL of 0.1 N HCl in water were added, followed by 0.45 mL of 0.1 N HCl in acetone. The mixture was a clear solution. The solution was placed in a fume hood for slow evaporation, and crystals grew along the walls of the vial, just above the liquid / gas interface between the walls and the liquid. The solid particles were analyzed by XRPD and determined to be a crystalline material, Form A of the hydrochloride salt of Compound 1.

[0396] In one experiment, 44.2 mg of Compound 1 free base was weighed into a 4 mL glass vial and 2 mL of EtOAc was added, followed by 0.9 mL of 0.1 N HCl in EtOAc. The mixture was cloudy. The suspension was placed in a fume hood for slow evaporation, resulting in crystalline aggregates. The solid particles were analyzed by XRPD and determined to be crystalline material, Form A of the hydrochloride salt of Compound 1, and further characterized by TGA and DSC. The TGA profile showed multiple weight losses on heating to decomposition: 1.8% below 100°C, 2.1% from 100 to 200°C, and 1.5% around the melting point. The DSC spectrum showed a broad endothermic peak at a relatively low temperature (<100°C) and a small endothermic peak with onset and peak temperatures of 204.9°C and 213.0°C, respectively, due to melting of the solid followed by an exothermic peak likely due to decomposition. Dynamic vapor sorption (DVS) profiles showed that the solid was moderately hygroscopic below 90% RH. The HCl salt slowly and steadily took up moisture (~2.9% wt) from dry up to 90% RH. During desorption, the moisture content slowly decreased from 90 to 0% RH dry. Sorption / desorption was mostly reversible through two full cycles. NMR showed chemical shifts due to salt formation and traces of residual solvent.

[0397] In one experiment, 53.9 mg of Compound 1 free base was weighed into a 4 mL glass vial and 2 mL of EtOAc was added, followed by 100 μL of 0.1 N HCl in water and 1.0 mL of 0.1 N HCl in EtOAc. The mixture was a viscous suspension. The suspension was placed in a fume hood for slow evaporation, resulting in crystalline aggregates. The solid particles were analyzed by XRPD and determined to be a crystalline material, namely, Form A of the hydrochloride salt of Compound 1.

[0398] In one experiment, 26.5 mg of Compound 1 free base was weighed into a 4 mL glass vial and 1 mL of acetone was added, followed by 0.52 mL of 0.1 N HCl in acetone. The mixture remained a clear solution. The solution was placed in a fume hood for slow evaporation, and crystals grew in the solution and on the bottom. The solid particles were analyzed by XRPD and determined to be a crystalline material, Form A of the hydrochloride salt of Compound 1.

[0399] In one experiment, 26.2 mg of Compound 1 free base was weighed into a 4 mL glass vial, 1 mL of EtOAc was added first, followed by 0.02 mL of water, and then 0.52 mL of 0.1 N HCl in EtOAc. The mixture became cloudy. The solid particles were analyzed by XRPD and determined to be a crystalline material, Form A of the hydrochloride salt of Compound 1. It remained in the same crystalline form after drying in a vacuum oven at 35°C.

[0400] In one experiment, the solid particles generated from several experiments above were placed together in a 4 mL glass vial and then 1 mL of water was added. The suspension was covered and left at room temperature for one week to equilibrate. The solids after slurried remained in Form A and were then characterized by TGA, DSC, and DVS. The TGA profile showed a multi-step weight loss on heating to decomposition, 0.7% below 100°C, and 3.9% around the melting point. The DSC spectrum showed a broad endothermic peak with onset and peak temperatures of 196.4°C and 212.6°C, respectively, due to melting of the solid followed by an exothermic peak likely due to decomposition. The DVS profile was similar to the sample from the previous experiment (44.2 mg scale) mentioned above.

[0401] In one experiment, 26.2 mg of Compound 1 free base was weighed into a 4 mL glass vial and 1 mL of MEK was added, followed by 0.02 mL of 0.1 N HCl in water. The mixture became a clear solution, after which 0.49 mL of 0.105 N HCl in MEK was added. The mixture immediately became cloudy. The solid particles were analyzed by XRPD, and the solid sample was also analyzed by TGA and DSC, and determined to be a crystalline material, Form A of the hydrochloride salt of Compound 1.

[0402] In one experiment, 26.2 mg of Compound 1 free base was weighed into a 4 mL glass vial and 1 mL of MEK was added followed by 0.49 mL of 0.105 N HCl in MEK. The mixture became a clear solution and then 0.02 mL of 0.1 N HCl in water was added. The mixture immediately became cloudy. The solid particles were analyzed by XRPD and the solid sample was also analyzed by TGA and DSC and determined to be a crystalline material, namely, Form A of the hydrochloride salt of Compound 1. The TGA profile showed multiple weight losses on heating to decomposition, 0.8% below 100°C, and 3.7% around the melting point. The DSC spectrum showed a broad endothermic peak with onset and peak temperatures of 219.7°C and 233.8°C, respectively, due to the melting of the solid followed by an exothermic peak likely due to decomposition.

[0403] In one experiment, 1.07 g of Compound 1 free base was weighed into a glass beaker and 25 mL of EtOAc was added, followed by 20 mL of 0.1 N HCl in EtOAc. The mixture was cloudy. The suspension was placed in a fume hood for slow evaporation. The initial solid was amorphous by XRPD, and upon further slurried for an hour, it became crystalline Form A of the hydrochloride salt of Compound 1. The sample was dried in a vacuum oven overnight and then reslurried in water, and the final product was Form A of the hydrochloride salt of Compound 1.

[0404] In one experiment, 0.455 g of Compound 1 free base was weighed into a glass beaker and 5 mL of MEK was added, followed by 9.0 mL of 0.1 N HCl in MEK. The mixture was cloudy. The suspension was placed in a fume hood for slow evaporation. The initial solid was crystalline Form A by XRPD.

[0405] Without being limited to a particular theory, the variation in melting onset and peak temperatures observed for Form A in these experiments is due to factors such as crystallinity, crystalline defects, and amorphous content.

[0406] 2X HCl salt In one experiment, 45.5 mg of Compound 1 free base was weighed into a 4 mL glass vial and 0.9 mL of acetone was added. The mixture became clear and then 1.8 mL of 0.1 N HCl in acetone was introduced. The mixture remained a clear solution. The solution was placed in a fume hood for slow evaporation and crystals grew in the solution and on the bottom surface. The XRPD (FIG. 21) of the solid obtained from this experiment is named as Form C of the hydrochloride salt of Compound 1, which differs from the monohydrochloride salt Form A. The solid also showed different TGA, DSC, and DVS profiles. The TGA profile showed a multi-step weight loss on heating to decomposition: 3.8% below 100° C. and an additional 4.0% from 100 to 200° C. The DSC spectrum showed a broad endothermic event at relatively low temperatures (<125°C) followed by an additional endothermic peak with onset and peak temperatures of 138.0°C and 151.6°C, respectively, due to the melting of the solid followed by an exothermic peak likely due to decomposition. Dynamic water vapor sorption (DVS) profile showed that the solid was highly hygroscopic at RH below 90%. The solid sample slowly and steadily took up moisture (~8.0% wt) from dry up to 80% RH, then rapidly uptake (~6.7%) from 80% RH to 90% RH. During desorption, the moisture content rapidly decreased (~7.0%) from 90 to 80% RH, and then the remaining moisture was steadily removed as the relative humidity decreased to dry (0% RH).

[0407] Besylate In one experiment, 24.3 mg of Compound 1 free base was weighed into a 4 mL glass vial and 1 mL of MEK was added. The mixture became a clear solution and 0.5 mL of 0.1 N benzenesulfonic acid in MEK was added. Immediate precipitation was observed. Crystalline material, Form A of the besylate salt of Compound 1, was observed under a microscope and confirmed by XRPD.

[0408] In one experiment, 255.3 mg of Compound 1 free base was weighed into a 4 mL glass vial and 5 mL of acetone was added. The mixture became a clear solution and then 5.0 mL of 0.1 N benzenesulfonic acid in MEK was added. Precipitation occurred immediately. Crystalline material was observed under a microscope and confirmed by XRPD (Figure 17). The solid was also characterized by thermal analysis using both TGA and DSC. The TGA profile (Figure 18) showed very little weight loss (0.25%) upon heating up to 150°C. The DSC spectrum (Figure 19) showed an endothermic peak with onset and peak temperatures of 164.5°C and 175.4°C, respectively, attributed to melting of the solid.

[0409] 7. Preparation of the hydrochloride salt of compound 1 and polymorph screening The hydrochloride salt of Compound 1 was prepared from the free base of Compound 1 in three experiments. First, two small scale experiments (0.1 g scale) were performed (slurried in acetone for 1 day and slurried in THF for 1 day). The product from both experiments was confirmed to be the hydrochloride polymorph Form A. Both samples were analyzed for carbon, hydrogen, nitrogen, and chloride content to determine stoichiometry. Elemental data (not shown) was consistent with 1:1 API:acid salt. The hydrochloride salt was then made at 10 g scale (slurried in acetone for 2 days) and further characterized. The characterization data is summarized in the table below. [Table 22] a. Theoretical value of 1:1 salt

[0410] Compound 1HCl solid was mixed with various solvents under various conditions to generate polymorphs. The results are shown in the table below. Only one polymorph (Form A of Compound 1HCl) was identified in this experiment. [Table 23] [Table 24] [Table 25] [Table 26] a.AS=antisolvent;NC=non-crystallization;RH=relative humidity;RT=room temperature;E=evaporation b. NC = non-crystalline; pks ​​= peaks; A, B etc = types

[0411] 8. Preparation of fumarate salt of compound 1 and polymorph screening In one study, Form A of the fumarate salt of Compound 1 was prepared from a precipitation experiment involving acetone and hexanes. The solid crystallized within 5 hours and was allowed to stir at room temperature for 2 days.

[0412] In another study, several experiments were carried out to prepare the fumarate salt of Compound 1 from the free base of Compound 1. Initially, several small-scale experiments were carried out. Slurries carried out at ambient temperature (250 mg scale, slurried in acetonitrile at room temperature for 1 day or slurried in acetonitrile at room temperature for 6 days) yielded low crystalline material. Increasing the slurrying temperature yielded highly crystalline material, confirming that the product was fumarate polymorph Form A (30 mg scale, slurried in acetonitrile at 50° C. for 1 day). The experiments were repeated on a larger scale (3.2 g scale, slurried in acetonitrile at 50° C. for 3 days) to further characterize the resulting material. The characterization data are summarized in the following table. [Table 27]

[0413] Compound 1 fumarate solid was mixed with various solvents under various conditions to generate polymorphs. The results are shown in the table below. Only one polymorph (Compound 1 fumarate Form A) was identified in this experiment. [Table 28] [Table 29] [Table 30] [Table 31] a.AS=antisolvent;E=evaporation;NC=non-crystallization;RH=relative humidity;RT=room temperature b. NC = non-crystalline; pks ​​= peaks; A, B etc = types

[0414] 9. Preparation of the tosylate salt of compound 1 and polymorph screening In one study, Form A of the tosylate salt of Compound 1 was prepared from a precipitation experiment involving acetone and hexanes. The solid crystallized within 5 hours and was allowed to stir at room temperature for 2 days.

[0415] In another study, several experiments were carried out to prepare the tosylate salt of Compound 1 from the free base of Compound 1. First, one small-scale experiment was carried out (250 mg scale, slurried in acetonitrile at room temperature for 1 day). The product was confirmed to be the tosylate polymorph Form A. The experiment was repeated on a larger scale (3.4 g scale, slurried in acetonitrile at room temperature for 3 days) to further characterize the resulting material. The characterization data are summarized in the following table. [Table 32]

[0416] Compound 1 tosylate solid was mixed with various solvents under various conditions to generate polymorphs. The results are shown in the table below. In this experiment, two polymorphs were identified: Compound 1 tosylate Form A (the same form from salt screen number 1) and a new, Compound 1 tosylate Form D. Form D was only obtained as a mixture with amorphous material in one experiment. An overlay plot of tosylate polymorph Forms A, B, C, and D is shown in FIG. 22. [Table 33] [Table 34] [Table 35] [Table 36] a.AS=antisolvent;NC=non-crystallization;RH=relative humidity;RT=room temperature;E=evaporation b. NC = non-crystalline; pks ​​= peaks; A, B etc = types

[0417] 10. Form Evaluation (a) Evaluation of Form A of the hydrochloride salt of compound 1 Hygroscopicity: Form A of the hydrochloride salt of Compound 1 was characterized by DVS (Figure 7). It started to take up water from very low humidity. Water sorption continued steadily (almost linearly) at all humidity levels until the uptake of about 3.0% w / w, which corresponds to about 1 mole of water. The adsorbed water was released during the desorption phase, and slight hysteresis was observed during the drying phase. The solid remained in Form A after DVS.

[0418] Shear Sensitivity: Form A of the hydrochloride salt of Compound 1 was compressed at 700 and 1100 pounds for 1 minute and analyzed by XRPD. The solid remained the same, although it had slightly broader diffraction peaks.

[0419] Solid State Stability: The solid state stability of Form A of the hydrochloride salt of Compound 1 was evaluated using an Accelerated Stability Assessment Program (ASAP). The storage conditions for forced degradation were between 60-80°C and 0-80% RH for up to 2 weeks. Two light stress experiments under ICH conditions were also performed on the solid. The solid samples were analyzed for both chemical and chiral stability. At the end of the experiment, the crystalline form of the compound was confirmed by XRPD. No change in crystalline form was observed between the control and the most severe conditions of 80°C / 70% RH after 10 days. The results of the stability experiments are summarized in the table below. [Table 37]

[0420] No significant changes (<5%) in the assay were observed except after 1 and 2 weeks at 80°C / 0%RH conditions. The decrease in purity in the 80°C / 0%RH assay was due to the growth of a degradation product with a molecular weight equivalent to the free base + HCl. Compound 1 hydrochloride remained stable with respect to the assay and degradation products under other conditions. The change in the assay under photostable conditions was <4%. Furthermore, no significant change in chiral purity was observed across all conditions, with a maximum change of 0.2% observed under high humidity conditions. These ASAP stability results confirmed that Form A of the hydrochloride salt of Compound 1 may be considered stable.

[0421] Crystal Habit: SEM images of Form A of the hydrochloride salt of Compound 1 show small rod-shaped primary particles and aggregates (Figure 8).

[0422] Long-term solid state stability: Compound 1 hydrochloride salt Form A (double LDPE bagged in HDPE container) was stored for up to 3 months at 25°C / 60%RH, 30°C / 65%RH, and 40°C / 75%RH storage conditions. The stability data shown in the table below demonstrates the stability of Compound 1 hydrochloride salt Form A stored for 3 months at 25°C / 60%RH, 30°C / 65%RH, and 40°C / 75%RH conditions. Therefore, a retest at 12 months is suggested when stored below 25°C. [Table 38] 1. Yellow powder 2. Matches Form A

[0423] (b) Evaluation of other forms of Compound 1 The solid state stability of Compound 1 free base amorphous, tosylate Form A, besylate Form A, and fumarate Form A (as well as HCl Form A) was evaluated under stressed storage conditions. The solid samples were analyzed for both chemical and chiral stability. At the end of the experiment, the crystalline form of Compound 1 was confirmed by XRPD. The results of the stability experiments are summarized in the following table. [Table 39]

[0424] The solubility of Compound 1 free base amorphous, HCl Form A, fumarate salt Form A, and tosylate salt Form A in several solvents was estimated. Experiments were performed by adding aliquots of the test solvent to a weighed portion of the solid. Whether dissolution occurred was determined by visual inspection after the addition of each solvent aliquot. The solubility number was calculated by dividing the total amount of solvent used to dissolve the sample by the weight of the sample. The actual solubility may be greater than the calculated number due to the use of too many solvent aliquots or slow dissolution rates. The solubility number is expressed as "less than" if dissolution did not occur during the experiment. The solubility number is expressed as "more than" if dissolution occurred with the addition of the first solvent aliquot. The results are shown in the table below. [Table 40]

[0425] The embodiments provided herein are not limited in scope by the specific embodiments provided in the examples, which are intended as illustrations of some aspects of the embodiments provided, and any embodiments that are functionally equivalent are intended to be encompassed by the present disclosure. Indeed, various modifications of the embodiments provided herein that will be apparent to those skilled in the art, in addition to those shown and described herein, are intended to be included within the scope of the appended claims.

[0426] A number of references have been cited, the disclosures of which are incorporated herein by reference in their entireties.

Claims

1. the below described: 【Chemistry 1】 A solid comprising compound 1 represented by the formula: the free base of Compound 1, characterized by an XRPD pattern including peaks at 4.5, 13.3, 15.3, 15.9, and 18.1 °2θ±0.2 °θ; the free base of Compound 1, characterized by an XRPD pattern including peaks at 4.8, 9.6, 14.9, 18.7, and 22.1 °2θ±0.2 °θ; the hydrochloride salt of Compound 1, characterized by an XRPD pattern comprising peaks at 7.8, 15.1, 16.3, 20.7, and 22.4 °2θ±0.2 °θ; the hydrochloride salt of Compound 1, characterized by an XRPD pattern comprising peaks at 17.5, 21.1, 21.6, 24.8, and 27.0 °2θ±0.2 °θ; a fumarate salt of Compound 1, characterized by an XRPD pattern comprising peaks at 17.9, 22.3, 23.2, 23.4, and 25.8°2θ±0.2°θ; a tosylate salt of Compound 1, characterized by an XRPD pattern including peaks at 15.7, 17.6, 18.0, 20.6, and 23.8°2θ±0.2°θ; a maleate salt of Compound 1 characterized by an XRPD pattern including peaks at 17.6, 18.0, 18.4, 19.3, 24.4, and 26.9 °2θ±0.2 °θ; or A besylate salt of Compound 1 characterized by an XRPD pattern containing peaks at 15.7, 16.2, 17.9, 18.3, and 23.8°2θ±0.2°θ. That is, a solid body.

2. 2. The solid form of claim 1, wherein Compound 1 is a free base of Compound 1 characterized by an XRPD pattern comprising peaks at 4.5, 13.3, 15.3, 15.9, and 18.1 °2θ±0.2 °θ.

3. 3. The solid form of claim 2, wherein the XRPD pattern further comprises peaks at 20.1 and 20.9 °2θ±0.2 °θ.

4. Said compound 1 is shown in FIG.

3. The solid form of claim 2, characterized by an XRPD pattern that matches the XRPD pattern shown in

5. 2. The solid form of claim 1, wherein Compound 1 is a free base of Compound 1 characterized by an XRPD pattern comprising peaks at 4.8, 9.6, 14.9, 18.7, 22.1 °2θ±0.2 °θ.

6. 6. The solid form of claim 5, wherein the XRPD pattern further comprises peaks at 20.7 and 21.4 °2θ±0.2 °θ.

7. The compound 1 is shown in FIG.

6. The solid form of claim 5, characterized by an XRPD pattern that matches the XRPD pattern shown in

8. 2. The solid form of claim 1, wherein compound 1 is a hydrochloride salt of compound 1 characterized by an XRPD pattern comprising peaks at 7.8, 15.1, 16.3, 20.7, and 22.4 °2θ±0.2 °θ.

9. 9. The solid form of claim 8, wherein the XRPD pattern further comprises peaks at 18.2, 18.9, and 24.8°2θ±0.2°θ.

10. The compound 1 is shown in FIG.

9. The solid body of claim 8, characterized by an XRPD pattern that matches the XRPD pattern shown in 11. The solid form of claim 1, wherein compound 1 is a hydrochloride salt of compound 1 characterized by an XRPD pattern including peaks at 17.5, 21.1, 21.6, 24.8, and 27.0°2θ±0.2°θ.

12. 12. The solid form of claim 11, wherein the XRPD pattern further comprises peaks at 14.6, 17.2, and 20.3 °2θ±0.2 °θ.

13. The compound 1 is shown in FIG.

12. The solid body of claim 11, characterized by an XRPD pattern that matches the XRPD pattern shown in

14. 2. The solid form of claim 1, wherein compound 1 is a fumarate salt of compound 1 characterized by an XRPD pattern comprising peaks at 17.9, 22.3, 23.2, 23.4, and 25.8 °2θ±0.2 °θ.

15. 15. The solid form of claim 14, wherein the XRPD pattern further comprises peaks at 11.7 and 18.3 degrees 2θ±0.2 degrees θ.

16. The compound 1 is shown in FIG.

15. The solid body of claim 14, characterized by an XRPD pattern that matches the XRPD pattern shown in

17. 2. The solid form of claim 1, wherein Compound 1 is a tosylate salt of Compound 1 characterized by an XRPD pattern comprising peaks at 15.7, 17.6, 18.0, 20.6, and 23.8 °2θ±0.2 °θ.

18. 18. The solid form of claim 17, wherein the XRPD pattern further comprises peaks at 24.7 and 25.0 °2θ±0.2 °θ.

19. The compound 1 is shown in FIG.

18. The solid body of claim 17, characterized by an XRPD pattern that matches the XRPD pattern shown in

20. 2. The solid form of claim 1, wherein compound 1 is a maleate salt of compound 1 characterized by an XRPD pattern comprising peaks at 17.6, 18.0, 18.4, 19.3, 24.4, and 26.9 °2θ±0.2 °θ.

21. 21. The solid form of claim 20, wherein the XRPD pattern further comprises peaks at 19.8 and 24.0 °2θ±0.2 °θ.

22. The compound 1 is shown in FIG.

21. The solid form of claim 20, characterized by an XRPD pattern that matches the XRPD pattern shown in

23. 2. The solid form of claim 1, wherein compound 1 is a besylate salt of compound 1 characterized by an XRPD pattern comprising peaks at 15.7, 16.2, 17.9, 18.3, and 23.8 °2θ±0.2 °θ.

24. 24. The solid form of claim 23, wherein the XRPD pattern further comprises peaks at 8.5 and 16.5°2θ±0.2°θ.

25. The compound 1 is shown in FIG.

24. The solid form of claim 23, characterized by an XRPD pattern that matches the XRPD pattern shown in

26. the below described: 【Chemistry 2】 A salt of Compound 1 represented by the formula: wherein the salt is a crystalline hydrochloride, a crystalline fumarate, a crystalline tosylate, a crystalline maleate, or a crystalline besylate.

27. 27. A pharmaceutical composition comprising a solid form according to any one of claims 1 to 25 or a salt according to claim 26, and a pharma- ceutically acceptable excipient or carrier.

28. 27. A pharmaceutical composition for the treatment of hematological malignancies comprising a solid form according to any one of claims 1 to 25 or a salt according to claim 26.

29. 29. The pharmaceutical composition of claim 28, wherein the hematological malignancy is acute myeloid leukemia (AML), acute lymphocytic leukemia (ALL), multiple myeloma (MM), non-Hodgkin's lymphoma (NHL), diffuse large B-cell lymphoma (DLBCL), Hodgkin's lymphoma (HL), T-cell lymphoma (TCL), Burkitt's lymphoma (BL), chronic lymphocytic leukemia / small lymphocytic lymphoma (CLL / SLL), marginal zone lymphoma (MZL), myelodysplastic syndrome (MDS), or follicular lymphoma (FL).

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