Pharmaceutical preparations

A pharmaceutical formulation of Compound (I) with MCC and DCPA addresses the limitations of existing SERDs by enabling efficient production of stable, immediate-release tablets for effective estrogen receptor downregulation.

JP7719796B2Active Publication Date: 2025-08-06ASTRAZENECA AB
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Patent Information

Application Number
JP2022563999
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-24
Filing Date
2021-04-22
Publication Date
2025-08-06
Estimated Expiration
2041-04-22

AI Technical Summary

Technical Problem

Current SERD compounds like fulvestrant have limited effectiveness in downregulating estrogen receptors due to pharmacological properties that result in less than 50% receptor turnover in patient samples, despite showing complete receptor downregulation in vitro.

Method used

A pharmaceutical formulation comprising N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine (Compound (I)) with microcrystalline cellulose (MCC) and dicalcium phosphate anhydrous (DCPA) for an oral solid dosage form, which allows for efficient production and effective clinical use.

Benefits of technology

The formulation enables high-speed processing, stable production of immediate-release tablets with high tensile strength, ensuring reproducible release and extended shelf life, and effective downregulation of estrogen receptors.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present specification relates to a pharmaceutical formulation, such as an immediate-release tablet, comprising N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine, microcrystalline cellulose (MCC) and dicalcium phosphate anhydrous (DCPA).
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Description

[Technical Field]

[0001] The present disclosure relates to a pharmaceutical formulation comprising the selective estrogen receptor downregulator (SERD), N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine (also referred to herein as Compound (I) or AZD9833), or a pharmaceutically acceptable salt thereof, and selected pharmaceutically acceptable excipients. In particular, the present disclosure relates to an oral solid dosage form, such as a tablet, comprising Compound (I) and selected pharmaceutically acceptable excipients. The pharmaceutical formulations herein have advantageous properties that enable large-scale production of oral dosage forms with immediate release properties. The formulations herein have good storage stability and physical properties. The formulations according to the present invention can be used in methods of treatment, for example, in methods of treating patients suffering from breast cancer or gynecological cancer, comprising orally administering a formulation comprising Compound (I) at a particular dose once daily to a patient in need thereof. [ka] [Background technology]

[0002] Estrogen receptor alpha (ERα, ESR1, NR3A) and estrogen receptor beta (ERβ, ESR2, NR3b) are steroid hormone receptors that are members of the large family of nuclear receptors. Structurally similar to all nuclear receptors, ERα is composed of six functional domains (designated A to F) (Non-Patent Document 1). After association with a specific ligand (the female steroid hormone estradiol (E2)), the complex binds to a genomic sequence designated as the estrogen receptor element (ERE) and interacts with coregulators to regulate the transcription of target genes. Therefore, ERα is classified as a ligand-dependent transcription factor. The ERα gene, located at 6q25.1, encodes a 595-AA protein, and multiple isoforms can be produced due to alternative splicing and translation initiation sites. In addition to the DNA-binding domain (domain C) and the ligand-binding domain (domain E), this receptor contains an N-terminal domain (A / B), a hinge domain (D) connecting domains C and E, and a C-terminal extension (domain F). While domains C and E of ERα and ERβ are completely conserved (96% and 55% amino acid identity, respectively), the conservation of domains A / B, D, and F is non-conserved (less than 30% amino acid identity). Both receptors are involved in the regulation and development of female reproductive organs and also play roles in the central nervous system, cardiovascular system, and bone metabolism. The genomic actions of ERs occur in the nucleus of cells when these receptors bind to EREs either directly (direct activation or canonical pathway) or indirectly (indirect activation or non-canonical pathway). In the absence of ligand, ER associates with the heat shock proteins Hsp90 and Hsp70, and the associated chaperone machinery stabilizes the ligand-binding domain (LBD) and allows it to contact the ligand. Ligand-bound ER dissociates from the heat shock proteins, resulting in a conformational change in the receptor that allows dimerization, DNA binding, interaction with coactivators or corepressors, and regulation of target gene expression. In the non-canonical pathway, AP-1 and Sp-1 are alternative regulatory DNA sequences used by both isoforms of this receptor to regulate gene expression.In this example, ER interacts not directly with DNA but through association with other DNA-binding transcription factors, such as c-Jun or c-Fos (Non-Patent Document 2). The precise mechanism by which ER acts on gene transcription is poorly understood but is likely mediated by a number of nuclear factors recruited by DNA-binding receptors. Recruitment of coregulators is primarily mediated by two protein surfaces, AF2 and AF1, located in domains E and A / B, respectively. AF1 is regulated by growth factors and its activity depends on the cellular and promoter environment, whereas AF2 is completely dependent on ligand binding for activity. While these two domains can act independently, maximal ER transcriptional activity is achieved through a synergistic interaction via these two domains (Non-Patent Document 3). Although ER is considered a transcription factor, ER can also act by non-genomic mechanisms, as evidenced by the rapid ER effects in tissues after E2 administration, on a timescale that is considered too fast for genomic action. It is still unclear whether the receptor responsible for the rapid action of estrogen is the same nuclear ER or a separate G-protein-coupled steroid receptor (Non-Patent Document 4). However, E2-induced pathways, such as an increase in the number of MAPK / ERK pathways and activation of endothelial nitric oxide synthase and PI3K / Akt pathways, have been confirmed. In addition to ligand-dependent pathways, ERα has been shown to have ligand-independent activity via AF-1, which is associated with growth factor signaling, such as stimulation of MAPK by insulin-like growth factor 1 (IGF-1) and epidermal growth factor (EGF). AF-1 activity is dependent on phosphorylation of Ser118, and an example of crosstalk between ER and growth factor signaling is the phosphorylation of Ser118 by MAPK in response to growth factors such as IGF-1 and EGF (Non-Patent Document 5).

[0003] Many structurally distinct compounds have been shown to bind to ER. Some compounds, such as the endogenous ligand E2, act as receptor agonists, while others competitively inhibit E2 binding and act as receptor antagonists. These compounds can be divided into two classes depending on their functional effects. Selective estrogen receptor modulators (SERMs), such as tamoxifen, have the ability to act as both receptor agonists and receptor antagonists, depending on the cellular and promoter context and the ER isoform targeted. For example, tamoxifen acts as an antagonist in the breast but as a partial agonist in bone, the cardiovascular system, and the uterus. All SERMs appear to act as AF2 antagonists, deriving their partial agonist properties through AF1. The second group, of which fulvestrant is an example, is classified as a full antagonist, which is able to block estrogenic activity by complete inhibition of the AF1 and AF2 domains via induction of a specific conformational change in the ligand-binding domain (LBD) upon compound binding, which results in complete blockage of the interaction between helix 12 and the rest of the LBD, blocking cofactor recruitment (Non-Patent Document 6, Non-Patent Document 7).

[0004] Intracellular levels of ERα are downregulated in the presence of E2 via the ubiquitin / proteasome (Ub / 26S) pathway. Polyubiquitinylation of ligand-bound ERα is catalyzed by at least three enzymes. Specifically, ubiquitin activated by the ubiquitin-activating enzyme E1 is conjugated to lysine residues by E2 via an isopeptide bond via the E3 ubiquitin ligase. The polyubiquitinated ERα is then targeted to the proteasome for degradation. Although ER-dependent transcriptional regulation and proteasome-mediated ER degradation are coupled (Non-Patent Document 8), transcription itself is not required for ERα degradation; assembly of a transcription initiation complex is sufficient to target ERα for nuclear proteasome degradation. This E2-induced degradation process is thought to be necessary for its ability to rapidly activate transcription in response to requirements for cell growth, differentiation, and metabolism (Non-Patent Document 9). Fulvestrant also falls into a subset of antagonists that can induce rapid downregulation of ERα via the SERD, i.e., the 26S proteasome pathway. In contrast, SERMs such as tamoxifen can increase ERα levels, but their effects on transcription are similar to those seen with SERDs.

[0005] Approximately 70% of breast cancers express ER and / or progesterone receptors, which means that these tumor cells are hormone-dependent for growth. Other cancers, such as ovarian and endometrial cancers, are also thought to depend on ERα signaling for growth. Treatment of such patients can inhibit ER signaling by either antagonizing ligand binding to ER (e.g., tamoxifen, used to treat early and advanced ER-positive breast cancer in both premenopausal and postmenopausal settings), antagonizing and downregulating ERα (e.g., fulvestrant, used to treat breast cancer in women who have progressed despite tamoxifen or aromatase inhibitor treatment), or blocking estrogen synthesis (e.g., aromatase inhibitors, used to treat early and advanced ER-positive breast cancer). Although these treatments have had a significant positive impact on breast cancer treatment, a significant number of patients whose tumors express ER develop de novo resistance to existing ER treatments or develop resistance to these treatments over time. Several different mechanisms have been described to explain resistance to initial tamoxifen treatment. These primarily involve tamoxifen switching from antagonistic to agonistic activity, either through the overexpression of certain cofactors, which offsets the low affinity of certain cofactors binding to the tamoxifen-ERα complex, or through the formation of secondary sites that facilitate interaction between the tamoxifen-ERα complex and cofactors that do not normally bind to the complex. Therefore, resistance may result from the development of cells expressing specific cofactors that drive tamoxifen-ERα activity. It is also possible that other growth factor signaling pathways directly activate ER receptors or coactivators, promoting cell proliferation independently of ligand signaling.

[0006] Recently, mutations in ESR1 have been identified as a potential resistance mechanism in tumor samples from metastatic ER-positive patients and patient-derived xenograft models (PDX) at frequencies ranging from 17 to 25%. These mutations are predominantly, but not exclusively, in the ligand-binding domain, resulting in mutated functional proteins. Examples of amino acid changes include Ser463Pro, Val543Glu, Leu536Arg, Tyr537Ser, Tyr537Asn, and Asp538Gly, with changes at amino acids 537 and 538 accounting for the majority of currently described changes. These mutations have not previously been detected in genomes derived from primary breast cancer samples characterized in the Cancer Genome Atlas database. No mutations were detected in ESR1 among 390 ER-positive primary breast cancer samples (Non-Patent Document 10). Mutations in the ligand-binding domain are thought to be a resistant response to aromatase inhibitor endocrine therapy, as these mutant receptors exhibit basal transcriptional activity in the absence of estradiol. Crystal structures of ER mutants at amino acids 537 and 538 showed that both mutants favor an agonist conformation of ER by shifting the position of helix 12 to allow coactivator recruitment, thereby mimicking agonist-activated wild-type ER. Published data indicate that endocrine therapies, such as tamoxifen and fulvestrant, can still bind to ER mutants and inhibit transcriptional activation to some extent, and that fulvestrant can degrade Try537Ser, although higher doses may be required for sufficient receptor inhibition (Non-Patent Documents 11, 12, and 13). Therefore, although it is unclear at this stage whether ESR1 mutations are associated with altered clinical outcomes, it is possible that compound (I) or a pharmaceutically acceptable salt thereof may have the ability to down-regulate and antagonize mutant ER.

[0007] Regardless of which resistance mechanism or combination of mechanisms occurs, many still rely on ER-dependent activity, and receptor removal via a SERD mechanism provides the best method for removing ERα receptors from cells. Fulvestrant is the only SERD currently approved for clinical use, but despite its mechanistic properties, the drug's pharmacological properties currently limit its effectiveness, with a monthly dose of 500 mg (resulting in less than 50% receptor turnover in patient samples, compared to the complete receptor downregulation seen in in vitro breast cancer cell line experiments) (Non-Patent Document 14). [Prior art documents] [Non-patent literature]

[0008] [Non-Patent Document 1] Dahlman-Wright,et al.,Pharmacol.Rev.,2006,58:773-781 [Non-patent document 2] Kushner et al.,Pure Applied Chemistry 2003,75:1757-1769 [Non-patent document 3] Tzukerman,et al.,Mol.Endocrinology,1994,8:21-30 [Non-patent document 4] Warner,et al.,Steroids 2006 71:91-95 [Non-Patent Document 5] Kato,et al.,Science,1995,270:1491-1494 [Non-patent document 6] Wakeling,et al.,Cancer Res.,1991,51:3867-3873 [Non-Patent Document 7] Pike,et al.,Structure,2001,9:145-153 [Non-patent document 8] Lonard,et al.,Mol.Cell,2000 5:939-948 [Non-Patent Document 9] Stenoien,et al.,Mol.Cell Biol.,2001,21:4404-4412 [Non-Patent Document 10] Cancer Genome Atlas Network,2012 Nature 490:61-70 [Non-Patent Document 11] Toy et al., Nat. Genetics 2013,45:1439-1445 [Non-Patent Document 12] Robinson et al.,Nat.Genetics 2013,45:144601451 [Non-Patent Document 13] Li,S.et al.Cell Rep.4,1116-1130(2013) [Non-Patent Document 14] Wardell,et al.,Biochem.Pharm.,2011,82:122-130 Summary of the Invention [Problem to be solved by the invention]

[0009] N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine (Compound (I), AZD9833) was recently identified as a SERD compound with promising in vitro and in vivo activity (WO 2018 / 077630 A1). This compound is currently being evaluated in clinical trials. It is an objective herein to provide a pharmaceutical formulation of this compound with suitable physicochemical and pharmaceutical properties that enable its effective clinical use. [Means for solving the problem]

[0010] In a first aspect, the present disclosure provides a pharmaceutical formulation comprising N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine, microcrystalline cellulose (MCC), and anhydrous dicalcium phosphate (DCPA). The pharmaceutical formulations herein may also comprise further additives, such as disintegrants or lubricants.

[0011] In a further aspect, the present disclosure provides an oral solid dosage form, e.g., a tablet, comprising N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine, microcrystalline cellulose (MCC), and dicalcium phosphate anhydrous (DCPA). The oral solid dosage form according to this aspect may contain further additives, such as a disintegrant or a lubricant, and may be provided as a coated tablet.

[0012] In a further aspect, the description provides a method for making a solid oral dosage form according to the present invention, comprising the steps of: i) dry granulating N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine, microcrystalline cellulose (MCC) and dicalcium phosphate anhydrous (DCPA), and ii) compressing the resulting blend into a tablet.

[0013] In order that this specification may be fully understood, reference is made to the following figures. [Brief explanation of the drawings]

[0014] [Figure 1]Flow function coefficients (FFC) of prototype formulation blends AD. [Figure 2] Ejection force data for tablets made from prototype formulation blends A-D measured on a STYL'One press. [Figure 3] Tensile strength and porosity data for tablets made from formulation blends AD using a STYL'One press simulating a Korsch XL 200 at 50 rpm. [Figure 4] Plot of strain rate sensitivity for formulation blends E, F, C, G and H. [Figure 5] Tensile strength of formulations E, F, C, G and H. [Figure 6] 10 is a combined plot showing the strain rate sensitivity of formulation blends E, F, C, G, and H and the tensile strength of tablets made from these blends. [Figure 7a] Dissolution of tablet formulations E, F, C, G and H in SGF in a USP2 apparatus. [Figure 7b] Plot of mean dissolution in SGF at 30 minutes as a function of the ratio of MCC to DCPA in a USP2 apparatus. [Figure 8] Dissolution of 20 mg and 100 mg coated tablets in SGF using USP2 apparatus at 50 rpm. DETAILED DESCRIPTION OF THE INVENTION

[0015] As described above, the present specification provides a pharmaceutical formulation, e.g., a tablet, comprising N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine, microcrystalline cellulose (MCC), and dicalcium phosphate anhydrous (DCPA).

[0016] The formulations according to the present invention have various advantageous properties that make them useful in the pharmaceutical field. For example, the good flowability of the blend of Compound (I) and certain additives allows for efficient processing, for example, for the production of oral solid dosage forms by dry granulation. Oral dosage form products, such as tablets formed from the formulations according to the present invention, have good stability, immediate release, and exhibit excellent structural integrity. Therefore, immediate-release tablets containing Compound (I) with good tensile strength and stability can be efficiently produced.

[0017] N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine (Compound (I)), produced by the method described in WO 2018 / 077630 A1, is obtained in various polymorphic and solvated crystalline forms. Compound (I) used in the formulations herein generally exists as crystalline Form A described in WO 2018 / 077630 A1; therefore, references to the stability of the formulations herein and above both refer to the stability of the crystalline form of Compound (I), and further to the stability of Compound (I) against chemical degradation from processes such as oxidation during storage. Both of these factors, solid state stability and chemical stability, can affect the reproducibility of release and uptake of Compound (I) upon administration to a patient in need thereof, and are therefore important requirements in the provision of an effective formulation with reproducible release and acceptable shelf life.

[0018] In an embodiment, the present disclosure provides a pharmaceutical formulation comprising Compound (I) or a pharmaceutically acceptable salt thereof, microcrystalline cellulose, and dicalcium phosphate. The pharmaceutical formulation is preferably in the form of a tablet. The pharmaceutical formulation is preferably an immediate-release formulation, such as an immediate-release tablet, optionally a coated tablet. In an embodiment, the immediate-release pharmaceutical formulation is in the form of a coated tablet.

[0019] In a preferred embodiment herein, the ratio of MCC to DCPA in the formulation is from 3:1 to 2:3. This particular range of MCC to DCPA ratios allows the formulation to a) exhibit a strain rate sensitivity (SRS) of less than about 20%, enabling high-speed processing, e.g., by dry granulation, and b) be processed to provide tablets with consistently high tensile strength (>2 MPa), among other advantages. Tablet formation can be achieved by various methods, including direct compaction and roller compaction. Due to the properties of the formulation herein, the formulation is suitable for tablet production by a continuous direct compression method, which combines blending and compression steps in a single continuous process. This rapid processability simplifies and accelerates manufacturing, while the high tensile strength results in good tablet integrity and reduced failure rates. Both the low SRS and high tensile strength of the blend of excipients and Compound (I) contribute to lower product costs.

[0020] In further preferred embodiments, the ratio of MCC to DCPA is 3:1 to 3:2, these particular ratios being advantageous in that the lower amount of the relatively concentrated DCPA additive reduces the degree of coning, e.g., in dissolution tests, which may impair the production of a uniform in vitro release of Compound (I), e.g., in the quality control of batches of manufactured tablets.

[0021] DCPA, also known as anhydrous dicalcium phosphate or anhydrous calcium hydrogen phosphate, is commercially available from a variety of sources. Free-flowing grades of DCPA suitable for use in pharmaceutical formulations herein include EMCOMPRESS® from JRS Pharma (www.jrspharma.com) and A-TAB from Innophos (www.innophos.com).

[0022] MCC, or microcrystalline cellulose, is commercially available from a variety of sources. Suitable free-flowing and high-density grades of MCC for use in pharmaceutical formulations according to the present invention include Avicel® pH102, Avicel® pH101, Avicel® pH200 (all manufactured by Dupont Pharma, www.dupont.co.uk), VIVAPUR® 102, and VIVAPUR® 200 (manufactured by JRS PHARMA GmbH & Co. KG, Rosenberg, Germany).

[0023] In addition to MCC and DCPA, the formulations herein may contain up to 25% w / w of further bulking agents selected from mannitol, lactose, silicified microcrystalline cellulose, polydextrose, trehalose, sucrose, glucose, cyclodextrins.

[0024] In embodiments, the total amount of MCC and DCPA in a pharmaceutical formulation herein is up to 85% w / w, e.g., 65.5%. Typically, the combined amount of MCC and DCPA in a formulation herein is between 15% w / w and 85% w / w, e.g., between 40% and 85% w / w.

[0025] In an embodiment, the amount of Compound (I) in a formulation according to the present invention is up to 60% w / w. In an embodiment, the amount of Compound (I) is up to 40% w / w, for example 27% w / w.

[0026] In an embodiment, the total amount of MCC and DCPA is 15% to 85% and the amount of Compound (I) is 10% to 60% (all % w / w).

[0027] In embodiments, Compound (I) is present as a free base. In embodiments, Compound (I) is present as a pharmaceutically acceptable salt form.

[0028] In embodiments, pharmaceutical formulations according to the present disclosure comprise a crystalline form of the free base of Compound (I). In embodiments, Compound (I) is present as the crystalline free base in polymorphic Form A, as described in WO 2018 / 077630 A1.

[0029] In embodiments, the pharmaceutical formulations herein further comprise a disintegrant selected from croscarmellose sodium, crospovidine, sodium starch glycolate, low-substituted hydroxypropyl cellulose (L-HPC), and pregelatinized starch 1500. In embodiments, the pharmaceutical formulations herein comprise sodium starch glycolate. Commercial grades of sodium starch glycolate suitable for use in formulations herein include Glycolys® LV (www.roquette.com) and Primojel® (www.dfepharma.com). In embodiments where the pharmaceutical formulations herein comprise a disintegrant, such as sodium starch glycolate, the disintegrant is present in an amount of up to 30% w / w, although lower amounts, such as 10% or 5%, are commonly used, or optionally up to 5% w / w, such as 1%, 2%, 3%, 4%, or 5% (all % w / w).

[0030] In embodiments, the pharmaceutical formulations herein further comprise a lubricant selected from magnesium stearate, calcium stearate, sodium stearyl fumarate (SSF), glyceryl behenate, and stearic acid. In embodiments, the lubricant is magnesium stearate. In embodiments where the pharmaceutical formulations herein comprise a lubricant, e.g., magnesium stearate, the lubricant is present in an amount of up to 4% w / w, optionally up to 2.5% w / w, e.g., 0.5%, 1%, 1.5%, 2%, or 2.5% (all w / w). 1.5% w / w magnesium stearate is a preferred amount and type of lubricant in pharmaceutical formulations herein. Commercial grade magnesium stearate suitable for use in pharmaceutical formulations herein includes LIGAMED® MF from Peter Greven (Peter Greven GmbH & Co. KG, www.peter-greven.de). The use of a lubricant in the pharmaceutical formulations herein helps ensure efficient tablet manufacturing, advantageously resulting in low ejection forces from tablet presses and minimizing defects in the tablet product.

[0031] The pharmaceutical formulations herein may contain additional additives depending on the specific properties required for the formulation. Such additional additives may be selected from, for example, mannitol, lactose, dicalcium phosphate, calcium sulfate dihydrate, tricalcium phosphate, dibasic calcium phosphate dihydrate, dibasic calcium phosphate anhydrous, silicified microcrystalline cellulose, co-processed combinations thereof, polydextrose, trehalose, sucrose, glucose, cyclodextrin, hydroxypropyl cellulose (such as Klucel™, www.ashland.com), and polyvinylpyrrolidone (Povidone K30, www.sigmaaldrich.com). However, as is evident from the data presented herein, additional additives are generally not required to achieve the advantageous combination of low SRS in the blend and high tensile strength in the tablet product.

[0032] In one embodiment, there is provided a tablet comprising Compound (I), MCC, DCPA, sodium starch glycolate, and magnesium stearate, wherein the ratio of MCC to DCPA is 3:1 to 2:3. In one embodiment, there is provided an immediate-release tablet comprising Compound (I), MCC, DCPA, a disintegrant such as sodium starch glycolate, and a lubricant such as magnesium stearate, wherein the ratio of MCC to DCPA is 3:1 to 2:3. In one embodiment, there is provided an immediate-release tablet comprising crystalline Compound (I), MCC, DCPA, a disintegrant such as sodium starch glycolate, and a lubricant such as magnesium stearate, wherein the ratio of MCC to DCPA is 3:1 to 2:3. In an embodiment, the immediate-release tablet is a coated tablet.

[0033] In one embodiment, there is provided an immediate release tablet comprising up to 40% w / w of Compound (I), MCC, DCPA, a disintegrant such as sodium starch glycolate in an amount of up to 5% w / w, and a lubricant such as magnesium stearate in an amount of up to 1.5% w / w, wherein the ratio of MCC to DCPA is from 3:1 to 2:3. In an embodiment, the immediate release tablet is a coated tablet.

[0034] In one embodiment, an immediate-release tablet is provided comprising Compound (I), MCC, DCPA, a disintegrant such as sodium starch glycolate in an amount of up to 5% w / w, and a lubricant such as magnesium stearate in an amount of up to 1.5% w / w, wherein the ratio of MCC to DCPA is from 3:1 to 2:3. In one embodiment, an immediate-release tablet is provided comprising crystalline Compound (I), MCC, DCPA, sodium starch glycolate in an amount of up to 5% w / w, and magnesium stearate in an amount of up to 1.5% w / w, wherein the ratio of MCC to DCPA is from 3:1 to 2:3. In an embodiment, the immediate-release tablet is a coated tablet. In an embodiment, the immediate-release tablet is a coated tablet.

[0035] In one embodiment, there is provided an immediate-release tablet comprising 27% w / w Compound (I), 39.9% w / w MCC, 26.6% w / w DCPA, 5.0% w / w sodium starch glycolate, and 1.5% w / w magnesium stearate. In an embodiment, the immediate-release tablet is a coated tablet.

[0036] As described above, the tablets may be coated with a standard pharmaceutically acceptable coating agent. The coating agent can be selected from standard coating agents known in the art, such as commercially available coating systems containing polymers, plasticizers, and pigments that enable immediate release, such as Opadry® II (www.colorcon.com). The coating can protect the tablet from light, moisture, and oxidation, and therefore advantageously further extend the shelf life of the tablet. The coating can also be used to improve the aesthetics of the tablet, improve the mechanical strength of the tablet, and mask odors or tastes.

[0037] The polymer used in the coating layer can be selected from, for example, cellulose-based polymers such as hydroxypropylmethylcellulose (HPMC) (found in Opadry® I (www.colorcon.com) and Aquarius Coating Systems (www.ashland.com)), hydroxypropylcellulose (HPC) and ethylcellulose (EC), or vinyls such as polyvinyl alcohol. Plasticizers are used to improve the elasticity of the coating film and lower the film-forming temperature of the polymer, thus allowing for lower processing temperatures. Suitable plasticizers include propylene glycol or polyethylene glycol or glycerol, acetate esters such as triacetin (glycerol triacetate), or triethyl citrate (TEC), glycerides such as acetylated monoglycerides, as well as mineral and vegetable oils. Colorants and pigments are used to increase the opacity and / or light protection of the film and to provide color. Suitable colorants include indigo carmine, tartrazine, allura red, and quinoline yellow; inorganic pigments such as titanium dioxide, iron oxide, and pearlescent pigments, and natural pigments such as vegetable juices, carotenoids, and turmeric.

[0038] The coating may also incorporate additional functional ingredients, such as glidants, flavorings, and viscosity modifiers, all of which are well known in the art. For general details on pharmaceutical coatings, see Aulton's Pharmaceutics, 5 th Edition, 2018, Elsevier, for example, pages 580-596.

[0039] Opadry® II is an example of a coating system that can be used for film-coated tablets according to the present disclosure. The exact composition of Opadry® II varies depending on the color selected, as pigments such as iron oxides are added to impart the desired color. For example, in the case of Opadry® II Beige (85F270011), 98.8% by weight of the coating is composed of polyvinyl alcohol, titanium dioxide polyethylene glycol 3350, and talc (the remainder being yellow iron oxide, red iron oxide, and black iron oxide in amounts of 40, 23.8, 20.2, and 14.8 (all % w / w), respectively).

[0040] The Aquarius coating system can be used as well, and examples of suitable compositions for such coatings are described below: Aquarius Preferred HSP coating is a high solids coating based on copovidone with a cellulosic polymer, having the composition shown below.

[0041] [Table 1]

[0042] In one embodiment, there is provided a method for preparing a tablet comprising a pharmaceutical formulation comprising Compound (I), MCC and DCPA, comprising the steps of: i) blending Compound (I) or a pharmaceutically acceptable salt thereof with MCC and DCPA, and optionally further excipients, e.g., by dry granulation, to form a blend; and ii) compressing the blend, e.g., by roller compaction, to provide a tablet.

[0043] A typical tableting process begins with filling a bulk mix or granules, in a batch or continuous process, into a feeder frame that consistently fills a tableting die with a predetermined weight of material. The contents of the filled tableting die are then compressed, typically by the action of upper and lower punches, to form a compacted formulation, which is then ejected to form a complete tablet.

[0044] Tablets prepared from pharmaceutical formulations herein advantageously have high tensile strength and, as a result, exhibit good mechanical stability. Formulations herein comprise a blend of the active pharmaceutical ingredient (API), Compound (I), with MCC and DCPA, which exhibit good strain rate sensitivity (SRS) of approximately 20% or less, allowing for rapid blending of the API and excipients in the manufacture of tablets containing high w / w amounts of Compound (I). Formulations herein provide tablets that can be reproducibly manufactured without over-compression and have porosity values corresponding to reproducible dissolution profiles.

[0045] Tablets herein are prepared from formulations herein by standard techniques, such as roller compaction or direct compaction. Tablets herein contain Compound (I) in an amount suitable for administration to a patient in need thereof, either as a single tablet or as multiple tablets. The dose of Compound (I) in the compositions herein required for the therapeutic or prophylactic treatment of a particular disease or medical condition will necessarily vary depending, for example, on the host being treated and the severity of the illness being treated. The amount of active compound administered will depend on the subject being treated, the severity of the disorder or condition, the rate of administration, the pharmacokinetics of the compound, and the judgment of the prescribing physician. The amount of Compound (I) in an individual tablet, i.e., unit dose, generally ranges from 5 mg to 250 mg, e.g., 5, 10, 20, 25, 50, 75, 100, 150, or 250 mg. In embodiments, tablets herein contain 25 mg, 50 mg, or 100 mg of Compound (I). In embodiments, tablets herein contain 75 mg of Compound (I). In embodiments, the w / w% of Compound (I) in a tablet according to the present invention is up to 40%, for example, 20%, 25%, 27%, 30%, 35%, or 35%. In embodiments, the w / w% of Compound (I) in a tablet according to the present invention is 27%.

[0046] As used herein, unless otherwise specified, it will be understood that the term "ca" is used synonymously with the term "approximately." By way of explanation, unless otherwise specified, when the term "ca" is used it indicates a small deviation from the recited reference value, i.e., ±10% (conveniently ±5%, e.g., ±2%).

[0047] Notably, the formulations herein exhibit immediate release. As used herein, the term "immediate release" or "IR" is used in its conventional sense to refer to a dosage form that provides rapid release of Compound (I) after administration. For example, an immediate release pharmaceutical composition means a composition in which 80% or more of the drug is dissolved from the composition 30 minutes after the start of the dissolution test. This test is performed in accordance with the dissolution test (paddle method) described in the United States Pharmacopoeia, as described in the Examples below (dissolution tests are performed in pH 6.8 phosphate buffer at 75 rpm using a USP2 apparatus), using 900 mL of an appropriate test fluid (such as a USP buffer, pH 6.8 or pH 7.4), and under conditions of paddle rotation speed of 50, 75, or 100 rpm (e.g., as in USP Apparatus II (paddle)).

[0048] An iterative design process led to prototype formulations containing blends of MCC / DCPA fillers, selected to outperform a range of other filler blends, such as MCC / mannitol systems. The Compound (I) / MCC / DCPA blends were found to exhibit a range of desirable properties. As a first example, these Compound (I) / MCC / DCPA blends were observed to have significantly higher flow function coefficients (FFCs) than the other blends evaluated. This is an advantage, as a higher FFC means a lower tendency for granulation issues that can impede processing into tablets by roller compaction or ultimately by continuous direct compression (Figure 1, entry C). As a second example, further profiling of each prototype blend revealed that tablets made from the Compound (I) / MCC / DCPA blends exhibited superior tensile strength and porosity (Figure 3, entries C and D). A porosity of >9% was targeted to avoid variable dissolution and the risk of over-compression. Prototype Compound (I) / MCC / DCPA blends also consistently delivered tablets with tensile strengths >2 MPa (see below for details of the technique for measuring this). In addition to these properties, prototype Compound (I) / MCC / DCPA blends were also found to have advantageously lower ejection forces than the corresponding Compound (I) / mannitol / MCC blends, with tablet ejection forces of <800 N and >1000 N for each excipient, respectively (see Figure 3, entry C). Lower ejection forces are desirable because they mean that tablets are less likely to stick to the tableting punches, resulting in less defective tablets during production.

[0049] Having established the advantageous properties of the Compound (I) / MCC / DCPA prototype formulation, experiments were conducted to establish the MCC / DCPA ratio that would result in a blend strain rate sensitivity (SRS) of approximately 20% and a tablet tensile strength of >2 MPa. Optimal ratios of MCC to DCPA in formulations herein ranging from 3:1 MCC to DCPA to 2:3 MCC to DCPA were thus established (see Figure 6).

[0050] Formulations having ratios of MCC to DCPA within the preferred range of 3:1 MCC to DCPA to 2:3 MCC to DCPA can be used to provide tablets with a desirable combination of blend SRS and tablet tensile strength and high loadings of Compound (I), up to 60%.

[0051] Within the above range of MCC to DCPA blend ratios that yield desirable blend SRS and tablet tensile strength, it has also been found advantageous to work in the range of 3:1 MCC to DCPA to 3:2 MCC to DCPA because, by reducing the amount of the relatively concentrated DCPA additive, blends at such ratios are less susceptible to coning of the material when the formulation is exposed to biorelevant dissolution media (a phenomenon that does not impair release in vivo but can impair release in in vitro tests performed for quality testing purposes).

[0052] The exact w / w% total amount of MCC and DCPA used in a formulation, as opposed to the relative ratio of the two fillers, can vary depending on how much active ingredient, Compound (I), is present in the formulation and what other additives may be present. The amount of each specific ingredient (active ingredient or additive) in the formulations herein is expressed as a percentage value, which refers to w / w%, i.e., the weight of the ingredient divided by the total weight of all ingredients, multiplied by 100 to arrive at a percentage. This w / w% does not include any optional coating layer that may be used to coat tablets formed from the formulation.

[0053] In a preferred embodiment, the tablet according to the present invention has the composition in Table 3 below, with an optional film coating.

[0054] medical use As described above, Compound (I) is a potent estrogen receptor binding agent that reduces cellular levels of ERα. Therefore, compositions herein may be useful as antitumor agents and may be useful in treating conditions such as those described in International Patent Application WO 2018 / 077630A1, which discloses Compound (I). For example, immediate-release pharmaceutical compositions herein may be useful in delivering Compound (I) to patients, which may act as selective inhibitors of mammalian cancer cell proliferation, survival, motility, dissemination, and invasion, resulting in the inhibition of tumor growth and survival, and the inhibition of metastatic tumor growth. In particular, compositions herein may be useful as antiproliferative and anti-invasive compositions in the prevention and / or treatment of solid tumor diseases (including, but not limited to, tumors that are sensitive to ERα and involve signaling processes that lead to cell proliferation and survival, as well as the migration and invasion of metastatic tumor cells). Furthermore, compositions herein may be useful in the prevention or treatment of tumors mediated, alone or in part, by ERα antagonism and downregulation. That is, the compositions can be used to produce an ERα inhibitory effect in a warm-blooded animal in need of such treatment. For example, the compositions herein may be useful for the prevention or treatment of cancer, including, but not limited to, estrogen-sensitive diseases or conditions (including diseases that have developed resistance to endocrine therapy), and may be useful for treating breast cancer (including ER-positive breast cancer) and gynecological cancer (including endometrial cancer, ovarian cancer, and cervical cancer), as well as cancers that express mutated ERα proteins, which may be de novo mutated or may have arisen as a result of previous treatment with endocrine therapy (such as an aromatase inhibitor, e.g., a nonsteroidal aromatase inhibitor such as letrazole or anastrazole).

[0055] In one embodiment there is provided an immediate release pharmaceutical composition as defined above for use in therapy.

[0056] A further aspect of the present specification provides an immediate release pharmaceutical composition according to the present specification as defined above for use in medicine for warm-blooded animals such as humans.

[0057] Compound (I) present in the compositions herein provides an inhibitory effect on ERα. Therefore, the compositions herein are expected to be useful for treating diseases or conditions mediated solely or partially by ERα. That is, the compositions herein can be used to produce an ERα inhibitory effect in a warm-blooded animal in need of such treatment. Thus, the compositions herein provide a method for treating cancer (including solid tumor diseases), including, but not limited to, estrogen-sensitive diseases or conditions (including diseases that have developed resistance to endocrine therapy), characterized by the inhibition of ERα. That is, the compositions herein can be used to produce an anti-proliferative and / or anti-invasive effect by inhibiting ERα alone or in part, thereby suppressing and / or treating solid tumor diseases. Therefore, the compositions herein are expected to be useful for preventing or treating cancer in warm-blooded animals, such as humans, that are sensitive to ERα inhibition, particularly for the treatment of solid tumor diseases such as those mentioned above. In certain embodiments, the compositions herein provide a method for producing an anti-proliferative effect in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation as defined above. In further particular embodiments, administration of the pharmaceutical formulations herein to a patient in need thereof provides a method for producing an anti-invasive effect by inhibiting and / or treating solid disease in a warm-blooded animal, such as a human. In further particular embodiments, the present disclosure provides a method for preventing or treating cancer in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation according to the present disclosure as defined above. In further particular embodiments, the present disclosure provides a method for preventing or treating solid tumor disease in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation according to the present disclosure.In further specific embodiments, the description provides a method for preventing or treating tumors sensitive to inhibition of ERα, which is involved in signaling steps that lead to tumor cell proliferation, survival, invasion, and migration, in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation provided herein. In further specific embodiments, the description provides a method for providing an inhibitory effect on ERα in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation provided herein. In further specific embodiments, the description provides a method for providing a selective inhibitory effect on ERα in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation provided herein. In further specific embodiments, the description provides a method for treating breast cancer or gynecological cancer in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation provided herein. In further specific embodiments, the description provides a method for treating breast, endometrial, ovarian, or cervical cancer in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation provided herein. In further specific embodiments, the description provides a method for treating breast cancer in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation provided herein. In further specific embodiments, the description provides a method for treating breast cancer that has become resistant to one or more other endocrine therapies in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation provided herein. In further specific embodiments, the description provides a method for treating ER-positive breast cancer in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a pharmaceutical formulation provided herein.

[0058] In one embodiment herein, there is provided a pharmaceutical composition according to the present specification as defined above for use in producing an anti-proliferative effect in a warm-blooded animal such as a human. In another embodiment, there is provided a pharmaceutical composition according to the present specification as defined above for use in a warm-blooded animal such as a human as an anti-invasive agent in the inhibition and / or treatment of solid tumor disease. In a particular embodiment, there is provided a pharmaceutical composition according to the present specification as defined above for use in the prevention or treatment of cancer in a warm-blooded animal such as a human. In yet another embodiment, there is provided a pharmaceutical composition according to the present specification as defined above for use in the prevention or treatment of solid tumor disease in a warm-blooded animal such as a human. In a particular embodiment, there is provided a pharmaceutical composition according to the present specification as defined above for use in the prevention or treatment of tumors sensitive to inhibition of ERα, which is involved in signal transduction processes that lead to the proliferation, survival, invasion, and migration of tumor cells. In a further particular embodiment, there is provided a pharmaceutical composition according to the present specification as defined above for use in providing an inhibitory effect on ERα. In a further particular embodiment, there is provided a pharmaceutical composition according to the present specification as defined above for use in the treatment of breast cancer or gynecological cancer. In a further particular embodiment, there is provided a pharmaceutical composition according to the present specification as defined above for use in the treatment of breast, endometrial, ovarian or cervical cancer. In a further particular embodiment, there is provided a pharmaceutical composition according to the present specification as defined above for the treatment of breast cancer. In a further particular embodiment, there is provided a pharmaceutical composition according to the present specification as defined above for the treatment of breast cancer that has developed resistance to one or more endocrine therapies. In a further particular embodiment, there is provided a pharmaceutical composition according to the present specification as defined above for the treatment of ER-positive breast cancer.

[0059] A further aspect of the present disclosure provides the use of a composition according to the present disclosure as defined herein in the manufacture of a medicament for use in producing an anti-proliferative effect in a warm-blooded animal such as a human. In another embodiment, there is provided the use of a composition according to the present disclosure as defined herein in the manufacture of a medicament for use as an anti-invasive agent in the inhibition and / or treatment of solid tumor disease in a warm-blooded animal such as a human. In a particular embodiment, there is provided the use of a composition according to the present disclosure as defined herein in the manufacture of a medicament for use in the prevention or treatment of cancer in a warm-blooded animal such as a human. In yet another embodiment, there is provided the use of a composition according to the present disclosure as defined herein in the manufacture of a medicament for use in the prevention or treatment of solid tumor disease in a warm-blooded animal such as a human. In a further particular embodiment, there is provided the use of a composition according to the present disclosure as defined herein in the manufacture of a medicament for use in the prevention or treatment of tumors sensitive to inhibition of ERα, which is involved in signaling steps that lead to tumor cell proliferation, survival, invasion, and migration. In a further particular embodiment, there is provided the use of a composition according to the present disclosure as defined herein in the manufacture of a medicament for use in providing an inhibitory effect on ERα in a warm-blooded animal such as a human. In a further particular embodiment, there is provided the use of a composition according to the present specification as defined above in the manufacture of a medicament for use in providing an inhibitory effect on ERα in a warm-blooded animal such as a human. In a further particular embodiment, there is provided the use of a composition according to the present specification as defined above in the manufacture of a medicament for use in the treatment of breast cancer or gynecological cancer in a warm-blooded animal such as a human. In a further particular embodiment, there is provided the use of a composition according to the present specification as defined above in the manufacture of a medicament for use in the treatment of breast, endometrial, ovarian or cervical cancer in a warm-blooded animal such as a human. In a further particular embodiment, there is provided the use of a composition according to the present specification as defined above in the manufacture of a medicament for the treatment of breast ... that has developed resistance to one or more endocrine therapies in a warm-blooded animal such as a human.In a further particular embodiment, there is provided the use of a composition according to the present specification as defined above in the manufacture of a medicament for the treatment of ER-positive breast cancer in a warm-blooded animal such as a human.

[0060] The pharmaceutical compositions herein may be administered alone, as monotherapy, or in addition to one or more other substances and / or treatments. Such combined treatment may be achieved by way of the simultaneous, sequential or separate administration of the individual components of the treatment.

[0061] The anti-cancer treatment defined herein may be applied as a monotherapy or may comprise, in addition to the compounds herein, conventional surgery or radiotherapy or chemotherapy, which may include one or more of the following categories of anti-tumor agents: (i) Other antiproliferative / antineoplastic drugs and combinations thereof used in medical oncology, such as alkylating agents (e.g., cisplatin, oxaliplatin, carboplatin, cyclophosphamide, nitrogen mustard, melphalan, chlorambucil, busulfan, temozolomide, and nitrosoureas); antimetabolites (e.g., gemcitabine and antifolates, such as fluoropyrimidines (such as 5-fluorouracil and tegafur), raltitrexed, methotrexate, cytosine arabinoside, and hydroxyurea); antitumor antibiotics (e.g., antineoplastic agents, such as benzodiazepines, benzocaine, ... tracyclines such as adriamycin, bleomycin, doxorubicin, daunomycin, epirubicin, idarubicin, mitomycin-C, dactinomycin, and mithramycin; mitotic inhibitors (such as vinca alkaloids (such as vincristine, vinblastine, vindesine, and vinorelbine) and taxoids (such as taxol and taxotere) and polo kinase inhibitors); and topoisomerase inhibitors (such as epipodophyllotoxins (such as etoposide and teniposide), amsacrine, topotecan, and camptothecin); (ii) antihormonal agents, such as antiestrogens (e.g., tamoxifen, fulvestrant, toremifene, raloxifene, droloxifene, and iodoxifene), progestogens (e.g., megestrol acetate), aromatase inhibitors (e.g., anastrozole, letrozole, vorazole, and exemestane); (iii) Inhibitors of growth factor function and their downstream signaling pathways: these include Ab modulators of any growth factor or growth factor receptor target, as reviewed by Stern et al. Critical Reviews in Oncology / Haematology, 2005, 54, pp11-29; also include small molecule inhibitors of such targets, such as kinase inhibitors, examples of which include the anti-erbB2 antibodies trastuzumab (Herceptin™) and pertuzumab (Perjeta™), the HER-2 directed antibody drug conjugates trastuzumab deruxtecan (Enhertu™) and trastuzumab emtansine (Kadcyla™), the anti-EGFR antibody panitumumab, the anti-EGFR antibody cetuximab (Erbitux, C225), and tyrosine kinase inhibitors including inhibitors of the erbB receptor family, such as epidermal growth factor family receptor (EGFR) These include inhibitors of erbB1 / erbB1 tyrosine kinases (such as gefitinib, osimertinib, or erlotinib), erbB2 tyrosine kinase inhibitors (such as lapatinib), and mixed erb1 / 2 inhibitors (such as afatanib); similar strategies are available for other classes of growth factors and their receptors, such as inhibitors of the hepatocyte growth factor family or its receptors, including c-met and ron; inhibitors of insulin and insulin growth factor family or its receptors (IGFR, IR), inhibitors of the platelet-derived growth factor family or its receptor (PDGFR), and inhibitors of signaling mediated by other receptor tyrosine kinases, such as c-kit, AnLK, and CSF-1R; Also included are modulators that target signaling proteins in the PI3-kinase signaling pathway, for example, inhibitors of PI3-kinase isoforms such as PI3K-α / β / γ, and inhibitors of ser / thr kinases such as AKT, mTOR (such as AZD2014 and everolimus), PDK, SGK, PI4K or PIP5K; and inhibitors of serine / threonine kinases not listed above, for example, raf inhibitors (such as vemurafenib), MEK inhibitors. (such as selumetinib), Abl inhibitors (such as imatinib or nilotinib), Btk inhibitors (such as ibrutinib, acalabrutinib, or zanubrutinib), Syk inhibitors (such as fostamatinib), Aurora kinase inhibitors (e.g., AZD1152), inhibitors of other ser / thr kinases such as JAK, STAT, and IRAK4, and cyclin-dependent kinase inhibitors (such as palbociclib, abemaciclib, ribociclib, trilaciclib, or relociclib); (iv) modulators of DNA damage signaling pathways, such as PARP inhibitors (e.g., olaparib, rucaparib, niraparib, talazoparib), ATR inhibitors, or ATM inhibitors; (v) modulators of apoptotic and cell death pathways, such as Bcl family modulators (e.g., ABT-263 / navitoclax, ABT-199); (vi) antiangiogenic agents, such as those that inhibit the effects of vascular endothelial growth factor [e.g., the anti-vascular endothelial growth factor antibody bevacizumab (Avastin™), and for example, VEGF receptor tyrosine kinase inhibitors, such as sorafenib, axitinib, pazopanib, sunitinib, and vandetanib (as well as compounds that act by other mechanisms (e.g., linomide, inhibitors of integrin αvβ3 function, and angiostatin)]; (vii) vasculopathic agents, such as combretastatin A4; (viii) anti-invasive agents, such as c-Src kinase family inhibitors (such as dasatinib, J. Med. Chem., 2004, 47, 6658-6661 and bosutinib (SKI-606)), and metalloproteinase inhibitors (such as marimastat), inhibitors of urokinase plasminogen activator receptor function, or antibodies against heparanase; (ix) immunotherapy approaches (e.g., ex vivo and in vivo approaches to increasing the immunogenicity of a patient's tumor cells, including, for example, transfection of cytokines such as interleukin-2, interleukin-4, or granulocyte-macrophage colony-stimulating factor, approaches to reducing T-cell anergy, approaches using transfected immune cells such as cytokine-transfected dendritic cells, approaches using cytokine-transfected tumor cell lines, and approaches using anti-idiotypic antibodies). Specific examples include monoclonal antibodies targeting PD-1 (e.g., pembrolizumab, nivolumab, cemiplimab), monoclonal antibodies targeting PD-L1 (e.g., durvalumab, atezolizumab, or avelumab), or monoclonal antibodies targeting CTLA4 (e.g., ipilimumab and tremelimumab); (x) Antisense or RNAi-based therapies, such as those directed against the listed targets. (xi) Gene therapy approaches (including, for example, approaches to replace abnormal genes such as abnormal p53 or abnormal BRCA1 or BRCA2, GDEPT (gene-directed enzyme prodrug therapy) approaches, such as those using cytosine deaminase, thymidine kinase or bacterial nitroreductase enzymes, and approaches to increasing a patient's tolerance to chemotherapy or radiotherapy, such as multidrug resistance gene therapy).

[0062] When compound (I) is administered in combination with other therapeutic agents, compound (I) does not need to be administered by the same route as the other therapeutic agents, and may be administered by different routes due to different physicochemical properties. For example, compound (I) may be administered orally to achieve and maintain a good blood level, while the other therapeutic agents may be administered intravenously. Initial administration may be performed according to established protocols known in the art, and then the dosage, administration mode, and administration time may be modified by a skilled clinician based on the observed effects.

[0063] The particular choice of other therapeutic agent will depend on the attending physician's diagnosis and judgment regarding the individual's condition, as well as the appropriate treatment protocol. According to this aspect of the present specification, there is provided a combination suitable for use in treating cancer, comprising compound (I) or a pharmaceutically acceptable salt thereof and another anti-tumor agent, particularly any one of the anti-tumor agents listed in (i) to (xi) above. In particular, the anti-tumor agents listed in (i) to (xi) above are standard of care for the particular cancer to be treated, and one of ordinary skill in the art will understand the meaning of "standard of care."

[0064] Thus, in a further aspect of the present specification, there is provided a combination suitable for the treatment of cancer, comprising a composition of the present specification and another anti-tumor agent, particularly an anti-tumor agent selected from those listed in (i) to (xi) above.

[0065] In a further aspect herein, there is provided a combination suitable for the treatment of cancer comprising the composition herein as defined above and any one of the anti-tumor agents listed in (i) above.

[0066] In a further aspect herein there is provided a combination suitable for use in the treatment of cancer comprising a composition herein as defined above and a taxoid, such as taxol or taxotere, advantageously taxotere.

[0067] In a further aspect herein, there is provided a combination suitable for the treatment of cancer comprising a composition herein and another anti-tumor agent, particularly an anti-tumor agent selected from those listed in (ii) above.

[0068] In a further aspect herein, there is provided a combination suitable for use in the treatment of cancer, comprising the composition herein as defined above and any one of the antihormonal agents listed in (ii) above, such as any one of the antiestrogens listed in (ii) above, or an aromatase inhibitor, such as listed in (ii) above.

[0069] In a further aspect herein, there is provided a combination suitable for use in the treatment of cancer comprising a composition herein and an mTOR inhibitor, such as AZD2014 or everolimus.

[0070] In a further aspect herein, there is provided a combination suitable for use in the treatment of cancer, comprising a composition herein and a PI3K α-inhibitor, such as a PI3K α / δ inhibitor of WO 2014 / 114928. An example of a suitable PI3K α / δ inhibitor is Example 3 of WO 2014 / 114928.

[0071] In a further aspect herein, there is provided a combination suitable for use in the treatment of cancer, comprising a composition herein and palbociclib, abemaciclib, or ribociclib.

[0072] In one aspect, the above-mentioned combinations of the compositions herein with the anti-tumour agents listed under (ii) above, or mTOR inhibitors (e.g. AZD2014 or everolimus), or PI3K alpha-inhibitors (e.g. the PI3K alpha / delta inhibitors of WO 2014 / 114928, in particular Example 3 therein), or palbociclib, abemaciclib or ribociclib, are suitable for use in the treatment of breast cancer or gynecological cancers, such as breast, endometrial, ovarian or cervical cancer, in particular breast cancer, such as ER-positive breast cancer.

[0073] When the term "combination" is used herein, it should be understood to refer to simultaneous administration, separate administration, or sequential administration. In one embodiment herein, "combination" refers to simultaneous administration. In another embodiment herein, "combination" refers to separate administration. In a further embodiment herein, "combination" refers to sequential administration. When administration is sequential or separate administration, delay in administration of the second component should not be such as to eliminate the beneficial effect of the combination. When a combination of two or more components is administered separately or sequentially, it will be understood that the dosing schedule of each component can be different from and independent of the other components. Advantageously, the compounds herein are administered once a day.

[0074] Thus, in an additional aspect herein, there is provided a method of treating cancer in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to said animal an effective amount of a composition herein in combination with an anti-tumor agent selected from those listed in (i) to (xi) above.

[0075] According to a further aspect of the present specification, there is provided a method of treating cancer in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a composition of the present specification in combination with any one of the antihormonal agents listed in (ii) above, such as any one of the antiestrogens listed in (ii) above, or an aromatase inhibitor, such as those listed in (ii) above.

[0076] In a further aspect herein, there is provided a method of treating cancer in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a composition herein in combination with an mTOR inhibitor, such as AZD2014 or everolimus, for example, everolimus in a daily dose of up to 10 mg.

[0077] In a further aspect herein, there is provided a method of treating cancer in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to the animal an effective amount of a composition herein in combination with a PI3K α-inhibitor, such as a PI3K α / δ inhibitor of WO 2014 / 114928. An example of a suitable PI3K α / δ inhibitor is Example 3 of WO 2014 / 114928.

[0078] In a further aspect herein, there is provided a method of treating cancer in a warm-blooded animal, such as a human, in need of such treatment, comprising administering to said animal an effective amount of a composition herein in combination with palbociclib, abemaciclib, or ribociclib.

[0079] In one embodiment, the above method of treating cancer is a method of treating breast cancer or gynecological cancer, such as breast, endometrial, ovarian or cervical cancer, in particular breast cancer, such as ER-positive breast cancer.

[0080] In one embodiment, the compositions and methods described herein provide kits for the treatment of disorders, e.g., disorders described herein. Such kits include a composition described herein in a container and, optionally, instructions teaching use of the kit according to the various methods and procedures described herein. Such kits may also include information such as reference scientific literature, package inserts, clinical trial results and / or summaries thereof (displaying or demonstrating the activity and / or benefits of the composition and / or describing dosage, administration, side effects, drug interactions), or other information useful to healthcare providers. Such information may be based on the results of various studies, e.g., studies using laboratory animals, including in vivo models, and studies based on human clinical trials. The kits described herein may be provided, sold, and / or recommended to healthcare providers, including physicians, nurses, pharmacists, and formulary officials. In some embodiments, kits may also be sold directly to consumers.

[0081] The compositions herein can be used for diagnostic purposes and as research tools. For example, compositions containing Compound (I), alone or in combination with other compounds, can be used as tools in differential and / or combined analyses to elucidate the expression patterns of genes expressed in cells and tissues.

[0082] In addition to being useful for human treatment, the compositions herein may be useful for veterinary treatment of companion animals, exotic animals and farm animals, including mammals, and rodents, etc. Advantageously, such animals include horses, dogs and cats. [Example]

[0083] N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine (compound (I)) can be prepared according to the method disclosed in WO 2018 / 077630 A1 (Example No. 17).

[0084] After preliminary screening studies, several prototype formulations containing Compound (I), a filler, a disintegrant, and a lubricant were prepared by dry granulation for evaluation.

[0085] In these prototype formulations, the amount of Compound (I) was maintained at 27% w / w, the total amount of filler was set at 65.5% w / w, and the remaining 6.5% w / w was a disintegrant (5%) and a lubricant (1.5%). Tablets could then be formed from the resulting blend by roller compaction as described below. The excipients were selected after modeling studies suggested that the resulting formulation had a shelf life of 3 years.

[0086] Test formulation blends A to D having the compositions set forth in Table 1 were prepared by dry granulation. Compound (I) was used in crystalline form A.

[0087] [Table 2]

[0088] Example 1: Tablets were prepared by dry blending / direct compression as follows: Compound (I) was dry blended with the excipients listed in the table (except magnesium stearate) using a TURBULA® T2 blender (www.wab-group.com) at a speed of 30 rpm for 10 minutes. The magnesium stearate was then added to the mixture, and blending continued for an additional 5 minutes at 30 rpm. The dry mixture was compressed to form 370.4 mg tablets using a Killian STYL'One press (www.romaco.com) equipped with 13 x 7.5 mm oval punches at a compression pressure of between 120 and 250 MPa.

[0089] Example 2: Tablets were prepared using a dry blending / roller compaction method as follows: Compound (I) was dry mixed with the additives listed in the table (except magnesium stearate) using a TURBULA® T2 blender at a speed of 30 rpm for 10 minutes, and a portion of the magnesium stearate (0.5% of the batch weight) was added, and mixing was continued for another 5 minutes at 30 rpm. The mixture was roller compacted using a Gerteis Mini-Pactor® (www.gerteis.com) with a roller pressure of 7 kN / cm, a gap size of 2 mm, and a roller speed of 2 rpm. The resulting ribbon was then milled into granules by passing it through a mill attached to a roller compactor. The resulting granules were returned to the TURBULA® T2 blender, and the remaining aliquot of magnesium stearate (1% of the batch weight) was added, and mixing was continued for 5 minutes at 30 rpm. The lubricated granules were compressed to form 370.4 mg tablets using a Piccola Riva Classic press ( https: / / riva-europe.co.uk / products / piccola-classic-tablet-press ) equipped with 13 × 7.5 mm oval punches.

[0090] The uncompacted blends were evaluated for flow (Figure 1) and wall friction angle to assess the effect of additives on the blend flow into a roller compactor. The flow function coefficient (FFC) of the blends was determined using a Schultz RST-XS ring shear tester (http: / / www.dietmar-schulze.com / rstxse.html) according to the manufacturer's instructions at normal stresses of 1000, 2000, and 4000 Pa pre-shear stresses. The results (see Figure 1) revealed that all tested formulations A through D had acceptable flow properties for roller compaction. While a blend flow function coefficient (FFC) of 4 or greater was desirable, prototype C, which contained a combination of MCC and DCPA as fillers, exhibited a significantly higher (and therefore more favorable) FFC than the other prototypes. The results highlight that the MCC / DCPA system in Prototype C has potential as a robust formulation option for roller compaction manufacturing, with the flow properties required for eventual transfer to continuous direct compression (CDC) tableting. In addition to blend flowability, as described further below, strain rate sensitivity (SRS) is an important determining factor in assessing whether a particular formulation is amenable to transfer to CDC manufacturing, as the rate at which materials can be blended together to create a homogenous blend for compression / tabletting dictates process throughput.

[0091] Continuous direct compression (CDC) is a highly desirable tableting option because a constant supply of active ingredients and excipients can be input into a process that combines both the blending / granulation process and the compression / tabletting step to provide the desired tablet as the output. Additional milling and sieving steps can be incorporated into the CDC process as needed. Advantages of CDC include eliminating the need to transfer material between equipment and eliminating the potential for material loss, as well as accelerating, reducing footprint, and streamlining the process, which can reduce product cost. Good flowability is essential for tableting reproducibility using the CDC method.

[0092] The wall friction angle (WFA) of the blends was also evaluated and in all cases was measured in the range of 65% to 68%, a value associated with moderate adhesion. Thus, all prototype blends had acceptable FFC and WFA values.

[0093] The prototype blends were then subjected to roller compaction at a constant rolling force of 7 kN / cmor and direct compaction at compression pressures of 120-250 MPa as described above.

[0094] The ejection force data for the produced tablets made from the prototype blends by the roller compaction method described above are shown in Figure 2. An ejection force of <800 N was selected as a target to avoid punch sticking and tablet defects during the compression process. The results showed that increasing the amount of DCPA in the formulation resulted in a decrease in ejection force, with MCC / DCPA blends producing an ejection force of less than 800 N, while MCC / mannitol blends A and B had an ejection of approximately 1000 N.

[0095] The porosity of the tablets was determined from the apparent and true densities of the tablets using the following formula (I): Porosity = 100 x (apparent density / true density) (I)

[0096] The true density of tablet (II) was obtained by helium pycnometry using an AccuPyc II 1345 pycnometer (see https: / / www.micromeritics.com / Product-Showcase / AccuPyc-II-1340.aspx for details), a technique that allows for the volume of the tablet by gas displacement, excluding surface and internal porosity. True density = mass / volume of solid (II)

[0097] In contrast, when the volume of a tablet is calculated using the standard formula (III) below, the surface and internal pores of the tablet are included. Tablet volume = (((2π(cap height)2c(3 × radius of curvature – cap height)) / 3) + ((π(diameter / 2)2) × (thickness – 2 × cap height)) (III)

[0098] Eleven tablets were accurately weighed, placed in the sample cup previously used for calibration, and analyzed according to the manufacturer's instructions.

[0099] The tablet envelope density (apparent density) was calculated for each of the 10 tablets from the dimensions of each tablet and its weight using the following formula: Apparent density = tablet mass ÷ tablet envelope volume (IV)

[0100] Hardness and tensile strength: A Sotax HT100 (www.sotax.com) was used to determine the weight, hardness, thickness and diameter of 10 tablets produced by roller compaction from Formulations A to D. Tensile strength was calculated from the hardness data and the dimensions of the tablets produced from the Sotax HT100 and the dimensions of the compression tool using Pitt's formula (see KG Pitt & MG Heasley Powder Technology, 2013 (238) p 169-175).

[0101] As can be seen from Figure 3, of the four prototype formulation batches, only Formulation C, containing MCC and DCPA as fillers, consistently delivered tablets with the target tensile strength >2 MPa. Each tablet was a 100 mg strength tablet (370.4 mg compressed weight) produced according to Example 1 above. Advantageously, the porosity of the tablets produced with Formulation C also demonstrated higher porosity than the other tablet batches. This indicates a lower risk of over-compression for Formulation C, a desirable property for reproducible release.

[0102] Having established the physical properties of the blend that facilitated robust reproducibility for producing tablets from blends of Compound (I) and MCC / DCPA, dissolution experiments were performed using USP2 apparatus to establish molecular disintegration. Tablets prepared from Formulation C by roller compaction provided the desired dissolution of 85% in 30 minutes, typical of an immediate release formulation.

[0103] To expand on the already advantageous profile of formulations of Compound (I) with MCC / DCPA as fillers, experiments were conducted to determine whether MCC / DCPA formulations would also provide formulation blends with strain rate sensitivity of approximately 20% or less, allowing for high-speed manufacturing, for example, by roller compaction via continuous direct compression. In addition, it was necessary to identify the design space for formulations that would provide tablets with high tensile strength (>2 MPa) upon compaction. Therefore, a second set of formulations and tablets detailed in Table 2 were prepared according to Examples 1 and 2 above. This set of formulations allowed for the establishment of the optimal ratio of MCC to DCPA.

[0104] [Table 3]

[0105] The strain rate sensitivity (SRS) of each component in the formulation was calculated using the following formula: SRS=100(Py(high speed)-Py(slow speed)) / Py(slow speed) where the yield stress, Py, was determined by the Heckel method using a compaction simulator (Phoenix, performed as a service by Merlin Powder Characterisation Ltd, see https: / / www.merlin-pc.com / services / strain-rate-sensitivity) equipped with a 10 mm diameter, round, flat punch and die set. More specifically, aliquots (approximately 327 mg) of each individual component of Formulations E, F, C, G, and H were compressed to theoretical zero porosity at punch speeds of 300 mm per second (fast) and 0.1 mm per second (slow). The yield stress (Py) was calculated over a punch pressure range of 25 to 75 MPa. The overall strain rate sensitivity of the formulation was then calculated based on the volumetric ratio of each component in the formulation.

[0106] The strain rate sensitivity of Formulations E, F, C, G, and H, as measured by the above techniques, is shown below in Figure 4. As can be seen from Figure 4, compositions having 25% or more DCPA as a filler, i.e., compositions having a maximum ratio of 3 MCC to 1 DCPA, or 3:1 MCC:DCPA, result in desirable strain rate sensitivities of approximately 20% or less.

[0107] The tensile strength of tablets prepared from Formulations E, F, C, G, and H by direct compaction was also measured and is shown in Figure 5. As can be seen from Figure 5, all formulations yielded tablets with a tensile strength of 2 MPa or greater, and tensile strength was observed to increase with MCC content. The data from Figures 4 and 5 are summarized in Figure 6, which illustrates a composition that yields tablets with desirable tensile strengths and has an optimal SRS. Tablets prepared using roller compaction by the process of Example 2 above also exhibited desirable tensile strengths of >2 MPa.

[0108] Final confirmation of the properties of formulations containing MCC / DCPA was achieved through dissolution experiments. The dissolution experiments described herein were performed according to the United States Pharmacopoeia using Apparatus II (paddle) with 900 mL of either pH 6.8 phosphate buffer (50 mM NaHPO) or simulated gastric fluid (SGF) at 37°C. Samples (15 mL) of the dissolution medium were withdrawn at 0, 5, 10, 15, 20, 30, 45, 60, and 90 minutes and filtered through a syringe filter (10 μm UHMWPE cannula + 0.45 μm PES syringe), discarding the first 6 mL. The drug substance concentration in the remaining solution was quantified by UV analysis (Cary 60 UV spectrophotometer) at a wavelength of 253 nm (pH 6.8) or 263 nm (SGF) against a standard solution. 60 minutes after sampling, the agitation speed was increased to 250 rpm. Generally, the dissolution results disclosed herein are based on the average of three replicates.

[0109] The results of dissolution experiments performed on Formulations E, F, C, G, and H are shown in Figures 7a and 7b. An immediate-release profile was targeted, with at least 85% dissolution achieved in 30 minutes. As can be seen in Figure 7a, in in vitro USP2 testing, the dissolution rate in the USP2 apparatus decreased with increasing DCPA content. This decrease in dissolution observed after 30 minutes is believed to result from coning. Coning is a known issue with dissolution testing, in which undissolved material forms a mound in the stagnant zone under the paddle in the USP2 apparatus, inhibiting dissolution. As can be seen in Figure 7a, the coning effect can be overcome by increasing the agitation speed (as was done at 60 minutes). While coning is specific to the in vitro setting and does not impair in vivo release performance, it is desirable to have a reproducible dissolution profile (>85% at 30 minutes in the USP2 apparatus) for quality assurance purposes, i.e., to guarantee performance from batch to batch before release. The coning effect observed in formulations with higher DCPA loading is believed to result from the formation of a dense zone under the paddle in the USP2 apparatus where undissolved material collects, and this dense zone is only adequately avoided by increasing the agitation rate. As can be seen in Figure 7b, ratios of MCC:DCPA between 3:1 and 3:2 provide 85% dissolution in 30 minutes while also possessing desirable strain rate sensitivity (from Figure 4) and tensile strength (Figure 5).

[0110] Beige Opadry II coating was selected for preliminary development testing. Tablets in 20 mg and 100 mg strengths were coated using O'Hara Labcoat (www.oharatech.com) using the coating supplier's recommended parameters. For both strengths, no cosmetic defects were observed and the coating was successful. The tablet composition is shown in Table 3 below.

[0111] [Table 4]

[0112] The dissolution performance in SGF of the coated tablets in Table 3 is shown in Figure 8. Both the 20 mg and 100 mg strength tablets showed an immediate release profile with >85% release in 30 minutes, a profile comparable to that of the uncoated tablets (see Prototype C in Figure 7). The experiment was run with stirring at 50 rpm for the first 60 minutes, at which point the stirring speed was increased to 200 rpm. Signs of coning were observed in the 100 mg strength tablets, but the target dissolution profile was still achieved.

[0113] Preliminary results of a comparative bioavailability study in human volunteers revealed no significant differences in AZD9833 plasma levels measured after administration of equivalent doses of AZD9833 either as an oral solution or as a tablet. The tablets evaluated in this study were manufactured from formulations herein by either direct compression (DC, the properties of which are representative of tablets manufactured by continuous direct compression (CDC)) or roller compaction (RC). The equivalence in drug exposure between tablets and oral solutions confirms the utility of formulations herein in clinical practice, as does the equivalence in terms of delivery profile of tablets manufactured by RC and DC. The doses of AZD9833 administered in this study were 75 mg (tablet and solution) and 300 mg (tablet only). Aspects of the present invention include the following. [Item 1] A pharmaceutical formulation comprising N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine, microcrystalline cellulose (MCC), and anhydrous dicalcium phosphate (DCPA). [Item 2] The immediate-release pharmaceutical formulation according to Item 1. [Item 3] The pharmaceutical formulation according to Item 1 or 2, wherein the amount of N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine is up to 60% w / w. [Item 4] The pharmaceutical formulation according to any one of Items 1 to 3, wherein the amount of N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine is 27% w / w. [Item 5] The pharmaceutical formulation according to any one of Items 1 to 4, wherein the ratio of MCC to DCPA is 3:1 to 2:3. [Item 6] The pharmaceutical formulation according to any one of Items 1 to 5, wherein the ratio of MCC to DCPA is 3:1 to 3:2. [Item 7] The pharmaceutical formulation according to any one of Items 1 to 6, wherein the combined amount of MCC and DCPA is 15% w / w to 85% w / w. [Item 8] The pharmaceutical formulation according to any one of Items 1 to 7, wherein the combined amount of MCC and DCPA is 40% w / w to 85% w / w. [Item 9] The pharmaceutical formulation according to any one of Items 1 to 8, further comprising at least one additional disintegrant in an amount of up to 10% w / w, optionally wherein the disintegrant is selected from croscarmellose sodium, crospovidin, and sodium starch glycolate. [Item 10] The pharmaceutical formulation according to Item 9, wherein the at least one additional disintegrant is sodium starch glycolate. [Item 11] The pharmaceutical formulation of Item 9 or Item 10, wherein the at least one additional disintegrant is present in an amount of up to 5% w / w. [Item 12] The pharmaceutical formulation according to any one of Items 1 to 11, further comprising at least one lubricant in an amount of up to 4% w / w, and optionally, the disintegrant is selected from magnesium stearate, calcium stearate, and sodium stearyl fumarate (SSF). [Item 13] The pharmaceutical formulation according to Item 12, wherein the at least one lubricant is magnesium stearate. [Item 14] The pharmaceutical formulation of Item 12 or 13, wherein the at least one lubricant is present in an amount of up to 1.5% w / w. [Item 15] The pharmaceutical preparation according to any one of Items 1 to 14, in the form of a tablet, optionally with a coating. [Item 16] The tablet according to Item 15, containing 25 mg, 50 mg, or 100 mg of N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine. [Item 17] A capsule containing the pharmaceutical formulation according to any one of items 1 to 14. [Item 18] i) dry granulating N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine with MCC and DCPA to form a blend; and ii) compressing the blend into tablets. Item 16. A method for producing the tablet according to Item 15, comprising: [Item 19] The method of item 18, wherein the compressing step into tablets is performed by roller compaction. [Item 20] The continuous direct compression method according to Item 18 or 19.

Claims

1. 1. A pharmaceutical formulation in the form of an immediate-release tablet, comprising N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine or a pharmaceutically acceptable salt thereof, microcrystalline cellulose (MCC) and dicalcium phosphate anhydrous (DCPA), the mass ratio of MCC to DCPA is 3:1 to 2:3; The pharmaceutical formulation in the form of an immediate release tablet.

2. A pharmaceutical formulation in the form of an immediate-release tablet as described in claim 1, wherein the mass ratio of MCC to DCPA is 3:1 to 3:

2.

3. 3. A pharmaceutical formulation in the form of an immediate release tablet according to claim 1 or 2, wherein the amount of N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine is up to 60% w / w.

4. 4. A pharmaceutical formulation in the form of an immediate release tablet according to any one of claims 1 to 3, wherein the amount of N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine is 27% w / w.

5. the combined amount of MCC and DCPA is 15% w / w to 85% w / w; Optionally, the combined amount of MCC and DCPA is 40% w / w to 85% w / w; A pharmaceutical formulation in the form of an immediate release tablet according to any one of claims 1 to 4.

6. Further comprising at least one additional disintegrant in an amount of up to 10% w / w, Optionally, the disintegrant is selected from croscarmellose sodium, crospovidone, and sodium starch glycolate. A pharmaceutical formulation in the form of an immediate release tablet according to any one of claims 1 to 5.

7. 7. The pharmaceutical formulation in the form of an immediate release tablet according to claim 6, wherein said at least one additional disintegrant is sodium starch glycolate.

8. 8. A pharmaceutical formulation in the form of an immediate release tablet according to claim 6 or claim 7, wherein the at least one additional disintegrant is present in an amount of up to 5% w / w.

9. Further comprising at least one lubricant in an amount of up to 4% w / w, Optionally, the lubricant is selected from magnesium stearate, calcium stearate, and sodium stearyl fumarate (SSF); Optionally, the at least one lubricant is magnesium stearate. A pharmaceutical formulation in the form of an immediate release tablet according to any one of claims 1 to 8.

10. 10. The pharmaceutical formulation in the form of an immediate release tablet according to claim 9, wherein said at least one lubricant is present in an amount of up to 1.5% w / w.

11. The pharmaceutical formulation in the form of an immediate-release tablet according to any one of claims 1 to 10, containing 25 mg, 50 mg or 100 mg of N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine.

12. i) dry granulating N-(1-(3-fluoropropyl)azetidin-3-yl)-6-((6S,8R)-8-methyl-7-(2,2,2-trifluoroethyl)-6,7,8,9-tetrahydro-3H-pyrazolo[4,3-f]isoquinolin-6-yl)pyridin-3-amine or a pharmaceutically acceptable salt thereof with MCC and DCPA to form a blend; and ii) compressing the blend into tablets. A method for producing a pharmaceutical formulation in the form of an immediate release tablet according to any one of claims 1 to 11, comprising:

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