Salt forms, crystals, and methods for producing the same of tetrasubstituted olefin compounds
Crystals of tetrasubstituted olefin compounds in various salt forms address the limitations of current breast cancer treatments by enhancing pharmacokinetic properties, offering improved therapeutic options for ER-mutated breast cancer.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- CHIA TAI TIANQING PHARMA GRP CO LTD
- Filing Date
- 2021-12-30
- Publication Date
- 2026-04-20
AI Technical Summary
Current treatments for estrogen receptor-positive breast cancer, particularly those using aromatase inhibitors and fulvestrant, face challenges such as drug resistance, poor pharmacokinetic properties, and limited tissue distribution, necessitating the development of drugs with improved pharmacokinetic properties suitable for ER-mutated breast cancer.
The development of crystals of tetrasubstituted olefin compounds in various salt forms, including hydrochloride, fumarate, and maleate, which exhibit specific X-ray powder diffraction patterns and thermal properties, enabling improved pharmacokinetic profiles and potential therapeutic efficacy against ER-mutated breast cancer.
The crystals of tetrasubstituted olefin compounds in different salt forms offer enhanced pharmacokinetic properties, potentially addressing drug resistance and improving treatment efficacy for estrogen receptor-positive breast cancer.
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Figure 0007848209000028 
Figure 0007848209000029 
Figure 0007848209000030
Abstract
Description
Detailed description of the invention
[0001] Cross-reference of related applications
[0002] This application claims the interests and priority of Chinese Invention Patent Application No. 202011613790.2, filed with the China National Intellectual Property Administration on December 30, 2020, the entire contents of which are incorporated herein by reference. [Technical Field]
[0003] This application relates to crystals of tetrasubstituted olefin compounds, salts thereof, crystals of salts thereof, and methods for producing the same. [Background technology]
[0004] According to World Health Organization (WHO) statistics, breast cancer is already the second most common cancer globally and the most common cancer among women. After many years of research, the role of the estrogen-estrogen receptor signaling pathway in breast cancer progression has been revealed, and the estrogen receptor (ER) has become established as the most important biomarker for breast cancer. When using estrogen receptor expression as a diagnostic indicator, breast cancer is divided into estrogen receptor-positive breast cancer and estrogen receptor-negative breast cancer. Of these, estrogen receptor-positive breast cancer accounts for more than 70% of the total number of breast cancer patients.
[0005] Endocrine therapy (ET) targeting the estrogen-estrogen receptor signaling pathway within breast cancer cells has already become the first-line treatment for estrogen receptor-positive breast cancer due to its minimal side effects and clear therapeutic efficacy. The primary first-line endocrine therapy is aromatase inhibitors (AI). While letrozole, an aromatase inhibitor, shows excellent efficacy in treating estrogen receptor-positive breast cancer, the combined use of two drugs highlights the problem of drug resistance to aromatase inhibitors in estrogen receptor-positive breast cancer. Numerous studies have revealed that aromatase inhibitors cause specific mutations in the estrogen receptor, primarily the Y537X mutation. Because the mutated estrogen receptor maintains an activated conformation even in the absence of estrogen, it can function as a receptor and promote the proliferation of breast cancer cells. Fulvestrant, currently the only commercially available selective estrogen receptor downregulator, shows excellent efficacy in treating hormone-resistant breast cancer. However, fulvestrant presents several problems in the treatment of AI-resistant ER-mutated breast cancer. First, due to its poor pharmacokinetic properties, fulvestrant has zero bioavailability when administered orally. Second, fulvestrant has high plasma clearance. For these two reasons, administration of this drug is limited to intramuscular injection. However, due to its highly lipophilic structure, intramuscular injection presents serious problems with the tissue distribution of fulvestrant. Clinically, only about 50% of breast cancer patients using fulvestrant show a response. Furthermore, because of its poor pharmacokinetic properties, the tissue concentration of fulvestrant at currently approved doses cannot completely degrade the ER, especially the mutant ER, making it not the optimal choice for treating AI-resistant ER-mutated breast cancer. For these reasons, research and development of drugs with improved pharmacokinetic properties suitable for ER-mutated breast cancer remain an unmet medical need. [Overview of the project]
[0006] In one embodiment, this application provides crystals of a compound of formula (I).
[0007] [ka]
[0008] In some embodiments of the present application, the X-ray powder diffraction pattern of the crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 17.60±0.20°, 19.98±0.20°, and 23.41±0.20°, as indicated by the 2θ values.
[0009] In some embodiments of the present application, the X-ray powder diffraction pattern of the crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 13.14±0.20°, 16.62±0.20°, 17.60±0.20°, 19.98±0.20°, 21.78±0.20°, 22.38±0.20°, 23.41±0.20°, and 24.22±0.20°, expressed as 2θ values.
[0010] In some embodiments of the present application, the X-ray powder diffraction pattern of the crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 13.14±0.20°, 14.68±0.20°, 16.62±0.20°, 17.60±0.20°, 19.98±0.20°, 21.32±0.20°, 21.78±0.20°, 22.38±0.20°, 23.41±0.20°, 24.22±0.20°, 26.46±0.20°, and 28.84±0.20°, as indicated by 2θ values.
[0011] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays from the crystal of the compound of formula (I) are shown in terms of 2θ values as follows: 8.56±0.20°, 10.13±0.20°, 12.16±0.20°, 13.14±0.20°, 13.54±0.20°, 14.68±0.20°, 15.68±0.20°, 16.38±0.20°, 16.62±0.20°, 17.24±0.20°, 17. 60±0.20°, 18.86±0.20°, 19.22±0.20°, 19.46±0.20°, 19.98±0.20°, 20.89±0.20°, 21.32±0.20°, 21.78±0.20°, 22.38±0.20°, 22.70±0.20°, 23.08±0.20°, 23.41±0.20°, 23.70±0.2 0°, 24.01±0.20°, 24.22±0.20°, 24.62±0.20°, 24.89±0.20°, 25.26±0.20°, 25.92±0.20°, 26.46±0.20°, 26.92±0.20°, 27.32±0.20°, 28.18±0.20°, 28.54±0.20°, 28.84±0.20°, 29. It contains 3, 4, 5, 6, 7, 8, 9, 10, 11, 12 or more diffraction peaks selected from 42±0.20°, 30.24±0.20°, 30.70±0.20°, 30.94±0.20°, 31.34±0.20°, 31.64±0.20°, 32.71±0.20°, 33.22±0.20°, and 34.84±0.20°.
[0012] In some embodiments of the present application, the X-ray powder diffraction pattern of the crystal of the compound of formula (I) using Cu Kα rays includes 3, 4, 5, 6, 7, 8, 9, 10, 11, or 12 diffraction peaks selected from 13.14±0.20°, 14.68±0.20°, 16.62±0.20°, 17.60±0.20°, 19.98±0.20°, 21.32±0.20°, 21.78±0.20°, 22.38±0.20°, 23.41±0.20°, 24.22±0.20°, 26.46±0.20°, and 28.84±0.20°, expressed as 2θ values.
[0013] In some embodiments of the present application, the X-ray powder diffraction pattern of the crystal of the compound of formula (I) using Cu Kα rays includes 3, 4, 5, 6, 7, or 8 diffraction peaks selected from 13.14±0.20°, 16.62±0.20°, 17.60±0.20°, 19.98±0.20°, 21.78±0.20°, 22.38±0.20°, 23.41±0.20°, and 24.22±0.20°, expressed as 2θ values.
[0014] In some embodiments of the present application, the X-ray powder diffraction patterns using Cu Kα rays from the crystal of the compound of formula (I) are, expressed in terms of 2θ values, approximately 8.56°, approximately 10.13°, approximately 12.16°, approximately 13.14°, approximately 13.54°, approximately 14.68°, approximately 15.68°, approximately 16.38°, approximately 16.62°, approximately 17.24°, approximately 17.60°, approximately 18.86°, approximately 19.22°, approximately 19.46°, approximately 19.98°, approximately 20.89°, approximately 21.32°, approximately 21.78°, approximately 22.38°, approximately 22.70°, and approximately 23.08°. Diffraction peaks are observed at approximately 23.41°, 23.70°, 24.01°, 24.22°, 24.62°, 24.89°, 25.26°, 25.92°, 26.46°, 26.92°, 27.32°, 28.18°, 28.54°, 28.84°, 29.42°, 30.24°, 30.70°, 30.94°, 31.34°, 31.64°, 32.71°, 33.22°, and 34.84°.
[0015] In some embodiments of this application, the peak positions and relative intensities of the diffraction peaks in the X-ray powder diffraction pattern using Cu Kα rays of the crystal of the compound of formula (I) are as shown in Table 1.
[0016] Table 1: Peak position and relative intensity of diffraction peaks in the X-ray powder diffraction pattern of the crystalline compound of formula (I).
[0017] [Table 1]
[0018] In some embodiments of the present application, the X-ray powder diffraction (XRPD) pattern of the crystal of the compound of formula (I) using Cu Kα radiation is as shown in Figure 1.
[0019] In some embodiments of the present application, in the differential scanning calorimetry (DSC) graph of the crystal of the compound of formula (I), there is an endothermic peak at 144.92 ± 3 °C.
[0020] In some embodiments of the present application, the DSC pattern of the crystal of the compound of formula (I) is as shown in Figure 2.
[0021] In some embodiments of the present application, in the thermogravimetric analysis (TGA) graph of the crystal of the compound of formula (I), the weight loss at 200.00 ± 3 °C is 0.108%.
[0022] In some embodiments of the present application, the TGA pattern of the crystal of the compound of formula (I) is as shown in Figure 3.
[0023] In another aspect, the present application provides a method for producing a crystal of the compound of formula (I), comprising the step of precipitating the crystal of the compound of formula (I) from an ethyl acetate solvent.
[0024] In some embodiments of the present application, the present application provides a method for producing a crystal of the compound of formula (I), comprising adding ethyl acetate to the compound of formula (I), stirring while heating until dissolved and clarified, cooling and stirring, and after crystals are precipitated, performing filtration and drying under reduced pressure to obtain the crystal of the compound of formula (I).
[0025] In another aspect, the present application further provides a type I crystal of the hydrochloride salt of the compound of formula (I).
[0026] In some embodiments of the present application, in the X-ray powder diffraction pattern of the type I crystal of the hydrochloride salt of the compound of formula (I) using Cu Kα radiation, diffraction peaks are present at 2θ values of 5.97 ± 0.20 °, 7.58 ± 0.20 ° and 17.63 ± 0.20 °.
[0027] In some embodiments of the present application, the X-ray powder diffraction pattern of the type I crystal of the hydrochloride salt of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 5.97±0.20°, 7.58±0.20°, 16.49±0.20°, 17.63±0.20°, 20.25±0.20°, 22.84±0.20°, 23.99±0.20°, and 24.62±0.20°, expressed as 2θ values.
[0028] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of type I crystals of the hydrochloride salt of the compound of formula (I) are shown in 2θ values as follows: 5.97±0.20°, 7.58±0.20°, 11.08±0.20°, 11.38±0.20°, 14.14±0.20°, 15.30±0.20°, 16.49±0.20°, 17.63±0.20°, 18.44±0.20°, and 19.72±0.2 It contains 3, 4, 5, 6, 7, 8, 9, 10, 11, 12 or more diffraction peaks selected from 0°, 20.25±0.20°, 20.66±0.20°, 21.39±0.20°, 21.88±0.20°, 22.23±0.20°, 22.84±0.20°, 23.99±0.20°, and 24.62±0.20°.
[0029] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of type I crystals of the hydrochloride salt of the compound of formula (I) are shown in terms of 2θ values as follows: 5.97±0.20°, 7.58±0.20°, 9.83±0.20°, 11.08±0.20°, 11.38±0.20°, 12.69±0.20°, 14.14±0.20°, 15.30±0.20°, 16.49±0.20°, 17.63±0.20°, 18.44±0.20°, 19.7 It contains 3, 4, 5, 6, 7, 8, 9, 10, 11, 12 or more diffraction peaks selected from 2±0.20°, 20.25±0.20°, 20.66±0.20°, 21.39±0.20°, 21.88±0.20°, 22.23±0.20°, 22.84±0.20°, 23.79±0.20°, 23.99±0.20°, and 24.62±0.20°.
[0030] In some embodiments of the present application, the Cu Kα-ray X-ray powder diffraction pattern of a type I crystal of the hydrochloride salt of the compound of formula (I) includes 3, 4, 5, 6, 7, or 8 diffraction peaks selected from 5.97±0.20°, 7.58±0.20°, 16.49±0.20°, 17.63±0.20°, 20.25±0.20°, 22.84±0.20°, 23.99±0.20°, and 24.62±0.20°, expressed as 2θ values.
[0031] In some embodiments of the present application, the Cu of the type I crystal of the hydrochloride salt of the compound of formula (I) In the X-ray powder diffraction patterns using Kα rays, diffraction peaks are observed at the following 2θ values: 5.97±0.20°, 7.58±0.20°, 11.08±0.20°, 11.38±0.20°, 14.14±0.20°, 15.30±0.20°, 16.49±0.20°, 17.63±0.20°, 18.44±0.20°, 19.72±0.20°, 20.25±0.20°, 20.66±0.20°, 21.39±0.20°, 21.88±0.20°, 22.23±0.20°, 22.84±0.20°, 23.99±0.20°, and 24.62±0.20°.
[0032] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of type I crystals of the hydrochloride salt of the compound of formula (I) are shown in 2θ values as follows: 5.97±0.20°, 7.58±0.20°, 9.83±0.20°, 11.08±0.20°, 11.38±0.20°, 12.69±0.20°, 14.14±0.20°, 15.30±0.20°, 16.49±0.20°, and 17.63±0.20°. Diffraction peaks are observed at 18.44±0.20°, 19.72±0.20°, 20.25±0.20°, 20.66±0.20°, 21.39±0.20°, 21.88±0.20°, 22.23±0.20°, 22.84±0.20°, 23.79±0.20°, 23.99±0.20°, and 24.62±0.20°.
[0033] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of the type I crystal of the hydrochloride salt of the compound of formula (I) are approximately 5.97°, 7.58°, 11.08°, 11.38°, 14.14°, 15.30°, 16.49°, 17.63°, 18.44°, 19.72°, 20.25°, 20.66°, 21.39°, and 21.88°, expressed as 2θ values. Diffraction peaks are observed at approximately 22.23°, 22.84°, 23.99°, 24.62°, 25.15°, 25.74°, 26.19°, 27.03°, 27.43°, 27.88°, 28.52°, 29.08°, 30.08°, 30.47°, 31.51°, and 31.94°.
[0034] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of the type I crystal of the hydrochloride salt of the compound of formula (I) are shown in 2θ values as follows: approximately 5.97°, approximately 7.58°, approximately 9.83°, approximately 11.08°, approximately 11.38°, approximately 12.69°, approximately 14.14°, approximately 15.30°, approximately 16.49°, approximately 17.63°, approximately 18.44°, approximately 19.72°, approximately 20.25°, approximately 20.66°, approximately 21.39°, and approximately 21. Diffraction peaks are observed at 88°, approximately 22.23°, approximately 22.84°, approximately 23.79°, approximately 23.99°, approximately 24.62°, approximately 25.15°, approximately 25.74°, approximately 26.19°, approximately 27.03°, approximately 27.43°, approximately 27.88°, approximately 28.52°, approximately 29.08°, approximately 30.08°, approximately 30.47°, approximately 31.51°, and approximately 31.94°.
[0035] In some embodiments of this application, the peak positions and relative intensities of the diffraction peaks in the X-ray powder diffraction patterns using Cu Kα rays of the type I crystal of the hydrochloride salt of the compound of formula (I) are as shown in Table 2.
[0036] Table 2: Peak position and relative intensity of diffraction peaks in the X-ray powder diffraction pattern of type I crystals of hydrochloride salts of compound (I)
[0037] [Table 2]
[0038] In some embodiments of this application, the X-ray powder diffraction (XRPD) pattern using Cu Kα rays of the type I crystal of the hydrochloride salt of the compound of formula (I) is shown in Figure 4.
[0039] In some embodiments of the present application, the differential scanning calorimetry (DSC) graph of the type I crystal of the hydrochloride salt of the compound of formula (I) shows an endothermic peak at 204.5 ± 3°C.
[0040] In some embodiments of the present application, the DSC pattern of the type I crystal of the hydrochloride salt of the compound of formula (I) is as shown in Figure 5.
[0041] In some embodiments of the present application, the thermogravimetric analysis (TGA) graph of the type I crystal of the hydrochloride salt of the compound of formula (I) shows a weight loss of 2.28% at 150.0 ± 3°C.
[0042] In some embodiments of the present application, the TGA pattern of the type I crystal of the hydrochloride salt of the compound of formula (I) is as shown in Figure 5.
[0043] In another embodiment, the present invention provides a method for producing type I crystals of the hydrochloride salt of the compound of formula (I), comprising the step of precipitating the hydrochloride salt crystals of the compound of formula (I) from a mixed solvent of ethyl acetate and water.
[0044] In some embodiments of the present application, the type I crystal of the hydrochloride salt of the compound of formula (I) of the present application is (1) Reacting compound (I) with hydrochloric acid in the presence of ethyl acetate and water to obtain the hydrochloride salt of compound (I). (2) It is manufactured by a method that includes crystallization.
[0045] In some embodiments of the present application, in the type I crystal of the hydrochloride salt of the compound of formula (I), the molar ratio of the compound of formula (I) to hydrochloric acid is 1:1, or the hydrochloride salt of the compound of formula (I) is the compound of formula (II).
[0046] [ka]
[0047] In some embodiments of the present invention, a method for producing type I crystals of the compound of formula (II) is provided, which includes mixing crystals of the compound of formula (I) with ethyl acetate, heating the solution until it clarifies, adding an ethyl acetate solution of hydrochloric acid and stirring, cooling to crystallize, and then filtering and drying under reduced pressure to obtain type I crystals of the compound of formula (II).
[0048] In another embodiment, the present application further provides type II crystals of the hydrochloride salt of a compound of formula (I).
[0049] In some embodiments of the present application, the X-ray powder diffraction pattern of the type II crystal of the hydrochloride salt of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 9.84±0.20°, 16.76±0.20°, and 20.09±0.20°, as indicated by the 2θ values.
[0050] In some embodiments of the present application, the X-ray powder diffraction pattern of the type II crystal of the hydrochloride salt of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 9.84±0.20°, 16.31±0.20°, 16.76±0.20°, 20.09±0.20°, 22.61±0.20°, 23.65±0.20°, 24.55±0.20°, and 25.32±0.20°, expressed as 2θ values.
[0051] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of the type II crystal of the hydrochloride salt of the compound of formula (I) are shown in 2θ values as follows: 9.84±0.20°, 10.59±0.20°, 12.39±0.20°, 12.61±0.20°, 13.99±0.20°, 16.31±0.20°, 16.76±0.20°, 18.31±0.20°, 18.72±0.20°, 19.06±0.20°, 19.55±0.20°, 19.72±0.20°, 20.09±0.20°, 20.77±0.20°, 21.22±0.20°, 22.61±0.20°, 23.04±0. It contains 3, 4, 5, 6, 7, 8, 9, 10, 11, 12 or more diffraction peaks selected from 20°, 23.41±0.20°, 23.65±0.20°, 24.55±0.20°, 25.32±0.20°, 26.49±0.20°, 26.90±0.20°, 27.71±0.20°, 28.27±0.20°, 28.47±0.20°, 29.22±0.20°, 29.61±0.20°, 30.22±0.20°, 31.11±0.20°, 31.47±0.20°, and 34.18±0.20°.
[0052] In some embodiments of the present application, the Cu Kα-ray X-ray powder diffraction pattern of a type II crystal of the hydrochloride salt of the compound of formula (I) includes 3, 4, 5, 6, 7, or 8 diffraction peaks selected from 9.84±0.20°, 16.31±0.20°, 16.76±0.20°, 20.09±0.20°, 22.61±0.20°, 23.65±0.20°, 24.55±0.20°, and 25.32±0.20°, expressed as 2θ values.
[0053] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of the type II crystal of the hydrochloride salt of the compound of formula (I) are shown in terms of 2θ values as follows: approximately 9.84°, approximately 10.59°, approximately 12.39°, approximately 12.61°, approximately 13.99°, approximately 16.31°, approximately 16.76°, approximately 18.31°, approximately 18.72°, approximately 19.06°, approximately 19.55°, approximately 19.72°, approximately 20.09°, approximately 20.77°, approximately 21.22°, and approximately 22 Diffraction peaks are observed at approximately 0.61°, 23.04°, 23.41°, 23.65°, 24.55°, 25.11°, 25.32°, 26.49°, 26.90°, 27.71°, 28.27°, 28.47°, 29.22°, 29.61°, 30.22°, 31.11°, 31.47°, and 34.18°.
[0054] In some embodiments of this application, the peak positions and relative intensities of the diffraction peaks in the X-ray powder diffraction patterns using Cu Kα rays of the type II crystal of the hydrochloride salt of the compound of formula (I) are as shown in Table 10.
[0055] Table 10: Peak position and relative intensity of diffraction peaks in the X-ray powder diffraction pattern of type II crystals of hydrochloride salts of compound (I)
[0056] [Table 3]
[0057] In some embodiments of the present application, the X-ray powder diffraction (XRPD) pattern using Cu Kα rays of the type II crystal of the hydrochloride salt of the compound of formula (I) is shown in Figure 17.
[0058] In some embodiments of the present application, differential scanning calorimetry (DSC) graphs of type II crystals of the hydrochloride salt of the compound of formula (I) show endothermic peaks at 101.4±3°C, 113.3±3°C, and 195.9±3°C.
[0059] In some embodiments of the present application, the DSC pattern of the type II crystal of the hydrochloride salt of the compound of formula (I) is as shown in Figure 18.
[0060] In some embodiments of the present application, the thermogravimetric analysis (TGA) graph of the type II crystal of the hydrochloride salt of the compound of formula (I) shows a weight loss of 5.48% at 55.0±3°C and a weight loss of 9.67% at 90.0±3°C.
[0061] In some embodiments of the present application, the TGA pattern of the type II crystal of the hydrochloride salt of the compound of formula (I) is as shown in Figure 18.
[0062] In another embodiment, the present invention provides a method for producing crystals of the hydrochloride salt of the compound of formula (I), comprising the step of precipitating type II crystals of the compound of formula (II) from a mixed solvent of ethyl acetate and water.
[0063] In some embodiments of the present application, the type II crystal of the hydrochloride salt of the compound of formula (I) of the present application is (1) Reacting the hydrochloride salt of compound (I) of type I in the presence of ethyl acetate and water. (2) It is manufactured by a method that includes crystallization.
[0064] In some embodiments of the present application, in the type II crystal of the hydrochloride salt of the compound of formula (I), the molar ratio of the compound of formula (I) to hydrochloric acid is 1:1, or the hydrochloride salt of the compound of formula (I) is the compound of formula (II).
[0065] [ka]
[0066] In some embodiments of the present application, a method for producing type II crystals of the compound of formula (II) is provided, which includes mixing type I crystals of the compound of formula (II) with ethyl acetate and water, stirring the mixture while heating until the solution becomes clear, cooling to crystallize, and then filtering and drying under reduced pressure to obtain type II crystals of the compound of formula (II).
[0067] In another embodiment, this application provides a fumarate of a compound of formula (I).
[0068] In some embodiments of the present application, the fumarate of the compound of formula (I) is in crystalline form.
[0069] In another embodiment, this application provides crystals of the fumarate of the compound of formula (I).
[0070] In some embodiments of the present application, the X-ray powder diffraction pattern of the fumarate crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 5.12±0.20°, 14.99±0.20°, and 19.17±0.20°, expressed as 2θ values.
[0071] In some embodiments of the present application, the X-ray powder diffraction pattern of the fumarate crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 5.12±0.20°, 9.20±0.20°, 14.99±0.20°, 18.08±0.20°, 19.17±0.20°, 21.39±0.20°, 22.57±0.20°, and 25.15±0.20°, expressed as 2θ values.
[0072] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of the fumarate crystal of the compound of formula (I) are shown in 2θ values as follows: 5.12±0.20°, 9.20±0.20°, 12.03±0.20°, 14.99±0.20°, 15.31±0.20°, 16.75±0.20°, 17.62±0.20°, 18.08±0.20°, 18.83±0.20°, 19.17±0.20°, 20.80±0.20°, 21.39±0.20°, 22.21±0.20 The diffraction pattern includes 3, 4, 5, 6, 7, 8 or more diffraction peaks selected from 22.57±0.20°, 23.09±0.20°, 23.50±0.20°, 24.42±0.20°, 25.15±0.20°, 25.78±0.20°, 27.14±0.20°, 28.25±0.20°, 29.54±0.20°, 30.50±0.20°, 31.09±0.20°, and 32.16±0.20°.
[0073] In some embodiments of the present application, the Cu Kα-ray X-ray powder diffraction pattern of the fumarate crystal of the compound of formula (I) includes 3, 4, 5, 6, 7, or 8 diffraction peaks selected from 5.12±0.20°, 9.20±0.20°, 14.99±0.20°, 18.08±0.20°, 19.17±0.20°, 21.39±0.20°, 22.57±0.20°, and 25.15±0.20°, expressed as 2θ values.
[0074] In some embodiments of the present application, the X-ray powder diffraction pattern of the fumarate crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at approximately 5.12°, 9.20°, 12.03°, 14.99°, 15.31°, 16.75°, 17.62°, 18.08°, 18.83°, 19.17°, 20.80°, 21.39°, 22.21°, 22.57°, 23.09°, 23.50°, 24.42°, 25.15°, 25.78°, 27.14°, 28.25°, 29.54°, 30.50°, 31.09°, and 32.16°, respectively.
[0075] In some embodiments of this application, the peak positions and relative intensities of the diffraction peaks in the X-ray powder diffraction patterns using Cu Kα rays of the fumarate crystal of the compound of formula (I) are as shown in Table 3.
[0076] Table 3: Peak position and relative intensity of diffraction peaks in the X-ray powder diffraction pattern of the fumarate of compound (I) crystals.
[0077] [Table 4]
[0078] In some embodiments of this application, the X-ray powder diffraction (XRPD) pattern using Cu Kα rays of the fumarate crystal of the compound of formula (I) is shown in Figure 7.
[0079] In some embodiments of the present application, the differential scanning calorimetry (DSC) graph of the fumarate crystal of the compound of formula (I) shows an endothermic peak at 164.5 ± 3°C.
[0080] In some embodiments of this application, the DSC pattern of the fumarate crystal of the compound of formula (I) is as shown in Figure 8.
[0081] In some embodiments of the present application, the thermogravimetric analysis (TGA) graph of the fumarate crystal of the compound of formula (I) shows a weight loss of 0.85% at 140.0 ± 3°C.
[0082] In some embodiments of the present application, the TGA pattern of the fumarate crystal of the compound of formula (I) is as shown in Figure 8.
[0083] In another embodiment, the present application provides a method for producing crystals of the fumarate of the compound of formula (I), comprising the step of precipitating the crystals of the fumarate of the compound of formula (I) from an acetone solvent.
[0084] In some embodiments of this application, the crystals of the fumarate of the compound of formula (I) of this application are (1) Reacting compound (I) with fumaric acid in the presence of acetone to obtain the fumarate of compound (I), (2) It is manufactured by a method that includes crystallization.
[0085] In some embodiments of the present application, in the fumarate of the compound of formula (I) or the crystal of the fumarate of the compound of formula (I), the molar ratio of the compound of formula (I) to fumaric acid is 1:1, or the fumarate of the compound of formula (I) is the compound of formula (III).
[0086] [ka]
[0087] In some embodiments of the present invention, a method for producing crystals of the compound of formula (III) is provided, which includes mixing crystals of the compound of formula (I) with acetone, heating the solution until it becomes clear, adding fumaric acid and stirring, cooling to crystallize, and then filtering and drying under reduced pressure to obtain crystals of the compound of formula (III).
[0088] In another embodiment, the present application further provides a maleate of the compound of formula (I).
[0089] In some embodiments of the present application, the maleate of the compound of formula (I) is in crystalline form.
[0090] In another embodiment, the present application further provides crystals of the maleate of the compound of formula (I).
[0091] In some embodiments of the present application, the X-ray powder diffraction pattern of the maleate crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 4.55±0.20°, 18.12±0.20°, and 21.18±0.20°, expressed as 2θ values.
[0092] In some embodiments of the present application, the X-ray powder diffraction pattern of the maleate crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 4.55±0.20°, 12.85±0.20°, 16.19±0.20°, 16.68±0.20°, 18.12±0.20°, 21.18±0.20°, 22.71±0.20°, and 27.31±0.20°, expressed as 2θ values.
[0093] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of the maleate crystal of the compound of formula (I) are shown in 2θ values as follows: 4.55±0.20°, 9.06±0.20°, 10.63±0.20°, 11.00±0.20°, 12.85±0.20°, 13.75±0.20°, 15.96±0.20°, 16.19±0.20°, 16.68±0.20°, 16.99±0.20°, 17.51±0.20°, 18.12±0.20°, 20.12±0.20°, 20.7 It contains 3, 4, 5, 6, 7, 8 or more diffraction peaks selected from 5±0.20°, 21.18±0.20°, 22.71±0.20°, 23.04±0.20°, 24.13±0.20°, 24.55±0.20°, 25.32±0.20°, 25.95±0.20°, 27.31±0.20°, 28.38±0.20°, 28.97±0.20°, 29.62±0.20°, and 34.09±0.20°.
[0094] In some embodiments of the present application, the Cu Kα-ray X-ray powder diffraction pattern of the maleate crystal of the compound of formula (I) includes 3, 4, 5, 6, 7, or 8 diffraction peaks selected from 4.55±0.20°, 12.85±0.20°, 16.19±0.20°, 16.68±0.20°, 18.12±0.20°, 21.18±0.20°, 22.71±0.20°, and 27.31±0.20°, expressed as 2θ values.
[0095] In some embodiments of the present application, the Cu of the maleate crystalline form of the compound of formula (I) In the X-ray powder diffraction pattern using Kα rays, diffraction peaks are observed at approximately 4.55°, 9.06°, 10.63°, 11.00°, 12.85°, 13.75°, 15.96°, 16.19°, 16.68°, 16.99°, 17.51°, 18.12°, 20.12°, 20.75°, 21.18°, 22.71°, 23.04°, 24.13°, 24.55°, 25.32°, 25.95°, 27.31°, 28.38°, 28.97°, 29.62°, and 34.09°, as indicated by the 2θ values.
[0096] In some embodiments of this application, the peak positions and relative intensities of the diffraction peaks in the Cu Kα-ray X-ray powder diffraction patterns of the maleate salt crystals of the compound of formula (I) are as shown in Table 4.
[0097] Table 4: Peak position and relative intensity of diffraction peaks in the X-ray powder diffraction pattern of the maleate of compound (I) crystals.
[0098] [Table 5]
[0099] In some embodiments of this application, the X-ray powder diffraction (XRPD) pattern using Cu Kα rays of the maleate crystal of the compound of formula (I) is shown in Figure 9.
[0100] In some embodiments of the present application, the differential scanning calorimetry (DSC) graph of the maleate crystal of the compound of formula (I) shows an endothermic peak at 160.3 ± 3°C.
[0101] In some embodiments of the present application, the DSC pattern of the maleate crystal of the compound of formula (I) is as shown in Figure 10.
[0102] In some embodiments of the present application, the thermogravimetric analysis (TGA) graph of the maleate crystal of the compound of formula (I) shows a weight loss of 1.67% at 140.0 ± 3°C.
[0103] In some embodiments of the present application, the TGA pattern of the maleate crystal of the compound of formula (I) is as shown in Figure 10.
[0104] In another embodiment, the present invention provides a method for producing crystals of the maleate of the compound of formula (I), comprising the step of precipitating the maleate of the compound of formula (I) from an ethyl acetate solvent.
[0105] In some embodiments of this application, the maleate crystal of the compound of formula (I) of this application is (1) Reacting compound (I) with maleic acid in the presence of ethyl acetate to obtain the maleate salt of compound (I), (2) It is manufactured by a method that includes crystallization.
[0106] In some embodiments of the present application, in the maleate of the compound of formula (I) or the crystal of the maleate of the compound of formula (I), the molar ratio of the compound of formula (I) to maleic acid is 1:1, or the maleate of the compound of formula (I) is the compound of formula (IV).
[0107] [ka]
[0108] In some embodiments of the present application, a method for producing crystals of the compound of formula (IV) is provided, which includes mixing crystals of the compound of formula (I) with ethyl acetate, heating the solution until it clarifies, adding maleic acid and stirring, cooling to crystallize, and then filtering and drying under reduced pressure to obtain crystals of the compound of formula (IV).
[0109] In another embodiment, the present application further provides a methanesulfonate of a compound of formula (I).
[0110] In some embodiments of the present application, the methanesulfonate of the compound of formula (I) is in crystalline form.
[0111] In another embodiment, the present application further provides type I crystals of methanesulfonates of compounds of formula (I).
[0112] In some embodiments of the present application, the X-ray powder diffraction pattern of the type I crystal of the methanesulfonate of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 5.47±0.20°, 6.25±0.20°, and 16.11±0.20°, expressed as 2θ values.
[0113] In some embodiments of the present application, the X-ray powder diffraction pattern of the type I crystal of the methanesulfonate of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 5.47±0.20°, 6.25±0.20°, 16.11±0.20°, 16.64±0.20°, 18.11±0.20°, 19.73±0.20°, 24.22±0.20°, and 25.12±0.20°, expressed as 2θ values.
[0114] In some embodiments of this application, the X-ray powder diffraction patterns of the type I crystal of the methanesulfonate of the compound of formula (I) using Cu Kα rays are expressed in terms of 2θ values as follows: 5.47±0.20°, 6.00±0.20°, 6.25±0.20°, 8.29±0.20°, 9.62±0.20°, 10.88±0.20°, 12.02±0.20°, 12.46±0.20°, 13.81±0.20°, 16.11±0.20°, 16.39±0.20°, 16.64±0.20°, 18.11±0.20°, 18.72±0.20°, and 19.73±0.20°. The diffraction peaks include 3, 4, 5, 6, 7, 8 or more, selected from 20.21±0.20°, 21.08±0.20°, 21.41±0.20°, 22.80±0.20°, 23.45±0.20°, 24.22±0.20°, 24.55±0.20°, 25.12±0.20°, 25.64±0.20°, 26.00±0.20°, 26.99±0.20°, 29.06±0.20°, 29.88±0.20°, and 31.18±0.20°.
[0115] In some embodiments of the present application, the Cu Kα-ray X-ray powder diffraction pattern of a type I crystal of the methanesulfonate of the compound of formula (I) includes 3, 4, 5, 6, 7, or 8 diffraction peaks selected from 5.47±0.20°, 6.25±0.20°, 16.11±0.20°, 16.64±0.20°, 18.11±0.20°, 19.73±0.20°, 24.22±0.20°, and 25.12±0.20°, expressed as 2θ values.
[0116] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of the type I crystal of the methanesulfonate of the compound of formula (I) are shown in 2θ values as follows: approximately 5.47°, approximately 6.00°, approximately 6.25°, approximately 8.29°, approximately 9.62°, approximately 10.88°, approximately 12.02°, approximately 12.46°, approximately 13.81°, approximately 16.11°, approximately 16.39°, approximately 16.64°, approximately 18.11°, and approximately 18.7°. Diffraction peaks are observed at approximately 2°, 19.73°, 20.21°, 21.08°, 21.41°, 22.80°, 23.45°, 24.22°, 24.55°, 25.12°, 25.64°, 26.00°, 26.99°, 29.06°, 29.88°, and 31.18°.
[0117] In some embodiments of this application, the peak positions and relative intensities of the diffraction peaks in the Cu Kα-ray X-ray powder diffraction patterns of the type I crystal of the methanesulfonate of the compound of formula (I) are as shown in Table 5.
[0118] Table 5: Peak position and relative intensity of diffraction peaks of type I crystals of methanesulfonates of compound (I) [Table 6]
[0119] In some embodiments of the present application, the X-ray powder diffraction (XRPD) pattern using Cu Kα rays of the type I crystal of the methanesulfonate of the compound of formula (I) is shown in Figure 11.
[0120] In another embodiment, the present application provides a method for producing type I crystals of methanesulfonate of the compound of formula (I), comprising the step of precipitating type I crystals of the methanesulfonate of the compound of formula (I) from an ethyl acetate solvent.
[0121] In some embodiments of the present application, the type I crystal of the methanesulfonate of the compound of formula (I) of the present application is (1) Reacting compound (I) with methanesulfonic acid in the presence of ethyl acetate to obtain methanesulfonate of compound (I), (2) It is manufactured by a method that includes crystallization.
[0122] In another embodiment, the present application further provides type II crystals of methanesulfonates of compounds of formula (I).
[0123] In some embodiments of the present application, the X-ray powder diffraction pattern of the type II crystal of the methanesulfonate of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 6.17±0.20°, 8.76±0.20°, and 23.03±0.20°, expressed as 2θ values.
[0124] In some embodiments of the present application, the X-ray powder diffraction pattern of the type II crystal of the methanesulfonate of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 6.17±0.20°, 8.76±0.20°, 12.16±0.20°, 16.12±0.20°, 17.18±0.20°, 19.23±0.20°, 20.19±0.20°, and 23.03±0.20°, expressed as 2θ values.
[0125] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of the type II crystal of the methanesulfonate of the compound of formula (I) are shown in terms of 2θ values as follows: 6.17±0.20°, 8.76±0.20°, 12.16±0.20°, 12.37±0.20°, 14.53±0.20°, 15.46±0.20°, 16.12±0.20°, 17.18±0.20°, 17.40±0.20°, 18.3 It contains 3, 4, 5, 6, 7, 8 or more diffraction peaks selected from 0±0.20°, 18.78±0.20°, 19.23±0.20°, 19.71±0.20°, 20.19±0.20°, 20.74±0.20°, 21.05±0.20°, 22.19±0.20°, and 23.03±0.20°.
[0126] In some embodiments of the present application, the X-ray powder diffraction pattern of a type II crystal of the methanesulfonate of the compound of formula (I) using Cu Kα rays includes 3, 4, 5, 6, 7, or 8 diffraction peaks selected from 6.17±0.20°, 8.76±0.20°, 12.16±0.20°, 16.12±0.20°, 17.18±0.20°, 19.23±0.20°, 20.19±0.20°, and 23.03±0.20°, expressed as 2θ values.
[0127] In some embodiments of the present application, the X-ray powder diffraction pattern of the type II crystal of the methanesulfonate of the compound of formula (I) using Cu Kα rays shows diffraction peaks at approximately 6.17°, 8.76°, 12.16°, 12.37°, 14.53°, 15.46°, 16.12°, 17.18°, 17.40°, 18.30°, 18.78°, 19.23°, 19.71°, 20.19°, 20.74°, 21.05°, 22.19°, and 23.03°, respectively.
[0128] In some embodiments of this application, the peak positions and relative intensities of the diffraction peaks in the X-ray powder diffraction patterns using Cu Kα rays of the type II crystal of the methanesulfonate of the compound of formula (I) are as shown in Table 6.
[0129] Table 6: Peak position and relative intensity of diffraction peaks of type II crystals of methanesulfonate of compound (I)
[0130] [Table 7]
[0131] In some embodiments of the present application, the X-ray powder diffraction (XRPD) pattern using Cu Kα rays of the type II crystal of the methanesulfonate of the compound of formula (I) is shown in Figure 12.
[0132] In another embodiment, the present application provides a method for producing type II crystals of methanesulfonate of the compound of formula (I), comprising the step of precipitating type II crystals of methanesulfonate of the compound of formula (I) from an acetone solvent.
[0133] In some embodiments of the present application, the type II crystal of the methanesulfonate of the compound of formula (I) of the present application is (1) Reacting compound (I) with methanesulfonic acid in the presence of acetone to obtain methanesulfonate of compound (I), (2) It is manufactured by a method that includes crystallization.
[0134] In some embodiments of the present application, in the methanesulfonate of the compound of formula (I), the type I crystal of the methanesulfonate of the compound of formula (I), or the type II crystal of the methanesulfonate of the compound of formula (I), the molar ratio of the compound of formula (I) to methanesulfonic acid is 1:2, or the methanesulfonate of the compound of formula (I) is the compound of formula (V).
[0135] [ka]
[0136] In some embodiments of the present application, a method for producing type I crystals of the compound of formula (V) is provided, which includes mixing crystals of the compound of formula (I) with ethyl acetate, heating the solution until it clarifies, adding methanesulfonic acid and stirring, cooling to crystallize, and then filtering and drying under reduced pressure to obtain type I crystals of the compound of formula (V).
[0137] In some embodiments of the present application, a method for producing type II crystals of the compound of formula (V) is provided, which includes mixing crystals of the compound of formula (I) with acetone, heating the solution until it clarifies, adding methanesulfonic acid and stirring, cooling to crystallize, and then filtering and drying under reduced pressure to obtain type II crystals of the compound of formula (V).
[0138] In another embodiment, the present application further provides hydrobromide salts of compounds of formula (I).
[0139] In some embodiments of the present application, the hydrobromide salt of the compound of formula (I) is in crystalline form.
[0140] In another embodiment, the present application further provides crystals of hydrobromide salts of compounds of formula (I).
[0141] In some embodiments of the present application, the X-ray powder diffraction pattern of the hydrobromide salt crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 7.59±0.20°, 17.62±0.20°, and 23.84±0.20°, as indicated by the 2θ values.
[0142] In some embodiments of the present application, the X-ray powder diffraction pattern of the hydrobromide salt crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at 3.12±0.20°, 5.96±0.20°, 7.59±0.20°, 16.49±0.20°, 17.62±0.20°, 23.84±0.20°, 24.54±0.20°, and 30.30±0.20°, expressed as 2θ values.
[0143] In some embodiments of this application, the X-ray powder diffraction patterns using Cu Kα rays of the hydrobromide salt crystals of the compound of formula (I) are shown in 2θ values as follows: 3.12±0.20°, 5.96±0.20°, 7.59±0.20°, 9.76±0.20°, 11.11±0.20°, 12.78±0.20°, 16.49±0.20°, 17.62±0.20°, 18.44±0.20°, 19.57±0.20°, 20.69±0.20°, 21.16±0.20°, 22.16 It includes 3, 4, 5, 6, 7, 8 or more diffraction peaks selected from ±0.20°, 22.77±0.20°, 23.84±0.20°, 24.31±0.20°, 24.54±0.20°, 25.15±0.20°, 26.07±0.20°, 27.31±0.20°, 27.83±0.20°, 28.91±0.20°, 30.30±0.20°, and 31.74±0.20°.
[0144] In some embodiments of the present application, the Cu Kα-ray X-ray powder diffraction pattern of the hydrobromide crystal of the compound of formula (I) includes 3, 4, 5, 6, 7, or 8 diffraction peaks selected from 3.12±0.20°, 5.96±0.20°, 7.59±0.20°, 16.49±0.20°, 17.62±0.20°, 23.84±0.20°, 24.54±0.20°, and 30.30±0.20°, expressed as 2θ values.
[0145] In some embodiments of the present application, the X-ray powder diffraction pattern of the hydrobromide salt crystal of the compound of formula (I) using Cu Kα rays shows diffraction peaks at approximately 3.12°, 5.96°, 7.59°, 9.76°, 11.11°, 12.78°, 16.49°, 17.62°, 18.44°, 19.57°, 20.69°, 21.16°, 22.16°, 22.77°, 23.84°, 24.31°, 24.54°, 25.15°, 26.07°, 27.31°, 27.83°, 28.91°, 30.30°, and 31.74°, respectively.
[0146] In some embodiments of the present application, the peak positions and relative intensities of the diffraction peaks in the Cu Kα-ray X-ray powder diffraction patterns of the hydrobromide salt crystals of the compound of formula (I) are as shown in Table 7.
[0147] Table 7: Peak position and relative intensity of diffraction peaks of hydrobromide crystals of compound (I)
[0148] [Table 8]
[0149] In some embodiments of the present application, the Cu Kα-ray X-ray powder diffraction (XRPD) pattern of the hydrobromide salt crystal of the compound of formula (I) is shown in Figure 13.
[0150] In another embodiment, the present application provides a method for producing crystals of hydrobromide salt of the compound of formula (I), comprising the step of precipitating the hydrobromide salt of the compound of formula (I) from a mixed solvent of acetone and water.
[0151] In some embodiments of the present application, the hydrobromide crystals of the compound of formula (I) of the present application are (1) Reacting compound (I) with hydrobromic acid in the presence of acetone and water to obtain the hydrobromide salt of compound (I), (2) Manufactured by a method including crystallization.
[0152] In some embodiments of the present application, in the hydrobromide salt of the compound of formula (I) or the crystal of the hydrobromide salt of the compound of formula (I), the molar ratio of the compound of formula (I) to hydrobromic acid is 1:1, or the hydrobromide salt of the compound of formula (I) is the compound of formula (VI).
[0153] [ka]
[0154] In some embodiments of the present application, a method for producing type I crystals of the compound of formula (VI) is provided, which includes mixing crystals of the compound of formula (I) with acetone, heating the solution until it clarifies, adding hydrobromic acid and stirring, cooling to crystallize, and then filtering and drying under reduced pressure to obtain type I crystals of the compound of formula (VI).
[0155] In another form of this application, (1) Mix the crystals of the compound of formula (I) with a solvent selected from acetone or ethyl acetate, and heat until the solution becomes clear. (2) A method for producing crystals of a salt of the compound of formula (I) is provided, which includes adding an acid for salt formation to the solution, stirring, cooling to crystallize, and then filtering and drying under reduced pressure to obtain crystals of the salt of the compound of formula (I).
[0156] Alternatively, the present invention provides another method for producing crystals of a salt of a compound of formula (I), comprising mixing crystals of a salt of a certain type of compound of formula (I) with ethyl acetate and water, stirring while heating until the solution becomes clear, cooling to crystallize, and then filtering and drying under reduced pressure to obtain crystals of a salt of another type of compound of formula (I).
[0157] In another embodiment, the present application provides a crystalline composition comprising crystals of the compound of formula (I), type I or type II crystals of the hydrochloride salt of the compound of formula (I), crystals of the fumarate salt of the compound of formula (I), crystals of the maleate salt of the compound of formula (I), type I crystals of the methanesulfonate salt of the compound of formula (I), type II crystals of the methanesulfonate salt of the compound of formula (I), and crystals of the hydrobromide salt of the compound of formula (I), wherein the crystals constitute 50% or more, preferably 80% or more, more preferably 90% or more, and most preferably 95% or more, of the weight of the crystalline composition.
[0158] In another embodiment, the present application provides a pharmaceutical composition comprising a therapeutic or prophylactic effective amount of crystals of the compound of formula (I) described herein, hydrochloride of the compound of formula (I) or its type I or type II crystals, fumarate of the compound of formula (I) or its crystals, maleate of the compound of formula (I) or its crystals, methanesulfonate of the compound of formula (I) or its type I or type II crystals, hydrobromide of the compound of formula (I) or its crystals, or a crystalline composition thereof. The pharmaceutical composition of the present application may or may not contain pharmaceutically acceptable additives. The pharmaceutical composition of the present application may further contain one or more other therapeutic agents.
[0159] In another embodiment, the present application provides a method for treating or preventing a disease related to estrogen receptors, the method comprising administering to an individual in need a therapeutic or preventive amount of the following: crystals of the compound of formula (I), hydrochloride of the compound of formula (I) or its type I or type II crystals, fumarate of the compound of formula (I) or its crystals, maleate of the compound of formula (I) or its crystals, methanesulfonate of the compound of formula (I) or its type I or type II crystals, hydrobromide of the compound of formula (I) or its crystals, or the crystalline composition thereof, or the pharmaceutical composition thereof.
[0160] In another embodiment, the present application provides uses for the following in the manufacture of a drug for treating or preventing diseases related to estrogen receptors: crystals of the compound of formula (I), hydrochloride of the compound of formula (I) or its type I or type II crystals, fumarate of the compound of formula (I) or its crystals, maleate of the compound of formula (I) or its crystals, methanesulfonate of the compound of formula (I) or its type I or type II crystals, hydrobromide of the compound of formula (I) or its crystals, or the crystalline composition thereof, or the pharmaceutical composition thereof.
[0161] In another embodiment, the present application provides uses for the crystals of the compound of formula (I), the hydrochloride salt of the compound of formula (I) or its type I or type II crystals, the fumarate salt of the compound of formula (I) or its crystals, the maleate salt of the compound of formula (I) or its crystals, the methanesulfonate salt of the compound of formula (I) or its type I or type II crystals, the hydrobromide salt of the compound of formula (I) or its crystals, or the crystalline composition thereof, or the pharmaceutical composition thereof, for treating or preventing diseases related to estrogen receptors.
[0162] In another embodiment, the present application provides crystals of the compound of formula (I), hydrochloride of the compound of formula (I) or its type I or type II crystals, fumarate of the compound of formula (I) or its crystals, maleate of the compound of formula (I) or its crystals, methanesulfonate of the compound of formula (I) or its type I or type II crystals, hydrobromide of the compound of formula (I) or its crystals, or a crystalline composition thereof, or a pharmaceutical composition thereof, for treating or preventing diseases related to estrogen receptors.
[0163] In some embodiments of the present application, the disease associated with the estrogen receptor is breast cancer.
[0164] In some embodiments of the present application, the disease associated with the estrogen receptor is estrogen receptor-positive breast cancer. [Effects of the Invention]
[0165] The compounds and salts of the present invention are easy to manufacture, possess good solubility, physical stability, and chemical stability, as well as good oral exposure levels and good pharmacokinetic properties, making them suitable for use as pharmaceuticals. The compounds and salts of the present invention exhibit good chemical stability under acidic, alkaline, and oxidizing conditions, making them easy to store. In formulations, this helps avoid the destabilization of the drug by additives, which is useful for prescription screening. The compounds and salts of the present invention have low hygroscopicity. For example, DVS patterns show that both the type I and type II crystals of the hydrochloride salt of compound (I) exhibit lower hygroscopicity than the amorphous monohydrochloride salt of compound (I), with the type I crystal of the hydrochloride salt of compound (I) exhibiting particularly superior efficacy. Each crystal of the present invention can exhibit good properties in terms of pharmacokinetics, bioavailability, hygroscopicity, fluidity, stability, solubility, purity, and uniformity of quality.
[0166] Definition and explanation Unless otherwise specified, the following terms and expressions used herein have the meanings set forth below. Unless otherwise defined, any particular expression or term is understood in its ordinary sense, rather than being undefined or ambiguous. Where a trade name is mentioned herein, it means the corresponding product or its active ingredient.
[0167] It is well known in crystallography that in any established crystal form, the relative intensity of diffraction peaks can change due to preferred orientation caused by factors such as the crystal's characteristics. While the intensity of the peaks changes in areas affected by preferred orientation, the position of the diffraction peaks in the crystal form remains unchanged. It is also well known in crystallography that slight measurement errors can exist in the position of the peaks in any established crystal form. For example, changes in temperature during sample analysis, sample movement, or instrument calibration can cause the peak position to shift, and the measurement error of the 2θ value can be approximately ±0.2°. Therefore, it is known to those skilled in the art that this error should be taken into consideration when determining each crystal structure.
[0168] DSC measures the transition temperature at which the crystal structure changes or melts, causing the crystal to absorb or release heat. For the same compound and crystal form, the error in thermal transition temperature and melting point in continuous analysis is typically within approximately ±3°C. When a compound has a confirmed DSC peak or melting point, it refers to that DSC peak or melting point within ±3°C. DSC is an auxiliary method for distinguishing different crystal forms. Different crystal forms can be recognized by their characteristic of having different transition temperatures. In the case of mixtures, the DSC peak or melting point may vary over a larger range. Also, since the melting of a substance is a process involving decomposition, the melting temperature is related to the heating rate.
[0169] The aforementioned "pharmaceutically acceptable additives" refer to inert substances administered together with the active ingredient to facilitate its administration, and include, but are not limited to, any of the following, as approved by the China Food and Drug Administration for use in humans or animals (e.g., livestock): flow enhancers, sweeteners, diluents, preservatives, dyes / colorants, flavoring agents, surfactants, wetting agents, dispersants, disintegrants, suspending agents, stabilizers, isotonic agents, solvents, or emulsifiers.
[0170] The term "crystalline composition" refers to a mixture consisting of one or more crystals of the compound of formula (I), formula (II), formula (III), formula (IV), formula (V), or formula (VI) of this application, and other crystalline forms, amorphous materials, or other impurities of said compound. For example, a crystalline composition of the compound of formula (I) refers to a mixture that contains crystals of the compound of formula (I) of this application, as well as other crystalline forms, amorphous materials, or other impurities of the compound of formula (I).
[0171] The term "pharmaceutical composition" refers to a mixture comprising one or more of the compounds of this application, their salts or crystals, and any pharmaceutically acceptable additives. The pharmaceutical composition is intended to facilitate the administration of the compounds of this application to a living organism.
[0172] The therapeutic dose of the compound of this application may be determined, for example, based on the specific therapeutic use, the method of administration of the compound, the patient's health condition, and the judgment of the prescribing physician. The proportion or concentration of the compound of this application in a pharmaceutical composition is not necessarily constant and is determined by various factors such as dosage, chemical properties (e.g., hydrophobicity), and route of administration.
[0173] The term "treatment" means administering the compound or preparation described in this application to improve or resolve a disease or one or more symptoms associated with said disease, and, (i) To suppress a disease or disease state, that is, to suppress its progression. (ii) including alleviating a disease or disease state, that is, eliminating the disease or disease state.
[0174] The term "prevention" means administering one or more of the compounds or formulations described in this application to prevent one or more symptoms associated with the disease, and includes preventing the onset of the disease or disease state in mammals, in particular prevention when such mammals are susceptible to the disease state but have not been diagnosed with the disease state.
[0175] The therapeutically effective dose of the crystalline form described in this application is approximately 0.0001 to 20 mg / kg body weight / day, for example, 0.001 to 10 mg / kg body weight / day.
[0176] The term “effective therapeutic or prophylactic dose” means a dose of the compound of the Application that (i) treats or prevents a particular disease, condition or disorder; (ii) reduces, improves or eliminates one or more symptoms of a particular disease, condition or disorder; or (iii) prevents or delays an attack of one or more symptoms of a particular disease, condition or disorder as described herein. The amount constituting the “effective therapeutic dose” of the compound of the Application will vary depending on the compound, the state and severity of the disease, the method of administration, and the age of the treated mammal, but can be determined based on the knowledge of those skilled in the art and the content of this disclosure.
[0177] In this application, unless otherwise specified, the term “comprise,” similar terms, and equivalent English expressions, such as “comprises,” “comprising,” or equivalents, shall be understood in an open and non-exclusive sense as “including, but not limited to, ….”
[0178] Throughout this specification, the terms “one embodiment,” “an embodiment,” “in another embodiment,” or “in some embodiments” mean that at least one embodiment includes the relevant specific reference elements, structures, or features described in that embodiment. Therefore, expressions such as “one embodiment,” “in an embodiment,” “in another embodiment,” or “in some embodiments” appearing at different points throughout this specification do not necessarily refer to the same embodiment. Furthermore, specific elements, structures, or features can be combined in one or more embodiments in any suitable manner.
[0179] In this specification and the attached claims, the singular limiting term "one" (corresponding to the English "a," "an," and "the") includes multiple subjects unless explicitly stated in the context. In other words, in this specification, unless explicitly stated in the context, singular terms include the plural forms of terms, and vice versa. Therefore, for example, a reaction including a "catalyst" includes one type of catalyst, or two or more types of catalysts. The term "or" is generally used to mean "and / or" unless explicitly stated in the context.
[0180] Unless otherwise specified, in this specification, values of parameters representing the quantity of components, physicochemical properties, or reaction conditions should be considered in all cases to be modified by the term “approximately.” In this application, when the term “approximately” is used, it indicates the presence of an error value, for example, that it varies within a range of ±5%, e.g., ±1%, or ±0.1% of a particular value.
[0181] The intermediate compounds of this application can be produced by various synthetic methods familiar to those skilled in the art, including the specific embodiments listed below, embodiments combined with other chemical synthesis methods, and alternative forms familiar to those skilled in the art, the preferred embodiments including, but not limited to, the examples of this application.
[0182] The chemical reactions of the specific embodiments of this application are carried out in a suitable solvent, which must be compatible with the chemical changes and required reagents and starting materials of this application. In some cases, those skilled in the art may need to select or modify synthesis steps or reaction processes based on existing embodiments in order to obtain the compounds of this application.
[0183] The present application will be described in detail below using examples, and these examples are not intended to impose any limitations on the present application.
[0184] All solvents used in this application are commercially available and can be used without purification.
[0185] The solvent used in this invention can be a commercially available product.
[0186] The following abbreviations are used in this application. N2: Nitrogen gas, RH: Relative humidity, mL: Milliliter, L: Liter, min: Minute, °C: Degrees Celsius, μm: Micron, mm: Millimeter, μL: Microliter, mol / L: Moles per liter, mg: Milligram, s: Second, nm: Nanometer, MPa: Megapascal, lux: Lux, μW / cm² 2 : microwatts per square centimeter, h: hour, kg: kilogram, nM: nanomoles, RRT: relative holding time, rpm: rotational speed.
[0187] The compounds described herein are named according to the common naming conventions in the art, or using the software ChemDraw®, and commercially available compounds use the names listed in the manufacturer's catalog.
[0188] This specification expressly incorporates references to all patents, patent applications, and other established publications for explanatory and disclosure purposes. These publications are provided solely because they were published prior to the filing date of this application. Any statements regarding the publication dates or their contents are based on information available to the applicant and do not constitute an endorsement that the publication dates or contents of such documents are accurate. Furthermore, references to such publications in this specification do not constitute an endorsement that such publications are common knowledge in the art in any applicable country.
[0189] Instruments and analytical methods 1.1 The present invention relates to the method of X-ray powder diffraction (XRPD).
[0190] Device model: PANalytical X'Pert 3 Type X-ray diffractometer Test method: XRPD is measured on a sample of approximately 10 mg. X-ray type: Cu, Kα, Kα1 (Å): 1.540598, Kα2 (Å): 1.544426, Kα2 / Kα1 intensity ratio: 0.50, Voltage: 45 kilovolts (kV), Current: 40 milliamperes (mA), Divergence slit: 1 / 16°, Scan mode: Continuous, Scan range: 3.0~40.0°.
[0191] 1.2 Differential Scanning Calorimeter (DSC) Method of the Present Application
[0192] Instrument models: TA Instruments Discovery DSC 2500 and Q200 differential scanning calorimeters Test method: Place 1-5 mg of sample in a lidded aluminum crucible and raise the temperature from room temperature to 350°C at a heating rate of 10°C / min under protection of 50 mL / min of dry N2. Simultaneously, record the thermal changes of the sample during the heating process using TA software.
[0193] 1.3 Method of Thermogravimetric Analysis (TGA) according to this application
[0194] Instrument models: TA Instruments Q5000 and Discovery TGA 5500 thermogravimetric analyzers Test method: A 2-5 mg sample is placed in a platinum crucible, and the sample is raised from room temperature to 350°C at a heating rate of 10°C / min under protection of 50 mL / min of dry N2, using segmented high-resolution detection. Simultaneously, the weight change of the sample during the heating process is recorded using TA software.
[0195] 1.4 Method of Dynamic Vapor Soaping (DVS) according to this application
[0196] Instrument model: DVS Intrinsic by SMS (Surface Measurement Systems) DVS test parameters: Temperature: 25°C, Sample volume: 10-30 mg, Protective gas and flow rate: N2, 200 mL / min, dm / dt: 0.002% / min, Minimum dm / dt equilibrium time: 10 min, Maximum equilibrium time: 180 min, RH range: 0%RH-95%RH-0%RH, RH gradient: 10% (90%RH-0%RH-90%RH), 5% (95%RH-90%RH and 90%RH-95%RH).
[0197] 1.5 Method for Analyzing Chloride Ion Content According to the Present Application
[0198] Equipment model: SHIMADZU LC-20AD sp Software type: Lab Solution Version 5.92 Chromatography column and mobile phase: SHIMADZU Shim-pack IC-A3 4.6mm × 15cm 5μm, 8.0 mmol / L p-hydroxybenzoic acid + 3.2 mmol / L Bis-Tris buffer Mobile phase velocity: 1.5 mL / min, Column temperature: 40°C Test method: The external standard single-point method is adopted. The test sample and the reference sample are accurately weighed to prepare aqueous solutions. A certain amount of each is accurately weighed and loaded, and the chromatogram is recorded. The peak area (or peak height) of the test substance in the reference solution and the test sample solution is measured, and the content is calculated by the following formula.
[0199] Content (c x ) = c R ×A x / A R Here, in the formula, c R : Concentration content of the reference sample, A x : Peak area of the test sample, A R : Peak area of the reference sample.
Brief Description of Drawings
[0200] [Figure 1] It is the XRPD pattern of the crystal of the compound of formula (I). [Figure 2] It is the DSC pattern of the crystal of the compound of formula (I). [Figure 3] It is the TGA pattern of the crystal of the compound of formula (I). [Figure 4] It is the XRPD pattern of the Form I crystal of the compound of formula (II). [Figure 5] It is the DSC and TGA patterns of the Form I crystal of the compound of formula (II). [Figure 6] It is the DVS pattern of the Form I crystal of the compound of formula (II). [Figure 7] It is the XRPD pattern of the crystal of the compound of formula (III). [Figure 8] It is the DSC and TGA patterns of the crystal of the compound of formula (III). [Figure 9] It is the XRPD pattern of the crystal of the compound of formula (IV). [Figure 10] It is the DSC and TGA patterns of the crystal of the compound of formula (IV). [Figure 11] It is the XRPD pattern of the Form I crystal of the compound of formula (V). [Figure 12]This is the XRPD pattern of the type II crystal of compound (V). [Figure 13] This is the XRPD pattern of the crystal of compound (VI). [Figure 14] This is the XRPD pattern of the monohydrochloride salt of the compound of formula (I) from Example 1. [Figure 15] These are the DSC and TGA patterns of the monohydrochloride salt of the compound of formula (I) from Example 1. [Figure 16] This is the DVS pattern of the monohydrochloride salt of the compound of formula (I) from Example 1. [Figure 17] This is the XRPD pattern of a type II crystal of compound (II). [Figure 18] These are the DSC and TGA patterns of the type II crystal of compound (II). [Figure 19] This is the DVS pattern of a type II crystal of compound (II). [Modes for carrying out the invention]
[0201] The present application will be described in detail below using examples, without imposing any limitations on the present application. The compounds of the present application can be prepared by various synthetic methods familiar to those skilled in the art, including the specific embodiments listed below, embodiments in combination with other chemical synthetic methods, and alternative forms familiar to those skilled in the art, the preferred embodiments include, but are not limited to, the examples of the present application. Various modifications and improvements to the specific embodiments of the present application will be obvious to those skilled in the art without departing from the spirit and scope of the present application, and these modifications and improvements do not depart from the claims of the present application. [Examples]
[0202] Example 1: Preparation of compound (I) and its monohydrochloride salt
[0203] The compound of formula (I) and the monohydrochloride salt of the compound of formula (I) were obtained by referring to the method disclosed in Example 3 of WO2020125640.
[0204] The monohydrochloride salt of compound (I) is amorphous, and its XRPD, DSC, TGA, and DVS patterns are shown in Figures 14 to 16. The DSC graph shows an endothermic peak at 80.0°C, and the TGA graph shows a weight loss of 3.94% at 120.0°C.
[0205] Example 2: Preparation of crystals of compound (I)
[0206] 53 g of compound (I) was weighed and placed in a 1 L clear glass bottle. 500 mL of ethyl acetate was added, and the mixture was heated to 100 °C. The mixture was stirred for 20 minutes until the system dissolved and clarified. Heating was stopped, and the mixture was allowed to cool naturally to 25 °C. The mixture was then stirred at 25 °C for 11 hours and 40 minutes. The mixture was filtered, and the filter cake was dried under reduced pressure (45 °C, -0.1 MPa or less) to obtain crystals of compound (I). The XRPD, DSC, and TGA patterns are shown in Figures 1 to 3. 1 H NMR(400MHz,DMSO-d6)δ 11.46(s,1H),7.62(d,J=2.4Hz,1H),7.49(d,J=7.6Hz,1H),7.38(d,J=8.0Hz,1H),7.33~7.27(m,2H),7.25~7.08(m,6H),6.66~6.53(m,2H), 6.51~6.44(m,1H),4.14(t,J=5.6Hz,2H),3.29(d,J=4.8Hz,2H),2.97(s,3H),2.83(s,3H),2.75(t,J=5.2Hz,2H),2.48~2.41(m,2H),2.02(br s, 1H), 0.89(t, J=7.6Hz, 3H).
[0207] Example 3: Compound of formula (II) (In other words, the hydrochloride salt of the compound of formula (I)) Manufacturing of Type I crystals
[0208] [ka]
[0209] In Example 2, 57.5 g of the crystals of formula (I) prepared in Example 2 and 690 mL of ethyl acetate were added to a glass bottle in that order, heated to 90°C to clarify the system, then 20 mL of ethyl acetate solution containing 9.5 mL of concentrated hydrochloric acid (36-38 wt%, 1.05 equivalents) was added, the mixture was stirred at 90°C for 17 hours, cooled to room temperature, filtered, the filter cake was rinsed twice with ethyl acetate (20 mL), and the filter cake was dried under reduced pressure (50°C, -0.1 MPa or less) to obtain compound (II). (In other words, the hydrochloride salt of the compound of formula (I)) Type I crystals were obtained, and their XRPD, DSC, TGA, and DVS patterns are shown in Figures 4 to 6. Detection and analysis revealed that the average Cl ion content was 6.19%, and the salt formation coefficient was determined to be 1. 1 H NMR(400MHz,DMSO-d6)δ ppm 11.55(s,1H),9.31(br s,2H),7.66(d,J=2.0Hz,1H),7.49(d,J=8.0Hz,1H),7.39(d,J=8.0Hz,1H ),7.10~7.33(m,8H),6.81(d,J=15.2Hz,1H),6.63(d,J=8.6Hz,1H),6.54 ~6.61(m,1H),4.37(t,J=4.8Hz,2H),3.76(d,J=6.4Hz,2H),3.17~3.28(m ,2H),3.02(s,3H),2.86(s,3H),2.41~2.48(m,2H),0.89(t,J=7.6Hz,3H).
[0210] Example 4: Preparation of crystals of compound (III)
[0211] [ka]
[0212] In Example 2, 101.34 mg of the compound of formula (I) was weighed and added to an 8 mL clear glass bottle. 1.4 mL of acetone was then added, and the mixture was heated to 53°C to clarify the system. 23.83 mg (1.05 equivalents) of fumaric acid was added to the system, and the mixture was stirred at 53°C for 0.5 hours. After cooling to room temperature and stirring for 12 hours, the mixture was filtered, and the filter cake was dried under reduced pressure (45°C, -0.1 MPa or less) to obtain the crystals of the compound of formula (III). The XRPD, DSC, and TGA patterns are shown in Figures 7 and 8. 1 H NMR(400MHz,DMSO-d6)δ ppm 11.49(br s,1H),7.59~7.66(m,1H),7.49(d,J=7.6Hz,1H),7.38(d,J=7.6Hz,1H),7.10~7.33(m,8H),6.49~6.63(m,5H), 4.21(d,J=4.4Hz,2H),3.45(s,2H),2.98(s,3H),2.92(s,2H),2.84(s,3H),2.44(m,2H),0.89(t,J=7.4Hz,3H).
[0213] Example 5: Preparation of crystals of compound (IV)
[0214] [ka]
[0215] In Example 2, 100.45 mg of the compound of formula (I) was weighed and added to an 8 mL glass bottle. 1.2 mL of ethyl acetate was then added, and the mixture was heated to 80°C to dissolve it. Maleic acid (1.05 equivalents, 23.84 mg) was then added, and the mixture was stirred at 78°C for 1 hour. After stirring, the heating was stopped and the mixture was allowed to cool naturally to room temperature. The mixture was then stirred at room temperature for 12 hours, filtered, and the filter cake was dried under reduced pressure (45°C, -0.1 MPa or less) to obtain the crystals of the compound of formula (IV). The XRPD, DSC, and TGA patterns are shown in Figures 9 and 10. 1H NMR(400MHz,DMSO-d6)δ ppm 11.50(s,1H),7.66(d,J=2.4Hz,1H),7.49(d,J=7.6Hz,1H),7.39(d,J=8.0 Hz,1H),7.11~7.33(m,8H),6.77(d,J=14.8Hz,1H),6.50~6.67(m,2H),6.0 2(s,2H),4.33(t,J=4.8Hz,2H),3.77(d,J=6.4Hz,2H),3.25(t,J=4.8Hz,2 H),3.02(s,3H),2.86(s,3H),2.42~2.48(m,2H),0.89ppm(t,J=7.4Hz,3H).
[0216] Example 6: Preparation of type I crystals of compound (V)
[0217] [ka]
[0218] In Example 2, 100.25 mg of the compound of formula (I) was weighed and added to an 8 mL glass bottle. 1.4 mL of ethyl acetate was then added, and the mixture was heated to 80°C to dissolve it. 1.05 equivalents (14.5 μL) of methanesulfonic acid were added, and the mixture was stirred at 78°C for 1 hour. After stirring, the heating was stopped, and the mixture was allowed to cool naturally to room temperature. The mixture was then stirred at room temperature for 12 hours, filtered, and the filter cake was dried under reduced pressure (45°C, -0.1 MPa or less) to obtain type I crystals of the compound of formula (V). The XRPD pattern of the crystals is shown in Figure 11. 1H NMR(400MHz,DMSO-d6)δ ppm 11.51(s,1H),8.87(br s,2H),7.66(d,J=2.0Hz,1H),7.49(d,J=7.6Hz,1H),7.39(d,J=8.0Hz,1H),7.27~7.35(m,2H),7.16~7.27(m,5H),7.07~7.1 6(m,1H),6.79(d,J=15.2Hz,1H),6.64(d,J=8.4Hz,1H),6.54(m,1H),4.35(t,J=4.8Hz,2H),3.79(q,J=5.6Hz,2H),3.26(br s, 2H), 3.02 (s, 3H), 2.86 (s, 3H), 2.41~2.47 (m, 2H), 2.36 (s, 6H), 0.89ppm (t, J=7.4Hz, 3H).
[0219] Example 7: Preparation of Type II Crystals of Compound (V)
[0220] In Example 2, 100.39 mg of the compound of formula (I) was weighed and added to an 8 mL glass bottle. 1.4 mL of acetone was then added, and the mixture was heated to 53°C to dissolve it. 1.05 equivalents (14.5 μL) of methanesulfonic acid were added, and the mixture was stirred at 53°C for 0.5 hours. After stirring, the heating was stopped, and the mixture was allowed to cool naturally to room temperature. The mixture was then stirred at room temperature for 12 hours, filtered, and the filter cake was dried under reduced pressure (50°C) to obtain type II crystals of the compound of formula (V). Its XRPD pattern is shown in Figure 12. 1 H NMR(400MHz,DMSO-d6)δ ppm 11.52(s,1H),8.88(br s,2H),7.66(d,J=2.4Hz,1H),7.49(d,J=8.0Hz,1H),7.40(d,J=8.0Hz,1H),7.27~7.35(m,2H),7.16~7.27(m,5H),7.08~7.1 6(m,1H),6.79(d,J=15.2Hz,1H),6.64(d,J=8.8Hz,1H),6.54(m,1H),4.34(t,J=5.2Hz,2H),3.79(q,J=5.6Hz,2H),3.26(br s, 2H), 3.02 (s, 3H), 2.86 (s, 3H), 2.42~2.48 (m, 2H), 2.37 (s, 6H), 0.89 (t, J=7.4Hz, 3H).
[0221] Example 8: Preparation of crystals of compound (VI)
[0222] [ka]
[0223] In Example 2, approximately 1 g of the crystals of compound (I) prepared was weighed and added to a glass bottle. 14 mL of acetone was added, and the mixture was heated to 53°C to dissolve it. Hydrobromic acid (48 wt% aqueous solution, 1.05 equivalents, 225 μL) was then added, and the mixture was stirred at 53°C for 0.5 hours. After stirring, the heating was stopped, and the mixture was allowed to cool naturally to room temperature. The mixture was then stirred at room temperature for 12 hours, filtered, and the filter cake was dried under reduced pressure (50°C) to obtain crystals of compound (VI). The XRPD pattern of the resulting mixture is shown in Figure 13. 1 H NMR(400MHz,DMSO-d6)δ ppm 11.47~11.61(m,1H),8.94~9.23(m,2H),7.66(d,J=2.0Hz,1H),7.49(d,J=7.6Hz,1H),7.39(d,J=8.0Hz,1H),7.27~7. 33(m,2H),7.16~7.27(m,5H),7.09~7.16(m,1H),6.76~6.89(m,1H),6.64(d,J=8.4Hz,1H),6.51~6.61(m,1H),4.37(br s,2H),3.78(d,J=6.4Hz,2H),3.19~3.29(m,2H),3.02(s,3H),2.86(s,3H),2.41~2.48(m,2H),0.89(t,J=7.4Hz,3H).
[0224] Example 9: Preparation of type II crystals of compound (II)
[0225] [ka]
[0226] One g of type I crystals of compound (II), 3 mL of ethyl acetate, and 3 mL of water were added to a glass bottle in that order. The mixture was heated in an oil bath to 60°C and stirred for 0.1 hours to clarify the system. The oil bath was replaced with a 20°C water bath and cooled to room temperature. The mixture was stirred at room temperature for 12 hours, filtered, and the resulting filter cake was dried under reduced pressure (50°C, -0.1 MPa or less) to obtain type II crystals of compound (II). The XRPD, DSC, TGA, and DVS patterns are shown in Figures 17 to 19. 1 1H NMR (400MHz, DMSO-d6)δ 11.58(s,1H),9.49(s,2H),7.67(d,J=2.4Hz,1H),7.49(d,J=8.0Hz,1H),7.40 (d,J=8.0Hz,1H),7.34~7.28(m,2H),7.26~7.11(m,6H),6.83(d,J=15.2Hz,1H ),6.67~6.53(m,2H),4.40(t,J=4.8Hz,2H),3.76(d,J=6.4Hz,2H),3.23(t,J= 4.8Hz,2H),3.03(s,3H),2.87(s,3H),2.49~2.41(m,2H),0.90(t,J=7.2Hz,3H)
[0227] Experimental Example 1: Study of Crystal Form Properties
[0228] 1-2 mg of the test sample was placed in a semi-automatic filter vial and added to 450 μL of pure water or FeSSIF simulated solution (simulated intestinal fluid for feeding) to obtain a supersaturated suspension. The sample was vortexed for at least 2 minutes. The vial was placed in a plate shaker and shaken for 24 hours at a temperature of 37°C and a rotation speed of 800 rpm. After centrifugation and filtration, the sample concentration was quantitatively analyzed using HPLC-UV.
[0229] FeSSIF (feeding-simulated intestinal fluid) was an aqueous buffer containing 0.282% (w / v) lecithin, 0.806% (w / v) sodium taurocholate, 0.865% (w / v) acetic acid, and 1.52% (w / v) potassium chloride, with a pH of 5.0 ± 0.05.
[0230] Table 8
[0231]
Table 9
[0232] Experimental Example 2: In Vivo Pharmacokinetic Study of Form I Crystal of Compound (II)
[0233] Purpose of the Experiment:
[0234] The purpose of this experiment is to evaluate the pharmacokinetic behavior of the compound after single oral administration and to examine its bioavailability after oral administration.
[0235] Experimental Operation:
[0236] After feeding two female beagle dogs for 1 hour, a single oral dose of Form I crystal of Compound (II) was administered at 100 mg / kg. Plasma samples were collected at 0.0833 (5 minutes), 0.25 (15 minutes), 0.5 (30 minutes), 1, 2, 4, 6, 8, 12, and 24 hours after administration, and the concentration of the test substance in the plasma samples was measured using the LC-MS / MS method. The experimental results are as shown in Table 9.
[0237] Table 9: Results of In Vivo PK Property Evaluation
[0238] <Control group: 20 mg of each sample was weighed, and an appropriate amount of diluent (acetonitrile:water = 1:1, v / v) was added to dissolve the sample. Then, the solution was diluted to 100 mL with the same diluent (acetonitrile:water = 1:1, v / v), and an appropriate amount of this solution was used for detection.
[0242] Acid hydrolysis: A 20 mg sample was weighed, 1 mL of 1 M HCl aqueous solution was added, and the mixture was allowed to stand at room temperature for 24 hours. Then, it was neutralized with 1 mL of 1 M NaOH aqueous solution. The solution was diluted to 100 mL with a diluent (acetonitrile:water = 1:1, v / v), and an appropriate amount of this solution was used for detection.
[0243] Alkaline decomposition: A 20 mg sample was weighed, 1 mL of 1 M NaOH aqueous solution was added, and the mixture was allowed to stand at room temperature for 24 hours. Then, it was neutralized with 1 mL of 1 M HCl aqueous solution. The solution was diluted to 100 mL with a diluent (acetonitrile:water = 1:1, v / v), and an appropriate amount of this solution was used for detection.
[0244] Oxidative decomposition: A 20 mg sample was weighed, 1 mL of 3% hydrogen peroxide solution was added, and the mixture was allowed to stand at room temperature for 24 hours. The solution was then diluted to 100 mL with a diluent (acetonitrile:water = 1:1, v / v), and an appropriate amount of this solution was used for detection.
[0245] The test results are shown in Tables 10 and 11.
[0246] Table 10: Results of forced decomposition of type I crystals of compound (II)
[0247] [Table 11]
[0248] Table 11: Results of forced decomposition of monohydrochloride (amorphous) of compound (I)
[0249] [Table 12]
[0250] Therefore, the crystals of this invention can exhibit good solubility, hygroscopicity, pharmacokinetic properties, bioavailability, and stability.
Claims
1. A crystal of the hydrochloride salt of the compound of formula (I), 【Chemistry 1】 The hydrochloride salt crystals of the compound of formula (I) exhibit diffraction peaks at 5.97±0.20°, 7.58±0.20°, and 17.63±0.20° in 2θ values, as shown in the X-ray powder diffraction pattern using Cu Kα rays.
2. The crystal of the hydrochloride salt of the compound of formula (I) according to claim 1, wherein the X-ray powder diffraction pattern using Cu Kα rays shows diffraction peaks at 5.97±0.20°, 7.58±0.20°, 16.49±0.20°, 17.63±0.20°, 20.25±0.20°, 22.84±0.20°, 23.99±0.20°, and 24.62±0.20°, as shown in 2θ values.
3. The crystals of the hydrochloride salt of the compound of formula (I) exhibit the following 2θ values in X-ray powder diffraction patterns using Cu Kα rays: 5.97±0.20°, 7.58±0.20°, 11.08±0.20°, 11.38±0.20°, 14.14±0.20°, 15.30±0.20°, 16.49±0.20°, 17.63±0.20°, 18.44±0.20°, 19. A crystal of the hydrochloride salt of the compound of formula (I) according to claim 1, having diffraction peaks at 72±0.20°, 20.25±0.20°, 20.66±0.20°, 21.39±0.20°, 21.88±0.20°, 22.23±0.20°, 22.84±0.20°, 23.99±0.20° and 24.62±0.20°.
4. The crystals of the hydrochloride salt of the compound of formula (I) exhibit the following 2θ values in X-ray powder diffraction patterns using Cu Kα rays: 5.97±0.20°, 7.58±0.20°, 9.83±0.20°, 11.08±0.20°, 11.38±0.20°, 12.69±0.20°, 14.14±0.20°, 15.30±0.20°, 16.49±0.20°, 17.63±0.20°, and 18.44±0.20°. Crystals of the hydrochloride salt of the compound of formula (I) according to claim 1, having diffraction peaks at 1°, 19.72±0.20°, 20.25±0.20°, 20.66±0.20°, 21.39±0.20°, 21.88±0.20°, 22.23±0.20°, 22.84±0.20°, 23.79±0.20°, 23.99±0.20° and 24.62±0.20°.
5. The X-ray powder diffraction pattern of the hydrochloride salt crystal of the compound of formula (I) using Cu Kα rays is shown in Figure 4 below, as described in claim 1.
6. The differential scanning calorimetry graph of the hydrochloride salt crystal of the compound of formula (I) shows an endothermic peak at 204.5 ± 3°C, as described in any one of claims 1 to 5.
7. A crystal of the hydrochloride salt of the compound of formula (I) according to any one of claims 1 to 6, wherein the molar ratio of the compound of formula (I) to hydrochloric acid is 1:
1.
8. A crystalline composition comprising the crystal described in any one of claims 1 to 7, wherein the crystal accounts for 50% or more of the weight of the crystalline composition.
9. A crystalline composition comprising the crystals described in any one of claims 1 to 7, wherein the crystals constitute 95% or more of the weight of the crystalline composition.
10. A pharmaceutical composition comprising a therapeutic or prophylactic effective amount of a crystalline hydrochloride of a compound of formula (I) according to any one of claims 1 to 7, or the crystalline composition according to claim 8 or claim 9.
11. Crystals of the hydrochloride salt of the compound of formula (I) according to any one of claims 1 to 7 for treating or preventing diseases related to estrogen receptors.
12. The crystalline composition according to claim 8 or claim 9 for treating or preventing diseases related to estrogen receptors.
13. The pharmaceutical composition according to claim 10 for treating or preventing diseases related to estrogen receptors.
14. A crystal of the hydrochloride salt of the compound of formula (I) according to any one of claims 1 to 7 for the treatment or prevention of breast cancer.
15. The crystalline composition according to claim 8 or claim 9 for treating or preventing breast cancer.
16. The pharmaceutical composition according to claim 10 for treating or preventing breast cancer.
17. A crystal of the hydrochloride salt of the compound of formula (I) according to any one of claims 1 to 7 for the treatment or prevention of estrogen receptor-positive breast cancer.
18. The crystalline composition according to claim 8 or claim 9 for treating or preventing estrogen receptor-positive breast cancer.
19. The pharmaceutical composition according to claim 10 for treating or preventing estrogen receptor-positive breast cancer.
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