An oxopyrimidine compound, a preparation method thereof and uses thereof
By developing a new oxopyridine compound, the problem of bleeding complications of existing FXIa inhibitors in the treatment and prevention of FXIa receptor-related diseases has been solved, and good anticoagulant effects and oral bioavailability have been achieved, which has significantly improved the efficacy of the drug.
Patent Information
- Application Number
- CN202311150759.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-07
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2043-09-07
AI Technical Summary
The existing FXIa inhibitors are at risk of bleeding complications when treating and preventing diseases related to FXIa receptors, and are not sufficient for injection, expensive, and slow onset of effects, which makes it difficult to meet clinical needs.
Develop a novel oxopyridine compound with good anticoagulation effects and in vitro and in vitro affinity for FXIa, providing FXIa inhibitors through oral routes, improving bioavailability and patient compliance.
This compound showed significant FXIa inhibitory effect, which can significantly reduce the weight of the thrombus in the FeCl2-induced rabbit carotid thrombosis model, which is statistically significant and has significant efficacy.
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Figure CN117164565B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of medicinal chemistry, and particularly to oxopyridine compounds or their salts, isomers, and their preparation methods, as well as their use in the preparation of drugs for treating and / or preventing diseases related to the FXIa receptor, especially their use in the preparation of drugs for treating cerebrovascular arterial diseases and / or peripheral arterial diseases, etc. Background Art
[0002] Thromboembolic diseases are diseases caused by abnormal blood clots formed in blood vessels during the survival period of humans and animals. Clinically, they may manifest as myocardial infarction, stroke, deep vein thrombosis (DVT), pulmonary embolism, atrial fibrillation, and cerebral infarction, etc., claiming the lives of tens of millions of people globally every year. Coagulation factor XI (FXI) is a plasma serine protease zymogen necessary to maintain the intrinsic pathway. After activation, it generates activated coagulation factor XIa (FXIa), which plays a key role in the amplification process of the coagulation cascade reaction. Therefore, drugs targeting the FXIa target can block the intrinsic pathway and inhibit the amplification of the coagulation cascade reaction, thus having an antithrombotic effect.
[0003] The reported FXIa inhibitors mainly include monoclonal antibodies, antisense oligonucleotides, small chemical molecules, polypeptides or proteins, and polypeptide mimetics, etc. Currently, milvexian jointly developed by BMS and Johnson & Johnson has completed clinical phase II trials, and the results show a relatively low bleeding risk. The clinical phase I trial of the intravenous small molecule FXIa inhibitor BMS-962122 of BMS has been completed, and the R & D has been suspended. The small molecule oral FXIa inhibitor ONO-7684 developed by Ono Pharmaceutical Co., Ltd. of Japan has entered clinical phase I research. BAY-2433334 developed by Bayer has completed clinical phase II trials and has become the most promising small molecule FXIa inhibitor currently. Monoclonal antibodies and antisense oligonucleotides need to be administered by injection, and have the disadvantages of high price, slow onset, and possible difficult control. Small chemical molecules have the advantages of relatively good oral bioavailability and better patient compliance.
[0004] Therefore, the research and development of new small molecule FXIa inhibitors with safety, effectiveness, good specificity, and strong activity may make up for the deficiencies of the current clinical anticoagulant and antithrombotic drugs that are prone to bleeding complications and meet the unmet clinical needs. Summary of the Invention
[0005] The compound of the present invention is a novel oxopyridine compound, showing good anticoagulant effects and in vitro and in vivo affinities for FXIa.
[0006] On the one hand, the present invention provides a compound represented by formula (I), its stereoisomers, or pharmaceutically acceptable salts:
[0007]
[0008] Further, the pharmaceutically acceptable salt described above is a metal salt.
[0009] Further, the metal salt described above is selected from sodium salt, potassium salt, calcium salt, lithium salt, and magnesium salt.
[0010] On the other hand, the present invention provides a pharmaceutical composition of the above compound, its stereoisomer or pharmaceutically acceptable salt, and the composition further contains a pharmaceutically acceptable carrier and / or excipient.
[0011] On the other hand, the present invention provides a preparation method of the above compound, its stereoisomer or pharmaceutically acceptable salt, including the following route:
[0012]
[0013] On the other hand, the present invention also provides the use of any one of the above compounds, its stereoisomers or pharmaceutically acceptable salts or their compositions in the preparation of a drug for treating and / or preventing diseases related to the FⅪa receptor.
[0014] Further, the diseases related to the FⅪa receptor described above are selected from thrombosis or thromboembolism-related disorders.
[0015] Further, the diseases related to the FⅪa receptor described above are selected from cerebrovascular arterial diseases and / or peripheral arterial diseases.
[0016] Further, the above cerebrovascular arterial diseases include but are not limited to transient ischemic attack (TIA), ischemic stroke, or events originating from thrombosis and / or thromboembolism that cause stroke or TIA; the above peripheral arterial diseases include but are not limited to peripheral arterial occlusion, acute limb ischemia, amputation, re-occlusion and restenosis after intervention (such as angioplasty, stent implantation, or surgery and bypass), and / or stent thrombosis.
[0017] Further, the above ischemic stroke includes but is not limited to cardiogenic stroke, non-cardiogenic stroke, stroke caused by large artery or small artery diseases, stroke caused by undetermined reasons, cryptogenic stroke, embolic stroke, or embolic stroke of undetermined origin.
[0018] Further, the above cardiogenic stroke includes but is not limited to stroke caused by atrial fibrillation; the above non-cardiogenic stroke includes but is not limited to lacunar stroke.
[0019] Beneficial effects: Compared with the prior art, the present invention has a good FXIa inhibitory effect. In the rabbit carotid artery thrombosis model induced by FeCl2, the weight of the arterial thrombus in the carotid artery of the rabbits in the group of Example Compound 1 is significantly reduced compared with the weight of the arterial thrombus in the carotid artery of the rabbits in the Comparative Example 1 group, which has statistical significance and significant pharmacodynamic effects. Detailed implementation manners
[0020] The present invention will be further described in detail below in conjunction with examples and experimental examples. The examples and experimental examples of the present invention are only used to illustrate the technical solutions of the present invention and do not limit the present invention. Any equivalent substitution in the art made in accordance with the content disclosed in the present invention belongs to the protection scope of the present invention.
[0021] The structure of the compound was determined by nuclear magnetic resonance ( 1 1H NMR) or liquid chromatography-mass spectrometry (LC-MS).
[0022] The liquid chromatography-mass spectrometer (LC-MS) is Agilent G6120B (used in conjunction with the liquid phase Agilent 1260); the nuclear magnetic resonance spectrometer ( 1 1HNMR) is Bruker AVANCE-400 or Bruker AVANCE-800. The nuclear magnetic resonance ( 1 1H NMR) chemical shift (δ) is given in parts per million (ppm) units, with the internal standard being tetramethylsilane (TMS), and the chemical shift is given in units of 10 -6 (ppm).
[0023] The term "room temperature" in the present invention refers to a temperature between 10 and 30 °C.
[0024] Example 1: Preparation of (S)-4-(2-(4-(5-chloro-2-(1H-tetrazol-1-yl)phenyl)-5-methoxy-2-oxopyrimidin-1(2H)-yl)butanamido)-2-fluoro-N-(methyl-d3)benzamide (Compound 1):
[0025]
[0026] Step 1: Preparation of Intermediate b
[0027] Dissolve diisopropylamine (24 mmol) in 25 ml of THF, cool to below -60 °C, and add dropwise 9.14 ml of a 2.5 M n-butyllithium n-hexane solution over about 1 hour. After addition, stir at -60 °C for 15 minutes. Then add dropwise a 10 ml THF solution of compound a (20 mmol). After addition, stir at -60 °C for 2 hours. Then add dropwise triisopropyl borate (22 mmol). After addition, slowly warm up to room temperature (20 °C) and stir for 30 minutes. Add dropwise a mixture of 4 g of acetic acid and 21 g of water to terminate the reaction. After addition, stir at room temperature for 30 minutes. Distill off the organic solvent, add a little water, stir at room temperature for 15 minutes, filter, wash the filter cake with water, and dry in vacuo at 70 °C to obtain a solid. The yield is 78.92%, and the HPLC purity is 98.26%.
[0028] ESI-MS: m / z = 185.1 (M+H) + 。
[0029] Step 2: Preparation of intermediate e
[0030] Take compound d (10.0 mmol), Pd(amphos)Cl2 (0.15 mmol) and suspend them in 25 ml of tert-amyl alcohol. Heat to 85 °C and add dropwise a mixed solution of compound c (1.2 mmol), sodium carbonate (30 mmol) and 25 ml of water. After addition, react at 85 °C for 1 hour. Cool to room temperature, add EA / water for extraction treatment, separate the aqueous layer, wash the organic layer successively with water and saturated brine, dry over anhydrous sodium sulfate, filter, and evaporate the solvent. Purify by column chromatography to obtain intermediate e. The yield is 78.11%, and the HPLC purity is 98.81%.
[0031] ESI-MS: m / z = 319.1 (M+H) + 。
[0032] Step 3: Preparation of intermediate f
[0033] Take compound e (6 mmol), anhydrous lithium chloride (30 mmol), p-toluenesulfonic acid monohydrate (12 mmol) and mix them with 20 ml of isopropanol. Heat under reflux for 16 hours. Cool to room temperature, distill off half of the solvent, add 30 ml of water, stir at room temperature for 15 minutes, filter, wash the filter cake with water, and dry in vacuo at 70 °C to obtain intermediate f in solid form. The yield is 89.20%, and the HPLC purity is 96.58%.
[0034] ESI-MS: m / z = 305.1 (M+H) + 。
[0035] Step 4: Preparation of intermediate h
[0036] Add compound f (2 mmol), tetramethylguanidine (7 mmol), 6 ml of isopropanol, and 1.5 ml of acetone to a 25-ml reaction flask. Stir at room temperature for 15 minutes, then add compound g (2.2 mmol) and stir the reaction overnight at room temperature. The next day, add water to terminate the reaction, extract with EA, separate the aqueous layer, and wash the organic layer successively with saturated ammonium chloride solution, water, saturated brine, dry over anhydrous sodium sulfate, filter, evaporate the solvent, purify by column chromatography, collect the product, and obtain the pure product. The yield is 82.36% and the purity is 98.41%.
[0037] ESI-MS: m / z = 584.2 (M+H) + 。
[0038] Step 5: Preparation of intermediate j
[0039] Add compound h (2 mmol) and 16 ml of methanol to a 25-ml reaction flask, stir to dissolve, and cool to 0 °C. Weigh lithium hydroxide monohydrate (4 mmol) and dissolve it in 8 ml of water, then add it dropwise to the reaction flask. After addition, react at room temperature for 2 h. Add water to terminate the reaction, adjust the pH to weakly acidic with 5% citric acid, extract with EA, separate the aqueous layer, wash the organic layer successively with water, saturated NaCl solution, dry over anhydrous sodium sulfate, filter, evaporate the solvent, perform column chromatography, and collect the target product to obtain intermediate j. The yield is 79.30% and the purity is 98.20%.
[0040] ESI-MS: m / z = 528.1 (M+H) + 。
[0041] Step 6: Preparation of (S)-4-(2-(4-(5-chloro-2-(1H-tetrazol-1-yl)phenyl)-5-methoxy-2-oxopyrimidin-1(2H)-yl)butanamido)-2-fluoro-N-(methyl-d3)benzamide (Compound 1)
[0042] Add intermediate j (1 mmol), 3 ml of DMF, deuterated methylamine hydrochloride (1.1 mmol), EDCI (2 mmol), and HOBT (2 mmol) to a 50-ml reaction flask. Cool to 0 °C and add DIPEA (4 mmol) dropwise. React at room temperature for 12 h until the raw materials are completely reacted. Add the reaction solution to cold water and extract twice with ethyl acetate, wash twice with water, wash with saturated brine, dry over anhydrous sodium sulfate, evaporate the solvent, and purify by silica gel column chromatography to obtain Compound 1. The yield is 75.47% and the purity is 98.51%.
[0043] ESI-MS: m / z = 544.2 (M+H) + 。
[0044] 11H NMR (400 MHz, DMSO-d6) δ: 10.70 (s, 1H), 9.86 (s, 1H), 9.09 (s, 1H), 8.01 (d, J = 3.4 Hz, 1H), 7.83–7.66 (m, 2H), 7.71–7.60 (m, 2H), 7.35 (dd, J = 8.6, 2.0 Hz, 1H), 7.10 (s, 1H), 5.54 (dd, 1H), 3.25 (s, 3H), 2.09 (m, 2H), 0.77 (t, J = 7.2 Hz, 3H).
[0045] Comparative Example 1: Preparation of (S)-4-(2-(4-(5-chloro-2-(4-(trifluoromethyl)-1H-1,2,3-triazol-1-yl)phenyl)-5-methoxy-2-oxopyridin-1(2H)-yl)butanamido)-2-fluorobenzamide
[0046]
[0047] Synthesized according to the method described in Patent CN108026072B, purity: 98.5%.
[0048] ESI-MS: m / z = 593.1 (M+H) + .
[0049] 1 1H NMR (400 MHz, DMSO-d6) δ: 10.78 (s, 1H), 9.14 (s, 1H), 7.88–7.77 (m, 3H), 7.72–7.61 (m, 2H), 7.55 (d, 2H), 7.37 (dd, 1H), 7.13 (s, 1H), 6.54 (s, 1H), 5.52 (dd, 1H), 3.25 (s, 3H), 2.18–2.00 (m, 2H), 0.78 (t, 3H).
[0050] Test Example 1: Inhibitory Effect on Coagulation Factor FXIa
[0051] 1. Test Samples
[0052] Compound 1 of the Example and Comparative Example 1.
[0053] 2. Test Procedures
[0054] 1) Prepare the experimental buffer (50 mM HEPES, 5 mM KCl, 145 mM NaCl, 1 mg / ml PEG8000, pH 7.4) and equilibrate to room temperature.
[0055] 2) Prepare 10X compound working solution.
[0056] 3) Prepare 0.8 nM Human FXIa working solution (2X), mix well and set aside for use.
[0057] 4) Add 20 μL of the FXIa working solution in step 3) to all the experimental wells of a 384-well plate (Coring, 3702), centrifuge at 200 g, RT for 10 s.
[0058] 5) Add 4 μL of the compound working solution in step 2) to the corresponding experimental wells of the 384-well plate, centrifuge at 200 g, RT for 10 s, and then incubate the working plate at 25 °C for 20 min.
[0059] 6) Prepare 750 μM S-2366 working solution (2.5X), mix well and set aside for use.
[0060] 7) Add 16 μL of the S-2366 working solution in step 6) to all the experimental wells of the 384-well plate, centrifuge at 200 g, RT for 10 s, and then incubate the working plate at 37 °C for 45 min.
[0061] 8) After incubation, use EnVision to read the absorbance at OD405 nm and collect the data.
[0062] Set 5 concentrations, namely: 200 nM, 40 nM, 8 nM, 1.6 nM, 0.32 nM, and detect the IC 50 value.
[0063] 3. Data analysis
[0064] 1) Z’factor = 1 - 3*(SD Max + SD Min ) / (Mean Max - Mean Mi n );
[0065] 2) CV Max = (SD Max / Mean Max )*100%;
[0066] 3) CVMin = (SD Min / Mean Min )*100%;
[0067] 4) S / B = Singal / Background;
[0068] 5) Blank control: 0.1% DMSO; Positive control: Comparative Example 1;
[0069] 6) IC 50Calculation formula: Y = Bottom + (Top - Bottom) / (1 + 10^((LogIC 50 - X) * HillSlope)).
[0070] X: Log value of compound concentration; Y: Inhibition%.
[0071] 4. Test results
[0072] The test results are shown in the following table. The results show that under the condition of the same molar concentration, the in vitro inhibitory activity of Compound 1 of the present invention against FXIa is comparable to that of the compound in Comparative Example 1.
[0073] Table 1 Determination of the activity of coagulation factor FXIa inhibitor (IC 50 )
[0074] Sample <![CDATA[IC 50 (nM)]]> Sample <![CDATA[IC 50 (nM)]]> Compound 1 0.1 Comparative Example 1 7.6
[0075] Test Example 2: In vivo pharmacodynamic evaluation of rabbit arteriovenous shunt model
[0076] 1. Test samples
[0077] Compound 1 of the example and Comparative Example 1.
[0078] 2. Test methods
[0079] Select New Zealand white rabbits, all male, 30 rabbits, 2.5 - 3.0 kg. Divide them into 3 groups, 10 rabbits / group. They are the model group, the Comparative Example 1 group, and the Compound 1 group respectively.
[0080] The rabbits in the Comparative Example 1 group and the Compound 1 group were respectively given the compounds shown in Comparative Example 1 and Compound 1 by single intravenous injection at a dose of 6 mg / kg.
[0081] The test animals were anesthetized by intramuscular injection of xylazine (5 mg / kg) and ketamine (40 mg / kg), and the anesthetic effect was maintained by intravenous drip of xylazine and ketamine (80 mg + 800 mg, prepared into 12 ml) through the right ear marginal vein of the rabbit (5 ml / h). After the operation, one side of the common carotid artery was exposed. 30 minutes after intravenous injection of the drug, a piece of filter paper (10 mm × 10 mm) on the strip was wound around the carotid artery. After winding, the blood flow was not affected. The filter paper contained 100 μl of an aqueous solution of FeCl with a concentration of 13%. 2 After 5 minutes, the filter paper was removed and the blood vessel was rinsed twice with 0.9% sodium chloride injection solution. 30 minutes after using the filter paper, the injured carotid artery was excised, and the thrombus in the blood vessel was removed and weighed.
[0082] 3. Test results
[0083] As shown in Table 2, in the rabbit carotid artery thrombosis model induced by FeCl2, the weight of the arterial thrombus in the carotid artery of rabbits in the compound 1 group of the examples was significantly reduced compared with that in the carotid artery of rabbits in the control group 1, with statistical significance.
[0084] Table 2 Weight of arterial thrombus in the rabbit carotid artery thrombosis model induced by FeCl 2 (Unit: mg)
[0085] Animal Number / Group Model Group Comparative Example 1 Group Compound 1 Group Mean 18.53 <![CDATA[4.80 *** > <![CDATA[2.48 ***Δ >
[0086] Compared with the model group: *** P < 0.001; compared with the control group 1: Δ P < 0.05.
[0087] The above embodiments are only one of the preferred embodiments of the present invention and should not be used to limit the protection scope of the present invention. Any meaningless changes or polish made on the main design concept and spirit of the present invention, as long as the technical problems solved are still consistent with the present invention, should be included in the protection scope of the present invention.
Claims
1. A compound of formula (I) or a pharmaceutically acceptable salt thereof: 。 2. The compound or pharmaceutically acceptable salt according to claim 1, wherein, the salt is a metal salt.
3. The compound or pharmaceutically acceptable salt according to claim 2, wherein, the metal salt is selected from sodium salt, potassium salt, calcium salt, lithium salt, magnesium salt.
4. A pharmaceutical composition comprising the compound or pharmaceutically acceptable salt according to any one of claims 1 to 3, wherein, the composition further comprises a pharmaceutically acceptable carrier and / or excipient.
5. Use of the compound or pharmaceutically acceptable salt according to any one of claims 1 to 3 in the preparation of a medicament for treating and / or preventing diseases related to the FⅪa receptor.
6. The use according to claim 5, wherein, the diseases related to the FⅪa receptor are selected from thrombosis or thromboembolism-related disorders.
7. The use according to claim 5, wherein, the diseases related to the FⅪa receptor are selected from cerebrovascular arterial diseases and / or peripheral arterial diseases.
8. The use according to claim 5, wherein, the diseases related to the FⅪa receptor are selected from transient ischemic attack, ischemic stroke, peripheral arterial occlusion or stent thrombosis.
Citation Information
Patent Citations
Substituted oxopyridine derivatives
CN108026072B
Substituted oxopyridine derivatives
CN108026072A
Preparative process of two 4-{[(2S)-2-{4-[5-chloro-2-(1h-1,2,3-triazol-1-yl)phenyl]-5-methoxy-2-oxopyridin-1(2H)-yl}butanoyl]amino}-2-fluorobenzamide derivatives
CN111770917A
FXIa blood coagulation factor inhibitor as well as pharmaceutical composition and application thereof
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Novel oxopyridine compound as well as intermediate and application thereof
CN116082303A