Method for preparing (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)-cyclopropyl)benzoic acid or a salt thereof.

A novel synthesis method for (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid addresses the inefficiencies of existing methods by using a simplified process, reducing time and cost, and producing a stable pharmaceutical form.

JP7837559B2Active Publication Date: 2026-03-31ROTTAPHARM BIOTECH SRL
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-03-19
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

There is a need for an efficient method to produce (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid or its salts on an industrial scale, as existing methods are time-consuming and require expensive chromatography columns.

Method used

A novel method involving the synthesis of (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid as an intermediate, using a Wittig reaction, Makosza reaction, and subsequent steps to produce the final compound, which reduces the number of steps and reaction time, avoiding racemization and chromatography.

Benefits of technology

The method achieves efficient production of the compound on an industrial scale with reduced time and cost, eliminating the need for expensive chromatography, and results in a stable crystalline form suitable for pharmaceutical use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a method for preparing (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid (SM1), the method comprising the steps of: iv) converting a compound of formula (VII) to a compound of formula (VIII) using a Wittig reagent in a suitable solvent; v) reacting the compound of formula (VIII) via a Makosza reaction using bromoform and a suitable base to obtain a cyclopropane compound of formula (IX); and vi) removing the bromine atom in the presence of a reducing agent and a base in an alcoholic solvent to obtain (SM1). The present invention also relates to a method for converting compound (SM1) to prepare (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamido)cyclopropyl)benzoic acid (IV) or a salt thereof. The salt is preferably a sodium salt, more preferably polymorph A of sodium (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamido)-cyclopropyl)benzoate, characterized by a powder XRD spectrum with peaks at values ​​of 4.3, 5.0, 5.8, 6.4, 7.1, 8.3, 8.7, 12.8, 15.3, and 15.9 ±0.2° 2θ.
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Description

[Technical Field]

[0001] The present invention provides a method for preparing a sodium salt of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid or a salt thereof, preferably characterized by a powder XRD spectrum having peaks at angles of 2θ±0.2° at 4.3, 5.0, 5.8, 6.4, 7.1, 8.3, 8.7, 12.8, 15.3, and 15.9, or polymorph A of a sodium salt of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid or a salt thereof, wherein the sodium salt of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid or a polymorph A of a sodium salt thereof. [Background technology]

[0002] Compound (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2,5]octane-5-carboxamide)cyclopropyl)benzoic acid was first described as an EP4 antagonist in International Publication No. 2013 / 004290. Specifically, this acid compound is prepared in Example 7 by following a general procedure (Method B) for ester hydrolysis, starting from methyl 4-(1-6-(4-(trifluoromethyl)benzyl)6-azaspiro[2,5]octane-5-carboxamide)cyclopropyl)benzoate as a single unknown enantiomer. The latter was obtained by reaction of a racemic mixture of methyl 4-(1-(6-azaspiro[2,5]octane-5-carboxamide)cyclopropyl)benzoate with 4-(trifluoromethyl)-benzyl bromide, followed by chiral HPLC separation.

[0003] An unpublished European patent application describes a method for preparing (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid or a salt thereof, and by using (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid as a starting material, the expensive and time-consuming enantiomer separation is avoided.

[0004] U.S. Patent Application Publication No. 2016 / 0272585 describes the use of phenoxyethyl compounds as pharmaceuticals. Paragraphs

[0102] to

[0103] describe how (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid is prepared by dissolving methyl (R)-6-tert-butoxycarbonyl-6-azaspiro[2.5]octane-5-carboxylic acid (in a mixture of THF and CH3OH), then adding an aqueous solution of NaOH, and stirring the mixture at room temperature for 1.5 hours. After adding an aqueous solution of HCl until the pH reached 1.0, the mixture was extracted with ELISA. After layer separation, the mixture was filtered and concentrated under reduced pressure to obtain (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid.

[0005] (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)-cyclopropyl)benzoic acid or its salts are important pharmacoactive ingredients used in pharmaceuticals or pharmaceutical compositions.

[0006] Therefore, there remains a need to prepare (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)-cyclopropyl)benzoic acid or its salts in an efficient manner on an industrial scale.

[0007] Therefore, an object of the present invention is to produce (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)-cyclopropyl)benzoic acid or a salt thereof in an efficient manner on an industrial scale. [Overview of the Initiative]

[0008] The inventors have surprisingly found that the compound (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid is an important intermediate for synthesizing (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamido)-cyclopropyl)benzoic acid or a salt thereof, and have attempted to find the most efficient method for producing it.

[0009] Thus, in a first aspect, the present invention provides a method for preparing (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid (SM1)

Chemical formula

Chemical formula

Chemical formula

Chemical formula

[0010] In a further aspect, the present invention provides a compound of the formula:

Chemical formula

Chemical formula

Chemical formula

Chemical formula

Chemical formula

Chemical formula

[0011] In a preferred advantageous embodiment, the present invention provides the sodium salt of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid (IV) (compound 1) by adding sodium hydroxide in a preferred solvent. [ka] This relates to a method for preparing [the compound]. The solvent can dissolve the compound of formula (IV).

[0012] More preferably, when the solvent is propanol, the sodium salt of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid obtained from the compound of formula (IV) (compound 1) is polymorph A, characterized by a powder XRD spectrum having peaks at angles of 2θ±0.2° at 4.3, 5.0, 5.8, 6.4, 7.1, 8.3, 8.7, 12.8, 15.3, and 15.9.

[0013] The present invention focuses on a novel method for preparing (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid, a key intermediate for the production of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid. This novel method was highly efficient, not only because it reduced the number of steps, but also because the complete reaction time required to obtain the final product was almost half that of the prior art method.

[0014] Furthermore, while the purification process was entirely on an industrial scale, the prior art procedures required chromatography columns, which are known to be very expensive and not readily applicable on an industrial scale.

[0015] In a favorable embodiment, a method for preparing (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid, which is an important intermediate for the production of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid, provides only the acid intermediates. They can be converted to salts under basic conditions and thus racemization can be avoided. Indeed, all prior art steps involving alkyl esters require very mild and controlled conditions to avoid racemization and the resulting separation, resulting in a loss of yield and time. [Brief explanation of the drawing]

[0016] [Figure 1] This figure reports the DSC graph of crystalline form A of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)sodium benzoate in Example 1. [Figure 2] This figure reports the IR spectrum of crystalline form A of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)sodium benzoate for Example 1. [Modes for carrying out the invention]

[0017] The present invention relates to (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid (SM1) [ka] A method for preparing a, wherein the method is iv) The step of converting the compound of formula (VII) to the compound of formula (VIII) using Wittig's reagent in a suitable solvent. [ka] v) Reacting the compound of formula (VIII) with bromoform and a suitable base by a Makosza reaction to obtain the cyclopropane compound of formula (IX). [ka] and vi) Steps to obtain (SM1) by removing bromine atoms in an alcoholic solvent in the presence of a reducing agent and a base. [ka] This includes methods.

[0018] Step iv) provides the Wittig reaction. Preferably, the Wittig reagent is methyltriphenylphosphonium bromide, and the solvent is independently selected from the group consisting of 2-methyltetrahydrofuran, tetrahydrofuran, and toluene. The solvent is more preferably 2-methyltetrahydrofuran.

[0019] Step v) provides a Makosza reaction using bromoform in a suitable base, preferably sodium hydroxide or potassium hydroxide. The preferred base is more preferably sodium hydroxide.

[0020] In step vi), the bromine atom is removed by using a reducing agent, preferably hydrogen and palladium charcoal or hydrogen and Raney nickel, more preferably hydrogen and palladium charcoal, and a base, preferably potassium hydroxide or sodium hydroxide, more preferably potassium hydroxide, in an alcoholic solvent preferably selected from the group consisting of isopropanol, methanol and ethanol, more preferably isopropanol, thereby obtaining (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid (SM1).

[0021] The compound of formula (VII) can be obtained from aspartic acid as a starting material, as shown in Tetrahedron (1997) 15671-15680.

[0022] Specifically, the compound of formula (VII) is produced in the following steps: i) The process of forming an ester of aspartic acid using acetyl chloride in methanol. [ka] ii) A step in which the compound of formula (V) is reacted with methyl acrylate in the presence of water and a suitable base, preferably triethylamine, and subsequently tert-butyloxycarbonyl anhydride in tert-butanol is added to obtain intermediate (VI). [ka] iii) A step in which the compound of formula (VI) is reacted with sodium methoxide in tetrahydrofuran, and then tert-butylamine is added to obtain the compound of formula (VII). [ka] Obtained by [method].

[0023] In a further embodiment, the present invention relates to formula: [ka] A method for preparing (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)-cyclopropyl)benzoic acid (IV) or a salt thereof, wherein the method is a) (R)-6-(tert-butoxycarbonyl)-6-azapiro[2.5]octane-5-carboxylic acid (SM1) [ka] A step in which to prepare, iv) The step of converting the compound of formula (VII) to the compound of formula (VIII) using Wittig's reagent in a suitable solvent. [ka] v) Reacting the compound of formula (VIII) with bromoform and a suitable base by a Makosza reaction to obtain the cyclopropane compound of formula (IX). [ka] and vi) Steps to obtain (SM1) by removing bromine atoms in an alcoholic solvent in the presence of a reducing agent and a base. [ka] The process involves a method that includes the preparation of b) A step of reacting compound (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid (SM1) with methyl 4-(1-aminocyclopropyl)benzoate (SM2) in the presence of a suitable coupling agent to obtain the compound of formula (I). [ka] c) A step of obtaining compound (II) by N-deprotecting compound (I) in an acidic medium in an organic solvent. [ka] d) Alkylation of the nitrogen on the azaspiro[2.5]octane ring with 4-(trifluoromethyl)benzyl bromide in the presence of a suitable base to obtain compound (III). [ka] and e) A step of hydrolyzing the methyl ester using a suitable inorganic base to obtain compound (IV). [ka] This includes methods.

[0024] All preferred embodiments of steps iv) to vi) outlined earlier are found in step a) for preparing (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid (SM1).

[0025] Therefore, in steps a)-iv), the witting reagent is methyltriphenylphosphonium bromide, and independently, the solvent is 2-methyltetrahydrofuran, tetrahydrofuran, or toluene, preferably 2-methyltetrahydrofuran.

[0026] In steps a)-v), the preferred base is preferably sodium hydroxide or potassium hydroxide, more preferably sodium hydroxide.

[0027] In steps a)-vi), the reducing agent is preferably hydrogen and palladium charcoal or hydrogen and Raney nickel, more preferably hydrogen and palladium charcoal, and the base is independently an alcoholic solvent selected from the group consisting of isopropanol, methanol and ethanol, preferably potassium hydroxide or sodium hydroxide in isopropanol, more preferably potassium hydroxide.

[0028] Step b) provides a reaction between the compound (SM1) obtained by the method comprising steps iv) to vi) and methyl 4-(1-aminocyclopropyl)benzoate (SM2) in the presence of a suitable coupling agent, preferably N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide hydrochloride.

[0029] In step c), compound (I) is N-deprotected in an organic solvent, preferably an acidic medium in dichloromethane, preferably trifluoroacetic acid, to obtain compound (II).

[0030] Step d) provides compound (III) by alkylating the nitrogen on the azaspiro[2.5]octane ring with 4-(trifluoromethyl)benzyl bromide in the presence of a suitable base, preferably cesium carbonate (Cs2CO3).

[0031] In step e), the methyl ester of formula (III) is hydrolyzed using a suitable inorganic base, preferably sodium hydroxide, to obtain compound (IV).

[0032] According to the present invention, compound (IV) can be converted into pharmaceutically acceptable salts. These salts include sodium salts, potassium salts, and lithium salts.

[0033] In a preferred advantageous embodiment, the present invention provides a sodium salt of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid (compound 1) by adding a sodium base, preferably sodium hydroxide, in a suitable solvent. [ka] This relates to a method for preparing [the compound]. The solvent can dissolve the compound of formula (IV). Therefore, this method is performed after step e), step f): f) A step of forming and crystallizing a sodium salt (compound 1) in a suitable solvent in the presence of a sodium base from the compound of formula IV, preferably sodium hydroxide. We can provide this.

[0034] More preferably, when the solvent is propanol, the sodium salt of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid (compound 1) is polymorph A characterized by a powder XRD spectrum having peaks at angles 2θ±0.2° at 4.3, 5.0, 5.8, 6.4, 7.1, 8.3, 8.7, 12.8, 15.3, and 15.9. The powder XRD spectrum has a Bragg-Brentano geometry. a) X'Celerator detector, b) Multisampler, c) Spinner, d) Ceramic X-ray tube Cu LFF (λ1=1.54051A; λ2=1.54430A) Range 4~40°2θ The results were obtained using the PANalytical X'pert Pro X-ray powder diffractometer equipped with [equipment name missing].

[0035] As is evident from the experimental results, the sodium salt of the obtained (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid was an amorphous compound.

[0036] Form A is a highly stable crystalline form of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)sodium benzoate.

[0037] (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)-cyclopropyl)benzoate, more preferably form A, is a compound that can be used as a pharmaceutical, preferably as an EP4 antagonist.

[0038] Herein, the present invention will be described in further detail with reference to the experimental section.

[0039] Experiment Department The reagents used in the following examples are commercially available from various suppliers and were used without further purification. The solvent was used in dry form. The reaction in an anhydrous environment was carried out under positive pressure with dry nitrogen.

[0040] Proton nuclear magnetic resonance ( 1 ¹H NMR spectra were recorded using a Bruker Avance 400MHz instrument. Chemical shifts are reported in ppm(δ) using the residual solvent line as an internal standard. Splitting patterns are specified as follows: s, singleline; d, doubleline; t, tripleline; q, quadrupleline; m, multiline; b, broad signal.

[0041] Mass spectra (MS) were performed using an Ion Trap Thermo LCQ classical spectrometer operating in positive ES(+) and negative ES(-) ionization modes.

[0042] UPLC spectroscopy was performed using an Acquity UPLC-BEH C18 column (1.7 μM, 50 × 2.1 mm) with a Waters Acquity UPLC-SQD instrument.

[0043] The following abbreviations are used herein: AcOH: acetic acid; Boc: tert-butyloxycarbonyl; DCM: dichloromethane; TFA: trifluoroacetic acid; THF: tetrahydrofuran; RT: room temperature; AcOEt: ethyl acetate; NaOH: sodium hydroxide; KOH: potassium hydroxide; TEA: triethylamine; Na2SO4: sodium sulfate; Cs2CO3: cesium carbonate; HOBt: 1-hydroxybenzotriazole; TBA: tert-butylamine; CTAB: cetyltrimethylammonium bromide; EDC HCl: N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide hydrochloride; IPA: isopropanol; TBME: tert-butylmethyl ether.

[0044] Example 1: Preparation of compound 1, i.e., (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid, sodium salt. Compound 1 was obtained according to the synthesis steps shown in Scheme 1 below. [ka]

[0045] Example 1a) Synthesis of starting material 1, (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid (SM1) The starting material SM1 reported in Scheme 1 above was obtained by the following process reported in Scheme 2 below. [ka]

[0046] Step i) Synthesis of intermediates (V) and (R)-2-amino-4-methoxy-4-oxobutanoate Intermediate (V) was prepared according to Scheme 2.

[0047] Dry methanol (225 L) was cooled to 0-5°C, and acetyl chloride (77 kg, 1.4 equivalents) was slowly added. In a separate reactor, D-aspartic acid (90 kg) was dissolved in dry methanol (225 L), cooled to 0-5°C, and then the pre-cooled acetyl chloride in the methanol solution was slowly added while maintaining the temperature at 0-5°C. The reaction mixture was stirred at below 10°C for 4 hours, and then at room temperature for a further 12 hours. The reaction mixture was added to TBME (800 L), cooled to 0-5°C, and stirred for 2 hours. The resulting solid was filtered, washed with cold TBME (100 L), and vacuum-dried for 30 minutes. Yield: 92.6 kg (white solid). 1 H NMR(400 MHz,DMSO-d6)δ ppm 13.9(1 H,bs),8.58(3 H,bs),4.18(1 H,m),3.65-3.59(3 H,s),2.98(2 H,m).ESI+m / z 148 [M+H] +

[0048] Step ii) Synthesis of intermediate (VI), (R)-2-((tert-butoxycarbonyl)(3-methoxy-3-oxopropyl)amino)-4-methoxy-4-oxobutanoic acid Intermediate (VI) was prepared with reference to Scheme 2.

[0049] Water (150 L) and intermediate (V) (85 kg) were charged into the reactor, the mixture was cooled to 5°C, and then triethylamine (162 L, 2.5 equivalents) was slowly added, followed by methyl acrylate (127 L, 2.58 equivalents) slowly added at 0-5°C. After 4 hours at room temperature, the reaction mixture was washed with petroleum ether (2 × 100 L). The aqueous layer was returned to the reactor and diluted with tert-butanol (72 L, 1.64 equivalents), and then Boc anhydrous (127 kg, 1.2 equivalents) was slowly added. The reaction mixture was stirred at room temperature for 12 hours. After the reaction was complete, the reaction mixture was washed with petroleum ether (3 × 70 L). The aqueous layer was returned to the reactor, cooled to 0°C, and the pH was adjusted to approximately 3.0 by adding concentrated HCl. The product was extracted with ethyl acetate (2 × 100 L), and the combined organic layer was washed with saturated citric acid solution (5 × 50 L). The organic layer was then washed with water (50 L), followed by brine (50 L), dried over sodium sulfate, and concentrated at below 55°C. Yield: 114.5 kg (cream-colored solid). 1 H NMR(400 MHz,CDCl3)δ ppm 4.48-4.44(1 H,m),3.75-3.67(1 H,m),3.73(3 H,s),3.70(3 H,s),3.60-3.50(1 H,m),3.16-3.10(1 H,m),2.78-2.67(3 H,m),1.40(9 H,s).ESI+m / z 334 [M+H] +

[0050] Step iii) Synthesis of intermediate (VII), (R)-1-(tert-butoxycarbonyl)-4-oxopiperidine-2-carboxylic acid, tert-butylamine salt Intermediate (VII) was prepared with reference to Scheme 2.

[0051] Intermediate (VI) (42 kg) and THF (175 L) were charged into the reactor, the mixture was cooled to 0-5°C, and then 25% sodium methoxide solution (75 kg, 2.84 equivalents) was slowly added. The reaction mixture was refluxed for 4 hours, then cooled to 25°C and concentrated to approximately 45 L. Water (125 L) was added, and then the mixture was refluxed for 14 hours (approximately 75°C). After removing the remaining THF by distillation, the aqueous layer was washed with ethyl acetate (3 × 120 L). The aqueous layer was returned to the reactor, cooled to 0°C, and then the pH was adjusted to approximately 2.5 with concentrated HCl. The product was extracted with ethyl acetate (3 × 120 L), and the organic layer was washed with water (150 L), followed by brine solution (150 L). The organic layer was returned to the reactor and cooled to 0°C. Then, tert-butylamine (10 kg, 1.07 equivalents) was added to the reaction mass, stirred for 1 hour, and filtered off. The resulting product was placed in IPA (120 L) and heated at 80°C for 1 hour. The mass was cooled to 10°C, stirred for 1 hour, filtered off, and vacuum-dried at room temperature for 3 hours and at 40°C for 8 hours. Yield: 11.6 kg (white solid). 1 H NMR(400 MHz,D2O)δ ppm 4.56-4.39(1 H,m),3.90-3.79(1 H,m),3.64-3.61(1 H,m),2.84-2.62(2 H,m),2.53-2.43(2 H,m),1.32(9 H,s),1.19(9 H,s).ESI+m / z 334 [M+H] +

[0052] Step iv) Synthesis of intermediate (VIII), (R)-1-(tert-butoxycarbonyl)-4-methylenepiperidine-2-carboxylic acid Intermediate (VIII) was prepared by referring to Scheme 2.

[0053] Methyltriphenylphosphonium bromide (4.38 Kg, 1.02 eq) was suspended in dry 2-MeTHF (15 L) under nitrogen. The white suspension was cooled to -8 °C, and then a solution of sodium tert-pentoxide (30% in 2-MeTHF) (2.08 Kg, 2.15 eq) was added dropwise. After 2 hours at room temperature, a solution of intermediate (VII) free acid (2.92 Kg, 1.0 eq. Prepared by treating 3.69 Kg of intermediate (VII) tert-butylamine salt with aq. HCl and extracting with TBME) in 4 L of 2-MeTHF was added over 35 minutes. The reaction was stirred at room temperature until complete (8 - 12 hours). The reaction mixture was then cooled to 10 °C and water (10 L) was slowly added. The layers were separated and the organic layer was washed with 0.5 N NaOH (2 × 5 L). The combined aqueous layers were washed with DCM (3 × 5 L). The aqueous layer was then acidified to approximately pH 1 with 32 wt% HCl (ca. 2.5 L) and extracted with DCM (3 × 5 L). The combined organic layers were washed with brine (10 L), dried over Na2SO4 and concentrated to dryness. 2.81 Kg of intermediate (VIII) was obtained as a light brown solid (97% yield). 1 H NMR (400 MHz, DMSO-d6) δ ppm 12.71 (1 H, s), 4.78 (2 H, bs), 4.75 - 4.60 (1 H, m,), 3.92 (1 H, m), 3.05 - 2.85 (1 H, m), 2.65 - 2.60 (1 H, m), 2.49 (1 H, bs), 2.20 - 2.12 (2 H, m), 1.42 (9 H, dd, s). ESI + m / z 242 [M + H] +

[0054] Step v) Synthesis of intermediate (IX), (5R)-1,1-dibromo-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid Referring to Scheme 2, intermediate (IX) was prepared.

[0055] Intermediate (VIII) (3 kg) was dissolved in DCM (25 L), and CTAB (450 g; 0.1 equivalent) was added, followed by the addition of a 51 wt% warm NaOH (25 L) aqueous solution. The reaction mixture was cooled to 10°C, and then bromoform (4.5 kg, 2.13 equivalents) was added. After 12 hours at room temperature, the reaction mixture was cooled to 0-5°C, water (30 L) and DCM (30 L) were added, and then concentrated HCl was added to pH 2. The layers were separated, and the aqueous phase was extracted with a further 15 L of DCM. The organic phase was washed with water (15 L) and brine (15 L) and evaporated. The residue was dissolved in DCM (20 L), and IPA (20 L) and water (20 L) were added. The precipitated solid was filtered, washed with water, and dried. The solid was dissolved in methanol (40 L), charcoal (1.2 kg) was added, the mixture was heated to 50°C, and filtered through a Celite bed. The product was crystallized from xylene (9 L). The yield of the marked compound was 2.72 kg (53% yield, off-white solid). 1 H NMR(400 MHz,DMSO-d6)δ ppm 12.94(1 H,s),4.78(2 H,d,J=8Hz),3.94(1 H,m,),3.02(1 H,m),2.18(1 H,m),2.15(1 H,m),1.91-1.85(1 H,m),1.65(1 H,d,J=2Hz),1.35(11 H,bs).ESI+m / z 414 [M+H] +

[0056] Step vi) Synthesis of starting material 1 (SM1), (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid A glass autoclave was charged with a solution of intermediate (IX) (1.28 kg), palladium charcoal (133 g, 2.0 mol%), and KOH (1.04 kg, 6 equivalents) in IPA (15 L). The autoclave was pressurized with hydrogen (5 bar) and stirred at 65°C for 48 hours. The resulting black slurry reaction mixture was filtered through a short Celite pad and washed with 10 L of MeOH. After removing the solvent under reduced pressure, a white solid was obtained. This was suspended in DCM (15 L) and water (15 L), and then 3N HCl was added until the pH was approximately 1 (5 L). The layers were separated, and the aqueous layer was extracted again with DCM (5 L). The organic layer was washed with brine (10 L), dried over Na2SO4, and concentrated to dryness. The obtained solid was crystallized from xylene (3L) and dried in a vacuum oven for 5 hours to obtain 0.75 kg (yield 92%) of SM1 as a white solid. 1 H NMR(400MHz,chloroform-d)δ=5.11-4.77(m,1H),4.18-3.88(m,1H),3.32-3.09(m,1H),2.32-2.14(m,1H),2.03-1.88(m,1H),1.67-1.55(m,1H),1.50(br s,9H),0.97-0.75(m,1H),0.52-0.26(m,4H).ESI+m / z 256 [M+H] +

[0057] Example 1b) Synthesis of starting material 2 (SM2) Starting material 2 (SM2) was prepared according to a known literature procedure (International Publication No. 2008104055, Example 1, Step 2).

[0058] Example 1c) Synthesis of compound (I), (R)-5-((1-(4-(methoxycarbonyl)phenyl)cyclopropyl)carbamoyl)-6-azaspiro[2.5]octane-6-carboxylate tert-butyl Compound (I) was obtained by referring to Scheme 1.

[0059] In a reactor, starting material 1 (SM1, 8 kg), HOBt hydrate (5.8 kg), and EDC-HCl (1.1 kg) were dissolved in DCM (150 L) and stirred at room temperature. After 30 minutes, starting material 2 (SM2, 7.5 kg) and TEA (3.4 L) were added, and the reaction was stirred at room temperature for 24 hours. Then, the mixture was quenched with water (70 L) and the phases were separated. The organic phase was washed with 5% sodium bicarbonate solution (2 × 70 L), 1 M citric acid solution (80 L), and water (70 L), and then the DCM was evaporated. t-butyl methyl ether (17 L) was added, and the resulting suspension was stirred at room temperature for 17 hours. Then, the solid was filtered and washed with cold t-butyl methyl ether (15 L). The labeled compound was dried under vacuum at 50°C for 8 hours. Yield: 11.65 kg (87%, white solid). 1 H NMR(400MHz,chloroform-d)δ=8.01-7.93(m,2H),7.28(s,2H),6.74(s,1H),4.83(br s,1H),4.21(br s,1H),3.92(s,3H),3.10-2.87(m,1H),2.10-1.99(m,1H),1.97-1.85(m,1H),1.84-1.75(m,1H),1.52(s,9H),1.40(br s,4H),0.88-0.81(m,1H),0.63-0.45(m,1H),0.45-0.29(m,2H),0.28-0.18(m,1H). ESI+m / z 429 [M+H] +

[0060] Example 1d): Synthesis of compound (II), (R)-4-(1-(6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)methyl benzoate Compound (II) was obtained by referring to Scheme 1.

[0061] Compound (I) (2.56 kg) was dissolved in DCM (22 L) at 5°C, TFA (6.7 kg) was added, and the solution was stirred at room temperature for 5 hours. The reaction mixture was evaporated under vacuum, DCM (22 L) was added, and 10% sodium bicarbonate solution was slowly added at 10-15°C (15 L, significant foaming). The phase was separated and the water was discarded (the pH of the aqueous phase was 7.5). The organic phase was washed with water (13 L) and evaporated under reduced pressure until 7 L of solvent was recovered. t-butyl methyl ether (12 L) was added, and the solvent was evaporated again until the temperature reached 53-54°C. The suspension was cooled to 5°C and stirred for 15-17 hours, then the solid was filtered and washed with cold (0-5°C) t-butyl methyl ether (5 L). The product was dried under vacuum at 60°C for 48-72 hours. Yield 1.58 kg (81%, white solid). 1 H NMR(400MHz,chloroform-d)δ=7.96(d,J=8.3 Hz,2H),7.61(br s,1H),7.26(d,J=8.3 Hz,2H),3.91(s,3H),3.46-3.39(m,1H),3.13-3.04(m,1H),2.92-2.82(m,1H),1. 87-1.70(m,3H),1.41-1.28(m,5H),1.01-0.93(m,1H),0.46-0.24(m,4H).ESI+m / z 329 [M+H] +

[0062] Example 1e) Synthesis of compound (III), (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)methyl benzoate Referencing Scheme 1, we obtained intermediate (III).

[0063] In the reactor, compound (II) (6.6 kg) was dissolved in dry THF (52 L), and then 4-(trifluoromethyl)benzyl bromide solution (5.89 kg in 10 L of THF) and Cs2CO3 (12.9 kg) were added in THF. The reaction mixture was stirred at room temperature for 18 hours, and then 50 L of DCM and 30 L of water were added. The aqueous phase was discarded, and then the organic phase was washed with water (50 L) and brine (2 × 50 L), and evaporated under reduced pressure until 78 L of solvent was recovered. The temperature was set to 40°C, and then n-heptane (46 L) was added over 3 hours. The solvent was removed by distillation until the temperature rose to 82–84°C. The mixture was cooled to 20°C over 4 hours and stirred at this temperature for 8–10 hours. The product was filtered, washed on the filter with 10 L of n-heptane, and dried in a vacuum oven at 50°C for 48 hours. Yield: 5.1 kg (91%, white solid) 1H NMR(400MHz,chloroform-d)δ=7.96-7.89(m,2H),7.66-7.61(m,2H),7.47-7.40(m,3H),7.27-7.21(m,J=8.8 Hz,2H),3.90(s,3H),3.84(d,J=14.7 Hz,1H),3.35(d,J=14.7 Hz,1H),3.05(dd,J=3.9,10.3 Hz,1H),2.93-2.86(m,1H),2.31-2.22(m,1H),2.07-1.98(m,1H),1.88-1.78(m,1H),1.45-1.2 7(m,4H),1.17-1.08(m,1H),1.01-0.94(m,1H),0.50-0.36(m,3H),0.33-0.26(m,1H).ESI+m / z 487 [M+H] +

[0064] Example 1f): Synthesis of compound (IV), (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid Referring to Scheme 1, we obtained compound (IV), an EP4 antagonist in the form of an acid (zwitterionic).

[0065] In the reactor, water (39 L) and NaOH (1.67 Kg, 4 equivalents) were added to a solution of compound (III) (5.1 Kg) in THF (65 L). After stirring at 30-40°C for 16 hours, water (25 L) was added and the organic matter was evaporated. After adding 26 L of DCM, acetic acid was added to bring the pH to 4.5-5.0. The aqueous phase was discarded, and the organic phase was washed with water (25 L) and brine (25 L), and then evaporated. Yield: 4.56 Kg (92%, white solid). 1 H NMR(400 MHz,DMSO-d6)δ ppm 12.72(1 H,s),8.73(1 H,s),7.78(2 H,d,J=8.6Hz),7.69(2 H,d,J=8.3Hz),7.64(2 H,d,J=8.3Hz),7.20(2 H,d,J=8.6Hz),3.79(2 H,d,J=13.9Hz),3.28(1 H,d,J=13.9Hz),2.93(1 H,dd,J=3.1;10.3Hz),2.73(1 H,m),2.08(2 H,m),1.78(1 H,m),1.10-1.31(5H,m),0.87(1H,m),0.32(4H,m).ESI+m / z 473 [M+H] + .

[0066] Analysis of the obtained EP4 antagonist revealed that it is a zwitterion in the form of an amorphous solid.

[0067] Example 1g) Preparation of sodium salt of (Form A) (Compound 1) of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)benzoic acid In the reactor, a cold solution of NaOH (405 g, 1.04 equivalents) in EtOH (9 L) was added to a solution of compound (IV) (4.56 kg) in n-propanol (70 L). The suspension was stirred at room temperature for 20-24 hours, then filtered, washed with cold n-propanol (20 L), and dried under vacuum at 50°C for 24 hours. The product was crushed (through a 1.1 mm sieve, 3000-4000 rpm) and dried under vacuum at 70°C for 36 hours. Yield: 4.39 kg, white solid (92%) 1H NMR(400 MHz,DMSO-d6)δ ppm 8.68(1 H,s),7.73(2 H,d,J=8.3Hz),7.69(2 H,d,J=8.3Hz),7.64(2 H,d,J=8.3Hz),7.02(2 H,d,J=8.3Hz),3.81(2 H,d,J=13.9Hz),3.26(1 H,d,J=13.9Hz),2.92(1 H,dd,J=3.1;10.5Hz),2.72(1 H,m),2.07(2 H,m),1.78(1 H,m),1.16(4H,m),1.09(1H,m),0.85(1H,m),0.30(4H,m). ESI+m / z 473 [M+H] +

[0068] Solubility, dissolution, and bioavailability tests were conducted.

[0069] Characterization of (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)cyclopropyl)sodium benzoate (Form A) (also known as Compound 1)

[0070] solid state NMR Solid-state NMR measurements are, 1 H and 13 For C, the test was performed using a Bruker AVANCE II 400 instrument operating at 400.23 and 100.65 MHz. 13 CPMAS spectra were recorded at room temperature with a spin velocity of 12 kHz. A cylindrical zirconia rotor with an outer diameter of 4 mm was used with a sample volume of 80 μL. The CPMAS experiment used a ramp cross-polarization pulse sequence with a contact time of 3 ms, a 4.0 μs 1H90° pulse, a recycle delay of 5–10 seconds, and transients of 2000–4000. A two-pulse phase-modulated decoupling scheme was used in a frequency field of 75 kHz. 13 C chemical shift (ppm) δ=177.1;144.8;143.1;136.9;129.3;124.9;71.4;65.5;61.3;57.3;51.2;39.0;35.1;23.2; 18.0;14.9;12.6

[0071] XRPD XRPD measurements are performed using a Bragg-Brentano geometry. a) Detector X'Celerator b) Multisampler c) Spina d) Ceramic X-ray tube Cu LFF (λ1=1.54051A; λ2=1.54430A) The analysis was performed using a PANalytical X'pert Pro X-ray powder diffractometer equipped with [specific technology / features]. Range 4~40°2θ [Table 1]

[0072] DSC Thermograms were acquired using a Perkin-Elmer DSC8000 at a scan rate of 10°C / min from 30°C to 300°C. The thermograms are reported in Figure 1. Detected peak: T start = 252.64°C, ΔH = 56.11 J / g

[0073] IR The IR spectrum is obtained in ATR (Attenuated Total Reflectance) mode from 4000 to 650 cm. -1 The IR spectra were recorded using a Perkin Elmer Spectrum 100 FT / IR instrument. The IR spectra are reported in Figure 2. The main absorption frequencies are reported in the table below. [Table 2]

Claims

1. (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid (SM1) 【Chemistry 1】 A method for preparing a, wherein the method is iv) A step of converting the compound of formula (VII) to the compound of formula (VIII) using Wittig's reagent in a solvent. 【Chemistry 2】 v) A step of reacting the compound of formula (VII) with bromoform and a base by a Makosza reaction to obtain the cyclopropane compound of formula (IX). 【Transformation 3】 and vi) Steps to obtain (SM1) by removing bromine atoms in an alcoholic solvent in the presence of a reducing agent and a base. 【Chemistry 4】 Methods that include...

2. The method according to claim 1, wherein in step iv), the Wittig reagent is methyltriphenylphosphonium bromide, and the solvent is independently 2-methyltetrahydrofuran, tetrahydrofuran, or toluene.

3. The method according to claim 1 or 2, wherein in step v), the base is sodium hydroxide or potassium hydroxide.

4. The method according to any one of claims 1 to 3, wherein in step vi), the reducing agent is hydrogen and palladium charcoal or hydrogen and Raney nickel, and the base is independently potassium hydroxide or sodium hydroxide in an alcoholic solvent selected from the group consisting of isopropanol, methanol and ethanol.

5. formula: 【Transformation 5】 A method for preparing (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)-cyclopropyl)benzoic acid (IV) or a salt thereof, wherein the method is a) (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid (SM1) 【Transformation 6】 A step of preparing the following, the method is iv) A step of converting the compound of formula (VII) to the compound of formula (VIII) using Wittig's reagent in a solvent. 【Transformation 7】 v) A step of reacting the compound of formula (VII) with bromoform and a base by a Makosza reaction to obtain a cyclopropane compound of formula (IX), 【Transformation 8】 and vi) Steps to obtain (SM1) by removing bromine atoms in an alcoholic solvent in the presence of a reducing agent and a base. 【Chemistry 9】 A preparation process including, b) A step of reacting compound (R)-6-(tert-butoxycarbonyl)-6-azaspiro[2.5]octane-5-carboxylic acid (SM1) with methyl 4-(1-aminocyclopropyl)benzoate (SM2) in the presence of a coupling agent to obtain the compound of formula (I), 【Chemistry 10】 c) A step of obtaining a compound of formula (II) by N-deprotecting the compound of formula (I) in an acidic medium in an organic solvent, 【Chemistry 11】 d) A step to obtain compound (III) by alkylating the nitrogen on the azaspiro[2.5]octane ring with 4-(trifluoromethyl)benzyl bromide in the presence of a base. 【Chemistry 12】 and e) A step of hydrolyzing the methyl ester using an inorganic base to obtain compound (IV). 【Chemistry 13】 Methods that include...

6. The method according to claim 5, wherein in steps a)-iv), the Wittig reagent is methyltriphenylphosphonium bromide, and independently, the solvent is 2-methyltetrahydrofuran, tetrahydrofuran, or toluene.

7. The method according to claim 5 or 6, wherein in steps a) to v), the base is sodium hydroxide or potassium hydroxide.

8. The method according to any one of claims 5 to 7, wherein in step a)-vi), the reducing agent is hydrogen and palladium charcoal or hydrogen and Raney nickel, and the base is independently potassium hydroxide or sodium hydroxide in an alcoholic solvent selected from the group consisting of isopropanol, methanol and ethanol.

9. The method according to any one of claims 5 to 8, wherein in step b), the coupling agent is N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide hydrochloride.

10. The method according to any one of claims 5 to 9, wherein in step c), the compound (I) is N-deprotected in trifluoroacetic acid in an organic solvent.

11. In step d), the base is cesium carbonate (Cs 2 CO 3 The method according to any one of claims 5 to 10.

12. The method according to any one of claims 5 to 11, wherein in step e), the inorganic base is sodium hydroxide.

13. After step e), the method further steps f): f) A step of forming and crystallizing a sodium salt (compound 1) from the compound of formula IV in a solvent in the presence of a sodium base. 【Chemistry 14】 The method according to any one of claims 5 to 12, including the method described in any one of claims 5 to 12.

14. The method according to claim 13, wherein the sodium base is sodium hydroxide.

15. The method according to claim 13 or 14, wherein the solvent is propanol, and a powder XRD spectrum is obtained having peaks at angles 2θ±0.2° at 4.3, 5.0, 5.8, 6.4, 7.1, 8.3, 8.7, 12.8, 15.3, and 15.9, to obtain the sodium salt of polymorph A (R)-4-(1-(6-(4-(trifluoromethyl)benzyl)-6-azaspiro[2.5]octane-5-carboxamide)-cyclopropyl)benzoic acid (compound 1).

Citation Information

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