LIQUID PHARMACEUTICAL COMPOSITION OF 1-(5-(2,4-DIFLUORPHENYL)-1-((3-FLUORPHENYL)SULFONYL)-4-METHOXY-1H-PYRROL-3-YL)-N-METHYLMETHANEAMINE

DE602020066867T2Active Publication Date: 2026-02-11DAEWOONG PHARM CO LTD
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Patent Information

Application Number
DE602020066867
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-18
Filing Date
2020-12-18
Publication Date
2026-02-11
Estimated Expiration
2040-12-18

AI Technical Summary

Technical Problem

Conventional liquid pharmaceutical compositions of 1-(5-(2,4-difluorophenyl)-1-((3-fluorophenyl)sulfonyl)-4-methoxy-1H-pyrrol-3-yl)-N-methylmethanamine require excessive amounts of solubilizers and organic solvents, leading to hypersensitivity issues and stability concerns, necessitating the development of a formulation with improved solubility and stability without these components.

Method used

A liquid pharmaceutical composition comprising 1-(5-(2,4-difluorophenyl)-1-((3-fluorophenyl)sulfonyl)-4-methoxy-1H-pyrrol-3-yl)-N-methylmethanamine, or a pharmaceutically acceptable salt thereof, is formulated with beta-cyclodextrin as a stabilizer and D-mannitol as a bulking agent for freeze-drying, along with distilled water or physiological saline as a solvent, to enhance solubility and stability.

Benefits of technology

The composition achieves excellent solubility and stability, minimizing hypersensitivity risks and maintaining long-term storage integrity, suitable for injectable use.

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Description

[TECHNICAL FIELD]

[0001] The present invention relates to a liquid pharmaceutical composition of 1-(5-(2,4-difluorophenyl)-1-((3-fluorophenyl)sulfonyl)-4-methoxy-1H-pyrrol-3-yl)-N-methylmethanamine, or a pharmaceutically acceptable salt thereof.[BACKGROUND ART]

[0002] The present invention relates to a liquid pharmaceutical composition suitable for 1-(5-(2,4-difluorophenyl)-1-((3-fluorophenyl)sulfonyl)-4-methoxy-1H-pyrrol-3-yl)-N-methylmethanamine. The above compound is a compound described in Korean Patent Registration No. 10-1613245, and have excellent anti-ulcer activity (i.e., proton pump inhibitory activity, etc.) and eradication activity against Helicobacter pylori (H. pylori) and thus are useful in the prevention and treatment of gastrointestinal tract ulcer, gastritis, reflux esophagitis or gastrointestinal damage caused by H. pylori.

[0003] The above compound is a compound that exhibits very low water solubility, and in order to produce it in a liquid pharmaceutical composition, such as an injectable pharmaceutical composition, an excessive amount of a solubilizer and an organic solvent are needed. However, pharmaceutical compositions containing a large amount of a solubilizer and an organic solvent have a problem that hypersensitivity may occur when administering the active component at a high dose. That is, generally, in a drug having low water solubility, in order to develop a liquid formulation having excellent solubility and stability at the same time, it is necessary to study a combination of various components other than the drug.

[0004] Solubilizers commonly used for liquid pharmaceutical compositions include ethanol, polysorbate, and the like, but these compounds may have harmful effects on the human body, whereby it is necessary to develop a liquid pharmaceutical composition having excellent solubility and stability at the same time without using such a solubilizer.

[0005] Therefore, the present inventors have intensively studied to overcome the problems caused by the solubilizer and organic solvent that are excessively used for solubilizing a conventional poorly soluble drug as a liquid pharmaceutical composition of 1-(5-(2,4-difluorophenyl)-1-((3-fluorophenyl)sulfonyl)-4-methoxy-1H-pyrrol-3-yl)-N-methylmethanamine, and to improve the stability of the liquid pharmaceutical composition, and as a result, found that the above problems can be solved by using specific stabilizers and bulking agents for freeze-drying as described below, thereby completing the present invention.[DETAILED DESCRIPTION OF THE INVENTION] [Technical Problem]

[0006] It is an object of the present invention to provide a liquid pharmaceutical composition of 1-(5-(2,4-difluorophenyl)-1-((3-fluorophenyl)sulfonyl)-4-methoxy-1H-pyrrol-3-yl)-N-methylmethanamine, or a pharmaceutically acceptable salt thereof.[Technical Solution]

[0007] In order to achieve the above objects, according to the present invention, there is provided a liquid pharmaceutical composition comprising a compound represented by the following Chemical Formula 1, or a pharmaceutically acceptable salt thereof; and a bulking agent for freeze-drying; cyclodextrin; and a solvent, wherein the cyclodextrin is beta-cyclodextrin, or gamma-cyclodextrin, the cyclodextrin is contained in an amount of 3.0 to 25.0 parts by weight based on 1 part by weight of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof, the bulking agent for freeze-drying is D-mannitol, sucrose, sorbitol, or trehalose, the bulking agent for freeze-drying is contained in an amount of 3.0 to 25.0 parts by weight based on 1 part by weight of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof, the solvent is distilled water, water for injection, acetate buffer, or physiological saline, and [Chemical Formula 1] is

[0008] The chemical name of the compound represented by the following Chemical Formula 1 is 1-(5-(2,4-difluorophenyl)-1-((3-fluorophenyl)sulfonyl)-4-methoxy-1H-pyrrol-3-yl)-N-methylmethanamine, which is a compound described in Korean Patent Registration No. 10-1613245.

[0009] The above compound is an active component that exhibits pharmacological effects of the liquid pharmaceutical composition according to the present invention, and has excellent anti-ulcer activity (i.e., proton pump inhibitory activity, etc.) and eradication activity against Helicobacter pylori and GPCR inhibitory action, and thus are useful in the prevention and treatment of gastrointestinal tract ulcer, gastritis, reflux esophagitis or gastrointestinal damage caused by H. pylori. Further, the above compound as well as a pharmaceutically acceptable salt of the compound can also be used in the present invention.

[0010] Further, in addition to the compound represented by Chemical Formula 1, a pharmaceutically acceptable salt thereof can be used in the present invention. As salts, salts commonly used in the art, such as acid addition salts formed by pharmaceutically acceptable free acids can be used without limitation. The term "pharmaceutically acceptable salt" as used herein refers to any organic or inorganic addition salt of the compound represented by Chemical Formula 1, whose concentration is relatively non-toxic and harmless to a patient and activates effectively and whose side effects do not degrade the beneficial efficacy of the above compound.

[0011] Pharmaceutically acceptable salts can be obtained by conventional methods using inorganic or organic acids. For example, the pharmaceutically acceptable salt can be prepared by dissolving the compound represented by Chemical Formula 1 in a water-miscible organic solvent, e.g., acetone, methanol, ethanol or acetonitrile, followed by adding an organic acid or an inorganic acid, and filtering and drying the precipitated crystals. Alternatively, it may be prepared by subjecting a solvent or an excessive amount of acid from the acid-added reaction mixture to reduced pressure and then drying the residue, or by adding a different organic solvent and then filtering the precipitated salt. At this time, the preferred salts may include salts derived from hydrochloric acid, hydrobromic acid, sulfuric acid, phosphoric acid, nitric acid, acetic acid, glycolic acid, lactic acid, pyruvic acid, malonic acid, succinic acid, glutaric acid, fumaric acid, malic acid, mandelic acid, tartaric acid, citric acid, ascorbic acid, palmitic acid, maleic acid, hydroxyrnaleic acid, benzoic acid, hydroxybenzoic acid, phenylacetic acid, cinnamic acid, salicylic acid, methanesulfonic acid, benzenesulfonic acid or toluenesulfonic acid, and the like.

[0012] The compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof has low water solubility. Thus, in order to prepare a liquid pharmaceutical composition, such as an injectable pharmaceutical composition, an excessive amount of a solubilizer and an organic solvent is needed. However, an excessive amount of solubilizer and the like may cause hypersensitivity when administered to a patient. Therefore, in the present invention, instead of not using the solubilizer commonly used for liquid pharmaceutical compositions, the above-mentioned components are used, and therefore, a liquid pharmaceutical composition having excellent solubility and stability of the compound represented by Chemical Formula 1 at the same time can be realized.

[0013] Cyclodextrin, which is a component used in the liquid pharmaceutical composition according to the present invention, is a cyclic oligosaccharide in which 6 to 12 glucose molecules form alpha-1,4-glycosidic bonds, and is used as a stabilizer in the present invention. The cyclodextrin is beta-cyclodextrin, or gamma-cyclodextrin, preferably, beta-cyclodextrin. More preferably, the beta-cyclodextrin is (2-hydroxypropyl)-beta-cyclodextrin or sulfobutylether-beta-cyclodextrin, and the English abbreviations are 'HP-β-CD' and 'SBE-β-CD', respectively.

[0014] Among the stabilizers commonly used in liquid pharmaceutical compositions, the cyclodextrin is suitable for stabilizing the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof. As in Examples described later, other stabilizers excluding the above are not sufficient to stabilize the compound represented by Chemical Formula 1.

[0015] The cyclodextrin is used in an amount of 3.0 to 25.0 parts by weight based on 1 part by weight of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof. When the content is less than 3.0 parts by weight, it is not sufficient to stabilize the compound represented by Chemical Formula 1, which causes a problem that rehydration of the liquid pharmaceutical composition is difficult or total related compounds increase during long-term storage. Further, when the content is more than 25.0 parts by weight, the amount of the stabilizer used is excessively high, which may increase the viscosity of the liquid pharmaceutical composition or may cause hypersensitivity when administered to a patient.

[0016] More preferably, the content of the cyclodextrin is 3.5 parts by weight or more, 4.0 parts by weight or more, or 4.5 parts by weight or more; and 20.0 parts by weight or less, 19.0 parts by weight or less, 18.0 parts by weight or less, 17.0 parts by weight or less, 16.0 parts by weight or less, 15.0 parts by weight or less, 14.0 parts by weight or less, 13.0 parts by weight or less, 12.0 parts by weight or less, 11.0 parts by weight or less, or 10.0 parts by weight or less, based on 1 part by weight of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof.

[0017] The liquid pharmaceutical composition according to the present invention further comprises a bulking agent for freeze-drying. Generally, the liquid pharmaceutical composition is mass-produced, then frozen, stored and distributed under reduced pressure, which can enhance the stability of the active ingredient and improve the long-term storage stability. Therefore, the stability of the active compound should be maintained during the freeze-drying process, and thus, in the present invention, a bulking agent for freeze-drying may be additionally included. The bulking agent for freeze-drying is D-mannitol, sucrose, sorbitol, or trehalose, preferably D-mannitol.

[0018] The bulking agent for freeze-drying is used in an amount of 3.0 to 25.0 parts by weight based on 1 part by weight of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof. When the content is less than 3.0 parts by weight, it is not sufficient to stabilize the compound represented by Chemical Formula 1, which causes a problem that rehydration of the liquid pharmaceutical composition is difficult or related compounds increase during long-term storage. Further, when the content is more than 25.0 parts by weight, the amount of the bulking agent for freeze-drying used is excessively high, which may increase the viscosity of the liquid pharmaceutical composition or may cause hypersensitivity when administered to a patient.

[0019] More preferably, the content of the bulking agent for freeze-drying is 3.5 parts by weight or more, 4.0 parts by weight or more, or 4.5 parts by weight or more; and 20.0 parts by weight or less, 15.0 parts by weight or less, 13.0 parts by weight or less, 10.0 parts by weight or less, 9.0 parts by weight or less, 8.0 parts by weight or less, 7.0 parts by weight or less, or 6.0 parts by weight or less, based on 1 part by weight of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof.

[0020] Preferably, the bulking agent for freeze-drying is used in an amount of 0.5 to 5.0 parts by weight based on 1 part by weight of the cyclodextrin. More preferably, the content of the bulking agent for freeze-drying is 0.6 parts by weight or more, 0.7 parts by weight or more, or 0.8 or more; and 4.5 parts by weight or less, 4.0 parts by weight or less, 3.5 parts by weight or less, 3.0 parts by weight or less, 2.5 parts by weight or less, 2.3 parts by weight or less, 2.0 parts by weight or less, 1.9 parts by weight or less, 1.8 parts by weight or less, 1.7 parts by weight or less, 1.6 parts by weight or less, 1.5 parts by weight or less, 1.4 parts by weight or less, 1.3 parts by weight or less, or 1.2 parts by weight or less, based on 1 part by weight of the cyclodextrin.

[0021] Preferably, the liquid pharmaceutical composition according to the present invention is an injectable pharmaceutical composition. Meanwhile, in order to prepare the pharmaceutical composition in liquid form, a conventional solvent in the art to which the present invention pertains can be used. The solvent of the liquid pharmaceutical composition is distilled water, water for injection, acetate buffer, or physiological saline.

[0022] Preferably, the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof is contained at a concentration of 1 to 30 mg / mL in the liquid pharmaceutical composition. That is, the content of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof can be defined as a value obtained by dividing the content (mg) of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof by the total volume (mL) of the liquid pharmaceutical composition.

[0023] More preferably, the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof is contained at a concentration of 2 mg / mL or more, 3 mg / mL or more, 4 mg / mL or more, or 5 mg / mL or more; and 29 mg / mL or less, 28 mg / mL or less, 27 mg / mL or less, 26 mg / mL or less, 25 mg / mL or less, 24 mg / mL or less, 23 mg / mL or less, 22 mg / mL or less, 21 mg / mL or less, 20 mg / mL or less, 19 mg / mL or less, 18 mg / mL or less, 17 mg / mL or less, 16 mg / mL or less, or 15 mg / mL or less in the liquid pharmaceutical composition.

[0024] Preferably, the pH of the liquid pharmaceutical composition according to the present invention is 3.0 to 7.0, more preferably 3.5 to 6.5, still more preferably 4.0 to 6.0. The pH may be adjusted as a pH adjuster, and a conventional acid or alkali in the art to which the present invention belongs can be used as the pH adjuster. As an example of the pH adjuster, any one or more of hydrochloric acid, phosphoric acid, sodium hydroxide, potassium hydroxide, potassium monohydrogen phosphate, potassium dihydrogen phosphate, sodium monohydrogen phosphate, sodium dihydrogen phosphate, sodium carbonate, potassium carbonate, and triethanolamine can be used, without being limited thereto.

[0025] Further, if necessary, the liquid pharmaceutical composition according to the present invention may further include a preservative, an antioxidant and the like. The preservative and the antioxidant are not particularly limited as long as they are commonly used in the technical field to which the present invention pertains.

[0026] Further, the liquid pharmaceutical composition according to the present invention can be prepared by mixing the above-mentioned components excluding the solvent in a solvent. In this process, the order of addition of each component to a solvent can be adjusted if necessary. Alternatively, all components may be mixed and added to the solvent prior to being added to the solvent.

[0027] The prepared liquid pharmaceutical composition may be subjected to sterilization and / or filtration if necessary, and may be freeze-dried for storage and distribution.[Advantageous Effects]

[0028] The present invention can be usefully used as a liquid pharmaceutical composition of 1-(5-(2,4-difluorophenyl)-1-((3-fluorophenyl)sulfonyl)-4-methoxy-1H-pyrrol-3-yl)-N-methylmethanamine, or a pharmaceutically acceptable salt thereof.[DETAILED DESCRIPTION OF THE EMBODIMENTS]

[0029] Below, the present invention will be described in more detail to assist in the understanding of the invention. However, the following examples are provided for illustrative purposes only, and should not be construed as limiting the scope of the present invention to these examples. Examples 1-4 are not in the scope of the claims.Example 1

[0030] As shown in Table 1 below, each preparation liquid adjusted to pH 4.0 was added little by little to 20 mg of the hydrochloride salt of the compound represented by Chemical Formula 1 (hereinafter referred to as 'API'), and the dissolution state was confirmed with the naked eye. Subsequently, the preparation liquid was further added to the experimental group that did not dissolve, and the dissolution state was evaluated. The results are shown in Table 2 below. In Table 2 below, "O" means the case where all are dissolved, and "X" means the case where all are not dissolved and thus a part of API is observed with the naked eye. [Table 1]#1-1 #1-2 #1-3 #1-4 #1-5 API20 mgpH4.0Preparation liquidWater for injection1, 2, 4, 5, 10 mLPhosphate buffer1, 2, 4, 5, 10 mLAcetate buffer1, 2, 4, 5, 10 mLPhthalate buffer1, 2, 4, 5, 10 mLCitrate buffer1, 2, 4, 5, 10 mLStandardSolubilityVisually evaluate the dissolution state at a concentration of 20, 10, 5, 4, 2 mg / mL [Table 2] #1-1#1-2#1-3#1-4#1-5Preparation liquid (pH 4.0)Water for injectionPhosphate Bf.Acetate Bf.Phthalate Bf.Citrate Bf.Solubility1 mL (20 mg / mL)XXXXX2 mL (10 mg / mL)○X○XX4 mL (5 mg / mL)○○○XX5 mL (4 mg / mL)○○○XX10 mL (2 mg / mL)○○○X○

[0031] As shown in Table 2, it was confirmed that the solubility was excellent in water for injection, phosphate buffer, and acetate buffer as in #1-1 to #1-3.Example 2

[0032] The following experiments were performed using water for injection in the water for injection, phosphate buffer, and acetate buffer, which had excellent solubility in Example 1.

[0033] As shown in Table 3 below, 10 mg of API and each 50 mg of alpha-cyclodextrin (α-CD), gamma-cyclodextrin (γ-CD), (2-hydroxypropyl)-beta-cyclodextrin (HP-β-CD), sulfobutylether-beta-cyclodextrin (SBE-β-CD), Trehalose, PVP K-12, and Poloxamer 188 as stabilizers were dissolved in water for injection (1 mL), to which 0.1N HCl was added to adjust the pH to 4.0. [Table 3]#2-1 #2-2 #2-3 #2-4 #2-5 #2-6 #2-7 API10 mgPreparation liquidWater for injection1 mLStabilizerα-CD50 mg------γ-CD-50 mg-----HP-β-CD--50 mg----SBE-β-CD---50 mg---Trehalose----50 mg--PVP K-12-----50 mg-Poloxamer188------50 mg

[0034] Each prepared solution was placed in a 10 mL sample vial and dried by a freeze-drying method. For the freeze-drying, the temperature, time and pressure as shown in Table 4 were sequentially applied. [Table 4]Temperature (°C)Time (hr)Pressure (mTorr)Freezing-456-Drying-352200-35120012006030303060

[0035] After the freeze-drying was completed, the freeze-dried sample was stored in a chamber under severe conditions (60°C, 80% RH) for 4 weeks. Each sample was evaluated for rehydration and stability at the initial stage of storage and 4 weeks after storage, respectively, as follows.(1) Rehydration

[0036] The rehydration solution (water for injection, 0.9% physiological saline, 5% glucose solution, 4 mL each) was administered to the freeze-dried product, which was then observed with the naked eye. It was evaluated as "O" if it was completely dissolved without foreign matters, as "X" if it was not so, and evaluated as "Δ" if it was completely dissolved but then precipitated.(2) Stability

[0037] The content of related compounds in the freeze-dried product was analyzed by HPLC, and the total amount of total related compounds detected was measured.

[0038] The results are shown in Table 5 below. [Table 5]RehydrationTotal related compound %Initial4-week(i)(ii)(iii)(i)(ii)(iii)Initial4-week#2-1○X○○X○0.150.23#2-2○○○○○○0.070.39#2-3○○○○○○0.170.37#2-4○○○○○○0.090.22#2-5○X○XXX0.100.40#2-6○X○○○○0.100.57#2-7○X○XXX0.103.19(i) water for injection, (ii) 0.9% physiological saline, (iii) 5% glucose solution

[0039] As shown in Table 5, it was confirmed that the compositions of #2-2 and #2-4 are rehydratable even after being stored under severe conditions for 4 weeks, and exhibit excellent stability with almost no generation of total related compounds.Example 3

[0040] HP-β-CD having excellent effect as a stabilizer In Example 2 was selected and the following experiment was performed.

[0041] As shown in Table 6 below, API and (2-hydroxypropyl)-beta-cyclodextrin (HP-β-CD) were dissolved in water for injection (1 mL), to which 0.1N HCl was added to adjust the pH to 4.0. [Table 6]#3-1#3-2#2-3#3-3#3-4API10 mgPreparation liquidWater for injection1 mLStabilizerHP-β-CD25 mg35mg50mgI 100mg200mg

[0042] Each prepared solution was dried by a freeze-drying method in the same manner as in the previous Example 2, and then the rehydration and stability were evaluated. The results are shown in Table 7 below. [Table 7]RehydrationTotal related compounds %Initial4-week(i)(ii)(iii)(i)(ii)(iii)Initial4-week#3-1○Δ○-----#3-2○○○○○○--#2-3○○○○○○0.170.37#3-3○○○○○○0.160.35#3-4○○○○○○0.160.44(i) water for injection, (ii) 0.9% physiological saline, (iii) 5% glucose solution

[0043] As shown in Table 7, it was confirmed that the compositions #2-3 and #3-2 to #3-4 are rehydratable even after being stored under severe conditions for 4 weeks, and the compositions #2-3 and #3-3 to #3-4 exhibit excellent stability with almost no generation of total related compounds.Example 4

[0044] HP-β-CD having excellent effect as a stabilizer in Example 2 was selected and the following experiment was performed.

[0045] Experiments were conducted with three types of water for injection, acetate buffer, and phosphate buffer derived from Example 1. For this purpose, in addition to the composition of #2-3 of Example 2, a composition was further prepared as shown in Table 8 below, and dissolved in each buffer (1 mL), to which acetic acid and phosphoric acid were added to adjust the pH to 4.0. [Table 8]#2-3#4-1#4-2API10 mgStabilizerHP-β-CD50 mgPreparation liquidWater for injection1 mL--Acetate buffer-1 mL-Phosphate buffer--1 mL

[0046] Each prepared solution was dried by a freeze-drying method in the same manner as in the previous Example 2, and then the rehydration and stability were evaluated. The results are shown in Table 9 below. [Table 9]RehydrationTotal related compounds %Initial4-week(i)(ii)(iii)(i)(ii)(iii)Initial4-week#2-3○○○○○○0.170.37#4-1○○○○○○0.061.27#4-2○△○XXX--(i) water for injection, (ii) 0.9% physiological saline, (iii) 5% glucose solution

[0047] As shown in Table 9, #4-2 had problems with rehydration when stored under severe conditions for 4 weeks. On the other hand, it was confirmed that #2-3 and #4-1 show no abnormality in rehydration when stored under severe conditions for 4 weeks, and exhibit excellent stability with almost no generation of total related compounds.Example 5

[0048] The properties of the freeze-dried preparation are one of the important factors that can affect the quality in the future, such as rehydration and total related compounds. A solution was prepared with HP-β-CD, which is a stabilizer derived from Examples 1 to 4, and water for injection, to which a bulking agent for freeze-drying was then added and 0.1N HCl was added to adjust the pH to 4.0, thereby preparing a composition. [Table 10]#5-1#5-2#5-3#5-4API10 mgPreparation liquidWater for injection1 mLStabilizerHP-β-CD50 mgBulking agent for freeze-dryingD-mannitol50 mg---Sucrose-50 mg--Sorbitol--50 mg-Trehalose---50 mg

[0049] Each prepared solution was dried by a freeze-drying method in the same manner as in the previous Example 2, and then the properties and rehydration were evaluated. The results are shown in Table 11 below. [Table 11]PropertiesRehydration(i)(ii)(iii)#5-1White freeze-dried product○○○#5-2White freeze-dried product○○○#5-3White freeze-dried product○○○#5-4White freeze-dried product○○○(i) water for injection, (ii) 0.9% physiological saline, (iii) 5% glucose solution

[0050] As shown in Table 11, it was confirmed that #5-1 to #5-4 are formulations that maintained the properties of the cake and solubility during rehydration. However, from the viewpoint of the manufacturing process, the optimum drying temperature and time vary depending on the type of bulking agent for freeze-drying. Considering that this is a factor directly related to production efficiency, D-mannitol is most preferable.Example 6

[0051] In order to confirm the properties, rehydration and stability of the injectable composition according to the content of the bulking agent for freeze-drying D-mannitol derived from Example 5, 0.1N HCl was added to the content shown in Table 12 below to adjust the pH to 4.0, thereby preparing a composition. [Table 12]#6-1#6-2#6-3#6-4#6-5#6-6API10 mgPreparation liquidWater for injection1 mLStabilizerHP-β-CD50 mgBulking agent for freeze-dryingD-mannitol0 mg10mg25mg50mg100mg150mg

[0052] Each prepared solution was dried by a freeze-drying method in the same manner as in the previous Example 2, and then the properties, rehydration and stability were evaluated. The results are shown in Table 13 below. [Table 13]PropertiesRehydrationTotal related compounds %Initial4-week(i)(ii)(iii)(i)(ii)(iii)Initial4-week#6-1Crack--------#6-2Crack--------#6-3Crack--------#6-4Good○○○○○○0.120.18#6-5Good○○○○○○0.170.25#6-6Good○○○○○○0.190.29(i) water for injection, (ii) 0.9% physiological saline, (iii) 5% glucose solution

[0053] As shown in Table 13, it was confirmed that #6-4 to #6-6 have excellent cake properties without cracks, and are formulations maintaining the solubility during rehydration when stored under severe conditions for 4 weeks. In addition, it was confirmed that they exhibit excellent stability with almost no generation of total related compounds.Example 7

[0054] The compositions having different pHs in the compositions for injection finally derived from Examples 1 to 6, were prepared as shown in Table 14 below. [Table 14]#7-1#6-4#7-2#7-3#7-4#7-5#7-6API10 mgPreparation liquidWater for injection1 mLStabilizerHP-β-CD50 mgBulking agent for freeze-dryingD-mannitol50 mgpH0.1N HCl 0.1M NaOHProper amount3.04.05.06.07.08.09.0

[0055] Each prepared solution was dried by a freeze-drying method in the same manner as in the previous Example 2, and then the properties, rehydration and stability were evaluated. The results are shown in Table 15 below. [Table 15]PropertiesRehydrationTotal related compounds %Initial4-week(i)(ii)(iii)(i)(ii)(iii)Initial4-week#7-1Good○○O○○○0.210.27#6-4Good○○O○○○0.120.18#7-2Good○○O○○○0.170.12#7-3Good○○O○○○0.150.12#7-4Good○○O○○○0.170.30#7-5Deposited during manufacture#7-6Deposited during manufacture(i) water for injection, (ii) 0.9% physiological saline, (iii) 5% glucose solution

[0056] As shown in Table 15, it was confirmed that evaluation of # 7-5 and # 7-6 is difficult because API is deposited during manufacture; #6-4 and #7-1 to #7-4 have excellent cake properties without cracks, and are formulations maintaining the solubility during rehydration even after being stored under severe conditions for 4 weeks. In addition, it was confirmed that they exhibit excellent stability with almost no generation of total related compounds.Example 8

[0057] Compositions having different concentrations in Example 7 were prepared as shown in Table 16 below. [Table 16]#8-1#8-2#8-3#8-4#8-5#8-6#8-7API20 mgPreparation liquidWater for injection1 mLStabilizerHP-β-CD100 mgBulking agent for freeze-dryingD-mannitol100 mgpH0.1N HCl 0.1M NaOHProper amount3.04.05.06.07.08.09.0

[0058] Each prepared solution was dried by a freeze-drying method in the same manner as in the previous Example 2, and then the properties, rehydration and stability were evaluated. The results are shown in Table 17 below. [Table 17]PropertiesRehydrationTotal related compounds %Initial4-week(i)(ii)(iii)(i)(ii)(iii)Initial4-week#8-1Good○○○○○○0.090.13#8-2Good○○○○○○0.080.13#8-3Good○○○○○○0.090.15#8-4Good○○○○○○0.070.22#8-5Good○○○○○○0.080.31#8-6Deposited during manufacture#8-7Deposited during manufacture(i) water for injection, (ii) 0.9% physiological saline, (iii) 5% glucose solution

[0059] As shown in Table 17, it was confirmed that evaluation of #8-6 and #8-7 is difficult because API is deposited during manufacture; #8-1 to #8-5 have excellent cake properties without cracks, and are formulations maintaining the solubility during rehydration even after being stored under severe conditions for 4 weeks. In addition, it was confirmed that they exhibit excellent stability with almost no generation of total related compounds.

Claims

1. A liquid pharmaceutical composition comprising a compound represented by the following Chemical Formula 1, or a pharmaceutically acceptable salt thereof; a bulking agent for freeze-drying; cyclodextrin; and a solvent, wherein the cyclodextrin is beta-cyclodextrin, or gamma-cyclodextrin, the cyclodextrin is contained in an amount of 3.0 to 25.0 parts by weight based on 1 part by weight of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof, the bulking agent for freeze-drying is D-mannitol, sucrose, sorbitol, or trehalose, the bulking agent for freeze-drying is contained in an amount of 3.0 to 25.0 parts by weight based on 1 part by weight of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof, the solvent is distilled water, water for injection, acetate buffer, or physiological saline, and [Chemical Formula 1] is 2. The liquid pharmaceutical composition according to claim 1, wherein: the beta-cyclodextrin is (2-hydroxypropyl)-beta-cyclodextrin, or sulfobutyl ether-beta-cyclodextrin.

3. The liquid pharmaceutical composition according to claim 1, wherein: the cyclodextrin is contained in an amount of 4.5 to 15.0 parts by weight based on 1 part by weight of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof.

4. The liquid pharmaceutical composition according to claim 1, wherein: the bulking agent for freeze-drying is contained in an amount of 4.5 to 13.0 parts by weight based on 1 part by weight of the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof.

5. The liquid pharmaceutical composition according to claim 1, wherein: the bulking agent for freeze-drying is contained in an amount of 0.5 to 5.0 parts by weight based on 1 part by weight of the cyclodextrin.

6. The liquid pharmaceutical composition according to claim 1, wherein: the bulking agent for freeze-drying is contained in an amount of 0.8 to 2.3 parts by weight based on 1 part by weight of the cyclodextrin.

7. The liquid pharmaceutical composition according to claim 1, wherein: the liquid pharmaceutical composition is an injectable pharmaceutical composition.

8. The liquid pharmaceutical composition according to claim 1, wherein: pH of the liquid pharmaceutical composition is 3.0 to 7.0.

9. The liquid pharmaceutical composition according to claim 1, wherein: pH of the liquid pharmaceutical composition is 4.0 to 6.0.

10. The liquid pharmaceutical composition according to claim 1, wherein: the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof is contained at a concentration of 1 to 30 mg / mL in the liquid pharmaceutical composition.

11. The liquid pharmaceutical composition according to claim 1, wherein: the compound represented by Chemical Formula 1 or a pharmaceutically acceptable salt thereof is contained at a concentration of 5 to 25 mg / mL in the liquid pharmaceutical composition.