SN-38 formulation with improved solubility and oral absorption

The combination of SN-38 with NMP and vitamin E TPGS or PLGA copolymer in a pharmaceutical composition addresses the solubility and bioavailability issues of SN-38, enabling effective oral administration and reduced side effects for cancer treatment.

JP7688953B2Active Publication Date: 2025-06-05TAIRX INC
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Patent Information

Application Number
JP2024513965
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-09-05
Filing Date
2022-08-05
Publication Date
2025-06-05
Estimated Expiration
2042-08-05

AI Technical Summary

Technical Problem

SN-38, an active metabolite of irinotecan, is poorly soluble in water and pharmaceutical solvents, limiting its oral bioavailability and hindering its development as an anticancer drug.

Method used

A pharmaceutical composition comprising SN-38 combined with N-methylpyrrolidone (NMP) and vitamin E TPGS, or a copolymer like poly(lactic-co-glycolic acid), which enhances the solubility and oral absorbability of SN-38 without precipitation.

Benefits of technology

The composition achieves significant solubility and bioavailability of SN-38, allowing for effective oral administration and reduced systemic side effects compared to intravenous irinotecan, thereby offering a promising treatment for various cancers.

✦ Generated by Eureka AI based on patent content.

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Abstract

Formulations with improved solubility and oral absorption of SN-38. In one embodiment, the formulation or pharmaceutical composition comprises: The pharmaceutical composition comprises a) 7-ethyl-10-hydroxy-camptothecin (SN-38), and b) a mixture of pharma- ceutically acceptable excipients, including (i) N-methylpyrrolidone, and (ii) Vitamin E TPGS or copolymer, said copolymer being a 50 / 50 poly(lactic-co-glycolic acid) or a 75 / 25 poly(lactic-co-glycolic acid) copolymer (PLGA), with the proviso that when Vitamin E TPGS is present, said mixture of excipients further comprises a polymer selected from the group consisting of hydroxypropyl cellulose, hydroxypropyl methylcellulose, VP / VAc copolymer 60 / 40, poloxamer 407, and lauroyl macrogol-32 glyceride, said pharmaceutical composition being water-free and liquid or gel-like, and said SN-38 dissolves in said mixture of excipients without precipitation.
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Description

[Technical field]

[0001] The present invention relates typically to SN-38, and more specifically to a formulation that improves the solubility and oral absorbability of SN-38. [Background technology]

[0002] SN-38 or 7-ethyl-10-hydroxy-camptothecin is an antineoplastic drug. It is the active metabolite of CPT-11 (irinotecan). CPT-11 is water soluble. It is administered intravenously. The water solubility of CPT-11 (hydrochloride) is said to be 25 mM (~15 to 16 mg / mL) in water. On the other hand, SN-38 is very poorly soluble (S<10 μg / mL). The biotransformation of irinotecan to SN-38 is essentially species dependent. In humans, biotransformation to form SN-38 is slow and limited (~5%), with approximately 33-66% of irinotecan remaining unhydrolyzed at the end of a 24-hour infusion. (Rowinsky et al., CANCER RESEARCH 54, 427-436, January 15, 1994).

[0003] Although SN-38 has been confirmed to have 200-2000 times the cytotoxicity of CPT-11, it has not been used as an anticancer drug due to its low solubility in pharma- ceutical acceptable solvents and low affinity for lipid membranes. SN-38 has shown antitumor effects in vitro and in vivo against various cancer cell lines and human cancer model animals, including ovarian (Zhang et al., J. Controlled Release 166(2013)147-158), breast (Sapra et al., Clin Cancer Res 2008, 14(6):1888-1895), colon (ibid.), stomach (Tanaka et al., ONCOLOGY REPORTS 14:683-688, 2005), and pancreatic (Basel et al., Small. 2012, 8(6):913-920) cancer xenografts. SN-38 is essentially insoluble in water (<40 μg / mL) and all other pharma- ceutically acceptable solvents (Zhang et al., Intl J. Pharmacol. 270(2004)93-107). Although SN-38 is known for its excellent antitumor potential, the extremely low solubility of SN-38 has seriously hindered its development by either intravenous or oral administration. Summary of the Invention

[0004] In one aspect, the present invention provides a pharmaceutical composition comprising a mixture of a) 7-ethyl-10-hydroxy-camptothecin (SN-38), and b) a pharma- ceutically acceptable excipient, wherein the mixture is (i) N-methylpyrrolidone (NMP), and (ii) vitamin E TPGS (VitE TPGS) or a copolymer, the copolymer being 50 / 50 poly(lactic-co-glycolic acid) or 75 / 25 poly(lactic-co-glycolic acid) copolymer (PLGA), wherein VitE and wherein said SN-38 dissolves in said mixture of excipients without precipitation.

[0005] In one embodiment, the mixture of excipients in the pharmaceutical composition of the present invention comprises: (i) NMP; (ii) VitE TPGS, and (iii) a polymer selected from the group consisting of HPC, HPMC, VP / VAc copolymer 60 / 40, poloxamer 407, and lauroyl macrogol-32 glyceride.

[0006] In other embodiments, the mixture of excipients is selected from: (i) NMP, VitE TPGS, and HPC in a weight ratio of 50:20:1 to 50:20:2.0; (ii) NMP, VitE TPGS, and HPMC in a weight ratio of 50:20:1 to 50:20:2.0; (iii) NMP, VitE TPGS, and VP / VAc copolymer 60 / 40 in a weight ratio of 50:20:20.0; (iv) NMP, VitE TPGS, and poloxamer 407 in a weight ratio of 50:20:20.0; or (v) NMP, VitE TPGS, and lauroyl macrogol-32 glycerides in a weight ratio of 50:20:20.0.

[0007] In another embodiment, the weight ratio of the NMP, VitE TPGS, and HPC is 50:20:1.0 to 50:20:2.5. In another embodiment, the weight ratio of the NMP, VitE TPGS, and the polymer is 50:20:2.5 to 50:20:5.0. The weight ratio of the NMP, VitE TPGS, and HPC may be 50:20:2.0 to 50:20:5.0.

[0008] In another aspect, the present invention relates to a pharmaceutical composition comprising a) 7-ethyl-10-hydroxy-camptothecin (SN-38), and b) a mixture of pharma- ceutically acceptable excipients, the mixture comprising (i) N-methylpyrrolidone (NMP), and (ii) vitamin E TPGS (VitE TPGS), or a copolymer selected from 50 / 50 poly(lactic-co-glycolic acid) or 75 / 25 poly(lactic-co-glycolic acid) (PLGA), wherein the pharmaceutical composition is water-free and is liquid or gel-like, and wherein SN-38 dissolves in the mixture of excipients without precipitation.

[0009] In one embodiment, the blend of excipients comprises (i) NMP, (ii) VitE TPGS, and (iii) a polymer selected from the group consisting of HPC, HPMC, VP / VAc copolymer 60 / 40, poloxamer 407, lauroyl macrogol-32 glyceride, and copolymers of 50 / 50 PLGA or 75 / 25 PLGA.

[0010] In other embodiments, the mixture of excipients comprises the NMP and a copolymer selected from 50 / 50 PLGA or 75 / 25 PLGA, and further, the pharmaceutical composition is in the form of a gel.

[0011] In other embodiments, 50 / 50 PLGA to NMP is in a 1:3 weight ratio and 75 / 25 PLGA to NMP is in a 1:2 weight ratio.

[0012] In another embodiment, the polymer is selected from HPC or VP / VAc copolymer 60 / 40.

[0013] In another embodiment, the pharmaceutical composition is an oral dosage form. In another embodiment, the polymer is HPC and the pharmaceutical composition is an oral dosage form. In another embodiment, the composition is in capsule form or liquid in syringe form. The composition may be formulated as a capsule form, liquid oral dosage form, or liquid in syringe form.

[0014] In other embodiments, the pharmaceutical composition may be in the form of a gel or thickened liquid.

[0015] In other embodiments, the mixture of excipients forms a solution.

[0016] In other embodiments, the solubility of SN-38 is greater than 9 mg / g but less than 19 mg / g at 20° C., except for the mixtures of excipients listed above that include poloxamer 407 at 20° C.

[0017] In another embodiment, the polymer is selected from HPC or HPMC, and has a solubility of SN-38 greater than 9 mg / g but less than 15 mg / g at 20°C.

[0018] In another embodiment, the excipient mixture includes a copolymer, and the solubility of SN-38 is not less than 10 mg / g at 20° C.

[0019] In yet another aspect, the present invention relates to the use of the pharmaceutical composition in the manufacture of a medicament for treating cancer in a subject in need thereof.

[0020] The present invention also relates to a method of treating cancer, comprising administering to a subject in need thereof a therapeutically effective amount of a pharmaceutical composition according to the present invention to treat cancer.

[0021] In one embodiment, the cancer is at least one selected from the group consisting of liver cancer, pancreatic cancer, colon cancer, ovarian cancer, breast cancer, gastric cancer, and colorectal cancer. [Brief description of the drawings]

[0022] [Figure 1] FIG. 1 is an HPLC chromatogram of a standard solution of SN-38. [Diagram 2] Figure 2 shows the photographs of the samples after dilution with water. Top: PLGA (50:50):NMP at a mass ratio of 1:3, bottom: PLGA (75:25):NMP at a mass ratio of 1:2. Sample #1: mixture of excipients (PLGA / NMP) with SN-38, Sample #2: mixture of excipients (PLGA / NMP) alone (without SN-38). [Diagram 3] 3A-B are graphs showing plasma concentration versus time. [Figure 4] 4A-B are photographs showing the appearance of Formulation A and Formulation C. [Diagram 5] 5A-B are graphs showing plasma concentration versus time profiles. [Figure 6] 6A-C are charts showing tissue concentration versus time profiles. [Figure 7] 7A-B are dot plots showing tumor weights and tumor volumes at day 34 in control and experimental groups. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0023] definition The terms used herein generally have their ordinary meaning in the art, within the context of the present invention, and in the specific context in which each term is used. Certain terms used to describe the present invention are described below or elsewhere in this specification to provide additional guidance to those skilled in the art regarding the description of the present invention. For convenience, certain terms may be highlighted, for example, using italics and / or quotation marks. The use of highlighting does not affect the scope and meaning of a term, which is the same in the same context whether or not it is highlighted. It will be understood that the same thing can be said in more than one way. Thus, alternative or synonymous terms may be used for any one or more of the terms described herein, and no special significance is placed on whether a term is detailed or described herein. Synonyms for certain terms are described. The description of one or more synonyms does not exclude the use of other synonyms. The use of examples anywhere in this specification, including examples of any term described herein, is illustrative only.

[0024] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. In case of conflict, the present specification, including definitions, will control.

[0025] The term "solution" is defined as a homogeneous mixture of one or more substances (solutes) molecularly dispersed in a sufficient amount of a dissolution medium (solvent).

[0026] As used herein, the terms "formulation," "composition," "pharmaceutical mixture," and "pharmaceutical composition" are interchangeable.

[0027] As used herein, a "formulation" refers to "any mixture or substance prepared according to a particular recipe" and / or "a pharmaceutical preparation formulated in a particular form, such as, but not limited to, a capsule."

[0028] The term "composition" refers to a resulting state or product and / or an aggregate formed from two or more substances.

[0029] As used herein, "prepared" refers to a state of being prepared and / or "something that is prepared, manufactured."

[0030] The term "except", as used herein, is defined as excluding or excluding.

[0031] Gels or gel liquids are a form of colloid that is stiffer than a solution. They are sometimes called "semi-solids" or "non-aqueous liquids," primarily due to their viscosity.

[0032] "Effective amount" refers to the amount of active agent required to confer a therapeutic effect on a treated subject. Effective amounts will vary, as will be recognized by those of skill in the art, depending on the route of administration, the amount of excipients used, and the possibility of co-administration with other therapeutic treatments.

[0033] The term "treat" or "treatment" refers to the administration of an effective amount of a therapeutic agent to a subject having a disease, or a condition, or a predisposition to such a disease, for the purpose of alleviating, alleviating, curing, or ameliorating the disease, its symptoms, or its predisposition.

[0034] "C 24 " refers to drug concentration measurements recorded 24 hours after administration.

[0035] The "Guidance for Industry and Reviewers for Estimating Safe Starting Dose for Clinical Trials of Therapeutic Products in Healthy Adult Volunteers" published by the U.S. Department of Health and Human Services Food and Drug Administration discloses that the "Human Equivalent Dose (HED)" can be calculated using the following formula: :HED = Animal dose in mg / kg × (animal weight in kg / human weight in kg) 0.33 .

[0036] The weight range of the animals used in the in-vivo experiments was 19.4 to 24.7 g. The average weight was approximately 22.5 g.

[0037] synonym: GELUCIRE® 50 / 13: Stearoyl polyoxyl-32 glycerides, stearoyl polyoxyl / macrogol 32 glycerides. GELUCIRE® 48 / 16: Polyethylene glycol monostearate, PEG-32 stearate. GELUCIRE® 44 / 14: Lauroyl polyoxyl-32 glycerides, Lauroyl polyoxyl / macrogol 32 glycerides, Lauroyl macrogol-32 glycerides, Lauroyl PEG-32 glycerides. KOLLIDON® VA 64:VP / Vac Copolymer 60 / 40 is 60% VP (vinylpyrrolidone) / 40% VA (vinyl acetate) and is also called copovidone, copolyvidone, vinylpyrrolidone-vinyl acetate copolymer, or a copolymer of 1-vinyl-2-pyrrolidone and vinyl acetate in a mass ratio of 6:4. TPGS, vitamin E polyethylene glycol succinate, vitamin E-TPGS, D-α-tocopherol polyethylene glycol succinate, and D-α-tocopherol polyethylene glycol 1000 succinate are synonyms. LUTROL® F 127 is poloxamer 407, which is poly(ethylene glycol)-block-poly(propylene glycol)-block-poly(ethylene glycol).

[0038] Abbreviations: NMP: N-methylpyrrolidone, VitE TPGS: D-α-tocopherol polyethylene glycol 1000 succinate, VP / Vac copolymer 60 / 40: 1-vinyl-2-pyrrolidone-vinyl acetate copolymer 60 / 40, HPC: hydroxypropyl cellulose, HPMC: hydroxypropyl methylcellulose, PO: oral, PEG: polyethylene glycol, QD: once daily, SEM: standard error of the mean.

[0039] Usefulness: The present invention relates to an innovative oral formulation of SN-38, an active metabolite of irinotecan. An oral antitumor or anticancer agent or pharmaceutical composition is disclosed for use in the treatment of colon cancer, liver cancer, pancreatic cancer, and the like. The pharmaceutical composition has reduced systemic side effects compared to the commercially available injectable irinotecan. Further advantages of the pharmaceutical composition according to the present invention include convenient use and better patient compliance (oral vs. intravenous). The composition or formulation of the present invention excludes any liposomal formulation and any solid form. That is, the composition of the present invention does not include any liposomes or any solid form. It may be either a semi-solid formulation or a liquid formulation. As used herein, the composition of the present invention is in a semi-solid or liquid form.

[0040] Both irinotecan and SN-38 are derivatives of camptothecin. They are not novel chemical entities (NCEs). Irinotecan was synthesized by adding a water-soluble moiety to SN-38, and is considered a prodrug of SN-38 because SN-38 has very low water solubility. SN-38 inhibits the topoisomerase enzyme (topoisomerase I), which controls the manipulation of DNA structures required for replication.

[0041] Irinotecan is already sold intravenously as CAMPTOSAR® (Pfizer) and is used as a potent anti-cancer drug, but currently there are no oral or intravenous forms of SN-38 approved or marketed globally.

[0042] Oral formulations of SN-38 should reduce the drug burden of using irinotecan by at least 20-fold, but should not impair the overall therapeutic efficacy in treating cancer patients. Compared to intravenously administered irinotecan, applicants have demonstrated comparable, if not greater, absorption across several organ tissues, including liver, pancreas, and colon. The compositions of the present invention provide sufficient SN-38 and low systemic plasma levels to target tumor tissues.

[0043] Irinotecan has already been approved for colon and pancreatic cancer. Applicant shows that preclinical data suggests that oral formulations of SN-38 ("TRX-920") may also be effective in the treatment of liver and pancreatic cancer. Pharmacokinetic studies show that the long half-life results in a sustained release profile of SN-38 in plasma and target tissues (Figure 6A). Oral administration should improve patient compliance due to increased convenience. Oral formulations A or C showed sustained SN-38 concentrations in liver tissue, meaning that the half-life of SN-38 oral formulations is much longer than intravenous administration of CPT-11 (Figure 6A). Oral formulations A or C showed at least 20-fold higher SN-38 concentrations and drug exposure AUC0-24 than CPT-11 (iv) in colon tissue. Overall, the drug distribution data appears to support the use of oral SN-38 formulations in colon cancer treatment to be more therapeutically effective than conventional intravenous administration of CPT-11 (Figure 6C). Other potential benefits provided by oral formulations of SN-38 according to the present invention include: (1) Cancer patients with irinotecan-associated "hereditary fructose intolerance" may benefit from oral SN-38. (2) reduced antigenicity, emesis, or bone marrow suppression compared to intravenous administration of irinotecan, as evidenced by reduced antigenicity (SN-38 showed no antigenic potential in guinea pigs, whereas irinotecan showed antigenic potential in guinea pigs and rabbits); (3) In animal studies, it reduces the emetic effects of SN-38 treatment. Five of six dogs vomited within 1-2 minutes of administration of irinotecan at 20 mg / kg (iv). Vomiting was induced in one minute by irinotecan at 40 mg / kg, and two dogs died at 3 and 6 minutes. No vomiting or nausea was observed when SN-38 (11.6 mg / kg, iv) was administered to dogs (PRODUCT MONOGRAPH, Pr Irinotecan Hydrochloride Injection, Auro Pharma Inc. Ontario, Canada, Submission Control Number: 216121, June 2020, p. 44). Examples include: EXAMPLES

[0044] (A) Formulation Design and Development I. Excipient Screening We screened various types of oral excipients and excipient combinations for their ability to enhance the solubility of SN-38 with the goal of identifying an orally acceptable semi-solid or liquid formulation, such as a viscous emulsion or gel, that can be loaded into soft or hard shell capsules or prefilled syringes for oral administration. Various combinations of SN-38 with various solvents and excipients were tested. These preliminary prototype formulations will be used in animal studies to evaluate the oral bioavailability and local gastrointestinal tolerability of SN-38 after oral administration.

[0045] The first step in this study is a formulation screen to identify the vehicle that best solubilizes the SN-38 compound. The concentration is targeted at 50 mg / mL. In the second step, the excipient mixture will be tested at a new (lower) target of 20 mg / mL.

[0046] II. Materials and Methods II.1 Compounds. Table 1 shows the test compounds. [Table 1]

[0047] II.2 Reactants and excipients Table 2 lists the references of the optimal excipients and reactants used in the study. [Table 2] JPEG0007688953000003.jpg153167

[0048] II.3 Formulation Screening Saturation is achieved by gradually adding excess active ingredient (maximum target 50 mg / mL) to a given volume of test medium. Once the sample appears saturated, it is magnetically stirred at 20°C for 24 hours, protected from light. The supernatant is then separated, diluted with a solvent mixture and injected into the chromatography system. The concentration of each medium in solution is measured by HPLC (external standardization).

[0049] II.4 HPLC. Table 3 shows the HPLC measurement method. [Table 3]

[0050] III Results III.1 Oral fluid screening III.1.1 Formulation screening. A concentration of 5 mg / mL is initially targeted and bulk needs to be added if 5 mg / mL is soluble. None of the media tested reached 5 mg / mL except for the NMP sample which requires 50 mg bulk per mL for saturation. After 24 hours of magnetic stirring, all samples are confirmed to be saturated and analyzed. The resulting solubilities (HPLC results) are shown in the table below for the six optimal excipients or excipient solutions (from a list of 10 tested excipients). Table 4 shows the results of the formulation screening. [Table 4]

[0051] As expected, SN-38 is very poorly soluble in most test media, with solubility results far from the target of 50 mg / mL, except in NMP, where SN-38 reaches a solubility of 42 mg / g. In propylene glycol and Capmul MCM, SN-38 dissolves at 1.15 mg / g and 0.054 mg / g, respectively. In all other test media, SN-38 has a solubility below 0.054 mg / g.

[0052] III.1.2 Interim formulation optimization. In order to increase the SN-38 concentration in the formulation that can be tested in animals, the best excipient combinations were investigated here. Based on the fact that NMP is the best solubilizer for SN-38, and considering that 20 mg / mL is the new target, the following mixture was selected: (i)NMP / VitE TPGS / Capmul MCM / Tween 20(50 / 20 / 10 / 20 - w / w) (ii)NMP / VitE TPGS / IPM / Solutol HS15(50 / 20 / 10 / 20- w / w) (iii) NMP / VitE TPGS / Mygliol 812 / propylene glycol (50 / 20 / 10 / 20 - w / w) (iv) NMP / VitE TPGS / Labrafac Lipophile WL1349 / Lauroglycol (50 / 20 / 10 / 20 - w / w) Table 5 shows the solubility of SN-38 in various mixtures (HPLC results). [Table 5]

[0053] Despite the amount of residual NMP (50% in each of these four new media), none of these mixtures was able to solubilize 20 mg / g of SN-38. In the mixture "NMP / Vit E TPGS / IPM / Solutol HS15 (50 / 20 / 10 / 20 - w / w)", the solubility of SN-38 reached 9.04 mg / g. Note 1: If the separated saturated supernatant of any mixture is immediately diluted two-fold with water, noticeable precipitation is immediately observed.

[0054] III.1.3 Interim conclusions: The targeted 50 mg / mL soluble SN-38 was not achieved in any of the tested liquid excipients or in high loading aqueous solutions of surfactants. Although the solubility in NMP is fairly high (42 mg / mL), this excipient is rarely administered to patients (one injectable formulation has been identified) and is likely never administered pure, but in as yet undefined mixtures.

[0055] Four excipient combinations were then tested, including 50% NMP (to stay near the SN-38 target solubility of 20 mg / mL), medium length lipid chain excipients, and surfactants. None of the tested mixtures were able to reach 10 mg / mL (9 mg / mL was achieved with the "NMP / Vit E TPGS / IPM / Solutol HS15 (50 / 20 / 10 / 20 -w / w)" mixture). NOTE: After dilution 2-fold with water, none of the four separated saturated excipient mixtures prevented the reprecipitation of SN-38.

[0056] III.2 Oral bioavailability enhancement studies In addition to the previous results, additional experiments were performed in which polymers were added to vehicles containing NMP (solubilization of SN-38) and VitE TPGS (inhibition of P-glycoprotein and prehepatic cytochrome P450). This polymer may mitigate precipitation of SN-38 upon dilution in water. In a second step, the solubility of SN-38 in the NMP / VitE TPGS vehicle containing the polymer is additionally measured.

[0057] III.2.1 Apparent solubility of polymers (third excipients) in NMP. Nine polymers and one GELUCIRE® were tested for solubility in NMP for the purpose of selecting the "NMP+VitE TPGS+polymer" vehicle composition. The target ratio of the third excipient to NMP is 10% (w / w), and if it is not soluble at 10%, it will be 5%. Table 6 shows the solubility of the polymer in NMP. [Table 6]

[0058] The four test polymers (PVP K90, KOLLIDON® VA64, LUTROL® F127, and GELUCIRE®) are introduced at 10% in NMP resulting in a liquid mixture. Due to the low viscosity at 10% in NMP for KOLLIDON® VA64 and LUTROL® F127, it would be possible to increase the viscosity to 20% in NMP in the next test. The other polymers tested (Carbopol 971P, Carbopol 974P, Noveon AA1, Methocel E4M, Methocel E10M, Methocel A15C) were either water insoluble or interestingly formed gels (non-flowing gels / either clear or hazy).

[0059] III.2.2 Incorporation of VitE TPGS into the mixture and measurement of SN-38 solubility III.2.2.1 Solubility of selected excipients in mixtures of NMP / VitE TPGS. Next, the three selected polymers and one GELUCIRE® are introduced into the NMP / VitE TPGS mixture in two compositions: NMP / VitE TPGS / polymer 50 / 20 / 10 (w / w / w) or 50 / 20 / 20 (w / w / w). Table 7 shows the solubility of the polymers in the NMP / VitE TPGS mixture. [Table 7] (1) Mixtures containing LUTROL® F127 should be heated to 25°C to avoid gelation.

[0060] III.2.2.2 Solubility of SN-38 in NMP / VitE TPGS / excipient mixtures. The solubility of SN-38 was then measured and compared not only in the NMP / VitE TPGS mixture, but also in three other NMP / VitE TPGS / polymer mixtures. Table 8 shows the solubility of SN-38 in NMP / VitE TPGS / polymer mixtures (HPLC results). [Table 8] (2) At 20°C, except for the mixture containing LUTROL® F127 (at 25°C).

[0061] Maximum solubility of SN-38 was achieved in the mixture NMP / VitE TPGS 50 / 20 w / w, very close to the initial target concentration (20 mg / g). Addition of the tested excipients to this mixture does not improve the solubility of SN-38. Note: Whatever the new mixture tested above, when a small amount of the separated saturated supernatant is immediately diluted two-fold by the addition of water, significant precipitation is again immediately observed.

[0062] III.2.3 Gelled SN-38 Some polymers form gels when dissolved in NMP. If feasible, gelled SN-38 formulations can be tested in animal pharmacokinetic studies to determine whether modified release of SN-38 from these formulations can improve oral absorption and bioavailability of SN-38.

[0063] The first test method uses a solution of SN-38 in an NMP / VitE TPGS mixture (the mixture in which SN-38 has the highest solubility) and adds various polymers of interest to attempt to form gels while checking whether SN-38 maintains solubility in each final mixture. Prior to adding SN-38, each test polymer was first checked for solubility in NMP / VitE TPGS 50 / 20 w / w as well as its ability to form gels. Table 9 shows the visual solubility test of gelling / thickening polymers in NMP / VitE TPGS mixtures. [Table 9]

[0064] Four test polymers (Noveon AA1, Carbopol 971P, Carbopol 974P, and Methylcellulose A15C) do not dissolve in the NMP / VitE TPGS (50 / 20) mixture. The other three test polymers become gels (or thickened liquids). Based on the apparent viscosity of the test mixtures and the presence of residual undissolved polymer fractions, the selected proportions of HPMC E4M and HPMC E10M are 4% (%w of NMP) for further testing in SN-38.

[0065] For HPC, SN-38 is further tested in both tested percentages above (2% and 5%). Considering the previously measured saturated solubility of SN-38 in the NMP / VitE TPGS 50 / 20 mixture (≈18.5 mg / g), a 15 mg / g solution of SN-38 is tested. This starting solution is prepared by stirring for 24 h at 20 °C and then filtered before being used for polymer solubilization.

[0066] The three polymers of interest (HPMC E4M, HPMC E10M, and HPC Klucel) are weighed (according to the selected ratios above) and added under stirring to the SN-38 solution in NMP / VitE TPGS 50 / 20 mixture for solubilization. After stirring for 24 hours at 20° C., the three samples are visually observed and their SN-38 content is evaluated by HPLC (after dilution with an appropriate solvent).

[0067] SN-38 formulation samples in NMP / VitE TPGS / HPC (50w:20w:5w vs. NMP). Excipients: N-methyl-pyrrolidone (NMP), Vitamin E TPGS (VitE TPGS), Hydroxypropylcellulose (HPC).

[0068] SN-38 solubilization medium composition Media: NMP / VitE TPGS 50w:20w Composition: For the preparation of 70 g of vehicle: (1) VitE TPGS (solid at room temperature) is melted at 60° C. (2) 50 g of NMP and 20 g of VitE TPGS are introduced into a suitable bottle. (3) The vehicle composition is mixed by efficient magnetic stirring until the mixture appears homogeneous.

[0069] Protocol for preparing 3.75 mg / g SN-38 formulation samples in NMP / VitE TPGS / HPC Preparation of SN-38 solubilization medium: The "NMP / VitE TPGS 50w:20w" vehicle is first prepared by simple mixing (as above). Preparation of SN-38 solution: Accurately weigh out the required amount of SN-38 into a glass container of suitable volume. Next, add the desired amount of the previously prepared vehicle (NMP / VitE TPGS 50w:20w) to the SN-38 active pharmaceutical ingredient powder to obtain a concentration of 3.89 mg / g* (*: concentration considering the final small dilution after the final addition of 5% HPC (5%w to NMP)). The preparation is then stirred overnight or until complete solubilization is confirmed, protected from light. Note: The SN-38 solution will have a yellowish color like the final "gel".

[0070] Viscosity of SN-38 solution The required amount of HPC (corresponding to 5% w / w with respect to the mass of NMP present in the sample) is accurately weighed in a suitable flask. The HPC is then sprinkled (quickly, without forming any aggregates) into the previously prepared SN-38 solution in NMP / VitE TPGS (the solution is kept under strong magnetic stirring). Magnetic stirring is maintained for a few minutes, until the viscosity of the formulation prevents continued stirring with the magnetic bar (thickening is nearly complete). The glass flask is then transferred to an orbital shaker and stirred for another day (or at least overnight) to complete the solubilization of the HPC and homogenization of the final sample. Once the thickening of the SN-38 is complete, the formulation is ready for use and can be dispensed. *Note: The entire process is performed at room temperature (approximately 20-25°C). Table 10 shows the macroscopic observations of the SN-38 "gel". Table 11 shows the HPLC results of the SN-38 gel. [Table 10] (1) The indicated percentages of polymer are calculated relative to the NMP content present in the NMP / VitE mixture.

[0071] [Table 11] (1) The indicated percentages of polymer are calculated relative to the NMP content present in the NMP / VitE (5w / 2w) mixture.

[0072] No precipitation of SN-38 was observed when polymers were added to the SN-38 / NMP / VitE TPGS solutions for gelation. The various resulting final SN-38 formulations are homogenous "gels" (more or less viscous yellow transparent solutions). NOTE: Adding one volume of water to one volume of these (SN-38 saturated) gels results in significant precipitation of SN-38.

[0073] III.2.4 SN-38 containing PLGA Before the selected PLGA was introduced into the tentative SN-38 formulation, the solubility of both polymers was first visually confirmed in NMP at a mass ratio of 1:2 (w:w) (i.e., 1 g PLGA to 2 g NMP). The 50 / 50 PLGA polymer was not completely soluble in this condition, so it was retested at a mass ratio of 1:3 (see Table 12). Table 12 shows the visual solubility confirmation of PLGA in NMP. [Table 12] NOTE: Slight heating (approximately 40 °C) aids in dissolving the PLGA.

[0074] SN-38 solubilization in these two PLGA / NMP solution mixtures was then tested at a starting SN-38 concentration of 20 mg / g, followed by decreasing test concentrations as necessary. Table 13 shows the results of the preliminary SN-38 solubilization macroscopic observations in PLGA / NMP mixtures. [Table 13]

[0075] SN-38 is soluble at 10 mg / g in a 1:2 PLGA (75:25):NMP mixture by mass. Better SN-38 solubility is observed in a 1:3 PLGA (50:50):NMP mixture by mass, likely due to the higher proportion of NMP in the test sample. Note: When these two SN-38 solutions (in NMP+PLGA) are immediately diluted 2-fold with water, a white precipitate is immediately observed (see Figure 2). A very similar precipitate is also observed when the placebo PLGA / NMP mixture (without SN-38) is diluted with water (the precipitates in the placebo and SN-38-containing formulations are not easily distinguished visually).

[0076] III.3 Conclusion Among the various excipient combinations tested, the solubility of SN-38 reached maximum (18.5 mg / g) in the mixture of NMP / VitE TPGS 50 / 20 (w / w). Addition of KOLLIDON® VA64 (2w), LUTROL®, F127 (2w) or GELUCIRE® (2w) can be added to NMP / VitE TPGS (5w / 2w) and the mixture remains liquid, allowing the solubility of SN-38 to be measured (15.6 mg / g, 10.0 mg / g, and 9.2 mg / g, respectively). Addition of HPMC (E4M or E10M) or HPC Klucel can directly solubilize each of these polymers to form a "gel" with a 15 mg / g solution of SN-38 in a NMP / VitE TPGS (5 w / 2 w) mixture without precipitation of SN-38. SN-38 is soluble at 10 mg / g in a 1:2 PLGA (75:25):NMP mixture by mass and at 15 mg / mL in a 1:3 PLGA (50:50):NMP mixture by mass. Addition of water results in significant precipitation in all samples.

[0077] (B) Animal oral pharmacokinetics and tissue distribution studies Rodent (rat) and non-rodent (beagle dog) studies were conducted to investigate the pharmacokinetics (PK) and tissue distribution of SN-38 following oral administration of selected formulations.

[0078] 1. Pharmacokinetics of CPT-11 / SN-38 following a single intravenous or oral dose of CPT-11 / SN-38 to beagle dogs. (1) Study Design: Six male and three female previously treated beagle dogs were treated with CPT-11 and SN-38 according to the regimens shown in Table 14. [Table 14] *Dosing to dogs was not performed due to insolubility of the compound in the formulation.

[0079] (2) Results. PK data: [Table 15] aFormulation A: NMP: VitE TPGS: KOLLIDON® VA64 b :Formulation B: NMP: VitE TPGS: HPMC E4M c :Formulation C:NMP:VitE TPGS:HPC

[0080] 2. Pharmacokinetics and tissue distribution of CTP-11 / SN-38 following a single intravenous administration of CTP-11 or a single oral administration of the SN-38 oral formulation to Sprague-Dawley rats. Two candidate formulations were selected for further evaluation in animal pharmacokinetic studies: Formulation A (TRX-920A): soluble at a maximum concentration of ~15 mg / g, and Formulation C (TRX-920B): soluble at a maximum concentration of ~15 mg / g. The appearances were different: Formulation A (TRX-920AH) was a yellow viscous solution, whereas formulation C (TRX-920BH) was a yellow gelling solution (Figure 4A-B).

[0081] (1) Study design: [Table 16]

[0082] [Table 17] Formulation A: SN-38 in NMP:VitE TPGS:KOLLIDON® VA64 (50:20:20, w / w). Formulation C: SN-38 in NMP:VitE TPGS:HPC (50:20:5, w / w).

[0083] 5A-B show the plasma concentration versus time profiles of intravenous administration of CPT-11 and an oral formulation of SN-38. The low plasma concentrations of SN-38 with oral Formulations A or C are expected to result in much fewer systemic side effects than intravenous infusion of irinotecan (CPT-11).

[0084] Drug distribution in selected tissues: Table 18 and Figures 6A-C show the drug distribution in the liver, pancreas and colon. [Table 18] *Normalized to human exposure (i.e., 83.7% conversion to SN-38 in rats compared to 5% in humans).

[0085] For formulation A, the AUC0-24 of SN-38 in the colon was 6320, 29.3-fold greater than that of CPT-11(216). Similarly, for formulation C, the AUC0-24 of SN-38 in the colon was 15578, approximately 72-fold greater than that of CPT-11(216).

[0086] The results demonstrated that compared with intravenous CPT-11 administration, the oral SN-38 formulation increased SN-38 tissue concentrations in the colon by more than 30-fold, ensuring sufficient drug exposure for the treatment of colorectal cancer.

[0087] The oral SN-38 formulation provides sustained-release levels of SN-38 in these tissues, suggesting a favorable PK profile for oral administration in cancer patients.

[0088] Compared with intravenous administration of CPT-11, oral SN-38 formulations have no CPT-11 exposure and 10- to 30-fold lower plasma concentrations of SN-38, resulting in very few systemic side effects and ensuring excellent safety.

[0089] Oral SN-38 formulations exhibited similar SN-38 (AUC) in the liver and pancreas as intravenous CPT-11 and therefore may be useful in treating tumors of the liver and pancreas.

[0090] These animal PK studies showed that the selected oral SN-38 formulations delivered sufficient SN-38 to target tumor tissues such as liver and colon, had a long half-life (T1 / 2), and resulted in a sustained release profile in plasma and target tissues. In conclusion, after evaluating the results of the animal PK studies, the following two candidate formulations containing SN-38 solubility of ~15 mg / g were selected for animal pharmacological (efficacy) studies in xenograft models. 1) Prescription A : SN-38 in NMP: VitE TPGS: KOLLIDON® VA64 (50:20:20, w / w) 2) Prescription C :SN-38 in NMP:VitE TPGS:HPC(50:20:5, w / w)

[0091] (C) Animal pharmacological (efficacy) studies Based on previous solubility studies and pharmacokinetic evaluations, selected oral formulations of SN-38 were selected for further evaluation of the given dosing regimen in a human-like tumor (e.g., HCT-116 colon cancer cell) orthotopic xenograft mouse model to demonstrate the desired antitumor activity. After scheduled repeated oral dosing, the pharmacological efficacy of each oral SN-38 formulation was measured by tumor growth inhibition rate (TGI%) compared to intravenous (iv) or intraperitoneal (ip) administration of irinotecan as a positive control.

[0092] Test #1- Advanced analysis to evaluate efficacy of single agent oral administration of TRX-920 formulation using orthotopic HCT-116 xenograft model Formulations A and C were evaluated in an orthotopic human colon cancer xenograft mouse model to demonstrate their pharmacological efficacy. In these studies, both formulations A and C were shown to be pharmacologically active, with formulation C being more effective than formulation A. Overall, oral formulations of SN-38 were shown to be effective in treating colon cancer, as shown in an orthotopic HCT-116 human colon cancer cell mouse xenograft model. The experimental design and results are summarized in the table below.

[0093] (1) Study design: [Table 19] Formulations AH and AL are high and low dosage levels of Formulation A, and Formulations CH and CL are high and low dosage levels of Formulation C. Frequency and number of drug treatments: BIW (biw or biw): on the 1st and 4th days of the week (twice a week), Q4D: once every 4 days.

[0094] (2) Results: [Table 20]

[0095] Results: Similar antitumor activity (TGI of 16-17% and 31-34% for tumor weight and tumor volume at day 34) was observed following administration of the low dose of 2.4 mg / kg of Formulation A and the high and low doses of 12 mg / kg and 2.4 mg / kg of Formulation C. Overall, both formulations A and C were pharmacologically active, with Formulation C being more effective than Formulation A.

[0096] Test #2- Advanced analysis of a follow-up study evaluating the efficacy of single-agent oral administration of TRX-920 using an orthotopic HCT-116 xenograft model in female BALB / c nude mice. A follow-up study was conducted to further evaluate an oral SN-38 formulation (Formulation C) with increased dosing frequency in the same xenograft mouse model. The experimental design and results are summarized in the table below. Briefly, animals were orally administered Formulation C of SN-38 at doses of 2.5, 7.5, and 15.0 mg / kg QD×4 days, 4 days off, BIW×3 times. Tumor growth inhibition (TGI%) was measured from tumor weight and tumor volume at day 32 and compared to untreated controls.

[0097] (1) Study design: [Table 21] Formulations CH, CM and CL are Formulation C at high, medium and low dosage levels. BIW: days 1 and 4 every week, QD: once a day (every day).

[0098] (2) Results: [Table 22]

[0099] The TGI% values ​​were 7-18%, 55%, and 50-59% in the formulation CH, -M, and -L groups, respectively. The formulation CM and -L groups showed comparable and significant antitumor efficacy, while the formulation CH group showed a lower TGI%, possibly compromised by the inherent gastrointestinal toxicity response of SN-38 after oral administration. This study again demonstrated the significant pharmacological efficacy of oral SN-38 formulations (e.g., formulation C in this study) on well-established antitumor xenograft mouse models.

[0100] Test #3- Examination of the in vivo efficacy of oral administration of TRX-920 using an orthotopic HCT-116 xenograft mouse model This study was conducted to determine the minimal effective dose of an oral SN-38 formulation (i.e., Formulation C or referred to as TRX-920 in this study) in the same xenograft mouse model. Briefly, Formulation C was orally administered BIW x 3 weeks at doses ranging from 0.09 to 7.5 mg / kg as SN-38. Tumor growth inhibition efficacy (TGI%) was measured from tumor weight and tumor volume on day 34 and compared to untreated controls. The experimental design and results are summarized in Tables 23-24.

[0101] (1) Study design (Formulation C, designated TRX-920): [Table 23]

[0102] (2) Results: [Table 24] Prescription C, labeled TRX-920.

[0103] Figure 7A-B are dot plots showing tumor weight and tumor volume at day 34 in each treatment group. Oral administration of Formulation C ranging from 0.09 to 7.5 mg / kg BIW x 3 weeks was generally well tolerated in these xenograft animals. The study results showed a dose-proportional response in tumor size reduction in the dose range from 0.27 mg / kg to 7.5 mg / kg, with Formulation C at the 7.5 mg / kg dose showing significant antitumor efficacy at TGI: 60.1% in tumor volume and 52.0% in tumor weight (p value ≤ 0.025). Nevertheless, even the lowest dose (0.09 mg / kg) showed unexpected but favorable antitumor efficacy (43-45%) in this disease model. This dose-response study also showed significant antitumor efficacy of the oral SN-38 formulation (i.e., Formulation C in this study) in the orthotopic HCT-116 xenograft mouse model.

[0104] In conclusion, all three animal pharmacological studies demonstrate that oral SN-38 formulations, especially formulation C, have significant antitumor effects in the well-established orthotopic HCT-116 human colon cancer cell mouse xenograft model, and therefore may represent a novel oral formulation of SN-38 in the treatment of colorectal cancer patients.

[0105] All references cited and discussed in this specification are incorporated by reference in their entirety and to the same extent as if each reference was individually incorporated by reference.

Claims

1. 1. A pharmaceutical composition comprising: a) 7-ethyl-10-hydroxy-camptothecin (SN-38), and b) a mixture of pharma- ceutically acceptable excipients, (i) N-methylpyrrolidone (NMP), and (ii) Vitamin E TPGS (VitE TPGS) or copolymers, said copolymers being 50 / 50 poly(lactic-co-glycolic acid) or 75 / 25 poly(lactic-co-glycolic acid) copolymers (PLGA). Including, A mixture of pharma- ceutically acceptable excipients, with the proviso that when VitE TPGS is present, said mixture of excipients further comprises a polymer selected from the group consisting of hydroxypropyl cellulose (HPC), hydroxypropyl methylcellulose (HPMC), VP / VAc copolymer 60 / 40, poloxamer 407, and lauroyl macrogol-32 glyceride. Including, The pharmaceutical composition is water-free, liquid or gel-like, and the SN-38 dissolves in the mixture of excipients without precipitating.

2. 2. The pharmaceutical composition according to claim 1, wherein the mixture of excipients comprises: (i) NMP, (ii) VitE TPGS; and (iii) a polymer selected from the group consisting of HPC, HPMC, VP / VAc copolymer 60 / 40, poloxamer 407, and lauroyl macrogol-32 glyceride.

13. A pharmaceutical composition comprising:

3. 2. The pharmaceutical composition according to claim 1, wherein the mixture of excipients comprises: (i) a weight ratio of NMP, VitE TPGS and HPC of from 50:20:1 to 50:20:2.0; (ii) a weight ratio of NMP, VitE TPGS and HPMC ranging from 50:20:1 to 50:20:2.0; (iii) NMP, VitE TPGS and VP / VAc copolymer 60 / 40 in a weight ratio of 50:20:20.0; (iv) a weight ratio of NMP, VitE TPGS and poloxamer 407 of 50:20:20.0; or (v) A weight ratio of NMP, VitE TPGS and lauroyl macrogol-32 glyceride of 50:20:20.0 2. A pharmaceutical composition selected from the group consisting of

4. 2. The pharmaceutical composition of claim 1, wherein the weight ratio of NMP, VitE TPGS and HPC is 50:20:2.0 to 50:20:5.

0.

5. 2. The pharmaceutical composition of claim 1, wherein the weight ratio of the NMP, VitE TPGS and the polymer is from 50:20:2.5 to 50:20:5.

0.

6. 10. The pharmaceutical composition of claim 1, in an oral dosage form.

7. 1. A pharmaceutical composition comprising: a) 7-ethyl-10-hydroxy-camptothecin (SN-38), and b) a mixture of pharma- ceutically acceptable excipients, (i) N-methylpyrrolidone (NMP), and (ii) Vitamin E TPGS (VitE TPGS) or a copolymer selected from 50 / 50 poly(lactic-co-glycolic acid) or 75 / 25 poly(lactic-co-glycolic acid) (PLGA). A mixture of pharma- ceutically acceptable excipients comprising Including, The pharmaceutical composition is water-free, liquid or gel-like, and SN-38 dissolves in the mixture of excipients without precipitation.

8. The mixture of excipients includes NMP and VitE TPGS; (iii) a polymer selected from the group consisting of HPC, HPMC, VP / VAc copolymer 60 / 40, poloxamer 407, lauroyl macrogol-32 glyceride, and copolymers of 50 / 50 PLGA or 75 / 25 PLGA; 8. The pharmaceutical composition of claim 7, further comprising:

9. 8. The pharmaceutical composition of claim 7, wherein the mixture of excipients comprises NMP and a copolymer selected from 50 / 50 PLGA or 75 / 25 PLGA, and further wherein the pharmaceutical composition is in the form of a gel.

10. 10. The pharmaceutical composition of claim 9, wherein 50 / 50 PLGA to NMP is in a 1:3 weight ratio and 75 / 25 PLGA to NMP is in a 1:2 weight ratio.

11. 2. The pharmaceutical composition of claim 1, wherein the polymer is selected from HPC or VP / VAc copolymer 60 / 40.

12. 2. The pharmaceutical composition of claim 1, wherein the polymer is HPC and the pharmaceutical composition is in an oral dosage form.

13. 2. The pharmaceutical composition of claim 1, which is in the form of a gel or a thickened liquid.

14. 10. The pharmaceutical composition of claim 1, wherein the pharmaceutical composition is in capsule form or in liquid in a syringe.

15. 10. The pharmaceutical composition of claim 1, wherein the mixture of excipients forms a solution.

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