Lung-targeted anti-cancer therapy with liposome anamycin
Liposomal annamycin selectively targets lung cancer, addressing MDR resistance and cardiotoxicity issues, effectively reducing tumors and metastasis, and can be combined with other therapies for enhanced treatment efficacy.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2020-11-23
- Publication Date
- 2026-04-07
AI Technical Summary
Existing cancer treatments, such as doxorubicin, face resistance mechanisms in multi-drug resistant (MDR) cancer cells, and there is a need for a more effective treatment that can target lung cancer without causing cardiotoxicity.
Administering a therapeutically effective amount of liposomal annamycin to patients, which accumulates selectively in lung tissue, reducing tumor growth and metastasis, and can be combined with other chemotherapeutic and immunotherapeutic agents.
Liposomal annamycin effectively treats lung cancer by extending survival time, reducing tumor volume, and slowing metastatic growth without inducing pulmonary or systemic toxicity, and can be administered in combination with other treatments.
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Abstract
Description
Technical Field
[0001] This application claims priority to and the benefit of U.S. Patent Application No. 62 / 938,845, filed on November 21, 2019, the entire disclosure of which is hereby incorporated herein by reference.
Background Art
[0002] Annamycin is a non-cardiotoxic anthracycline antibiotic with unique biological properties. Previous studies by the inventors have shown that Annamycin does not exhibit cross-resistance with doxorubicin (DOX) and is a poor substrate of P-glycoprotein 1 (P-gp) [also known as ATP-binding cassette subfamily B member 1 (ABCB1) or multidrug resistance protein 1 (MDR1)], which is a major mechanism of DOX resistance in various types of cancer. Annamycin, in contrast to DOX, achieves relatively high levels of cellular accumulation, particularly in multi-drug resistant (MDR) cell lines, and induces significant DNA damage in cancer cells, including MDR cells. Clinically, Annamycin is administered as a liposomal formulation (L-Annamycin), and the in vivo activity of this formulation has been demonstrated in various tumor models.
[0003] Surprisingly, studies of the pharmacokinetics and organ distribution of Annamycin and L-Annamycin formulated with liposomes (L-Annamycin) have revealed that Annamycin is unexpectedly present at high levels in lung tissue. The level of Annamycin in the lung (AUC, 24 hours) was more than 10-fold higher compared to that in serum. Importantly, the high uptake of Annamycin into the lung resulted in levels more than 6 - 7-fold higher compared to DOX. The high intracellular uptake and unique distribution of Annamycin may contribute to the high activity of L-Annamycin against MDR cancer cells.
Summary of the Invention
Means for Solving the Problems
[0004] Therefore, what is provided is a method for treating lung cancer, comprising administering a therapeutically effective amount of liposomal annamycin to a patient in need.
[0005] These and other aspects of the disclosure disclosed herein will be described in more detail as the disclosure of this patent progresses.
[0006] The patent or application file includes at least one drawing drawn in color. A copy of the publication of this patent or patent application, including the color drawing, will be provided by the Office upon request and payment of the necessary fees.
[0007] In the diagram below, the error bars represent the mean standard error, and the arrows indicate the dosing points. [Brief explanation of the drawing]
[0008] [Figure 1] This chart shows the analysis of the pharmacokinetics (PK) and biodistribution of anamycin in the lungs and plasma after a single intravenous administration. Error bars represent the standard error (SEM) of the mean. [Figure 2] This shows tumor progression and survival in CD26 tumor-bearing mice treated with L-anamycin. The following shows a long-term analysis of BLI signaling in mice treated with L-Ann at two different dose levels: 2 and 4 mg / kg. [Figure 3] This shows tumor progression and survival in CD26 tumor-bearing mice treated with L-anamycin. The following shows a long-term analysis of BLI signaling in mice treated with L-Ann at two different dose levels: 2 and 4 mg / kg. [Figure 4] This shows tumor progression and survival in CD26 tumor-bearing mice treated with L-anamycin. The following shows a long-term analysis of BLI signaling in mice treated with L-Ann at two different dose levels: 2 and 4 mg / kg. [Figure 5]This shows tumor progression and survival in CD26 tumor-bearing mice treated with L-anamycin. The following shows a long-term analysis of BLI signaling in mice treated with L-Ann at two different dose levels: 2 and 4 mg / kg. [Figure 6] This shows tumor progression and survival in CD26 tumor-bearing mice treated with L-anamycin. It also shows the distribution of BLI at 58 days post-tumor transplantation. [Figure 7] This shows tumor progression and survival in CD26 tumor-carrying mice treated with L-anamycin. It also shows Kaplan-Mayer analysis (survival rate) of CT26-carrying mice treated with L-anamycin. [Figure 8] This shows tumor progression and survival in 4T1 tumor-carrying mice treated with L-anamycin. [Figure 9] This paper presents a long-term analysis of BLI signaling in 4T1 tumor mice treated with L-Ann. [Figure 10] This shows the Kaplan-Mayer analysis (survival rate) of 4TI tumor-bearing mice treated with L-anamycin. [Modes for carrying out the invention]
[0009] Disclosed herein is a method for treating lung cancer (localized lung tumor), comprising administering a therapeutically effective amount of liposomal anamycin to a patient in need.
[0010] In certain embodiments, treating lung cancer includes one or more of the following: (a) extending the patient's survival time; (b) reducing the volume of the primary tumor; (c) slowing the growth of the primary tumor; (d) reducing the number of metastatic tumors; (e) reducing the volume of metastatic tumors; and (f) slowing the growth of metastatic tumors.
[0011] In certain embodiments, treating lung cancer does not result in anamycin-induced pulmonary toxicity of a severity that would contraindicate repeated administration of anamycin.
[0012] In certain embodiments, treating lung cancer results in no anamycin-induced systemic toxicity of a severity that would contraindicate repeated dosing of anamycin.
[0013] In certain embodiments, the patient has primary or metastatic cancer in the lung.
[0014] In certain embodiments, the patient has primary cancer in the lung. In certain embodiments, this primary lung cancer is small cell lung cancer (SCLC) or non-small cell lung cancer (NSCLC). In certain embodiments, this non-small cell lung cancer is selected from adenocarcinoma, squamous cell carcinoma, large cell carcinoma, and undifferentiated NSCLC.
[0015] In certain embodiments, the patient has metastatic cancer in the lung. Metastatic lung cancer can occur in almost all other tissues and metastasize to the lung. For example, this metastatic cancer can be breast cancer or colon cancer. In certain embodiments, this metastatic cancer is a metastasis of a primary cancer selected from bladder cancer, breast cancer, colorectal cancer, head and neck cancer, kidney cancer, melanoma, pancreatic cancer, prostate cancer, and ovarian cancer. In certain embodiments, this metastatic cancer is a metastasis of a sarcoma. In certain embodiments, this metastatic cancer is a cancer of unknown primary origin.
[0016] In certain embodiments, the cancer of the lung is mesothelioma.
[0017] The method includes administering to a mammal an effective amount of a pharmaceutical composition. This administration step can preferably be parenteral and can be by intravenous, intra-arterial, intramuscular, intralymphatic, intraperitoneal, subcutaneous, intrapleural, intrathecal injection, or by topical application. In some embodiments, such administration is in a repeated regimen until tumor regression or disappearance is achieved and can be used in combination with forms of tumor treatment such as surgery or chemotherapy with different agents.
[0018] In some embodiments, the dosage administered is about 125-280 mg / m to the mammalian subject administered. 2 It is.
[0019] In certain embodiments, this administration is repeated weekly. In certain embodiments, this administration is repeated every two weeks, every three weeks, or every four weeks.
[0020] In certain embodiments, the method further comprises administering to the subject an effective amount of at least one chemotherapeutic agent.
[0021] In certain embodiments, the at least one chemotherapeutic agent is selected from the following: actinomycin, afatinib, alectinib, asparaginase, azacitidine, azathioprine, bicalutamide, bleomycin, bortezomib, camptothecin, carboplatin, capecitabine, certinib, cetuximab, cisplatin, chlorambucil, crizotinib, cyclophosphamide, cytarabine, daunorubicin, docetaxel, doxifluridine, doxorubicin, erlotinib, epirubicin, epothilone, etoposide, fludarabine, flutamine, fluorouracil, fostamatinib, gefitinib, gemcitabine, hydroxyurea, ibrutinib, idarubicin, ifosfamide, imatinib, ipilimumab, irinotecan, lapatinib, letrozole, mechlorethamine, mercaptopurine, methotrexate, mitomycin, mitoxantrone, nilotinib, octreotide, oxaliplatin, paclitaxel, palbociclib, panitumumab, pemetrexed, raltitrexed, selumetinib, sorafenib, sunitinib, tamoxifen, temozolomide, teniposide, thioguanine, topotecan, trastuzumab, tremelimumab, valrubicin, vemurafenib, vinblastine, vincristine, vindesine, vinorelbine, and combinations thereof.
[0022] In certain embodiments, the at least one chemotherapeutic agent is Cyclophosphamide, doxorubicin, and vincristine; Mitomycin, vindesine, and cisplatin; Cisplatin and vinorelbine; and Cisplatin, etoposide, and ifosfamide Includes combinations selected from.
[0023] In certain embodiments, the method further comprises administering to a subject an effective amount of at least one immunotherapy agent. Examples of immunotherapies include, but are not limited to, monoclonal antibodies, immune checkpoint inhibitors, cancer vaccines, and nonspecific immunotherapies. In certain embodiments, the at least one immunotherapy agent is selected from: chloroquine, hydroxychloroquine, picibanil, krestin, schizophyllan, lentinan, ubenimex, interferon, interleukin, macrophage colony-stimulating factor, granulocyte colony-stimulating factor, erythropoietin, lymphotoxin, BCG vaccine, Corynebacterium parvum, levamisole, polysaccharide K, procodazole, anti-CTLA4 antibodies (e.g., ipilimumab, tremelimumab), anti-PD-1 antibodies (e.g., nivolumab, pembrolizumab), and anti-PD-L1 antibodies.
[0024] In certain embodiments, the method further includes either or both of the following: resecting the lung cancer and administering radiotherapy.
[0025] Anamycin is provided in a liposomal formulation. In certain embodiments, liposomal anamycin comprises anamycin, one or more lipids, and one or more nonionic surfactants.
[0026] Lipids may comprise one or more phospholipids, which form micelles and lipid bilayers and are widely used to prepare liposomal formulations, ethosomal formulations, and other nano-formulations. Examples of suitable phospholipids include dimyristoyl phosphatidylcholine (DMPC) and dimyristoyl phosphatidylglycerol (DMPG).
[0027] In certain embodiments, the lipids include dimyristoyl phosphatidylcholine (DMPC) and dimyristoyl phosphatidylglycerol (DMPG), and the nonionic surfactant includes a polysorbate-type surfactant formed by ethoxylation of sorbitan followed by the addition of a carboxylic acid.
[0028] Nonionic surfactants typically have a covalently bonded oxygen-containing hydrophilic group, which is attached to a hydrophobic parent structure. Nonionic surfactants may include polysorbate-type surfactants (e.g., polyoxyethylene sorbitan monolaurate (e.g., polysorbate 20)) formed by ethoxylation of sorbitan followed by the addition of a carboxylic acid.
[0029] In certain embodiments, the nonionic surfactant includes polyoxyethylene sorbitan monolaurate.
[0030] In certain embodiments, liposome anamycin is provided as a preliposomal lyophilizate composition that is reconstituted into an aqueous liposome composition by hydration, as described, for example, in U.S. Patent No. 7,238,366 (which is incorporated by reference in its entirety for all purposes).
[0031] In a particular embodiment, preliposome anamycin lyophilized is 1.8-2.2 wt% anamycin; 3.0-3.4 wt% polysorbate 20; and Lipids selected from DMPC and DMPG, comprising 94.4–95.2 wt%. Includes.
[0032] In a particular embodiment, DMPC is 65.3–67.3 wt% and DMPG is 27.1–29.9 wt%.
[0033] In a particular embodiment, each of these quantities may vary somewhat, for example, by plus or minus 10% of a given weight percentage.
[0034] definition When a range of values is disclosed and the notation "n1...~n2 (from n1... to n2)" or "n1...~n2 (between n1... and n2)" (where n1 and n2 are numerical values) is used, unless otherwise specified, this notation is intended to include the numerical values themselves and the range between them. This range may be an integer or a sequence between and including the endpoint. For example, the range "2 to 6 carbons" is intended to include 2, 3, 4, 5, and 6 carbons, since carbon occurs in integer units. In contrast, for example, the range "1 to 3 μM (micromolar concentration)" is intended to include 1 μM, 3 μM, and all values up to any number of significant figures (e.g., 1.255 μM, 2.1 μM, 2.9999 μM, etc.).
[0035] Where used herein, the term "approximately" is intended to modify the meaning of the numerical value it modifies, indicating such a value as a variable within tolerance. Unless specific tolerances, such as the standard deviation of the mean, are listed in a graph or table of data, the term "approximately" should be understood to mean the range that would encompass the listed value, and the range that would be included by rounding up or down to this number with regard to significant figures.
[0036] The term "anamycin" has the following structure: [ka] This refers to the compound (7S,9S)-7-(((2R,3R,4R,5R,6S)-4,5-dihydroxy-3-iodo-6-methyltetrahydro-2H-pyran-2-yl)oxy)-6,9,11-trihydroxy-9-(2-hydroxyacetyl)-7,8,9,10-tetrahydrotetracene-5,12-dione.
[0037] The term "high-purity anamycin preliposome lyophilized product" means a purity of material that is 95% or higher anamycin when analyzed by HPLC using validated standard samples. In some embodiments, the anamycin is at least 96% pure, or at least 97% pure, or at least 98% pure, or at least 99% pure.
[0038] The terms “liposome,” “liposomal,” and similar terms refer to generally spherical structures including lipids, fatty acids, lipid bilayer structures, monolayer vesicles, and amorphous lipid vesicles. Classically, a liposome is a completely sealed lipid bilayer membrane containing an encapsulated aqueous volume. Liposomes include non-classical forms in which anamycin may reside inside the bilayer, be part of the bilayer, and be absorbed onto the bilayer. Liposomes may be monolayer vesicles (having a single bilayer membrane) or multilayer vesicles (onion-like structures characterized by multiple membrane bilayers, each separated from the next by an aqueous layer). The bilayer consists of two lipid monolayers, each having a hydrophobic “tail” region and a hydrophilic “head” region. The structure of the membrane bilayer is such that the hydrophobic (nonpolar) “tail” of the lipid monolayer faces the center of the bilayer, and the hydrophilic “head” faces the aqueous phase.
[0039] The terms “preliposome-lyophilizate” and “preliposomal lyophilizate” refer to non-aqueous substances that form liposomes upon the addition of an aqueous solution. In some embodiments, this non-aqueous substance is a dry (non-liquid, non-gel) substance. Lyophilizates are widely used to include dry residues of sublimation of a freeze-liquid from a non-volatile substance, residues of roto evaporation and similar procedures, and dry compositions that produce liposomes (with or without stirring) upon the addition of an aqueous phase. It should be particularly understood that “preliposome-lyophilizate” is not in liposome form after lyophilization.
[0040] The term "lipid" refers to any of the class of pharmaceutically acceptable organic compounds that are fatty acids or their derivatives. In some embodiments, lipids are phospholipids such as phosphatidylcholine, including DMPC and DPMG, but may also include other lipids such as egg phosphatidylethanolamine.
[0041] "Nonionic surfactants" refer to pharmaceutically acceptable surfactants having a covalently bonded oxygen-containing hydrophilic group, which is bonded to a hydrophobic parent structure. Suitable nonionic surfactants include: ethoxylates, fatty alcohol ethoxylates, alkylphenol ethoxylates, fatty acid ethoxylates, ethoxylated fatty acid esters and oils, ethoxylated amines, fatty acid amides, terminally blocked ethoxylates, poloxamers, fatty acid esters of polyhydroxy compounds, fatty acid esters of glycerol, and fatty acid esters of sorbitol. In some embodiments, the nonionic surfactant is a polysorbate-type surfactant formed by ethoxylation of sorbitan followed by the addition of a carboxylic acid. In some embodiments, the nonionic surfactant includes polyoxyethylene sorbitan monolaurate (Polysorbate 20) and polyethoxylated sorbitan monooleic acid (Polysorbate 80).
[0042] "Polysorbate 20" refers to a commercially available nonionic surfactant (ICI Americas Inc.) consisting of a mixture of common sorbitan sugars linked to polyoxyethylene chains of varying lengths. These polyoxyethylene sugars are also linked to fatty acids. The trade name of this substance is Tween® 20, and its composition is polyoxyethylene sorbitan monolaurate (MW approximately 1300). In the case of polysorbate 20 shown below, w + x + y + z = 20. [ka]
[0043] The term "pharmaceutically acceptable acid" refers to any organic and inorganic acid known in the art to be well tolerable and suitable for administration to human patients. Examples of such salts include: 1-hydroxy-2-naphthoic acid, 2,2-dichloroacetic acid, 2-hydroxyethanesulfonic acid, 2-oxoglutaric acid, 4-acetamidobenzoic acid, 4-aminosalicylic acid, acetic acid, adipic acid, ascorbic acid (L), aspartic acid (L), benzenesulfonic acid, benzoic acid, camphoric acid (+), camphor-10-sulfonic acid (+), capric acid (decanoic acid), caproic acid (hexanoic acid), caprylic acid (octanoic acid), carbonic acid, cinnamic acid, citric acid, cyclamic acid, dodecyl sulfate, ethane-1,2-disulfonic acid, ethanesulfonic acid, formic acid, fumaric acid, galactaric acid, gentisic acid, glucohep Tonic acid (D), gluconic acid (D), glucuronic acid (D), glutamic acid, glutaric acid, glycerophosphate, glycolic acid, hippuric acid, hydrobromic acid, hydrochloric acid, isobutyric acid, lactic acid (DL), lactobionic acid, lauric acid, maleic acid, malic acid (-L), malonic acid, mandelic acid (DL), methanesulfonic acid, naphthalene-1,5-disulfonic acid, naphthalene-2-sulfonic acid, nicotinic acid, nitric acid, oleic acid, oxalic acid, palmitic acid, pamoic acid, phosphoric acid, propionic acid, pyroglutamic acid (-L), salicylic acid, sebacic acid, stearic acid, succinic acid, sulfuric acid, tartaric acid (+L), thiocyanic acid, toluenesulfonic acid (p), undecylenic acid. Hydrochloric acid and sulfuric acid are listed as pharmaceutically acceptable acids.
[0044] Where used herein, the term “disease” is intended to be generally synonymous with and interchangeable with the terms “disorder,” “syndrome,” and “condition” (medical condition), all of which reflect an abnormal condition of the body or part thereof of a person or animal that impairs normal function, typically manifests with characteristic signs and symptoms, and reduces the lifespan or quality of life of the person or animal.
[0045] The term "patient" is generally synonymous with the term "subject" and includes all mammals, including humans. Preferably, the patient is human.
[0046] The phrase "therapeutically effective" is intended to limit the amount of active ingredient used to treat a disease or disorder or to achieve an effect on a clinical endpoint.
[0047] The term "therapeutably acceptable" refers to a compound (or salt, prodrug, tautomer, zwitterionic form, etc.) that is suitable for use in contact with patient tissue without causing excessive toxicity, irritation, or allergic reactions, is commensurate with a reasonable benefit / risk ratio, and is effective for its intended use.
[0048] In certain embodiments, references to “treating” or “treating” an object at risk of developing a disease or progressing to a more severe stage of the disease are intended to include prevention. For example, disease prevention may not mean the complete cessation of all effects associated with the disease at any level, but rather the prevention of symptoms of the disease up to a clinically significant or detectable level. Disease prevention may also mean the prevention of the disease progressing to a later stage.
[0049] The term “combination therapy” means the administration of two or more therapeutic agents to treat a medical condition or disorder. Such administrations include the co-administration of these therapeutic agents substantially simultaneously (for example, in a single capsule containing the active ingredients in a fixed ratio, or in multiple separate capsules for each active ingredient). In addition, such administrations also include the sequential use of each type of therapeutic agent. In any case, the treatment regimen will result in the beneficial effect of the combination of drugs in treating the condition or disorder described herein.
[0050] When combination therapy is administered "simultaneously," this includes treatment of the patient with a single dosage form (e.g., a tablet) containing both liposomal anamycin and the additional anticancer agent, as well as simultaneous administration of separate dosage forms, each containing one of the combination partners separately.
[0051] When combination therapy is administered "consecutively" or "separately," this includes treatment of a patient with the first dosage form of liposomal anamycin, followed by treatment of the same patient with the second dosage form containing an additional anticancer agent, or treatment of a patient with a single dosage form containing a specific anticancer agent, followed by treatment of the same patient with another dosage form containing liposomal anamycin. The interval between consecutive or separate doses can be determined by those skilled in the art with reference to the information herein.
[0052] Further embodiments include those disclosed in the following embodiments, which should not be construed as limiting. [Examples]
[0053] Example 1: Determination of pharmacokinetics and in vivo distribution of L-anamycin in female CD-1 mice. The pharmacokinetics and biodistribution of L-anamycin were investigated in female CD-1 mice after a single bolus injection of 4 mg / kg of L-anamycin. Animals were euthanized at several time points (n=5-8), followed by blood collection and dissection of the following organs: lungs, kidneys, liver, heart, brain, pancreas, and spleen. Mouse tissues were homogenized in methanol at 100 mg / mL. The tissue homogenates were then extracted by protein precipitation using 10 times the volume of acetonitrile w / 0.1% formic acid. Anamycin concentrations in plasma and tissue lysates were measured using LC / MS / MS. Samples were analyzed using a Waters QuattroPremier XE mass spectrometer and a Waters Acquity Classic UPLC. Detection was performed by electrospray negative ionization. Anamycin was separated by chromatography using a Phenomenex Luna phenylhexyl 3 μm 2.1 × 150 mm column with a linear gradient of water and acetonitrile (both containing 0.1% formic acid).
[0054] Figure 1 shows plasma and lung levels of anamycin at various time points after L-anamycin administration. The levels of the drug detected in the lungs and plasma one minute after injection were 138.7 μg / g and 15.86 μg / ml, respectively, corresponding to 216 μM and 25 μM, which was an unexpected finding. Throughout this study, significantly higher levels of anamycin were detected in the lungs compared to the plasma, with the highest ratio being 28.7 recorded 30 minutes after drug administration. Figure 1 shows an analysis of the PK and biodistribution of anamycin after a single intravenous administration of the drug.
[0055] Example 2: Efficacy of L-anamycin in a CT26 model of syngeneic "lung metastasis" of colon cancer. The efficacy of L-anamycin (L-Ann) was tested in Balb / c mice that had been intravenously injected with CT26 cells. Female Balb / c mice (8 weeks old) were given 2.5 × 10⁶ cells in 200 μl of PBS. 5Individual CT26WT-Luc-neo cells were intravenously injected. Tumor progression was monitored using BLI. Bioluminescence signals were acquired 10 minutes after subcutaneous administration of D-luciferin (100 μl at 15 mg / ml) using an IVIS Lumina 100 Imager (FOV=25, F1, binning 8, auto-exposure time). BLI parameters were not changed throughout this study. Images were analyzed using Living Image software, version 4.5.5. For quantification, ROIs were drawn across the entire mouse, and normalized radiance units (p / sec / cm) were used. 2 I used / sr).
[0056] On day 17, mice were randomly divided into three groups (n=11-12) and administered either Vehicle or L-Ann intravenously once a week at doses of 2 or 4 mg / kg (4 and 8 ml / kg, respectively) (a total of 5 doses). The injection dose was individually adjusted to the mouse's body weight. Tumor growth was monitored weekly using BLI imaging. For sequential BLI analysis, the maximum recorded BLI signal was assumed for mice that died. The distribution of signals between groups was analyzed using the Kruskal-Wallis test.
[0057] The tumor progression and survival of CT26 tumor-bearing mice treated with L-anamycin are shown in Figures 2-4. Based on bioluminescence imaging (BLI), the mice primarily exhibited lung-localized tumors, as shown in Figures 2-4. Dose-dependent delays in tumor progression were observed in mice treated with L-Ann at 2 and 4 mg / kg. Mice on the L-Ann 4 mg / kg schedule showed sustained tumor regression. Figures 2-4 and 5 represent long-term analyses of BLI signals for mice treated with L-Ann at two different dose levels: 2 and 4 mg / kg. Figure 6 shows the distribution of BLI at 58 days post-tumor transplantation. Inhibition of tumor growth clearly led to improved mouse survival, with a median survival of 46 days for vehicles-treated mice. Neither the 2 mg / kg dose group had yet reached a mortality level that would allow for the establishment of a median survival parameter. Figure 7 shows the survival rates of CT26 tumor-bearing mice treated with L-anamycin, based on Kaplan-Mayer analysis. Notably, no deaths were reported in the 4 mg / kg treated group up to day 58 of this study. In this experiment, the median survival reached 117.5 days.
[0058] Example 3: Efficacy of L-anamycin in a 4T1 model of syngeneic "lung metastasis" in triple-negative breast cancer. The efficacy of L-anamycin (L-Ann) was tested in Balb / c mice that had been intravenously injected with 4T1 cells. Female Balb / c mice were given 2 × 10⁶ cells. 4 Four T1-Luc cells were intravenously injected. Tumor growth was monitored weekly using BLI imaging. Bioluminescence signals were acquired 10 minutes after subcutaneous administration of D-luciferin (100 μl at 15 mg / ml) using an IVIS Lumina 100 Imager (FOV=25, F1, binning 8, auto-exposure time). BLI parameters were not changed throughout this study. Images were analyzed using Living Image software, version 4.5.5. For quantification, ROIs were drawn across the entire mouse, and normalized radiance units (p / sec / cm) were used. 2 I used / sr).
[0059] The treatment, initiated 8 days after vaccination, consisted of six weekly injections of L-Ann at 4 mg / kg. On day 8, mice were randomly divided into two groups (n=10) and administered either a vehicle (8 ml / kg saline) or L-Ann at 4 mg / kg (8 ml / kg). For continuous BLI analysis, the maximum recorded BLI signal was assumed for mice that died. Survival curves were analyzed using Kaplan-Mayer analysis. P-values were calculated using the Log-rank (Mantel-Cox) test in GraphPad Prism.
[0060] Based on bioluminescence imaging (BLI), mice primarily exhibited lung-localized tumors (Figure 8). A clear delay in tumor progression was observed in mice treated with L-Ann. The treatment group showed significantly lower bioluminescence signals compared to animals treated with the vehicle as early as 8 days after the first dose (p=0.046), and this trend continued throughout the study (Figures 8 and 9). Importantly, the reduction in tumor growth correlated with improved survival; the median survival rate was 23 days in the vehicle group, extended to 53 days in L-Ann-treated mice (survival rate 2.26, p<0.0001, Figure 10).
[0061] Example 4: Efficacy of L-anamycin in the MCA205 RFP sarcoma model The efficacy of L-anamycin (L-Ann) was tested in Balb / c mice intravenously injected with MCA205 cells. Female Balb / c mice were given 1 × 10⁶ doses. 5 Individual MCA205 cells were injected.
[0062] Treatment initiated four days after vaccination consisted of L-Ann at a dose of 4 mg / kg administered once a week by injection. On day 4, mice were randomly divided into two groups (n=10) and administered either a vehicle (8 ml / kg physiological saline) or L-Ann at a dose of 4 mg / kg (8 ml / kg). Survival curves were analyzed using Kaplan-Mayer analysis. P-values were calculated using the Log-rank (Mantel-Cox) test in GraphPad Prism.
[0063] A clear delay in tumor progression was observed in mice treated with L-Ann. Importantly, the reduction in tumor growth correlated with improved survival; the median survival rate was 21 days in the vehicle group, extended to 87.5 days in L-Ann-treated mice (417% survival rate (%) compared to controls, p<0.0001).
[0064] overview As shown herein, anamycin rapidly accumulates in the lungs, and CD-1 mice injected with a single bolus of L-anamycin at 4 mg / kg achieved high levels of anamycin in the lungs just 1 minute after injection. Throughout the study, significantly higher levels of anamycin were detected in the lungs compared to plasma, with the highest ratio recorded being 28.7 at 30 minutes post-administration. See Example 1 and Figure 1. Not only does anamycin accumulate in the lungs, but it also significantly reduces tumor growth and improves survival in three syngeneic "lung metastasis" mouse models of cancer, as further investigated in Example 2 (CT26 colon cancer), Example 3 (4T1 triple-negative breast cancer), and Example 4 (MCA205 sarcoma).
[0065] All references, patents, or applications (of the United States or other foreign countries) cited herein are incorporated herein by reference as if they were contained in their entirety. In the event of any conflict, the material literally disclosed herein shall prevail.
[0066] From the above description, those skilled in the art will readily be able to identify the essential features of the present invention and make various changes and modifications to the invention to adapt it to various uses and methods without departing from its spirit and scope.
Claims
1. A pharmaceutical composition comprising liposome anamycin for the treatment of metastatic cancer in the lung, The aforementioned metastatic cancer is a metastasis of a primary cancer selected from bladder cancer, breast cancer, colorectal cancer, head and neck cancer, kidney cancer, melanoma, pancreatic cancer, prostate cancer, sarcoma, and ovarian cancer. The liposome anamycin is provided as a pre-liposome lyophilized composition that is reconstituted into an aqueous liposome composition by hydration before administration. The aforementioned preliposome anamycin freeze-dried product is 1.8–2.2 wt% anamycin; 3.0–3.4 wt% polysorbate 20; and 94.4–95.2 wt% of lipids selected from DMPC and DMPG. including, Pharmaceutical composition.
2. The pharmaceutical composition according to claim 1, wherein the metastatic cancer is a metastasis of a primary cancer selected from breast cancer, colon cancer, and sarcoma.
3. The pharmaceutical composition according to claim 2, wherein the primary cancer is breast cancer.
4. The pharmaceutical composition according to claim 2, wherein the primary cancer is colon cancer.
5. The pharmaceutical composition according to claim 2, wherein the primary cancer is a sarcoma.
6. A pharmaceutical composition according to any one of claims 1 to 5, further comprising an effective amount of at least one chemotherapeutic agent.
7. The aforementioned at least one chemotherapeutic agent is actinomycin, afatinib, alectinib, asparaginase, azacitidine, azathioprine, bicalutamide, bleomycin, bortezomib, camptothecin, carboplatin, capecitabine, cerutinib, cetuximab, cisplatin, chlorambucil, crizotinib, cyclophosphamide, cytarabine, daunorubicin, docetaxel, doxifluridine, doxorubicin, erlotinib, epirubicin, epotilon, etoposide, fludarabine, flutamine, fluorouracil, fostamatinib, gefitinib, gemcitabine, hydroxyurea, ibrutinib, idarubicin, ifosf The pharmaceutical composition according to claim 6, selected from amidopropyl bezole, imatinib, ipilimumab, irinotecan, lapatinib, letrozole, mechloretamine, mercaptopurine, methotrexate, mitomycin, mitoxantrone, nilotinib, octreotide, oxaliplatin, paclitaxel, palbociclib, panitumumab, pemetrexed, larcitrexed, selumetinib, sorafenib, sunitinib, tamoxifen, temozolomide, teniposide, thioguanine, topotecan, trastuzumab, tremelimumab, barrubicin, vemurafenib, vinblastine, vincristine, vindesine, vinorelbine, and combinations thereof.
8. The at least one chemotherapeutic agent is Cyclophosphamide, doxorubicin, and vincristine; Mitomycin, vindesine, and cisplatin; Cisplatin and vinorelbine; and Cisplatin, etoposide, and ifosfamide A pharmaceutical composition according to claim 6 or 7, comprising a combination selected from the above.
9. A pharmaceutical composition according to any one of claims 1 to 8, further comprising an effective amount of at least one immunotherapy agent.
10. The liposome anamycin is a pharmaceutical composition according to any one of claims 1 to 9, comprising anamycin, one or more lipids, and one or more nonionic surfactants.
11. The pharmaceutical composition according to claim 10, wherein the lipid comprises dimyristoyl phosphatidylcholine (DMPC) and dimyristoyl phosphatidylglycerol (DMPG).
12. The pharmaceutical composition according to claim 10 or 11, wherein the nonionic surfactant includes a polysorbate-type surfactant formed by ethoxylation of sorbitan followed by the addition of a carboxylic acid.
13. The pharmaceutical composition according to claim 12, wherein the nonionic surfactant comprises polyoxyethylene sorbitan monolaurate.
14. The pharmaceutical composition according to claim 1, wherein the DMPC is 65.3 to 67.3 wt% and the DMPG is 27.1 to 29.9 wt%.
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