EP4704827A1 - A pharmaceutical composition comprising 17-aag and staurosporine for use in the prevention or treatment of cancer and diseases resulting from excessive cell proliferation and a polymer- lipid nanoparticle containing the composition - Google Patents
A pharmaceutical composition comprising 17-aag and staurosporine for use in the prevention or treatment of cancer and diseases resulting from excessive cell proliferation and a polymer- lipid nanoparticle containing the compositionInfo
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- EP4704827A1 EP4704827A1 EP24741024.4A EP24741024A EP4704827A1 EP 4704827 A1 EP4704827 A1 EP 4704827A1 EP 24741024 A EP24741024 A EP 24741024A EP 4704827 A1 EP4704827 A1 EP 4704827A1
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- Prior art keywords
- staurosporine
- aag
- 17aag
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- A61K31/395—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
- A61K31/55—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having seven-membered rings, e.g. azelastine, pentylenetetrazole
- A61K31/553—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having seven-membered rings, e.g. azelastine, pentylenetetrazole having at least one nitrogen and one oxygen as ring hetero atoms, e.g. loxapine, staurosporine
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- A61K9/50—Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals
- A61K9/51—Nanocapsules; Nanoparticles
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- A61K9/50—Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals
- A61K9/51—Nanocapsules; Nanoparticles
- A61K9/5107—Excipients; Inactive ingredients
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- A61K9/5153—Polyesters, e.g. poly(lactide-co-glycolide)
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Abstract
The description of the invention discloses a composition comprising 17- AAG and staurosporine for use in the treatment of melanoma, non-small cell lung cancer, pancreatic cancer, mammary gland tumours or gliomas, and a stable polymer-lipid nanoparticle for drug binding and delivery, consisting of a core containing polylactic-co-glycolic acid (PLGA) and polyvinyl alcohol (PVA) and a core envelope containing a mixture of lipids: 1,2-dipalmitoyl-sn-glycero-3-phosphocholine (DDPC), cholesterol and the ammonium salt 1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N - [amino(polyethylene glycol)-2000 (DSPE-PEG(2000)NH2J.
Description
A PHARMACEUTICAL COMPOSITION COMPRISING 17-AAG AND STAUROSPORINE FOR USE IN THE PREVENTION OR TREATMENT OF CANCER AND DISEASES RESULTING FROM EXCESSIVE CELL PROLIFERATION AND A POLYMERLIPID NANOPARTICLE CONTAINING THE COMPOSITION
The object of the invention is a pharmaceutical composition for the prevention or treatment of cancer and diseases resulting from excessive cell proliferation, in particular melanoma, non-small cell carcinoma, lung cancer, pancreatic cancer, mammary gland tumours or gliomas, and a nanoparticle containing the composition.
Cancer treatment can be local or systemic. Local treatment usually consists of removing the tumour or using radiotherapy. Systemic treatment affects other cells in the body in addition to the tumour cells. Such methods include chemotherapy, hormone therapy or targeted treatment, which involves the administration of intravenous or oral drugs that are tailored to the progression of the disease. Other methods of cancer treatment are also known from the state of the art.
From the description of the invention US2004110662A1 - the administration of heat shock protein inhibitors and cytotoxic agents in succession is known.
From the description of W02021007512A1 , the administration of an effective amount of a platinum-based chemotherapeutic agent in combination with a microtubule-associated serine/threonine protein kinase (MAST) inhibitor or a glucocorticoid receptor-binding agent or an hsp90- binding agent is known.
Description W02009009067A - discloses the encapsulation of 17AAG or 17DMAG in PEG-PLA micelles and their use in combination with other active substances, such as anticancer or cytotoxic substances.
The essence of the pharmaceutical composition solution according to the invention is a composition comprising 17-AAG (tanespimycin) at a
concentration of not less than 0.31 nM and staurosporine at a concentration of not less than 0.031 nM for use in the treatment of melanoma, non-small cell lung cancer, pancreatic cancer, mammary gland tumours or gliomas.
Favourably, the ratio of 17-AAG to staurosporine concentrations is between 1/100 and 1/1.
The essence of the solution according to the invention for the polymer-lipid nanoparticle is that the carrier consisting of a core containing polylactic-co-glycolic acid (PLGA) in an amount of 16.1 to 30.3 wt% and polyvinyl alcohol (PVA) in an amount of 60.6 to 75.5 wt%, and a core envelope, which is a mixture of lipids: 1 ,2-dipalmitoyl-sn-glycero-3- phosphocholine (DDPC) in an amount ranging from 3.66% to 12.6% by weight, cholesterol in an amount ranging from 1 .85 to 6.29% by weight and the ammonium salt of 1 ,2-distearoyl-sn-glycero-3-phosphoethanolamine-N -[amino(polyethylene glycol)-2000 (DSPE-PEG(2000)NH2] in an amount of 0.15 to 0.5% by weight contains a pharmaceutical composition comprising 17-AAG (tanespimycin) in a concentration of not less than 0.31 nM and staurosporine at a concentration of not less than 0.031 nM.
Favourably, the ratio of 17-AAG to staurosporine concentrations is between 100/1 and 1/1.
Advantageously, PLGA is a 50:50 copolymer with an Mw of 24 000 - 38 000 g/mol.
Advantageously, PVA has a mass Mw of 30 000 - 70 000 g/mol.
The main advantage of the solutions according to the inventions is that the composition used has a dual action, leading to the arrest of growth or death of the cell by synergistically combining two mechanisms that would generally not be targeted by a single inhibitor, leading to the arrest of growth or death of the cancer cell. The synergism occurring with staurosporine and 17-AAG allows the use of much lower doses of the substances and reduced
side effects of their use. The administration of the therapeutic composition in the form of a nanocapsule enables its use in molecularly targeted therapy. This favourably influences the effect of the therapy, significantly increasing its efficacy and minimising the negative impact on other cells and negative effects occurring in classical anti-cancer therapies. The applied nanoparticle allows loading of the pharmaceutical composition at a level of 32% to 80%, long-term release of drug combinations and prevention of excessive drug leakage and carrier aggregation in the presence of plasma proteins. In addition, it allows a range of 17AAG to Staurosporine concentration ratios from 0.62 to 9.5. The applied lipid bilayer coating with polyethyleneglycol prevents nanoparticle aggregation in the presence of proteins and ensures nanoparticle stability at 37°C over 96h. The size of the PLGA/PVA/LIPO nanoparticles, ranging from 209 nm to 388 nm, ensures selective, passive transport of the drug into tumour tissues due to the effect of increased permeability and EPR retention. In addition, the additional modification of polyethylene glycol with amine groups giving the nanoparticles a low positive potential of 6.5 mV to 9.5 mV allows for increased anti-tumour efficacy, better accumulation and penetration of the carrier in tumour tissues and better cellular uptake compared to inert and negatively charged nanoparticles (https://doi.Org/10.1016/j.nantod.2016.04.008). With such a developed structure, the developed nanoparticles have a small diameter and low PDI polydispersity index.
The solutions according to the inventions are illustrated by the following manufacturing examples and drawings, where: Fig.1a - Growth kinetics of human lung cancer tumours LUDLU-1 in mice treated with Staurosporine, 17AAG and their combination, Fig. 1b - Fa-CI plot, Fig. 2a - Growth kinetics of human lung cancer tumours SK-MES-1 in mice treated with Staurosporine, Fig. 2b - Fa-CI plot, Fig. 3a - Growth kinetics of human lung cancer tumours NCI-H520 in mice treated with Staurosporine, Fig. 3b - Fa- CI plot, Fig. 4a - Growth kinetics of human lung cancer tumours NCI-H226
in mice treated with Staurosporine, Fig. 4b - Fa-CI plot, Fig. 5a - Growth kinetics of human lung cancer tumours NCI-H226 in mice treated with Staurosporine, Fig. 5b - Fa-CI plot, Fig. 6a - Growth kinetics of human lung cancer tumours SW1990 in mice treated with Staurosporine, Fig. 6b - Fa-CI plot, Fig.7a - Growth kinetics of A375 human lung cancer tumours in Staurosporine-treated mice, Fig. 7b - Fa-CI plot, Fig. 8a - Growth kinetics of BxPC3 human lung cancer tumours in Staurosporine-treated mice, Fig. 8b - Fa-CI plot, Fig. 9a - Growth kinetics of NCI-H1299 human lung cancer tumours in Staurosporine-treated mice, Fig. 9b - Fa-CI plot, 10a - Growth kinetics of human lung cancer tumours NCI-H1975 in mice treated with Staurosporine, Fig. 10b - Fa-CI plot, Fig. 11a - Growth kinetics of human lung cancer tumours LN229 in mice treated with Staurosporine, Fig. 11 b - Fa-CI plot, Fig. 12 - Example of hydrodynamic diameter distribution of nanoCombo 1 G nanoparticles measured by dynamic light scattering, Fig.13 Example distribution of hydrodynamic diameters of nanoCombo 3G nanoparticles measured by dynamic light scattering, Fig. 14 - Example distribution of hydrodynamic diameters of nanoCombo 4T nanoparticles measured by dynamic light scattering, Fig. 15A, C, E - Growth kinetics of 8MGBA human lung cancer tumours in mice treated with Staurosporine for different nanoparticles, Fig. 16A, C, E - Growth kinetics of A172 human lung cancer tumours in mice treated with Staurosporine for different nanoparticles, Fig. 17A, C, E - Growth kinetics of HS683 human lung cancer tumours in mice treated with Staurosporine for different nanoparticles, Fig. 18A, C, E - Growth kinetics of human lung cancer tumours LN229 in mice treated with Staurosporine for different nanoparticles, Fig. 19A, C, E - Growth kinetics of human lung cancer tumours HS683 in mice treated with Staurosporine for different nanoparticles, Fig. 20A, C, E - Growth kinetics of human lung cancer tumours NCI-H226 in mice treated with Staurosporine for different nanoparticles, Fig. 21A, C, E - Growth kinetics of human lung cancer tumours LUDLU-1 in mice treated with Staurosporine for different nanoparticles, Fig. 22A, C, E - Growth kinetics of human lung cancer
tumours NCI-H520 in mice treated with Staurosporine for different nanoparticles.
Example 1
The assay used 17-AAG and Staurosporine, which were dissolved in 100% DMSO and stored as 50mM stock solutions at -80°C. Cell lines were used in the assay as shown in Table 1.
Table 1 List of cell lines detailing their origin
Cells were thawed from ampoules stored in liquid nitrogen and cultured in petri dishes in appropriate culture medium according to Table 2, in a humidified 5% CO2 atmosphere at 37°C. Cells were passaged twice weekly using EDTA-Trypsin solution, pH 8. Counted cells with a viability of at least 90% as assessed with Trypan-Blue solution were used for anti-proliferative assays.
Table 2 List of cell lines and their corresponding culture medium
Twenty-four hours before the addition of the test compounds/combinations, cells were seeded into 384-well plates at 50pL/well and a density of 103 cells/well, in the appropriate culture medium. After incubation overnight, cells were treated with different concentrations of compounds or combinations of compounds mixed at different molar ratios, as described in the tables summarising the individual results, with a dilution factor of 3.16x. Solutions of the compounds were diluted in the test medium - RPMI-1640 and Opti-MEM in a 1 :1 ratio, and the medium was supplemented with 2 mM glutamine and 5% fetal bovine serum FBS. After 72h, colourimetric assessment of cell growth was performed by SRB. Cells were fixed for 1h with cold 25% (w/v) trichloroacetic acid (TCA) solution, washed five times
with tap water, and stained with 0.4% (v/v) sulforhodamine B (SRB, solution in 1 % (v/v) acetic acid) for 30 min. Unbound dye was removed by washing the plates (4x) in 1 % (v/v) acetic acid, and protein-bound dye was extracted with 10 mM unbuffered Tris base and the optical density (A = 540 nm) was determined in a BioTek Synergy H4 Hybrid computer microplate reader (BioTek Instruments USA). The entire washing/staining procedure was performed using a BioTek EL406 washing station (BioTek Instruments USA). The raw absorbance results were analysed in Microsoft Excel software using the formula:
Where:
%Zahlnh - inhibition of proliferation
Am - absorbance of wells without cells (medium)
Ak - absorbance of control wells (cells treated with pure culture medium) Ap - absorbance of wells treated with compounds
The proliferation inhibition data were then used to calculate the IC50 - the concentration of the test compound that inhibits the proliferation of 50% of the tumour cell population, calculated using the GraphPadPrism 7.0 nonlinear model [Inhibitor] vs. response - Variable slope (four parameters). Each compound at the indicated concentrations was tested in triplicate in one experiment. Each experiment was repeated three times. Data analysis was supplemented with synergy assessment using CalcuSyn software. The results of these analyses are given as combination index (Cl) vs Fa (fraction affected - percentage of cells that responded to treatment with compounds/combinations). A Cl value below 0.8 indicates synergism, 0.8- 1 .2 an additive effect, above 1 .2 an antagonism.
Table 3a Inhibition of LUDLU-1 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 100/1 including standard deviation
Table 3b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 4A Inhibition of cell prophylation of the SK-MES-1 line for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 100/1 including standard deviation
Table 4b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 5a Inhibition of cell profiling of the NCI-H520 line for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 1/1 including standard deviation
Table 5b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 6a Inhibition of NCI-H226 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 1/1 including standard deviation
Table 6b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 7a Inhibition of cell profiling of SK-MEL3 lines for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 10/1 including standard deviation
Table 7b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 8a Inhibition of cell prophylation of line SW1990 for individual concentrations of 17AAG, Staurosporine and their combinations at 100/1 including standard deviation
Table 8b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 9a Inhibition of A375 cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at 100/1 including standard deviation
Table 9b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 10a Inhibition of BxPC3 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 100/1 including standard deviation
Table 10b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 11a Inhibition of cell profiling of NCI-H1299 lines for individual concentrations of 17AAG, Staurosporine and their combinations at 100/1 including standard deviation
Table 11b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 12a Inhibition of cell prophylation of line HCI-H1975 for individual concentrations of 17AAG, Staurosporine and their combinations at 100/1 including standard deviation
Table 12b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 13a Inhibition of LN229 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 13b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Example 2
Synthesis of nanoCombo nanoparticles
200 mg of PVA (Mw 30 000 - 70 000 g/mol), 80 mg of PLGA (50:50 copolymer Mw 24 000 - 38 000 g/mol) and 17AAG and Staurosporine were weighed according to Table 14. PVA was dissolved in 10 ml of PBS buffer pH 7.4 using ultrasound until the PVA crystals were completely dissolved, then left in the refrigerator overnight. PLGA, Staurosporine and 17AAG were dissolved in 5 ml of dichloromethane. This was cooled to 4°C. The dichloromethane solution with PLGA, Staurosporine and 17AAG was then added to a large glass vessel (50 ml bottle) followed by the PVA aqueous solution, again chilled in the fridge for 30 minutes. After this time, the whole mixture was stirred until an emulsion was obtained using an ultrasonic probe for 1 minute, amplitude 80%. The ultrasonic probe was immersed at the boundary between the two phases about 5 mm above the phase boundary. After sonification, a homogeneous emulsion was obtained. The emulsion was poured into a 50 ml crystalliser with a mixing element making sure that all the emulsion was transferred into the crystalliser. The bottle was washed with 2 ml of PBS 7.4 (the solution was placed in the crystalliser after washing). The whole was left on a magnetic stirrer for 4h (400 RPM, 37°C)
until the dichloromethane was completely evaporated. The solution was then made up to 15 mL with PBS buffer pH7.4. PLGA/PVA nanoparticles loaded with Staurosporine and 17AAG were added to a glass bottle with a stirring element followed by 200uL of liposomes (DPPC/Cholesterol/DSPE_PEG(2000)NH2 (1/0.5/0.04) 10mg/ml) synthesised in 0.9% NaCI for every 1 mL of polymeric nanoparticles. The sample was heated in a water bath for 2h, 60 °C, stirring with a magnetic stirrer with heating (400 RPM). It was then left in the refrigerator for 16h. Subsequently, the %EE encapsulation factor was determined by chromatography on a Sephadex G-25 packed column (described below). The rest of the nanoparticles were purified using a high-speed centrifuge (15,000 RPM, 4 min), washing twice with PBS 7.4 buffer. After each addition of PBS 7.4, the nanoparticles were redispersed using ultrasound for 5 seconds. After the last centrifugation, non-ionic surfactant (40% solution) was added at a volume ratio of 0.02:1 (surfactant:nanoparticles) or glucose until a concentration of 2 mg/ml was reached (according to Table 1 ). The nanoparticles were then sterilised using sterile PTFE-filled hydrophilic syringe filters with a pore diameter of 0.45 pm and size and PDI were determined. The data are shown in Figs. 12-14.
The concentration of loaded drugs and %EE were determined using:
1 UV-Vis spectroscopy against a calibration curve at 372 nm and 333 nm using the principle of absorbance additivity. The nanoparticle sample was dissolved in DMSO with hydrochloric acid according to the ratio: 50uL of sample, 50uL of 0.3M HCI, 50 uL of PBS 7.4 and 850uL of DMSO and a spectrum was taken.
2. chromatographic method, purifying 0.5ml sample of final nanoparticles Purification was performed on Sephadex G-25 columns with drug separation. After depositing a 0.5ml sample of unpurified nanoparticles on the column, 8 fractions of 1 ml were collected with PBS buffer pH 7.4. The content of each fraction was controlled by UV-Vis spectroscopy. Fractions
4 - 7 containing nanoparticles were pooled together and drug concentrations on the nanoparticles were determined by UV-Vis spectroscopy against a calibration curve using the principle of additivity of absorbance by dissolving the sample from fractions 4-7 in DMSO with hydrochloric acid according to the ratio: 50uL of sample, 50uL of 0.3M HCI, 50 uL of PBS 7.4 and 850uL of DMSO. Subsequently, unbound 17AAG from the column was eluted from the column by washing the chromatography column with 25ml of PBS buffer pH 7.4 and the concentration of unbound 17AAG relative to the 17AAG calibration curve in PBS buffer at 333nm was determined. Unbound Staurosporine was then eluted from the column by washing the column with 25ml of EthanokWater solution (1 :1). The concentration of free Staurosporine was determined by UV-Vis spectroscopy against a calibration curve at 372, 294 and 353 nm.
The post-column concentration of the drugs in the liposomes is summarised in Table 14.
Table 14. nanoCombo nanoparticle synthesis parameters with values for drug encapsulation rates and drug concentrations in the final nanoparticles.
Example III
The assay used 17-AAG/ Tanespimycin and Staurosporine, and the nanoparticles nanoCombo 1 G, nanoCombo 3G, nanoCombo 4T, nanoStauro G, nanoStauro T, nanoEmpty G, nanoEmpty T which were dissolved in 100% DMSO and stored as 50mM stock solutions at -80°C. Cell lines were used in the assay as shown in Table 15.
Table 15 List of cell lines by origin
Cells were thawed from ampoules stored in liquid nitrogen and cultured in petri dishes in the appropriate culture medium according to Table 16, in a humidified 5% CO2 atmosphere at 37°C. Cells were passaged twice weekly
using EDTA-Trypsin solution, pH 8, as a separating agent. Counted cells with a viability of at least 90% as assessed with Trypan-Blue solution were used for anti-proliferation assays.
Table 16 List of cell lines with corresponding culture medium
Twenty-four hours before the addition of the test compounds/combinations, cells were seeded into 384-well plates at 50pL/well and a density of 103 cells/well, in the appropriate culture medium. After incubation overnight, cells were treated with different concentrations of compounds or combinations of compounds mixed at different molar ratios, as described in the respective tables summarising the individual results, with a dilution factor of 3.16x. Solutions of the compounds were diluted in the test medium - RPMI-1640 and Opti-MEM in a 1 :1 ratio, and the medium was supplemented with 2 mM glutamine and 5% fetal bovine serum FBS.
After 72h, colourimetric assessment of cell growth was performed by SRB. Cells were fixed for 1 h with cold 25% (w/v) trichloroacetic acid (TCA) solution, washed five times with tap water, and stained with 0.4% (v/v) sulforhodamine B (SRB, solution in 1 % (v/v) acetic acid) for 30 min. Unbound dye was removed by washing the plates (4x) in 1 % (v/v) acetic acid, and protein-bound dye was extracted with 10 mM unbuffered Tris base and the optical density (A = 540 nm) was determined in a BioTek Synergy H4 Hybrid computer microplate reader (BioTek Instruments USA). The entire washing/staining procedure was performed using a BioTek EL406 washing station (BioTek Instruments USA). The raw absorbance results were analysed in Microsoft Excel software using the formula:
Where:
%Zahlnh - inhibition of proliferation
Am - absorbance of wells without cells (medium)
Ak - absorbance of control wells (cells treated with pure culture medium)
Ap - absorbance of wells treated with compounds
The proliferation inhibition data were then used to calculate the IC50 - the concentration of the test compound that inhibits the proliferation of 50% of the tumour cell population, calculated using the GraphPadPrism 7.0 nonlinear model [Inhibitor] vs. response - Variable slope (four parameters). Each compound at the indicated concentrations was tested in triplicate in one experiment. Each experiment was repeated three times. Data analysis was supplemented with synergy assessment using CalcuSyn software. The results of these analyses are given as combination index (Cl) vs Fa (percentage of cells that responded to treatment with
compounds/combinations). A Cl value below 0.8 indicates synergism, 0.8- 1.2 an additive effect, above 1.2 an antagonism.
Table 17a Inhibition of cell profiling of line 8MGBA for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 17b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 18a Inhibition of cell profiling of line 8MGBA for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 18b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 19a Inhibition of cell profiling of line 8MGBA for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 19b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 20a Inhibition of cell profiling of A172 lines for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 20b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 21a Inhibition of cell profiling of line 8MGBA for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 21b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 22a Inhibition of cell profiling of line 5MGBA for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 22b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 23a Inhibition of Hs683 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 23b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 24a Inhibition of cell prophylation of line Hs683 for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 24b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 25a Inhibition of Hs683 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 25b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 26a Inhibition of LN229 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 26b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 27a Inhibition of LN229 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 27b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 28a Inhibition of LN229 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 28b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 29a Inhibition of LUDLU-1 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 29b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 30a Inhibition of LUDLU-1 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 30b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 31a Inhibition of LUDLU-1 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 31b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 32a Inhibition of HCI-H226 line cell profiling for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 32b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 33a Inhibition of cell prophylation of HCI-H226 lines for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 33b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 34a Inhibition of cell prophylation of HCI-H226 lines for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 34b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 35a Inhibition of cell prophylation of HCI-H226 lines for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 35b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 36a Inhibition of cell prophylation of HCI-H226 lines for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 36b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 37a Inhibition of cell prophylation of HCI-H226 lines for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 37b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 38a Inhibition of cell profiling of SKMES-1 line for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 38b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 39a Inhibition of cell profiling of SKMES-1 line for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 39b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
Table 40a Inhibition of cell profiling of SKMES-1 line for individual concentrations of 17AAG, Staurosporine and their combinations at a ratio of 5/1 including standard deviation
Table 40b Values of affected fractions and corresponding combination index obtained using CalcuSyn software
The nanoCombo 1 G nanoparticle showed synergistic effects (much of the Cl vs Fa curve was below 0.8) on 7 of 8 cell lines after 72 h of treatment (most pronounced on NCI-H226). After 24 h, NP also presented good results, especially on NCI-H226 and NCI-H520 (Cl analysis after 25 h was not possible due to low 17-AAG activity).
The nanoCombo 3G nanoparticle showed a synergistic effect (much of the Cl vs Fa curve was below 0.8) on 6 of 8 cell lines after 72 h of treatment (most pronounced on NCI-H226 and NCI-H520). After 24 h, NP presented good results on a limited number of cell lines (8MGBA and NCI-H226).
The nanoparticle, named nanoCombo 4T, showed a synergistic effect (much of the Cl vs Fa curve was below 0.8) on 3 of 8 cell lines after 72 h of treatment (NCI-H226, SKMES-1 and NCI-H520). After 24 h, NP presented good results on a limited number of cell lines (NCI-H226).
Claims
Patent claims
1 A composition consisting of 17-AAG (tanespimycin) at a concentration of not less than 0.31 nM and staurosporine at a concentration of not less than 0.031 nM for the treatment of melanoma, non-small cell lung cancer, pancreatic cancer, mammary gland tumours or gliomas.
2. The composition according to claim. 2, characterised in that the concentration ratio of 17-AAG to staurosporine is in the range from 100/1 to 1/1.
3. A stable polymer-lipid nanoparticle for the binding and delivery of drugs, particularly those with anticancer properties, characterised in that it is composed of a core containing polylactic-co-glycolic acid (PLGA) in an amount of 16.1 to 30.3% by weight and polyvinyl alcohol (PVA) in an amount of 60.6 to 75.5% by weight, and a core envelope containing a mixture of lipids: 1 ,2-dipalmitoyl-sn-glycero-3-phosphocholine (DDPC) in an amount ranging from 3.66% to 12.6% by weight, cholesterol in an amount ranging from 1.85 to 6.29% by weight and the ammonium salt of 1 ,2-distearoyl-sn- glycero-3-phosphoethanolamine-N -[amino(polyethylene glycol)-2000 (DSPE-PEG(2000)NH2] in an amount of 0.15 to 0.5% by weight contains a pharmaceutical composition comprising 17-AAG (tanespimycin) in a concentration of not less than 0.31 nM and staurosporine at a concentration of not less than 0.031 nM.
4. The nanoparticle according to claim 3, characterised in that the concentration ratio of 17-AAG to staurosporine is in the range from 100/1 to 1/1.
5. The nanoparticle according to claim 3, characterised in that the PLGA is a 50:50 copolymer with an Mw of 24 000 - 38 000 g/mol.
6 The nanoparticle according to claim 3, characterised in that the PVA has a mass Mw of 30 000 - 70 000 g/mol.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PL444725A PL444725A1 (en) | 2023-05-03 | 2023-05-03 | A pharmaceutical composition used in the prevention or treatment of neoplastic diseases and diseases resulting from excessive cell proliferation and a polymer-lipid nanoparticle containing the composition |
| PCT/PL2024/000021 WO2024228630A1 (en) | 2023-05-03 | 2024-05-03 | A pharmaceutical composition comprising 17-aag and staurosporine for use in the prevention or treatment of cancer and diseases resulting from excessive cell proliferation and a polymer- lipid nanoparticle containing the composition |
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| Publication Number | Publication Date |
|---|---|
| EP4704827A1 true EP4704827A1 (en) | 2026-03-11 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP24741024.4A Pending EP4704827A1 (en) | 2023-05-03 | 2024-05-03 | A pharmaceutical composition comprising 17-aag and staurosporine for use in the prevention or treatment of cancer and diseases resulting from excessive cell proliferation and a polymer- lipid nanoparticle containing the composition |
Country Status (5)
| Country | Link |
|---|---|
| EP (1) | EP4704827A1 (en) |
| CN (1) | CN121419768A (en) |
| IL (1) | IL324419A (en) |
| PL (1) | PL444725A1 (en) |
| WO (1) | WO2024228630A1 (en) |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2009009067A2 (en) * | 2007-07-09 | 2009-01-15 | Kwon Glen S | Micelle encapsulation of theropeutic agents |
| US10729692B2 (en) * | 2017-02-26 | 2020-08-04 | Institute For Cancer Research | Dual inhibition of CDK and HSP90 destabilize HIF1alpha and synergistically induces cancer cell death |
-
2023
- 2023-05-03 PL PL444725A patent/PL444725A1/en unknown
-
2024
- 2024-05-03 EP EP24741024.4A patent/EP4704827A1/en active Pending
- 2024-05-03 WO PCT/PL2024/000021 patent/WO2024228630A1/en not_active Ceased
- 2024-05-03 IL IL324419A patent/IL324419A/en unknown
- 2024-05-03 CN CN202480044702.1A patent/CN121419768A/en active Pending
Also Published As
| Publication number | Publication date |
|---|---|
| CN121419768A (en) | 2026-01-27 |
| IL324419A (en) | 2026-01-01 |
| PL444725A1 (en) | 2024-11-04 |
| WO2024228630A1 (en) | 2024-11-07 |
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