Local delivery of antitumor particles combined with systemic delivery of immunotherapeutic agents for the treatment of cancer
Combination therapy, which combines local and systemic administration of antitumor particles and immunotherapeutic agents, addresses the problem of ineffectiveness in existing treatments and achieves more effective cancer treatment.
Patent Information
- Application Number
- JP2020517194
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-10-03
- Filing Date
- 2018-10-03
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2038-10-03
AI Technical Summary
Existing cancer treatments often fail to effectively combine local and systemic therapies, resulting in poor treatment outcomes.
Combination therapy involving local administration of antitumor particles (such as paclitaxel particles) and systemic administration of immunotherapeutic agents, with the antitumor particles having an average particle size of 0.1 to 5 micrometers, and local and systemic administration can be carried out in any order or simultaneously.
It enhances the therapeutic effect on cancer, stimulates the immune response, and improves the effectiveness and breadth of treatment.
Smart Images

Figure 0007792750000039 
Figure 0007792750000040 
Figure 0007792750000041
Abstract
Description
[Technical Field]
[0001] cross reference This application claims priority to U.S. Provisional Patent Application No. 62 / 567,445, filed October 3, 2017, which is incorporated by reference herein in its entirety. Summary of the Invention
[0002] The present invention provides a method for treating cancer through the use of combined local and systemic therapy, i.e., the local administration of antitumor drug particles (chemotherapeutic particles), such as taxane particles, directly to the tumor as an adjunct to the systemic administration of immunotherapeutic agents.
[0003] In one aspect of the present invention, a method for treating cancer in a subject is disclosed, the method comprising: (a) locally administering a first composition comprising anti-tumor particles to an area of the subject affected by a skin tumor; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer. The anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. In some embodiments, the skin tumor is a benign skin tumor, and the subject has cancer in an area of the body other than the skin. In other embodiments, the skin tumor is a malignant skin tumor (malignant skin tumor). In some embodiments, the subject has cancer in another area of the body. In some embodiments, the anti-tumor particles comprise taxane particles. In some embodiments, the taxane particles comprise paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof.
[0004] In another aspect of the present invention, a method for treating cancer in a subject is disclosed, the method comprising: (a) administering to the subject by pulmonary administration a first composition comprising anti-tumor particles; and (b) systemically administering to the subject a second composition comprising an immunotherapeutic agent, thereby treating the cancer, wherein the anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, the subject has a pulmonary disease, and steps (a) and (b) can be performed in any order or simultaneously. In some embodiments, the pulmonary disease is non-cancerous, and the subject has cancer in a body region other than the lung. In some embodiments, the non-cancerous pulmonary disease is restrictive or obstructive pulmonary disease. In other embodiments, the pulmonary disease is cancerous. In some embodiments, the cancerous pulmonary disease is a malignant tumor or mesothelioma. In some embodiments, the malignant tumor is non-small cell lung cancer. In some embodiments, the subject has cancer in another body region. In some embodiments, the anti-tumor particles comprise taxane particles. In some embodiments, the taxane particles comprise paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof. In some embodiments, pulmonary administration comprises nebulization, which results in pulmonary delivery of aerosol droplets of the first composition to the subject. In some embodiments, the antineoplastic agent is detectable in the subject's lung tissue for at least 4 days or at least 14 days after administration of the first composition.
[0005] In another aspect of the present invention, a method for treating cancer in a subject is disclosed, the method comprising: (a) directly administering a first composition comprising anti-tumor particles to a solid tumor in the subject via intratumoral injection; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer. The anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. In some embodiments, the solid tumor is a benign tumor, and the subject has cancer elsewhere in the body. In other embodiments, the solid tumor is a malignant tumor. In some embodiments, malignant tumors include sarcoma, carcinoma, lymphoma, breast tumor, prostate tumor, head and neck tumor, glioblastoma, bladder tumor, pancreatic tumor, liver tumor, ovarian tumor, colorectal tumor, skin tumor, skin metastasis, lymphatic system, and / or gastrointestinal tumor. In some embodiments, the subject has cancer elsewhere in the body. In some embodiments, the anti-tumor particles comprise taxane particles. In some embodiments, the taxane particles comprise paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof.
[0006] In another aspect of the present invention, a method for treating cancer in a subject is disclosed, the method comprising: (a) administering a first composition comprising anti-tumor particles to a tumor in an intraperitoneal organ of the subject via intraperitoneal injection; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer. The anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. In some embodiments, the tumor is benign and the subject has cancer elsewhere in the body. In other embodiments, the tumor is malignant. In some embodiments, the subject has cancer in another region of the body. In some embodiments, the tumor is an ovarian tumor. In some embodiments, the anti-tumor particles comprise taxane particles. In some embodiments, the taxane particles comprise paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof.
[0007] In various embodiments of the present invention, the immunotherapeutic agent of the second composition is a monoclonal antibody, a cancer vaccine, a nonspecific immunotherapeutic agent, a cytokine, an interferon, an interleukin, a colony-stimulating factor, a checkpoint inhibitor, an immunomodulatory agent, an adoptive cell transfer agent, a T cell therapy agent, a cellular therapy agent, an oncolytic virus therapy agent, BCG, and / or an adjuvant immunotherapeutic agent. In some embodiments, the systemic administration of the second composition is by intravenous (IV) injection or oral delivery. In some embodiments, the first composition is administered at least one day before the administration of the second composition. In other embodiments, the second composition is administered at least one day before the administration of the first composition. In still other embodiments, the first composition and the second composition are administered on the same day.
[0008] In various embodiments, the amount of anti-tumor particles in the first composition and the amount of immunotherapeutic agent in the second composition are effective to treat cancer in a subject, and optionally to treat a tumor in the subject. In various embodiments, local administration of the first composition stimulates an immunological response to the immunotherapeutic agent in the subject after systemic administration of the second composition.
[0009] In another aspect of the present invention, a kit is disclosed that includes: (a) a first composition comprising taxane particles, wherein the taxane particles have an average particle size (number) of 0.1 microns to 5 microns; (b) a second composition comprising an immunotherapeutic agent; and (c) instructions for (i) locally administering the first composition to a subject, and (ii) systemically administering the second composition to a subject.
[0010] In another aspect of the present invention, a method for treating cancer in a subject is disclosed, the method comprising: (a) administering a first composition comprising anti-tumor particles directly to a cyst of the subject by intracystic injection; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer. The anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. In various embodiments, the anti-tumor particles have an average particle size (number) of 0.1 microns to 1.5 microns. In some embodiments, the cyst is an epithelial cyst. In some embodiments, the cyst is a benign cyst, and the subject has cancer elsewhere in the body. In some embodiments, the cyst is a malignant cyst. In some embodiments, the malignant cyst is the only cancer in the subject's body. In other embodiments, the subject has a malignant cyst and cancer in another region of the body. In some embodiments, the cyst is a pancreatic cyst. In other embodiments, the anti-tumor agent is a taxane, and the anti-tumor particles are taxane particles. The taxane particles can include pharmaceutically acceptable salts of the taxane particles. In some embodiments, the taxane particles are paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof. In some embodiments, local administration of the first composition stimulates an immunological response to the immunotherapeutic agent in the subject after systemic administration of the second composition.
[0011] In another aspect of the present invention, a method for treating cancer in a subject is disclosed, the method comprising: (a) administering a first composition comprising anti-tumor particles to a tumor located in a body cavity of the subject by intracavity injection; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer. The anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. In various embodiments, the anti-tumor particles have an average particle size (number) of 0.1 microns to 1.5 microns. In some embodiments, the tumor is a benign tumor, and the subject has cancer elsewhere in the body. In some embodiments, the tumor is a malignant tumor. In some embodiments, the malignant tumor is the only cancer in the subject's body. In other embodiments, the subject has a malignant tumor and cancer in another region of the body. In other embodiments, the anti-tumor agent is a taxane, and the anti-tumor particles are taxane particles. The taxane particles can include pharmaceutically acceptable salts of the taxane particles. In some embodiments, the taxane particles are paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof. In some embodiments, local administration of the first composition stimulates an immunological response to the immunotherapeutic agent in the subject after systemic administration of the second composition.
[0012] Disclosed in the context of the present invention are the following embodiments 1-133. Embodiment 1 is a method of treating cancer in a subject, the method comprising: (a) locally administering to the subject a first composition comprising anti-tumor particles to an area affected by a skin tumor; and (b) systemically administering to the subject a second composition comprising an immunotherapeutic agent, thereby treating the cancer, wherein the anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. Embodiment 2 is the method of embodiment 1, wherein the skin tumor is a benign skin tumor and the subject has cancer of an area of the body other than the skin. Embodiment 3 is the method of embodiment 2, wherein the benign skin tumor is actinic keratosis. Embodiment 4 is the method of embodiment 1, wherein the skin tumor is a skin malignancy (malignant skin tumor). Embodiment 5 is the method of embodiment 4, wherein the skin malignancy comprises skin cancer. Embodiment 6 is the method of embodiment 5, wherein the skin cancer comprises melanoma, basal cell carcinoma, or squamous cell carcinoma. Embodiment 7 is the method of embodiment 6, wherein the skin malignancy comprises a skin metastasis. Embodiment 8 is the method of embodiment 7, wherein the skin metastasis is from lung cancer, breast cancer, colon cancer, oral cancer, ovarian cancer, kidney cancer, esophageal cancer, stomach cancer, liver cancer, and / or Kaposi's sarcoma. Embodiment 9 is the method of any one of embodiments 4 to 8, wherein the subject has cancer in another region of the body. Embodiment 10 is the method of any one of embodiments 1 to 9, wherein the anti-tumor particles comprise taxane particles. Embodiment 11 is the method of embodiment 10, wherein the taxane particles comprise at least 95% taxane, and the taxane particles have an average particle size (number) of 0.1 microns to 1.5 microns. Embodiment 12 is the method of embodiment 10 or 11, wherein the taxane particles comprise paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof. Embodiment 13 is the method of embodiment 12, wherein the taxane particles are paclitaxel particles. Embodiment 14 is a method for preparing a paclitaxel particle having a particle size of at least 18 m. 2 14. The method of embodiment 13, wherein the composition has a specific surface area (SSA) of 1 / g. Embodiment 15 is a method for preparing a granular material comprising administering to a patient a granular material containing paclitaxel particles at a density of 0.05 g / cm 3 ~0.15g / cm 3 15. The method of claim 13 or 14, wherein the bulk density (untapped) is Embodiment 16 is the method of embodiment 12, wherein the taxane particles are docetaxel particles. Embodiment 17 is a method for preparing docetaxel particles having a particle size of at least 18 m 217. The method of embodiment 16, wherein the composition has a specific surface area (SSA) of 1 / g. Embodiment 18 is a method for preparing docetaxel particles having a density of 0.05 g / cm 3 ~0.15g / cm 3 18. The method of claim 16 or 17, wherein the bulk density (untapped) is Embodiment 19 is the method of any one of embodiments 1 to 18, wherein the first composition is anhydrous. Embodiment 20 is the method of any one of embodiments 1 to 19, wherein the first composition is hydrophobic. Embodiment 21 is the method of embodiment 20, wherein the first composition comprises a hydrophobic carrier. Embodiment 22 is the method of embodiment 21, wherein the hydrophobic carrier is non-volatile. Embodiment 23 is the method of embodiment 21 or 22, wherein the hydrophobic carrier is non-polar. Embodiment 24 is the method of any one of embodiments 21 to 23, wherein the hydrophobic carrier comprises a hydrocarbon. Embodiment 25 is the method of embodiment 24, wherein the hydrocarbon is petrolatum, mineral oil, or paraffin wax, or a mixture thereof. Embodiment 26 is the method of embodiment 25, wherein the mineral oil is heavy mineral oil. Embodiment 27 is the method of any one of embodiments 21 to 26, wherein the hydrophobic carrier is greater than 50% w / w of the hydrophobic composition. Embodiment 28 is the method of any one of embodiments 1 to 27, wherein the first composition further comprises one or more volatile silicone fluids. Embodiment 29 is the method of embodiment 28, wherein the concentration of the one or more volatile silicone fluids is 5 to 24% w / w of the first composition. Embodiment 30 is the method of embodiment 28 or 29, wherein the volatile silicone fluid is cyclomethicone. Embodiment 31 is the method of embodiment 30, wherein the cyclomethicone is cyclopentasiloxane. Embodiment 32 is the method of any one of embodiments 1 to 31, wherein the first composition is a semi-solid. Embodiment 33 is the method of embodiment 32, wherein the viscosity of the first composition is from 25,000 cps to 500,000 cps when measured with a Brookfield RV viscometer on a Helipath stand with the Helipath on, using a TE spindle at 10 RPM for 45 seconds at room temperature. Embodiment 34 is the method of embodiments 32-33, wherein the first composition is an ointment. Embodiment 35 is the method of any one of embodiments 1 to 35, wherein the first composition does not contain a volatile C1-C4 aliphatic alcohol, does not contain an additional penetration enhancer, does not contain an additional volatile solvent, does not contain a surfactant, does not contain a protein, and / or does not contain albumin. Embodiment 36 is the method of any one of embodiments 1 to 35, wherein the anti-tumor particles are dispersed in the first composition. Embodiment 37 is the method of any one of embodiments 1 to 36, wherein the concentration of the anti-tumor particles in the composition is about 0.1 to about 2% w / w. Embodiment 38 is a method of treating cancer in a subject, the method comprising: (a) administering to the subject by pulmonary administration a first composition comprising anti-tumor particles; and (b) systemically administering to the subject a second composition comprising an immunotherapeutic agent, thereby treating the cancer, wherein the anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and the subject has a pulmonary disease, and steps (a) and (b) can be performed in any order or simultaneously. Embodiment 39 is the method of embodiment 38, wherein the lung disease is non-cancerous and the subject has cancer of an area of the body other than the lung. Embodiment 40 is the method of embodiment 39, wherein the non-cancerous lung disease is a restrictive or obstructive pulmonary disease. Embodiment 41 is the method of embodiment 40, wherein the restrictive lung disease is pulmonary fibrosis. Embodiment 42 is the method of embodiment 40, wherein the obstructive pulmonary disease is chronic obstructive pulmonary disease (COPD). Embodiment 43 is the method of embodiment 38, wherein the lung disease is cancerous. Embodiment 44 is the method of embodiment 43, wherein the cancerous lung disease is a malignant tumor or mesothelioma. Embodiment 45 is the method of embodiment 44, wherein the malignant tumor is a non-small cell lung cancer tumor. Embodiment 46 is the method of any one of embodiments 43-45, wherein the subject has cancer in another region of the body. Embodiment 47 is the method of any one of embodiments 38 to 46, wherein the antitumor particles comprise taxane particles. Embodiment 48 is the method of embodiment 47, wherein the taxane particles comprise at least 95% taxane, and the taxane particles have an average particle size (number) of 0.1 microns to 1.5 microns. Embodiment 49 is the method of embodiment 48 or 49, wherein the taxane particles comprise paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof. Embodiment 50 is the method of embodiment 49, wherein the taxane particles are paclitaxel particles. Embodiment 51 is an embodiment in which the paclitaxel particles are at least 18 m 2 51. The method of embodiment 50, wherein the composition has a specific surface area (SSA) of 1 / g. Embodiment 52 is a method for preparing a 52-well plate comprising administering to a patient a 52-well plate comprising: 3 ~0.15g / cm 3 52. The method of embodiment 50 or 51, wherein the bulk density (untapped) is Embodiment 53 is the method of embodiment 49, wherein the taxane particles are docetaxel particles. Embodiment 54 is a method for preparing docetaxel particles having a particle size of at least 18 m 2 54. The method of embodiment 53, wherein the composition has a specific surface area (SSA) of 1 / g. Embodiment 55 is a method for preparing docetaxel particles having a density of 0.05 g / cm 3 ~0.15g / cm 3 55. The method of embodiment 53 or 54, wherein the bulk density (untapped) is Embodiment 56 is the method according to any one of claims 38 to 55, wherein the first composition further comprises a liquid carrier, and the antitumor particles are dispersed in the carrier. Embodiment 57 is the method of any one of embodiments 1 to 56, wherein the composition of embodiment 38 is anhydrous. Embodiment 58 is the method of embodiment 56, wherein the liquid carrier is an aqueous carrier. Embodiment 59 is the method of embodiment 58, wherein the aqueous carrier comprises a 0.9% saline solution. Embodiment 60 is the method of embodiment 58 or 59, wherein the aqueous carrier comprises a surfactant. Embodiment 61 is the method of embodiment 60, wherein the surfactant is a polysorbate. Embodiment 62 is the method of embodiment 61, wherein the polysorbate is polysorbate 80, and the polysorbate 80 is present in the aqueous carrier at a concentration of about 0.01% v / v to about 1% v / v. Embodiment 63 is the method of any one of embodiments 47 to 62, wherein the concentration of taxane particles in the first composition is from about 1 mg / mL to about 40 mg / mL or from about 6 mg / mL to about 20 mg / mL. Embodiment 64 is the method of any one of embodiments 38 to 63, wherein the composition does not contain a protein such as albumin. Embodiment 65 is the method of any one of embodiments 38 to 64, wherein the pulmonary administration comprises nebulization, wherein the nebulization results in pulmonary delivery of aerosol droplets of the first composition to the subject. Embodiment 66 is the method of embodiment 65, wherein the aerosol droplets have a mass median aerodynamic diameter (MMAD) of from about 0.5 μm to about 6 μm in diameter, or from about 1 μm to about 3 μm in diameter, or from about 2 μm to about 3 μm in diameter. Embodiment 67 is the method of any one of embodiments 38 to 66, wherein the anti-tumor drug is detectable in the lung tissue of the subject for at least 4 days, or at least 14 days, after administration of the first composition. Embodiment 68 is a method of treating cancer in a subject, the method comprising: (a) administering a first composition comprising anti-tumor particles directly to a solid tumor of the subject by intratumoral injection; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer, wherein the anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. Embodiment 69 is the method of embodiment 68, wherein the solid tumor is a benign tumor and the subject has cancer elsewhere in the body. Embodiment 70 is the method of embodiment 68, wherein the solid tumor is a malignant tumor. Embodiment 71 is the method of embodiment 70, wherein the malignant tumor comprises a sarcoma, carcinoma, lymphoma, breast tumor, prostate tumor, head and neck tumor, glioblastoma, bladder tumor, pancreatic tumor, liver tumor, ovarian tumor, colorectal tumor, skin tumor, skin metastasis, lymphatic system, and / or gastrointestinal tumor. Embodiment 72 is the method of embodiment 70 or 71, wherein the subject has cancer in another region of the body. Embodiment 73 is the method of any one of embodiments 68 to 72, wherein the antitumor particles comprise taxane particles. Embodiment 74 is the method of embodiment 73, wherein the taxane particles comprise at least 95% taxane, and the taxane particles have an average particle size (number) of 0.1 microns to 1.5 microns. Embodiment 75 is the method of embodiment 73 or 74, wherein the taxane particles comprise paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof. Embodiment 76 is the method of embodiment 75, wherein the taxane particles are paclitaxel particles. Embodiment 77 is an embodiment in which the paclitaxel particles are at least 18 m 2 77. The method of embodiment 76, wherein the composition has a specific surface area (SSA) of 1 / g. Embodiment 78 is a method for preparing a granular material comprising administering to a patient a granular material containing paclitaxel particles at a density of 0.05 g / cm 3 ~0.15g / cm 378. The method of embodiment 76 or 77, wherein the bulk density (untapped) is Embodiment 79 is the method of embodiment 75, wherein the taxane particles are docetaxel particles. Embodiment 80 is an embodiment in which the docetaxel particles have a diameter of at least 18 m. 2 80. The method of embodiment 79, wherein the composition has a specific surface area (SSA) of 1 / g. Embodiment 81 is a method for preparing docetaxel particles having a density of 0.05 g / cm 3 ~0.15g / cm 3 81. The method of embodiment 79 or 80, wherein the bulk density (untapped) is Embodiment 82 is the method according to any one of claims 68 to 81, wherein the first composition further comprises a liquid carrier, and the antitumor particles are dispersed in the carrier. Embodiment 83 is the method of embodiment 82, wherein the liquid carrier is an aqueous carrier. Embodiment 84 is the method of embodiment 83, wherein the aqueous carrier comprises a 0.9% saline solution. Embodiment 85 is the method of embodiment 83 or 84, wherein the aqueous carrier comprises a surfactant. Embodiment 86 is the method of embodiment 85, wherein the surfactant is a polysorbate. Embodiment 87 is the method of embodiment 86, wherein the polysorbate is polysorbate 80, and wherein the polysorbate 80 is present in the aqueous carrier at a concentration of from about 0.01% v / v to about 1% v / v. Embodiment 88 is the method of any one of embodiments 73 to 88, wherein the concentration of taxane particles in the first composition is from about 1 mg / mL to about 40 mg / mL or from about 6 mg / mL to about 20 mg / mL. Embodiment 89 is the method of any one of embodiments 68 to 88, wherein the composition does not contain a protein such as albumin. Embodiment 90 is a method of treating cancer in a subject, the method comprising: (a) administering a first composition comprising anti-tumor particles to an intraperitoneal organ tumor of the subject by intraperitoneal injection; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer, wherein the anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. Embodiment 91 is the method of embodiment 90, wherein the tumor is benign and the subject has cancer elsewhere in the body. Embodiment 92 is the method of embodiment 90, wherein the tumor is malignant. Embodiment 93 is the method of embodiment 92, wherein the subject has cancer in another region of the body. Embodiment 94 is the method of any one of embodiments 90 to 93, wherein the tumor is an ovarian tumor. Embodiment 95 is the method of any one of embodiments 90 to 94, wherein the antitumor particles comprise taxane particles. Embodiment 96 is the method of embodiment 95, wherein the taxane particles comprise at least 95% taxane, and the taxane particles have an average particle size (number) of 0.1 microns to 1.5 microns. Embodiment 97 is the method of embodiment 95 or 96, wherein the taxane particles comprise paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof. Embodiment 98 is the method of embodiment 97, wherein the taxane particles are paclitaxel particles. Embodiment 99 is an embodiment in which the paclitaxel particles have a diameter of at least 18 m. 2 99. The method of embodiment 98, wherein the specific surface area (SSA) of the substrate is 1 / g. Embodiment 100 is a method for preparing a paclitaxel particle having a density of 0.05 g / cm 3 ~0.15g / cm 3 100. The method of claim 98 or 99, wherein the bulk density (untapped) of the mixture is Embodiment 101 is the method of embodiment 97, wherein the taxane particles are docetaxel particles. Embodiment 102 is an embodiment in which the docetaxel particles are at least 18 m 2 102. The method of embodiment 101, wherein the specific surface area (SSA) is 102 / g. Embodiment 103 is a method for preparing docetaxel particles having a density of 0.05 g / cm 3 ~0.15g / cm 3 103. The method of embodiment 101 or 102, wherein the bulk density (untapped) is Embodiment 104 is a method according to any one of claims 90 to 103, wherein the first composition further comprises a liquid carrier, and the antitumor particles are dispersed in the carrier. Embodiment 105 is the method of embodiment 104, wherein the liquid carrier is an aqueous carrier. Embodiment 106 is the method of embodiment 105, wherein the aqueous carrier comprises a 0.9% saline solution. Embodiment 107 is the method of embodiment 105 or 106, wherein the aqueous carrier comprises a surfactant. Embodiment 108 is the method of embodiment 107, wherein the surfactant is a polysorbate. Embodiment 109 is the method of embodiment 108, wherein the polysorbate is polysorbate 80, and the polysorbate 80 is present in the aqueous carrier at a concentration of from about 0.01% v / v to about 1% v / v. Embodiment 110 is the method of any one of embodiments 95 to 109, wherein the concentration of taxane particles in the first composition is from about 1 mg / mL to about 40 mg / mL or from about 6 mg / mL to about 20 mg / mL. Embodiment 111 is the method of any one of embodiments 90 to 110, wherein the composition does not contain a protein such as albumin. Embodiment 112 is the method of any one of embodiments 1 to 111, wherein the immunotherapeutic agent is a monoclonal antibody, a cancer vaccine, a nonspecific immunotherapeutic agent, a cytokine, an interferon, an interleukin, a colony-stimulating factor, a checkpoint inhibitor, an immunomodulatory agent, an adoptive cell transfer agent, a T cell therapy, a cellular therapy, an oncolytic virus therapy, BCG, and / or an adjuvant immunotherapeutic agent. Embodiment 113 is the method of embodiment 112, wherein the immunotherapeutic agent is a monoclonal antibody. Embodiment 114 is the method of embodiment 113, wherein the monoclonal antibody is pembrolizumab. Embodiment 115 is the method of any one of embodiments 1 to 114, wherein the second composition comprises a pharmaceutically acceptable carrier. Embodiment 116 is the method of any one of embodiments 1 to 115, wherein the systemic administration is intravenous (IV) injection or oral delivery. Embodiment 117 is the method of any one of embodiments 1 to 116, wherein the first composition is administered at least 1 day before the administration of the second composition. Embodiment 118 is the method of any one of embodiments 1 to 116, wherein the second composition is administered at least 1 day before the administration of the first composition. Embodiment 119 is the method of any one of embodiments 1 to 116, wherein the first composition and the second composition are administered on the same day. Embodiment 120 is a method according to any one of embodiments 1 to 119, wherein the amount of anti-tumor particles in the first composition and the amount of immunotherapeutic agent in the second composition are effective to treat cancer in the subject, and optionally to treat a tumor in the subject. Embodiment 121 is the method of any one of embodiments 1 to 120, wherein local administration of the first composition stimulates an immunological response to the immunotherapeutic agent in the subject after systemic administration of the second composition. Embodiment 122 is a kit comprising: (a) a first composition comprising taxane particles, wherein the taxane particles have an average particle size (number) of 0.1 microns to 5 microns; (b) a second composition comprising an immunotherapeutic agent; and (c) instructions for (i) locally administering the first composition to a subject, and (ii) systemically administering the second composition to a subject. Embodiment 123. The kit of embodiment 112, wherein the immunotherapeutic agent is a monoclonal antibody, a cancer vaccine, a non-specific immunotherapeutic agent, a cytokine, an interferon, an interleukin, a colony-stimulating factor, a checkpoint inhibitor, an immunomodulatory agent, an adoptive cell transfer agent, a T cell therapy agent, a cellular therapy agent, an oncolytic virus therapy agent, BCG, and / or an adjuvant immunotherapeutic agent. Embodiment 124 is the kit of claim 122 or 123, wherein the taxane particles comprise at least 95% taxane, and the taxane particles have an average particle size (number) of 0.1 microns to 1.5 microns. Embodiment 125 is the method of any one of embodiments 122 to 124, wherein the taxane particles are paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof. Embodiment 126 is the kit of embodiment 125, wherein the taxane particles are paclitaxel particles. Embodiment 127 is an embodiment in which the paclitaxel particles are at least 18 m 2 127. The kit of embodiment 126, having a specific surface area (SSA) of 1 / g. Embodiment 128 is an embodiment in which the paclitaxel particles have a density of 0.05 g / cm 3 ~0.15g / cm 3 128. The kit of embodiment 126 or 127, having a bulk density (untapped) of Embodiment 129 is the kit of embodiment 125, wherein the taxane particles are docetaxel particles. Embodiment 130 is an embodiment in which the docetaxel particles are at least 18 m 2 130. The kit of embodiment 129, having a specific surface area (SSA) of 1 / g. Embodiment 131 is an embodiment in which the docetaxel particles have a density of 0.05 g / cm 3 ~0.15g / cm 3 131. The kit of embodiment 129 or 130, having a bulk density (untapped) of Embodiment 132 is the kit of embodiment 125, wherein the first composition is a hydrophobic ointment. Embodiment 133 is the kit of embodiment 125, wherein the first composition is an aqueous suspension.
[0013] As used herein, the term "antineoplastic agent" refers to a drug used to treat neoplasms, including cancer, and includes "chemotherapeutic agents," which are drugs used to treat cancer. In a preferred embodiment, the anti-neoplastic agent is a taxane.
[0014] As used herein, the terms "antineoplastic drug particles," "antineoplastic particles," or "particles of antineoplastic drug(s)" refer to particles of antineoplastic drugs having an average particle size (number) of about 0.1 microns to about 5 microns (about 100 nm to about 5000 nm) in diameter. In a preferred embodiment, the antineoplastic particles are taxane particles.
[0015] As used herein, the term "tumor" means one or more abnormal masses of tissue that result when cells divide more than they should or do not die when they should. Tumors can be benign (not cancerous) or malignant (cancer).
[0016] As used herein, the term "hydrophobic" refers to a compound, composition, or carrier that has a solubility in water of 10 mg / mL or less at room temperature.
[0017] As used herein, the term "volatile" refers to a compound, composition, or carrier that has a vapor pressure of 10 Pa or greater at room temperature.
[0018] As used herein, the term "non-volatile" refers to a compound, composition, or carrier that has a vapor pressure of less than 10 Pa at room temperature.
[0019] As used herein with respect to a composition or carrier of the present invention, the term "anhydrous" means that less than 3% w / w, preferably less than 2% w / w, more preferably less than 1% w / w, or most preferably 0% w / w water is present in the composition or carrier. This can account for small amounts of water that are present (e.g., water inherently contained in any of the components of the composition or carrier, water that has shrunk from the atmosphere, etc.).
[0020] As used herein, the terms "skin" or "cutaneous" refer to the epidermis and / or dermis.
[0021] As used herein, the term "skin tumor" includes benign and malignant skin tumors.
[0022] As used herein, the term "cutaneous malignancy" or "malignant skin tumor" includes cancerous skin tumors, including skin cancer and skin metastases.
[0023] An "affected area" of a skin tumor or skin malignancy can include at least a portion of the skin where the skin tumor or skin malignancy is visibly present on the outermost surface of the skin or just below the skin surface (epithelial / dermal covering), and can include an area of skin near the skin tumor or skin malignancy that is likely to contain preclinical lesions that are not visibly detectable.
[0024] As used herein, the term "cutaneous (skin) metastasis" or "cutaneous (skin) metastases" refers to the appearance of a malignant tumor of the skin as a secondary growth (malignancy) arising from the primary growth of a cancerous tumor elsewhere in the body. Spread from the primary tumor may be via the lymphatic or blood circulatory systems, or by other means.
[0025] As used herein with respect to cancer treatment and / or tumor treatment, the terms "treat," "treating," or "treatment" mean achieving one or more of the following: (a) reducing tumor size, (b) reducing tumor growth, (c) eliminating the tumor, (d) reducing or limiting the occurrence and / or spread of metastases, (e) achieving a partial or complete remission of the cancer.
[0026] As used herein, the term "subject" or "patient" refers to a vertebrate. In some embodiments, the vertebrate may be a mammal. In some embodiments, the mammal may be a primate, including a human.
[0027] As used herein, the term "room temperature" (RT) means 15-30°C or 20-25°C.
[0028] As used herein, the term "penetration enhancer" or "skin penetration enhancer" means a compound or material or substance that enhances drug absorption into the skin (epidermis and dermis).
[0029] As used herein, the term "surfactant" or "surface active agent" means a compound or material or substance that exhibits the ability to lower the surface tension of water or the interfacial tension between two immiscible substances.
[0030] As used herein, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. As used herein, "and" is used interchangeably with "or" unless otherwise noted.
[0031] As used herein, the term "about" or "approximately" means + / - five percent (5%) of the recited unit of measurement.
[0032] For this application, numbers having one or more decimal places may be rounded to the nearest whole number using standard rounding guidelines, i.e., rounding up if the number being rounded is 5, 6, 7, 8, or 9, and rounding down if the number being rounded is 0, 1, 2, 3, or 4. For example, 3.7 may be rounded to 4.
[0033] Unless the context clearly dictates otherwise, throughout this specification and claims, words like "comprise," "comprising," and the like shall be construed in an inclusive or open-ended sense, i.e., "including, but not limited to," as opposed to an exclusive or exhaustive sense. Words using the singular or plural also include the plural and singular, respectively. Furthermore, the words "herein," "above," and "below," and words of similar import, when used in this application, refer to this application as a whole and not to any particular portion of this application. The compositions and methods of their use can "comprise," "consist essentially of," or "consist" of any of the components or steps disclosed throughout this specification. With regard to the phrase "consisting essentially of," a fundamental and novel feature of the methods of the present invention is the ability to treat cancer through the local delivery of a composition of anti-tumor particles in combination with the systemic delivery of a composition of immunotherapeutic agents.
[0034] It is contemplated that any embodiment discussed herein can be implemented with respect to any method or composition of the invention, and vice versa. Further, compositions of the invention can be used to achieve methods of the invention.
[0035] The description of the embodiments of the present disclosure is not intended to be exhaustive or to limit the disclosure to the precise form disclosed. While specific embodiments of, and examples for, the present disclosure are described herein for illustrative purposes, various equivalent modifications are possible within the scope of the present disclosure, as those skilled in the art will recognize. [Brief explanation of the drawings]
[0036] [Figure 1] 1 graphically depicts the concentration (μg / cm 2 ) of paclitaxel delivered into the epidermis in vitro for Formulas F1-F7. [Figure 2] 10 is a graph showing the concentration of paclitaxel (μg / cm 2 ) delivered into the epidermis in vitro for formulas F6* (replicate analysis) and F8-F13. [Figure 3] 1 graphically depicts the concentration (μg / cm 2 ) of paclitaxel delivered into the dermis in vitro for Formulas F1-F7. [Figure 4] 10 is a graph showing the concentration of paclitaxel (μg / cm 2 ) delivered into the dermis in vitro for formulas F6* (replicate analysis) and F8-F13. [Figure 5] Photograph of a skin metastatic lesion on the breast of a woman with stage 4 breast cancer at baseline (day 1) in a skin metastasis study. [Figure 6] Photograph of a skin metastatic lesion on the breast of a woman with stage 4 breast cancer on day 8 of topical treatment in a skin metastasis study. [Figure 7] Photograph of a skin metastatic lesion on the breast of a woman with stage 4 breast cancer on day 15 during topical treatment in a skin metastasis study. [Figure 8a] Photograph of a skin metastatic lesion on the breast of a woman with stage 4 breast cancer on day 29 during topical treatment at the end of the study in a skin metastasis study. [Figure 8b] Photograph of a skin metastatic lesion on the breast of a woman with stage 4 breast cancer on day 43, two weeks after topical treatment ended in a skin metastasis study. [Figure 9] 1 is a plot of the particle size distribution of a 6.0 mg / mL NanoPac® formulation aerosol as measured by a cascade impactor. [Figure 10] 1 is a plot of the particle size distribution of a 20.0 mg / mL NanoPac® formulation aerosol as measured by a cascade impactor. [Figure 11] 1 is a graph of plasma paclitaxel levels over time following pulmonary administration to rats. [Figure 12] 1 is a graph of paclitaxel levels in lung tissue over time following pulmonary administration to rats. [Figure 13] 1 is a graph of animal weight over time from an orthotopic lung cancer study. [Figure 14] 1 is a graph of animal weight change over time from an orthotopic lung cancer study. [Figure 15] 1 is a plot of animal lung weights from an orthotopic lung cancer study. [Figure 16] 1 is a plot of lung-to-body weight ratios for animals from an orthotopic lung cancer study. [Figure 17] 1 is a plot of lung-to-brain weight ratios for animals from an orthotopic lung cancer study. [Figure 18] 1 is a graph of mean tumor area from an orthotopic lung cancer study. [Figure 19] 1 is a plot of mean tumor area from an orthotopic lung cancer study. [Figure 20] H&E stained orthotopic lung cancer tissue slide - 1006 (control) - micrograph showing 3 adenocarcinomas, 1 primitive, and 0 regressed tumors. Key features of the lung tumor mass. (2x magnification). [Figure 21] H&E stained orthotopic lung cancer tissue slides - 2003 (IV Abraxane) - micrographs of adenocarcinoma-1, primitive-1, and regressing-1. Characterization of regressing lung tumor masses. (4x magnification). [Figure 22] Photomicrograph of an H&E-stained orthotopic lung cancer tissue slide - 2010 (IV Abraxane) - adenocarcinoma - 3, primitive - 1, regression - 0. Key features of the lung tumor mass. (2x magnification). [Figure 23] Photomicrograph of H&E stained orthotopic lung cancer tissue slide 4009 (IH NanoPac® 1x high) showing adenocarcinoma (0), primitive (0), and regression (4). Features of a completely regressed lung tumor mass. (2x). [Figure 24] Photomicrograph of an H&E stained orthotopic lung cancer tissue slide - 5010 (IH NanoPac® 2x low) showing adenocarcinoma - 1, primitive - 0, and regression - 3. Characteristics of a regressing lung tumor mass. (2x). [Figure 25] Photomicrograph of H&E stained orthotopic lung cancer tissue slide 6005 (IH NanoPac® 2x high) showing adenocarcinoma (1), primitive (0), and regression (4). Characterization of a regressing lung tumor mass. (2x). [Figure 26] 1 is a plot of tumor regression from an orthotopic lung cancer study. [Figure 27] Various micrographs of orthotopic lung cancer tissue slides (control). Top row: H / E stained sections. Bottom row: immunohistochemical staining with keratin or CD11b. [Figure 28] Various photomicrographs of orthotopic lung cancer tissue slides (IV Abraxane). Top row: H / E stained sections. Bottom row: immunohistochemical staining with keratin or CD11b. [Figure 29] Various micrographs of orthotopic lung cancer tissue slides - (inhaled NanoPac®). Various staining with H / E stain, trichrome, keratin, and CD11b. [Figure 30] 1A-1C are various photomicrographs of orthotopic lung cancer tissue slides showing the presence of TLS. [Figure 31] 1 is a graph of mean tumor volume over time from a bladder cancer xenograft study. Arrows on the x-axis represent dosing time points. [Figure 32]
[0023] Figure 1 is a graph of individual tumor volumes over time for three cycles of vehicle from a bladder cancer xenograft study. Triangles on the x-axis represent dosing time points. [Figure 33]
[0023] Figure 1 is a graph of individual tumor volumes over time for three cycles of docetaxel IV from a bladder cancer xenograft study. Triangles on the x-axis represent administration time points. [Figure 34] 1 is a graph of individual tumor volumes over time for one cycle of NanoDoce® IT from a bladder cancer xenograft study. Triangles on the x-axis represent single administration time points. [Figure 35] 1 is a graph of individual tumor volumes over time for two cycles of NanoDoce® IT from a bladder cancer xenograft study. Triangles on the x-axis represent dosing time points. [Figure 36]1 is a graph of individual tumor volumes over time for three cycles of NanoDoce® from a bladder cancer xenograft study. Triangles on the x-axis represent dosing time points. [Figure 37] FIG. 1 is a scatter plot of tumor volume at the end of study versus tumor volume at treatment on day 1 from a bladder cancer xenograft study. [Figure 38] 1 is a graph of mean body weight over time from a bladder cancer xenograft study. Arrows on the x-axis represent dosing time points. [Figure 39] 1 is a graph of the mean tumor volume at day 61 for each treatment group from a bladder cancer xenograft study. [Figure 40] Photographs of animals in each treatment group at days 27, 40, and 61 post tumor implantation from a bladder cancer xenograft study. [Figure 41] 1 is a graph of the concentration of docetaxel in tumor tissue for cycles 1, 2, and 3 of NanoDoce® from a bladder cancer xenograft study. [Figure 42] Photomicrograph of bladder cancer xenograft tissue slide - IT vehicle control. H&E. Magnification 2.52x. [Figure 43] Photomicrograph of bladder cancer xenograft tissue slide - IT vehicle control. H&E. Magnification 6.3x. [Figure 44] Photomicrograph of bladder cancer xenograft tissue slide - IT vehicle control. H&E. Magnification 25.2x. [Figure 45] Bladder cancer xenograft tissue slide - Photomicrograph of 3 cycles of IV docetaxel. H&E. Magnification 2.52x. [Figure 46] Bladder cancer xenograft tissue slide - Photomicrograph of 3 cycles of IV docetaxel. H&E. Magnification 6.3x. [Figure 47] Bladder cancer xenograft tissue slide - Photomicrograph of 3 cycles of IV docetaxel. H&E. Magnification 25.2x. [Figure 48] Photomicrograph of bladder cancer xenograft tissue slide - IT NanoDoce® 2 cycles. H&E. Magnification 2.52x. [Figure 49] Bladder cancer xenograft tissue slide - photomicrograph of IT NanoDoce® 2 cycles. H&E. Magnification 6.3x. [Figure 50] Bladder cancer xenograft tissue slide - photomicrograph of IT NanoDoce® 3 cycles. H&E. Magnification 2.52x. [Figure 51] Bladder cancer xenograft tissue slide - photomicrograph of IT NanoDoce® 3 cycles. H&E. Magnification 2.52x. [Figure 52] Bladder cancer xenograft tissue slide - photomicrograph of IT NanoDoce® 3 cycles. H&E. Magnification 25.2x. [Figure 53] Photomicrograph of bladder cancer xenograft tissue slide - IT vehicle control 3 cycle F4 / 80 staining, magnification 2.52x. [Figure 54] Photomicrograph of bladder cancer xenograft tissue slide - IV docetaxel 3 cycles F4 / 80 staining, magnification 2.52x. [Figure 55] Photomicrograph of bladder cancer xenograft tissue slide-IT NanoDoce® 3 cycle F4 / 80 stain. Magnification 2.52x. [Figure 56] Photomicrograph of a renal cell adenocarcinoma xenograft tissue slide from a female rat - untreated. H&E. Magnification 6.3x. [Figure 57] Photomicrograph of a renal cell adenocarcinoma xenograft tissue slide from a female rat - vehicle control (IT) 3 cycles. H&E. Magnification 6.3x. [Figure 58] Photomicrograph of a renal cell adenocarcinoma xenograft tissue slide from a female rat treated with three cycles of docetaxel solution (IV). H&E. Magnification 6.3x. [Figure 59] Photomicrograph of a renal cell adenocarcinoma xenograft tissue slide from a female rat - NanoDoce® (IT) 3 cycles. H&E. Magnification 6.3x. [Figure 60] Various photomicrographs of a control case of renal cell adenocarcinoma xenograft tissue slide. Top row: H&E stained section. Bottom row: Immunohistochemical staining. [Figure 61] Various photomicrographs of IT NanoDoce® cases of renal cell adenocarcinoma xenograft tissue slides. Row 1: 1 cycle NanoDoce® (1×). Row 2: 1 cycle NanoDoce® (1×). Row 3: 2 cycle NanoDoce® (2×). Row 4: 2 cycle NanoDoce® (2×). Row 5: 3 cycle NanoDoce® (3×). [Figure 62] 1 is a graph of mean tumor volume over time for rats in the NanoPac® group from a renal cell adenocarcinoma xenograft study. Triangles on the x-axis represent dosing time points. [Figure 63] 1 is a graph of mean tumor volume over time for rats in the NanoDoce® group from a renal cell adenocarcinoma xenograft study. Triangles on the x-axis represent dosing time points. DETAILED DESCRIPTION OF THE INVENTION
[0037] The present invention provides a method for treating cancer through the use of combined local and systemic therapy, i.e., the local administration of antitumor drug particles (chemotherapeutic particles), such as taxane particles, directly to the tumor as an adjunct to the systemic administration of immunotherapeutic agents.
[0038] When antitumor particles such as taxane particles (e.g., paclitaxel or docetaxel particles) are administered locally to either benign or malignant tumors (i.e., by intratumoral injection, intraperitoneal injection, pulmonary deposition via inhalation, or local administration to skin malignancies such as skin tumors or skin metastases), the antitumor drug molecules (e.g., paclitaxel or docetaxel) remain at the tumor site for a longer period of time than when the antitumor drug is administered at high concentrations as a solution via IV. Therefore, locally administered antitumor particles such as taxane particles can function as a local adjuvant to systemic immunotherapy. Without being limited to any particular mechanism, such an adjuvant effect may include, for example, providing sufficient time for lymphocytes to activate both their innate and adaptive immune responses against tumors without the added toxicity associated with IV chemotherapy.
[0039] The immune system stimulation that occurs in response to the local administration of taxane particles, including the activation of local dendritic cell response to tumor antigens, can be enhanced, for example, by local administration of taxane particles to the skin or by pulmonary inhalation of taxane particles.Without being limited to any specific mechanism, local tumor cell killing by administration of taxane particles releases tumor cell antigens attached to dendritic cells.The activated dendritic cells can then present tumor-specific antigens to T cells and other tumor-killing cells circulating throughout the patient's vascular system, and invade the tissue containing tumor, allowing cancer destruction throughout the patient.Therefore, the use of local particle administration enables direct local therapy and indirect immune system-mediated systemic cancer cell killing.
[0040] By local administration of taxane particles, either through topical treatment of skin tumors, intratumoral injection of solid tumors, intraperitoneal injection, or inhalation therapy of pulmonary diseases, the local taxane molecules act as an adjuvant to stimulate immune responses. The local concentration of taxane remains elevated for longer than four days, which provides sufficient time to stimulate an immune response suitable for killing local tumor cells and killing cancers that may spread widely throughout the body. This stimulation of the immune system by local administration of taxane particles occurs without producing high levels of taxane in the patient's circulating blood. Therefore, local administration of particulate taxanes does not reduce bone marrow hematopoiesis, which is accompanied by a reduction in the number of white blood cells such as lymphocytes. Bone marrow suppression is a common side effect of taxanes when administered intravenously due to high concentrations of circulating taxanes.
[0041] Without being limited to any particular mechanism, local administration of taxane particles can produce sufficient concentrations of taxanes over an extended period of time to stimulate a local immune response to immunotherapy through activation of dendritic cells. Dendritic cell activation may occur most significantly in the skin or lungs, where they are abundant. Local administration of taxane particles to skin tumors induces paclitaxel entry into tumor cells, killing them during their cell division cycle and making them more accessible to immune recognition by immunotherapy. Lymphocytes then circulate throughout the patient's body and produce humoral mediators specific to tumor cell surface antigens. Lymphocytes destroy skin-located tumors and distant metastases. Lymphocyte tumor killing can also occur through cellular immune surveillance pathways. For example, local administration of taxane particles to skin metastases results in the eradication of not only the skin metastases but also the patient's entire body. The same elimination of cancer within the body would occur in metastatic lung cancer in response to inhaled taxane particles.
[0042] Thus, the cancer treatment methods of the present invention include a combination of local and systemic therapy, i.e., the local administration of a composition comprising antitumor drug particles, such as taxane particles, directly to the tumor in combination with the systemic administration of a composition comprising an immunotherapeutic agent. The local administration of the antitumor drug particles, e.g., taxane particles, serves as a local adjuvant to systemic immunotherapy, providing sufficient time for lymphocytes to activate both their innate and adaptive immune responses against the tumor.
[0043] Treatment with a combination of local administration of a composition comprising anti-tumor particles and systemic administration of an immunotherapeutic agent demonstrates greater efficacy than treatment with an immunotherapeutic agent alone and / or treatment with a composition comprising anti-tumor particles alone (monotherapy), as evidenced by at least one of the following: (a) a greater reduction in tumor size in animals treated with a composition comprising anti-tumor particles in combination with an immunotherapeutic agent than in animals treated with the immunotherapeutic agent alone; or (b) a greater reduction in tumor growth in animals treated with a composition comprising anti-tumor particles in combination with an immunotherapeutic agent than in animals treated with the immunotherapeutic agent alone; or (c) one or more occurrences of tumor elimination in animals treated with a combination of a composition comprising anti-tumor particles and an immunotherapeutic agent compared to no occurrence of tumor elimination in animals treated with the immunotherapeutic agent alone; or (d) a greater reduction in tumor size in animals treated with a combination of a composition comprising anti-tumor particles and an immunotherapeutic agent than in animals treated with a composition comprising anti-tumor particles alone; or (e) a greater reduction in tumor growth in animals treated with a combination of a composition comprising anti-tumor particles and an immunotherapeutic agent than in animals treated with a composition comprising anti-tumor particles alone; or (f) One or more occurrences of tumor elimination in animals treated with a combination of a composition comprising anti-tumor particles and an immunotherapeutic agent compared to no occurrence of tumor elimination in animals treated with a composition comprising anti-tumor particles alone. Additionally, synergistic effects on efficacy are achieved by combining a locally administered composition comprising antitumor particles with a systemically administered immunotherapeutic agent, as evidenced by at least one of the following: (g) the reduction in tumor size in animals treated with the combination of a composition comprising anti-tumor particles and an immunotherapeutic agent is greater than the sum of the reduction in tumor size in animals treated with the immunotherapeutic agent alone and the reduction in tumor size in animals treated with the composition comprising anti-tumor particles alone; or (h) the reduction in tumor growth in animals treated with the combination of a composition comprising anti-tumor particles and an immunotherapeutic agent is greater than the sum of the reduction in tumor growth in animals treated with the immunotherapeutic agent alone and the reduction in tumor growth in animals treated with the composition comprising anti-tumor particles alone; or (i) The incidence of tumor elimination in animals treated with a combination of a composition comprising anti-tumor particles and an immunotherapeutic agent is greater than the sum of the incidence of tumor elimination in animals treated with pembrolizumab alone and the incidence of tumor elimination in animals treated with a composition comprising anti-tumor particles alone.
[0044] I. Antitumor drug particles Antitumor drugs are drugs used to treat neoplasms, including cancer, and include "chemotherapeutic drugs," which are drugs used to treat cancer. Suitable antitumor drugs include those that stimulate an immunological response when administered to a subject. Non-limiting examples of antitumor drugs can be found listed in the "Ashgate Handbook of Antineoplastic Agents," published by Gower Publishing Limited, 2000, incorporated herein by reference. The antitumor drug particles have an average particle size (number) of about 0.1 microns to about 5 microns in diameter (about 100 nm to about 5000 nm). In some embodiments, the antitumor drug particles have an average particle size (number) of about 0.1 microns to about 1.5 microns in diameter (about 100 nm to about 1500 nm). In some embodiments, the antitumor drug particles have an average particle size (number) of about 0.1 microns to less than 1 micron in diameter (about 100 nm to less than 1000 nm). The antitumor drug particles are in a size range that is unlikely to be carried out of the tumor by the systemic circulation, yet benefit from a high specific surface area to provide enhanced drug solubilization and release.
[0045] In some embodiments, the anti-tumor particles are solid, uncoated ("pure" or "naked") individual particles. In some embodiments, the anti-tumor particles are not bound to any substance. In some embodiments, no substance is absorbed or adsorbed to the surface of the anti-tumor particles. In some embodiments, the anti-tumor drug or anti-tumor particles are not encapsulated, contained, enclosed, or embedded within any substance. In some embodiments, the anti-tumor particles are not coated with any substance. In some embodiments, the anti-tumor particles are not microemulsions, nanoemulsions, microspheres, or liposomes containing the anti-tumor drug. In some embodiments, the anti-tumor particles are not bound to, encapsulated within, or coated with monomers, polymers (or biocompatible polymers), proteins, surfactants, or albumin. In some embodiments, no monomers, polymers (or biocompatible polymers), proteins, surfactants, or albumin are absorbed or adsorbed to the surface of the anti-tumor particles. In some embodiments, the anti-tumor particles are in a crystalline form. In other embodiments, the anti-tumor particles are in an amorphous form, or a combination of both crystalline and amorphous forms. In some embodiments, the anti-tumor particles of the present invention contain trace amounts of impurities and by-products typically found in the preparation of anti-tumor drugs. In some embodiments, the anti-tumor particles comprise at least 90%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99%, or 100% of the anti-tumor drug, meaning that the anti-tumor particles consist of or essentially consist of a substantially pure anti-tumor drug.
[0046] In some embodiments, the anti-tumor particles are coated with or bound to a substance such as a protein (e.g., albumin), a monomer, a polymer, a biocompatible polymer, or a surfactant. In some embodiments, a substance such as a protein (e.g., albumin), a monomer, a polymer, a biocompatible polymer, or a surfactant is adsorbed or absorbed onto the surface of the anti-tumor particles. In some embodiments, the anti-tumor particles are encapsulated, contained, enclosed, or embedded within a substance such as a protein (e.g., albumin), a monomer, a polymer, a biocompatible polymer, or a surfactant. In some embodiments, the anti-tumor particles are microemulsions, nanoemulsions, microspheres, or liposomes containing an anti-tumor drug. In some embodiments, the anti-tumor particles are non-aggregated individual particles, rather than clusters of multiple anti-tumor particles bound together by interaction forces such as non-covalent interactions, van der Waals forces, hydrophilic or hydrophobic interactions, electrostatic interactions, Coulombic forces, interactions with dispersed materials, or interactions via functional groups. In some embodiments, the taxane particles are individual antitumor particles formed by aggregation of smaller particles that fuse together to form larger individual antitumor particles, all of which occur during processing of the antitumor particles. In other embodiments, the antitumor particles are clusters or aggregates of antitumor particles that are bound together by interaction forces such as non-covalent interactions, van der Waals forces, hydrophilic or hydrophobic interactions, electrostatic interactions, Coulombic forces, interactions with dispersed materials, or interactions via functional groups.
[0047] In a preferred embodiment, the antitumor particle is a taxane particle.Taxanes are generally poorly water-soluble compounds with a water solubility of 10 mg / mL or less at room temperature.Taxanes are widely used as antitumor and chemotherapeutic drugs.As used herein, the term "taxane" includes paclitaxel (I), docetaxel (II), cabazitaxel (III), and any other taxane or taxane derivative, including but not limited to taxol B (cephalomannine), taxol C, taxol D, taxol E, taxol F, taxol G, taxadiene, baccatin III, 10-deacetylbaccatin, taxuskinin A, brevifoliol, and taxuspin D, and also includes pharmaceutically acceptable salts of taxanes. (I) Paclitaxel [ka]
[0048] Paclitaxel and docetaxel active pharmaceutical ingredients (API) are commercially available from Phyton Biotech LLC, Vancouver, Canada. The docetaxel API contains 90% or more, or 95% or more, or 97.5% or more of docetaxel, calculated on an anhydrous, solvent-free basis. The paclitaxel API contains 90% or more, or 95% or more, or 97% or more of paclitaxel, calculated on an anhydrous, solvent-free basis. In some embodiments, the paclitaxel API and docetaxel API are USP and / or EP grade. Paclitaxel API can be prepared from semi-synthetic chemical processes or from natural sources, such as plant cell fermentation or extraction. Paclitaxel is also sometimes referred to by the trade name TAXOL, although this is a misnomer, as TAXOL is the trade name for a solution of paclitaxel in polyoxyethylated castor oil and ethanol intended for dilution with a suitable parenteral fluid before intravenous infusion. The taxane API can be used to make taxane particles, which can be paclitaxel particles, docetaxel particles, or cabazitaxel particles, or particles of other taxane derivatives, including particles of pharmaceutically acceptable salts of taxanes.
[0049] The taxane particles have an average particle size (number) of about 0.1 microns to about 5 microns (about 100 nm to about 5000 nm) in diameter. In preferred embodiments, the taxane particles are solid, uncoated ("pure") individual particles. The taxane particles are in a size range that makes them unlikely to be transported out of tumors by the systemic circulation, yet benefit from a high specific surface area to provide enhanced drug solubilization and release. In some embodiments, the taxane particles are not bound to any substance. In some embodiments, no substance is absorbed or adsorbed to the surface of the taxane particles. In some embodiments, the taxane or taxane particles are not encapsulated, contained, enclosed, or embedded within any substance. In some embodiments, the taxane particles are not coated with any substance. In some embodiments, the taxane particles are not taxane-containing microemulsions, nanoemulsions, microspheres, or liposomes. In some embodiments, the taxane particles are not bound to, encapsulated within, or coated with a monomer, polymer (or biocompatible polymer), protein, surfactant, or albumin. In some embodiments, the monomer, polymer (or biocompatible polymer), protein, surfactant, or albumin is not absorbed or adsorbed to the surface of the taxane particles. In some embodiments, the composition and taxane particles exclude albumin. In some embodiments, the taxane particles are in a crystalline form. In other embodiments, the taxane particles are in an amorphous form, or a combination of both crystalline and amorphous forms. In some embodiments, the taxane particles of the present invention contain trace amounts of impurities and by-products typically found during the preparation of taxanes. In some embodiments, the taxane particles comprise at least 90%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99%, or 100% taxane, meaning that the taxane particles consist of, or consist essentially of, substantially pure taxane.
[0050] In some embodiments, the taxane particles are coated with or bound to a substance such as a protein (e.g., albumin), a monomer, a polymer, a biocompatible polymer, or a surfactant. In some embodiments, a substance such as a protein (e.g., albumin), a monomer, a polymer, a biocompatible polymer, or a surfactant is adsorbed or absorbed onto the surface of the taxane particle. In some embodiments, the taxane particles are encapsulated, contained, enclosed, or embedded within a substance such as a protein (e.g., albumin), a monomer, a polymer, a biocompatible polymer, or a surfactant. In some embodiments, the taxane particles are taxane-containing microemulsions, nanoemulsions, microspheres, or liposomes. In some embodiments, the taxane particles are non-aggregated individual particles, not clusters of multiple taxane particles bound together by interaction forces such as non-covalent interactions, van der Waals forces, hydrophilic or hydrophobic interactions, electrostatic interactions, Coulombic forces, interactions with dispersed materials, or interactions via functional groups. In some embodiments, the taxane particles are individual taxane particles formed by aggregation of smaller particles that fuse together to form larger individual taxane particles, all of which occur during processing of the taxane particles. In some embodiments, the taxane particles are clusters or aggregates of taxane particles that are bound together by interaction forces such as non-covalent interactions, van der Waals forces, hydrophilic or hydrophobic interactions, electrostatic interactions, Coulombic forces, interactions with dispersed materials, or interactions via functional groups.
[0051] The antitumor particles or taxane particles (including paclitaxel particles, docetaxel particles, or cabazitaxel particles) may be 0.1 microns to 5 microns, 0.1 microns to 2 microns, 0.1 microns to 1.5 microns, 0.1 microns to 1.2 microns, 0.1 microns to 1 micron, or 0.1 microns to less than 1 micron, or 0.1 microns to 0.9 microns, 0.1 microns to 0.8 microns, 0.1 microns to 0.7 microns, 0.2 microns to 5 microns, 0.2 microns to 2 microns, 0.2 microns to 1 micron, or 0.5 microns, 0.2 microns to 1.2 microns, 0.2 microns to 1 micron, or 0.2 microns to less than 1 micron, or 0.2 microns to 0.9 microns, 0.2 microns to 0.8 microns, 0.2 microns to 0.7 microns, 0.3 microns to 5 microns, 0.3 microns to 2 microns, 0.3 microns to 1.5 microns, 0.3 microns to 1.2 microns, 0.3 microns to 1 micron, or 0.3 microns to less than 1 micron, or 0.3 microns to 0.9 microns, 0.3 microns to 0.8 microns , 0.3 microns to 0.7 microns, 0.4 microns to 5 microns, 0.4 microns to 2 microns, 0.4 microns to 1.5 microns, 0.4 microns to 1.2 microns, 0.4 microns to 1 micron, or 0.4 microns to less than 1 micron, or 0.4 microns to 0.9 microns, 0.4 microns to 0.8 microns, 0.4 microns to 0.7 microns, 0.5 microns to 5 microns, 0.5 microns to 2 microns, 0.5 microns to 1.5 microns, 0.5 microns to 1.2 microns, 0.5 microns to 1 micron or 0.5 microns to less than 1 micron, or 0.5 microns to 0.9 microns, 0.5 microns to 0.8 microns, 0.5 microns to 0.7 microns, 0.6 microns to 5 microns, 0.6 microns to 2 microns, 0.6 microns to 1.5 microns, 0.6 microns to 1.2 microns, 0.6 microns to 1 micron, or 0.6 microns to less than 1 micron, or 0.6 microns to 0.9 microns, 0.6 microns to 0.8 microns, 0.6 microns to 0.7 microns.The antitumor or taxane particles are in a size range that is unlikely to be carried out of the tumor by the systemic circulation, yet benefit from a high specific surface area to provide enhanced drug solubilization and release.
[0052] The particle size of antitumor particles, including taxane particles, can be determined by particle size analyzer instruments, and the measurement is expressed as the average diameter based on the number distribution (number). A suitable particle size analyzer instrument uses the light obscuration analysis technique, also known as photozone or single particle optical detection (SPOS). A suitable light obscuration particle size analyzer instrument is the ACCUSIZER, such as the ACCUSIZER 780 SIS, available from Particle Sizing Systems, Port Richey, Florida. Another suitable particle size analyzer instrument uses laser diffraction, such as the Shimadzu SALD-7101.
[0053] Antitumor drug particles, including taxane particles, can be produced using various particle size reduction methods and devices known in the art. Such methods include, but are not limited to, conventional particle size reduction methods such as wet or dry milling, micronization, disintegration, and pulverization. Other methods include "precipitation with compressed antisolvents" (PCA), such as supercritical carbon dioxide. In various embodiments, the antitumor drug particles and / or taxane particles are made by PCA methods as disclosed in U.S. Patent Nos. 5,874,029, 5,833,891, 6,113,795, 7,744,923, 8,778,181, 9,233,348, U.S. Publication Nos. 2015 / 0375153, 2016 / 0354336, 2016 / 0374953, and International Patent Application Publication Nos. 2016 / 197091, 2016 / 197100, and 2016 / 197101, all of which are incorporated herein by reference.
[0054] The PCA particle size reduction method using supercritical carbon dioxide (SCCO) uses supercritical carbon dioxide (antisolvent) and a solvent, such as acetone or ethanol, to produce uncoated antitumor or taxane particles as small as 0.1 to 5 microns within a well-characterized particle size distribution. The carbon dioxide and solvent are removed during processing (up to 0.5% residual solvent may remain), leaving the antitumor or taxane particles as a powder. Stability studies have shown that paclitaxel particle powder is stable in vial dosage forms when stored at room temperature for up to 59 months and under accelerated conditions (40°C / 75% relative humidity) for up to 6 months.
[0055] Taxane particles produced by various supercritical carbon dioxide particle size reduction methods can have unique physical properties compared to taxane particles produced by conventional particle size reduction methods using physical impact or grinding, e.g., wet or dry milling, micronization, disintegration, comminuting, microfluidization, or pulverization. As disclosed in U.S. Publication No. 2016 / 0374953, which is incorporated herein by reference, such unique properties can be achieved by reducing the particle size by 0.05 g / cm. 3 ~0.15g / cm 3 of bulk density (untapped), and at least 18m 2The present invention includes taxane (e.g., paclitaxel and docetaxel) particles having a specific surface area (SSA) of 1 / g, which are produced by the supercritical carbon dioxide particle size reduction method described in U.S. Publication No. 2016 / 0374953 and described below. This bulk density range is generally lower than the bulk density of taxane particles produced by conventional means, and the SSA is generally higher than the SSA of taxane particles produced by conventional means. These unique properties result in significantly increased dissolution rates in water / methanol media compared to taxanes produced by conventional means. As used herein, "specific surface area" (SSA) is the total surface area of taxane particles per unit of taxane mass, as measured by the Brunauer-Emmett-Teller ("BET") isotherm according to the following method: A known mass of 200-300 mg of specimen is added to a 30 mL sample tube. The loaded tube is then placed in a Porous Materials Inc. SORPTOMETER®, Model BET-202A. Automated testing is then performed using the BETWIN® software package, and the surface area of each sample is subsequently calculated. As will be understood by those skilled in the art, "taxane particles" can include both agglomerated and non-agglomerated taxane particles, and because SSA is determined in grams, both agglomerated and non-agglomerated taxane particles in the composition are considered. Agglomerated taxane particles are defined herein as individual taxane particles formed by the aggregation of smaller particles that fuse together to form larger individual taxane particles, all of which occur during processing of the taxane particles. The BET specific surface area test procedure is an official method included in both the United States Pharmacopoeia and the European Pharmacopoeia. Bulk density measurements can be performed by pouring taxane particles into a graduated cylinder without tapping at room temperature, measuring the mass and volume, and calculating the bulk density.
[0056] As disclosed in U.S. Publication No. 2016 / 0374953, a study was conducted on paclitaxel particles produced by milling paclitaxel in a Deco-PBM-V-0.41 ball mill using a 5 mm ball size at 600 RPM for 60 minutes at room temperature.2 / g SSA and 0.31 g / cm 3 Also, as disclosed in U.S. Publication No. 2016 / 0374953, one batch of paclitaxel particles had a bulk density of 37.7 m when produced by a supercritical carbon dioxide process using the following method: 2 / g SSA and 0.085g / cm 3 A solution of 65 mg / mL paclitaxel was prepared in acetone. A BETE MicroWhirl® spray nozzle (BETE Fog Nozzle, Inc.) and sonic probe (Qsonica, model number Q700) were positioned approximately 8 mm apart within the crystallization chamber. A stainless steel mesh filter with approximately 100 nm holes was attached to the crystallization chamber to collect precipitated paclitaxel particles. Supercritical carbon dioxide was placed within the crystallization chamber of the manufacturing equipment and brought to approximately 1200 psi at approximately 38°C and a flow rate of 24 kg / hr. The sonic probe was adjusted to a frequency of 20 kHz and 60% total power. The acetone solution containing paclitaxel was pumped through the nozzle at a flow rate of 4.5 mL / min for approximately 36 hours. An additional lot of paclitaxel particles produced by the above supercritical carbon dioxide method was 22.27 m 2 / g, 23.90m 2 / g, 26.19m 2 / g, 30.02m 2 / g, 31.16m 2 / g, 31.70m 2 / g, 32.59m 2 / g, 33.82m 2 / g, 35.90m 2 / g, 38.22m 2 / g, and 38.52m 2 / g.
[0057] As disclosed in U.S. Publication No. 2016 / 0374953, studies have demonstrated a 15.2 m for docetaxel particles produced by milling docetaxel in a Deco-PBM-V-0.41 ball mill using 5 mm ball size at 600 RPM for 60 minutes at room temperature. 2 / g SSA and 0.44 g / cm3 Also, as disclosed in U.S. Publication No. 2016 / 0374953, docetaxel particles exhibited a bulk density of 44.2 m when produced by a supercritical carbon dioxide process using the following method: 2 / g SSA and 0.079 g / cm 3 A solution of docetaxel at 79.32 mg / mL was prepared in ethanol. The nozzle and sonic probe were positioned approximately 9 mm apart within the pressurizable chamber. A stainless steel mesh filter with approximately 100 nm holes was attached to the pressurizable chamber to collect precipitated docetaxel particles. Supercritical carbon dioxide was placed within the pressurizable chamber of the manufacturing apparatus and brought to approximately 1200 psi at approximately 38°C and a flow rate of 68 slpm. The sonic probe was adjusted to 60% total power at a frequency of 20 kHz. The ethanol solution containing docetaxel was pumped through the nozzle at a flow rate of 2 mL / min for approximately 95 minutes. The precipitated docetaxel agglomerated particles and smaller docetaxel particles were then collected from the supercritical carbon dioxide as the mixture was pumped through the stainless steel mesh filter. The filter containing the docetaxel particles was opened, and the resulting product was collected from the filter.
[0058] As disclosed in U.S. Publication No. 2016 / 0374953, dissolution studies showed increased dissolution rates in methanol / water media for paclitaxel and docetaxel particles made by the supercritical carbon dioxide method described in U.S. Publication No. 2016 / 0374953 compared to paclitaxel and docetaxel particles made by milling paclitaxel and docetaxel using a Deco-PBM-V-0.41 ball mill with 5 mm ball size at 600 RPM for 60 minutes at room temperature. The procedure used to determine the dissolution rate was as follows: For paclitaxel, approximately 50 mg of material was coated onto approximately 1.5 g of 1 mm glass beads by tumbling the material and beads in a vial for approximately 1 hour. The beads were transferred to a stainless steel mesh container and placed in a dissolution bath containing a 50 / 50 (v / v) methanol / water medium at pH 7 at 37°C and a USP Apparatus II (paddle) operating at 75 rpm. At 10, 20, 30, 60, and 90 minutes, 5 mL aliquots were removed, filtered through a 0.22 μm filter, and analyzed on a UV / VIS spectrophotometer at 227 nm. The absorbance values of the samples were compared to those of standard solutions prepared in the dissolution medium to determine the amount of dissolved material. For docetaxel, approximately 50 mg of material was placed directly into a dissolution bath containing a 15 / 85 (v / v) methanol / water medium at pH 7 at 37°C and a USP Apparatus II (paddle) operating at 75 rpm. At 5, 15, 30, 60, 120, and 225 minutes, 5 mL aliquots were removed, filtered through a 0.22 μm filter, and analyzed on a UV / VIS spectrophotometer at 232 nm. The absorbance values of the samples were compared to those of standard solutions prepared in dissolution medium to determine the amount of dissolved material. For paclitaxel, the dissolution rate was 47% for particles produced by supercritical carbon dioxide compared with 32% for particles produced by milling. For docetaxel, the dissolution rate was 27% for particles produced by supercritical carbon dioxide compared with 9% for particles produced by milling.
[0059] In some embodiments, the anti-tumor particles have at least 10, at least 12, at least 14, at least 16, at least 18, at least 19, at least 20, at least 21, at least 22, at least 23, at least 24, at least 25, at least 26, at least 27, at least 28, at least 29, at least 30, at least 31, at least 32, at least 33, at least 34, or at least 35 m 2 In one embodiment, the antitumor particles have an SSA of about 10 m / g. 2 / g~50m 2 In some embodiments, the anti-tumor particles have an SSA of about 0.050 g / cm 3 ~Approx. 0.20g / cm 3 It has a bulk density of
[0060] In a further embodiment, the antitumor particles have the following SSA: (a) 16m 2 / g~31m 2 / g, or 32m 2 / g~40m 2 / g, (b) 16m 2 / g~30m 2 / g, or 32m 2 / g~40m 2 / g, (c)16m 2 / g~29m 2 / g, or 32m 2 / g~40m 2 / g, (d) 17m 2 / g~31m 2 / g, or 32m 2 / g~40m 2 / g, (e) 17m 2 / g~30m 2 / g, or 32m 2 / g~40m 2 / g, (f)17m 2 / g~29m 2 / g, or 32m 2 / g~40m2 / g, (g)16m 2 / g~31m 2 / g, or 33m 2 / g~40m 2 / g, (h) 16m 2 / g~30m 2 / g, or 33m 2 / g~40m 2 / g, (i) 16m 2 / g~29m 2 / g, or 33m 2 / g~40m 2 / g, (j)17m 2 / g~31m 2 / g, or 33m 2 / g~40m 2 / g, (k)17m 2 / g~30m 2 / g, or 33m 2 / g~40m 2 / g, (l)17m 2 / g~29m 2 / g, or 33m 2 / g~40m 2 / g, (m)16m 2 / g~31m 2 / g, or ≥ 32m 2 / g, (h)17m 2 / g~31m 2 / g, or ≥ 32m 2 / g, (i) 16m 2 / g~30m 2 / g, or ≥ 32m 2 / g, (j)17m 2 / g~30m 2 / g, or ≥ 32m 2 / g, (k)16m 2 / g~29m 2 / g, or ≥ 32m 2 / g, (l)17m2 / g~29m 2 / g, or ≥ 32m 2 / g, (m)16m 2 / g~31m 2 / g, or ≥ 33m 2 / g, (n)17m 2 / g~31m 2 / g, or ≥ 33m 2 / g, (o)16m 2 / g~30m 2 / g, or ≥ 33m 2 / g, (p)17m 2 / g~30m 2 / g, or ≥ 33m 2 / g, (q)16m 2 / g~29m 2 / g, or ≥ 33m 2 / g, or (r)17m 2 / g~29m 2 / g, or ≥ 33m 2 / g.
[0061] In some embodiments, the anti-tumor particles are taxane particles. In some embodiments, the anti-tumor particles or taxane particles are individual taxane particles formed by aggregation of smaller particles that fuse together to form larger individual taxane particles, all of which occur during processing of the taxane particles. In some embodiments, the anti-tumor particles or taxane particles are non-aggregated individual particles and are not clusters of multiple anti-tumor particles or taxane particles that are bound together by interaction forces such as non-covalent interactions, van der Waals forces, hydrophilic or hydrophobic interactions, electrostatic interactions, Coulomb forces, interactions with dispersed materials, or interactions via functional groups.
[0062] In some embodiments, the taxane particles are paclitaxel particles and have a molecular weight of at least 18, at least 19, at least 20, at least 21, at least 22, at least 23, at least 24, at least 25, at least 26, at least 27, at least 28, at least 29, at least 30, at least 31, at least 32, at least 33, at least 34, or at least 35 m 2 In another embodiment, the paclitaxel particles have an SSA of 18m / g. 2 / g~50m 2 / g, or 20m 2 / g~50m2 / g, or 22m2 / g~50m2 / g, or 25m2 / g~50m2 / g, or 26m 2 / g~50m 2 / g, or 30m 2 / g~50m 2 / g, or 35m 2 / g~50m 2 / g, or 18m 2 / g~45m 2 / g, or 20m 2 / g~45m 2 / g, or 22m 2 / g~45m 2 / g, or 25m 2 / g~45m 2 / g, or 26m 2 / g~45m 2 / g, or 30m 2 / g~45m 2 / g, or 35m 2 / g~45m 2 / g, or 18m 2 / g~40m 2 / g, or 20m 2 / g~40m 2 / g, or 22m 2 / g~40m 2 / g, or 25m 2 / g~40m 2 / g, or 26m 2 / g~40m 2 / g, or 30m 2 / g~40m 2 / g, or 35m2 / g~40m 2 / g SSA.
[0063] In some embodiments, the paclitaxel particles have a density of 0.05 g / cm 3 ~0.15g / cm 3 , or 0.05 g / cm 3 ~0.20g / cm 3 It has a bulk density (untapped).
[0064] In some embodiments, the paclitaxel particles have a dissolution rate of at least 40% w / w dissolution within 30 minutes in a 50% methanol / 50% water (v / v) solution in a USP II paddle apparatus operating at 75 RPM at 37°C and a pH of 7.
[0065] In some embodiments, the taxane particles are docetaxel particles and have a molecular weight of at least 18, at least 19, at least 20, at least 21, at least 22, at least 23, at least 24, at least 25, at least 26, at least 27, at least 28, at least 29, at least 30, at least 31, at least 32, at least 33, at least 34, at least 35, at least 36, at least 37, at least 38, at least 39, at least 40, at least 41, or at least 42 m 2 In another embodiment, the docetaxel particles have an SSA of 18m / g. 2 / g~60m 2 / g, or 22m 2 / g~60m 2 / g, or 25m 2 / g~60m 2 / g, or 30m 2 / g~60m 2 / g, or 40m 2 / g~60m 2 / g, or 18m 2 / g~50m 2 / g, or 22m 2 / g~50m 2 / g, or 25m 2 / g~50m2 / g, or 26m 2 / g~50m 2 / g, or 30m 2 / g~50m 2 / g, or 35m 2 / g~50m 2 / g, or 40m 2 / g~50m 2 / g SSA.
[0066] In some embodiments, the docetaxel particles have a density of 0.05 g / cm 3 ~0.15g / cm 3 It has a bulk density (untapped).
[0067] In some embodiments, the docetaxel particles have a dissolution rate of at least 20% w / w dissolution within 30 minutes in a 15% methanol / 85% water (v / v) solution in a USP II paddle apparatus operating at 75 RPM at 37°C and a pH of 7.
[0068] II. Compositions for Topical Administration Compositions useful for local administration include those containing antitumor particles, including taxane particles, as described herein and throughout this disclosure, and are suitable for various types of local administration, i.e., topical application, pulmonary administration, intratumoral (IT) injection, and intraperitoneal (IP) injection. The composition may be a suspension. For example, the composition may include a carrier in which the antitumor particles are dispersed within the carrier, such that the carrier is the continuous phase and the antitumor particles are the dispersed (suspended) phase. The antitumor particles may be completely dispersed or partially dispersed and partially dissolved in the composition and / or carrier, but the antitumor particles may not be completely dissolved in the composition and / or carrier.
[0069] A. Compositions for topical application The composition for topical application (topical composition) contains antitumor particles such as taxane particles. The antitumor particles can be dispersed (suspended) in the topical composition. The topical composition can be any composition suitable for topical delivery. The topical composition can be a hydrophobic composition. The topical composition can be an anhydrous composition, which can include an anhydrous hydrophilic composition or an anhydrous hydrophobic composition. Non-limiting examples of anhydrous hydrophilic compositions include polyol-, glycol- (e.g., propylene glycol, PEG), and / or poloxamer-based compositions. The topical composition can be non-anhydrous, such as an aqueous-based composition. The topical composition can be sterile, self-preserving, or contain a preservative.
[0070] Topical compositions can be formulated in various forms suitable for topical delivery. Non-limiting examples include semisolid compositions, lotions, liquid suspensions, emulsions, creams, gels, ointments, pastes, aerosol sprays, aerosol foams, non-aerosol sprays, non-aerosol foams, films, and sheets. Semisolid compositions include ointments, pastes, and creams. Topical compositions can be impregnated into gauze, bandages, or other skin coverings. In some embodiments, the topical composition is a semisolid composition. In some embodiments, the topical composition is an ointment. In other embodiments, the topical composition is a gel. In still other embodiments, the topical composition is a liquid suspension. In some embodiments, the topical composition is not a spray or is not sprayable.
[0071] In some embodiments, the topical composition does not include, or does not contain, a polymer / copolymer or a biocompatible polymer / copolymer. In some embodiments, the composition does not include, or does not contain, a protein. In some aspects of the invention, the composition does not include, or does not contain, an albumin. In some aspects of the invention, the composition does not include, or does not contain, a hyaluronic acid. In some aspects of the invention, the composition does not include, or does not contain, a conjugate of hyaluronic acid and a taxane. In some aspects of the invention, the composition does not include, or does not contain, a conjugate of hyaluronic acid and paclitaxel. In some aspects of the invention, the composition does not include, or does not contain, a poloxamer, a polyanion, a polycation, a modified polyanion, a modified polycation, chitosan, a chitosan derivative, a metal ion, a nanovector, poly-gamma-glutamic acid (PGA), polyacrylic acid (PAA), alginic acid (ALG), vitamin E-TPGS, dimethyl isosorbide (DMI), methoxy PEG. 350, without / without or containing citric acid, anti-VEGF antibody, ethylcellulose, polystyrene, polyanhydrides, polyhydroxy acids, polyphosphazenes, polyorthoesters, polyesters, polyamides, polysaccharides, polyproteins, styrene-isobutylene-styrene (SIBS), polyanhydride copolymers, polycaprolactone, polyethylene glycol (PEG), poly(bis(p-carboxyphenoxy)propane-sebacic acid), poly(d,l-lactic acid) (PLA), poly(d,l-lactic-co-glycolic acid) (PLAGA), and / or poly(D,L-lactic-co-glycolic acid (PLGA).
[0072] Topical composition can be packaged in any suitable packaging configuration for topical products.Non-limiting examples include bottles, pump bottles, bottles, tubes (aluminum, plastic, or laminate), jars, non-aerosol pump sprayers, aerosol containers, pouches, and packets.Packages can be configured for single or multiple doses.
[0073] Non-limiting examples of suitable topical compositions are disclosed in International Patent Publication No. WO 2017 / 049083, which is incorporated herein by reference.
[0074] 1. Hydrophobic topical compositions In some embodiments, the topical composition is a hydrophobic composition.For the purposes of this disclosure, a hydrophobic composition is a composition in which the total amount of hydrophobic components in the composition is greater than the total amount of non-hydrophobic components in the composition.In some embodiments, the hydrophobic composition is anhydrous.In some embodiments, the hydrophobic composition comprises a hydrophobic carrier.
[0075] The hydrophobic carrier can include materials from plant, animal, paraffin, and / or synthetic sources. Hydrophobic materials are generally known as materials that have no affinity for water and repel water. The hydrophobic carrier can be the continuous phase of the topical composition, and the antitumor particles can be the dispersed phase. In various embodiments, the hydrophobic carrier is non-polar and / or non-volatile. Non-limiting examples of hydrophobic carriers include fats, butters, greases, waxes, solvents, and oils; mineral oils; vegetable oils; petrolatum; water-insoluble organic esters and triglycerides; and fluorine compounds. The hydrophobic carrier can also include silicone materials. Silicone materials are defined as polydialkylsiloxane-based compounds and include polymers, elastomers (crosslinked silicones), and adhesives (branched silicones). Non-limiting examples of silicone materials include dimethicone (polydimethylsiloxane), dimethicone copolyol, cyclomethicone, simethicone, silicone elastomers such as ST-elastomer 10 (DOW CORNING), silicone oils, silicone polymers, volatile silicone fluids, and silicone waxes. In some embodiments, the hydrophobic carrier does not contain silicone materials. Plant-derived materials include, but are not limited to, arachis (peanut) oil, balsam peruvian oil, carnauba wax, candelilla wax, castor oil, hydrogenated castor oil, cocoa butter, coconut oil, corn oil, cottonseed oil, jojoba oil, macadamia seed oil, olive oil, orange oil, orange wax, palm kernel oil, rapeseed oil, safflower oil, sesame oil, shea butter, soybean oil, sunflower seed oil, tea tree oil, vegetable oil, and hydrogenated vegetable oil. Non-limiting examples of animal-derived materials include beeswax (yellow and white), cod liver oil, emu oil, lard, mink oil, shark liver oil, squalane, squalene, and tallow. Non-limiting examples of paraffinic materials include isoparaffin, microcrystalline wax, heavy mineral oil, light mineral oil, ozokerite, petrolatum, white petrolatum, and paraffin wax.Non-limiting examples of organic esters and triglycerides include C12-15 alkyl benzoates, isopropyl myristate, isopropyl palmitate, medium chain triglycerides, mono- and diglycerides, trilaurin, and trihydroxystearin. A non-limiting example of a fluorinated compound is a perfluoropolyether (PFPE), such as FOMBLIN® HC04, available from Solvay Specialty Polymers. The hydrophobic carrier can include pharmaceutical grade hydrophobic materials.
[0076] In various embodiments, the hydrophobic carrier comprises petrolatum, mineral oil, paraffin, or a mixture thereof. Petrolatum is a refined mixture of semi-solid saturated hydrocarbons obtained from petroleum and varies in color from dark amber to light yellow. White petrolatum is completely or nearly bleached and varies in color from cream to snow white. Petrolatums with different melting points, viscosities, and consistency characteristics are available. Petrolatum may also contain stabilizers such as antioxidants. Pharmaceutical-grade petrolatums include Petrolatum USP and White Petrolatum USP. Mineral oil is a mixture of liquid hydrocarbons obtained from petroleum. Various viscosity grades of mineral oil are available, including light mineral oil, heavy mineral oil, and extra-heavy mineral oil. Light mineral oil has a kinematic viscosity of 33.5 centistokes or less at 40°C. Heavy mineral oil has a kinematic viscosity of 34.5 centistokes or more at 40°C. Pharmaceutical-grade mineral oils include Mineral Oil USP, which is a heavy mineral oil, and Light Mineral Oil NF, which is a light mineral oil. In some embodiments, the mineral oil is heavy mineral oil. Paraffin wax is a refined mixture of solid hydrocarbons obtained from petroleum. It can also be synthetically derived from carbon monoxide and hydrogen, catalytically converted to a mixture of paraffin hydrocarbons by the Fischer-Tropsch process. Paraffin wax may contain antioxidants. Pharmaceutical-grade paraffin waxes include Paraffin NF and Synthetic Paraffin NF.
[0077] In some embodiments, the concentration of the hydrophobic carrier in the hydrophobic composition is greater than 10% w / w of the total composition weight. In other embodiments, the concentration of the hydrophobic carrier in the hydrophobic composition is greater than 15%, or greater than 20%, or greater than 25%, or greater than 30%, or greater than 35%, or greater than 40%, or greater than 45%, or greater than 50%, or greater than 55%, or greater than 60%, or greater than 65%, or greater than 70%, or greater than 75%, or greater than 80%, or greater than 82%, or greater than 85%, or greater than 87%, or greater than 90% w / w of the total composition weight. In other embodiments, the concentration of the hydrophobic carrier in the hydrophobic composition is greater than 10% w / w to 95% w / w of the total composition weight. In other embodiments, the concentration of the hydrophobic carrier in the hydrophobic composition is 11% to 95% w / w, or 12% to 95% w / w, or 13% to 95% w / w, or 14% to 95% w / w, or 15% to 95% w / w, or 16% to 95% w / w, or 17% to 95% w / w, or 18% to 95% w / w, or 19% to 95% w / w, or 20% to 95% w / w. In a preferred embodiment, the hydrophobic carrier in the hydrophobic composition is greater than 50% of the hydrophobic composition.
[0078] The hydrophobic composition can include a hydrophobic carrier and can further include one or more volatile silicone fluids.Volatile silicone fluids, also known as volatile silicone oils, are volatile liquid polysiloxanes that can be cyclic or linear.They are liquid at room temperature.Volatile silicone fluids are hydrophobic materials.Linear volatile silicone fluids include polydimethylsiloxane, hexamethyldisiloxane, and octamethyltrisiloxane, and are commercially available from Dow Corning under the trade names DOW CORNING Q7-9180 Silicone Fluid 0.65 cSt and DOW CORNING Q7-9180 Silicone Fluid 1.0 cSt, respectively.Cyclic volatile silicone fluids are generally known as cyclomethicones.Cyclomethicones are represented by the formula (IV): (IV) [-(CH3)2SiO-] n Cyclomethicone is a fully methylated cyclic siloxane containing the repeating unit cyclomethicone (where n is 3, 4, 5, 6, or 7), or a mixture thereof. Cyclomethicone is a clear, colorless, volatile liquid silicone fluid. Cyclomethicone has emollient properties and helps improve the feel of oily products by making them less sticky on the skin. Pharmaceutical grade cyclomethicones include Cyclomethicone NF, which is represented by formula (IV) where n is 4 (cyclotetrasiloxane), 5 (cyclopentasiloxane), or 6 (cyclohexasiloxane), or a mixture thereof. Cyclopentasiloxane, also known as decamethylcyclopentasiloxane, cyclomethicone D5, or cyclomethicone 5, is a cyclomethicone represented by formula (IV), where n is 5 (pentamer), but it may contain small amounts (generally less than 1%) of one or more other cyclic chain-length cyclomethicones. Cyclopentasiloxane is available in pharmaceutical grade as Cyclomethicone NF. Cyclomethicone is commercially available from Dow Corning under the trade names DOW CORNING ST-Cyclomethicone 5-NF, DOW CORNING ST-Cyclomethicone 56-NF, and XIAMETER PMX-0245. It is also commercially available from Spectrum Chemical Mfg. Corp. Cyclopentasiloxane has a vapor pressure of about 20 to about 27 Pa at 25°C.
[0079] In one embodiment, the concentration of cyclomethicone in the hydrophobic composition is less than 25% w / w. In another embodiment, the concentration of cyclomethicone in the hydrophobic composition is 5 to 24% w / w. In another embodiment, the concentration of cyclomethicone is 5 to 20% w / w. In another embodiment, the concentration of cyclomethicone is 5 to 18% w / w. In another embodiment, the concentration of cyclomethicone is 13% w / w. In various embodiments, the concentration of cyclomethicone can be 5, 5.5, 6, 6.5, 7, 7.5, 8, 8.5, 9, 9.5, 10, 10.5, 11, 11.5, 12, 12.5, 13, 13.5, 14, 14.5, 15, 15.5, 16, 16.5, 17, 17.5, 18, 18.5, 19, 19.5, 20, 20.5, 21, 21.5, 22, 22.5, 23, 23.5, or 24% w / w of the total composition weight, or any percentage derivable therein. In some embodiments, the volatile silicone fluid is cyclomethicone. In some embodiments, the cyclomethicone is cyclopentasiloxane.
[0080] The hydrophobic composition can be a suspension of antitumor particles, such as taxane particles, in a mixture of a hydrophobic carrier and a volatile silicone fluid. The antitumor particles can be completely dispersed, or partially dispersed and partially dissolved, in the hydrophobic composition, but the antitumor particles cannot be completely dissolved in the hydrophobic composition. The hydrophobic carrier can be the continuous phase of the hydrophobic composition, and the antitumor particles can be the dispersed phase. Thus, the hydrophobic composition can contain at least two phases: a continuous hydrophobic carrier phase and a dispersed (suspended) antitumor particle phase. The volatile silicone fluid can be solubilized and / or dispersed within the continuous phase.
[0081] In some embodiments, the hydrophobic composition does not have / does not contain additional penetration enhancers. In some embodiments, the hydrophobic composition does not have / does not contain laurocapram. In some embodiments, the hydrophobic composition does not have / does not contain diethylene glycol monoethyl ether (DGME). In some embodiments, the hydrophobic composition does not have / does not contain isopropyl myristate. In other embodiments, the hydrophobic composition does not have / does not contain alpha tocopherol. In other embodiments, the hydrophobic composition does not have / does not contain additional volatile solvents or compounds. In some embodiments, the hydrophobic composition does not have / does not contain any alcohols or C1-C4 fatty alcohols. In some embodiments, the hydrophobic composition does not have / does not contain C1-C5 fatty alcohols. In other embodiments, the hydrophobic composition does not have / does not contain surfactants. In other embodiments, the hydrophobic composition does not have / does not contain polymers / copolymers (or biodegradable polymers / copolymers). In other embodiments, the hydrophobic composition does not have / include poloxamer, styrene-isobutylene-styrene (SIBS), polyanhydride copolymer, polycaprolactone, polyethylene glycol, poly(bis(P-carboxyphenoxy)propane-sebacic acid), and / or poly(D,L lactic-co-glycolic acid (PLGA).
[0082] In some embodiments, the hydrophobic composition is a semi-solid composition. In some embodiments, the hydrophobic composition is an ointment. In some embodiments, the hydrophobic composition is a semi-solid composition, including an ointment, and has a viscosity of 12,500 cps to 247,500 cps, or 25,000 cps to 150,000 cps, when measured at room temperature with a Brookfield RV viscometer using a small sample adapter with an SC4-14 spindle and a 6R chamber at 5 rpm with a 2 minute equilibration time. An alternative method for measuring the viscosity of a hydrophobic semi-solid composition is to use a Brookfield RV viscometer on a helipath stand with the helipath on, using a TE spindle at 10 RPM for 45 seconds at room temperature. In some embodiments, the hydrophobic composition is a semi-solid composition, including an ointment, and has a viscosity of 12,500 cps to 247,500 cps, or 25,000 cps to 150,000 cps, when measured at room temperature with a Brookfield RV viscometer on a helipath stand with the helipath on, using a TE spindle at 10 RPM for 45 seconds at room temperature. Using an RV viscometer, 25,000cps to 500,000cps, or 25,000cps to 400,000cps, or 25,000cps to 350,000cps, or 25,000cps to 300,000cps, or 50,000cps to 500,000cps, or 50,000cps to 400,000cps, or 50,000cps to 350,000cps, or 50,000cps to 300,000cps, or or 75,000 cps to 500,000 cps, or 75,000 cps to 400,000 cps, or 75,000 cps to 350,000 cps, or 75,000 cps to 300,000 cps, or 100,000 cps to 500,000 cps, or 100,000 cps to 400,000 cps, or 100,000 cps to 350,000 cps, or 100,000 cps to 300,000 cps.
[0083] 2.Aqueous topical composition A topical aqueous-based composition comprises antitumor particles, such as taxane particles, and an aqueous carrier. The aqueous composition is a dispersion (suspension) of antitumor particles in an aqueous carrier. The antitumor particles can be completely dispersed, partially dispersed, and partially dissolved in the aqueous carrier, but cannot be completely dissolved. An aqueous-based composition is a composition in which water is the major component (more than 50%). Aqueous carriers can include single-phase aqueous solutions and multi-phase aqueous emulsions, such as oil-in-water and water-in-oil emulsions. Non-limiting examples of aqueous carriers include water and buffer solutions.
[0084] Non-limiting examples of topical aqueous-based compositions include an aqueous carrier (e.g., water) containing poloxamer 407, a quaternary ammonium compound, and / or a crosslinked acrylic acid polymer, as disclosed in International Patent Publication No. WO 2017 / 049083. Non-limiting examples of quaternary ammonium compounds include benzalkonium chloride and benzethonium chloride. Non-limiting examples of crosslinked acrylic acid polymers include Carbomer (INCI name), Acrylates Copolymer (INCI name), Acrylates / C10-30 Alkyl Acrylate Crosspolymer (INCI name), Acrylates Crosspolymer-4 (INCI name), and Polyacrylate-1 Crosspolymer (INCI name).
[0085] 3. Additional Ingredients and Excipients of the Topical Composition Topical composition can further comprise functional ingredients suitable for use in topical compositions.Non-limiting examples include absorbents, acidifiers, antibacterial agents, antioxidants, binders, biocides, buffers, bulking agents, crystal growth inhibitors, chelating agents, colorants, deodorants, emulsion stabilizers, film-forming agents, fragrances, moisturizing agents, dissolving agents, enzymes, opacifiers, oxidizing agents, pH adjusters, plasticizers, preservatives, reducing agents, emollient skin conditioning agents, moisturizing skin conditioning agents, moisturizing agents, surfactants, emulsifiers, detergents, foaming agents, hydrotropes, solvents, suspending agents, viscosity control agents (rheology modifiers), viscosity-increasing agents (thickeners), and propellants.The list of examples and research papers of functional ingredients described herein are disclosed in The International Cosmetic Ingredient Dictionary and Handbook (INCI), 12th, 2008, which is incorporated herein by reference.
[0086] In some embodiments, the topical composition includes a penetration enhancer. In other embodiments, the topical composition does not have or contain an additional penetration enhancer. The term "penetration enhancer" is used to describe a compound, material, or substance that promotes drug absorption through the skin. These compounds, materials, or substances can directly affect the permeability of the skin, or they can enhance percutaneous absorption by increasing the thermodynamic activity of the penetrant, thereby increasing the effective fugitive tendency and concentration gradient of the diffusing species. The primary effect of these enhancers is either to increase the hydration of the stratum corneum or to disrupt its lipoprotein matrix, the end result in either case being a decrease in resistance to drug (penetrant) diffusion (Remington, The Science and Practice of Pharmacy, 22nd ed.). Non-limiting examples of skin penetration enhancers include oleyl alcohol, isopropyl myristate, dimethyl isosorbide (DMI), available under the trade name ARLASOLVE DMI, and diethylene glycol monoethyl ether (DGME), available under the trade name TRANSCUTOL P. Other examples of skin penetration enhancers can be found in "Skin Penetration Enhancers Cited in the Technical Literature," Osborne, David W., and Henke, Jill J., Pharmaceutical Technology, November 1997, which is incorporated herein by reference. Such examples include fatty alcohols, e.g., aliphatic alcohols, decanol, lauryl alcohol (dodecanol), linolenyl alcohol, nerolidol, 1-nonanol, n-octanol, oleyl alcohol, fatty acid esters, butyl acetate, cetyl lactate, decyl N,N-dimethylaminoacetate, decyl N,N-dimethylaminoisopropionate, diethyl glycol oleate, diethyl sebacate, diethyl succinate, diisopropyl sebacate, dodecyl N,N-dimethylaminoacetate, dodecyl (N,N-dimethylamino)-butyrate, dodecyl N,N-dimethylaminoisopropionate, methyl methyl acrylate ...N-dimethylaminoisopropionate, dodecyl 2-(dimethylamino)propionate, EO-5-oleyl ester, ethyl acetate, ethyl acetoacetate, ethyl propionate, glycerin monoether, glycerol monolaurate, glycerol monooleate, glycerol monolinoleate, isopropyl isostearate, isopropyl linoleate, isopropyl myristate, isopropyl myristate / fatty acid monoglyceride combination, isopropyl myristate / ethanol / L-lactic acid (87:10:3) combination, isopropyl palmitate, methyl acetate, methyl caprate, methyl laurate, methyl propionate, methyl valerate, 1-monocaproylglycerol, medium chain monoglyceride, benzyl nicotinate, octyl acetate, octyl N,N-dimethylaminoacetate, oleyl oleate, n-pentyl N-acetylprolinate, Propylene glycol monolaurate, sorbitan dilaurate, sorbitan dioleate, sorbitan monolaurate, sorbitan monooleate, sorbitan trilaurate, sorbitan trioleate, sucrose coconut fatty ester mixture, sucrose monolaurate, sucrose monooleate, and tetradecyl N,N-dimethylaminoacetate; fatty acids, such as alkanoic acid, capric acid, dioleic acid, ethyl octadecanoic acid, hexanoic acid, lactic acid, lauric acid, linoleic acid, linolenic acid, neodecanoic acid, oleic acid, palmitic acid, pelargonic acid, propionic acid, and vaccinium chloride; fatty alcohol ethers, such as α-monoglyceryl ether, EO-2-oleyl ether, EO-5-oleyl ether, EO-10-oleyl ether, and ether derivatives of polyglycerin and alcohols (1-O-dodecyl-3-O-methyl-2-O-(2',3'-dihydroxypropyl)glycerol); biologicals, such as L-α-amino acids, lecithin, phospholipids, saponin / phospholipids, sodium deoxycholate, sodium taurocholate, sodium taurocholate, and sodium tauroglycocholate; enzymes, such as acid phosphatase, caronase, olgelase, papain, phospholipase A-2, phospholipase C, and triacylglycerol hydrolase; amines and amides, such as acetamide derivatives, acyclic amides, N-adamantyl n-alkanamides, clofibric acid amide, N,N-didodecylacetamide, di-2-ethylhexylamine, diethylmethylbenzamide, N,N-diethyl-m-toluamide, N,N-dimethyl-m-toluamide, Ethomeen S12 [bis-(2-hydroxyethyl)oleylamine], hexamethylene lauramide, laurylamine (dodecylamine), octylamide, oleylamine, unsaturated cyclic ureas, and ureas; complexing agents, such as β- and γ-cyclodextrin complexes, hydroxypropyl methylcellulose, liposomes, naphthalenediamide diimides, and naphthalenediester diimides; macrocyclic compounds, such as macrocyclic lactones, ketones, and anhydrides (optimal ring-16), and unsaturated cyclic ureas; typical surfactants, such as Brij 30, Brij 35, Brij 36T, Brij 52, Brij 56, Brij 58, Brij 72, Brij 76, Brij 78, Brij 92, Brij 96, Brij 98, cetyltrimethylammonium bromide, Empicol ML26 / F, HCO-60 surfactant, hydroxypolyethoxydodecane, ionic surfactants (ROONa, ROSO3Na, RNH3Cl, R = 8-16), lauroyl sarcosine, nonionic surfactants, nonoxynol, octoxynol, phenylsulfonate CA, Pluronic F68, Pluronic F 127, Pluronic L62, polyoleates (nonionic surfactants), Rewopal HV 10, sodium laurate, sodium lauryl sulfate (sodium dodecyl sulfate), sodium oleate, sorbitan dilaurate, sorbitan dioleate, sorbitan monolaurate, sorbitan trilaurate, sorbitan trioleate, Span 20, Span 40, Span 85, Synperonic NP, Triton X-100, Tween 20, Tween 40, Tween 60, Tween 80, and Tween 85; N-methylpyrrolidone and related compounds, such as N-cyclohexyl-2-pyrrolidone, 1-butyl-3-dodecyl-2-pyrrolidone, 1,3-dimethyl-2-imidazoliquinone, 1,5-dimethyl-2-pyrrolidone, 4,4-dimethyl-2-undecyl-2-oxazoline, 1-ethyl-2-pyrrolidone, 1-hexyl-4-methyloxycarbonyl-2-pyrrolidone, 1-hexyl-2-pyrrolidone, 1-(2-hydroxyethyl)pyrrolidinone, 3-hydroxy-N-methyl-2-pyrrolidinone, 1-isopropyl-2-undecyl-2-imidazoline, 1-lauryl-4-methyloxycarbonyl-2-pyrrolidone, N-methyl-2-pyrrolidone, poly(N-vinylpyrrolidone), pyroglutamic acid esters, and 2-pyrrolidone (2-pyrrolidinone); ions compounds such as ascorbate, amphoteric cations and anions, calcium thioglycolate, cetyltrimethylammonium bromide, sodium 3,5-diiodosalicylate, iodinated lauroylcholine, sodium 5-methoxysalicylate, monoalkyl phosphates, 2-PAM chloride, 4-PAM chloride (derivatives of N-methylpicolinium chloride), sodium carboxylate, and sodium hyaluronate; dimethyl sulfoxide and compounds such as cyclic sulfoxides, decylmethyl sulfoxide, dimethyl sulfoxide (DMSO), and 2-hydroxyundecylmethyl sulfoxide; solvents and related compounds, such as acetone, n-alkanes (chain lengths of 7 to 16), cyclohexyl-1,1-dimethylethanol, dimethylacetamide, dimethylformamide, ethanol, ethanol / d-limonene combination, 2-ethyl-1,3-hexanediol, ethoxydiglycol (TRANSCUTOL), glycerol, glycol, lauryl chloride, limonene, N-methylformamide, 2-phenylethanol, 3-phenyl-1-propanol, 3-phenyl-2-propanol, Pen-1-ol, polyethylene glycol, polyoxyethylene sorbitan monoester, polypropylene glycol, primary alcohol (tridecanol), propylene glycol, squalene, triacetin, trichloroethanol, trifluoroethanol, trimethylene glycol, and xylene; azone and related compounds, such as N-acyl-hexahydro-2-oxo-1H-azepine, N-alkyl-dihydro-1,4-oxazepine-5,7-diones, N-alkylmorpholine-2,3-diones, N-alkylmorpholine-3,5-Dione, Azacycloalkane Derivatives (-Ketone, -Thion), Azacycloalkenone Derivatives, 1-[2-(Decylthio)ethyl]azacyclopentan-2-one (HPE-101), N-(2,2-Dihydroxyethyl)dodecylamine, 1-Dodecanoylhexahydro-1-H-azepine, 1-Dodecylazacycloheptan-2-one (AZONE or laurocapram), N-Dodecyldiethanolamine, N-Dodecyl-hexahydro-2-thio-1H-azepine, N-Dodecyl-N-(2-Methoxyethyl)acetamide, N-Dodecyl- N-(2-Methoxyethyl)isobutyramide, N-Dodecyl-piperidine-2-thione, N-Dodecyl-2-piperidinone, N-Dodecylpyrrolidine-3,5-dione, N-Dodecyl 1-pyrrolidine-2-thione, N-Dodecyl-2-pyrrolidone, 1-Famecylazacycloheptan-2-one, 1-Famecylazacyclopentan-2-one, 1-Geranylazacycloheptan-2-one, 1-Geranylazacyclopentan-2-one, Hexahydro-2-oxo-azepine-1-acetic acid ester, N-(2-Hydroxyethyl)-2-pyrrolidone, 1 -laurylazacycloheptane, 2-(1-nonyl)-1,3-dioxolane, 1-N-octylazacyclopentan-2-one, N-(1-oxododecyl)-hexahydro-1H-azepine, N-(1-oxododecyl)-morpholine, 1-oxohydrocarbyl-substituted azacyclohexane, N-(1-oxotetradecyl)-hexahydro-2-oxo-1H-azepine, and N-(1-thiododecyl)-morpholine; and others, such as aliphatic thiols, alkyl N,N-dialkyl-substituted aminoacetates, aniseed oil, anticholinergic pretreatments. , ascaridol, biphasic base derivatives, bisabolol, cardamom oil, 1-carvone, Chenopodium (70% ascaridol), chenopodium oil, 1,8-cineole (eucalyptol), cod liver oil (fatty acid extract), 4-decyloxazolidin-2-one, dicyclohexylmethylamine oxide, diethylhexadecylphosphonate, diethylhexadecylphosphoramidate, N,N-dimethyldodecylamine-N-oxide, 4,4-dimethyl-2-undecyl-2-oxazoline, N-dodecanoyl-L-amino acid methyl ester, 1,3-Dioxacycloalkane (SEPA), dithiothreitol, eucalyptol (cineole), eucalyptus oil, eugenol, herbal extracts, lactam N-acetate, N-hydroxyetharamide, N-hydroxyethylacetamide, 2-hydroxy-3-oleoyloxy-1-pyroglutamyloxypropane, Examples of penetration enhancers include menthol, menthone, morpholine derivatives, N-oxides, nerolidol, octyl-β-D-(thio)glucopyranoside, oxazolidinone, piperazine derivatives, polar lipids, polydimethylsiloxane, poly[2-(methylsulfinyl)ethyl acrylate], polyrotaxane, polyvinylbenzyldimethylalkylammonium chloride, poly(N-vinyl-N-methylacetamide), sodium pyroglutamate, terpenes and azacyclocyclic compounds, vitamin E (α-tocopherol), vitamin E TPGS, and ylang-ylang oil. Further examples of penetration enhancers not listed above can be found in the "Handbook of Pharmaceutical Excipients," Fifth Edition, and include glycofurol, lanolin, light mineral oil, myristic acid, polyoxyethylene alkyl ethers, and thymol. Other examples of penetration enhancers include ethanolamine, diethanolamine, triethanolamine, diethylene glycol, monoethyl ether, citric acid, succinic acid, borage oil, tetrahydropiperine (THP), methanol, ethanol, propanol, octanol, benzyl alcohol, myristyl alcohol, cetyl alcohol, stearyl alcohol, and polyethylene glycol monolaurate.
[0087] In some embodiments, the topical composition comprises an alcohol, a C1-C4 aliphatic alcohol, and / or a C1-C5 aliphatic alcohol. In other embodiments, the topical composition does not have / include or contain a C1-C4 aliphatic alcohol and / or a C1-C5 aliphatic alcohol. In some embodiments, the topical composition comprises a volatile solvent. In other embodiments, the topical composition does not have / include a volatile solvent. Volatile solvents are also known as "fugitive" solvents. Non-limiting examples of volatile solvents include volatile alcohols, e.g., C1-C4 aliphatic alcohols; C1-C5 alcohols, and volatile C1-C4 aliphatic ketones, e.g., acetone.
[0088] In some embodiments, the topical composition comprises a surfactant. In other embodiments, the topical composition does not have / contain a surfactant. The term "surfactant" or "surface active agent" refers to a compound or material or substance that exhibits the ability to reduce the surface tension of water or the interfacial tension between two immiscible substances, including anionic, cationic, nonionic, amphoteric, and / or phospholipid surfactants. Non-limiting examples of surfactants can also be found in McCutcheon's Emulsifiers & Detergents, 2001 North American Edition, which is incorporated herein by reference, and the International Cosmetic Ingredient Dictionary and Handbook (INCI), 12th Edition, 2008, which is incorporated herein by reference. Such examples include block polymers, e.g., poloxamer 124; ethoxylated alcohols, e.g., ceteth-2, ceteareth-20, laureth-3; ethoxylated fatty esters and oils, e.g., PEG-40 hydrogenated castor oil, PEG-36 castor oil, PEG-150 distearate; glycerol esters, e.g., polyglyceryl-3 diisostearate, glyceryl stearate; glycol esters, PEG-12 dioleate, LEXEMUL P; phosphate esters, e.g., cetyl phosphate; polymeric surfactants, e.g., PVM / MA copolymer, acrylates / C10-30 alkyl acrylate crosspolymer; quaternary surfactants, e.g., cetrimonium chloride; silicone surfactants, e.g., PEG / PPG-20 / 6 dimethicone; sorbitan derivatives, e.g., sorbitan stearate, polysorbate 80; sucrose and glucose esters and derivatives, e.g., PEG-20 methyl glucose sesquistearate; and sulfates of alcohols, e.g., sodium lauryl sulfate. More generally, surfactants can be classified by their ionic type, such as anionic, cationic, nonionic, or amphoteric.They can also be classified by their chemical structure, such as block polymers, ethoxylated alcohols, ethoxylated fatty esters and oils, glycerol esters, glycol esters, phosphate esters, polymeric surfactants, quaternary surfactants, silicone surfactants, sorbitan derivatives, sucrose and glucose esters and derivatives, and sulfates of alcohols.
[0089] In some embodiments, the topical composition comprises a protein such as albumin. In other embodiments, the topical composition does not have / does not include a protein such as albumin.
[0090] In a preferred embodiment, the topical composition is a hydrophobic composition comprising a hydrophobic carrier, one or more volatile silicone fluids, and taxane particles, the taxane particles having an average particle size (number) of 0.1 microns to 1.5 microns. In a further preferred embodiment, the hydrophobic carrier comprises petrolatum, mineral oil, paraffin wax, or a mixture thereof. In a further preferred embodiment, the one or more volatile silicone fluids are cyclomethicone at a concentration of 5 to 25% w / w of the composition. In a further preferred embodiment, the taxane particles are paclitaxel particles.
[0091] 4. Concentration of antitumor particles in the topical composition The concentration or amount of anti-tumor particles in the topical composition is an "effective amount" for (1) stimulating an immunological response to the immunotherapeutic agent in the subject, and (2) treating the tumor(s) in the subject, i.e., for providing a therapeutic effect on the tumor by achieving one or more of the following: (a) reducing tumor size, (b) reducing tumor growth rate, (c) eliminating the tumor. The concentration of the anti-tumor particles, which may be taxane particles, may be 0.05-10% w / w of the total composition weight, or the concentration of the anti-tumor particles may be 0.05-5% w / w, or the concentration of the anti-tumor particles may be 0.1-5% w / w, or the concentration of the anti-tumor particles may be 0.05, 0.1, 0.15, 0.2, 0.25, 0.3, 0.4, 0.5, 0.6, 0.7, 0.75, 0.8, 0.9, 1.0, 1.1, 1.2, 1.25, 1.3, 1.4, 1.5, 1.6, 1.7, The amount of the antitumor particles may be 1.75, 1.8, 1.9, 2.0, 2.1, 2.2, 2.25, 2.3, 2.4, 2.5, 2.6, 2.7, 2.75, 2.8, 2.9, 3.0, 3.1, 3.2, 3.25, 3.3, 3.4, 3.5, 3.6, 3.7, 3.75, 3.8, 3.9, 4.0, 4.1, 4.2, 4.25, 4.3, 4.4, 4.5, 4.6, 4.7, 4.75, 4.8, 4.9, 5, 6, 7, 8, 9, or 10% w / w, or any percentage derivable therein. In some embodiments, the antitumor particles are taxane particles, such as paclitaxel nanoparticles, docetaxel nanoparticles, or cabazitaxel nanoparticles. In some embodiments, the taxane particles are paclitaxel particles.In some embodiments, the taxane particles comprise less than about 0.05 to about 3% w / w of the composition, or about 0.05 to about 2% w / w, or about 0.05 to about 1% w / w, or about 0.05 to about 0.3% w / w, or about 0.05 to about 0.2% w / w, or about 0.05 to about 0.15% w / w, or about 0.1 to about 2% w / w, or about 0.1 to about 1% w / w, or about 0.1 to about 0.3% w / w. w / w, or about 0.1 to about 0.2% w / w, or about 0.15 to about 2% w / w, or about 0.15 to about 1% w / w, or about 0.15 to about 0.3% w / w, or about 0.3 to about 2% w / w, or about 0.3 to about 1% w / w, or about 1 to about 2% w / w, or about 0.2 to about 0.4% w / w, or about 0.5 to about 1.5% w / w, or about 1.5 to about 2.5% w / w. In other embodiments, the concentration of taxane particles is 80-120% of 1% w / w (i.e., 0.8-1.2% w / w), or 80-120% of 0.05% w / w, or 80-120% of 0.1% w / w, or 80-120% of 0.15% w / w, or 80-120% of 0.2% w / w, or 80-120% of 0.25% w / w, or 80-120% of 0.3% w / w, or 80-120% of 0.35% w / w, or 80-120% of 0.4% w / w, or 80-120% of 0.45% w / w, or 80-120% of 0.5% w / w. 120% w / w, or 80-120% of 0.55% w / w, or 80-120% of 0.6% w / w, or 80-120% of 0.65% w / w, or 80-120% of 0.7% w / w, or 80-120% of 0.75% w / w, or 80-120% of 0.8% w / w, or 80-120% of 0.85% w / w, or 80-120% of 0.9% w / w, or 80-120% of 0.95% w / w, or 80-120% of 1.5% w / w, or 80-120% of 2% w / w, or 80-120% of 2.5% w / w.
[0092] B. Compositions for Pulmonary Administration, Intratumoral (IT) Injection, and / or Intraperitoneal (IP) Injection Compositions suitable for pulmonary administration, intratumoral (IT) injection, and / or intraperitoneal (IP) injection include, for example, antitumor particles such as taxane particles, and are described below. The composition can further include a carrier. The composition can be anhydrous or can include an anhydrous carrier. The carrier can be a liquid (fluid) carrier, such as an aqueous carrier. Non-limiting examples of suitable aqueous carriers include sterile water for injection, USP; 0.9% saline solution (physiological saline), such as 0.9% sodium chloride for injection, USP; dextrose solution, such as 5% dextrose for injection, USP; and lactated Ringer's solution for injection, USP. Non-aqueous and other aqueous liquid carriers can be used. The carrier can be a pharmaceutically acceptable carrier, i.e., a carrier suitable for administration to a subject by injection, pulmonary route, or other administration route. The carrier can be an emulsion or other type of liquid, such as a flowable semisolid. Non-limiting examples of flowable semisolids include gels and thermosetting gels. The composition may be a suspension, i.e., a suspension-form composition in which antitumor particles, such as taxane particles, are dispersed (suspended) in a continuous carrier and / or diluent. The antitumor particles may be completely dispersed, partially dispersed, and partially dissolved in the carrier, but not completely dissolved. In some embodiments, the composition is a suspension of taxane particles dispersed in a continuous carrier. In preferred embodiments, the carrier is a pharmaceutically acceptable carrier. In preferred embodiments, the composition is sterile. In various embodiments, the composition comprises, consists essentially of, or consists of antitumor particles and a liquid carrier, and the composition is a suspension of antitumor particles dispersed in a liquid carrier. In some embodiments, the composition consists essentially of, or consists of, the antitumor particles and the carrier, the carrier is an aqueous carrier, and the composition is a suspension.
[0093] The composition of antitumor particles and a carrier can be administered directly. Optionally, the composition of antitumor particles and a carrier can further contain a suitable diluent to dilute the composition to achieve the desired concentration (dosage) of antitumor particles. In some embodiments, the carrier can function as a diluent; in other words, the amount of carrier in the composition provides the desired concentration of antitumor particles in the composition, and no further dilution is necessary. A suitable diluent can be a fluid, such as an aqueous fluid. Non-limiting examples of suitable aqueous diluents include sterile water for injection, USP; 0.9% saline solution (physiological saline), such as 0.9% sodium chloride for injection, USP; dextrose solution, such as 5% dextrose for injection, USP; and lactated Ringer's solution for injection, USP. Other liquid and aqueous diluents suitable for administration by injection can be used and may optionally contain salts, buffers, and / or other excipients. In a preferred embodiment, the diluent is sterile. The composition can be diluted with the diluent in a ratio that provides the desired concentration and dosage of antitumor particles. For example, the volume ratio of the composition to the diluent can be in the range of 1:1 to 1:100 v / v or other suitable ratio. In some embodiments, the composition comprises antitumor particles, a carrier, and a diluent, wherein the carrier and diluent form a mixture, and the composition is a suspension of the antitumor particles dispersed in the carrier / diluent mixture. In some embodiments, the carrier / diluent mixture is the continuous phase, and the antitumor particles are the dispersed phase.
[0094] The composition, carrier, and / or diluent may contain functional ingredients such as buffers, salts, osmotic agents, surfactants, viscosity modifiers, rheology modifiers, suspending agents, pH adjusters such as alkalizing or acidifying agents, tonicity adjusters, preservatives, antibacterial agents including quaternary ammonium compounds such as benzalkonium chloride and benzethonium chloride, demulcents, antioxidants, antifoaming agents, chelating agents, and / or colorants. For example, the composition may contain taxane particles and a carrier comprising water, salts, surfactants, and optionally a buffer. In one embodiment, the carrier is an aqueous carrier and contains a surfactant, and the surfactant concentration is 1% or less on a w / w or w / v basis. In other embodiments, the surfactant concentration is less than 0.5%, less than 0.25%, less than 0.1%, or about 0.1%. In other embodiments, the aqueous carrier excludes the surfactants GELUCIRE® (polyethylene glycol glycerides composed of mono-, di-, and triglycerides and mono- and diesters of polyethylene glycol) and / or CREMOPHOR® (polyethoxylated castor oil). In some embodiments, the composition or carrier excludes polymers, proteins (such as albumin), polyethoxylated castor oil, and / or polyethylene glycol glycerides composed of mono-, di-, and triglycerides and mono- and diesters of polyethylene glycol.
[0095] The composition, carrier, and / or diluent may contain one or more surfactants. Suitable surfactants include, but are not limited to, polysorbates, lauryl sulfate, acetylated monoglycerides, diacetylated monoglycerides, and poloxamers such as Poloxamer 407. Polysorbates are polyoxyethylene sorbitan fatty acid esters, which are a series of partial fatty acid esters of sorbitol and its anhydrides, copolymerized with approximately 20, 5, or 4 moles of ethylene oxide per mole of sorbitol and its anhydrides. Non-limiting examples of polysorbates include polysorbate 20, polysorbate 21, polysorbate 40, polysorbate 60, polysorbate 61, polysorbate 65, polysorbate 80, polysorbate 81, polysorbate 85, and polysorbate 120. Polysorbates containing approximately 20 moles of ethylene oxide are hydrophilic nonionic surfactants. Examples of polysorbates containing about 20 moles of ethylene oxide include polysorbate 20, polysorbate 40, polysorbate 60, polysorbate 65, polysorbate 80, polysorbate 85, and polysorbate 120. Polysorbates are commercially available from Croda under the trade name TWEEN™. The number designations of polysorbates correspond to the TWEEN number designations, e.g., polysorbate 20 is TWEEN 20, polysorbate 40 is TWEEN 40, polysorbate 60 is TWEEN 60, polysorbate 80 is TWEEN 80, etc. USP / NF grade polysorbates include polysorbate 20 NF, polysorbate 40 NF, polysorbate 60 NF, and polysorbate 80 NF. Polysorbates are also available in PhEur (European Pharmacopoeia), BP, and JP grades. The term "polysorbate" is a generic name. The chemical name for polysorbate 20 is polyoxyethylene 20 sorbitan monolaurate. The chemical name for polysorbate 40 is polyoxyethylene 20 sorbitan monopalmitate. The chemical name for polysorbate 60 is polyoxyethylene 20 sorbitan monostearate.The chemical name for polysorbate 80 is polyoxyethylene 20 sorbitan monooleate. In some embodiments, the composition, carrier, and / or diluent can comprise a mixture of polysorbates. In some embodiments, the composition, carrier, and / or diluent comprises polysorbate 20, polysorbate 40, polysorbate 60, polysorbate 65, polysorbate 80, polysorbate 85, and / or polysorbate 120. In some embodiments, the composition, carrier, and / or diluent comprises polysorbate 20, polysorbate 40, polysorbate 60, and / or polysorbate 80. In one embodiment, the composition, carrier, and / or diluent comprises polysorbate 80.
[0096] In some embodiments, the composition comprises antitumor particles, a carrier, and optionally a diluent, wherein the carrier and / or diluent comprises water and a polysorbate. In one embodiment, the composition is a suspension, the antitumor particles are taxane particles, and the polysorbate is polysorbate 80. In other embodiments, the polysorbate or polysorbate 80 is present in the composition, carrier, and / or diluent at a concentration of about 0.01% v / v to about 1.5% v / v. Surprisingly, the inventors have discovered that even the recited very small amounts of polysorbate 80 reduce the surface tension at the interface between the antitumor particles and an aqueous carrier (e.g., saline solution). These embodiments are typically formulated closer to the time of use of the composition. In some embodiments, the particles may be coated with polysorbate or polysorbate 80. In other embodiments, the particles are not coated with polysorbate or polysorbate 80.In various other embodiments, polysorbate or polysorbate 80 is present in the composition, carrier, and / or diluent at about 0.01% v / v to about 1% v / v, about 0.01% v / v to about 0.5% v / v, about 0.01% v / v to about 0.4% v / v, about 0.01% v / v to about 0.35% v / v, about 0.01% v / v to about 0.3% v / v, about 0.01% v / v to about 0.25% v / v, about 0.01% v / v to about 0.2% v / v, about 0.01% v / v to about 0.15% v / v, about 0.01% v / v ~ approx. 0.1%v / v, approx. 0.05%v / v ~ approx. 1%v / v, approx. 0.05%v / v ~ approx. 0.5%v / v, approx. 0.05%v / v ~ approx. 0.4%v / v, approx. 0.05%v / v ~ approx. 0.35%v / v, approx. 0.05%v / v ~ approx. 0.3%v / v, Approx. 0.05%v / v~Approx. 0.25%v / v, Approx. 0.05%v / v~Approx. 0.2%v / v, Approx. 0.05%v / v~Approx. 0.15%v / v, Approx. 0.05%v / v~Approx. 0.1%v / v, Approx. 0.1%v / v~Approx. 1%v / v, Approx. 0.1%v / v~Approx. 0.5% v / v, approx. 0.1%v / v ~ approx. 0.4%v / v, approx. 0.1%v / v ~ approx. 0.35%v / v, approx. 0.1%v / v ~ approx. 0.3%v / v, approx. 0.1%v / v ~ approx. 0.25%v / v, approx. 0.1%v / v ~ approx. 0.2%v / v, approx. 0.1%v / v ~ approx. 0 .15%v / v, approx. 0.2%v / v~approx. 1%v / v, approx. 0.2%v / v~approx. 0.5%v / v, approx. 0.2%v / v~approx. 0.4%v / v, approx. 0.2%v / v~approx. It is present at a concentration of 0.25% v / v, about 0.3% v / v to about 1% v / v, about 0.3% v / v to about 0.5% v / v, about 0.3% v / v to about 0.4% v / v, or about 0.3% v / v to about 0.35% v / v, or about 0.01%, about 0.05%, about 0.1% v / v, about 0.15% v / v, about 0.16% v / v, about 0.2% v / v, about 0.25% v / v, about 0.3% v / v, about 0.35% v / v, about 0.4% v / v, about 0.45% v / v, about 0.5% v / v, or about 1% v / v.
[0097] The composition, carrier, and / or diluent may contain one or more tonicity adjusters. Suitable tonicity adjusters include, by way of example and not limitation, one or more inorganic salts, electrolytes, sodium chloride, potassium chloride, sodium phosphate, potassium phosphate, sodium, potassium sulfate, sodium and potassium bicarbonate, and alkaline earth metal salts, e.g., alkaline earth metal inorganic salts, e.g., calcium salts and magnesium salts, mannitol, dextrose, glycerin, propylene glycol, and mixtures thereof.
[0098] The composition, carrier, and / or diluent may contain one or more buffers. Suitable buffers include, by way of example and not limitation, dibasic sodium phosphate, monobasic sodium phosphate, citric acid, sodium citrate, tris(hydroxymethyl)aminomethane, bis(2-hydroxyethyl)iminotris-(hydroxymethyl)methane, and sodium bicarbonate, as well as others known to those skilled in the art. Buffers are generally used to adjust the pH to a desired range for intraperitoneal use. Typically, a pH of about 5-9, 5-8, 6-7.4, 6.5-7.5, or 6.9-7.4 is desired.
[0099] The composition, carrier, and / or diluent can include one or more demulcents. Demulcents are agents that form a smooth, thin film on mucous membranes, such as the membranes covering the peritoneum and the organs therein. Demulcents may relieve minor pain and inflammation and are sometimes referred to as mucosal protectants. Suitable demulcents include cellulose derivatives, such as sodium carboxymethylcellulose, hydroxyethylcellulose, hydroxypropylmethylcellulose, and methylcellulose, in the range of about 0.2 to about 2.5%; about 0.01% gelatin; about 0.05 to about 1% polyols, including about 0.05 to about 1% glycerin, polyethylene glycol 300, polyethylene glycol 400, and propylene glycol; about 0.1 to about 4% polyvinyl alcohol; about 0.1 to about 2% povidone, and, when used in conjunction with another polymeric demulcent described herein, about 0.1% dextran 70.
[0100] The composition, carrier, and / or diluent may contain one or more alkalizing agents to adjust the pH. As used herein, the term "alkalinizing agent" is intended to mean a compound used to provide an alkaline medium. Such compounds include, by way of example and not limitation, ammonia solution, ammonium carbonate, potassium hydroxide, sodium carbonate, sodium bicarbonate, and sodium hydroxide, as well as others known to those skilled in the art.
[0101] The composition, carrier, and / or diluent may contain one or more acidifying agents to adjust pH.As used herein, the term "acidifying agent" is intended to mean a compound used to provide an acidic medium.Such compounds include, but are not limited to, acetic acid, amino acids, citric acid, nitric acid, fumaric acid, and other alphahydroxy acids, hydrochloric acid, ascorbic acid, and nitric acid, and others known to those skilled in the art.
[0102] Composition, carrier, and / or diluent can contain one or more anti-foaming agents.As used herein, the term "anti-foaming agent" is intended to mean a compound (or compounds) that prevents or reduces the amount of foam that forms on the surface of the fill composition.Suitable anti-foaming agents include, but are not limited to, dimethicone, octoxynol, and others known to those skilled in the art.
[0103] The composition, carrier, and / or diluent may contain one or more viscosity modifiers to increase or decrease the viscosity of the suspension. Suitable viscosity modifiers include methylcellulose, hydroxypropylmethylcellulose, mannitol, polyvinylpyrrolidone, cross-linked acrylic acid polymers such as carbomer, and others known to those skilled in the art. The composition, carrier, and / or diluent may further contain a rheology modifier that modifies the flow properties of the composition so that it can flow properly through devices such as syringe needles or tubing. Non-limiting examples of viscosity modifiers and rheology modifiers can be found in "Rheology Modifiers Handbook - Practical Use and Application" by Braun, William Andrew Publishing, 2000.
[0104] The concentration or amount of anti-tumor particles in the composition for pulmonary administration, intratumoral injection, or intraperitoneal injection is an "effective amount" for (1) stimulating an immunological response to the immunotherapeutic agent in the subject, and (2) treating the subject's tumor(s), i.e., for providing a therapeutic effect on the tumor by achieving one or more of the following: (a) reducing tumor size, (b) reducing tumor growth rate, or (c) eliminating the tumor. In one embodiment, the concentration of the anti-tumor particles, which may be taxane particles, in the composition is from about 0.1 mg / mL to about 100 mg / mL. In various further embodiments, the concentration of the antitumor particles, which may be taxane particles, in the composition is from about 0.5 mg / mL to about 100 mg / mL, from about 1 mg / mL to about 100 mg / mL, from about 2 mg / mL to about 100 mg / mL, from about 5 mg / mL to about 100 mg / mL, from about 10 mg / mL to about 100 mg / mL, from about 25 mg / mL to about 100 mg / mL, from about 30 mg / mL to about 100 mg / mL, from about 0.1 mg / mL to about 75 mg / mL, g / mL, about 0.5 mg / mL to about 75 mg / mL, about 1 mg / mL to about 75 mg / mL, about 2 mg / mL to about 75 mg / mL, about 5 mg / mL to about 75 mg / mL, about 10 mg / mL to about 75 mg / mL, Approximately 25mg / mL to approximately 75mg / mL, approximately 30mg / mL to approximately 75mg / mL, approximately 0.1mg / mL to approximately 50mg / mL, approximately 0.5mg / mL to approximately 50mg / mL, approximately 1mg / mL to approximately 50mg / mL, approximately 2m g / mL~about 50mg / mL, about 5mg / mL~about 50mg / mL, about 10mg / mL~about 50mg / mL, about 25mg / mL~about 50mg / mL, about 30mg / mL~about 50mg / mL, about 0.1mg / m L ~ about 40mg / mL, about 0.5mg / mL - about 40mg / mL, about 1mg / mL - about 40mg / mL, about 2mg / mL - about 40mg / mL, about 5mg / mL - about 40mg / mL, about 10mg / mL - about 40m g / mL, about 25 mg / mL to about 40 mg / mL, about 30 mg / mL to about 40 mg / mL, about 0.1 mg / mL to about 30 mg / mL, about 0.5 mg / mL to about 30 mg / mL, about 1 mg / mL to about 30 mg / m L, about 2 mg / mL to about 30 mg / mL, about 5 mg / mL to about 30 mg / mL, about 10 mg / mL to about 30 mg / mL, about 25 mg / mL to about 30 mg / mL, about 0.1 mg / mL to about 25 mg / mL, about 0.5 mg / mL to about 25 mg / mL, about 1 mg / mL to about 25 mg / mL, about 2 mg / mL to about 25 mg / mL, about 5 mg / mL to about 25 mg / mL, about 10 mg / mL to about 25 mg / mL, about 0.1 mg / mL to about 20 mg / mL, about 0. 5 mg / mL to about 20 mg / mL, about 1 mg / mL to about 20 mg / mL, about 2 mg / mL to about 20 mg / mL, about 5 mg / mL to about 20 mg / mL, about 10 mg / mL to about 20 mg / mL, about 0.1 mg / mL to about 15 mg / mL, about 0. 5 mg / mL to about 15 mg / mL, about 1 mg / mL to about 15 mg / mL, about 2 mg / mL to about 15 mg / mL, about 5 mg / mL to about 15 mg / mL, about 10 mg / mL to about 15 mg / mL, about 0.1 mg / mL to about 10 mg / mL, about 0. 5mg / mL to about 10mg / mL, about 1mg / mL to about 10mg / mL, about 2mg / mL to about 10mg / mL, about 5mg / mL to about 10mg / mL, about 0.1mg / mL to about 5mg / mL, about 0.5mg / mL to about 5mg / mL, about 1mg / mL to about 5 mg / mL, about 2 mg / mL to about 5 mg / mL, about 0.1 mg / mL to about 2 mg / mL, about 0.5 mg / mL to about 2 mg / mL, about 1 mg / mL to about 2 mg / mL, about 0.1 mg / mL to about 1 mg / mL, about 0.5 mg / mL to about 1 mg / mL, about 0.1 mg / mL to about 0.5 mg / mL, about 3 mg / mL to about 8 mg / mL, or about 4 mg / mL to about 6 mg / mL, or at least about 0.1, 0.5, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 14, 16, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 2, 13, 14, 15, 16, 17, 18, 19, 20, 25, 30, 35, 40, 45, 50, 55, 60, 61, 65, 70, 75, or 100 mg / mL, or about 0.1, 0.5, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 25, 30, 35, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 55, 60, 61, 65, 70, 75, or 100 mg / mL. The anti-tumor particles may be the only therapeutic agent administered or may be administered in conjunction with other therapeutic agents.
[0105] In various embodiments, the composition comprises taxane particles (paclitaxel particles or docetaxel particles), a carrier, and a diluent, and the concentration of the taxane particles in the composition (including the carrier and diluent) is about 1 mg / mL to about 40 mg / mL, about 5 mg / mL to about 20 mg / mL, about 5 mg / mL to about 15 mg / mL, about 5 mg / mL to about 10 mg / mL, about 6 mg / mL to about 20 mg / mL, about 6 mg / mL to about 15 mg / mL, about 6 mg / mL to about 10 mg / mL, about 10 mg / mL to about 20 mg / mL, or about 10 mg / mL to about 15 mg / mL, or about 6 mg / mL, about 10 mg / mL, or about 15 mg / mL. In further embodiments, the carrier is an aqueous carrier, which may be a saline solution such as about 0.9% sodium chloride solution, and the diluent is an aqueous diluent, which may be a saline solution such as about 0.9% sodium chloride solution. In a further embodiment, the aqueous carrier comprises a polysorbate, such as polysorbate 80.
[0106] In some embodiments, the composition does not include or does not contain a polymer / copolymer or a biocompatible polymer / copolymer. In some embodiments, the composition does not include or does not contain a protein. In some aspects of the invention, the composition does not include or does not contain albumin. In some aspects of the invention, the composition does not include or does not contain hyaluronic acid. In some aspects of the invention, the composition does not include or does not contain a conjugate of hyaluronic acid and a taxane. In some aspects of the invention, the composition does not include or does not contain a conjugate of hyaluronic acid and paclitaxel. In some aspects of the invention, the composition does not include or does not contain a poloxamer, a polyanion, a polycation, a modified polyanion, a modified polycation, chitosan, a chitosan derivative, a metal ion, a nanovector, poly-gamma-glutamic acid (PGA), polyacrylic acid (PAA), alginic acid (ALG), vitamin E-TPGS, dimethyl isosorbide (DMI), methoxy PEG. 350, without / without or containing citric acid, anti-VEGF antibody, ethylcellulose, polystyrene, polyanhydrides, polyhydroxy acids, polyphosphazenes, polyorthoesters, polyesters, polyamides, polysaccharides, polyproteins, styrene-isobutylene-styrene (SIBS), polyanhydride copolymers, polycaprolactone, polyethylene glycol (PEG), poly(bis(p-carboxyphenoxy)propane-sebacic acid), poly(d,l-lactic acid) (PLA), poly(d,l-lactic-co-glycolic acid) (PLAGA), and / or poly(D,L-lactic-co-glycolic acid (PLGA).
[0107] In a preferred embodiment, the composition suitable for pulmonary administration, intratumoral injection, and / or intraperitoneal injection comprises taxane particles and a liquid carrier, wherein the taxane particles have an average particle size (number) of 0.1 microns to 1.5 microns. In a more preferred embodiment, the taxane particles are paclitaxel particles. In a more preferred embodiment, the liquid carrier is an aqueous carrier.
[0108] III. Immunotherapeutic Agents and Compositions for Systemic Delivery of Immunotherapeutic Agents There are several classes of immunotherapeutic agents used to treat cancer, including but not limited to the following classes: Monoclonal antibody: A drug designed to bind to a specific target in the body. Non-limiting examples of monoclonal antibodies include pertuzumab, trastuzumab, ado-tastruzumab emtansine, bevacizumab, ramucirumab, margetuximab, vantixumab, glenbatumumab vedotin, cetuximab, bavituximab, rilotumumab, nivolumab, pembrolizumab, and atezolizumab. Cancer vaccines: These drugs work against cancer by increasing the immune system's response to cancer cells. Non-limiting examples of cancer vaccines include neripepimto-S, tergenpumasel-L, and racotumomab. Nonspecific immunotherapy / cytokine: Proteins made by the body's cells that play an important role in the body's normal immune response and also in the immune system's ability to respond to cancer. Non-limiting examples include colony-stimulating factors, interferons, and interleukins such as interleukin-2 and interleukin-7. Immune checkpoint inhibitors / immunomodulators: Take the "brakes" off the immune system, helping it recognize and attack cancer cells. Non-limiting examples include ipilimumab, pembrolizumab, and nivolumab. Adoptive cell transfer / T cell therapy / cell therapy: Attempts to enhance the natural ability of T cells to fight cancer. Non-limiting examples include tumor-infiltrating lymphocytes, T cells targeting HER2, cMET protein, CEA, VEGFR-2, MAGE-A3, and lung cancers expressing NY-ESO-1 cancer antigens. Oncolytic virotherapy: The use of genetically engineered viruses to kill cancer cells. Non-limiting examples include reoviruses. BCG (Bacillus Calmette-Guerin): A weakened form of the bacterium that causes tuberculosis. Triggers an immune response against cancer cells.
[0109] In some embodiments, the immunotherapeutic agent is a monoclonal antibody, a cancer vaccine, a non-specific immunotherapeutic agent, a cytokine, an interferon, an interleukin, a colony-stimulating factor, a checkpoint inhibitor, an immunomodulatory agent, an adoptive cell transfer agent, a T cell therapy, a cellular therapy, an oncolytic virus therapy, BCG, and / or an adjuvant immunotherapeutic agent. In some embodiments, the immunotherapeutic agent is pembrolizumab.
[0110] A composition useful for systemic administration, i.e., the second composition of the present invention, comprises an immunotherapeutic agent as described herein and throughout this disclosure and is suitable for systemic administration, such as enteral or parenteral administration. Non-limiting examples of systemic administration routes include intravenous (IV), intramuscular, intraarticular, injection, oral, rectal, buccal, and sublingual. The composition may include a suitable carrier, such as a pharmaceutical carrier. In a preferred embodiment, the composition is sterile.
[0111] IV. Administration and Treatment Methods In one aspect of the present invention, a method for treating cancer in a subject is disclosed, the method comprising: (a) locally administering a first composition comprising anti-tumor particles to a malignant tumor in the subject; and (b) systemically administering a second composition comprising an immunotherapeutic agent, thereby treating the cancer, wherein the anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns.
[0112] A. Topical Administration Methods Direct local administration of a composition comprising antitumor drug particles to a tumor includes topical application, pulmonary administration, intratumoral injection, and intraperitoneal injection. The compositions for local administration described herein and throughout this disclosure are suitable for use in various types of local administration, namely, topical application, pulmonary administration, intratumoral injection, and intraperitoneal injection.
[0113] 1. Topical application method In one aspect of the present invention, a method for treating cancer in a subject is disclosed, the method comprising: (a) locally administering a first composition comprising anti-tumor particles to an area of the subject affected by a skin tumor; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer. The anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. The skin tumor can be benign, e.g., actinic keratosis, or malignant (skin malignancy), e.g., skin cancer or skin metastasis. In some embodiments, the tumor in step (a) is a benign tumor, and the subject has cancer elsewhere in the body. In some embodiments, the tumor in step (a) is a malignant tumor and is the only cancer in the subject's body. In other embodiments, the tumor in step (a) is a malignant tumor, and the subject also has cancer elsewhere in the body. An "affected area" of a benign skin tumor or skin malignancy can include at least a portion of the skin where the benign skin tumor or skin malignancy is visibly present on the outermost surface of the skin or just below the skin surface (epithelial / dermal covering), and can include an area of skin near the benign skin tumor or skin malignancy that is likely to contain a visibly undetectable preclinical lesion. The skin malignancy can be a skin cancer or a skin metastasis. In some embodiments, the skin malignancy is a skin metastasis. In other embodiments, the skin malignancy is a skin cancer. The skin metastasis can be from various primary cancers, such as the following non-limiting examples of primary cancers: breast, lung, nose, sinuses, larynx, oral cavity, colon (large intestine), rectum, stomach, ovary, testis, bladder, prostate, cervix, vagina, thyroid, endometrium, kidney, esophagus, pancreas, liver, melanoma, and Kaposi's sarcoma (including AIDS-associated Kaposi's sarcoma). In some embodiments, the skin metastasis is from lung cancer, breast cancer, colon cancer, oral cancer, ovarian cancer, kidney cancer, esophageal cancer, gastric cancer, or liver cancer. In some embodiments, the skin metastasis is from breast cancer. Non-limiting examples of skin cancer include melanoma, basal cell carcinoma, and squamous cell carcinoma. In some embodiments, the method does not include additional skin-directed therapy, such as electrochemotherapy (ECT), photodynamic therapy (PDT), radiation therapy (RT), or intralesional therapy (ILT).
[0114] The amount of composition topically applied to an area affected by a skin malignancy may vary depending on the size of the affected area and the concentration of anti-tumor particles in the composition, but generally, a dime-thick layer can be applied to completely cover the affected area. Another suitable method for determining the amount of composition to apply is the "fingertip unit" (FTU) approach. One FTU is the amount of topical composition that would be squeezed from a standard tube along the tip of an adult's finger (assuming the tube has a standard 5 mm nozzle). The fingertip is from the very tip of the finger to the first line of the finger. The composition can be applied with a gloved hand, a spatula, or other topical administration means. In some embodiments, the composition is applied to a skin malignancy with an intact skin covering (epithelial / dermal covering). In some embodiments, the composition is applied to an ulcerated area where the skin covering is on the surface of the skin or where the skin covering has broken down, exposing the skin malignancy lesion. The affected area can be gently washed with water (and mild soap, if necessary) and dried before application. Once the composition is applied, the application site may be covered with an occlusive dressing such as TEGADERM® or SOLOSITE®. Dosage of the composition may vary, but generally may involve one, two, or three applications per day at approximately the same time each day until the condition improves or is eliminated.
[0115] 2. Pulmonary administration method Disclosed herein are methods for treating cancer in a subject, the methods including (a) administering to the subject by pulmonary administration a first composition comprising anti-tumor particles; and (b) systemically administering to the subject a second composition comprising an immunotherapeutic agent, thereby treating the cancer. The anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns. The subject has a pulmonary disease, and steps (a) and (b) can be performed in any order or simultaneously. The pulmonary disease can be non-cancerous or cancerous. In some embodiments, the pulmonary disease is non-cancerous, and the subject has cancer in a body region other than the lung. The non-cancerous pulmonary disease is a restrictive pulmonary disease, such as pulmonary fibrosis, or an obstructive pulmonary disease, such as chronic obstructive pulmonary disease (COPD). In other embodiments, the pulmonary disease is cancerous. In some embodiments, the cancerous pulmonary disease is a malignant tumor or mesothelioma. The malignant lung tumor is any tumor present in the lung, and can be a primary or metastatic lung tumor. Non-limiting examples of malignant lung tumors include small cell lung cancer (SCLC) and non-small cell lung cancer (NSCLC). In one embodiment, the malignant lung tumor is SCLC. In another embodiment, the malignant lung tumor is NSCLC. Pulmonary administration of taxane particles according to the method of the present invention has been shown to result in a much longer residence time of the taxane in the lung than previously possible using any other taxane formulation. As shown in the following examples, the taxane remains detectable in the lung tissue of a subject for at least 96 hours (4 days) or at least 336 hours (14 days) after administration. In various further embodiments, the taxane remains detectable in the lung tissue of a subject for at least 108, 120, 132, 144, 156, 168, 180, 192, 204, 216, 228, 240, 252, 264, 276, 288, 300, 312, 324, or 336 hours after administration. In some embodiments, the cancerous lung disease is the only cancer in the body. In some embodiments, the subject has cancerous lung disease and cancer in other areas of the body.
[0116] In one specific embodiment of the present invention, pulmonary administration involves inhalation of a first composition containing antitumor particles, such as via nasal or oral inhalation, or both. In this embodiment, the first composition containing antitumor particles can be formulated as an aerosol (i.e., droplets of a stable dispersion or suspension of antitumor particles in a gaseous medium). Antitumor particles delivered as an aerosol composition can be deposited in the respiratory tract by gravitational settling, inertial impaction, and / or diffusion. Any suitable device for generating an aerosol can be used, including, but not limited to, pressurized metered dose inhalers (pMDIs), nebulizers, and soft mist inhalers. In some embodiments, the antitumor particles are in dry powder form and can be used in a dry powder inhaler (DPI). Drug particles are typically placed in a capsule in a DPI device. Upon actuation, the capsule ruptures, releasing a smoke of dry powder. While the drug powder can be adjusted to the desired mass median aerodynamic diameter (MMAD), the most common method is to blend a small drug powder with a carrier such as lactose for pulmonary delivery. The drug particles adhere to the lactose particles by static adhesion. Lactose for pulmonary delivery can be sized to a desired MMAD, such as about 2.5 microns. Other sugars, such as mannitol, can also be used.
[0117] In one particular embodiment, the method comprises inhaling a first composition comprising antitumor particles aerosolized by nebulization. Nebulizers generally use compressed air or ultrasonic power to create inhalable aerosol droplets of the composition comprising aerosol particles. In this embodiment, nebulization results in the pulmonary delivery of the aerosol droplets of the composition comprising antitumor particles to the subject. In a preferred embodiment, the antitumor particles are taxane particles. In a more preferred embodiment, the taxane particles are paclitaxel particles. A suitable nebulizer is a Hospitak compressed air jet nebulizer.
[0118] In another embodiment, the method comprises inhaling a first composition comprising aerosolized antitumor particles via a pMDI, the composition comprising the antitumor particles being suspended in a suitable propellant system (including, but not limited to, hydrofluoroalkane (HFA) containing at least one liquefied gas in a pressurized container sealed with a metering valve). Actuation of the valve results in delivery of a metered dose of the aerosol spray of the composition comprising the antitumor particles. In a preferred embodiment, the antitumor particles are taxane particles. In a further preferred embodiment, the taxane particles are paclitaxel particles.
[0119] In embodiments in which a composition comprising anti-tumor particles is aerosolized for administration, the mass median aerodynamic diameter (MMAD) of the aerosol droplets of the composition comprising anti-tumor particles can be any suitable diameter for use in the present invention. In one embodiment, the aerosol droplets have an MMAD of about 0.5 μm to about 6 μm in diameter. In various further embodiments, the aerosol droplets have a diameter of about 0.5 μm to about 5.5 μm, about 0.5 μm to about 5 μm, about 0.5 μm to about 4.5 μm, about 0.5 μm to about 4 μm, about 0.5 μm to about 3.5 μm, about 0.5 μm to about 3 μm, about 0.5 μm to about 2.5 μm, about 0.5 μm to about 2 μm, about 1 μm to about 5.5 μm, about 1 μm to about 5 μm, about 1 μm to about 4.5 μm, about 1 μm to about 4 μm, about 1 μm to about 3.5 μm, about 1 μm to about 3 μm, about 1 μm to about 2.5 μm, The MMADs have a diameter of about 1 μm to about 2 μm, a diameter of about 1.5 μm to about 5.5 μm, a diameter of about 1.5 μm to about 5 μm, a diameter of about 1.5 μm to about 4.5 μm, a diameter of about 1.5 μm to about 4 μm, a diameter of about 1.5 μm to about 3.5 μm, a diameter of about 1.5 μm to about 3 μm, a diameter of about 1.5 μm to about 2.5 μm, a diameter of about 1.5 μm to about 2 μm, a diameter of about 2 μm to about 5.5 μm, a diameter of about 2 μm to about 5 μm, a diameter of about 2 μm to about 4.5 μm, a diameter of about 2 μm to about 4 μm, a diameter of about 2 μm to about 3.5 μm, a diameter of about 2 μm to about 3 μm, and a diameter of about 2 μm to about 2.5 μm. In a preferred embodiment, the antitumor particles are taxane particles, and the aerosol droplets have a mass median aerodynamic diameter (MMAD) of about 0.5 μm to about 6 μm, or about 1 μm to about 3 μm, or about 2 μm to about 3 μm. A suitable instrument for measuring the mass median aerodynamic diameter (MMAD) and geometric standard deviation (GSD) of the aerosol droplets is a seven-stage aerosol sampler, such as a Mercer-Style Cascade Impactor.
[0120] 3. Intratumoral (IT) injection method Disclosed herein is a method for treating cancer in a subject, the method comprising: (a) administering a first composition comprising anti-tumor particles directly to a solid tumor in the subject by intratumoral injection; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer, wherein the anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously.
[0121] As used herein, a "solid tumor" is an abnormal mass of tissue that usually does not contain cysts or liquid areas. Solid tumors can be benign (not cancerous) or malignant (cancer). Different types of solid tumors are named according to the type of cells that form them. Examples of solid malignant tumors are sarcoma, carcinoma, and lymphoma. In some embodiments, the solid tumor is a benign tumor, and the subject has cancer elsewhere in the body. In one particular embodiment, the solid tumor is a malignant solid tumor. In some embodiments, the malignant solid tumor is the only cancer in the subject's body. In other embodiments, the subject has a malignant solid tumor and cancer in another area of the body.
[0122] As used herein, "injected directly into a tumor" or "intratumoral injection (IT)" means that part or all of a composition, such as a suspension, is injected into the tumor mass. As will be understood by those skilled in the art, such direct injection may include injection of a portion of a composition, such as a suspension, at the margins of a solid tumor ("peritumoral"), such as when the amount of the composition or its suspension is too large to inject all of it directly into the solid tumor mass. In one embodiment, the composition or its suspension is injected in its entirety into the solid tumor mass. As used herein, tumor includes both tumor mass and tumor metastases, including, but not limited to, bone and soft tissue metastases.
[0123] The intratumoral injection of the antitumor particle composition into tumor can be achieved by any suitable means known to those skilled in the art.In a non-limiting embodiment, the injection can be performed through magnetic resonance imaging-transrectal ultrasound (MR-TRUS) guidance (such as for the injection of prostate tumors) or through endoscopic ultrasound-guided fine needle injection (EUS-FNI).Suitable intratumoral injection methods and compositions are disclosed in International Patent Application No. PCT / US17 / 25718, which is incorporated herein by reference.
[0124] In various embodiments, the solid tumor is selected from sarcoma, carcinoma, and lymphoma, breast tumor, prostate tumor, head and neck tumor, glioblastoma, bladder tumor, pancreatic tumor, liver tumor, ovarian tumor, colorectal tumor, lung, skin, lymphatic system, and / or gastrointestinal tumor. In a specific embodiment, the solid tumor is a prostate tumor, and the chemotherapy particles are paclitaxel or docetaxel particles. In another specific embodiment, the solid tumor is an ovarian tumor, and the chemotherapy particles are paclitaxel or docetaxel particles. In another specific embodiment, the solid tumor is a breast tumor, and the chemotherapy particles are docetaxel particles. In another specific embodiment, the solid tumor is a pancreatic tumor, and the chemotherapy particles are paclitaxel or docetaxel particles. In any of these embodiments, the tumor may be, for example, an adenocarcinoma.
[0125] 4. Intraperitoneal (IP) injection method Disclosed herein are methods for treating cancer in a subject, the methods comprising: (a) administering a first composition comprising anti-tumor particles to a tumor in an intraperitoneal organ of the subject via intraperitoneal injection; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer, wherein the anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. In some embodiments, the tumor is benign and the subject has cancer elsewhere in the body. In some embodiments, the tumor is malignant. In some embodiments, the malignant tumor is the only cancer in the subject. In other embodiments, the subject has both a malignant tumor and cancer elsewhere in the body.
[0126] The intra-abdominal organs include the stomach, ileum, jejunum, transverse colon, appendix, sigmoid colon, spleen, liver, tail of the pancreas, first 5 centimeters of the duodenum, and upper one-third of the rectum. In females, because the abdominal cavity opens and communicates with the reproductive organs (the fallopian tubes facilitate this communication), the uterus, ovaries, fallopian tubes, and gonadal vessels are all located within the abdominal cavity and are included as intra-abdominal organs for purposes of this disclosure.
[0127] Intraperitoneal injection of the antitumor particle composition into the tumor can be accomplished by any suitable means known to those skilled in the art. Suitable intraperitoneal injection methods and compositions are disclosed in U.S. Patent No. 8,221,779, which is incorporated herein by reference.
[0128] In some embodiments, the malignant tumor is ovarian cancer, uterine cancer, stomach cancer, colon cancer, spleen cancer, liver cancer, rectal cancer, and / or pancreatic cancer. In some embodiments, the tumor is an ovarian cancer tumor. In some embodiments, the benign tumor is a benign tumor of the ovary, uterus, stomach, colon, spleen, liver, rectum, and / or pancreas. In some embodiments, the benign tumor is an ovarian tumor.
[0129] 5. Intracystic injection method Disclosed herein are methods for treating cancer in a subject, the methods comprising: (a) administering a first composition comprising anti-tumor particles directly to a cyst of the subject via intracystic injection; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer. The anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. In various embodiments, the anti-tumor particles have an average particle size (number) of 0.1 microns to 1.5 microns. In some embodiments, the cyst is an epithelial cyst. In some embodiments, the cyst is a benign cyst, and the subject has cancer elsewhere in the body. In some embodiments, the cyst is a malignant cyst. In some embodiments, the malignant cyst is the only cancer in the subject's body. In other embodiments, the subject has a malignant cyst and cancer elsewhere in the body. In some embodiments, the cyst is a pancreatic cyst. In other embodiments, the anti-tumor agent is a taxane, and the anti-tumor particles are taxane particles. The taxane particles can include pharmaceutically acceptable salts of the taxane particles. In some embodiments, the taxane particles are paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof. In some embodiments, local administration of the first composition stimulates an immunological response to the immunotherapeutic agent in the subject after systemic administration of the second composition.
[0130] As used herein, the term "cyst" refers to an abnormal sac in the body that may be filled with liquid or semisolid material. An "epithelial" cyst has an epithelial lining. In some embodiments, the cyst is benign and / or precancerous. In some embodiments, the cyst is cancerous (malignant). Non-limiting examples of epithelial cysts include gastrointestinal cysts, such as liver cysts, pancreatic cysts, splenic cysts, and colonic cysts; urinary cysts, such as renal cysts, epididymal cysts, and prostatic cysts; gynecological cysts, such as ovarian cysts and vaginal cysts; head and neck cysts, such as thyroid cysts, parathyroid cysts, and other head and neck cysts; and other cysts, such as Baker's cyst, lung cyst, lymphatic cyst, and pericardial cyst. In some embodiments, the epithelial cyst is a pancreatic cyst. The pancreatic cyst may be an intraductal papillary mucinous neoplasm (IPMN), a mucinous cystic neoplasm (MCN), or a serous cystadenoma. In some embodiments, the pancreatic cyst is an intraductal papillary mucinous neoplasm (IPMN). In other embodiments, the pancreatic cyst is a mucinous cystic neoplasm (MCN). In yet other embodiments, the pancreatic cyst is a serous cystadenoma.
[0131] Injection of the composition into an epithelial cyst (intracystic injection) can be performed using a procedure known as "endoscopic ultrasound-guided fine needle injection" (EUS-FNI), in which endoscopy is combined with ultrasound to assist in locating the cyst and facilitate injection of the composition into the cyst. A non-limiting exemplary procedure for injection of a composition into a pancreatic cyst is as follows: A linear array echoendoscope is inserted via the mouth and advanced into the stomach or duodenum, whichever provides the best access to the cyst. A 22-gauge fine needle aspiration (FNA) needle is luer-locked into an accessory channel of the echoendoscope. The needle tip is maintained within the cyst throughout the procedure. A syringe is used to aspirate cyst fluid from the cyst (typically up to 80% of the cyst's original volume, although more than 80% of the cyst fluid can be aspirated). The volume of the withdrawn cyst fluid is determined. The needle is then loaded with the composition and injected directly into the cyst. The volume of composition injected into the cyst may be a volume equal to the volume of cyst fluid aspirated.
[0132] 6. Injection into body cavities Disclosed herein, in another aspect of the present invention, is a method for treating cancer in a subject, the method comprising: (a) administering a first composition comprising anti-tumor particles to a tumor located in a body cavity of the subject by intracavity injection; and (b) systemically administering a second composition comprising an immunotherapeutic agent to the subject, thereby treating the cancer. The anti-tumor particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously. In various embodiments, the anti-tumor particles have an average particle size (number) of 0.1 microns to 1.5 microns. In some embodiments, the tumor is a benign tumor, and the subject has cancer elsewhere in the body. In some embodiments, the tumor is a malignant tumor. In some embodiments, the malignant tumor is the only cancer in the subject's body. In other embodiments, the subject has a malignant tumor and cancer in another region of the body. In other embodiments, the anti-tumor agent is a taxane, and the anti-tumor particles are taxane particles. The taxane particles can include pharmaceutically acceptable salts of the taxane particles. In some embodiments, the taxane particles are paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof. In some embodiments, local administration of the first composition stimulates an immunological response to the immunotherapeutic agent in a subject after systemic administration of the second composition. A body cavity is any space filled with a fluid other than a vessel (such as a blood vessel). Cavities of the human body include the ventral cavity and the dorsal cavity. The ventral cavity includes the thoracic cavity and the abdominopelvic cavity and their subdivisions. The dorsal cavity includes the cranial cavity and the spinal cavity.
[0133] B. Systemic Administration Methods Methods for systemic administration of the systemic composition, i.e., the second composition of the present invention, include any suitable method known to those skilled in the art, such as enteral and / or parenteral administration. Non-limiting examples of systemic administration routes include intravenous (IV), intramuscular, intraarticular, injection, oral, rectal, buccal, and sublingual.
[0134] C. Combination Therapy Methods Disclosed herein are methods for treating cancer in a subject, the methods comprising: (a) locally administering a first composition comprising antitumor particles to a tumor or cyst in the subject; and (b) systemically administering a second composition comprising an immunotherapeutic agent, thereby treating the cancer, wherein the antitumor particles have an average particle size (number) of 0.1 microns to 5 microns. In a preferred embodiment, the local administration of the first composition stimulates an immunological response to the immunotherapeutic agent in the subject after systemic administration of the second composition. Steps (a) and (b) can be performed in any order or simultaneously. In some embodiments, the first composition is administered at least one day before the administration of the second composition. In some embodiments, the first composition is administered 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, or 21 days before the administration of the second composition. In other embodiments, the second composition is administered at least one day before the administration of the first composition. In some embodiments, the second composition is administered 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, or 21 days before the administration of the first composition. In still other embodiments, the first composition and the second composition are administered on the same day. In some embodiments, the cancer in the subject and the malignant tumor in the subject are the same cancer. In some embodiments, the amount of anti-tumor particles in the first composition and the amount of immunotherapeutic agent in the second composition are effective to treat cancer in the subject and, optionally, to treat a tumor or cyst in the subject. In some embodiments, the tumor or cyst in step (a) is a benign tumor or cyst, and the subject has cancer elsewhere in the body. In some embodiments, the tumor in step (a) is a malignant tumor or cyst, and is the only cancer in the subject's body. In other embodiments, the tumor or cyst in step (a) is a malignant tumor or cyst, and the subject also has cancer somewhere in the body. In a preferred embodiment, the anti-tumor particle is a taxane particle.
[0135] The combination therapy method is particularly useful for treating the subject whose previous chemotherapy treatment has not shown favorable effect on cancer.In some embodiments, before receiving the combination therapy treatment of the present invention, the subject has received at least one other form of chemotherapy treatment, and cancer has progressed during and / or after the other form of chemotherapy treatment.In some embodiments, the previous chemotherapy treatment is a platinum-based chemotherapy regimen.
[0136] V. Kit In one aspect of the present invention, a kit is disclosed that includes: (a) a first composition comprising antitumor particles, the antitumor particles having an average particle size (number) of 0.1 microns to 5 microns; (b) a second composition comprising an immunotherapeutic agent; and (c) instructions for (i) locally administering the first composition to a malignant tumor in a subject and (ii) systemically administering the second composition to the subject. In a preferred embodiment, the antitumor particles are taxane particles. In some embodiments, the immunotherapeutic agent is a monoclonal antibody, a cancer vaccine, a nonspecific immunotherapeutic agent, a cytokine, an interferon, an interleukin, a colony-stimulating factor, a checkpoint inhibitor, an immunomodulator, an adoptive cell transfer agent, a T cell therapy, a cellular therapy, an oncolytic virus therapy, BCG, and / or an adjuvant immunotherapeutic agent. In some embodiments, the taxane particles comprise at least 95% of the taxane, and the taxane particles have an average particle size (number) of 0.1 microns to 1.5 microns. In some embodiments, the taxane particles are paclitaxel particles, docetaxel particles, or cabazitaxel particles. In some embodiments, the paclitaxel particles or docetaxel particles are at least 18 m 2 In some embodiments, the paclitaxel or docetaxel particles have a specific surface area (SSA) of 0.05 g / cm. 3 ~0.15g / cm 3 In some embodiments, the first composition is a hydrophobic ointment. In some embodiments, the first composition is an aqueous suspension. [Example]
[0137] The present invention will be further described in detail by specific examples. The following examples are provided for illustrative purposes only and are not intended to limit the present invention in any way. Those skilled in the art will readily recognize a variety of non-critical parameters that can be changed or modified to produce essentially the same results.
[0138] Example 1 - Particle size, SSA, and bulk density analysis of paclitaxel particles The particle sizes of the paclitaxel particle lots used in the formulas listed in Tables 1 and 9 were analyzed using an ACCUSIZER 780 by the following particle size method.
[0139] Instrument parameters: Maximum concentration: 9000 particles / mL, Number of vessels: 1, Sensor range: Summation, Lower detection limit: 0.5 μm, Flow rate: 30 mL / min, Number of pulls analyzed: 4, Pull interval: 1 sec, Pull volume: 10 mL, Tare volume: 1 mL, Prime volume: 1 mL, Include first pull: Not selected.
[0140] Sample preparation: A scoop of paclitaxel particles API was placed in a clean 20 mL vial, and approximately 3 mL of filtered (0.22 μm) 0.1% w / w SDS solution was added to wet the API. The remainder of the vial was then filled with SDS solution, vortexed for 5-10 minutes, and sonicated for 1 minute in a water bath.
[0141] Method: A plastic bottle was filled with filtered (0.22 μm) 0.1% w / w SDS solution and analyzed for background. A small amount (less than 100 μL) of paclitaxel particle sample suspension was pipetted into the bottle of 0.1% w / w SDS solution while stirring, and the Accusizer injection tube was placed into the bottle, allowing the sample to pass through the instrument. If necessary, additional SDS solution or paclitaxel sample suspension was added to achieve the desired working concentration of 6,000-8,000 particles.
[0142] Particle size results (based on number weighted differential distribution): Paclitaxel particle lots used in formulas listed in Table 1: Mean: 0.861 μm. Paclitaxel particle lots used in formulas listed in Table 9: Mean: 0.83 μm.
[0143] The specific surface area (SSA) of the paclitaxel particle lots used in the formulas listed in Tables 1 and 9 was analyzed by the Brunauer-Emmett-Teller ("BET") isothermal method described above. The paclitaxel particle lots used in the formulas listed in Table 1 had a specific surface area of 41.24 m 2 The paclitaxel particle lot used in the formula listed in Table 9 had an SSA of 26.72 m 2 / g of SSA.
[0144] The bulk density (untapped) of the paclitaxel particle lots used in the formulas listed in Table 1 was 0.05 g / cm 3 The bulk density (untapped) of the paclitaxel particle lot used in the formula listed in Table 9 was 0.09 g / cm 3 It was.
[0145] Example 2 - Anhydrous Hydrophobic Topical Composition of Paclitaxel Particles with a Hydrophobic Carrier Anhydrous hydrophobic topical compositions of paclitaxel particles with a hydrophobic carrier are listed in Table 1. [Table 1]
[0146] Procedure for F4-F13: A slurry of paclitaxel particles with a portion of cyclomethicone (or mineral oil (F4) or FOMBLIN (F7)) was prepared. The petrolatum was heated to 52±3°C and the remaining ingredients were added and mixed until dissolved and homogeneous. The paclitaxel slurry was added and mixed until homogeneous. Mixed and the batch was cooled to below 35°C. The ointment was formed.
[0147] Example 3 - Physical and Chemical Stability of Anhydrous Topical Compositions of Paclitaxel Particles with a Hydrophobic Carrier Anhydrous hydrophobic topical composition samples were stored in 20 mL glass scintillation vials at 25°C and 30°C. Paclitaxel assay was performed using HPLC. The results of the assay and visual stability study are shown in Tables 2 and 3 below. Viscosity was measured at room temperature using a Brookfield RV viscometer using a small sample adapter with an SC4-14 spindle and a 6R chamber at 5 rpm with a 2 minute equilibration time. Viscosity results are shown in Table 4 below. [Table 2] [Table 3] [Table 4]
[0148] Example 4 - Particle size analysis of paclitaxel particles in anhydrous topical compositions with a hydrophobic carrier Particle size method using ACCUSIZER Model 770 / 770A.
[0149] Instrument parameters: Sensor: LE 0.5 μm - 400 μm, Sensor Range: Summation, Lower Limit of Detection: 0.5 μm, Acquisition Time: 60 seconds, Number of Channels: 128, Bath Fluid Volume: 100 mL, Flow Rate: 60 mL / min, Maximum Match: 8000 particles / mL, Sample Bath: Accusizer Vessel, Sample Calculation: None, Detector Voltage: 10 V or higher, Particle Concentration Calculation: None, Concentration Range: 5000 - 8000 particles / mL, Automatic Data Saving: Selected, Background Subtraction: Yes, Number of Automatic Cycles: 1.
[0150] Sample Preparation: An aliquot of sample was added to a scintillation vial. A spatula was used to smear the sample along the inside wall of the vial. Approximately 20 mL of 2% lecithin in ISOPAR-G™ (C10-11 isoparaffin) solution was added to the vial. The vial was sonicated for 1 minute. The sample was confirmed to be well dispersed in the solution.
[0151] Method: A sample vessel was filled with filtered (0.22 μm) 2% lecithin in ISOPAR-G solution and analyzed for background. A pipette was used to transfer a portion of the prepared sample to the vessel while stirring. The sample was diluted or added to the vessel as needed to provide a match level of 5000-8000 particles / mL. The analysis was initiated through the instrument and the match level was verified to be 5000-8000 particles / mL for this analysis.
[0152] The results of the particle size analysis are shown in Tables 5 and 6 below. [Table 5] [Table 6]
[0153] Example 5 - Aqueous-based topical composition of paclitaxel particles Aqueous-based topical compositions of paclitaxel particles are shown in Table 7. [Table 7]
[0154] Example 6 - Particle size analysis of paclitaxel particles in aqueous-based topical compositions Particle size method using ACCUSIZER Model 770 / 770A.
[0155] Instrument parameters: Sensor: LE 0.5 μm - 400 μm, Sensor Range: Summation, Lower Limit of Detection: 0.5 μm, Acquisition Time: 60 seconds, Number of Channels: 128, Bath Fluid Volume: 100 mL, Flow Rate: 60 mL / min, Maximum Match: 8000 particles / mL, Sample Bath: Accusizer Vessel, Sample Calculation: None, Detector Voltage: 10 V or higher, Particle Concentration Calculation: None, Concentration Range: 5000 - 8000 particles / mL, Automatic Data Saving: Selected, Background Subtraction: Yes, Number of Automatic Cycles: 1.
[0156] Sample preparation: An aliquot of sample was added to a scintillation vial. A spatula was used to smear the sample along the inside wall of the vial. Approximately 20 mL of 0.2 μm filtered distilled water was added to the vial. The vial was sonicated for 1 minute. It was confirmed that the sample was well dispersed in the solution.
[0157] Method: A sample reservoir was filled with 0.2 μm filtered distilled water and background analyzed. A portion of the prepared sample was transferred to the reservoir using a pipette while stirring. Sample was diluted or added to the reservoir as needed to provide a match level of 5000-8000 particles / mL. The analysis was initiated through the instrument and the match level was verified to be 5000-8000 particles / mL for this analysis. The results of the particle size analysis are shown in Table 8 below. [Table 8]
[0158] Example 7 - Topical composition of paclitaxel particles for use in topical application to skin malignancies The following ointment formulations shown in Table 9 were prepared for use in topical application to skin malignancies. [Table 9]
[0159] The formulas listed in Table 9 containing paclitaxel particles were each manufactured in a batch size of 6 kg, and then packaged in 15 gm laminated tubes.
[0160] The manufacturing process for lots F14, F15, and F16 was as follows: Petrolatum, mineral oil, paraffin wax, and a portion of the cyclomethicone were added to a vessel and heated to 52±3°C while mixing with a propeller mixer until dissolved and homogenous. Paclitaxel particles were added to a vessel containing another portion of the cyclomethicone, first mixed with a spatula to wet the particles, and then mixed with an IKA Ultra Turrax homogenizer equipped with an S25-25G dispersing tool while the vessel was held in an ice / water bath until a homogenous slurry was obtained. The slurry was then added to a petrolatum / paraffin wax vessel while mixing with a propeller mixer, followed by a rinse with the remaining portion of the cyclomethicone and mixing at 52±3°C until the batch was visually homogenous. The batch was then homogenized using a Silverson homogenizer. The batch was then mixed with a propeller mixer until a homogenous ointment was formed, and the batch was cooled to below 35°C.
[0161] The manufacturing process for Lot F17 was as follows: Vaseline and paraffin wax were added to a vessel and heated to 52±3°C while mixing with a propeller mixer until melted and homogenous. Paclitaxel particles were added to a vessel containing cyclomethicone and a portion of the mineral oil, first mixed with a spatula to wet the particles, and then mixed with an IKA Ultra Turrax homogenizer equipped with an S25-25G dispersing tool while the vessel was held in an ice / water batch until a homogenous slurry was obtained. The slurry was then added to the Vaseline / paraffin wax vessel while mixing with a propeller mixer, followed by a rinse with the remaining portion of the mineral oil and mixing at 52±3°C until the batch was visually homogenous. The batch was then homogenized using a Silverson homogenizer. The batch was then mixed with a propeller mixer until a homogenous ointment was formed, and the batch was cooled to below 35°C.
[0162] The chemical and physical analysis results for each formula in Table 9 are shown in Tables 10-13 for T=0, 1 month, and 3 months at 25°C. [Table 10] [Table 11] [Table 12] [Table 13]
[0163] Example 8 - In vitro skin permeation diffusion studies A Franz diffusion cell system was used to determine the rate and extent of in vitro skin penetration of Formulas F1-F13 into and through intact human cadaver skin. Paclitaxel concentrations were measured in the receptor chamber of the diffusion cell at different time points. At the end of the diffusion study, the skin was tape-stripped and divided into epidermal and dermal layers. Paclitaxel within the epidermal and dermal tissue was extracted using an extraction solvent and analyzed.
[0164] Analytical Method: A mass spectrometry (MS) method was developed to analyze paclitaxel. The MS conditions were as shown in Table 14 below. [Table 14]
[0165] Franz Diffusion Cell (FDC) Studies - Methods Skin preparation: Intact human cadaver skin was purchased from the New York Firefighters Tissue Bank (NFFTB). Skin was harvested from the upper back by the tissue bank and excised with a dermatome to a thickness of approximately 500 μm. Upon receiving the skin from the tissue bank, it was stored frozen at -20°C until the morning of the experiment. Prior to use, the skin was removed from the freezer and allowed to thaw completely at room temperature. The skin was then briefly immersed in a PBS bath to remove any residual cryoprotectant and preservative. Only visually intact areas of skin were used during the experiment. Two separate donors were used in each study, with each donor having three corresponding replicates.
[0166] Receptor fluid preparation: Based on the results of preliminary solubility data, a receptor fluid of 96% by weight phosphate-buffered saline ("PBS") at pH 7.4 and 4% by weight hydroxypropyl beta-cyclodextrin (HPBCD) was selected. The solubility of the active agent in the receptor fluid (approximately 0.4 μg / mL) was shown to be sufficient to maintain sink conditions during the study. The receptor fluid was degassed by filtering it through a ZapCap™ CR 0.2 μm membrane while applying a vacuum. The filtered receptor fluid was stirred for an additional 20 minutes while maintaining the vacuum to ensure complete degassing.
[0167] Diffusion Cell Assembly: Cadaver skin was removed from the freezer and thawed in a biosafety hood for 30 minutes. The skin was allowed to thaw completely before opening the package. The cadaver skin was removed from the package and placed on the biosafety hood counter, stratum corneum side up. The skin was patted dry with a Kimwipe, then sprayed with fresh PBS and patted dry again. This process was repeated three more times to remove any residue present on the skin. The receptor wells were then filled with degassed receptor fluid. A Teflon-coated stir bar was added to each receptor well. The thawed cadaver skin was inspected, and only areas with uniform thickness and no visible surface damage were used. The skin was cut into approximately 2 cm x 2 cm squares. The skin piece was placed in the center of the donor well, stratum corneum (SC) side up. The skin was centered and the edges were flattened. The donor well and receptor well were then aligned and secured together with clamps. Additional receptor fluid was added if necessary. The cell was tilted to remove any air bubbles and allow air to escape along the sample port. The diffusion cell was then placed in a stirred dry block heater and allowed to rehydrate from the receptor fluid for 20 minutes. The block heater was maintained at 32°C with continuous stirring throughout the experiment. The skin was allowed to hydrate for 20 minutes, and the barrier integrity of each skin section was tested. Once the membrane integrity check study was completed, the entire volume of the receptor chamber was replaced with receptor fluid.
[0168] Formulation application procedure: The formulation was applied to the stratum corneum of the skin. A single dose regimen was used for this study. The test article was applied to the skin in a 10 μL dose using a positive displacement Nichiryo™ pipettor. The formulation was then spread over the entire surface of the skin using a glass rod. The cells were left uncapped throughout the experiment. The theoretical dose of paclitaxel per cell is shown in Table 15 below. [Table 15]
[0169] Receptor fluid sampling: At 3, 6, 12, and 24 hours, 300 μL sample aliquots were taken from the receptor wells using a graduated Hamilton injector syringe. Fresh receptor medium was added to replace the 300 μL sample aliquots.
[0170] Tape Stripping and Heat Splitting: At 24 hours, the skin was wiped clean using KimWipes™ soaked in PBS / ethanol. After wiping off residual formulation and drying the skin with KimWipes™, the stratum corneum was tape stripped three times. Each tape strip consisted of applying cellophane tape to the skin with even pressure and then peeling the tape off. Tape strips were collected and frozen for future analysis. The first three tape strips removed the top layer of the stratum corneum and served as an additional skin cleansing step. Active substances are typically not considered fully absorbed in this area. These tape strips are usually analyzed for mass balance assays only. After tape stripping the skin, the epidermis of each piece was then separated from the underlying dermal tissue using tweezers or a spatula. The epidermal and dermal tissues were collected and placed in a 4 mL borosilicate glass vial. After all skin pieces were separated, an aliquot of extraction solvent was added to the glass vial. The process consisted of adding 2 mL of DMSO to the vial and incubating for 24 hours at 32° C. After the extraction time was over, a 300 μL sample aliquot of the extraction fluid was collected and filtered.
[0171] Sample Analysis: Sample aliquots were analyzed for paclitaxel using the analytical method described above.
[0172] result: The results in Table 16 below show the delivered dose of paclitaxel (μg / cm) in the recipient fluid at various time points for formulations F1 to F13. 2 ), and the concentration of paclitaxel delivered to the epidermis and dermis after 24 hours (μg / cm 2) (penetration). Figure 1 shows the concentration of paclitaxel delivered into the epidermis (μg / cm) for formulas F1 to F7. 2 ) is shown graphically. Figure 2 shows the concentration of paclitaxel delivered into the epidermis (μg / cm) for formulas F6* (replicate analysis) and F8-F13. 2 ) are graphically depicted. Figure 3 graphically depicts the concentration of paclitaxel delivered into the dermis (μg / cm2) for Formulas F1-F7. Figure 4 graphically depicts the concentration of paclitaxel delivered into the dermis (μg / cm2) for Formulas F6* (replicate analysis) and F8-F13.
[0173] NOTE: Formulas F1-F6 were tested in one in vitro study, and Formulas F6* and F8-F13 were tested in a second, separate in vitro study using different cadaver skin lots. The analysis of Formula F6 was repeated in the second study (designated F6*), allowing it to be evaluated and compared to the other formulas in the second study. [Table 16]
[0174] As can be seen from the results in Table 16, the transdermal flux of paclitaxel through the skin (epidermis and dermis) was zero or negligible, i.e., 0.01 μg / cm 2 As can be seen from the results in Table 16 and Figures 1, 2, 3, and 4, the permeation of paclitaxel into the skin (epidermis and dermis) was much greater for the anhydrous hydrophobic formulations (F4-F13) than for the aqueous formulations (F1-F3), even though the aqueous formulations contained the skin permeation enhancer DGME (TRANSCUTOL P). The results also show that the anhydrous hydrophobic formulations with cyclomethicone exhibited greater skin permeation (epidermis and dermis) than the anhydrous hydrophobic formulations without cyclomethicone. In addition, the results show that the addition of other skin permeation enhancers to the anhydrous hydrophobic formulations containing cyclomethicone had little or no effect on the skin permeation (epidermis and dermis) of these compositions. Example 9 - Phase 1 / 2 Dose Escalation, Safety, Tolerability, and Efficacy Study for Cutaneous Metastases Three of the formulations in Table 9, F14 (0.15%), F16 (1.0%), and F17 (2.0%), described above, were used in an FDA-approved Phase 1 / 2 dose-escalation safety, tolerability, and efficacy study of skin metastases in humans. The study is currently ongoing. This was a Phase 1 / 2, open-label, dose-escalation study evaluating the safety, tolerability, and preliminary efficacy of three of the formulations from Table 7, F14 (0.15%), F16 (1.0%), and F17 (2.0%), applied topically twice daily to non-melanoma skin metastases for 28 days.
[0175] 50 cm of trunk or limb containing at least one qualifying lesion 2 The treatment area was determined at baseline by the RECIST (version 1.1) definition of measurable tumor (≥10 mm in its longest diameter). All lesions within the treatment area were measured by caliper to confirm eligibility. Subjects received 50 cm of the formulation twice daily at approximately the same time each day using gloved hands. 2 The FTU was defined as the volume of ointment formulation squeezed from a tube with a 5 mm diameter nozzle and applied from the distal skin line to the tip of an adult's index finger. Subjects attended the clinic on Day 1 for dose application training and observation of the initial treatment application. Additional visits were on Days 8, 15, 29, and 43. The final visit was completed 30 days after the last study drug administration to review adverse events. Study participation was separated into a dose escalation phase and a dose expansion phase.
[0176] Dose Escalation Phase: During the dose escalation phase, the study followed a standard 3+3 dose escalation design, with the first cohort of three subjects initiating treatment with formulation F14 (0.15%). A safety monitoring committee reviewed all available data after the last subject in each cohort of three subjects completed 15 days of treatment to determine whether dose escalation would continue.
[0177] Dose Expansion Phase: In the dose expansion phase, additional subjects were enrolled to reach a maximum total of 12 subjects at the dose level determined in the dose escalation phase. Subjects in the dose expansion phase attended the clinic on the same visit dates and underwent the same assessments as in the dose escalation phase described above.
[0178] Objectives: The primary objective of this study was to determine the preliminary safety and tolerability of the formulation. Secondary objectives were to determine the preliminary efficacy of the formulation, investigate the potential reduction in pain in the treatment area, and describe the pharmacokinetics of the formulation when applied to metastatic lesions.
[0179] Population: A minimum of 2 and a maximum of 24 male and female human subjects aged 18 years or older with non-melanoma skin metastases.
[0180] Primary endpoint: Safety and tolerability as demonstrated by adverse events, changes in clinical laboratory assessments, physical examination findings, and vital signs.
[0181] Secondary endpoints: For the purposes of the following secondary efficacy endpoints, eligible lesions were determined at baseline by the RECIST (Version 1.1) definition of measurable tumor (≥10 mm in its longest diameter) (EISENHAUER et al. New response evaluation criteria in solid tumors: revised RECIST guideline (version 1.1). European Journal of Cancer. 2009;45;228-247). Objective tumor response was defined as the difference in the sum of eligible tumor diameter(s) within the treatment area from baseline to Day 43 (i.e., 14 days after the final dose of the dose escalation and expansion phase, depending on the dosing regimen). Tumor surface area and response were assessed at all visits. Changes in surface area were assessed using a calibrated grid measurement system provided by the National Institutes of Health (NIH) (ImageJ freeware). Lesions were measured and analyzed using ImageJ. Objective clinical response was defined as subjects with a complete clinical response (CR) plus partial response (PR), and further defined as the proportion of patients achieving a complete or partial clinical response 14 days after the last treatment with the formulation, measured as the change in the sum of the longest diameter(s) of the eligible target lesion(s) within the treatment field 14 days after the last treatment. Response to treatment was assessed as a function of the post-treatment total diameter divided by the pre-treatment total diameter. Best overall response is defined as the best response recorded from the start of study treatment to the end of treatment, ie, Day 43. A complete clinical response (CR) is defined as the absence of any detectable residual disease in the eligible lesion(s) within the treatment area. A partial response (PR) is a reduction of at least 30% in the sum of the diameters of the eligible lesion(s) within the treatment area compared to baseline. Progressive disease (PD) is an increase of at least 20% in the sum of the diameters of the eligible lesion(s) within the treatment area, based on the minimum study total. In addition, the total must also show an absolute increase of at least 5 mm. Stable disease (SD) is defined as the sum of the diameters of the eligible lesion(s) between those defined as PR or PD. The appearance of new non-target lesions during participation in this study does not constitute progressive disease. Pain in the treated area will be measured using a numerical rating scale (NRS-11). Changes in pain from baseline to day 43 will be analyzed. T max , C max , systemic exposure determined by AUC.
[0182] Preliminary Results: Preliminary results from an ongoing study include photographs of a cutaneous metastatic lesion on the breast of a woman with stage 4 breast cancer. The subject enrolled in the study after completing intravenous nab-paclitaxel therapy for breast cancer. One month later, treatment began with topical application of Formulation F14 (0.15%). Figure 5 is a photograph taken at baseline (day 1) showing the index lesion (arrow) covered with coagulated exudate from the ulcerated lesion. Figure 6 is a photograph taken on day 8 after topical treatment with Formulation F14 (0.15%) applied twice daily to the same treatment site. The surface of the lesion contains areas of presumptive ulceration, with epidermal loss and limited to the dermis. Figure 7 is a photograph taken on day 15 after topical treatment with Formulation F14 (0.15%) applied twice daily to the same treatment site. A small amount of old exudate is visible in the inner portion of the lesion, with no obvious epidermal ulceration. Figure 8a is a photograph of the subject's skin 29 days after topical treatment with formulation F14 (0.15%) applied twice daily to the same treatment site. Over the 28 days of treatment, the subject's skin lesion, surrounded by erythema, expanded without ulceration, indicating a local immune response (Figure 8a). Eleven days after the end of treatment, the subject was again treated with systemic paclitaxel. Three days after treatment with systemic paclitaxel, two weeks after study treatment ended, the subject's lesion significantly decreased in size and volume, as shown in Figure 8b. Topical treatment with topical formulation F14 (0.15%) sensitized the skin lesion to a subsequent response to IV paclitaxel. The lesion appears epithelialized without evidence of ulceration. In contrast, the natural history of ulcerating cutaneous breast cancer metastases is that once the epidermal surface is breached by the tumor, it rapidly expands, penetrating further into the dermis and typically resulting in ulceration.
[0183] Example 10 - Skin Toxicity Studies Skin toxicity studies were conducted using the topical compositions shown in Table 17. [Table 17]
[0184] A GLP-compliant study was conducted in Göttingen minipigs to characterize the toxicity of formulations applied topically to 10% of the body surface area daily for 28 days. The four formulations shown in Table 17 were applied at a maximum viable volume of 2 mL / kg, correlating to dose concentrations of 0.0, 0.3, 1.0, and 3%, which translate to dose levels of 0, 4.9, 16.5, and 49.9 mg / kg / day, respectively. The reversibility of findings was also assessed after a 2-week recovery period. Parameters evaluated included clinical observations, mortality and moribundity checks, dermal scoring, body weight, food consumption, ophthalmic examination, photographs of test sites, electrocardiograms, clinical pathology, bioanalysis and toxicokinetic assessments, organ weights, gross pathology, and histopathology. There were no formulation-related effects on survival, clinical signs, dermal irritation, body weight, weight gain, food consumption, ophthalmic findings, or cardiology parameters. During the administration phase, minimal dermal irritation was observed in all groups and was considered vehicle- or treatment-related because the frequency and severity of findings were comparable between the placebo control group and the active formulation-treated group. Thus, the presence of paclitaxel particles in the formulation had only a minimal effect on dermal irritation.
[0185] Example 11 - NanoPac® (i.e., paclitaxel particles disclosed herein, approximately 99% of the paclitaxel having a mean particle size (number) of 0.878 microns in these examples) inhalation safety and efficacy development program - Pilot pharmacokinetic study in Sprague Dawley rats overview The purpose of this pilot study was to define sampling time points for a full pharmacokinetic (PK) study using NanoPac®. Due to the potential for increased lung retention with the NanoPac® formulation, nine time points ranging from 0.5 to 168 hours were evaluated to determine an appropriate sampling strategy for the full PK study.
[0186] Sixteen Sprague Dawley rats were exposed to NanoPac® (paclitaxel, target dose 0.37 mg / kg) via a single nose-only inhalation. Two animals (n=2) were euthanized at the designated time points: 0.5, 6, 12, 24, 48, 72, 120, and 168 hours post-exposure. Blood (plasma) and lung tissue samples were collected.
[0187] On the day of exposure, NanoPac® suspension formulation (6 mg / mL) was prepared according to instructions provided by the sponsor.
[0188] The total aerosol exposure time was 63 minutes for all animals. Aerosol concentration was monitored throughout the 63 minutes of NanoPac® formulation aerosol exposure by measuring the amount of formulation deposited on a 47 mm GF / A filter positioned in the breathing zone of a nose-only exposure chamber. Aerosol particle size (droplet size) was measured using a Mercer-style cascade impactor from the animal's breathing zone on the exposure chamber.
[0189] The NanoPac® suspension formulation was aerosolized using two Hospitak compressed air jet nebulizers (target mean paclitaxel aerosol concentration: 82.65 μg / L). The overall mean aerosol concentration measured from the GF / A filters was 0.24 mg / L, and the mean paclitaxel aerosol concentration was 73.5 μg / mL. The particle size distribution was measured to be 2.0 μm MMAD with a GSD of 2.2. The measured mean paclitaxel aerosol concentration of 73.5 μg / L was approximately 11% lower than the target mean paclitaxel aerosol concentration of 82.65 μg / L (within the analytical assay precision / recovery performance criteria of ±15% reported in Example 3). Oxygen and temperature were monitored throughout the NanoPac® formulation aerosol exposure. The recorded oxygen and temperature ranges were 19.7%-20.9% and 20.4°C-20.8°C, respectively.
[0190] The lung deposition dose of paclitaxel was calculated based on a mean paclitaxel aerosol concentration of 73.5 μg / L, a mean rodent weight of 326 g, an estimated deposition rate of 10%, and an exposure time of 63 minutes. The mean rodent deposition dose achieved was determined to be 0.33 mg / kg. The mean achieved deposition dose was approximately 11% lower when compared to the target deposition dose of 0.37 mg / kg, but was within the expected variability (±15% from target) for nebulized exposure.
[0191] All animals survived to their designated necropsy time points. At necropsy, several animals had minimal red discoloration of the lungs. No other abnormal macroscopic observations were noted at necropsy. From body and lung weights obtained at necropsy, the mean final body weight (standard deviation) across animals at all time points was 346.26 g (24.01 g), and the mean lung weight (standard deviation) was 1.60 g (0.13 g).
[0192] Systemic blood (in the form of plasma from K2EDTA) was assayed by liquid chromatography-mass spectrometry (LCMS) and lung tissue was assayed as briefly described in the Bioanalytical Analysis section to quantify the amount of paclitaxel as a function of time. Lung tissue analysis demonstrated lung exposure with detectable amounts of paclitaxel up to 168 hours. Systemic blood demonstrated no detectable paclitaxel (<1 ng / mL) after 24 hours. Based on these data, the following sampling time points for PK studies are suggested: 0.5 (±10 min), 6 (±10 min), 12 (±10 min), 24 (±30 min), 48 (±30 min), 72 (±30 min), 120 (±30 min), 168 (±30 min), 240 (±30 min), and 336 (±30 min) hours after inhalation exposure.
[0193] the purpose The purpose of this pilot study was to define sampling time points for a full pharmacokinetic (PK) study with NanoPac®. Preliminary data with NanoPac® administered by intraperitoneal (IP) injection indicates significant retention in the peritoneal cavity. Due to the possibility that the NanoPac® formulation may result in increased retention in the lung, time points up to 168 hours were evaluated to determine an appropriate sampling strategy for a full pharmacokinetic study. material and method Test system: Species / strain: Sprague Dawley rat Animal age at study start: 8-10 weeks Weight range at the start of the study: 308-353g Number / sex in study: 18 males (16 study animals and 2 spares) Source: Charles River Laboratories (Kingston, NY) Identification: Tail marked with permanent marker
[0194] Testing and Control of Article Formulation and Administration A NanoPac® suspension formulation (6 mg / mL) was prepared according to the instructions provided by the sponsor. Briefly, 5.0 mL of 1% polysorbate 80 was added to a vial containing NanoPac® (306 mg) particles. The NanoPac® vial was vigorously shaken and inverted to ensure wetting of all particles present within the NanoPac® vial. Immediately after shaking, 46 mL of 0.9% sodium chloride was added to the NanoPac® vial, and the vial was shaken for at least 1 minute to ensure adequate mixing and proper dispersion of the suspension. The resulting formulation was allowed to stand for at least 5 minutes to reduce any air / bubbles within the vial before placing it in the nebulizer for aerosolization. The final formulation was kept at room temperature and used within 3 hours after reconstitution.
[0195] Experimental design Sixteen Sprague Dawley rats were exposed to NanoPac® (paclitaxel, target dose 0.37 mg / kg) via a single, nose-only inhalation. Two animals (n=2) were euthanized at 0.5 (±10 min), 6 (±10 min), 12 (±10 min), 24 (±30 min), 48 (±30 min), 72 (±30 min), 120 (±30 min), and 168 (±30 min) hours post-exposure for blood (plasma) and lung tissue collection. No specific PK modeling was performed; rather, the data define the duration of detectable amounts of paclitaxel post-exposure for PK studies.
[0196] Husbandry, isolation, and allocation to research Male Sprague Dawley rats (6-8 weeks old) were obtained from Charles River Laboratories (Kingston, NY) and quarantined for 14 days. At the end of quarantine, animals were weighed and then randomized by weight for study assignment. Animals were identified by tail marking and cage cards. Water, lighting, humidity, and temperature control were maintained and monitored using standard techniques. During non-exposure periods, rats were fed standard rodent chow ad libitum.
[0197] Weight and daily observations Body weights were collected at randomization, daily throughout the study, and at the time of euthanasia. Each animal in the study was observed twice daily by Comparative Medicine Animal Resources (CMAR) personnel for clinical signs of abnormalities, moribundity, or death.
[0198] Nose-only aerosol exposure Conditioning Animals were conditioned to the nose-only exposure tube using standard techniques for up to 70 minutes. Three conditioning sessions were conducted over three days prior to exposure, with the first session lasting 30 minutes, the second 60 minutes, and the third 70 minutes. Animals were closely monitored throughout the conditioning period and during exposure to ensure they experienced no more than momentary distress.
[0199] Exposure System The inhalation exposure system consisted of two compressed air jet nebulizers (Hospitak) and a rodent nose-only inhalation exposure chamber. Exposure oxygen levels (%) were monitored throughout the exposure. NanoPac® suspension aerosol was generated using a set of two compressed air jet nebulizers at an inlet pressure of 20 psi (for up to 40 (±1) minutes, then replaced with a second set of two compressed air jet nebulizers for the remaining exposure duration). The aerosol was directed into the nose-only exposure chamber through a 24-inch stainless steel aerosol delivery line (1.53 cm diameter).
[0200] Concentration monitoring Aerosol concentration monitoring was performed by collecting aerosols on pre-weighed GF / A 47 mm filters. Filters were sampled from the rodent breathing zone of a nose-only exposure chamber throughout the rodent exposure. The aerosol sampling flow rate through the GF / A filters was maintained at 1.0 ± 0.5 L / min. A total of six GF / A filters were collected, one every 10 minutes throughout the exposure duration, with the exception of the last filter, which was collected after 13 minutes. After sample collection, the filters were weighed to determine the total aerosol concentration within the exposure system. The filters were extracted and analyzed by high-performance liquid chromatography (HPLC) to quantify the amount of paclitaxel collected on each filter. The total aerosol and paclitaxel aerosol concentrations for each filter were calculated by dividing the total aerosol and collected paclitaxel aerosol by the total airflow through the filter. The mean paclitaxel aerosol concentration was used to calculate the mean paclitaxel deposition achieved in the lungs of the rodents using Equation 1 shown below.
[0201] Aerosol particle (droplet) size measurement Aerosol particle size distribution was measured from the rodent breathing zone of a nose-only exposure chamber using a Mercer-style 7-stage cascade impactor (Intox Products, Inc., Albuquerque, NM). Particle size distribution was determined in terms of mass median aerodynamic diameter (MMAD) and geometric standard deviation (GSD). Cascade impactor samples were collected at a flow rate of 2.0 ± 0.1 L / min.
[0202] Dose determination The deposited dose was calculated using Equation 1. The average aerosol concentration measured from the exposure was used in this calculation along with the average group weight of the rats. Thus, an estimate of the amount of paclitaxel deposited in the lungs of the rats was calculated using the measured paclitaxel aerosol concentration.
number
[0203] Euthanasia and necropsy Animals were euthanized at the appropriate time points by IP injection of euthanasia solution. During necropsy, blood (for plasma) was collected by cardiac puncture into K2EDTA tubes, lungs were weighed, and lung tissue samples were collected and snap-frozen in liquid nitrogen for biological analysis. In addition, a complete gross examination was performed by qualified necropsy personnel. The external body surfaces, orifices, and contents of the cranial, thoracic, and abdominal cavities were examined. Lesions were described and recorded using a glossary of morphology, quantity, shape, color, consistency, and severity.
[0204] biological analysis Systemic blood (in the form of plasma from K2EDTA) and lung tissue were assayed by liquid chromatography-mass spectrometry (LCMS) to quantify the amount of paclitaxel as a function of time. Briefly, the assay utilizes an ultra-high performance liquid chromatography-tandem mass spectrometry (UPLC-MS / MS) assay to quantify paclitaxel. Plasma samples were extracted by protein precipitation, and separation was achieved by reverse-phase chromatography. Lung samples were homogenized in water at a 4:1 ratio (water:lung tissue). The homogenates then underwent a similar protein precipitation procedure before analysis by LCMS. Quantification was performed using a matrix-based calibration curve.
[0205] Pharmacokinetic modeling was not performed on these data. However, concentrations of paclitaxel below the sensitivity limit of the assay (1 ng / mL) were used to define sampling time points for the pivotal PK study.
[0206] result Clinical observations and survival All animals survived to their designated necropsy times and gained weight. No abnormal clinical observations were noted throughout the duration of the study.
[0207] NanoPac® Exposure Aerosol concentration Table 18 shows the total aerosol and paclitaxel aerosol concentrations measured by sampling each GF / A filter during exposure. The inhalation exposure mean paclitaxel aerosol concentration of 73.5 μg / L was approximately 11% lower than the target mean paclitaxel aerosol concentration of 82.65 μg / L. The mean exposure aerosol concentration was within ±15% of the target aerosol concentration expected for nebulized inhalation exposure. [Table 18]
[0208] Oxygen and temperature The recorded oxygen and temperature ranges were 19.7% to 20.9% and 20.4°C to -20.8°C, respectively.
[0209] particle size The particle size distribution was determined in terms of MMAD (GSD) of the 6.0 mg / mL NanoPac® formulation aerosol using a cascade impactor and was 2.0 (2.2) μm.
[0210] Deposition amount Based on a mean paclitaxel aerosol concentration of 73.5 μg / L, a mean rodent body weight on Day -1 (randomization) of 326 g, an assumed deposition rate of 10%, and an exposure duration of 63 minutes, the mean rodent deposition dose achieved was determined to be 0.33 mg / kg. The mean achieved deposition dose was approximately 11% lower compared to the target deposition dose of 0.37 mg / kg due to expected variability in the exposure mean aerosol concentration (±15% from target).
[0211] autopsy All animals survived to their designated necropsy time points. At necropsy, several animals had minimal red discoloration of the lungs. No other abnormal macroscopic observations were noted at necropsy. Individual and mean lung weights, body weights, and ratios were determined. The mean final body weight (standard deviation) was 346.26 g (24.01). The mean lung weight (standard deviation) was 1.60 g (0.13). Organ lung weights and lung weight-to-body weight ratios are common parameters used to evaluate potential toxicological responses to inhaled substances. Overall, the data are consistent with previous data and indicate no response at any of these endpoints.
[0212] biological analysis The results are summarized in Table 19 below. The mean paclitaxel concentration in plasma was 16.705 ng / mL at 0.5 hours post-exposure, then gradually decreased until the 24-hour time point, and remained below the lower limit of quantification (1 ng / mL) at all subsequent time points. The mean paclitaxel concentration in lung tissue was 21940 ng / g at 0.5 hours post-exposure, gradually decreasing to 419.6 ng / g by the 168-hour time point. This indicates significant NanoPac® retention in the lung with minimal systemic exposure. [Table 19]
[0213] conclusion Sixteen male Sprague Dawley rats were exposed to NanoPac® (paclitaxel, target dose of 0.37 mg / kg) via a single nose-only inhalation. Two animals (n=2) were euthanized at 0.5, 6, 12, 24, 48, 72, 120, and 168 hours post-exposure for blood (plasma) and lung tissue collection.
[0214] The mean paclitaxel aerosol concentration of 73.5 μg / L during the 63-minute inhalation exposure was approximately 11% lower than the target mean paclitaxel aerosol concentration of 82.65 μg / L. The mean exposure aerosol concentration was within ±15% of the target aerosol concentration expected for nebulized inhalation exposure. The particle size distribution was determined to be 2.0 (2.2) μm in terms of MMAD (GSD) for the 6.0 mg / mL NanoPac® formulation aerosol using a cascade impactor. The recorded oxygen and temperature ranges were 19.7% to 20.9% and 20.4°C to 20.8°C, respectively.
[0215] The paclitaxel deposition dose was calculated based on a mean paclitaxel aerosol concentration of 73.5 μg / L, a mean rodent weight of 326 g, an estimated deposition rate of 10%, and an exposure time of 63 minutes. The mean rodent deposition dose achieved was determined to be 0.33 mg / kg. The mean achieved deposition dose was approximately 11% lower when compared to the target deposition dose of 0.37 mg / kg due to expected variability (±15% from target).
[0216] All animals survived to their scheduled necropsy time. At necropsy, several animals had minimal red discoloration of the lungs. No other abnormal macroscopic observations were noted at necropsy. Body and lung weights obtained at necropsy revealed a mean final body weight (standard deviation) of 346.26 g (24.01 g) and a mean lung weight (standard deviation) of 1.60 g (0.13 g). Organ lung weight and lung weight-to-body weight ratio are common parameters used to evaluate potential toxicological responses to inhaled substances. Overall, the data indicate no responses at any of these endpoints.
[0217] The mean paclitaxel concentration in plasma was 16.705 ng / mL at 0.5 hours after exposure, then gradually decreased until the 24-hour time point, and was below the lower limit of quantification at all time points after 24 hours. The mean paclitaxel concentration in lung tissue was 21940 ng / g at 0.5 hours after exposure, and gradually decreased to 419.6 ng / g by the 168-hour time point. This indicates significant NanoPac® retention in the lung with minimal systemic exposure. The following sampling time points for PK studies are suggested: 0.5 (±10 minutes), 6 (±10 minutes), 12 (±10 minutes), 24 (±30 minutes), 48 (±30 minutes), 72 (±30 minutes), 120 (±30 minutes), 168 (±30 minutes), 240 (±30 minutes), and 336 (±30 minutes) hours after exposure.
[0218] Example 12 - NanoPac® (i.e., paclitaxel particles as disclosed herein, approximately 98% of the paclitaxel, had a mean particle size (number) of 0.83 microns, 27.9 microns, and 2 / g SSA, and 0.0805 g / cm 3 Inhalation studies with bulk density (non-tapped) of - low and high doses overview The overall objective of this study was to administer nose-only inhalation exposures to male rats with 6.0 mg / mL and 20.0 mg / mL NanoPac® suspension formulations. Each exposure was for 65 minutes.
[0219] NanoPac® suspension formulations at 6.0 mg / mL and 20.0 mg / mL were prepared according to instructions provided by the sponsor. Two Hospitak compressed air jet nebulizers were used simultaneously at 20 psi to aerosolize the NanoPac® formulations into rodent inhalation exposure chambers. During each exposure, aerosol concentrations were measured from the animal's breathing zone by sampling onto a 47 mm GF / A filter at a flow rate of 1.0 ± 0.5 L / min. Particle size was determined by sampling the aerosol from the animal's breathing zone using a Mercer-style cascade impactor at a flow rate of 2.0 ± 0.1 L / min. Filters were analyzed gravimetrically to determine total NanoPac® aerosol concentration and via high-performance liquid chromatography (HPLC) to determine paclitaxel aerosol concentration for each exposure. Oxygen and temperature were monitored and recorded throughout the inhalation exposures.
[0220] The mean total NanoPac® aerosol and paclitaxel aerosol concentrations were determined to be 0.25 mg / L with an RSD of 7.43% and 85.64 μg / L with an RSD of 10.23%, respectively, for inhalation exposures performed with the 6.0 mg / mL NanoPac® formulation. The mean mass aerodynamic diameter (geometric standard deviation) measured using a cascade impactor was 1.8 (2.0) μm for the 6.0 mg / mL NanoPac® formulation aerosol. The mean total NanoPac® aerosol and paclitaxel aerosol concentrations were determined to be 0.46 mg / L with an RSD of 10.95% and 262.27 μg / L with an RSD of 11.99%, respectively, for inhalation exposures performed with the 20.0 mg / mL NanoPac® formulation. The mass median aerodynamic diameter (geometric standard deviation) measured using a cascade impactor was 2.3 (1.9) μm for the 20.0 mg / mL NanoPac® formulation aerosol.
[0221] Mean paclitaxel deposition doses of 0.38 mg / kg and 1.18 mg / kg were calculated using Equation 1 for the 65 minute exposure for the 6.0 mg / mL and 20.0 mg / mL NanoPac® formulations, respectively. Formulations and inhalation exposure Formulation preparation material Test Articles: The test articles used for inhalation exposure are shown below. NanoPac®: Identification: NanoPac® (sterile nanoparticulate paclitaxel) Description: A novel dry powder formulation of paclitaxel delivered as 306 mg / vial Vehicle The vehicles used for the preparation of NanoPac® formulations are shown below. 1% Polysorbate 80 Solution Identification: Sterile 1% Polysorbate 80 in 0.9% Sodium Chloride for Injection Description: Clear liquid Saline diluent Identification: Sterile 0.9% Sodium Chloride for Injection, USP Description: Clear liquid
[0222] Formulations and inhalation exposure Formulation preparation A 6.0 mg / mL NanoPac® formulation was prepared as follows: Briefly, 5.0 mL of 1% polysorbate 80 was added to a vial containing NanoPac® (306 mg) particles. The NanoPac® vial was vigorously shaken and inverted to ensure wetting of all particles present within the NanoPac® vial. Immediately after shaking, 46 mL of 0.9% sodium chloride solution was added to the NanoPac® vial, and the vial was shaken for at least 1 minute to ensure thorough mixing and proper dispersion of the suspension.
[0223] A 20.0 mg / mL NanoPac® formulation was prepared using the NanoPac® formulation procedure described above for the 6.0 mg / mL formulation, except that 10.3 mL of 0.9% sodium chloride solution was added to the NanoPac® vial instead of the 46 mL used for the 6.0 mg / mL formulation.
[0224] The resulting formulation was allowed to stand for at least 5 minutes to reduce any air / bubbles in the vial before placing it in the nebulizer for aerosolization. The 6.0 mg / mL final formulation was kept at room temperature and nebulized within 2 hours after reconstitution. The 20.0 mg / mL final formulation was kept at room temperature and nebulized within 30 minutes after reconstitution. Exposure system setup / aerosol generation: same as in Example 11 Aerosol concentration monitoring: Same as Example 11 Particle size distribution: same as in Example 11 Deposition amount calculation: same as in Example 11
[0225] result Aerosol concentration and particle size Aerosol concentrations were monitored throughout each NanoPac® formulation aerosol exposure from the animal's breathing zone on nose-only exposure chambers using 47 mm GF / A filters. Seven 47 mm GF / A filters were sampled during each exposure. Filters FS-1 through FS-6 were sampled for 10 minutes each, and the FS-7 filter was sampled for 5 minutes between each low-dose and high-dose group. Particle size was measured using a Mercer-style cascade impactor from the animal's breathing zone on the exposure chamber. Tables 20 and 21 show the total aerosol and paclitaxel aerosol concentrations measured by sampling GF / A filters during low-dose and high-dose exposures, respectively. [Table 20-21]
[0226] Particle size (aerosol droplet size) distribution was determined for each NanoPac® formulation aerosol using a cascade impactor in terms of MMAD (median mass of airborne particle distribution for aerodynamic diameter) (GSD, with MMAD measurements characterizing the variability of particle size distribution). For the 6.0 mg / mL and 20.0 mg / mL NanoPac® aerosols, the MMAD (GSD) was determined to be 1.8 (2.0) μM and 2.3 (1.9) μm, respectively. Figures 9 and 10 show the particle size distributions for the 6.0 mg / mL and 20.0 mg / mL NanoPac® formulation aerosols, respectively.
[0227] Deposition amount The paclitaxel deposition dose was calculated based on the paclitaxel mean aerosol concentration, the mean rat weight, an assumed deposition rate of 10%, and a 65-minute exposure duration for each low- and high-dose NanoPac® formulation exposure by using Equation 1. Table 22 shows the mean paclitaxel aerosol concentration, the mean rat weight, the exposure time, and the deposited dose for each exposure. The mean rodent deposition doses achieved were determined to be 0.38 mg / kg and 1.18 mg / kg for the 6.0 mg / kg and 20.0 mg / kg NanoPac® formulation exposures, respectively. [Table 22]
[0228] Oxygen and temperature Oxygen and temperature were monitored throughout the NanoPac® formulation aerosol exposure. The recorded oxygen and temperature ranges were 19.8% to 20.9% and 20.7°C to 20.8°C, respectively, for the 6.0 mg / mL NanoPac® exposure. For the 20.0 mg / mL NanoPac® formulation exposure, the recorded oxygen value was 19.8% throughout the exposure, and the temperature range was 20.7°C to 20.8°C. Preliminary data: see Figures 11 and 12.
[0229] Example 13 - Inhaled Nanopac® (i.e., paclitaxel particles as disclosed herein, approximately 98% of the paclitaxel has a mean particle size (number) of 0.83 microns, a mean particle size (number) of 27.9 microns, and a mean particle size (number) of 27.9 microns in a nude rat orthotopic lung cancer model 2 / g SSA, and 0.0805 g / cm 3 Efficacy evaluation of bulk density (untapped) of 100g - Study FY17-095 Tour Details On day -1, 127 NIH-rnu nude rats were irradiated with X-rays to induce immunosuppression. On day 0, animals received Calu3 tumor cells via intratracheal (IT) instillation. Animals underwent a 3-week growth period. During week 3, animals were randomized by weight stratification into five study groups. Beginning on week 4, animals in group 2 received a weekly dose of Abraxane® via intravenous (IV) administration (5 mg / kg) on days 22, 29, and 36. Animals in groups 3 and 4 received weekly (Monday) inhaled (INH) doses of NanoPac® at low (0.5 mg / kg) and high (1.0 mg / kg) target doses, respectively. Animals in groups 5 and 6 received a target inhaled dose of NanoPac® twice weekly (Monday and Thursday) at low (0.50 mg / kg) and high (up to 1.0 mg / kg) doses, respectively. Animals in group 1 were left untreated as a control for normal tumor cell growth. All animals were necropsied at week 8.
[0230] All animals survived to their designated necropsy time points. Clinical observations associated with this model included skin rash and respiratory distress. All groups gained weight at approximately the same rate throughout the study.
[0231] The inhalation exposure mean paclitaxel aerosol concentrations for the weekly low-dose and twice-weekly low-dose NanoPac® groups were 270.51 μg / L and 263.56 μg / L, respectively. The inhalation exposure mean paclitaxel aerosol concentrations for the weekly high-dose and twice-weekly high-dose NanoPac® groups were 244.82 μg / L and 245.76 μg / L, respectively.
[0232] Doses were based on mean aerosol paclitaxel concentrations, current mean group weights, an estimated deposition rate of 10%, and exposure duration of 33 minutes (low dose) or 65 minutes (high dose). During 4 weeks of treatment, the mean rodent deposition doses achieved for the weekly low-dose NanoPac® group and the twice-weekly low-dose NanoPac® group were 0.655 mg / kg and 0.640 mg / kg (1.28 mg / kg / week), respectively. The mean rodent deposition doses achieved for the weekly high-dose NanoPac® group and the twice-weekly high-dose NanoPac® group were 1.166 mg / kg and 1.176 mg / kg (2.352 mg / kg / week), respectively. In the group receiving IV injections of Abraxane®, the mean doses on days 22, 29, and 36 were 4.94, 4.64, and 4.46 mg / kg, respectively.
[0233] At scheduled necropsy, the majority of animals from each group had tan nodules in the lungs and / or red or tan patchy discoloration of the lungs. Other sporadic observations included an abdominal hernia in one animal and a pericardial nodule in another. No other abnormal gross observations were noted at necropsy.
[0234] Lung weights in Abraxane-treated animals had significantly lower lung-to-BW and lung-to-brain weight ratios compared to untreated controls. The once-weekly NanoPac® high-dose group had similar weights to the Abraxane group and significantly lower lung weights and lung-to-brain ratios compared to untreated controls.
[0235] Histologically, the lungs of the majority of animals in all groups contained some evidence of tumor formation. Tumor formation was characterized by the presence of small, expansive, variably sized masses randomly scattered within the lung parenchyma, as well as larger, expanding, confluent masses that obliterated up to 75% of the lung parenchyma, smaller airways, and blood vessels. The larger masses were primarily distributed in the hilar region or juxtaposed to the axial airways, while the smaller masses were generally located peripherally.
[0236] The primary morphological cellular characteristics of lung tumor masses varied from the undifferentiated nature of lung adenocarcinoma to the presence of a highly differentiated pattern. The predominant tumor cell type exhibited the morphology of undifferentiated adenocarcinoma; the cells were pleomorphic, large, anaplastic, hypochromatic, had fine intracytoplasmic vacuoles resembling mucus vesicles, showed moderate to marked anisocoria, and grew in individualized or sheet-like formations, lacking the defining characteristics of adenocarcinoma. However, the morphological characteristics of cells observed within other masses or growing within the above-mentioned undifferentiated masses were consistent with well-differentiated lung adenocarcinoma, which was more organized and showed distinct acinar-acinar differentiation. These hypochromatic tumor cells were primarily arranged in nests or glandular patterns, which were connected by alveolar septa. Mitotic figures were rarely observed in this tumor cell population. Less frequently observed within these masses were focal areas of relatively small, primitive-like tumor cells with small to moderate amounts of pale basophilic cytoplasm, ovoid and variable vesicular nuclei, and moderate nuclear anisotropy. These primitive tumor cells were observed growing randomly and in sheets. Mitotic figures and an increased number of apoptotic bodies were most frequently observed in this basophilic tumor cell population. Inflammation characterized by a mixed inflammatory cell infiltration (primarily eosinophils, lymphocytes, foamy macrophages, and occasional giant cells) with interstitial fibrosis was commonly observed. Significant parenchymal necrosis was rare or absent.
[0237] Pathologists considered the presence of erosions at the edges of individual tumor masses, characterized by a gradual loss of tumor cells to a complete loss of tumor cells with residual fibrotic connective tissue scaffolding in the lung parenchyma and infiltration of foamy macrophages, as evidence of tumor regression.
[0238] Compared with the positive control group 1 and the Abraxane-treated comparison group 2, the NanoPac®-treated groups (groups 3-6) experienced a reduction in overall lung tumor burden, characterized by a decrease in the severity of adenocarcinoma tumor masses and primitive tumor cell populations, as well as evidence of tumor regression. No other treatment-related lesions or findings were observed. Extensive mononuclear cell infiltrates were observed in the lungs of animals administered NanoPac® via inhalation. Because the model used is T cell-deficient, the cells were likely B cells or NK cells. It is hypothesized that exposure of the tumor to potentially higher localized concentrations of NanoPac® affected the lungs and resulted in an altered environment that attracted mononuclear cell infiltrates to the lungs.
[0239] the purpose The objective of this study was to evaluate the efficacy of an inhaled NanoPac® formulation compared to a clinical reference dose of intravenous Abraxane in reducing tumor burden in an orthotopic model of lung cancer. material and method Test system [ka]
[0240] Abraxane formulations The clinical standard used for the IV formulation was the drug Abraxane®. The drug was reconstituted to 5.0 mg / mL with saline on the day of administration and stored according to the manufacturer's instructions.
[0241] NanoPac® Formulation The 20.0 mg / mL NanoPac® formulation for challenge was prepared according to the sponsor's recommendations. Specifically, NanoPac® was reconstituted with 1% polysorbate 80. The vial was shaken by hand until all particles were wetted. Additional 0.9% sodium chloride for injection was added (to the desired concentration target), and the vial was shaken by hand for an additional minute. Shaking continued until no large clumps were visible and the suspension was properly dispersed.
[0242] The resulting formulation was allowed to stand for at least 5 minutes to reduce any air / bubbles in the vial before placing it in the nebulizer for aerosolization. The final formulation was kept at room temperature and nebulized within 2 hours after reconstitution. The final 20.0 mg / mL was kept at room temperature and nebulized within 30(+5) minutes after reconstitution.
[0243] Experimental design A total of 127 animals were used in the study. Prior to X-ray irradiation and tumor cell administration, seven animals were designated as reserve animals (reserve animals received neither irradiation nor cell line infusion). On day -1, all study animals were irradiated with X-rays to induce immunosuppression. On day 0, animals received Calu3 tumor cells via intratracheal (IT) instillation. Animals underwent a 3-week growth period. During week 3, animals were randomized by weight stratification into groups as outlined in Table 23 below. Beginning in week 4, animals in Group 2 received a target dose of Abraxane® via intravenous (IV) administration (5 mg / kg) once weekly. Animals in Groups 3 and 4 received a target weekly (Monday) inhaled (INH) dose of NanoPac® at low (0.5 mg / kg) and high (1.0 mg / kg) doses, respectively. Animals in groups 5 and 6 received low (0.50 mg / kg) and high (1.0 mg / kg) twice-weekly (Monday and Thursday) inhaled target doses of NanoPac®. Animals in group 1 were left untreated as a control for normal tumor cell growth. All animals were necropsied at week 8. [Table 23]
[0244] Husbandry, isolation, and allocation to research After isolation, all animals were weighed and randomized to remove 7 reserves based on weight. From week 1 to week 3, animals were identified by cage card (LC number) and tail marking.
[0245] During the third week prior to the start of treatment, animals were weighed, randomized by weight stratification into the groups listed above, and assigned a study ID. From this point onward, animals were identified by cage cards and tail marking with a Sharpie.
[0246] Immunosuppression and irradiation On day -1, animals received a whole-body X-ray exposure of approximately 500 rads (Phillips RT 250 X-ray Therapy Unit, Phillips Medical Systems, Shelton, CT) set at 250 kVp, 15 mA, and a source-to-subject distance of 100 cm. Animals were placed in the pie chamber unit, two to three per pie slice. The irradiation process took 10 to 15 minutes.
[0247] Tumor cell transplantation On day 0, animals received tumor cells (Calu3) administered intratracheally. Briefly, after anesthesia with 3-5% isoflurane in an induction chamber, the animal was placed with its upper incisors hooked onto a tilted, hanging instillation platform. The animal's tongue was gently immobilized while a stylet was inserted past the larynx and into the trachea. A volume of cells in EDTA suspension (target dose volume: 500 μL; concentration: approximately 20 × 10 per 0.5 mL) was delivered to the lungs via intratracheal instillation. After instillation, the animals' breathing and movement were carefully monitored. Following tumor cell implantation, animals underwent a tumor growth period of approximately 3 weeks before treatment to allow tumor cell engraftment and lung cancer development.
[0248] Calu3 growth and preparation Calu3 cells were grown in cell culture flasks at 37°C with 5% CO2. They were grown in Roswell Park Memorial Institute (RPMI) 1640 medium containing 10% fetal bovine serum (FBS) until 80% confluence. Cells were maintained until the day of infusion. Prior to infusion, cells were harvested by washing with PBS, and then trypsin was added to remove the cells from the flask. The cells were neutralized with RPMI 1640 medium containing 10% FBS. The cells were then centrifuged at 100 × g for 5 minutes, the medium was removed, and the cells were resuspended in 450 μL of serum-free RPMI to a concentration of 20 million cells. Prior to infusion, 50 μL of 70 μM EDTA was added to the cell suspension for a total IT dose volume of 500 μL per rat.
[0249] Weight and daily observations For randomization, body weights were collected weekly until week 3, twice weekly beginning week 4 until the end of the study, and at necropsy.
[0250] Each animal in the study was observed twice daily for clinical signs of abnormalities, morbidity, or mortality. Technicians observed the animals during dosing and weight sessions.
[0251] Abraxane administration IV - tail vein injection Abraxane (5 mg / mL, maximum dose volume of 250 μL) was administered to Group 2 animals by IV tail vein injection on days 22, 29, and 36.
[0252] NanoPac® Administration - Nose-Only Aerosol Exposure Conditioning Animals were conditioned to the nose-only exposure tube for up to 70 minutes. Three conditioning sessions were conducted over three days prior to exposure, with the first session lasting 30 minutes, the second session lasting 60 minutes, and the third session lasting 70 minutes. Animals were closely monitored throughout the conditioning period and during exposure to ensure they experienced no more than momentary distress.
[0253] Exposure System Aerosols were generated using two compressed air jet Hospitaks at 20 psi nebulizer pressure. 20.0 mg / mL NanoPac® suspension formulations were used for low- and high-dose exposures. The aerosol was directed through a delivery line into a 32-port nose-only exposure chamber. Rodent inhalation exposures lasted 33 or 65 minutes. NanoPac® suspension aerosols were generated using two sets of Hospitak compressed air jet nebulizers (for up to 40 (±1) minutes, then replaced with the second set of two Hospitak nebulizers for the remaining exposure duration). Oxygen and temperature were monitored and recorded throughout each inhalation exposure.
[0254] Concentration monitoring Aerosol concentration monitoring was performed by collecting aerosols onto pre-weighed GF / A 47 mm filters. Filters were sampled from the animal's breathing zone in a nose-only exposure chamber throughout each inhalation exposure. The aerosol sampling flow rate through the GF / A filters was maintained at 1.0 ± 0.5 L / min. Filters were collected every 10 minutes throughout each exposure duration, except for the last filter. For low-dose exposures lasting 33 minutes (Groups 3 and 5), the final filter was collected after 13 minutes, and for high-dose exposures lasting 65 minutes (Groups 4 and 6), the final filter was collected after 15 minutes. After sample collection, the filters were weighed to determine the total aerosol concentration within the exposure system.
[0255] After weighing, each filter was placed in a 7 mL glass vial. The filters in the glass vials were extracted and analyzed by high-performance liquid chromatography (HPLC) to quantify the amount of paclitaxel collected on the filters. The total aerosol and paclitaxel aerosol concentrations for each filter were calculated by dividing the total aerosol and collected paclitaxel aerosol by the total airflow through the filter. The average paclitaxel aerosol concentrations were used to calculate the average paclitaxel deposition dose achieved in the lungs of the rodents using Equation 1, as shown in the dose determination section below.
[0256] Dose determination The deposited dose was calculated using Equation 1 as in Example 4.
[0257] Euthanasia and necropsy At scheduled necropsy, animals were euthanized by intraperitoneal injection of an overdose of a barbiturate sedative.
[0258] Blood and tissue collection Final body and brain weights were collected for all necropsies. For scheduled euthanasia, blood (for plasma) was collected by cardiac puncture into K2EDTA tubes. Lungs were removed and weighed. Tumor-containing lung tissue sections, tracheobronchial lymph nodes, and pulmonary tissue were frozen in liquid nitrogen for possible future analysis. The remaining lungs were fixed for possible histopathology.
[0259] histopathology The fixed left lung lobe was trimmed using the "breadloaf" method, and alternating sections were placed in two cassettes to obtain two slides each with three representative sections of the left lung. Tissues were routinely processed, paraffin-embedded, sectioned at approximately 4 μm, mounted, and stained with hematoxylin and eosin (H&E) for microscopic examination. Findings were graded subjectively and semiquantitatively.
[0260] Longitudinal trimmed lung sections (1–4 / animal) obtained from 60 of the 120 treated nude rats in the study were processed onto H&E-stained glass slides for light microscopic evaluation.
[0261] During this review, microscopic findings were recorded and then transferred to an electronic pathology reporting system (PDS-Ascentos-1.2.0, V.1.2), which summarized the incidence and severity of lung burden characteristics data, tabulated the results, and generated individual animal data. Lungs from 60 nude rats were examined histologically: Group 1 [1001–1010], Group 2 [2001–2010], Group 3 [3001–3010], Group 4 [4001–4010], Group 5 [5001–5010], and Group 6 [6001–6010]). To assess the level of tumor burden in these lungs, the lungs were evaluated and scored during histopathological examination. Lungs were graded semiquantitatively for each cumulative lung burden characteristic diagnosis: 1) adenocarcinoma (undifferentiated and differentiated), 2) primitive tumor cells (poorly differentiated pleomorphic cells), and 3) tumor regression using a 4-point grading scale indicating the percentage of total lung tissue involved as follows: 0 = no evidence, 1 = minimal (approximately 1-25% of the total area of involved lung sections), 2 = mild (approximately 25-50% of the total area of involved lung sections), 3 = moderate (approximately 50-75% of the total area of involved lung sections), and 4 = marked (approximately 75-100% of the total area of involved lung sections).
[0262] Histomorphometry Histomorphometric analysis was performed using the fixed left lung lobes of the first 10 animals from each group. Tissues were trimmed using morphometric ("bread slice")-style trimming. Briefly, trimming began at random points 2-4 mm from the cranial end of the lung. Each lung section was cut approximately 4 mm thick. Odd-numbered sections were placed caudally down in cassette 1, while even-numbered sections were placed in cassette 2. Tissue sections were then processed, paraffin-embedded, sectioned at 4 μm, and stained with hematoxylin and eosin (H&E) for examination. Both slides (odd and even slices) were used to determine the average tumor incidence per animal.
[0263] Morphometric analysis was performed on hematoxylin and eosin (H&E)-stained lung tissue from animals assigned by Lovelace Biomedical. Whole slides (two per animal, including transverse sections of the entire left lung) were scanned using a Hamamatsu Nanozoomer™. Scans were analyzed with Visiopharm Integrator System software (VIS, version 2017.2.5.3857). Statistical analysis of tumor area percentage was performed with GraphPad Prism 5 (version 5.04).
[0264] Computerized image quantification, designed to quantify the amount of tumor area present on each slide, was performed on all left lung tissue using whole-slide scans. The Visiopharm Application for Quantifying the Area of Lung Metastases was used to distinguish tumor cells from normal lung tissue based on cellular density, staining intensity, and size and staining intensity. It should be noted that this quantification, based on simple H&E staining, is not perfect (i.e., it cannot completely distinguish between tumor tissue types, necrotic tumor tissue, and viable tumor tissue, and some normal structures may be included as tumors). The value of applying this process to H&E sections is that it provides an unbiased approach to tumor quantification. The area of the entire lung is determined, and then the area occupied by structures identified as metastases is expressed as a percentage of the total area. Fine-tuning of the analyzed area to ensure that extrapulmonary structures are excluded and the entire lung is included can be performed manually. Other manual operations are avoided to ensure consistency across all groups and eliminate the possibility of introducing bias. When possible, the development of specific immunohistochemical stains to identify only tumor tissue will increase the specificity of this analysis.
[0265] Blood collection and processing Blood collected at necropsy was processed to plasma by centrifugation at a minimum of 1300 g for 10 minutes at 4° C. Plasma samples were stored at −70 to −90° C. until analysis or shipment to the sponsor.
[0266] Additional morphological and immunohistochemical (IHC) studies A subset of 17 animals was selected for review of morphological and immunohistochemical (IHC) features using slides prepared with hematoxylin and eosin, Masson's trichrome staining, AE1 / AE3 (pan-keratin), and CD11b (dendritic cells, natural killer cells, and macrophages). This subset included control animals (n = 2) and treated animals from each treatment group (n = 3 per group). Rat lung blocks were sectioned at 4 μm thickness and collected onto positively charged slides.
[0267] method H&E and Masson's Trichrome staining were performed according to standard protocols. For the anti-pancytokeratin antibody [AE1 / AE3], rat uteri were sectioned from a tissue bank as a control. Optimization was performed on formalin-fixed, paraffin-embedded (FFPE) rat uterine tissue from a tissue bank using a Leica Bond automated immunostainer and mouse anti-pancytokeratin [AE1 / AE3] (Abcam, number ab27988, lot number GR3209978-1) antibody at four different dilutions, as well as negative controls: no primary antibody, 1:50, 1:100, 1:200, and 1:400. Heat-induced antigen retrieval was performed using Leica Bond Epitope Retrieval Buffer 1 (citrate buffer, pH 6.0) for 20 minutes (ER1(20)) and Leica Bond Epitope Retrieval Buffer 2 (EDTA solution, pH 9.0) for 20 minutes (ER2(20)). Non-specific background was blocked with Rodent Block M (Biocare, no. RBM961H, lot no. 062117).
[0268] Anti-pancytokeratin [AE1 / AE3] antibodies were detected using Mouse-on-Mouse HRP Polymer (Biocare, product number MM620H, lot number 062016) and visualized with 3'3-diaminobenzidine (DAB, brown). Hematoxylin nuclear counterstain (blue) was applied. Optimization slides were examined to determine the optimal staining conditions for specimen slides using anti-pancytokeratin [AE1 / AE3] antibodies at a dilution of 1:50 with ER2 (20).
[0269] For the anti-CD-11b antibody, optimization was performed on formalin-fixed paraffin-embedded (FFPE) rat lymph node tissue from a tissue bank using a Leica Bond automated immunostainer and rabbit anti-CD11b antibody at four different dilutions, and negative controls: no primary antibody, 1:250, 1:500, 1:1000, and 1:2000.
[0270] Heat-induced antigen retrieval was performed using Leica Bond Epitope Retrieval Buffer 1 (citrate buffer, pH 6.0) for 20 min (ER1(20)) or Leica Bond Epitope Retrieval Buffer 2 (EDTA solution, pH 9.0) for 20 min (ER2(20)).
[0271] Anti-CD11b antibodies were detected using Novocastra Bond Refine Polymer Detection and visualized with 3'3-diaminobenzidine (DAB, brown). Hematoxylin nuclear counterstain (blue) was applied. Optimization slides were examined to determine optimal staining conditions for FFPE tissue using anti-CD11b at a dilution of 1:2000 with ER2 (20). Rat lymph node controls were used in parallel with rat lung samples.
[0272] Research results Clinical observations, survival rate, and body weight All animals survived to their designated necropsy time points. Clinical observations associated with this model included skin rash and respiratory distress. One animal was observed to have an epigastric hernia. Following veterinarian recommendations, animals were replaced with Group 1 (untreated controls), which did not receive inhalation exposure and therefore did not require exposure tube restraint.
[0273] Figure 13 shows the mean body weight over the duration of the study. Figure 14 shows the percent change in mean body weight from day 0. All groups gained weight at approximately the same rate throughout the duration of the study.
[0274] Abraxane IV tail vein injection In the group receiving IV Abraxane, the mean doses on days 22, 29, and 36 were 4.94, 4.64, and 4.46 mg / kg, respectively.
[0275] NanoPac® Exposure Aerosol concentration and deposition Total aerosol and paclitaxel aerosol concentrations were measured by sampling GF / A filters during each exposure. The inhalation exposure mean paclitaxel aerosol concentrations for the weekly low-dose and twice-weekly low-dose NanoPac® groups were 270.51 μg / L and 263.56 μg / L, respectively. The inhalation exposure mean paclitaxel aerosol concentrations for the weekly high-dose and twice-weekly high-dose NanoPac® groups were 244.82 μg / L and 245.76 μg / L, respectively. Oxygen and temperature levels were monitored throughout each exposure.
[0276] Doses were based on mean aerosol paclitaxel concentrations, current mean group weights, an estimated deposition rate of 10%, and exposure durations of 33 or 65 minutes. During 4 weeks of treatment, the mean rodent deposition doses achieved for the weekly low-dose NanoPac® group and the twice-weekly low-dose NanoPac® group were 0.655 mg / kg and 0.640 mg / kg (1.28 mg / kg / week), respectively.
[0277] The mean rodent deposition doses achieved for the weekly high-dose NanoPac® group and the twice-weekly high-dose NanoPac® group were 1.166 mg / kg and 1.176 mg / kg (2.352 mg / kg / week), respectively.
[0278] Particle size (MMAD and GSD) Particle size distribution was determined in terms of mass median aerodynamic diameter (MMAD) and geometric standard deviation (GSD) for each NanoPac® formulation aerosol using a cascade impactor. For the 20.0 mg / mL NanoPac® aerosol, the mean MMAD was determined to be 2.01 microns and the GSD was determined to be 1.87.
[0279] Necropsy observations and organ weights All animals survived to their designated necropsy time points. At necropsy, animals from each group had tan nodules in the lungs and / or red or tan patchy discoloration of the lungs. Other sporadic observations included an abdominal hernia in one animal and a pericardial nodule in another. No other abnormal gross observations were noted at necropsy. One animal did not have any visible tumors (nodules) at necropsy.
[0280] Individual animal organ weight data are presented graphically in Figures 15, 16, and 17. Lung weights in Abraxane-treated animals showed significantly lower lung-to-BW and lung-to-brain weight ratios compared to untreated controls. The once-weekly NanoPac® high-dose group had similar weights to the Abraxane group and significantly lower lung weights and lung-to-brain ratios compared to untreated controls. The once-weekly low-dose NanoPac®, twice-weekly low-dose, and twice-weekly high-dose NanoPac® groups generally had similar mean lung weights and ratios.
[0281] Morphometry All treatment groups showed a reduction in mean lung tumor incidence compared to the control group; however, there were no statistically significant differences between groups. There was also no statistically significant difference between IV Abraxane treatment and any of the NanoPac® treatment regimens in terms of tumor area percentage examined on cross-sectional lung slides. As is typical of this model, there was a large variability in tumor incidence between animals within all groups. These data should be considered in conjunction with other indicators of lung tumor burden in this model, including lung-to-brain weight ratio and standard histopathology for final interpretation. It is important to note that morphometric analysis and histopathological examination were performed on fixed lung tissue from the left lobe, while other analyses of lung tissue may be performed on frozen tissue from the right lobe. Mean tumor area is shown in Figures 18 and 19.
[0282] pathology results H&E stained lung slides are shown in Figures 20, 21, 22, 23, 24, and 25. As a result of slide examination of the identified populations of neoplastic cells, the pathologist determined the following: (1) there was a slight decrease in the severity of the total lung tumor burden of adenocarcinoma (undifferentiated and differentiated cells) in all treatment groups (Group 2 (1.7), Group 3 (1.8), Group 4 (1.7), Group 5 (1.6), and Group 6 (1.6)) compared with the untreated control Group 1 (2.1); (2) there was a reduction in the primitive tumor cell population, evidenced by a decrease in severity in Group 3 (0.3), Group 4 (0.3), Group 5 (0.2), and Group 6 (0.2) compared with the corresponding control Groups 1 (0.9) and 2 (1.0); and 3) there was tumor regression in Groups 3 (0.6), Group 4 (1.0), Group 5 (0.8), and Group 6 (1.0) compared with the corresponding control Groups 1 (0.0) and 2 (0.1). The incidence and severity of lung burden profile data are summarized in Table 24 and Figure 26. [Table 24]
[0283] Observations of H&E stained lung slides are shown in Figures 20, 21, 22, 23, 24, and 25. General observations: Control: widespread levels of viable tumor with proliferating cells and little or no immune cell infiltration.
[0284] Abraxane IV: Many viable appearing tumor masses with some lymphocyte response with some tumor regression.
[0285] NanoPac® Weekly, High: Clearance of tumor from lung with few remaining viable tumor cells. Remaining mass appears as immune cell infiltrate and desmoplasia.
[0286] NanoPac® twice weekly, low: A few tumor nodules remain, surrounded by an immune cell infiltrate containing macrophages and mononuclear cells.
[0287] NanoPac® twice weekly, high: few tumor nodules, with tumor replaced by immune infiltrate and interstitial fibrosis.
[0288] Extensive mononuclear tumor-killing cell infiltration was observed in the lungs of animals administered NanoPac® via inhalation. Because the model used lacks T cells, the cells are likely B cells or NK cells, or both. B cells contribute to the production of antibodies and may be involved in tumor cell killing through antibody-dependent cell-mediated cytotoxicity (antibodies bind to cells expressing Fc receptors and enhance the killing ability of these cells). NK cells are innate lymphoid cells that are important for tumor cell killing. In patients with tumors, NK cell activity is reduced, allowing tumor growth. In addition to T cells, NK cells are targets of several checkpoint inhibitors to enhance their activity.
[0289] By using a wide range of surface receptors capable of delivering either triggering or inhibitory signals, NK cells are able to monitor cells in their environment to see if they are abnormal (tumor or viral infection) and need to be eliminated by cytotoxicity.
[0290] The cytotoxicity and chemotaxis of NK cells can be altered by many pathological processes, including tumor cells and their by-products. Depending on specific signals, their function can be enhanced or augmented. Using different Toll-like receptors (TLRs), NK cells can increase cytokine production and / or cytolytic activity in response to several pathogen-associated molecular patterns (PAMPs). Cytokines, including IL-2, IL-15, IL-12, IL-18, and IFN α / β, can also modify NK cell activity. NK cells are not simply cytolytic effectors capable of killing different tumor cell targets; rather, they represent a heterogeneous population capable of finely tuning their activity in diverse environmental contexts.
[0291] Tumor burden appeared to be significantly reduced in the lungs of animals treated with NanoPac®, lower than that for Abraxane IV. Thus, local administration of paclitaxel in the form of NanoPac® provided additional efficacy, likely due to both longer exposure to chemotherapy over time and active cellular infiltration at the tumor site. This latter response appeared to be dependent on dose density (actual dose and frequency of administration).
[0292] Observations from specific micrographs: Figure 20: Subject 1006 (control) Adenocarcinoma - 3, Primitive - 1, Regression - 0. Low magnification (2x) showing the general distribution of undifferentiated, pleomorphic, large, anaplastic tumor cells within the alveolar spaces or lining the alveolar septa. The majority of the cells do not have the characteristics of adenocarcinoma and are found in sheets of adjacent tumor. Many cells have basophilic cytoplasm, while others are large, anaplastic, and contain hypochromic staining. Note the presence of a pre-existing resident population of alveolar macrophages and the lack of tumor regression.
[0293] Figure 21: Subject 2003 (IV Abraxane) adenocarcinoma-1, primitive-1, regressing-1. Low magnification (4x) showing generalized distribution of tumor masses, primarily at the periphery, as well as multiple smaller, expanding tumor masses filling the alveolar spaces. The tumor cells are pleomorphic, large, anaplastic, and have hypochromatic staining, varying from the undifferentiated to differentiated pattern of adenocarcinoma. Evidence of tumor regression is present around the periphery of the masses and is characterized primarily by macrophage infiltration.
[0294] Figure 22: Subject 2010 (IV Abraxane) Adenocarcinoma - 3, Primitive - 1, Regression - 0. Low magnification (2x) showing the general distribution of large, expanding tumor masses filling most alveolar spaces, as well as peripheral neoplastic cells. Most tumor cells are undifferentiated, pleomorphic, large, and anaplastic, with predominantly hypochromatic staining. Primitive cells are smaller, ovoid, and have more basophilic-staining cytoplasm with variable vesicular nuclei and moderate to marked anisocoria. Inflammatory cell infiltrates are primarily neutrophils and macrophages. This image demonstrates the absence of tumor regression.
[0295] Figure 23: Subject 4009 (IH NanoPac® Weekly, High) Adenocarcinoma - 0, Primitive - 0, Regression - 4. Low magnification (2x) showing the general distribution of the already dense tumor mass, the presence of fibrous connective tissue, a central collagenous stroma, and multiple small areas of fibrocytes in the surrounding alveolar spaces, as well as thickened alveolar septa confirming signs of tumor regression. In addition, the alveolar spaces are generally filled with macrophage and lymphocyte infiltrates, further signs of tumor regression.
[0296] Figure 24: Subject 5010 (IH NanoPac® twice weekly, low) Adenocarcinoma-1, primitive-0, regressing-3. Low magnification (2x) showing the general distribution of already confluent tumor masses. Regressing masses are variably small and randomly distributed. Fibrous connective tissue is seen filling / replacing the alveolar spaces, suggesting foci of regressing adenocarcinoma. Acute necrosis, fibrous connective scaffolding, mixed cellular infiltrate of macrophages, giant cells, and lymphocytes around the epithelium and stroma are signs of tumor regression.
[0297] Figure 25: Subject 6005 (IH NanoPac® twice weekly, High) Adenocarcinoma-1, primitive-0, regression-4. Low magnification (2x) showing the general distribution of the already dense tumor mass with multiple small areas of fibrous connective tissue filling / replacing the alveolar spaces, suggesting foci of previous infiltration of adenocarcinoma cells. Tumor regression is evidenced by desmoplasia of the already dense tumor mass, a central collagenous stromal core and peripheral fibrous connective tissue filling / replacing the alveolar spaces, thickened septa, and the presence of fibrocytes filling the alveolar spaces infiltrated by lymphocytes and macrophages.
[0298] Results of additional morphological and immunohistochemical (IHC) studies After reviewing the H&E slides from all 120 animals in this study, it was noted that a possible immune response was observed in the treatment groups. To further investigate this finding, a subset of animals was selected from each group for further immunohistochemical evaluation.
[0299] First, the trend in tumor regression assessed by a pathologist reviewing all 120 animals was compared with a different pathologist reviewing a subset of 17 animals to demonstrate similar trends across sample sizes.
[0300] An initial assessment of the extent of tumor regression in all 120 animals was performed by a pathologist, who semiquantitatively graded the tumor using a point scale indicating the percentage of total lung tissue involved. The grading system was based on a grading scale of 0 = no signs, 1 = 1-25% of the total lung section area, 2 = 25-50% of the total lung section area, 3 = 50-75% of the total lung section area, and 4 = 75-100% of the total lung section area. This assessment indicates the incidence of animals exhibiting tumor regression, scored as follows: 0% for untreated controls, 10% for IV Abraxane, 55% for IH NanoPac® low-dose once weekly, 55% for IH NanoPac® low-dose twice weekly, 55% for IH NanoPac® high-dose once weekly, and 65% for IH NanoPac® high-dose twice weekly.
[0301] A review of a subset of 17 animals, performed by a second pathologist, assessed tumor regression using a similar semiquantitative grading scale (0 = no signs, 1 = 1-19% of the total area of the lung section, 2 = 11-50% of the total area of the lung section, 3 = >50% of the total area of the lung section, 4 = complete regression). This assessment indicates the incidence of animals exhibiting tumor regression, scored as follows: 0% for untreated controls, -65-69% for IV Abraxane, 100% for IH NanoPac® low-dose once weekly, 100% for IH NanoPac® low-dose twice weekly, 100% for IH NanoPac® high-dose once weekly, and 100% for IH NanoPac® high-dose twice weekly. This review (17 animals) showed a similar pattern to the previous review (120 animals), with the inhaled group having the highest percentage of animals with tumor regression.
[0302] Histological review of a subset of 17 animals from this study revealed interesting patterns regarding tumor regression and immune response. Two main features differed between the various groups: the presence and extent of tumor regression, and the presence and intensity of the accompanying immune response. The following are observations and points of note from the histological review:
[0303] Untreated group Observation results: Figure 27: Control case. Top row: H / E stained sections. Bottom row: Immunohistochemical staining. Column 1: (A) A poorly differentiated area of adenocarcinoma consisting of sheet-like large cells with pleomorphic nuclei, increased mitoses, and a lack of glandular differentiation. Note the dense, compact arrangement of tumor cells, the sharp border from normal lung around the lower right corner, and the lack of a fibrous capsule surrounding the tumor. (D) Corresponding keratin immunostaining from the same area shown in A, demonstrating sensitive and specific labeling of carcinoma cells by pancytokeratin (solid arrow). Column 2: (B) Adenocarcinoma with focal rudimentary duct formation (upper right dashed arrow). Note the central focal, localized immune cell component consisting of small lymphocytes and focal macrophages (center solid arrow). (E) CD11b staining showing minimal numbers of NK cells and macrophages at the periphery of the tumor cell nodule (solid arrow). Column 3: (C) Adenocarcinoma growing adjacent to a focus of bronchus-associated lymphoid tissue (BALT) consisting of densely packed small mature lymphocytes (marked by solid arrow). Note the close association of BALT with the adjacent normal bronchial lining (dashed arrow in the upper left corner). (F) Foci corresponding to those seen in C stained for keratin, showing positive staining of carcinoma cells and lack of staining of lymphoid cells.
[0304] Note: Both animals showed uniform growth of solid, densely packed aggregates of adenocarcinoma. The tumors had relatively well-defined margins adjacent to the surrounding normal lung parenchyma, and there was no sign of tumor regression or unabated tumor cell growth. These animals had mild lymphoid infiltrates and few tertiary lymphoid structures.
[0305] Intravenous (IV) Abraxane positive treatment control group Observations: Figure 28: IV Abraxane (2003) showing an adenocarcinoma nodule with tumor regression consisting of tumor separation towards the nodule margin into progressively smaller tumor cell clusters and single tumor cells, with an associated increase in immune cell infiltrate. Column 1: (A) Low-magnification image of a nodule of invasive adenocarcinoma (highlighted by dashed arrow). Note the irregular marginal border of the nodule due to progressive segregation of tumor cells at one edge and an increased immune cell response (solid arrow). (D) Corresponding keratin immunostaining from the same area shown in A. This clearly demonstrates the progressively smaller size of the tumor cell nodules toward the margin (dashed arrow) and the increased interstitial space between them (solid arrow). Column 2: (B) Higher magnification image of the area in image A, showing progressively smaller clusters of tumor cells (dashed arrow). (E) Higher magnification image of the keratin-stained area shown in D, highlighting the isolated, smaller tumor cell nodules. Note the progressive decrease in tumor cell cluster size moving from the upper right toward the lower left corner where the tumor presents as individual, single tumor cells (dashed arrow). Solid arrows highlight the increasing intercalated stroma with immune cells. Column 3: (C) Immune cells (highlighted by solid arrows) seen within the center of the tumor nodule (dashed arrows highlight tumor cells). (F) Low magnification image of a CD11b-stained section highlighting the same area seen in image A. This shows an increased density of immune cells (solid arrows) at the edge of the nodule and within the tumor nodule. Dashed arrows highlight residual carcinoma cells not labeled with the CD11b antibody.
[0306] Note: Although all three animals showed tumor growth in the form of densely packed adenocarcinomatous masses, two of the animals showed several features consistent with tumor regression. This regression was characterized by the presence of progressive separation and disappearance of tumor cell clusters at the margins of poorly defined tumor nodules adjacent to the surrounding normal lung parenchyma. The lymphoid infiltrate in areas showing tumor disappearance showed increased interstitial lymphoid infiltrate.
[0307] Inhaled NanoPac® treatment group Observations: Figure 29: Inhaled NanoPac® cases. Top row: Low dose, once weekly (LD1×) (Case 3006). (A) H / E staining showing tumor regression within the nodule with prominent separation and disappearance of tumor cells at the periphery (dashed arrows indicate residual tumor, solid arrows indicate intervening stroma with inflammation). (B) Keratin staining highlights residual carcinoma (dashed arrow) with large intervening areas of tumor disappearance (solid arrow) consisting of background stroma with lymphocytes and macrophages. (C) CD11b immunostaining highlights prominent lymphohistiocytic immune cell infiltrates within areas of tumor cell shedding (solid arrow). Residual unstained carcinoma is highlighted by dashed arrows. Column 2: Low dose, twice weekly (LD2x) (Case 4009). (D) H / E staining showed no residual viable adenocarcinoma. This case contained scattered foci such as these, consisting of aggregates of small lymphocytes and macrophages within the background stroma. No diagnostically viable tumor cells were seen in these nodules or elsewhere in the lung sections. (E) Keratin staining of the same area as D shows the lack of staining, thus adding immunohistochemical support for the interpretation of no residual viable carcinoma and complete regression. (F) CD11b staining indicates this lesion has a mild to moderate immune cell infiltrate. Third column: High dose, once weekly (HD1x) (Case 5008). (G) H / E staining showing tumor regression within the nodule with prominent separation and disappearance of tumor cells at the periphery (dashed arrow indicates residual tumor, solid arrow indicates intervening stroma with inflammation). (H) Keratin staining highlights large unstained areas of tumor disappearance (solid arrow) consisting of residual carcinoma (dashed arrow) and background stroma with lymphocytes and macrophages. (I) CD11b immunostaining highlights prominent immune cell infiltrates within areas of tumor cell shedding (solid arrow). Residual pockets of unstained carcinoma are highlighted by dashed arrows. Column 4: High dose, twice weekly (HD2x) (Case 6005). (J) H / E staining showed numerous aggregates, such as this one, containing cells with eosinophilic and foamy cytoplasm (low magnification). (K) Higher magnification of the same area shows cells with spindle-shaped nuclei (solid arrows) and few, possibly duct-like structures or regenerating small blood vessels (dashed arrows). (L) Masson's trichrome staining shows blue staining of the stroma, consistent with early collagen formation and organization. Column 5: High dose, twice weekly (HD2x) (continued from Case 6005). (M) Keratin staining shows focal single-cell and duct-like structure labeling (dashed arrow). Interstitial cells are negative for keratin (solid arrow). (N) CD11b immunostaining highlights immune cell infiltrates within areas of tumor cell shedding (solid arrow). The magnification of this image matches that of J.
[0308] Of note: Of the 12 animals, one animal showed no residual adenocarcinoma and was interpreted as a complete responder (vs. non-engraftment). One animal presented challenges in classification, as it contained rare cases of tumor-positive staining that were difficult to distinguish as tumor or as regenerating small vessels and / or regenerating / atrophic non-tumorous lung parenchyma. Therefore, this second case was also interpreted as a widespread, near-complete responder. In these two cases, scattered foci of immune cells were present in areas that were presumed to have previously contained solid clusters of adenocarcinoma. One case showed signs of organization with fibrillar collagen deposition as seen by Masson's trichrome staining. All remaining 10 animals showed tumor nodules with varying degrees of apparent tumor regression, with 8 of the 10 animals showing greater than 50% tumor regression of the tumor nodules. The inhaled NanoPac® group showed distinct lymphoid infiltrates, consisting of well-defined, organized aggregates of densely packed mature lymphoid cells, with clearly defined lymphoid follicles, germinal centers, interfollicular regions, and paracortical areas, as well as smaller, dense aggregates of lymphoid tissue at the periphery and focally within the center of the tumor nodule.
[0309] Observation of tertiary lymphatic structures (TLS) Secondary lymphoid organs develop as part of a genetically preprogrammed process during embryogenesis and primarily function to initiate adaptive immune responses and provide a site of interaction between rare antigen-specific naive lymphocytes and antigen-presenting cells draining from local tissues. Organogenesis of secondary lymphoid tissues is repeated in adulthood during de novo lymphogenesis of tertiary lymphoid structures (TLS), which can form in inflamed tissues affected by various pathological conditions, including cancer. Organogenesis of mucosa-associated lymphoid tissues, such as bronchus-associated lymphoid tissue, is one such example. The term TLS can refer to different tissue structures, ranging from simple clusters of lymphocytes to sophisticated, isolated structures that closely resemble secondary lymphoid organs. A notable difference between lymph nodes and TLS is that while lymph nodes are encapsulated, TLS represent collections of immune and stromal cells confined within an organ or tissue.
[0310] Observations: Figure 30: Lymphatic structure of treated and untreated cases. First row: Case of inhaled NanoPac®, high dose, twice weekly (HD2x) (Case 6007), demonstrating tertiary lymphoid structures (TLS) with follicular hyperplasia. (A) H / E staining showing two adjacent TLS (highlighted by solid arrows). In the lung, these are called bronchus-associated lymphoid tissue (BALT). Note the organoid appearance of these TLS, in that they consist of well-circumscribed aggregates of dense lymphoid tissue with a distinct topology, including lymphoid follicles with prominent germinal centers, interfollicular regions, and paracortical areas. The dashed arrow highlights an adjacent focus of tumor with an irregular margin, consistent with tumor regression. (B) Higher magnification image from the area in A. The smaller TLS contains lymphoid follicles with prominent germinal centers (pale areas at the tips of the arrows). This process of germinal center formation in lymphoid follicles, called lymphoid follicular hyperplasia, indicates lymphoid tissue that is activated and in the process of initiating an immune response to various antigens, including foreign bodies and tumor debris. Germinal centers characteristically show polarized light, with light and dark areas of lymphoid cells. In this image, the pale areas of the germinal centers point toward the adjacent tumor nodule. (C) Keratin staining shows an adjacent carcinoma nodule with an irregular marginal border. The solid arrow indicates a TLS. Compared to the H / E-stained sections shown in A and B, this TLS appears smaller in this section because it is derived from a deeper portion of the paraffin-embedded tissue. Second column: Comparison between control (D), IV Abraxane (E), and NanoPac® (F) cases to illustrate the differences in the number and density of smaller lymphoid aggregates associated with tumor nodules in the different groups. All three images are at the same low magnification (4x objective). (D) Control case (1003) shows densely packed adenocarcinoma (dashed arrow) without any individual lymphoid aggregates. (E) IV Abraxane case (2009) shows nodules of adenocarcinoma (dashed arrow) and only one rare small lymphoid aggregate (solid arrow) in the lower right. (F) NanoPac® case, high dose, twice weekly (HD2x), shows an adenocarcinoma nodule (dashed arrow) with numerous associated small and medium-sized aggregates of small lymphoid cells. These are located at the tumor margin and focally within the tumor (solid arrow).
[0311] Note: The inhaled NanoPac® group demonstrated increased number and density of TLS (2 per low-power field) compared to the control and IV Abraxane groups (1 per low-power field), with more of these TLS exhibiting increased size and activation, accompanied by lymphoid follicular hyperplasia containing prominent germinal centers.
[0312] In summary, a subreview of the 17 animals revealed some interesting patterns with respect to tumor regression and immune response. Specifically, all of the NanoPac®-treated animals showed at least some features consistent with tumor regression, including two animals with complete and / or near-complete regression, while eight of the remaining 10 animals in this group showed some features consistent with tumor regression in greater than 50% of tumor nodules. This was an increased response compared to the control group, where no animals responded, and the IV Abraxane group, where two of three animals showed tumor regression in 1-10% of tumor nodules.
[0313] When NanoPac® groups were evaluated against each other, both higher doses and more frequent dosing (twice weekly vs. once weekly) were associated with greater effects on tumor response. The data supported an immune-based association with tumor regression, with the inhaled NanoPac® group also demonstrating increased number and density of TLS (2 per low-power field) compared with the control and IV Abraxane groups (1 per low-power field), and more of these TLS were accompanied by lymphoid follicular hyperplasia containing prominent germinal centers, demonstrating increased size and activation. The NanoPac® group also had a higher density of immune cells at the periphery of, and within, tumor nodules.
[0314] conclusion On day -1, 127 NIH-rnu nude rats were irradiated with X-rays to induce immunosuppression. On day 0, animals received Calu3 tumor cells via intratracheal (IT) instillation. Animals underwent a 3-week growth period. During week 3, animals were randomized by weight stratification into study groups. Beginning on week 4, animals in group 2 received a weekly dose of Abraxane® via intravenous (IV) administration (5 mg / kg) on days 22, 29, and 36. Animals in groups 3 and 4 received weekly (Monday) inhaled (INH) doses of NanoPac® at low (0.5 mg / kg) and high (1.0 mg / kg) target doses, respectively. Animals in groups 5 and 6 received a target inhaled dose of NanoPac® twice weekly (Monday and Thursday) at low (0.50 mg / kg) and high (1.0 mg / kg) doses, respectively. Animals in group 1 were left untreated as a control for normal tumor cell growth. All animals were necropsied at week 8.
[0315] All animals survived to their designated necropsy time points. Clinical observations associated with this model included skin rash and respiratory distress. All groups gained weight at approximately the same rate throughout the study.
[0316] The inhalation exposure mean paclitaxel aerosol concentrations for the weekly low-dose and twice-weekly low-dose NanoPac® groups were 270.51 μg / L and 263.56 μg / L, respectively. The inhalation exposure mean paclitaxel aerosol concentrations for the weekly high-dose and twice-weekly high-dose NanoPac® groups were 244.82 μg / L and 245.76 μg / L, respectively.
[0317] Doses were based on mean aerosol paclitaxel concentrations, current mean group weights, an estimated deposition rate of 10%, and exposure durations of 33 or 65 minutes. During 4 weeks of treatment, the mean rodent deposition doses achieved for the weekly low-dose NanoPac® group and the twice-weekly low-dose NanoPac® group were 0.655 mg / kg and 0.640 mg / kg (1.28 mg / kg / week), respectively. The mean rodent deposition doses achieved for the weekly high-dose NanoPac® group and the twice-weekly high-dose NanoPac® group were 1.166 mg / kg and 1.176 mg / kg (2.352 mg / kg / week), respectively. In the group receiving IV injections of Abraxane®, the mean doses on days 22, 29, and 36 were 4.94, 4.64, and 4.46 mg / kg, respectively.
[0318] At scheduled necropsy, the majority of animals from each group had tan nodules in the lungs and / or red or tan patchy discoloration of the lungs. Other sporadic observations included an abdominal hernia in one animal and a pericardial nodule in another. No other abnormal gross observations were noted at necropsy.
[0319] Lung weights in Abraxane-treated animals had significantly lower lung-to-BW and lung-to-brain weight ratios compared to untreated controls. The once-weekly NanoPac® high-dose group had similar weights to the Abraxane group and significantly lower lung weights and lung-to-brain ratios compared to untreated controls.
[0320] Compared with the positive control group 1 and the Abraxane-treated comparison group 2, there was a therapeutic effect measured by a reduction in lung / brain weight ratio and overall lung tumor burden, without any apparent adverse events. Histological analysis of lung tumor burden after treatment with inhaled NanoPac® showed a reduction in tumor mass, a reduction in the primitive tumor cell population, and an increase in tumor regression. Extensive mononuclear cell infiltration was observed in the lungs of animals administered NanoPac® via inhalation. Because the model used is T cell-deficient, the cells were likely B cells or NK cells. It is hypothesized that exposure of the tumor to potentially higher localized concentrations of NanoPac® affected the lungs and resulted in an altered environment that attracted mononuclear cell infiltrates to the lungs.
[0321] Example 14 - Human bladder cancer (UM-UC-3) mouse xenograft study The effect of NANODOCE® (nanoparticulate docetaxel as disclosed herein, used in this example with a mean particle size (number) of 1.078 microns, 37.2 microns) on the growth of subcutaneous (SC) UM-UC-3 bladder cancer cell line (ATCC-CRL-1749) tumors in immunodeficient (Hsd:Athymic Nude-Foxn1nu nude) mice. 2 / g SSA, and 0.0723 g / cm 3 A study was conducted to evaluate the effect of one, two, and three weekly intratumoral injection (IT) administrations (administration cycles) of approximately 99% docetaxel (undoped) suspension with a bulk density of 100 mg / kg. Intratumoral injections of vehicle and intravenous (IV) administration of docetaxel solution were also included in the study as control groups.
[0322] The tumor was placed in the right flank at 1 × 10 7 Cells (100 μL volume) were implanted (Matrigel:PBS containing BD356234 1:1). Tumor volume was determined with a caliper. Formula: V = r length * r width * r height) * π * 4 / 3. Animals were weighed twice weekly. Tumor volume was determined every 3-4 days after tumor implantation (approximately 20 measurements in total) and on the day of euthanasia. Photographic images of the tumors were taken at 2, 3, and 4 weeks after implantation and on the day of euthanasia. Once tumors reached 3,000 mm3 Animals were euthanized when tumors reached a size of 0.01 mm or the point of significant tumor ulceration. At the time of euthanasia, tumors were dissociated and halved. One half of the tumor was snap frozen in LN2 stored at -80°C for subsequent analysis. The other half of the tumor was fixed in formalin. Two H&E-stained slides / tumor were prepared (a maximum of four tumors / group were treated).
[0323] On day 18 after tumor implantation, the average tumor size was 50-325 mm 3 and the animals were sorted into five groups of equal mean tumor size and treated as shown in Table 25 below. [Table 25]
[0324] For IT administration (vehicle / NANODOCE®), injections (using a 27G, ½" needle) were administered at three sites within the tumor (total injection volume calculated based on 40 mg / mL NANODOCE® stock solution and a 25 g mouse = 63 μL, evenly divided among three injection sites) to maximize distribution of the test formulation throughout the tumor. The second treatment (second cycle) was administered 7 days after the first treatment (first cycle), and the third treatment (third cycle) was administered 14 days after the first treatment. Docetaxel solution IV was administered via the tail vein.
[0325] The test formulations were prepared as follows: Vehicle (Control): 1 mL of 1% Polysorbate 80 / 8% Ethanol in Saline (0.9% Sodium Chloride for Injection) reconstitution solution was diluted with 1.5 mL of Saline (0.9% Sodium Chloride for Injection, USP). The final concentration of Polysorbate 80 in the vehicle was 0.4% and the final concentration of Ethanol was 3.2%. NANODOCE® Suspension: 1 mL of 1% polysorbate 80 / 8% ethanol in saline (0.9% sodium chloride for injection) reconstitution solution was added to a vial of NANODOCE® particle powder (100 mg / 60 cc vial). The average particle size (number) of the NANODOCE® particle powder was 1.0 microns. The vial was inverted and vigorously shaken by hand for 1 minute. Immediately after shaking, 1.5 mL of saline solution (0.9% sodium chloride for injection USP) was added to the vial, and the vial was shaken by hand for an additional minute to create a 40 mg / mL suspension. The suspension was allowed to sit for at least 5 minutes to reduce trapped air and bubbles. Docetaxel solution: A 20 mg / mL docetaxel stock solution was prepared in 50% ethanol / 50% polysorbate 80. Saline solution (0.9% sodium chloride for injection) was added to the stock solution to make a final 3 mg / mL docetaxel solution. Vortex to mix.
[0326] result: Tumor volumes were determined twice weekly for the duration of the study (61 days). The results of this study are shown in Figures 31, 32, 33, 34, 35, 36, 37, 38, 39, and 40. As seen in Figure 31, tumor volume decreased and effectively eliminated tumors with the doses of two cycles of NanoDoce® IT and three cycles of NanoDoce® IT. Tumor volume initially decreased but then increased with the doses of one cycle of NanoDoce® IT and three cycles of docetaxel IV. These observations are also reflected in Figures 32, 33, 34, 35, 36, 39, and 40.
[0327] The scatter plot in Figure 37 shows the tumor volume per animal on day 1 of treatment versus the end of the study (the day of sacrifice). As can be seen from Figure 37, the tumor volume in a given animal at the end of the study was independent of the initial tumor size in the same animal for animals treated with two cycles of NanoDoce® IT and three cycles of NanoDoce® IT, since essentially all tumors were effectively eliminated. However, for animals treated with three cycles of docetaxel IV, the tumor volume at the end of the study generally depended on the initial tumor volume in a given animal; i.e., the larger the initial tumor volume, the larger the tumor volume at the end of the study. Treatment with three cycles of docetaxel IV was somewhat effective in treating small tumors but less effective in treating large tumors. Regardless of initial tumor size, administration of two or three cycles of NanoDoce® IT (intratumoral) effectively treated tumors.
[0328] As can be seen from Figure 38, animals treated with three cycles of IV docetaxel generally experienced greater initial weight loss than animals treated with one, two, and three cycles of NanoDoce® IT. Body weight eventually recovered to some extent in all treatments. This may suggest that the initial side effect of appetite loss was greater with IV docetaxel administration than with NanoDoce® IT administration. It was also observed that animals treated with three cycles of IV docetaxel had greater signs of peripheral neuropathy than animals treated with three cycles of NanoDoce® IT; signs of peripheral neuropathy were not observed in animals treated with one or two cycles of NanoDoce® IT.
[0329] On the day of death or euthanasia, tumor tissue samples were collected and frozen in LN2 for docetaxel analysis, histology, and immunohistochemistry (IHC) observation. In the IV docetaxel control group, only one tumor (out of seven measured) had docetaxel levels above the assay's limit of quantitation (1 ng / g). Measurable levels of docetaxel were found in all tumors from the IT NanoDoce® group, with the NanoDoce® 3-cycle group tending to have the highest concentrations of docetaxel remaining in the tumor (see Figure 41). Photomicrographs of histology slides and H&E stains are shown in Figures 42-52. Photomicrographs of IHC slides stained with F4 / 80 antibody stain are shown in Figures 53, 54, and 55.
[0330] Histological overview of the micrographs in Figures 42-52 General observations: Control: widespread levels of viable tumor with proliferating cells, little or no mononuclear immune cell infiltrate, and occasional macrophages.
[0331] Docetaxel solution: Many viable appearing tumor masses with some degree of tumor necrosis, some macrophage and occasional lymphocyte response.
[0332] NanoDoce® 2 cycles: some isolated tumor cells remained, small areas of skin damage, scarring / fibrosis, and immune cell infiltrates including macrophages and monocytes.
[0333] NanoDoce® 3 cycles: some isolated tumor cells remained, small areas of skin damage, scarring / fibrosis, and immune cell infiltrates including macrophages and monocytes.
[0334] Extensive mononuclear cell infiltration was observed at the tumor implantation site in the subcutaneous space of animals receiving intratumoral injections of NanoDoce®. Tumor responses increased with increasing number of cycles, although there was some degree of skin damage, likely due to the small space and shallow area of injection into the flank of nude mice (e.g., the tumor directly against the skin being pulled tightly over the tumor). Because the model used lacks T cells, lymphoid cells were likely B cells or NK cells. B cells contribute to cytotoxicity (antibodies bind to cells expressing Fc receptors, enhancing the killing capacity of these cells). NK cells are innate lymphoid cells that are important for tumor cell killing. In patients with tumors, NK cell activity is reduced, allowing tumor growth. In addition to T cells, NK cells are targets of several checkpoint inhibitors to enhance their activity. In all histological samples provided, macrophages were present within the tumor, but their numbers did not appear to increase significantly.
[0335] By using a wide range of surface receptors capable of delivering either triggering or inhibitory signals, NK cells can monitor cells in their environment to determine whether they are abnormal (tumor or viral infection) and require cytotoxic elimination. NK cell cytotoxicity and chemotaxis can be altered by many pathological processes, including tumor cells and their by-products. Depending on specific signals, their function can be enhanced or augmented. Using different Toll-like receptors (TLRs), NK cells can increase cytokine production and / or cytolytic activity in response to several pathogen-associated molecular patterns (PAMPs). Cytokines, including IL-2, IL-15, IL-12, IL-18, and IFN α / β, can also modify NK cell activity. NK cells are not simply cytolytic effectors capable of killing different tumor cell targets; rather, they represent a heterogeneous population capable of finely tuning their activity in diverse environmental contexts.
[0336] Tumor burden was significantly reduced at the xenograft injection site in animals treated with NanoDoce®, and intratumoral injection was more effective than intravenous docetaxel. Thus, local administration of docetaxel in the form of NanoDoce® provided additional efficacy. This was likely due to both longer exposure to chemotherapy over time and active cellular infiltration into the tumor site. This latter response appeared to be dose-density dependent (actual dose and administration frequency). Anatomically, macrophages were abundant at the tumor margin and decreased in frequency throughout the interstitium as they migrated deeper within the tumor.
[0337] Immunohistochemistry summary of Figures 53, 54, and 55 Figure 53: Wide sheets of viable tumor cells, no mononuclear immune cells (no brown staining).
[0338] Figure 54: Among the vast number of viable tumor cells, there is very little tumor cell destruction and few scattered mononuclear immune cells.
[0339] Figure 55: Virtually no tumor cells remain, and vast numbers of mononuclear immune cells are organized in distinct patterns (probably mostly macrophages).
[0340] Example 15 - Drug Efficacy Study in a Rat Xenograft Model of Human Renal Cell Adenocarcinoma A non-GLP study was conducted to determine the drug efficacy of NanoPac® (nanoparticulate paclitaxel) suspension and NanoDoce® (nanoparticulate docetaxel) suspension administered by intratumoral injection in a rat xenograft model of human renal cell adenocarcinoma.
[0341] the purpose The purpose of this study was to investigate the potential efficacy of NanoPac® (nanoparticulate paclitaxel) and NanoDoce® (nanoparticulate docetaxel) administered by chronic intratumoral (IT) injection in a Sprague-Dawley Rag2;Il2rg null (SRG®) rat xenograft model of human renal cell adenocarcinoma (786-O cell line) (ATCC® CRL-1932™). Five- to seven-week-old SRG rats were inoculated subcutaneously with 5 million 786-O cells in Cultrex® to allow tumor xenograft growth. Once tumor volumes reached 150-300 mm, tumors were grown. 3 Once tumor growth was reached, rats were enrolled in a rotating fashion into treatment groups consisting of test article (administered IT), positive controls (paclitaxel and docetaxel, administered intravenously (IV)), and vehicle control (administered IT), and then monitored for tumor growth or regression.
[0342] cell culture Cell line: 786-O cell line (ATCC® CRL-1932™). Cells were stored in liquid nitrogen. After thawing, cells were cultured at 37°C and 5% CO2. After the cells were prepared for transplantation, they were kept on ice until injection.
[0343] Cell culture conditions: Cells were cultured in RPMI 1640 (Gibco #410491-01) and 10% FBS in tissue culture-treated flasks at 37°C and 5% CO2. Cells were grown for 2-3 weeks before seeding. Cell thawing, culture, and passaging were performed by ATCC (www.atcc.org / Products / All / CRL-1932.aspx).
[0344] Cell inoculation: 5 × 10 per rat 6 Cell. Subcutaneous left posterior ventral, dorsal.
[0345] Inoculation vehicle: 50% Cultrex BME Type 3 (Trevigen number 3632-001-02, a type of basement membrane matrix like Matrigel® formulated for in vivo tumor growth) 50% medium in a total volume of 0.5 mL. Cell suspension mixed 1:1 with 10 mg / mL Cultrex for a final concentration of 5 mg / mL Cultrex. Final inoculation volume is 500 uL.
[0346] Preparation of Test Articles (NanoPac® and NanoDoce® Suspensions) Drug: NanoPac® (nanoparticulate paclitaxel powder, used in this example, with a mean particle size (number) of 0.878 microns, an SSA of 26.7 m / g, and a mean particle size (number) of 0.0763 g / cm) in a 60 mL vial. 3 and 306 mg of NanoDoce® (nanoparticulate docetaxel powder, used in this example, with a mean particle size (number) of 1.078 microns, 37.2 microns) in a 60 mL vial. 2 / g SSA, and 0.0723 g / cm 3 Approximately 99% docetaxel) with a bulk density (untapped) of 100 mg. NanoPac® Suspension (final concentration: 20 mg / mL NanoPac® and 0.32% Polysorbate 80 in saline solution - final volume: 15.3 mL per vial):
[0347] Using a sterile syringe with a sterile 18 gauge or larger needle, 5.0 mL of sterile 1% Polysorbate 80 Reconstitution Solution was added to a 60 mL NanoPac® Powder vial (containing 306 mg of NanoPac® Powder).
[0348] The vial was inverted and shaken vigorously by hand to ensure that all particles adhering to the interior of the vial and to the stopper were wetted.
[0349] Shaking was continued for 1 minute and the suspension was inspected for large particle agglomerates.
[0350] Immediately after shaking, 10.3 mL of saline solution (0.9% sodium chloride solution for injection) was added to the vial using a sterile syringe with a sterile 18-gauge or larger needle, and the vial was hand-shaken for an additional minute. The suspension was inspected periodically for large visible clumps. If present, hand-mixing continued until the suspension was adequately dispersed.
[0351] After mixing, the suspension was allowed to stand for at least 5 minutes to reduce trapped air and bubbles. For NanoDoce® suspension (final concentration: 20 mg / mL NanoDoce® in saline solution with 0.20% polysorbate 80 and 1.6% ethanol - final volume: 5 mL per vial):
[0352] Using a sterile syringe with a sterile 18 gauge or larger needle, 1 mL of sterile 1% Polysorbate 80 / 8% Ethanol Reconstitution Solution was added to a 60 mL NanoDoce® Powder vial (containing 100 mg of NanoDoce® Powder).
[0353] The vial was inverted and shaken vigorously by hand to ensure that all particles adhering to the interior of the vial and to the stopper were wetted.
[0354] Shaking was continued for 1 minute and the suspension was inspected for large particle agglomerates.
[0355] Immediately after shaking, 4 mL of saline solution (0.9% sodium chloride for injection) was added to the vial using a sterile syringe with a sterile 18-gauge or larger needle, and the vial was hand-shaken for an additional minute. The suspension was inspected periodically for large visible clumps. If present, hand-mixing continued until the suspension was adequately dispersed.
[0356] After mixing, the suspension was allowed to stand for at least 5 minutes to reduce trapped air and bubbles.
[0357] Intratumoral (IT) vehicle (final concentration: 0.2% polysorbate 80 and 1.6% ethanol in saline solution): 1 mL of each 1% polysorbate / 8% ethanol reconstituted solution was diluted with 4 mL of saline solution (0.9% sodium chloride solution for injection).
[0358] Preparation of positive control formulation Drugs: Docetaxel: CAS 114977-28-5, an...
Claims
1. 1. A first composition comprising taxane particles for use in a method of treating cancer in a subject, the method comprising: (a) the first composition comprising taxane particles, wherein the taxane particles comprise paclitaxel particles, docetaxel particles, cabazitaxel particles, or a combination thereof, the taxane particles comprise at least 95% of the taxane, and the taxane particles are at least 18 m 2 intratumorally administering the first composition to a subject having a tumor, the first composition having a specific surface area (SSA) of 1 / g; (b) systemically administering to the subject a second composition comprising an immunotherapeutic agent comprising ipilimumab or atezolizumab; wherein said taxane particles have an average particle size (number) of 0.1 microns to 5 microns, and steps (a) and (b) can be performed in any order or simultaneously, thereby treating said cancer.
2. The composition of claim 1 , wherein the tumor is a malignant tumor.
3. 10. The composition of claim 1, wherein the tumor comprises a lung tumor, a sarcoma, a carcinoma, a lymphoma, a breast tumor, a prostate tumor, a head and neck tumor, a glioblastoma, a bladder tumor, a pancreatic tumor, a liver tumor, an ovarian tumor, a colorectal tumor, a skin tumor, an intra-abdominal organ tumor, a skin metastasis, a lymphatic system tumor, and / or a gastrointestinal tumor.
4. 10. The composition of claim 1, wherein the taxane particles have an average particle size (number) of 0.1 microns to 1.5 microns.
5. The composition of claim 1 , wherein the taxane particles are paclitaxel particles.
6. The paclitaxel particles have a density of 0.05 g / cm 3 ~0.15g / cm 3 6. The composition of claim 5 having a bulk density (untapped) of
7. The composition of claim 1 , wherein the taxane particles are docetaxel particles.
8. The docetaxel particles have a density of 0.05 g / cm 3 ~0.15g / cm 3 8. The composition of claim 7 having a bulk density (untapped) of
9. 10. The composition of claim 1, wherein the concentration of the taxane particles in the first composition is from about 1 mg / mL to about 40 mg / mL or from about 6 mg / mL to about 20 mg / mL.
10. The composition of claim 1 , wherein the first composition does not contain a protein.
11. The composition of claim 1 , wherein the second composition comprises a pharmaceutically acceptable carrier.
12. 10. The composition of claim 1, wherein the systemic administration is intravenous (IV) injection or oral delivery.
13. 2. The composition of claim 1, wherein the taxane particles are docetaxel particles and the immunotherapeutic agent comprises ipilimumab.
Citation Information
Patent Citations
Nanoparticle composition of albumin and paclitaxel
JP2016504362A
How to treat melanoma
JP2016513097A
Combination therapies
WO2016089873A1
Taxane particles and their use
WO2016197091A1
Methods of treating locally advanced or metastatic breast cancers using PD-1 axis binding antagonists and taxanes
WO2016205320A1