Lipid-based nanoparticles with enhanced stability
Patent Information
- Application Number
- JP2025040845
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2017-03-13
- Filing Date
- 2025-03-14
- Publication Date
- 2025-07-17
AI Technical Summary
There is a need for compositions and methods that allow therapeutic agents, such as insulin, to be delivered effectively to both peripheral tissues and the liver, to manage diabetes and other conditions requiring targeted liver delivery.
The development of lipid-based nanoparticles enveloped by a bipolar lipid membrane, which includes cholesterol, dicetyl phosphate, 1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC), and biotin DHPE, allows for targeted delivery of therapeutic agents to hepatocytes while also releasing the agent to peripheral tissues.
This approach enables a therapeutically effective and sustained delivery of insulin and other therapeutic agents, providing both basal insulin levels for peripheral tissues and peak insulin levels for managing hepatic glucose stores, thus effectively managing diabetes.
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Abstract
Description
[Technical field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority under 35 USC § 119(e) from U.S. Provisional Patent Application No. 62 / 470,478, filed March 13, 2017, which is incorporated by reference in its entirety. [Background technology]
[0002] 2. Background of the Invention Phospholipid nanoparticles, smaller than about 100 nm in diameter, are often used as carriers to improve the in vivo delivery of active pharmaceutical ingredients (APIs), such as peptides and biogenic amines. The small particle size of nanoparticles (comparable to that of small viruses) allows them to easily cross membrane barriers. In addition, nanoparticles can provide rapid and specific delivery of APIs to desired cell surface receptors, thereby improving pharmacological action and achieving the need for smaller API doses. Targeted API delivery also results in lower toxicity by reducing the delivery of APIs to undesirable tissues in the body.
[0003] An example of such a nanoparticle is a hepatic delivery vesicle (HDV) that contains a hepatocyte targeting component and delivers the API to hepatic receptors, whereas nanoparticles that do not contain a hepatocyte targeting component generally accumulate in hepatic macrophages called Kupffer cells, along with other macrophage cells in the body.
[0004] Diabetes mellitus, including type I and type II forms, is a disorder that affects many people worldwide.The management of diabetes involves normalizing blood glucose levels in subjects, which may require daily injections of insulin-based products for many days.Although various insulin-based products exist on the market, there is still a need for new insulin-containing formulations that control blood glucose levels in subjects for long periods of time.
[0005] Most pharmaceuticals approved for the treatment of diabetes include insulin analogs that are often administered subcutaneously as sustained release formulations. Such administration releases the insulin analogs to peripheral tissues, but not usually to the liver. In one aspect, proper diabetes treatment requires insulin-based formulations that are targeted so that a portion of the administered insulin is released to peripheral tissues throughout the day, and the remaining portion of the administered insulin is delivered to the liver. Such a need is also found with other therapeutic agents that exhibit pharmacological and / or therapeutic properties that benefit from targeted liver delivery.
[0006] Therefore, there is an unmet need in the art for compositions and methods for administering therapeutic agents to subjects, so that the therapeutic agent is delivered to the liver as well as to the peripheral tissues of subjects.Such therapeutic agents include, in a non-limiting example, insulin or any analog thereof, which can be used to control blood glucose level in type I and type II diabetes patients.The present invention addresses this need. Summary of the Invention
[0007] The present invention provides compositions comprising lipid-based nanoparticles.The present invention further includes methods for preparing the lipid-based nanoparticles of the present invention.The present invention further provides methods for treating diseases in mammals.The present invention further provides methods for activating hepatic glycogen synthase in mammals.
[0008] In certain embodiments, the nanoparticles are enveloped by a bipolar lipid membrane, hi other embodiments, the membrane comprises cholesterol, dicetyl phosphate, an amphipathic lipid, and a hepatocyte receptor binding molecule. In yet other embodiments, the amphipathic lipid comprises at least one selected from the group consisting of 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycerol-[3-phospho-rac-(1-glycerol)], 1,2-distearoyl-sn-glycero-3-phosphoethanolamine, 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl), 1,2-dimyristoyl-sn-glycero-3-phosphate, 1,2-dimyristoyl-sn-glycero-3-phosphocholine, 1,2-distearoyl-sn-glycero-3-phosphate, 1,2-dipalmitoyl-sn-glycero-3-phosphate, and 1,2-dipalmitoyl-sn-glycero-3-phosphocholine. In yet another embodiment, the membrane comprises at least one agent selected from the group consisting of a stabilizer and stearoyl lysophosphatidylcholine. In yet another embodiment, the stabilizer is selected from the group consisting of m-cresol, benzyl alcohol, methyl 4-hydroxybenzoate, thiomersal, and butylated hydroxytoluene (2,6-di-tert-butyl-4-methylphenol). In yet another embodiment, the stabilizer is in the range of about 10% to about 25% (w / w) in the membrane. In yet another embodiment, the stearoyl lysophosphatidylcholine is in the range of about 5% to about 30% (w / w) in the membrane. In yet another embodiment, at least one hepatocyte receptor binding molecule extends outward from the nanoparticle. In yet another embodiment, the size of the nanoparticle is in the range of about 10 nm to about 150 nm.
[0009] In certain embodiments, the nanoparticles are enveloped by a bipolar lipid membrane. In other embodiments, the membrane comprises cholesterol, dicetyl phosphate, 1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC), and 2,3-diacetoxypropyl 2-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamide)ethyl phosphate (biotin DHPE). In yet other embodiments, the membrane further comprises at least one agent selected from the group consisting of stearoyl lysophosphatidylcholine and m-cresol. In yet another embodiment, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, m-cresol, and biotin-DHPE in a % (w / w) ratio selected from the group consisting of: (a) about 9.4:18.1:56.8:14.1:0.0:1.5, (b) about 7.7:15.0:58.6:0.0:17.4:1.3, and (c) about 8.4:16.2:47.5:7.6:19.0:1.3. In yet another embodiment, the biotin-DHPE extends outward from the nanoparticle. In yet another embodiment, the size of the nanoparticle ranges from about 10 nm to about 150 nm.
[0010] In certain embodiments, a therapeutic agent is dispersed within the nanoparticles. In other embodiments, the therapeutic agent is covalently attached to the nanoparticles. In yet other embodiments, the therapeutic agent is not covalently attached to the nanoparticles. In yet other embodiments, the nanoparticles are suspended in an aqueous solution that contains free dissolved therapeutic agent that is not dispersed within the nanoparticles. In yet other embodiments, the therapeutic agent comprises at least one selected from the group consisting of insulin, insulin analogs, interferons, parathyroid hormone, calcitonin, serotonin, serotonin agonists, serotonin reuptake inhibitors, human growth hormone, GIP, anti-GIP monoclonal antibodies, metformin, bromocriptine, dopamine, glucagon, amylin, and GLP-1. In yet other embodiments, the therapeutic agent is insulin. In yet other embodiments, the insulin dispersed within the nanoparticles and the free dissolved insulin are independently selected from the group consisting of insulin lispro, insulin aspart, regular insulin, insulin glargine, insulin zinc, long-acting human insulin zinc suspension, isophane insulin, buffered human regular insulin, insulin glulisine, recombinant human regular insulin, recombinant human insulin isophane, and any combination thereof.
[0011] In certain embodiments, the amphipathic lipid comprises at least one selected from the group consisting of 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-[phospho-rac-(1-glycerol)], 1,2-distearoyl-sn-glycero-3-phosphoethanolamine, and 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl).
[0012] In certain embodiments, the hepatocyte receptor binding molecule comprises biotin.
[0013] In certain embodiments, the biotin-containing hepatocyte receptor binding molecule is N-hydroxysuccinimide (NHS) biotin, sulfo-NHS-biotin, N-hydroxysuccinimide long chain biotin, sulfo-N-hydroxysuccinimide long chain biotin, D-biotin, biocytin, sulfo-N-hydroxysuccinimide-SS-biotin, biotin-BMCC, biotin-HPDP, iodoacetyl-LC-biotin, biotin-hydrazide, biotin-LC-hydrazide, biocytin hydrazide, biotin cadaverine, carboxybiotin, photobiotin, ρ-aminobenzoyl biocytin trifluoroacetate, ρ-diazobenzoyl biocytin, biotin DHPE (2,3-diacetoxypropyl 2-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamido)ethyl phosphate), Biotin-X-DHPE (2,3-diacetoxypropyl 2-(6-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamido)hexanamido)ethyl phosphate), 12-((biotinyl)amino)dodecanoic acid, 12-((biotinyl)amino)dodecanoic acid succinimidyl ester, S-biotinyl homocysteine, Biocytin-X, Biocytin x-hydrazide, biotin ethylenediamine, biotin-XL, biotin-X-ethylenediamine, biotin-XX hydrazide, biotin-XX-SE, biotin-XX,SSE, biotin-X-cadaverine, α-(t-BOC) biocytin, N-(biotinyl)-N'-(iodoacetyl)ethylenediamine, DNP-X-biocytin-X-SE, biotin-X-hydrazide, norbiotinamine hydrochloride, 3-(N-maleimidylpropionyl) biocytin, ARP, biotin-l-sulfoxide, biotin methyl ester, biotin-maleimide, biotin-poly(ethylene glycol)amine, (+) biotin 4-amidobenzoic acid sodium salt, biotin 2-N-acetylamino-2-deoxy-β-D-glucopyranoside, biotin-α-DN-acetylneuramindide, biotin-α-L-fucoside, biotin The biotin-containing hepatocyte receptor binding molecule comprises at least one selected from the group consisting of lacto-N-bioside, biotin-Lewis A trisaccharide, biotin-Lewis Y tetrasaccharide, biotin-α-D-mannopyranoside, and biotin 6-O-phospho-α-D-mannopyranoside. In another embodiment, the biotin-containing hepatocyte receptor binding molecule is biotin-DHPE. In yet another embodiment, the biotin-containing hepatocyte receptor binding molecule is biotin-X-DHPE. In yet another embodiment, the biotin-containing hepatocyte receptor binding molecule comprises at least one selected from the group consisting of biotin-DHPE and biotin-X-DHPE.
[0014] In certain embodiments, the composition further comprises cellulose acetate phthalate at least partially bound to the therapeutic agent dispersed within the nanoparticles.
[0015] In certain embodiments, the composition further comprises at least one charged organic molecule coupled to a therapeutic agent dispersed within the nanoparticles, the charged organic molecule being selected from the group consisting of protamine, polylysine, poly(arg-pro-thr) in a molar ratio of 1:1:1. n , poly(DL-Ala-poly-L-lys) at a molar ratio of 6:1 n , histones, sugar polymers containing primary amino groups, polynucleotides with primary amino groups, carboxyl (COO - ) or sulfhydral (S -) a protein comprising an amino acid residue having a functional group, and an acidic polymer.
[0016] In certain embodiments, cholesterol ranges from about 5% to about 15% (w / w) in the membrane.
[0017] In certain embodiments, dicetyl phosphate is in the range of about 10% to about 25% (w / w) in the membrane.
[0018] In certain embodiments, DSPC ranges from about 40% to about 75% (w / w) in the membrane.
[0019] In certain embodiments, the hepatocyte receptor binding molecule is in the range of about 0.5% to about 4% (w / w) in the membrane.
[0020] In certain embodiments, the amount of stearoyl lysophosphatidylcholine in the membrane is about 5%-30% (w / w) of the amount of DSPC in the membrane.
[0021] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, m-cresol, and at least one selected from the group consisting of biotin DHPE and biotin-X-DHPE.
[0022] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, m-cresol, and at least one selected from the group consisting of biotin DHPE and biotin-X-DHPE.
[0023] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, and at least one selected from the group consisting of biotin DHPE and biotin-X-DHPE.
[0024] In certain embodiments, the method comprises contacting cholesterol, dicetyl phosphate, an amphipathic lipid, a hepatocyte receptor binding molecule, and at least one agent in an aqueous system. In other embodiments, the method comprises contacting cholesterol, dicetyl phosphate, DSPC, biotin-DHPE, and at least one agent in an aqueous system. In yet other embodiments, the at least one agent comprises a stabilizer that is added to the aqueous system after contacting cholesterol, dicetyl phosphate, an amphipathic lipid, if present, stearoyl lysophosphatidylcholine, and a hepatocyte receptor binding molecule in the aqueous system. In yet other embodiments, the at least one agent is m-cresol, and is added to the aqueous system after contacting cholesterol, dicetyl phosphate, DSPC, if present, stearoyl lysophosphatidylcholine, and a biotin-DHPE in the aqueous system. In yet other embodiments, the nanoparticle comprises a therapeutic agent dispersed therein. In yet other embodiments, the therapeutic agent, cholesterol, dicetyl phosphate, amphipathic lipid, hepatocyte receptor binding molecule, and at least one agent are contacted simultaneously in an aqueous system. In yet other embodiments, the therapeutic agent, cholesterol, dicetyl phosphate, DSPC, at least one agent, and biotin-DHPE are contacted simultaneously in an aqueous system. In yet other embodiments, the nanoparticles are formed in the absence of a therapeutic agent, optionally the nanoparticles are at least partially enriched, purified, or isolated, and a therapeutic agent is contacted with the nanoparticles, whereby at least a portion of the therapeutic agent is dispersed within the nanoparticles. In yet other embodiments, the nanoparticles include a therapeutic agent dispersed therein.
[0025] In certain embodiments, the method comprises administering to a mammal in need thereof a therapeutically effective amount of a composition of the invention, hi other embodiments, the disease is diabetes and the therapeutic agent comprises insulin.
[0026] In certain embodiments, the method comprises administering to a mammal in need thereof a therapeutically effective amount of a composition of the invention, wherein the therapeutic agent comprises insulin, hi other embodiments, the mammal has diabetes. [The present invention 1001] 1. A composition comprising a lipid-based nanoparticle, The nanoparticles were enveloped by a bipolar lipid membrane containing cholesterol, dicetyl phosphate, 1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC), and 2,3-diacetoxypropyl 2-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamido)ethyl phosphate (biotin DHPE). the membrane further comprises at least one agent selected from the group consisting of stearoyl lysophosphatidylcholine and m-cresol; The membranes contained cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, m-cresol, and biotin DHPE. (a) about 9.4:18.1:56.8:14.1:0.0:1.5, (b) approximately 7.7:15.0:58.6:0.0:17.4:1.3; and (c) Approximately 8.4:16.2:47.5:7.6:19.0:1.3 In a weight percent (w / w) ratio selected from the group consisting of Biotin-DHPE extends outwardly from the nanoparticle; and The size of the nanoparticles is in the range of about 10 nm to about 150 nm. composition. [The present invention 1002] The composition of the present invention 1001, wherein a therapeutic agent is dispersed within the nanoparticles. [The present invention 1003] The composition of claim 1002, wherein the therapeutic agent is covalently attached to the nanoparticles. [The present invention 1004] The composition of claim 1002, wherein the therapeutic agent is not covalently attached to the nanoparticle. [The present invention 1005] The composition of the present invention 1002, wherein the therapeutic agent comprises at least one selected from the group consisting of insulin, insulin analogs, interferon, parathyroid hormone, calcitonin, serotonin, serotonin agonists, serotonin reuptake inhibitors, human growth hormone, GIP, anti-GIP monoclonal antibodies, metformin, bromocriptine, dopamine, glucagon, amylin, and GLP-1. [The present invention 1006] The composition of the present invention 1002, wherein the nanoparticles are suspended in an aqueous solution containing free dissolved therapeutic agent that is not dispersed within the nanoparticles. [The present invention 1007] The composition of claim 1002, wherein said therapeutic agent is insulin. [The present invention 1008] The composition of the present invention 1007, wherein the insulin dispersed within the nanoparticles and the free dissolved insulin are independently selected from the group consisting of insulin lispro, insulin aspart, regular insulin, insulin glargine, insulin zinc, long-acting human insulin zinc suspension, isophane insulin, buffered human regular insulin, insulin glulisine, recombinant human regular insulin, recombinant human insulin isophane, and any combination thereof. [The present invention 1009] The composition of claim 1002, further comprising cellulose acetate phthalate at least partially bound to said therapeutic agent dispersed within the nanoparticles. [The present invention 1010] At least one charged organic molecule bound to the therapeutic agent dispersed within the nanoparticles, the organic molecule being selected from the group consisting of protamine, polylysine, and poly(arg-pro-thr) in a molar ratio of 1:1:1. n , poly(DL-Ala-poly-L-lys) at a molar ratio of 6:1 n , histones, sugar polymers containing primary amino groups, polynucleotides with primary amino groups, carboxyl (COO - ) or sulfhydral (S -) a charged organic molecule, which is at least one selected from the group consisting of a protein containing an amino acid residue having a functional group, and an acidic polymer; The composition of the present invention 1002 further comprises: [The present invention 1011] 1001. A method for preparing lipid-based nanoparticles of the present invention, comprising the step of contacting in an aqueous system cholesterol, dicetyl phosphate, DSPC, biotin-DHPE, and said at least one agent. [The present invention 1012] The method of claim 1011, wherein said at least one agent is m-cresol and is added to said aqueous system after contacting cholesterol, dicetyl phosphate, DSPC, if present, stearoyl lysophosphatidylcholine, and biotin-DHPE in said aqueous system. [The present invention 1013] The method of claim 1011, wherein the nanoparticles comprise a therapeutic agent dispersed therein. [The present invention 1014] The method of claim 1013, wherein said therapeutic agent, cholesterol, dicetyl phosphate, DSPC, said at least one drug, and biotin-DHPE are contacted simultaneously in said aqueous system. [The present invention 1015] the nanoparticles are formed in the absence of said therapeutic agent, and optionally the nanoparticles are at least partially enriched, purified, or isolated; and contacting the therapeutic agent with the nanoparticles, whereby at least a portion of the therapeutic agent is dispersed within the nanoparticles; The method of the present invention 1013. [The present invention 1016] A method of treating a disease in a mammal comprising administering to a mammal in need thereof a therapeutically effective amount of a composition of the present invention. [The present invention 1017] The method of claim 1016, wherein the disease is diabetes and the therapeutic agent comprises insulin. [The present invention 1018] 13. A method for activating hepatic glycogen synthase in a mammal comprising administering to a mammal in need thereof a therapeutically effective amount of a composition of the present invention 1002, wherein said therapeutic agent comprises insulin. [The present invention 1019] The method of claim 1018, wherein the mammal has diabetes. [The present invention 1020] 1. A composition comprising a lipid-based nanoparticle, The nanoparticles are enveloped by a bipolar lipid membrane containing cholesterol, dicetyl phosphate, an amphiphilic lipid, and a hepatocyte receptor-binding molecule; the amphipathic lipid comprises at least one selected from the group consisting of 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycerol-[3-phospho-rac-(1-glycerol)], 1,2-distearoyl-sn-glycero-3-phosphoethanolamine, 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl), 1,2-dimyristoyl-sn-glycero-3-phosphate, 1,2-dimyristoyl-sn-glycero-3-phosphocholine, 1,2-distearoyl-sn-glycero-3-phosphate, 1,2-dipalmitoyl-sn-glycero-3-phosphate, and 1,2-dipalmitoyl-sn-glycero-3-phosphocholine; the membrane comprises at least one agent selected from the group consisting of a stabilizer and stearoyl lysophosphatidylcholine; the stabilizer is selected from the group consisting of m-cresol, benzyl alcohol, methyl 4-hydroxybenzoate, thiomersal, and butylated hydroxytoluene (2,6-di-tert-butyl-4-methylphenol), and the stabilizer, when present, is in the range of about 10% to about 25% (w / w) in the film; When present, stearoyl lysophosphatidylcholine is present in the membrane in an amount ranging from about 5% to about 30% (w / w); at least one hepatocyte receptor binding molecule extends outwardly from the nanoparticle; and The size of the nanoparticles is in the range of about 10 nm to about 150 nm. composition. [The present invention 1021] The composition of the present invention 1020, wherein the therapeutic agent is dispersed within the nanoparticles. [The present invention 1022] The composition of claim 1021, wherein the therapeutic agent is covalently attached to the nanoparticle. [The present invention 1023] The composition of claim 1021, wherein the therapeutic agent is not covalently attached to the nanoparticle. [The present invention 1024] The composition of the present invention 1021, wherein the therapeutic agent comprises at least one selected from the group consisting of insulin, interferon, parathyroid hormone, calcitonin, serotonin, serotonin agonists, serotonin reuptake inhibitors, human growth hormone, GIP, anti-GIP monoclonal antibodies, metformin, bromocriptine, dopamine, glucagon, and GLP-1. [The present invention 1025] The composition of the present invention 1021, wherein the nanoparticles are suspended in an aqueous solution containing free dissolved therapeutic agent that is not dispersed within the nanoparticles. [The present invention 1026] The composition of the present invention, wherein the therapeutic agent is insulin. [The present invention 1027] The composition of the present invention 1026, wherein the insulin dispersed within the nanoparticles and the free dissolved insulin are independently selected from the group consisting of insulin lispro, insulin aspart, regular insulin, insulin glargine, insulin zinc, long-acting human insulin zinc suspension, isophane insulin, buffered human regular insulin, insulin glulisine, recombinant human regular insulin, recombinant human insulin isophane, and any combination thereof. [The present invention 1028] The composition of the present invention 1020, wherein the amphipathic lipid comprises at least one selected from the group consisting of 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-[phospho-rac-(1-glycerol)], 1,2-distearoyl-sn-glycero-3-phosphoethanolamine, and 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl). [The present invention 1029] The composition of the present invention 1020, wherein the hepatocyte receptor binding molecule comprises biotin. [The present invention 1030] Biotin-containing hepatocyte receptor binding molecules include N-hydroxysuccinimide (NHS) biotin, sulfo-NHS-biotin, N-hydroxysuccinimide long-chain biotin, sulfo-N-hydroxysuccinimide long-chain biotin, D-biotin, biocytin, sulfo-N-hydroxysuccinimide-SS-biotin, biotin-BMCC, biotin-HPDP, iodoacetyl-LC-biotin, biotin-hydrazide, biotin-LC-hydrazide, biocytin hydrazide, biotin cadaverine, carboxybiotin, photobiotin, ρ-aminobenzoyl biocytin trifluoroacetate, ρ-diazobenzoyl biocytin, and biotin DHPE (2,3-diacetoxypropyl). 2-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamido)ethyl phosphate), Biotin-X-DHPE (2,3-diacetoxypropyl 2-(6-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamido)hexanamido)ethyl phosphate), 12-((biotinyl)amino)dodecanoic acid, 12-((biotinyl)amino)dodecanoic acid succinimidyl ester, S-biotinyl homocysteine, Biocytin-X, Biocytin x-hydrazide, biotin ethylenediamine, biotin-XL, biotin-X-ethylenediamine, biotin-XX hydrazide, biotin-XX-SE, biotin-XX,SSE, biotin-X-cadaverine, α-(t-BOC) biocytin, N-(biotinyl)-N'-(iodoacetyl)ethylenediamine, DNP-X-biocytin-X-SE, biotin-X-hydrazide, norbiotinamine hydrochloride, 3-(N-maleimidylpropionyl) biocytin, ARP, biotin-l-sulfoxide, biotin methyl ester, biotin-maleimide, biotin-poly(ethylene glycol)amine, (+) biotin 4-amidobenzoic acid sodium salt, biotin 2-N-acetylamino-2-deoxy-β-D-glucopyranoside, biotin-α-DN-acetylneuramindide, biotin-α-L-fucoside, biotin The composition of the present invention 1029, comprising at least one selected from the group consisting of lacto-N-bioside, biotin-Lewis A trisaccharide, biotin-Lewis Y tetrasaccharide, biotin-α-D-mannopyranoside, and biotin 6-O-phospho-α-D-mannopyranoside. [The present invention 1031] The composition of the present invention 1029, wherein the biotin-containing hepatocyte receptor binding molecule comprises at least one selected from the group consisting of biotin-DHPE and biotin-X-DHPE. [The present invention 1032] The composition of claim 1020, further comprising cellulose acetate phthalate at least partially bound to said therapeutic agent dispersed within the nanoparticles. [The present invention 1033] At least one charged organic molecule bound to the therapeutic agent dispersed within the nanoparticles, the organic molecule being selected from the group consisting of protamine, polylysine, and poly(arg-pro-thr) in a molar ratio of 1:1:1. n , poly(DL-Ala-poly-L-lys) at a molar ratio of 6:1 n , histones, sugar polymers containing primary amino groups, polynucleotides with primary amino groups, carboxyl (COO - ) or Sulfhydral (S - ) a charged organic molecule, which is at least one selected from the group consisting of a protein containing an amino acid residue having a functional group, and an acidic polymer; The composition of the present invention 1021 further comprises: [The present invention 1034] The composition of the present invention 1020, wherein the cholesterol is in the range of about 5% to about 15% (w / w) in the membrane. [The present invention 1035] The composition of the present invention 1020, wherein dicetyl phosphate is in the range of about 10% to about 25% (w / w) in the film. [The present invention 1036] The composition of the present invention 1020, wherein DSPC is in the range of about 40% to about 75% (w / w) in the membrane. [The present invention 1037] The composition of the present invention 1020, wherein the hepatocyte receptor binding molecule is in the range of about 0.5% to about 4% (w / w) in the membrane. [The present invention 1038] The composition of the present invention 1020, wherein the amount of stearoyl lysophosphatidylcholine in the membrane is about 5% to 30% (w / w) of the amount of DSPC in the membrane. [The present invention 1039] The membrane, (a) at least one selected from the group consisting of cholesterol; dicetyl phosphate; DSPC; stearoyl lysophosphatidylcholine; m-cresol; and biotin DHPE and biotin-X-DHPE, (b) at least one selected from the group consisting of cholesterol; dicetyl phosphate; DSPC; m-cresol; and biotin-DHPE and biotin-X-DHPE, (c) at least one selected from the group consisting of cholesterol; dicetyl phosphate; DSPC; stearoyl lysophosphatidylcholine; and biotin-DHPE and biotin-X-DHPE. The composition of the present invention 1020, comprising one of the following: [The present invention 1040] A method for preparing lipid-based nanoparticles of the present invention 1020, comprising the step of contacting in an aqueous system cholesterol, dicetyl phosphate, an amphiphilic lipid, a hepatocyte receptor binding molecule, and said at least one drug. [The present invention 1041] The method of claim 1040, wherein said at least one agent comprises a stabilizer added to said aqueous system after contacting cholesterol, dicetyl phosphate, amphipathic lipid, if present, stearoyl lysophosphatidylcholine, and hepatocyte receptor binding molecule in said aqueous system. [The present invention 1042] The method of claim 1040, wherein the nanoparticles comprise a therapeutic agent dispersed therein. [The present invention 1043] The method of claim 1042, wherein the therapeutic agent, cholesterol, dicetyl phosphate, amphipathic lipid, hepatocyte receptor binding molecule, and the at least one agent are contacted simultaneously in the aqueous system. [The present invention 1044] the nanoparticles are formed in the absence of said therapeutic agent, and optionally the nanoparticles are at least partially enriched, purified, or isolated; and contacting the therapeutic agent with the nanoparticles, whereby at least a portion of the therapeutic agent is dispersed within the nanoparticles; The method of the present invention 1042. [The present invention 1045] A method of treating a disease in a mammal comprising administering to a mammal in need thereof a therapeutically effective amount of a composition of the present invention. [The present invention 1046] The method of claim 1045, wherein the disease is diabetes and the therapeutic agent comprises insulin. [The present invention 1047] 10. A method for activating hepatic glycogen synthase in a mammal comprising administering to a mammal in need thereof a therapeutically effective amount of a composition of the present invention, wherein the therapeutic agent comprises insulin. [The present invention 1048] The method of claim 1047, wherein the mammal has diabetes. [Brief description of the drawings]
[0027] For the purpose of illustrating the invention, there are shown in the drawings certain embodiments of the invention. However, the invention is not limited to the precise arrangements and instrumentalities of the embodiments shown in the drawings. [Figure 1] 1A-1B show images of glass vials containing non-limiting lipid-based nanoparticles of the present invention. FIG. 1A: Most nanoparticles are not visible in this image due to their small size (<100 nm). Visible nanoparticle aggregates that can be broken apart are approximately 1-3 mm. FIG. 1B is an enlarged view of a selected portion of FIG. 1A. [Diagram 2] 2 includes graphs depicting selected results of an oral glucose tolerance test in insulin-deficient dogs, comparing Formulations A (-▲-) and B (-●-) with control lispro insulin (-■-) (0.125 U / kg). [Diagram 3] 3 includes a graph showing the concentration (mg / mL) of various components in a composition of the present invention as a function of the % lysolecithin (or lysophosphatidylcholine) in the initial composition, illustrating the effect of initial lysolecithin concentration on the stability of the composition. [Figure 4] 4 includes a graph showing the decrease in lysolecithin formed (mg / mL bulk HDV) as a function of % lysolecithin of total lecithin concentration. The graph shows the effect of initial lysolecithin concentration on the production of lysolecithin over time. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0028] Detailed Description of the Invention The present invention relates, in part, to improved lipid-based nanoparticles that can be used to deliver therapeutic agents to subjects, including but not limited to mammals, including but not limited to humans. In certain embodiments, the nanoparticles of the present invention have reduced or minimal aggregation compared to those taught in the prior art, including but not limited to those described in U.S. Patent Application Nos. US20110135725 and US20090087479, the entireties of which are incorporated herein by reference. In other embodiments, the reduced or minimal aggregation of the nanoparticles of the present invention improves their stability and pharmaceutical developability compared to prior art nanoparticles.
[0029] In certain embodiments, the lipid-based nanoparticles of the present invention are defined and / or enveloped by a bipolar lipid membrane. In other embodiments, the nanoparticles of the present invention contain hepatocyte-targeting compounds that help deliver therapeutic agents bound to and / or dispersed within the nanoparticles to hepatocytes. In yet other embodiments, the nanoparticles of the present invention are part of a composition that further comprises a "free" therapeutic agent that is not bound to and / or dispersed within the nanoparticles. The nanoparticles and any compositions that contain them can be administered by any suitable and / or feasible route, including but not limited to, for example, injection (e.g., subcutaneous and / or transdermal), inhalation, buccal and / or oral, to treat subjects who would benefit from administration of therapeutic agents bound to and / or dispersed within the nanoparticles and / or "free" therapeutic agents that are not bound to and / or dispersed within the nanoparticles.
[0030] Liposomes usually contain amphiphilic phospholipid substances that form a bilayer membrane that defines and / or encases the liposome. They may have a single membrane (unilayer) or multiple bilayers with a microscopic onion-like appearance. Liposomes can be relatively large, several microns in diameter. Liposomes generally have a spherical (or nearly spherical) shape, and their intact surface has no available "open" edges and therefore cannot interact with other liposomes with available "open" edges to cause particle aggregation.
[0031] In contrast, phospholipid nanoparticles with diameters of about 200 nm or less have limited ability to fold into a spherical configuration, which in principle should be their thermodynamically stable structure. As a result, these small diameter nanoparticles do not form perfectly spherical particles, but are almost flat sheets. Without wishing to be bound by any theory, these almost flat sheets can be described as "nanodisks" or "nanoFrisbees" or "bicelles". Such nanoparticles have "open" edges in their membranes, and these "edges" can act as sticky points that can promote nanoparticle aggregation. As a result, in many instances, nanoparticles are generated as individual particles that then aggregate into larger, easily visible (thin or feather-like) floating particles. This phenomenon can hinder the exploitation of small diameter nanoparticles as drug delivery agents. In certain embodiments, unlike in the case of liposomes, the API is not held in the core of (or within) the bicelle. In other embodiments, the API is attached and / or bound to the membrane surface of the bicelles, either through purely physical interactions or through covalent bonds. In one aspect, the present invention addresses this challenge and provides compositions and methods that can seal the "open" edges of nearly flat sheets (nanodiscs and / or nanofrisbees) and minimize or inhibit their tendency to self-aggregate.
[0032] As described herein, the lipid-based nanoparticles of the invention are useful as pharmaceutical carriers and do not form the thin, feather-like structures described elsewhere herein. In certain embodiments, the nanoparticles of the invention contain certain amphiphilic lipids and / or certain organic molecules that allow the "open" edges of the flat nanoparticle membrane to be modified to prevent nanoparticle aggregation.
[0033] In certain embodiments, a suitable capping of the "open" edges of lipid-based nanoparticles is provided by distearoylphosphatidylcholine [also known as (S)-2,3-bis(stearoyloxy)propyl(2-(trimethylammonio)ethyl)phosphate or DSPC, which has two C groups covalently linked to a glycerol backbone.18 [containing acyl groups], 12 ~C 24 Acyl lysophosphatidylcholine [C 12 ~C 24 Acyl lysolecithin or 1-(C 12 ~C 24 acyl)-sn-glycero-3-phosphocholine or (S)-2-hydroxy-3-(C 12 ~C 24 Also known as acyloxy)propyl(2-(trimethylammonio)ethyl)phosphate, it is a glycerol backbone with one C 12 ~C 24 This is done by replacing the aryl group with a group containing an acyl group. TIFF2025085727000001.tif22128Distearoylphosphatidylcholine (DSPC) TIFF2025085727000002.tif15128C 12 ~C 24 Acyl lysophosphatidylcholine
[0034] In certain embodiments, a suitable capping of the "open" edges of lipid-based nanoparticles is provided by distearoylphosphatidylcholine [also known as (S)-2,3-bis(stearoyloxy)propyl(2-(trimethylammonio)ethyl)phosphate or DSPC, which has two C groups covalently linked to a glycerol backbone. 18 acyl group] is replaced by stearoyl lysophosphatidylcholine [also known as 1-stearoyl-sn-glycero-3-phosphocholine or (S)-2-hydroxy-3-(stearoyloxy)propyl(2-(trimethylammonio)ethyl)phosphate, which has one C 18 This is done by replacing the aryl group with a group containing an acyl group. TIFF2025085727000003.tif22128Distearoylphosphatidylcholine (DSPC) TIFF2025085727000004.tif15128Stearoyl lysophosphatidylcholine (SLPC)
[0035] In certain embodiments, when incorporated into a membrane, C 12 ~C 24 Acyl lysophosphatidylcholines (including but not limited to stearoyl lysophosphatidylcholine) prevent and / or minimize aggregation that occurs when the compound is removed from the membrane. 12 ~C 24 Acyl lysophosphatidylcholines (including but not limited to stearoyl lysophosphatidylcholine) provide sealing of any present membrane "edges" within the nanoparticles with their single fatty chain.
[0036] In certain embodiments, when incorporated into the membrane, any of the specific small molecule stabilizers, including but not limited to m-cresol, benzyl alcohol, methyl 4-hydroxybenzoate, thiomersal, and butylated hydroxytoluene (also known as 2,6-di-tert-butyl-4-methylphenol), or any salts and / or solvates thereof, prevent and / or minimize aggregation that occurs when the compound is removed from the membrane. In other embodiments, the small molecule stabilizer, or any salts and / or solvates thereof, provides for sealing of the "edges" of any present membrane within the nanoparticle.
[0037] In certain embodiments, when incorporated into a membrane, any particular small molecule stabilizer or any salt and / or solvate thereof and C 12 ~C 24 Any combination of acyl lysophosphatidylcholines prevents and / or minimizes aggregation that occurs when the compounds are removed from the membrane.
[0038] composition The present invention provides lipid-based nanoparticles and compositions comprising same. In certain embodiments, the nanoparticles comprise and / or are defined by a bipolar lipid membrane.
[0039] In certain embodiments, the membrane comprises cholesterol. In other embodiments, the membrane comprises dicetyl phosphate. In yet other embodiments, the membrane comprises an amphipathic lipid. In yet other embodiments, the membrane comprises 1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC). In yet other embodiments, the membrane comprises cholesterol, dicetyl phosphate and DSPC. In yet other embodiments, the membrane comprises a hepatocyte receptor binding molecule.
[0040] In certain embodiments, the amphipathic lipid comprises at least one selected from the group consisting of 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycerol-[3-phospho-rac-(1-glycerol)], 1,2-distearoyl-sn-glycero-3-phosphoethanolamine, 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl), 1,2-dimyristoyl-sn-glycero-3-phosphate, 1,2-dimyristoyl-sn-glycero-3-phosphocholine, 1,2-distearoyl-sn-glycero-3-phosphate, 1,2-dipalmitoyl-sn-glycero-3-phosphate and 1,2-dipalmitoyl-sn-glycero-3-phosphocholine. In other embodiments, the amphipathic lipid comprises at least one selected from the group consisting of 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-[phospho-rac-(1-glycerol)], 1,2-distearoyl-sn-glycero-3-phosphoethanolamine, and 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl).
[0041] In certain embodiments, the hepatocyte receptor binding molecule comprises biotin. In other embodiments, the biotin-containing hepatocyte receptor binding molecule is N-hydroxysuccinimide (NHS) biotin, sulfo-NHS-biotin, N-hydroxysuccinimide long chain biotin, sulfo-N-hydroxysuccinimide long chain biotin, D-biotin, biocytin, sulfo-N-hydroxysuccinimide-SS-biotin, biotin-BMCC, biotin-HPDP, iodoacetyl-LC-biotin, biotin-hydrazide, biotin-LC-hydrazide, biocytin hydrazide, biotin cadaverine, carboxybiotin, photobiotin, ρ-aminobenzoyl biocytin trifluoroacetate, ρ-diazobenzoyl biocytin, biotin DHPE (2,3-diacetoxypropyl 2-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamido)ethyl phosphate), Biotin-X-DHPE (2,3-diacetoxypropyl 2-(6-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamido)hexanamido)ethyl phosphate), 12-((biotinyl)amino)dodecanoic acid, 12-((biotinyl)amino)dodecanoic acid succinimidyl ester, S-biotinyl homocysteine, Biocytin-X, Biocytin x-hydrazide, biotin ethylenediamine, biotin-XL, biotin-X-ethylenediamine, biotin-XX hydrazide, biotin-XX-SE, biotin-XX,SSE, biotin-X-cadaverine, α-(t-BOC) biocytin, N-(biotinyl)-N'-(iodoacetyl)ethylenediamine, DNP-X-biocytin-X-SE, biotin-X-hydrazide, norbiotinamine hydrochloride, 3-(N-maleimidylpropionyl) biocytin, ARP, biotin-l-sulfoxide, biotin methyl ester, biotin-maleimide, biotin-poly(ethylene glycol)amine, (+) biotin 4-amidobenzoic acid sodium salt, biotin 2-N-acetylamino-2-deoxy-β-D-glucopyranoside, biotin-α-DN-acetylneuramindide, biotin-α-L-fucoside, biotin The biotin-N-bioside complex includes at least one selected from the group consisting of lacto-N-bioside, biotin-Lewis A trisaccharide, biotin-Lewis Y tetrasaccharide, biotin-α-D-mannopyranoside, and biotin 6-O-phospho-α-D-mannopyranoside.
[0042] In certain embodiments, the hepatocyte receptor binding molecule is selected from the group consisting of 2,3-diacetoxypropyl 2-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamido)ethyl phosphate (biotin DHPE) and biotin-X-DHPE (2,3-diacetoxypropyl 2-(6-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamido)hexanamido)ethyl phosphate).
[0043] In certain embodiments, cholesterol is present in the membrane at a concentration of about 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%, or 15% (w / w).
[0044] In certain embodiments, dicetyl phosphate is present in the membrane at a concentration of about 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%, 24%, 24.5% or 25% (w / w).
[0045] In certain embodiments, DSPC is present in the membrane at a concentration of about 40%, about 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%, or 75% (w / w).
[0046] In certain embodiments, the hepatocyte receptor binding molecule is present in the membrane at a concentration of about 0.5% to about 4% (w / w). In other embodiments, the hepatocyte receptor binding molecule is present in the membrane at a concentration of about 0.5%, 0.6%, 0.7%, 0.8%, 0.9%, 1.0%, 1.1%, 1.2%, 1.3%, 1.4%, 1.5%, 1.6%, 1.7%, 1.8%, 1.9%, 2.0%, 2.1%, 2.2%, 2.3%, 2.4%, 2.5%, 2.6%, 2.7%, 2.8%, 2.9%, 3.0%, 3.1%, 3.2%, 3.3%, 3.4%, 3.5%, 3.6%, 3.7%, 3.8%, 3.9% or 4.0% (w / w).
[0047] In certain embodiments, the membrane comprises a stabilizer and C 12 ~C 24 The composition comprises at least one compound selected from the group consisting of acyl lysophosphatidylcholines.
[0048] In certain embodiments, the membrane further comprises C 12 ~C24 In another embodiment, the membrane further comprises stearoyl lysophosphatidylcholine.
[0049] In certain embodiments, the membrane further comprises m-cresol.
[0050] In certain embodiments, the stabilizer is selected from the group consisting of m-cresol, benzyl alcohol, methyl 4-hydroxybenzoate, thiomersal, and butylated hydroxytoluene (2,6-di-tert-butyl-4-methylphenol).
[0051] In certain embodiments, the stabilizer is present in the film at a concentration of about 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24% or 25% (w / w).
[0052] In certain embodiments, m-cresol is present in the membrane at a concentration of about 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, or 25% (w / w).
[0053] In certain embodiments, C 12 ~C 24 Lysophosphatidylcholine is in the range of about 5% to about 30% (w / w) in the membrane. 12 ~C 24 Lysophosphatidylcholine is present in the membrane in a range of about 1% to about 30% (w / w). 12 ~C 24Lysophosphatidylcholine is present in the membrane at a concentration of about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 26%, 27%, 28%, 29% or 30% (w / w).
[0054] In certain embodiments, the stearoyl lysophosphatidylcholine is present in the membrane at a concentration of about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 26%, 27%, 28%, 29% or 30% (w / w).
[0055] In certain embodiments, C in the membrane 12 ~C 24 The amount of lysophosphatidylcholine is about 1% to about 30% (w / w) of the amount of DSPC in the membrane. 12 ~C 24 The amount of lysophosphatidylcholine is about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 26%, 27%, 28%, 29% (w / w) or 30% (w / w) of the amount of DSPC in the membrane.
[0056] In certain embodiments, C in the membrane 12 ~C 24 The amount of lysophosphatidylcholine is about 1 mol % to about 50 mol % of the amount of DSPC in the membrane. 12 ~C 24The amount of lysophosphatidylcholine is about 1, 2, 3, 4, 5, 6, 7, 8, 9, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 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 or 50 mol % of the amount of DSPC in the membrane.
[0057] In certain embodiments, the amount of stearoyl lysophosphatidylcholine in the membrane is about 1% to about 30% (w / w) of the amount of DSPC in the membrane. In still other embodiments, the amount of stearoyl lysophosphatidylcholine in the membrane is about 1%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 26%, 27%, 28%, 29% or 30% (w / w) of the amount of DSPC in the membrane.
[0058] In certain embodiments, the amount of stearoyl lysophosphatidylcholine in the membrane is about 1 mol% to about 50 mol% of the amount of DSPC in the membrane. In still other embodiments, the amount of stearoyl lysophosphatidylcholine in the membrane is about 1, 2, 3, 4, 5, 6, 7, 8, 9, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 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, or 50 mol% of the amount of DSPC in the membrane.
[0059] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, m-cresol, and at least one selected from the group consisting of biotin DHPE and biotin-X-DHPE. In other embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, m-cresol, and biotin DHPE.
[0060] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, m-cresol, and at least one selected from the group consisting of biotin DHPE and biotin-X-DHPE. In other embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, m-cresol, and biotin DHPE.
[0061] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, and at least one selected from the group consisting of biotin DHPE and biotin-X-DHPE. In other embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, and biotin DHPE.
[0062] In certain embodiments, the stabilizer is a membrane and / or a lipid component that assembles to form the membrane (e.g., cholesterol, dicetyl phosphate, DSPC, C, if present) in a membrane to stabilizer (w / w) ratio ranging from about 1:1 to about 1:30. 12 ~C 24 The antibody is contacted with a nucleic acid molecule, such as, but not limited to, a nucleic acid molecule that is capable of binding to a target protein, such as ... In other embodiments, the stabilizer is contacted with the membrane, and / or the lipid components that assemble to form the membrane, at a membrane to stabilizer (w / w) ratio of about 1:1, 1:1.5, 1:2, 1:2.5, 1:3, 1:3.5, 1:4, 1:4.5, 1:5, 1:5.5, 1:6, 1:6.5, 1:7, 1:7.5, 1:8, 1:8.5, 1:9, 1:9.5, 1:10, 1:11, 1:12, 1:13, 1:14, 1:15, 1:16, 1:17, 1:18, 1:19, 1:20, 1:21, 1:22, 1:23, 1:24, 1:25, 1:26, 1:27, 1:28, 1:29, or 1:30.
[0063] In certain embodiments, m-cresol is added to the membrane and / or the lipid components that assemble to form the membrane (e.g., cholesterol, dicetyl phosphate, DSPC, C, if present) in a membrane to stabilizer (w / w) ratio ranging from about 1:1 to about 1:30.12 ~C 24 The antibody is contacted with a nucleic acid molecule, such as, but not limited to, a nucleic acid molecule that is capable of binding to a target protein, such as ... In other embodiments, m-cresol is contacted with the membrane, and / or lipid components that assemble to form the membrane, at a membrane to stabilizer (w / w) ratio of about 1:1, 1:1.5, 1:2, 1:2.5, 1:3, 1:3.5, 1:4, 1:4.5, 1:5, 1:5.5, 1:6, 1:6.5, 1:7, 1:7.5, 1:8, 1:8.5, 1:9, 1:9.5, 1:10, 1:11, 1:12, 1:13, 1:14, 1:15, 1:16, 1:17, 1:18, 1:19, 1:20, 1:21, 1:22, 1:23, 1:24, 1:25, 1:26, 1:27, 1:28, 1:29, or 1:30.
[0064] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, m-cresol, and biotin DHPE in a % (w / w) ratio of about 9.4:18.1:56.8:14.1:0.0:1.5.
[0065] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, and biotin DHPE in a % (w / w) ratio of about 9.4:18.1:56.8:14.1:1.5.
[0066] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, m-cresol, and biotin DHPE in a % (w / w) ratio of about 7.7:15.0:58.6:0.0:17.4:1.3.
[0067] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, and biotin DHPE in a % (w / w) ratio of about 9.3:18.2:71.0:1.5.
[0068] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, m-cresol, and biotin DHPE in a % (w / w) ratio of about 8.4:16.2:47.5:7.6:19.0:1.3.
[0069] In certain embodiments, the membrane comprises cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, and biotin DHPE in a % (w / w) ratio of about 10.4:20:58.6:9.4:1.6.
[0070] In certain embodiments, at least one hepatocyte receptor binding molecule extends outwardly from the nanoparticle.
[0071] The present invention should not be considered limited to the constructs described and / or exemplified herein. Rather, the present invention relates to a method for treating a membrane comprising the steps of: 12 ~C 24 The present invention provides a method for stabilizing and / or preventing aggregation of liposomes and other lipid-based nanoparticles by contacting them with at least one selected from the group consisting of acyl lysophosphatidylcholine. In certain embodiments, the contacting removes or minimizes any "free" edges in the membrane that cause aggregation of liposomes and other lipid-based nanoparticles.
[0072] In certain embodiments, the stabilizer is selected from the group consisting of m-cresol, benzyl alcohol, methyl 4-hydroxybenzoate, thiomersal, and butylated hydroxytoluene. In other embodiments, the stabilizer, such as but not limited to m-cresol, is present in the membrane at a concentration of about 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, or 25% (w / w).
[0073] In certain embodiments, C lysophosphatidylcholine, including but not limited to stearoyl lysophosphatidylcholine, 12 ~C 24 Lysophosphatidylcholine is present in the membrane in a range of about 5% to about 30% (w / w). In other embodiments, C 12 ~C 24 Lysophosphatidylcholine is present in the membrane in a range of about 1% to about 30% (w / w). In yet another embodiment, C 12 ~C 24 Lysophosphatidylcholine is present in the membrane at a concentration of about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 26%, 27%, 28%, 29% or 30% (w / w).
[0074] In certain embodiments, the membrane comprises at least one amphipathic lipid selected from the group consisting of 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycerol-[3-phospho-rac-(1-glycerol)], 1,2-distearoyl-sn-glycero-3-phosphoethanolamine, 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl), 1,2-dimyristoyl-sn-glycero-3-phosphate, 1,2-dimyristoyl-sn-glycero-3-phosphocholine, 1,2-distearoyl-sn-glycero-3-phosphate, 1,2-dipalmitoyl-sn-glycero-3-phosphate and 1,2-dipalmitoyl-sn-glycero-3-phosphocholine. In other embodiments, the amphipathic lipid is at least one selected from the group consisting of 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-[phospho-rac-(1-glycerol)], 1,2-distearoyl-sn-glycero-3-phosphoethanolamine, and 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl).
[0075] In certain embodiments, C in the membrane 12 ~C 24 The amount of lysophosphatidylcholine is about 1% to 30% (w / w) of the amount of at least one amphipathic lipid in the membrane. 12 ~C 24 The amount of lysophosphatidylcholine is about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 26%, 27%, 28%, 29% or 30% (w / w) of the amount of at least one amphipathic lipid in the membrane.
[0076] In certain embodiments, C in the membrane 12 ~C 24The amount of lysophosphatidylcholine is about 1 mol % to about 50 mol % of the amount of at least one amphipathic lipid in the membrane. 12 ~C 24 The amount of lysophosphatidylcholine is about 1, 2, 3, 4, 5, 6, 7, 8, 9, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 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 or 50 mol % of the amount of at least one amphipathic lipid in the membrane.
[0077] In certain embodiments, a stabilizer, including but not limited to m-cresol, is contacted with the membrane, and / or the lipid components that assemble to form the membrane, in a (w / w) ratio ranging from about 1:1 to about 1:30. In other embodiments, the stabilizer, including but not limited to m-cresol, is contacted with the membrane, and / or the lipid components that assemble to form the membrane, in a (w / w) ratio of about 1:1, 1:1.5, 1:2, 1:2.5, 1:3, 1:3.5, 1:4, 1:4.5, 1:5, 1:5.5, 1:6, 1:6.5, 1:7, 1:7.5, 1:8, 1:8.5, 1:9, 1:9.5, 1:10, 1:11, 1:12, 1:13, 1:14, 1:15, 1:16, 1:17, 1:18, 1:19, 1:20, 1:21, 1:22, 1:23, 1:24, 1:25, 1:26, 1:27, 1:28, 1:29, or 1:30.
[0078] In certain embodiments, the size of the nanoparticles ranges from about 10 nm to about 150 nm, in other embodiments, the size of the nanoparticles is about 10 nm, 20 nm, 30 nm, 40 nm, 50 nm, 60 nm, 70 nm, 80 nm, 90 nm, 100 nm, 110 nm, 120 nm, 130 nm, 140 nm, or 150 nm.
[0079] In certain embodiments, the therapeutic agent is dispersed within and / or adsorbed to the nanoparticles. In other embodiments, the therapeutic agent is covalently attached to the nanoparticles. In yet other embodiments, the therapeutic agent is not covalently attached to the nanoparticles.
[0080] In certain embodiments, the therapeutic agent comprises at least one selected from the group consisting of insulin, insulin analogs, amylin, interferon, parathyroid hormone, calcitonin, serotonin, serotonin agonists, serotonin reuptake inhibitors, human growth hormone, GIP, anti-GIP monoclonal antibodies, metformin, bromocriptine, dopamine, glucagon, and GLP-1. In other embodiments, the therapeutic agent is insulin.
[0081] In certain embodiments, the nanoparticles are suspended in an aqueous solution that contains free dissolved therapeutic agent that is not dispersed within the nanoparticles.
[0082] In certain embodiments, the insulin dispersed within the nanoparticles and the free dissolved insulin are independently selected from the group consisting of insulin lispro, insulin aspart, regular insulin, insulin glargine, insulin zinc, long-acting human insulin zinc suspension, isophane insulin, buffered human regular insulin, insulin glulisine, recombinant human regular insulin and recombinant human insulin isophane.
[0083] In certain embodiments, the lipid further comprises cellulose acetate phthalate, hi other embodiments, the cellulose acetate phthalate is at least partially bound to a therapeutic agent dispersed within the nanoparticle.
[0084] In certain embodiments, at least one charged organic molecule is attached to the therapeutic agent dispersed within the nanoparticle. In other embodiments, the charged organic molecule is selected from the group consisting of protamine, polylysine, poly(arg-pro-thr)n at a molar ratio of 1:1:1, poly(DL-Ala-poly-L-lys)n at a molar ratio of 6:1, histones, sugar polymers containing primary amino groups, polynucleotides with primary amino groups, carboxyl (COO - ) or Sulfhydral (S - ) functional group, and an acidic polymer (eg, a sugar polymer having a carboxyl group).
[0085] In certain embodiments, the nanoparticles of the present invention and compositions comprising same aid in the delivery of therapeutic agents dispersed therein to hepatocytes within the liver.
[0086] In certain embodiments, the composition of the present invention comprises an effective dose of a hepatocyte targeting pharmaceutical composition combining a free therapeutic drug (such as, but not limited to, insulin) and a therapeutic drug bound to the lipid-based nanoparticles of the present invention. The combination of the free therapeutic drug and the therapeutic drug bound to the lipid-based nanoparticles generates a dynamic equilibrium process between the two forms of the therapeutic drug that occurs in vivo, which helps control the movement of the free therapeutic drug to the receptor sites of hormone action. In the case of the therapeutic drug being insulin, these receptor sites are the muscle and fat tissues of diabetic patients. The hepatocyte targeting therapeutic drug is also delivered to the liver of the patient for a specified period of time that is different from the free therapeutic drug, thereby introducing a new pharmacodynamic profile of the therapeutic drug when the therapeutic drug remains bound to the nanoparticles and / or when the free therapeutic drug is released from the nanoparticles. In addition, a portion of the therapeutic drug bound to the nanoparticles is targeted to the liver. In the case of the therapeutic drug being insulin, the new pharmacodynamic profile of the product provides not only a baseline insulin for peripheral tissues, but also a mealtime liver therapeutic drug stimulation for the management of hepatic glucose stores during meals. The free insulin is released from the site of administration and distributed throughout the body. The insulin bound to lipid-based nanoparticles is delivered to the liver.The release rate of the insulin bound to nanoparticles is different from the release rate of free insulin from the administration site.These different release rates of insulin delivery, together with the targeted delivery of insulin bound to nanoparticles to the liver, provide normalization of glucose concentration in type I and type II diabetes patients.In certain embodiments, the hepatocyte targeting composition comprises any therapeutically effective insulin or insulin derivative or analog, or any combination of two or more types of insulin or insulin derivative or analog.
[0087] The compounds described herein also include isotopically labeled compounds in which one or more atoms have the same atomic number but are replaced by an atom having an atomic mass or mass number different from that usually found in nature. Examples of isotopes suitable for incorporation into the compounds described herein are: 2 H,3 H, 11 C. 13 C. 14 C. 36 Cl, 18 F, 123 I, 125 I, 13 N, 15 N, 15 O. 17 O. 18 O. 32 P and 35 In certain embodiments, isotopically labeled compounds are useful in drug and / or substrate tissue distribution studies. In other embodiments, substitution with heavier isotopes, such as deuterium, provides for greater metabolic stability (e.g., increased in vivo half-life or reduced dosage requirements). In yet other embodiments, positron emitting isotopes, such as 11 C. 18 F, 15 O and 13 Substitution with N is useful in positron emission tomography (PET) studies to examine receptor occupancy of substrates. Isotopically labeled compounds are prepared by any suitable method or process that substitutes an appropriate isotopically labeled reagent for the unlabeled reagent otherwise used.
[0088] In certain embodiments, the compounds described herein are labeled by other means, including but not limited to the use of chromophores or fluorescent moieties, bioluminescent labels, or chemiluminescent labels.
[0089] The compounds of the present invention may, in certain embodiments, form acids or bases. In certain embodiments, the present invention contemplates acid addition salts. In other embodiments, the present invention contemplates base addition salts. In yet other embodiments, the present invention contemplates pharmaceutically acceptable acid addition salts. In yet other embodiments, the present invention contemplates pharmaceutically acceptable base addition salts. Pharmaceutically acceptable salts refer to those base or acid salts that are not toxic or otherwise biologically undesirable.
[0090] Suitable pharma- ceutically acceptable acid addition salts may be prepared from inorganic acids or from organic acids. Examples of inorganic acids include hydrochloric acid, hydrobromic acid, hydroiodic acid, nitric acid, carbonic acid, sulfuric acid (including sulfate and hydrogen sulfate) and phosphoric acid (including hydrogen phosphate and dihydrogen phosphate). Suitable organic acids may be selected from the aliphatic, cycloaliphatic, aromatic, araliphatic, heterocyclic, carboxylic and sulfonic classes of organic acids, examples of which include formic acid, acetic acid, propionic acid, succinic acid, glycolic acid, gluconic acid, lactic acid, malic acid, tartaric acid, citric acid, ascorbic acid, glucuronic acid, maleic acid, malonic acid, saccharin, fumaric acid, pyruvic acid, aspartic acid, glutamic acid, benzoic acid, acetylen ... These include: anthranilic acid, 4-hydroxybenzoic acid, phenyllactic acid, mandelic acid, embonic acid (pamoic acid), methanesulfonic acid, ethanesulfonic acid, benzenesulfonic acid, pantothenic acid, trifluoromethanesulfonic acid, 2-hydroxyethanesulfonic acid, p-toluenesulfonic acid, sulfanilic acid, cyclohexylaminosulfonic acid, stearic acid, alginic acid, beta-hydroxybutyric acid, salicylic acid, mucic acid and galacturonic acid.
[0091] Suitable pharma- ceutically acceptable base addition salts of the compounds of the present invention include, for example, alkali metal, alkaline earth metal and transition metal salts, such as metal salts including calcium, magnesium, potassium, sodium, lithium and copper, iron and zinc salts. Pharmaceutically acceptable base addition salts also include organic salts formed from basic amines, such as N,N'-dibenzylethylene-diamine, chloroprocaine, choline, diethanolamine, ethylenediamine, meglumine (N-methylglucamine) and procaine. All of these salts can be prepared from the corresponding compound, for example by reacting the appropriate base or base with the compound.
[0092] Disclosed are kits that include any of the compositions of the invention and instructional materials that instruct the administration of the composition to the tissue of a subject, e.g., a mammal. The kits may include a suitable (preferably sterile) solvent for dissolving or suspending the compounds of the invention prior to administering the composition to a subject, e.g., a mammal.
[0093] method The present invention provides a method for preparing the lipid-based nanoparticles of the present invention.In a particular embodiment, the method comprises contacting cholesterol, dicetyl phosphate, amphiphilic lipid, hepatocyte receptor binding molecule, and at least one compound selected from the group consisting of stabilizer and stearoyl lysophosphatidylcholine in an aqueous system.In another embodiment, the method comprises contacting cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, m-cresol, and biotin-DHPE in an aqueous system.
[0094] In certain embodiments, the stabilizer is added to the aqueous system after contacting the cholesterol, dicetyl phosphate, amphipathic lipid, optionally stearoyl lysophosphatidylcholine, and hepatocyte receptor binding molecule in the aqueous system.
[0095] In certain embodiments, m-cresol is added to the aqueous system after contacting cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, and the hepatocyte receptor binding molecule in the aqueous system.
[0096] In certain embodiments, the nanoparticles include a therapeutic agent dispersed therein.
[0097] In certain embodiments, the therapeutic agent, cholesterol, dicetyl phosphate, amphipathic lipid, hepatocyte receptor binding molecule, and at least one compound are contacted simultaneously in an aqueous system.
[0098] In certain embodiments, the therapeutic agent, cholesterol, dicetyl phosphate, DSPC, stearoyl lysophosphatidylcholine, m-cresol, and biotin-DHPE are contacted simultaneously in an aqueous system.
[0099] In certain embodiments, the nanoparticles are formed in the absence of a therapeutic agent, optionally the nanoparticles are at least partially enriched, purified, or isolated, and the therapeutic agent is contacted with the nanoparticles, whereby at least a portion of the therapeutic agent is dispersed within the nanoparticles.
[0100] In certain embodiments, the compositions are treated with cellulose acetate phthalate, which may non-covalently bind at least a portion of the therapeutic agent dispersed within the nanoparticles and protect the therapeutic agent from metabolic degradation. In other embodiments, the cellulose acetate phthalate is covalently bound to either the therapeutic agent and / or the lipids that make up the nanoparticles.
[0101] Further embodiments regarding specific methods of preparing and / or processing and / or purifying nanoparticles can be found, for example, in U.S. Patent Application Nos. US20110135725 and US20090087479, all of which are incorporated by reference herein in their entireties.
[0102] The present invention further provides a method of treating a disease in a mammal, hi certain embodiments, the method comprises administering to a mammal in need thereof a therapeutically effective amount of the nanoparticles and / or compositions of the present invention.
[0103] In certain embodiments, the disease is diabetes and the therapeutic agent comprises insulin.
[0104] The present invention further provides a method for activating hepatic glycogen synthase in a mammal. In certain embodiments, the method comprises administering to a mammal in need thereof a therapeutically effective amount of the nanoparticles and / or compositions of the present invention, wherein the therapeutic agent comprises insulin. In other embodiments, the mammal has diabetes.
[0105] Administration / Dosage / Formulation The present invention also includes pharmaceutical compositions and their use methods.These pharmaceutical compositions can contain active ingredients (which can be one or more compositions of the present invention, or their pharma-ceutically acceptable salts), optionally in combination with one or more pharma-ceutically acceptable drugs.The compositions presented herein can be used alone or in combination with additional compounds that produce additive, complementary or synergistic effects.
[0106] Dosage schedule can affect what constitutes an effective amount.Therapeutic preparations can be administered to subjects either before or after the onset of the disease or disorder envisaged in the present invention.Furthermore, multiple divided doses or spaced doses can be administered daily or continuously, or doses can be continuously infused or bolus injections or can be inhaled, buccal and / or orally administered.Furthermore, the dose of therapeutic preparations can be increased or decreased in proportion to the exigencies of the treatment or prevention situation.
[0107] Administration of the compositions of the present invention to a patient, preferably a mammal, more preferably a human, can be carried out using known techniques at a dosage and for a period of time effective to treat the disease or disorder envisaged in the present invention. The effective amount of the therapeutic compound required to achieve a therapeutic effect can vary depending on factors such as the state of the disease or disorder in the patient; the age, sex and weight of the patient; and the ability of the therapeutic compound to treat the disease or disorder envisaged in the present invention. Dosage regimens can be adjusted to provide an optimal therapeutic response. For example, multiple divided doses can be administered daily or the dose can be reduced in proportion to the exigencies of the therapeutic situation. A non-limiting example of an effective dosage range for the therapeutic compounds of the present invention is about 1-5,000 mg / kg body weight / day. One skilled in the art would be able to study the relevant factors and make a determination regarding the effective amount of the therapeutic compound without undue experimentation.
[0108] Actual dosage levels of the active ingredients in the pharmaceutical compositions of the present invention may be varied to obtain an amount of the active ingredient that is effective to achieve the desired therapeutic response in a particular patient, composition and mode of administration without being toxic to the patient.
[0109] In particular, the selected dosage level will depend on a variety of factors, including the activity of the particular compound employed, the time of administration, the rate of excretion of the compound, the duration of treatment, other drugs, compounds or substances used in combination with the compound, the age, sex, weight, condition, general health and past medical history of the patient being treated, and similar factors well known in the medical arts.
[0110] A medical practitioner, such as a physician or veterinarian, having ordinary skill in the art can easily determine and prescribe the effective amount of the pharmaceutical composition required. For example, the physician or veterinarian can start the dosage of the compound of the present invention used in the pharmaceutical composition at a level lower than that required to achieve the desired therapeutic effect, and gradually increase the dosage until the desired effect is achieved.
[0111] In certain embodiments, it is particularly advantageous to formulate compound in unit dosage form for ease of administration and uniformity of dosage.Unit dosage form, as used herein, refers to a physically separate unit suitable for single administration to the patient to be treated, each unit containing a predetermined amount of therapeutic compound calculated to produce desired therapeutic effect together with required pharmaceutical vehicle.The unit dosage form of the present invention is determined by and depends on (a) the unique characteristics of therapeutic compound and the specific therapeutic effect to be achieved, and (b) the constraints inherent in the field of mixing / formulation of such therapeutic compound for the treatment of disease or disorder envisaged herein.
[0112] In certain embodiments, the compositions of the present invention are formulated with one or more pharma- ceutically acceptable excipients or carriers.In certain embodiments, the pharmaceutical compositions of the present invention comprise a therapeutically effective amount of the compounds of the present invention and a pharma- ceutically acceptable carrier.
[0113] The carrier can be a solvent or dispersion medium, including, for example, water, ethanol, polyol (for example, glycerol, propylene glycol, and liquid polyethylene glycol, etc.), suitable mixtures thereof, and vegetable oils, so long as they do not significantly interfere with the nanoparticles. Prevention of microbial activity can be achieved by various antibacterial and antifungal agents, for example, parabens, chlorobutanol, phenol, ascorbic acid, thiomersal, and the like. In many cases, it is preferable to include isotonic agents, for example, sugars, sodium chloride, polyalcohols, for example, mannitol and sorbitol, in the composition. Prolonged absorption of the injectable composition can be achieved by including an agent that delays absorption, for example, aluminum monostearate or gelatin, in the composition.
[0114] In certain embodiments, the compositions of the present invention are administered to patients in a dosage range of 1-5 or more times per day. In other embodiments, the compositions of the present invention are administered to patients in a dosage range including, but not limited to, once per day, once every 2 days, once every 3 days to once per week, and once every 2 weeks. It will be readily apparent to one of skill in the art that the frequency of administration of the various combination compositions of the present invention will vary from individual to individual depending on many factors including, but not limited to, age, disease or disorder being treated, sex, general health, and other factors. Thus, the present invention should not be construed as being limited to any particular dosing regimen, and the exact dosage and composition administered to any patient will be determined by the attending physician in consideration of all other factors for that patient.
[0115] The compound of the present invention for administration may be from about 1 μg to about 10,000 mg, from about 20 μg to about 9,500 mg, from about 40 μg to about 9,000 mg, from about 75 μg to about 8,500 mg, from about 150 μg to about 7,500 mg, from about 200 μg to about 7,000 mg, from about 350 μg to about 6,000 mg, from about 500 μg to about 5,000 mg, from about 750 μg to about 4,000 mg, from about 1 mg to about 3,000 mg, from about 10 mg to about 2,500 mg, from about 20 mg to about 2,000 mg, from about 25 mg to about 1,500 mg, from about 30 mg to about 1,000 mg, from about 40 mg to about 900 mg, from about 50 mg to about 800 mg, from about 60 mg to about 750 mg, from about 70 mg to about 600 mg, The range may be from about 80 mg to about 500 mg, and any and all whole or partial increments therebetween.
[0116] In certain embodiments, the dosage of the compounds and / or compositions of the invention is from about 1 mg to about 2,500 mg. In other embodiments, the dosage of the compounds of the invention used in the compositions described herein is less than about 10,000 mg, or less than about 8,000 mg, or less than about 6,000 mg, or less than about 5,000 mg, or less than about 3,000 mg, or less than about 2,000 mg, or less than about 1,000 mg, or less than about 500 mg, or less than about 200 mg, or less than about 50 mg. Similarly, in other embodiments, the dose of the second compound described herein is less than about 1,000 mg, or less than about 800 mg, or less than about 600 mg, or less than about 500 mg, or less than about 400 mg, or less than about 300 mg, or less than about 200 mg, or less than about 100 mg, or less than about 50 mg, or less than about 40 mg, or less than about 30 mg, or less than about 25 mg, or less than about 20 mg, or less than about 15 mg, or less than about 10 mg, or less than about 5 mg, or less than about 2 mg, or less than about 1 mg, or less than about 0.5 mg, and any and all whole or partial increments thereof.
[0117] In certain embodiments, the invention relates to a packaged pharmaceutical composition comprising a container housing a therapeutically effective amount of a compound and / or composition of the invention, alone or in combination with a second agent; and instructions for using the compound to treat, prevent or reduce one or more symptoms of a disease or disorder contemplated in the invention.
[0118] In certain embodiments, the container contains lipid-based nanoparticles that do not contain a therapeutic agent of interest, including, but not limited to, insulin or a derivative or analog thereof. In other embodiments, the container contains lipid-based nanoparticles that contain a therapeutic agent of interest, including, but not limited to, insulin or a derivative or analog thereof. In yet other embodiments, the container further contains a therapeutic agent of interest, including, but not limited to, insulin or a derivative or analog thereof.
[0119] Exemplary, Non-Limiting Methods for Treating Diabetes A patient with type I or type II diabetes can be administered an effective amount of the nanoparticles of the present invention containing insulin. When this composition is administered subcutaneously, a portion of the composition enters the circulatory system, from where it is transported to the liver and other regions, where the amphiphilic lipids that extend out bind this lipid construct to the receptors of hepatocytes. A portion of the administered composition is exposed to an external gradient in vivo, where insulin can dissolve and migrate out of the lipid construct, thereby providing insulin to muscle and adipose tissue. The insulin that remains in the lipid construct maintains the ability to be directed to hepatocyte-binding receptors on hepatocytes in the liver. Thus, two forms of insulin are generated from this particular lipid construct. Under in vivo conditions, free and lipid-bound insulin are produced in a time-dependent manner.
[0120] Administration of the nanoparticles and compositions comprising same can be via any of the accepted modes of administration for the insulin desired to be administered. These methods include oral, parenteral, nasal and other systemic or aerosol formats. These methods further include pump delivery systems.
[0121] After oral administration of the nanoparticles of the present invention, insulin bound to the nanoparticles of the present invention is intestinally absorbed into the circulatory system of the body, where it is also exposed to the physiological pH of blood. The nanoparticles can be targeted for delivery to the liver and protected by the presence of cellulose acetate phthalate in the nanoparticles of the present invention. When administered orally, the protected nanoparticles cross the oral cavity, travel through the stomach, and move to the small intestine, where the alkaline pH of the small intestine breaks down the cellulose acetate phthalate protection. The deprotected nanoparticles are absorbed into the circulatory system. This allows the nanoparticles to be delivered to the sinusoids of the liver. Receptor binding molecules, such as 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(cap biotinyl) or any other hepatocyte-specific molecule, provide a means for the lipid construct to bind to the receptor and then be engulfed or internalized by the hepatocyte. When insulin is subsequently released from the nanoparticles and reaches the cellular environment, it exerts its designated function in terms of acting as a drug to control diabetes.
[0122] A patient with type I or type II diabetes can be administered an effective amount of nanoparticles that contain a mixture of free insulin glargine and insulin glargine bound to nanoparticles.Glargine insulin can be mixed with other forms of insulin, such as insulin lispro, insulin aspart, regular insulin, insulin zinc, long-acting human insulin zinc, isophane insulin, human buffered regular insulin, insulin glulisine, recombinant human regular insulin, recombinant human insulin isophane or a premixed combination of any of the above insulins, their derivatives, and any of the above insulins.The composition can be administered by subcutaneous or oral route.
[0123] After the composition is administered to a patient by subcutaneous injection, the in situ physiological environment, morphology and chemical structure of free insulin and insulin bound to nanoparticles in the injection area begin to change.For example, when the pH of the environment surrounding free insulin and insulin bound to nanoparticles rises after dilution by physiological medium, the pH reaches the isoelectric point of insulin, and flocculation, aggregation and precipitation reactions occur in both free insulin and insulin bound to nanoparticles.In certain embodiments, free insulin changes from a soluble form at the time of injection to an insoluble form at a pH near its isoelectric point of pH 5.8-6.2, and then to a soluble form at physiological pH.The speed at which these processes occur is different between free insulin and insulin bound to nanoparticles.Free insulin is directly exposed to changes in pH and dilution. The exposure of the glargine insulin bound to the nanoparticles to small changes in pH and dilution at physiological pH is delayed due to the time required for the physiological fluid or medium to diffuse through the lipid bilayer within the nanoparticle. The delayed release of insulin from the lipid construct and the delayed release of insulin bound to the nanoparticles is a feature of the present invention in that it affects and enhances the biological and pharmacological responses in vivo.
[0124] After oral administration of the pharmaceutical composition that combines free glargine insulin and glargine insulin bound to nanoparticles, the glargine insulin bound to nanoparticles is intestinal absorbed into the circulatory system of the body, where it is also exposed to the physiological pH of blood.In certain embodiments, the composition comprises a delayed release matrix that releases HDV glargine over an extended period of time to achieve a 24-hour dosing schedule.All or part of the nanoparticles are delivered to the liver.
[0125] A patient with type I or type II diabetes may be administered an effective amount of a hepatocyte targeting composition that includes a mixture of free recombinant human insulin isophane (NPH) and free recombinant human regular insulin, and recombinant human insulin isophane and recombinant human regular insulin, both bound to nanoparticles. The recombinant human insulin isophane may be mixed with other forms of insulin, such as insulin lispro, insulin aspart, regular insulin, insulin glargine, insulin zinc, long-acting human insulin zinc, isophane insulin, human buffered regular insulin, insulin glulisine, recombinant human regular insulin, recombinant human insulin isophane, or a (premixed) combination of any of the above insulins.
[0126] In certain embodiments, the composition comprises a delayed release matrix that releases HDV NPH over an extended period of time to achieve a 24 hour dosing regimen.
[0127] Following oral administration of a pharmaceutical composition combining free rHuman insulin isophane and rHuman insulin isophane bound to nanoparticles, the rHuman insulin isophane bound to nanoparticles is intestinally absorbed into the body's circulatory system where it is also exposed to the physiological pH of the blood. All or a portion of the nanoparticles are delivered to the liver, and the non-HDV isophanes are slowly absorbed from the sustained release matrix for release into the systemic circulation.
[0128] As physiological dilution proceeds in the subcutaneous space or in situ upon entering the circulatory system, free RI isophane and RI isophane bound to nanoparticles encounter the normal physiological pH environment of pH 7.4. As a result of dilution, free RI isophane changes from an insoluble form upon injection to a soluble form under physiological pH. In the soluble form, RI isophane travels through the body to sites where it can elicit a pharmacological response. RI isophane bound to nanoparticles dissolves and is released from the nanoparticles at a slower rate than that of free RI isophane. This is because RI isophane bound to nanoparticles must traverse the core and lipid domains of the nanoparticles before contacting the bulk phase medium.
[0129] The amount of insulin administered will depend on the subject being treated, the type and severity of the affliction, the mode of administration and the judgement of the prescribing physician. The effective dose range of each biologically active substance of interest depends on various factors, which are generally known to those skilled in the art, but generally some dosing guidelines can be defined. In most dosage forms, nanoparticles are suspended in an aqueous solution, and generally do not exceed 4.0% (w / v) of the total formulation. The drug component of the formulation, in certain embodiments, is less than 20% (w / v) of the formulation, and generally is more than 0.01% (w / v).
[0130] In certain embodiments, the pharmaceutical composition comprises HDV insulin and non-free insulin.In such examples, all insulin in the composition is targeted to the liver.In other embodiments, the pharmaceutical composition comprises HDV insulin and free insulin (non-HDV insulin).The ratio between HDV insulin and free insulin is, in non-limiting examples, about 0.1:99.9, 0.2:99.8, 0.3:99.7, 0.4:99.6, 0.5:99.5, 0.6:99.4, 0.7:99.3, 0.8:99.2, 0.9:99.1, 1:99, 2:98, 3:97, 4:96, 5:95, 6:94, 7:93 , 8:92, 9:91, 10:90, 12:88, 14:86, 16:84, 18:82, 20:80, 22:78, 24:76, 25:75, 26:74, 28:72, 30:70, 32:68, 34:66, 36:64:38:62, 40:60, 42:58, 44:56, 46:54, 48:52 and 50:50.
[0131] Dosage forms or compositions may be prepared containing active ingredient in the range of 0.005% to 5%, the remainder consisting of non-toxic carriers.
[0132] The exact composition of these formulations can vary widely depending on the particular properties of the drug of interest. In certain embodiments, they contain 0.01% to 5%, preferably 0.05% to 1% of the active ingredient for high potency drugs, and 2% to 4% for moderately active drugs.
[0133] The percentage of active ingredient contained in such parenteral compositions depends largely on its individual nature, as well as the activity of the active ingredient and the needs of the subject. However, a percentage of active ingredient of 0.01% to 5% in solution is available, and may be higher if the composition is a solid that is subsequently diluted to the above percentage. In certain embodiments, the composition contains 0.2% to 2.0% active ingredient in solution.
[0134] Administration The formulations may be used in combination with conventional excipients known in the art, i.e., pharma- ceutically acceptable organic or inorganic carrier substances suitable for oral, parenteral, nasal, intravenous, subcutaneous, enteral or any other suitable mode of administration. The pharmaceutical preparations may be sterilized and, if desired, may be mixed with auxiliary agents, such as lubricants, preservatives, stabilizers, wetting agents, emulsifiers, salts for influencing osmotic pressure, buffers, colorants, flavorings and / or aromatic substances, etc. They may also be combined, if desired, with other active agents, such as other analgesics.
[0135] The route of administration of any composition of the present invention includes oral, nasal, rectal, intravaginal, parenteral, buccal, sublingual or topical.The compound and / or composition used in the present invention can be formulated for administration by any suitable route, for example oral or parenteral, for example transdermal, transmucosal (e.g. sublingual, lingual, (trans)oral, (trans)urethral, vaginal (e.g. vaginal and perivaginal), (intravaginal) and (trans)rectal), intravesical, intrapulmonary, intraduodenal, intragastric, intrathecal, subcutaneous, intramuscular, intradermal, intraarterial, intravenous, intrabronchial, inhalation and topical administration.
[0136] Suitable compositions and dosage forms include, for example, tablets, capsules, caplets, pills, gelcaps, troches, dispersions, suspensions, solutions, syrups, granules, beads, transdermal patches, gels, powders, pellets, magmas, lozenges, creams, pastes, plasters, lotions, discs, suppositories, liquid sprays for nasal or oral administration, dry powder or aerosol formulations for inhalation, compositions and formulations for intravesical administration, etc. It should be understood that the formulations and compositions useful in the present invention are not limited to the specific formulations and compositions described herein.
[0137] Oral route For oral application, tablets, dragees, liquids, drops, suppositories or capsules, caplets and gelcaps are particularly suitable. The composition intended for oral use can be prepared according to any method known in the art, and such compositions can contain one or more agents selected from the group consisting of inert, non-toxic pharmaceutical excipients suitable for the manufacture of tablets. Such excipients include, for example, inert diluents, such as lactose; granulating and disintegrating agents, such as corn starch; binding agents, such as starch; and lubricants, such as magnesium stearate. Tablets can be uncoated or coated by known techniques for elegance or to delay the release of active ingredients. Preparations for oral use can also be provided as hard gelatin capsules in which the active ingredient is mixed with an inert diluent.
[0138] For oral administration, the compounds and / or compositions of the present invention may be in the form of tablets or capsules prepared by conventional means using pharma- ceutically acceptable excipients, such as binders (e.g., polyvinylpyrrolidone, hydroxypropylcellulose or hydroxypropylmethylcellulose); fillers (e.g., corn starch, lactose, microcrystalline cellulose or calcium phosphate); lubricants (e.g., magnesium stearate, talc or silica); disintegrants (e.g., sodium starch glycolate); or wetting agents (e.g., sodium lauryl sulfate). If desired, tablets may be coated using suitable methods and coating materials, such as the OPADRY™ film coating system available from Colorcon, West Point, Pa. (e.g., OPADRY™ OY Type, OYC Type, Organic Enteric OY-P Type, Aqueous Enteric OY-A Type, OY-PM Type and OPADRY™ White, 32K18400). Liquid preparations for oral administration may be in the form of solutions, syrups or suspensions. Liquid preparations may be prepared by conventional means with pharma- ceutically acceptable additives such as suspending agents (e.g., sorbitol syrup, methylcellulose, or hydrogenated edible fats); emulsifying agents (e.g., lecithin or acacia); non-aqueous vehicles (e.g., almond oil, oily esters, or ethyl alcohol); and preservatives (e.g., p-hydroxybenzoate or methyl or propyl sorbate).
[0139] Granulation techniques for processing starting powders of active ingredients or other specific materials are well known in the pharmaceutical field.Powder is typically mixed with a binder and made into larger permanent free-flowing aggregates or granules, referred to as "granulation".For example, the wet granulation process using a solvent generally requires that powder is mixed with a binder and moistened with water or an organic solvent under conditions that form a "wet" granular mass, from which the solvent is then evaporated.
[0140] Melt granulation generally involves the use of materials that are solid or semi-solid at room temperature (i.e., have a relatively low softening point and melting range) to facilitate the granulation of powdered or other materials essentially without the addition of water or other liquid solvents. When heated to a temperature in the melting range, the low melting solid liquefies and acts as a binding or granulation medium. The liquefied solid spreads itself onto the surface of the powdered materials with which it comes in contact, and upon cooling forms a solid granular mass in which the initial materials are bound together. The resulting melt granulation can then be subjected to tableting or encapsulation for preparation of oral dosage forms. Melt granulation enhances the dissolution rate and bioavailability of the active ingredient (i.e., drug) by forming a solid dispersion or solid melt.
[0141] US Patent No. 5,169,645 discloses a directly compressible wax-containing granule with improved flowability. The granule is obtained by mixing the wax in a melt containing a specific flowability improving additive, followed by cooling and granulating the mixture. In certain embodiments, only the wax melts in the molten mixture of wax and additive, and in other examples, both the wax and additive melt.
[0142] The present invention also includes multi-layer tablets comprising a layer providing delayed release of one or more compounds and / or compositions of the present invention and a further layer providing immediate release of a medicament for the treatment of a disease or disorder.By using a wax / pH-sensitive polymer mixture, a gastric insoluble composition can be obtained in which the active ingredient is entrapped for delayed release.
[0143] Parenteral Administration For parenteral administration, the compounds and / or compositions of the invention may be formulated for injection or infusion, e.g., intravenous, intramuscular or subcutaneous injection or infusion, or for administration in a bolus dose and / or continuous infusion. Suspensions, solutions or emulsions in oily or aqueous vehicles, optionally containing other formulating agents such as suspending, stabilizing and / or dispersing agents, may be used.
[0144] Pulmonary administration The pharmaceutical compositions of the invention may be prepared, packaged or sold as a formulation suitable for pulmonary administration through the buccal cavity. Such formulations may comprise dry particles comprising the active ingredient and having a diameter in the range of about 0.5 to about 7 microns, preferably about 1 to about 6 microns. Such compositions are conveniently in the form of a dry powder for administration using a device comprising a dry powder reservoir to which a stream of propellant can be directed to disperse the powder, or using a self-propelling solvent / powder dispensing container, such as a device comprising the active ingredient dissolved or suspended in a low boiling point propellant in a sealed container. Preferably, such powders comprise particles at least 98% of which by weight have a diameter greater than 0.5 microns and at least 95% of which by number have a diameter less than 7 microns. More preferably, at least 95% of the particles by weight have a diameter greater than 1 nanometer and at least 90% of the particles by number have a diameter less than 6 microns. Dry powder compositions preferably comprise a solid fine powder diluent, such as sugar, and are conveniently provided in unit dosage form.
[0145] Low boiling point propellants generally include liquid propellants having a boiling point below 65° F. at atmospheric pressure. Generally, the propellant may comprise 50-99.9% (w / w) of the composition and the active ingredient may comprise 0.1-20% (w / w) of the composition. The propellant may further include additional ingredients such as a liquid nonionic or solid anionic surfactant or a solid diluent (preferably having a particle size on the same order as the particles containing the active ingredient).
[0146] Pharmaceutical compositions of the invention formulated for pulmonary delivery may also provide the active ingredient in the form of droplets of a solution or suspension. Such formulations may be prepared, packaged, or sold as aqueous or dilute alcoholic solutions or suspensions, optionally sterile for administration by injection, containing the active ingredient, and may be easily administered using any nebulizer or atomizer device. In certain embodiments, the compounds and / or compositions of the invention may be sterile filtered prior to administration to a subject. Such formulations may further include one or more additional ingredients, including, but not limited to, flavoring agents, such as sodium saccharin, volatile oils, buffers, surfactants, or preservatives, such as methyl hydroxybenzoate. The droplets provided by this route of administration preferably have a mean diameter in the range of about 0.1 to about 200 microns.
[0147] Nasal Delivery The formulations described herein as useful for pulmonary delivery are also useful for intranasal delivery of the pharmaceutical compositions of the invention.
[0148] Another formulation suitable for nasal administration is a coarse powder containing the active ingredient and having an average particle size of about 0.2 to 500 microns. Such a formulation is administered in the manner in which sniffing is done, i.e., by rapid inhalation through the nasal passage from a container of the powder held close to the nostril.
[0149] Formulations suitable for nasal administration may, for example, contain as little as about 0.1% (w / w) to as much as about 75% (w / w) active ingredient, and may further include one or more of the additional ingredients described herein.
[0150] oral delivery A pharmaceutical composition of the invention may be prepared, packaged, or sold in a formulation suitable for buccal administration. Such a formulation may be, for example, in the form of a tablet or lozenge prepared using conventional methods and may contain, for example, 0.1-20% (w / w) active ingredient, the remainder being an orally dissolvable or degradable composition and optionally one or more additional ingredients described herein. Alternatively, a formulation suitable for buccal administration may comprise a powder or an aerosolized or atomized solution or suspension containing the active ingredient. Such powdered, aerosolized, or atomized formulations, when dispersed, preferably have an average particle or droplet size in the range of about 0.1 to about 200 microns, and may further comprise one or more additional ingredients described herein.
[0151] Intraocular administration A pharmaceutical composition of the invention may be prepared, packaged, or sold in a formulation suitable for intraocular administration. Such a formulation may be, for example, in the form of eye drops comprising a 0.1% to 1.0% (w / w) solution or suspension of the active ingredient in, for example, an aqueous or oily liquid carrier. Such drops may further comprise a buffer, a salt, or one or more other additional ingredients described herein. Other ocularly administrable formulations that are useful include those comprising the active ingredient in microcrystalline form or in a lipid construct.
[0152] Further dosage forms Additional dosage forms of the present invention include those described in U.S. Patent Nos. 6,340,475; 6,488,962; 6,451,808; 5,972,389; 5,582,837; and 5,007,790. Additional dosage forms of the present invention also include those described in U.S. Patent Application Nos. 20030147952; 20030104062; 20030104053; 20030044466; 20030039688; and 20020051820. Additional dosage forms of the present invention also include those described in PCT Application Nos. WO 03 / 35041; WO 03 / 35040; WO 03 / 35029; WO 03 / 35177; WO 03 / 35039; WO 02 / 96404; WO 02 / 32416; WO 01 / 97783; WO 01 / 56544; WO 01 / 32217; WO 98 / 55107; WO 98 / 11879; WO 97 / 47285; WO 93 / 18755; and WO 90 / 11757.
[0153] Controlled Release Formulations and Drug Delivery Systems In certain embodiments, the formulations of the present invention can be, but are not limited to, short-term, fast offset, and controlled, including sustained release, delayed release, and pulsed release formulations.
[0154] The term sustained release is used in its conventional sense to refer to a drug formulation that provides a gradual release of drug over an extended period of time and can result in substantially constant blood levels of drug over an extended period of time, which can be, but is not necessarily, a month or more, and should be a longer release than the same amount of drug administered in bolus form.
[0155] In the case of sustained release, the composition can be formulated with a suitable polymer or hydrophobic material that provides the compound and / or composition with sustained release properties.In that case, the composition and / or composition used in the method of the present invention can be administered in the form of microparticles, for example, by injection or in the form of wafers or disks by implantation.
[0156] In certain embodiments, the compounds and / or compositions of the invention are administered to a patient, alone or in combination with another agent, using a sustained release formulation.
[0157] The term delayed release is used herein in its conventional sense to refer to a drug formulation that provides an initial release of drug after a delay from drug administration, and which may, but is not necessarily, include a delay of from about 10 minutes up to about 12 hours.
[0158] The term pulsatile release is used herein in its conventional sense to refer to a drug formulation that provides a release of drug that results in a pulsatile plasma profile of the drug following drug administration.
[0159] The term immediate release is used in its conventional sense to refer to a formulation that provides release of drug immediately after drug administration.
[0160] As used herein, short term refers to any period of time up to and including about 8 hours, about 7 hours, about 6 hours, about 5 hours, about 4 hours, about 3 hours, about 2 hours, about 1 hour, about 40 minutes, about 20 minutes, or about 10 minutes and any or all whole or partial increments thereof after drug administration.
[0161] As used herein, rapid offset refers to any period of time up to and including about 8 hours, about 7 hours, about 6 hours, about 5 hours, about 4 hours, about 3 hours, about 2 hours, about 1 hour, about 40 minutes, about 20 minutes, or about 10 minutes and any and all whole or partial increments thereof after drug administration.
[0162] dosage The therapeutically effective amount or dose of the compounds and / or compositions of the invention will depend on the age, sex and weight of the patient, the patient's current medical condition and the progress of the disease or disorder contemplated in the present invention in the patient being treated. Those skilled in the art will be able to determine the appropriate dose based on these and other factors.
[0163] Suitable doses of the compounds and / or compositions of the present invention may range from about 0.01 mg to about 5,000 mg per day, for example, from about 0.1 mg to about 1,000 mg per day, for example, from about 1 mg to about 500 mg, for example, from about 5 mg to about 250 mg. The dose may be administered in a single dose or multiple doses, for example, 1 to 4 or more doses per day. When multiple doses are used, the amount of each dose may be the same or different. For example, a daily dose of 1 mg may be administered as two 0.5 mg doses with an interval of about 12 hours between them.
[0164] It is understood that the amount of compound and / or composition administered per day can be, in non-limiting examples, administered every day, every other day, every third day, every fourth day, or every fifth day. For example, in the case of every other day administration, a 5 mg daily dose can be started on Monday, and the first subsequent 5 mg daily dose can be administered on Wednesday, the second subsequent 5 mg daily dose on Friday, etc.
[0165] In instances where the patient's condition improves, at the discretion of the physician, administration of the inhibitor of the present invention is optionally continued; alternatively, the dose of drug administered is temporarily reduced or temporarily suspended for a period of time (i.e., a "drug-free day"). The length of the drug-free day can optionally vary from 2 days to 1 year, including, by way of example, 2 days, 3 days, 4 days, 5 days, 6 days, 7 days, 10 days, 12 days, 15 days, 20 days, 28 days, 35 days, 50 days, 70 days, 100 days, 120 days, 150 days, 180 days, 200 days, 250 days, 280 days, 300 days, 320 days, 350 days, or 365 days. Dose reductions during drug rest days can be, by way of example only, 10% to 100%, including 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95% or 100%.
[0166] When the patient's condition improves, maintenance dose is administered as necessary.Then, dose or frequency of administration or both are reduced as a function of viral load to a level at which disease improvement is maintained.In certain embodiments, patient requires intermittent treatment on a long-term basis depending on recurrence of symptoms and / or infection.
[0167] The compounds and / or compositions used in the method of the present invention may be formulated in unit dosage form. The term "unit dosage form" refers to a physically separate unit suitable for single administration to a patient undergoing treatment, each unit containing a predetermined amount of a therapeutic agent calculated to produce a desired therapeutic effect, optionally together with a suitable pharmaceutical carrier. The unit dosage form may be for a single daily dose or one of multiple daily doses (e.g., about 1-4 times a day or more). When multiple daily doses are used, the unit dosage form may be the same or different doses for each.
[0168] LD 50 (a dose lethal to 50% of the population) and ED 50 Toxicity and therapeutic efficacy of such treatment regimens are optionally determined in cell cultures or experimental animals, including, but not limited to, determining the dose that is therapeutically effective in 50% of the population. The dose ratio between toxic and therapeutic effects is the therapeutic index, which is the LD 50 and ED 50 The data obtained from cell culture assays and animal studies are optionally used to formulate a range of dosages for use in humans. The dosage of such compounds and / or compositions is preferably administered at a dose not exceeding the ED 50 The dosage is optionally varied within this range depending upon the dosage form employed and the route of administration utilized.
[0169] definition Unless otherwise defined, all technical and scientific terms used herein generally have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Generally, the nomenclature and laboratory techniques in organic and protein chemistry used herein are those well known and commonly used in the art.
[0170] The articles "a" and "an" are used herein to refer to one or to more than one (i.e., to at least one) of the grammatical object of the article. By way of example, "an element" means one element or more than one element.
[0171] As used herein, the term "about" is understood by those of ordinary skill in the art and will vary to some extent depending on the context in which it is used. When used herein with reference to a measurable value, such as an amount, a duration, etc., the term "about" is meant to encompass variations of ±20% or ±10%, more preferably ±5%, even more preferably ±1%, and even more preferably ±0.1% from the specified value, as long as such variations are appropriate in carrying out the disclosed method.
[0172] As used herein, the term "active ingredient" refers to a therapeutic agent delivered to a subject to produce a therapeutic effect in the subject. Non-limiting examples of active ingredients contemplated in the present invention are insulin, interferon, parathyroid hormone, calcitonin, serotonin, serotonin agonists, serotonin reuptake inhibitors, human growth hormone, GIP, anti-GIP monoclonal antibodies, metformin, bromocriptine, dopamine, glucagon and / or GLP-1.
[0173] The term "amphipathic lipid" refers to a lipid molecule that has a polar end and a non-polar end.
[0174] "Aqueous medium" means water or water containing buffers or salts.
[0175] The term "bioavailability" refers to a measure of the rate and extent to which insulin reaches the systemic circulation and becomes available at the site of action.
[0176] In one aspect, the term "co-administered" and "co-administration" in relation to a subject refers to administering to a subject the compound of the present invention or its salt together with a compound that can also treat any disease or disorder envisaged in the present invention and / or a compound that is useful in treating other medical conditions but can itself cause or promote any disease or disorder envisaged in the present invention.In certain embodiments, the co-administered compounds are administered separately or in any kind of combination as part of a single therapeutic approach.The co-administered compounds can be formulated under various solid, gel and liquid formulations, in any kind of combination as a mixture of solid and liquid, and as a solution.
[0177] As used herein, a "disease" is a state of health in a subject in which the subject is unable to maintain homeostasis and if the disease is not ameliorated, the subject's health continues to deteriorate.
[0178] As used herein, a "disorder" in a subject is a state in which the subject is able to maintain homeostasis, but in which the subject's health status is less favorable than in the absence of the disorder. If left untreated, the disorder does not necessarily cause a further decline in the subject's health status.
[0179] As used herein, "ED 50 " refers to an effective dose of a formulation that produces 50% of its maximum effect in a subject receiving that formulation.
[0180] As used herein, an "effective amount," "therapeutically effective amount," or "pharmacologically effective amount" of a compound is an amount of the compound sufficient to provide a beneficial effect to the subject to which the compound is administered.
[0181] The term "free active ingredient" or "free therapeutic agent" refers to an active ingredient or therapeutic agent that is not dispersed within a lipid particle (i.e., not located within, adsorbed to, and / or bound to the lipid particle membrane).
[0182] The terms "glargine" and "glargine insulin" both refer to a recombinant human insulin analogue that differs from human insulin in that the amino acid asparagine at position A21 is replaced by glycine and two arginines are added to the C-terminus of its B chain. Chemically, it is A -Gly-30 B aL-Arg-30 B b-Arg-human insulin, empirical formula C 267 H 404 N 72 O 78 S 6 and has a molecular weight of 6063.
[0183] "Instructional material," as the term is used herein, includes publications, records, diagrams, or any other medium of expression that can be used to communicate the utility of the compositions and / or compounds of the invention in the kit. The instructional material of the kit can be, for example, affixed to a container containing the compounds and / or compositions of the invention or shipped with a container containing the compounds and / or compositions. Alternatively, the instructional material can be shipped separately from the container so that the recipient uses the compound in combination with the instructional material. Delivery of the instructional material can be, for example, by physical delivery of a publication or other medium of expression that communicates the utility of the kit, or can be accomplished by electronic transmission, for example, by computer, for example, by email or downloading from a website.
[0184] The term "insulin" refers to insulin in natural or recombinant form, and derivatives of said insulin. Examples of insulin include, but are not limited to, insulin lispro, insulin aspart (e.g., FIASP®, Novo Nordisk), regular insulin, insulin glargine, insulin zinc, long-acting human insulin zinc, isophane insulin, human buffered regular insulin, insulin glulisine, recombinant human regular insulin, and recombinant human insulin isophane. Animal insulins, such as bovine or porcine insulin, are also included.
[0185] The term "isoelectric point" refers to the pH at which the concentrations of positive and negative charges on the protein are equal, resulting in the protein exhibiting a net zero charge. At the isoelectric point, proteins exist almost entirely in zwitterionic form, or hybrids between the protein forms. Proteins are least stable at their isoelectric point and more readily aggregate or precipitate at this pH. However, proteins are not denatured by isoelectric precipitation, since the process is essentially reversible.
[0186] The term "lipid construct" refers to lipid and / or phospholipid particles in which individual lipid molecules interact to form a bipolar lipid membrane that defines the boundaries of the lipid construct.
[0187] As the term is used herein, "modulating" or "modulation" of a biological or chemical process or condition refers to a change in the normal course of the biological or chemical process, or a change in the state of the biological or chemical process to a new state that is different from the current state. For example, modulating the isoelectric point of a polypeptide can refer to a change that increases the isoelectric point of the polypeptide. Alternatively, modulating the isoelectric point of a polypeptide can refer to a change that decreases the isoelectric point of the polypeptide.
[0188] The term "non-glargine insulin" refers to any insulin, either natural or recombinant, that is not glargine insulin. The term includes insulin-like moieties, which include fragments of the insulin molecule that have the biological activity of insulin.
[0189] As used herein, the term "pharmaceutical composition" or "composition" refers to a mixture of at least one compound useful in the present invention and a pharma- ceutical acceptable carrier. The pharmaceutical composition facilitates administration of the compound to a subject.
[0190] As used herein, the term "pharmacologically acceptable" refers to a substance, such as a carrier or diluent, that does not negate the biological activity or properties of a compound useful in the invention and is relatively non-toxic, i.e., the substance may be administered to a subject without producing undesired biological effects or interacting in a deleterious manner with any of the components of the composition in which it is contained.
[0191] As used herein, the term "pharmaceutically acceptable carrier" refers to a pharmaceutically acceptable substance, composition or carrier, such as a liquid or solid filler, stabilizer, dispersant, suspending agent, diluent, excipient, thickener, solvent or encapsulating material, involved in carrying or transporting a compound useful in the present invention in or to a subject so that it can perform its intended function. Typically, such constructs are carried or transported from one organ or part of the body to another organ or part of the body. Each carrier must be "acceptable" in the sense of being compatible with the other ingredients of the formulation containing the compound useful in the present invention and not harmful to the subject. Some examples of substances which may function as pharma- ceutically acceptable carriers include sugars such as lactose, glucose and sucrose; starches such as corn starch and potato starch; cellulose and its derivatives such as sodium carboxymethylcellulose, ethylcellulose and cellulose acetate; powdered tragacanth; malt; gelatin; talc; excipients such as cocoa butter and suppository wax; oils such as peanut oil, cottonseed oil, safflower oil, sesame oil, olive oil, corn oil and soybean oil; glycols such as propylene glycol; polyols such as glycerin, sorbitol, mannitol and polyethylene glycol; esters such as ethyl oleate and ethyl laurophosphate; agar; buffers such as magnesium hydroxide and aluminum hydroxide; surfactants; alginic acid; pyrogen-free water; isotonic saline; Ringer's solution; ethyl alcohol; phosphate buffer solutions; and other non-toxic compatible substances used in pharmaceutical formulations. As used herein, "pharmaceutically acceptable carriers" also include any and all coatings, antibacterial and antifungal agents, absorption delaying agents, and the like, that are compatible with the activity of the compounds useful in the present invention and are physiologically acceptable to a subject. Supplementary active compounds can also be incorporated into the compositions. "Pharmaceutically acceptable carriers" can also include pharmaceutically acceptable salts of the compounds useful in the present invention.Other additional ingredients that may be included in the pharmaceutical compositions used in practicing the invention are known in the art and are described, for example, in Remington's Pharmaceutical Sciences (Genaro, Ed., Mack Publishing Co., 1985, Easton, Pa.), which is incorporated herein by reference.
[0192] As used herein, the term "pharmaceutically acceptable salts" refers to salts of the compound being administered prepared from pharmaceutically acceptable non-toxic acids and bases, including inorganic acids, inorganic bases, organic acids, organic bases, solvates, hydrates and clathrates thereof.
[0193] The terms "prevent," "preventing," or "prevention," as used herein, refer to avoiding or delaying the onset of symptoms associated with a disease or condition in a subject who does not experience such symptoms at the time administration of an agent or compound is initiated. Diseases, conditions, and disorders are used interchangeably herein.
[0194] "Specifically bind" or "specifically binds," as used herein, means that a first substance binds preferentially to a second substance (e.g., a particular receptor or enzyme), but not necessarily exclusively to that second compound.
[0195] As used herein, a "subject" may be a human or a non-human mammal or bird. Non-human mammals include, for example, livestock and pets, such as sheep, cows, pigs, dogs, cats and murine mammals. In certain embodiments, the subject is a human.
[0196] The terms "treat," "treating," or "treatment," as used herein, mean reducing the frequency or severity with which a subject experiences symptoms of a disease or condition by administering an agent or compound to the subject.
[0197] Throughout this disclosure, various aspects of the invention may be presented in a range format. It should be understood that the description in range format is made merely for the purposes of convenience and brevity, and should not be considered as an inflexible limitation on the scope of the invention. Thus, the description of a range should be considered to include all possible subranges specifically disclosed, as well as individual numerical values within that range, and, where appropriate, partial integers of numerical values within that range. For example, the description of a range such as 1-6 should be considered to include specifically disclosed subranges such as 1-3, 1-4, 1-5, 2-4, 2-6, 3-6, etc., and individual numerical values within that range, for example, 1, 2, 2.7, 3, 4, 5, 5.3, and 6. This applies regardless of the breadth of the range.
[0198] Those skilled in the art will be able to recognize and ascertain, without more than routine experimentation, many equivalents to the specific procedures, embodiments, claims and examples described herein. Such equivalents are considered to be within the scope of the present invention and to be encompassed by the claims appended hereto. For example, variations in reaction conditions, including but not limited to reaction times, reaction sizes / volumes and experimental reagents, such as solvents, catalysts, pressures, ambient conditions, such as nitrogen atmosphere, and reducing / oxidizing agents, with art-recognized substitutions and without more than routine experimentation, should be understood to be within the scope of the present application.
[0199] It should be understood that whenever values and ranges are provided herein, all values and ranges subsumed within those values and ranges are meant to be encompassed within the scope of the invention. Moreover, all values and upper or lower limits of range values subsumed within these ranges are also contemplated by this application.
[0200] The following examples further illustrate aspects of the present invention, but do not constitute a limitation of the present teachings or disclosure presented herein. EXAMPLES
[0201] Experimental Examples The invention will now be described with reference to the following examples, which are provided for illustrative purposes and the invention should not be construed as being limited to these examples, but rather as embracing any and all ramifications that become evident as a result of the teachings provided herein.
[0202] Without further description, it is believed that one of ordinary skill in the art can, using the above description and the following illustrative examples, make and use the compounds of the present invention and practice the methods described in the claims. The following examples therefore, present specific embodiments of the present invention, and are not to be construed as limiting the remainder of the disclosure in any way.
[0203] The materials and methods used in the experiments presented in this experimental example are now described.
[0204] Example 1: The compositions shown in Table 1 were prepared and characterized.
[0205] Table 1. Formulation (mg / mL) TIFF2025085727000005.tif34130
[0206] The amphiphilic compounds were dissolved in a chloroform / methanol (2:1) mixture, followed by removal of the organic solvent by rotoevaporation and under vacuum. The dried material was then hydrated with phosphate buffer and homogenized to a particle size of less than 100 nm.
[0207] The three formulations are shown in Table 1. Formulation A is a control nanoparticle formulation that provides a characteristically small particle size. The particle size determined in Formulation A was <100 nm. Interestingly, within two weeks of its preparation, Formulation A was found to form small floating structures that were intrusive aggregates of individual nanoparticles (Figures 1A-1B). The nanoparticle aggregates showed a small size increase over a period of several months.
[0208] In formulation B, 25% of the DSPC was replaced with stearoyl lysophosphatidylcholine. The particle size determined in formulation B was <100 nm. The particles formed in formulation B were comparable in size to those in formulation A, but formulation B did not form small structures as observed in formulation A.
[0209] Formulation C has the same amount of DSPC as Formulation A, but additionally contains 3% (wt) m-cresol. m-cresol is added to prevent nanoparticle aggregation, and indeed Formulation C does not form small structures as in Formulation A. Other phenolic structures with similar structures to m-cresol can also be used to stabilize nanoparticles.
[0210] In certain embodiments, stearoyl lysophosphatidylcholine and / or at least one phenolic compound can be added to the initial amphiphilic mixture before homogenization.In other embodiments, at least one phenolic compound can be added after homogenization.Without wishing to be limited by any theory, at least one phenolic compound adsorbs to the edge of the membrane and stabilizes the particles.
[0211] Example 2: Biological efficacy of nanoparticles with stabilized edges Two versions of hepatocyte targeting nanoparticles containing insulin lispro were tested in insulin-deficient dogs to determine their effectiveness as hypoglycemic agents. Formulation A was compared with a non-limiting example of the formulation of the present invention (Formulation B). As a control study, commercial lispro insulin, which lacks hepatocyte targeting ability, was used. Dogs were maintained in a recognized animal research facility with all appropriate regulatory controls. The concentration of nanoparticles, the dose of lispro insulin, food intake and timing of the study are all comparable in this crossover study.
[0212] In this open-label crossover study, female beagle dogs weighing 5-10 kg were made insulin deficient by treatment with streptozotocin. After stabilization with parenteral insulin injections and a standardized controlled diet, the dogs were fasted overnight. The dogs had blood glucose levels <200 mg / dL / kg study body weight.
[0213] The dogs were fed a defined amount of standard dog chow 30 minutes after subcutaneous injection of lispro insulin with different formulations: hepatocyte-targeted lispro insulin (formulation A), hepatocyte-targeted lispro insulin (formulation B) or commercial lispro insulin lacking hepatocyte targeting ability (control). Formulations A and B had similar effects in an oral glucose tolerance test, showing a significant reduction in blood glucose levels after the test meal in dogs compared to the same insulin dose consisting of control lispro insulin (Figure 2). Furthermore, formulation B showed a better overall performance in this tolerance test than formulation A. In conclusion, perfect or complete non-spherical phospholipid membranes had improved particle stability when substances such as stearoyl lysophosphatidylcholine or phenolic compounds (e.g., m-cresol) were added to the membrane. These formulations provided more desirable stability and prevented particle aggregation compared to formulations lacking such stabilizing components.
[0214] Example 3: 3-4 show the improved chemical and particle stability observed with the addition of increasing amounts of lysolecithin to the HDV compositions of the present invention.
[0215] For example, the addition of lysolecithin, which replaces a portion of distearoyl lecithin (DSPC), suppresses the tendency of HDV to form white flakes during the first week after production. Without wishing to be limited by any theory, flake formation may be caused by the fragmented edges of HDV structures, which cause HDV units to adhere to each other. In certain embodiments, flake formation may be a problem in the manufacturing process and may require additional filtration steps.
[0216] Furthermore, as shown in Figure 4, lysolecithin formation from DSPC is inhibited by the initial addition of lysolecithin to the composition. Moreover, this occurs without a measurable increase in stearic acid.
[0217] Taken together, the data presented indicates that the use of lysolecithin to replace a portion of DSPC in the compositions of the invention provides benefits for the manufacture of HDV compositions at least because it provides a more reliable manufacturing process, reduces the total number of processing steps, and improves the stability of the compositions of the invention.
[0218] The disclosures of each and every patent, patent application and publication cited herein are incorporated herein by reference in their entirety. Although the present invention has been disclosed with reference to specific embodiments, it will be apparent to those skilled in the art that other embodiments and derivations of the present invention may be devised without departing from the true spirit and scope of the present invention. It is intended that the appended claims be construed to cover all such embodiments and equivalent derivations.
Claims
**Claim 1** A lipid-based nanoparticle, wherein the nanoparticle is encapsulated by a bipolar lipid membrane comprising cholesterol, dicetyl phosphate, an amphiphilic lipid, stearoyl lysophosphatidylcholine, and a hepatocyte receptor-binding molecule, wherein the amphiphilic lipid is 1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC), 1,2-dipalmitoyl-sn-glycerol-[3-phospho-rac-(1-glycerol)], 1,2-distearoyl-sn-glycero-3-phosphoethanolamine, 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl), 1,2-dimyristoyl-sn-glycero-3-phosphate, 1,2-dimyristoyl-sn-glycero-3-phosphocholine, 1,2-distearoyl-sn-glycero-3-phosphate, 1,2-dipalmitoyl-sn-glycero-3-phosphate, and at least one selected from the group consisting of 1,2-dipalmitoyl-sn-glycero-3-phosphocholine, wherein the hepatocyte receptor-binding molecule is in the range of 0.5% to 4% (w / w) in the membrane, wherein at least one hepatocyte receptor-binding molecule extends outward from the nanoparticle and wherein the size of the nanoparticle is in the range of 10 nm to 150 nm, a lipid-based nanoparticle. **Claim 2** The nanoparticle according to claim 1, wherein a therapeutic agent is dispersed within the nanoparticle. **Claim 3** The nanoparticle according to claim 2, wherein the therapeutic agent is covalently bonded to the nanoparticle. **Claim 4** The nanoparticle according to claim 2, wherein the therapeutic agent is not covalently bonded to the nanoparticle. **Claim 5** The nanoparticle according to claim 2, wherein the therapeutic agent comprises at least one selected from the group consisting of insulin, interferon, parathyroid hormone, calcitonin, serotonin, a serotonin agonist, a serotonin reuptake inhibitor, human growth hormone, GIP, an anti-GIP monoclonal antibody, metformin, bromocriptine, dopamine, glucagon, and GLP-1. **Claim 6** The nanoparticle according to claim 2, wherein the nanoparticle is suspended in an aqueous solution containing a free dissolved therapeutic agent that is not dispersed within the nanoparticle. **Claim 7** The nanoparticle according to claim 2, wherein the therapeutic agent is insulin. **Claim 8**: The nanoparticles according to claim 7, wherein the insulin dispersed in the nanoparticles and the free dissolved insulin are each independently selected from the group consisting of insulin lispro, insulin aspart, regular insulin, insulin glargine, insulin zinc, protamine zinc insulin suspension, isophane insulin, human buffered regular insulin, insulin glulisine, recombinant human regular insulin, recombinant human insulin isophane, and any combination thereof. **Claim 9**: The nanoparticles according to claim 1, wherein the amphiphilic lipid comprises at least one selected from the group consisting of 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-[phospho-rac-(1-glycerol)], 1,2-distearoyl-sn-glycero-3-phosphoethanolamine, and 1,2-dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl). **Claim 10**: The nanoparticles according to claim 1, wherein the hepatocyte receptor binding molecule comprises biotin.
11. The biotin-containing hepatocyte receptor-binding molecule is N-hydroxysuccinimide (NHS) biotin, sulfo-NHS-biotin, N-hydroxysuccinimide long-chain biotin, sulfo-N-hydroxysuccinimide long-chain biotin, D-biotin, biocytin, sulfo-N-hydroxysuccinimide-S-S-biotin, biotin-BMCC, biotin-HPDP, iodoacetyl-LC-biotin, biotin-hydrazide, biotin-LC-hydrazide, biocytin hydrazide, biotin cadaverine, carboxybiotin, photobiotin, ρ-aminobenzoyl biocytin trifluoroacetate, ρ-diazobenzoyl biocytin, biotin DHPE (2,3-diacetoxypropyl 2-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentaamide)ethyl phosphate), biotin-X-DHPE (2,3-diacetoxypropyl 2-(6-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentaamide)hexanamide)ethyl phosphate), 12-((biotinyl)amino)dodecanoic acid, 12-((biotinyl)amino)dodecanoic acid succinimidyl ester, S-biotinyl homocysteine, biocytin-X, biocytin x-hydrazide, biotin ethylenediamine, biotin-XL, biotin-X-ethylenediamine, biotin-XX hydrazide, biotin-XX-SE, biotin-XX,The nanoparticle according to claim 10, comprising at least one selected from the group consisting of SSE, biotin-X-cadaverine, α-(t-BOC) biocytin, N-(biotinyl)-N'-(iodoacetyl) ethylenediamine, DNP-X-biotin-X-SE, biotin-X-hydrazide, norbiotinamine hydrochloride, 3-(N-maleimidylpropionyl) biocytin, ARP, biotin-1-sulfoxide, biotin methyl ester, biotin-maleimide, biotin-poly(ethylene glycol) amine, (+) biotin 4-amide benzoic acid sodium salt, biotin 2-N-acetylamino-2-deoxy-β-D-glucopyranoside, biotin-α-D-N-acetylneuraminide, biotin-α-L-fucoside, biotin lacto-N-bioside, biotin-Lewis A trisaccharide, biotin-Lewis Y tetrasaccharide, biotin-α-D-mannopyranoside, and biotin 6-O-phospho-α-D-mannopyranoside., **Claim 12**: The nanoparticles according to claim 10, wherein the biotin-containing hepatocyte receptor binding molecule comprises at least one selected from the group consisting of biotin DHPE and biotin-X-DHPE. **Claim 13**: The nanoparticles according to claim 1, further comprising at least one of the following; (a) cellulose acetate phthalate at least partially bound to the therapeutic agent dispersed in the nanoparticles, or (b) at least one charged organic molecule bound to the therapeutic agent dispersed in the nanoparticles, the charged organic molecule being at least one selected from the group consisting of protamine, polylysine, poly(arg-pro-thr)n in a molar ratio of 1:1:1, poly(DL-Ala-poly-L-lys)n in a molar ratio of 6:1, histone, a sugar polymer containing a primary amino group, a polynucleotide having a primary amino group, a protein containing an amino acid residue having a carboxyl (COO-) or sulfhydryl (S-) functional group, and an acidic polymer. **Claim 14**: The nanoparticles according to claim 1, to which at least one of the following is applied; (a) cholesterol is in the range of 5% to 15% (w / w) in the membrane; (b) The dipalmitoyl phosphate is in the range of 10% to 25% (w / w) in the membrane; (c) The DSPC is in the range of 40% to 75% (w / w) in the membrane; (d) The amount of stearoyl lysophosphatidylcholine in the membrane is 5% to 30% (w / w) of the amount of DSPC in the membrane. **Claim 15** The membrane comprises cholesterol; dipalmitoyl phosphate; DSPC; stearoyl lysophosphatidylcholine; and at least one selected from the group consisting of biotin DHPE and biotin-X-DHPE, The nanoparticle according to claim 1. **Claim 16** A method for preparing a lipid-based nanoparticle according to claim 1, comprising the step of contacting cholesterol, dipalmitoyl phosphate, an amphiphilic lipid, a hepatocyte receptor-binding molecule, and stearoyl lysophosphatidylcholine in an aqueous system. **Claim 17** The method according to claim 16, wherein the nanoparticle contains a therapeutic agent dispersed therein. **Claim 18** (a) The therapeutic agent, cholesterol, dipalmitoyl phosphate, an amphiphilic lipid, a hepatocyte receptor-binding molecule, and stearoyl lysophosphatidylcholine are contacted simultaneously in the aqueous system; or, (b) The nanoparticle is formed in the absence of the therapeutic agent, optionally the nanoparticle is at least partially concentrated, purified, or isolated, and the therapeutic agent is contacted with the nanoparticle, whereby at least a portion of the therapeutic agent is dispersed within the nanoparticle. The method according to claim 17. **Claim 19** The nanoparticle according to claim 2 for treating a disease in a mammal. **Claim 20** The nanoparticle according to claim 2 for treating diabetes in a mammal, and the therapeutic agent comprises insulin. **Claim 21** The nanoparticle according to claim 2 for activating hepatic glycogen synthase in a mammal, wherein the therapeutic agent comprises insulin. **Claim 22** The nanoparticle according to claim 21, wherein the mammal has diabetes. **Claim 23** A lipid-based nanoparticle, wherein the nanoparticle is encapsulated by a bipolar lipid membrane consisting of cholesterol, dipalmitoyl phosphate, an amphiphilic lipid, a biotin-containing hepatocyte receptor-binding molecule, stearoyl lysophosphatidylcholine, and at least one pharmaceutically acceptable excipient, the biotin-containing hepatocyte receptor-binding molecule is in the range of 0.5% to 4% (w / w) in the membrane, the amphiphilic lipid is 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-Dipalmitoyl-sn-glycerol-[3-phospho-rac-(1-glycerol)] 1,2-Distearoyl-sn-glycero-3-phosphoethanolamine 1,2-Dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl) 1,2-Dimyristoyl-sn-glycero-3-phosphate 1,2-Dimyristoyl-sn-glycero-3-phosphocholine 1,2-Distearoyl-sn-glycero-3-phosphate 1,2-Dipalmitoyl-sn-glycero-3-phosphate, and 1,2-Dipalmitoyl-sn-glycero-3-phosphocholine comprising at least one selected from the group consisting of at least one hepatocyte receptor-binding molecule extends outward from the nanoparticle, and the size of the nanoparticle is in the range of 10 nm to 150 nm lipid-based nanoparticles
24. The at least one amphiphilic lipid is 1,2-Distearoyl-sn-glycero-3-phosphocholine 1,2-Dipalmitoyl-sn-glycero-3-phosphocholine 1,2-Dipalmitoyl-sn-glycerol-[3-phospho-rac-(1-glycerol)] 1,2-Distearoyl-sn-glycero-3-phosphoethanolamine, and The lipid-based nanoparticles according to claim 23, selected from the group consisting of 1,2-Dipalmitoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl). **Claim 25**: The biotin-containing hepatocyte receptor-binding molecule is N-hydroxysuccinimide (NHS) biotin, sulfo-NHS-biotin, N-hydroxysuccinimide long-chain biotin, sulfo-N-hydroxysuccinimide long-chain biotin, D-biotin, biocytin, sulfo-N-hydroxysuccinimide-S-S-biotin, biotin-BMCC, biotin-HPDP, iodoacetyl-LC-biotin, biotin-hydrazide, biotin-LC-hydrazide, biocytin hydrazide, biotin cadaverine, carboxybiotin, photobiotin, ρ-aminobenzoyl biocytin trifluoroacetate, ρ-diazobenzoyl biocytin, biotin DHPE (2,3-diacetoxypropyl 2-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamide)ethyl phosphate), biotin-X-DHPE (2,3-diacetoxypropyl 2-(6-(5-((3aS,6aR)-2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamide)hexanamide)ethyl phosphate), 12-((biotinyl)amino)dodecanoic acid, 12-((biotinyl)amino)dodecanoic acid succinimidyl ester, S-biotinyl homocysteine, biocytin-X, biocytin x-hydrazide, biotin ethylenediamine, biotin-XL, biotin-X-ethylenediamine, biotin-XX hydrazide, biotin-XX-SE, biotin-XX.The lipid-based nanoparticles according to claim 23, comprising at least one selected from the group consisting of SSE, biotin-X-cadaverine, α-(t-BOC) biocytin, N-(biotinyl)-N'-(iodoacetyl)ethylenediamine, DNP-X-biocytin-X-SE, biotin-X-hydrazide, norbiotinamine hydrochloride, 3-(N-maleimidylpropionyl)biocytin, ARP, biotin-l-sulfoxide, biotin methyl ester, biotin-maleimide, biotin-poly(ethylene glycol)amine, (+) biotin 4-amidobenzoate sodium salt, biotin 2-N-acetylamino-2-deoxy-β-D-glucopyranoside, biotin-α-D-N-acetylneuraminide, biotin-α-L-fucoside, biotin lacto-N-bioside, biotin-Lewis A trisaccharide, biotin-Lewis Y tetrasaccharide, biotin-α-D-mannopyranoside, and biotin 6-O-phospho-α-D-mannopyranoside.,
26. The lipid-based nanoparticles according to claim 23, wherein the biotin-containing hepatocyte receptor-binding molecule comprises at least one selected from the group consisting of biotin DHPE and biotin-X-DHPE.
27. The lipid-based nanoparticles according to claim 23, wherein the stearoyl lysophosphatidylcholine is in the range of 1% to 30% (w / w).